US20150164536A1 - Ultrasonic and electrosurgical devices - Google Patents

Ultrasonic and electrosurgical devices Download PDF

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Publication number
US20150164536A1
US20150164536A1 US14/627,783 US201514627783A US2015164536A1 US 20150164536 A1 US20150164536 A1 US 20150164536A1 US 201514627783 A US201514627783 A US 201514627783A US 2015164536 A1 US2015164536 A1 US 2015164536A1
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US
United States
Prior art keywords
blade
ultrasonic
tissue
surgical instrument
end effector
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Abandoned
Application number
US14/627,783
Inventor
Jarema S. Czarnecki
Kevin D. Felder
Jacob S. Gee
Robert J. Laird
Amy L. Marcotte
Jeffrey D. Messerly
Emily H. Monroe
Daniel W. Price
Patrick J. Scoggins
Foster B. Stulen
John A. Weed, III
II William B. Weisenburgh
John W. Willis
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Cilag GmbH International
Ethicon Endo Surgery Inc
Original Assignee
Ethicon Endo Surgery Inc
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Ethicon Endo Surgery Inc filed Critical Ethicon Endo Surgery Inc
Priority to US14/627,783 priority Critical patent/US20150164536A1/en
Publication of US20150164536A1 publication Critical patent/US20150164536A1/en
Assigned to ETHICON ENDO-SURGERY, LLC reassignment ETHICON ENDO-SURGERY, LLC ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: ETHICON ENDO-SURGERY, INC.
Assigned to ETHICON LLC reassignment ETHICON LLC CHANGE OF NAME (SEE DOCUMENT FOR DETAILS). Assignors: ETHICON ENDO-SURGERY, LLC
Assigned to ETHICON LLC reassignment ETHICON LLC CHANGE OF NAME (SEE DOCUMENT FOR DETAILS). Assignors: ETHICON ENDO-SURGERY, LLC
Assigned to ETHICON ENDO-SURGERY, INC. reassignment ETHICON ENDO-SURGERY, INC. ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: CZARNECKI, Jarema S., MONROE, Emily H., MARCOTTE, AMY L., GEE, JACOB S., SCOGGINS, Patrick J., WEED, JOHN A., III, Felder, Kevin D., LAIRD, ROBERT J., MESSERLY, JEFFREY D., STULEN, FOSTER B., WEISENBURGH, WILLIAM B., II, WILLIS, JOHN W., PRICE, DANIEL W.
Assigned to CILAG GMBH INTERNATIONAL reassignment CILAG GMBH INTERNATIONAL ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: ETHICON LLC
Abandoned legal-status Critical Current

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Definitions

  • the present disclosure is related generally to ultrasonic and electrical surgical devices. More particularly, the present disclosure is related to various blade features for ultrasonic blades to improve tissue grasping, various seals and fluid egress features to prevent build up and accumulation of tissue and other bodily materials encountered during surgery on the distal portion of the tube(s) and the nearby portion of the blade of ultrasonic surgical devices, clamp closure mechanisms for ultrasonic end effectors to provide uniform clamp force, rotation mechanisms for ultrasonic transducers and devices, and combined electrosurgical and ultrasonic devices to provide tissue cutting and spot coagulation.
  • Ultrasonic surgical devices such as ultrasonic scalpels, are used in many applications in surgical procedures by virtue of their unique performance characteristics. Depending upon specific device configurations and operational parameters, ultrasonic surgical devices can provide substantially simultaneous transection of tissue and hemostasis by coagulation, desirably minimizing patient trauma.
  • An ultrasonic surgical device comprises a proximally-positioned ultrasonic transducer and an instrument coupled to the ultrasonic transducer having a distally-mounted end effector comprising an ultrasonic blade to cut and seal tissue.
  • the end effector is typically coupled either to a handle and/or a robotic surgical implement via a shaft.
  • the blade is acoustically coupled to the transducer via a waveguide extending through the shaft.
  • Ultrasonic surgical devices of this nature can be configured for open surgical use, laparoscopic, or endoscopic surgical procedures including robotic-assisted procedures.
  • Ultrasonic energy cuts and coagulates tissue using temperatures lower than those used in electrosurgical procedures. Vibrating at high frequencies (e.g., 55,500 times per second), the ultrasonic blade denatures protein in the tissue to form a sticky coagulum. Pressure exerted on tissue by the blade surface in combination with a clamping mechanism collapses blood vessels and allows the coagulum to form a hemostatic seal. A surgeon can control the cutting speed and coagulation by the force applied to the tissue by the end effector, the time over which the force is applied and the selected excursion level of the end effector.
  • Electrosurgical devices apply electrical energy to tissue in order to treat tissue.
  • An electrosurgical device may comprise an instrument having a distally-mounted end effector comprising one or more electrodes. The end effector can be positioned against tissue such that electrical current is introduced into the tissue.
  • Electrosurgical devices can be configured for bipolar or monopolar operation. During bipolar operation, current is introduced into and returned from the tissue by active and return electrodes, respectively, of the end effector. During monopolar operation, current is introduced into the tissue by an active electrode of the end effector and returned through a return electrode (e.g., a grounding pad) separately located on a patient's body.
  • a return electrode e.g., a grounding pad
  • the end effector of an electrosurgical device sometimes also comprises a cutting member that is movable relative to the tissue and the electrodes to transect the tissue.
  • RF energy is a form of electrical energy that may be in the frequency range of 300 kHz to 1 MHz.
  • an electrosurgical device can transmit low frequency RF energy through tissue, which causes ionic agitation, or friction, in effect resistive heating, thereby increasing the temperature of the tissue. Because a sharp boundary may be created between the affected tissue and the surrounding tissue, surgeons can operate with a high level of precision and control, without sacrificing adjacent tissues or critical structures.
  • the low operating temperatures of RF energy may be useful for removing, shrinking, or sculpting soft tissue while simultaneously sealing blood vessels.
  • RF energy may work particularly well on connective tissue, which is primarily comprised of collagen and shrinks when contacted by heat.
  • an ultrasonic surgical instrument comprises a waveguide comprising a proximal end and a distal end, wherein the proximal end is coupled to an ultrasonic transducer; an end effector coupled to the distal end of the waveguide; a tube comprising a lumen, wherein the waveguide is located within the lumen; a clamp arm pivotably connected to the tube; and a tissue accumulation impedance mechanism configured to prevent tissue from accumulating in the lumen.
  • the tissue accumulation impedance mechanism comprises a boot barrier configured to create a seal between the tube and the end effector.
  • the boot barrier is sealed to the tube using one or more retention features.
  • the boot barrier comprises a cavity.
  • the cavity is rounded to allow fluid to flow out of the cavity.
  • the boot barrier comprises a plurality of contact points with the blade.
  • the tissue accumulation impedance mechanism comprises one or more apertures in the tube.
  • the apertures comprise one or more windows.
  • the apertures comprise one or more holes.
  • the distal portion comprises a hemispherical cross section.
  • the tube comprises one or more ribs formed on an inner side of the tube.
  • the tissue accumulation impedance mechanism comprises a pump configured to provide a positive pressure flow between the blade and the tube, wherein the positive pressure flow prevents tissue ingress into the lumen.
  • the pump or the outlet of the pump is located distally to a distal-most overmolded seal located within the lumen.
  • the tissue accumulation impedance mechanism comprises a slidable tube disposed within the lumen, the slidable tube slidable from a first position to a second position, wherein in the first position the slidable tube is disposed over the blade, and the second position the blade is exposed.
  • an ultrasonic surgical instrument comprises a waveguide comprising a proximal end and a distal end, wherein the proximal end is coupled to an ultrasonic transducer; an end effector coupled to the distal end of the waveguide, the end effector comprising at least one tissue retention feature; a clamp arm operatively coupled to the end effector.
  • the at least one tissue retention feature comprises one or more indentations/grooves/notches/texture formed in the end effector.
  • the one or more indentations comprise triangular teeth.
  • the one or more indentations comprise holes.
  • the one or more indentations comprise horizontal trenches.
  • the at least on tissue retention feature comprises one or more projections from the end effector.
  • the one or more projections comprise triangular teeth.
  • the one or more projections comprise blocks.
  • the one or more projections comprise horizontal bumps.
  • the one or more projections comprise circular bumps.
  • the at least one tissue retention feature is disposed over an entire length of the blade.
  • the at least one tissue retention feature is disposed over a discrete section of the blade.
  • an ultrasonic surgical instrument comprises a waveguide comprising a proximal end and a distal end, wherein the proximal end is coupled to an ultrasonic transducer; an end effector operatively coupled to the distal end of the waveguide guide; a rotation shroud configured to rotate the waveguide; and a rotation stop mechanism coupled to the rotation shroud prevent rotation of the rotation knob beyond a predetermined rotation.
  • the shroud comprises at least one channel; at least one boss, the at least one boss located within the at least one channel, wherein the at least one boss has a predetermined lateral movement limit, wherein when the at least one boss reaches the predetermined lateral movement limit, the at least one boss prevents further rotation of the rotation knob.
  • the rotation stop comprises a gate comprising a first wing and a second wing, wherein the first and second wings are disposed at an angle, wherein the gate is disposed within the shroud and the gate allows a predetermined angle of rotation of the shroud.
  • an ultrasonic surgical instrument comprises a waveguide comprising a proximal end and a distal end, wherein the proximal end is coupled to an ultrasonic transducer; an end effector coupled to the distal end of the waveguide; a clamp arm operatively coupled to the end effector; a tube disposed over the waveguide, wherein the tube comprises a counter deflection element, wherein the counter deflection element is configured to allow deflection of the blade, wherein the deflection of the blade counteracts a force placed on the blade by the clamp arm in a clamped position.
  • a surgical instrument comprises a waveguide comprising a proximal end and a distal end, wherein the proximal end is coupled to a signal source, the signal source configured to provide an ultrasonic signal and an electrosurgical signal; an end effector coupled to the waveguide; a clamp arm operatively coupled to the end effector; and a sealing button, wherein the sealing button causes the surgical instrument to deliver the electrosurgical signal to the end effector and/or the clamp arm for a first period and the sealing button causes the surgical instrument to deliver the ultrasonic signal to the blade for a second period, wherein the second period is subsequent to the first period.
  • the sealing button causes the surgical instrument to deliver the ultrasonic signal to the end effector prior to transmitting the electrosurgical signal to the end effector and/or clamp arm.
  • the sealing button causes the surgical instrument to only deliver the ultrasonic signal to the end effector resulting in haemostatic transection of tissue.
  • a separate spot coagulation button is provided on the handle. When the spot coagulation button is depressed, an electrosurgical signal is provided to either the end effector or the clamp arm or both to effect spot coagulation of tissue.
  • the electrosurgical signal is a monopolar RF signal.
  • the electrosurgical signal is a bipolar RF signal.
  • a surgical instrument comprises a waveguide comprising a proximal end and a distal end, wherein the proximal end is coupled to an ultrasonic transducer; an end effector coupled to the distal end of the waveguide; a tube disposed over the waveguide; a cam surface formed on or in an outer surface of the tube; and a clamp arm, wherein the clamp arm is operatively coupled to the cam surface.
  • a pivot pin is located within a hole defined by the end effector, the pivot pin operatively coupled to the clamp arm, wherein the clamp arm pivots about the pivot pin.
  • the pivot pin is located at the distal most node of the waveguide.
  • the tube is actuatable and the clamp arm is cammed open and closed against the end effector through relative motion between the tube and the end effector.
  • a surgical instrument comprises a waveguide comprising a proximal end and a distal end, wherein the proximal end is coupled to an ultrasonic transducer; an end effector coupled to the distal end of the waveguide, the end effector defining a pin hole; a rigid pin disposed within the pin hole; a clamp arm operatively connected to the outer tube; and a four-bar linkage; wherein the four-bar linkage is operatively coupled to the clamp arm and the rigid pin, wherein the four-bar linkage is actuatable via end effector translation to move the clamp arm to a clamped position.
  • an outer tube is coupled to the four-bar linkage and the outer-tube actuates the four-bar linkage from a first position to a second position.
  • an ultrasonic surgical instrument comprises a waveguide comprising a proximal end and a distal end, wherein the proximal end is coupled to an ultrasonic transducer; an end effector coupled to the distal end of the waveguide, wherein the end effector is partially coated with thermally and electrically insulative material such that the distal end of the end effector comprises one or more exposed sections.
  • the one or more exposed areas are symmetrical.
  • the one or more exposed areas are asymmetrical.
  • the one or more exposed sections are separated by one or more coated sections.
  • an ultrasonic surgical instrument comprises a waveguide comprising a proximal end and a distal end, wherein the proximal end is coupled to an ultrasonic transducer; an end effector coupled to the distal end of the waveguide, and a clamp arm is operatively connected to the end effector, wherein the clamp arm is partially coated with thermally and electrically insulative material such that the distal end of the clamp arm comprises one or more exposed sections.
  • the one or more exposed areas are symmetrical.
  • the one or more exposed areas are asymmetrical.
  • the one or more exposed sections are separated by one or more coated sections.
  • an ultrasonic surgical instrument comprises a waveguide comprising a proximal end and a distal end, wherein the proximal end is coupled to an ultrasonic transducer; an end effector coupled to the distal end of the waveguide, and a clamp arm is operatively connected to the end effector, wherein the end effector and the clamp arm are partially coated with thermally and electrically insulative material such that the distal end of the end effector and clamp arm comprise one or more exposed sections.
  • the one or more exposed areas are symmetrical.
  • the one or more exposed areas are asymmetrical.
  • the one or more exposed sections are separated by one or more coated sections.
  • FIG. 1 illustrates one embodiment of an ultrasonic blade with tooth-like grasping features formed on a grasping surface of the blade.
  • FIG. 2 illustrates one embodiment of the ultrasonic blade with tooth-like grasping features formed on a grasping portion of the blade, where the teeth are machined into the grasping portion of the blade.
  • FIG. 3 illustrates one embodiment of the ultrasonic blade with tooth-like grasping features formed on a grasping portion of the blade, where the teeth protrude from the grasping portion of the blade.
  • FIG. 4 illustrates one embodiment of an ultrasonic blade with protruding block-like grasping features formed on a grasping portion of the blade.
  • FIG. 5 is a side view of the ultrasonic blade shown in FIG. 4 , according to one embodiment.
  • FIG. 6 illustrates one embodiment of an ultrasonic blade with protruding bump-like or spike-like grasping features formed on a grasping portion of the blade.
  • FIG. 7A is a side view of the ultrasonic blade shown in FIG. 6 , according to one embodiment.
  • FIG. 7B shows bump-like protrusions, according to one embodiment.
  • FIG. 7C shows spike-like protrusions, according to one embodiment.
  • FIG. 8 illustrates one embodiment of an ultrasonic blade with cavity-like grasping features formed on a grasping portion of the blade.
  • FIG. 9A is a side view of the ultrasonic blade shown in FIG. 8 having cylindrical cavity-like grasping features partially formed into the grasping portion of the blade, according to one embodiment.
  • FIG. 9B is a side view of the ultrasonic blade shown in FIG. 8 having cylindrical cavity-like grasping features formed through the grasping portion of the blade, according to one embodiment.
  • FIG. 9C is a side view of the ultrasonic blade shown in FIG. 8 having conical cavity-like grasping features partially formed into the grasping portion of the blade, according to one embodiment.
  • FIG. 10 illustrates one embodiment of an ultrasonic blade with transverse bump-like grasping features formed on a grasping portion of the blade.
  • FIG. 11 is a side view of the ultrasonic blade shown in FIG. 10 , according to one embodiment.
  • FIG. 12 is a side view of one embodiment of an end effector assembly comprising medical forceps having a movable jaw member and an ultrasonic blade having protrusions in the form of tooth-like grasping features formed on a grasping surface of the blade.
  • FIG. 13 is a top view of one embodiment of the medical forceps shown in FIG. 12 with the movable jaw member drawn in phantom line to show the ultrasonic blade positioned below the movable jaw member.
  • FIG. 14 is a side view illustrating one embodiment of an ultrasonic blade comprising tooth-like grasping features having triangular grooves formed on a grasping surface of the blade.
  • FIG. 15 is a top view of the ultrasonic blade shown in FIG. 14 , according to one embodiment.
  • FIG. 16 is a side view illustrating one embodiment of an ultrasonic blade comprising tooth-like grasping features including horizontal trenches having repeated semicircular grooves formed on a grasping surface of the blade.
  • FIG. 17 is a top view of the ultrasonic blade shown in FIG. 16 , according to one embodiment.
  • FIG. 18 is a top view illustrating one embodiment of an ultrasonic blade comprising grasping features including cavities formed on a grasping surface of the blade.
  • FIG. 19 illustrates one embodiment of an end effector assembly comprising a medical forceps having a movable jaw member and an ultrasonic blade with a flexible seal positioned over a proximal portion of the blade and a distal portion of a tube to seal the blade to an outer diameter of the tube.
  • FIG. 20 illustrates one embodiment of an end effector assembly comprising a medical forceps having a movable jaw member and an ultrasonic blade with a flexible seal positioned over a proximal portion of the blade and within a distal portion of a tube to seal the blade to an inner diameter of the tube.
  • FIG. 21 illustrates one embodiment of a slotted inner tube to conceal a lengthwise portion of an ultrasonic blade where the slots provide fluid egress to discharge surgical matter that may accumulate in a space between the blade and the inner tube.
  • FIG. 22 illustrates one embodiment of a perforated mutilated inner tube to conceal a lengthwise portion of an ultrasonic blade where the perforations provide fluid egress to discharge surgical matter that may accumulate in a space between the blade and the inner tube.
  • FIG. 23 illustrates one embodiment of a fluid-directing ribbed and perforated inner tube to conceal a lengthwise portion of an ultrasonic blade where the fluid-directing ribs and perforations provide fluid egress to discharge surgical matter that may accumulate in a space between the blade and the inner tube.
  • FIG. 24 is one embodiment of a fluid-directing ribbed and perforated inner tube comprising converging ducts
  • FIG. 25 illustrates one embodiment of a contoured seal to seal a space between a portion of an ultrasonic blade and an outer tube, where the flexible seal having two points of contact and defining a cavity for collecting surgical matter.
  • FIG. 26 illustrates one embodiment of a hybrid system comprising a contoured seal comprising a flexible membrane that acts as a pump to force surgical matter out of a distal inner tube area.
  • FIG. 27 illustrates one embodiment of a seal to seal a space between a portion of an ultrasonic blade and the tube, the flexible seal multiple points of contact and a low interference point of contact.
  • FIG. 28 illustrates etched areas formed on an outer surface of an ultrasonic blade to prevent tissue ingress, according to one embodiment.
  • FIG. 29 illustrates one embodiment of an end effector assembly comprising a medical forceps having a movable jaw member and a slidable ultrasonic blade partially retracted within a tube.
  • FIG. 30 illustrates one embodiment of an inner tube having machined windows formed therein to allow drainage between the inner and outer tubes.
  • FIG. 31 illustrates one embodiment of an end effector assembly comprising a medical forceps having a movable jaw member and an ultrasonic blade where the movable jaw member includes a pad with a tissue stop to deflect surgical matter where the tissue stop portion is contoured to the movable jaw member to cover an opening of the inner tube.
  • FIG. 32 illustrates one embodiment of a positive pressure fluid flow system to apply a positive pressure fluid flow between an outer tube and an ultrasonic blade at distal end thereof employing a pump or pump outlet located distal of a distal node.
  • FIG. 33 illustrates a portion of an end effector assembly comprising an ultrasonic blade including one embodiment of a flexible seal to seal the ultrasonic blade to a tube at a distal node, according to one embodiment.
  • FIG. 34 illustrates one embodiment of an end effector assembly comprising a medical forceps having a movable jaw member and an ultrasonic blade including a flexible seal positioned distal to an edge of the movable jaw member and anchored to a tube to prevent tissue pinching.
  • FIG. 35 illustrates one embodiment of a seal positioned within an inner tube and an ultrasonic blade positioned within the inner tube.
  • FIG. 36 illustrates one embodiment of a seal mechanism for an ultrasonic blade having a tapered inner tube portion distal to the last seal where the inner tube necks down to a smaller diameter at a distal end defining a reduce entry space for surgical matter.
  • FIG. 37 illustrates one embodiment of an overmolded flexible seal located over an inner tube that an ultrasonic blade punctures through during assembly.
  • FIG. 38 illustrates one embodiment of an end effector assembly comprising a medical forceps having a movable jaw member and an ultrasonic blade where the movable jaw member comprises a deflector pad to deflect surgical matter.
  • FIG. 39 is a front view of the deflector pad shown in FIG. 38 , according to one embodiment.
  • FIG. 40 illustrates one embodiment of a seal system for an ultrasonic blade.
  • FIG. 41 illustrates one embodiment of a contoured inner tube or component that attaches to an inner tube to provide a circuitous path for fluid.
  • FIG. 42 illustrates one embodiment of a molded component with compliant arms that serve to block the distal opening of a tube assembly and is attached via the arms going around a pin in the blade at a node location.
  • FIG. 43 illustrates one embodiment of an overmolded silicone bumper that adheres to the inside of an inner tube.
  • FIGS. 44-47 illustrate one embodiment of how a pair of mandrels can be inserted into an inner tube from both ends to form the overmolded bumper in FIG. 43 .
  • FIG. 48 illustrates one embodiment of an overmolded material affixed to an inner tube that does not seal to the ultrasonic blade.
  • FIG. 49 illustrates one embodiment of a positive fluid pressure system in which air is pumped down the length of the inner tube.
  • FIG. 50 illustrates one embodiment of an inner tube having a silicone seal attached thereto at minimal interference with ultrasonic blade.
  • FIG. 51 illustrates one embodiment of seal system for sealing an ultrasonic blade to a tube.
  • FIG. 52 illustrates one embodiment of a flexible seal located over an inner tube that an ultrasonic blade punctures through during assembly.
  • FIG. 53 illustrates one embodiment of an overmolded flexible seal attached to an ultrasonic blade distal of a distal seal.
  • FIG. 54 illustrates one embodiment of an overmolded flexible seal attached to an ultrasonic blade distal of a distal seal.
  • FIG. 55 illustrates one embodiment of a sealing system comprising multiple toroidal seals to seal an ultrasonic blade distal of a distal seal.
  • FIG. 56 illustrates one embodiment of an end effector assembly comprising a medical forceps having a movable jaw member in an open position, an ultrasonic blade, and a slidably movable inner tube including a wiping seal.
  • FIG. 57 illustrates one embodiment of the end effector assembly shown in FIG. 56 comprising a medical forceps having a movable jaw member in a closed position.
  • FIG. 58 illustrates one embodiment of an end effector assembly comprising a medical forceps having a movable jaw member in an open position shown in phantom line and a closed position shown in solid line, an ultrasonic blade, a slidably movable outer tube, and a fixed inner tube with a flexible seal located over the blade.
  • FIG. 59 illustrates one embodiment of an end effector assembly comprising a medical forceps having a movable jaw member in an open position, an ultrasonic blade, a slidably movable outer tube, and a fixed inner tube with a flexible seal overmolded on the inner tube.
  • FIG. 60 is a perspective view of one embodiment of an end effector assembly comprising a medical forceps having a movable jaw member and an ultrasonic blade where the movable jaw member is rotatably attached to a distal node.
  • FIG. 61 is a side view of one embodiment of the end effector assembly shown in FIG. 60 with the movable jaw member in an open position and shown transparent to show outer tube cam slots to rotate the movable jaw member upon relative motion between the blade and the outer tube.
  • FIG. 62 illustrates one embodiment of the end effector assembly shown in FIG. 60 showing the movable jaw member pivot.
  • FIG. 63 is a side view of one embodiment of an end effector assembly comprising a medical forceps having a movable jaw member in a closed position and an ultrasonic blade, the end effector assembly comprising a linkage to open and close the movable jaw member by employing relative motion between the outer tube and the blade.
  • FIG. 64 is a side view of the end effector assembly shown in FIG. 63 with the movable jaw member in an open position, according to one embodiment.
  • FIG. 65 is a bottom view of the end effector assembly shown in FIG. 63 with the movable jaw member in an open position, according to one embodiment.
  • FIG. 66 is a perspective view of the end effector assembly shown in FIG. 63 with the movable jaw member in an open position, according to one embodiment.
  • FIG. 67 is a perspective view of the end effector assembly shown in FIG. 63 with the movable jaw member in an open position, according to one embodiment.
  • FIG. 68 is a perspective view of one embodiment of an end effector assembly comprising a medical forceps having a movable jaw member and an ultrasonic blade with the movable jaw member shown in an open position, where an outer tube is translated with respect to the blade to open and close the movable jaw member.
  • FIG. 69 is a perspective view of the inner tube with the outer tube removed, where the inner tube is operatively coupled to the end effector assembly shown in FIG. 68 , according to one embodiment.
  • FIG. 70 is a perspective view of a notch portion of the inner tube shown in FIG. 69 , according to one embodiment.
  • FIG. 71 illustrates one embodiment of an end effector assembly comprising a medical forceps having a movable jaw member in a closed position, an ultrasonic blade, and a shaft assembly configured to counteract deflection of the blade.
  • FIG. 72 illustrates one embodiment of an ultrasonic transducer having a modified flange incorporating external threads to allow transducer rotation.
  • FIG. 73 is a sectional view of one embodiment of an ultrasonic transducer rotation system comprising a shroud and a gate fitted into one-half of the shroud.
  • FIGS. 74A-74C illustrate the dynamics of the gate interaction with a rotation knob, according to one embodiment.
  • FIG. 74A illustrates the gate in a left-biased position such that the rotation knob can be rotated approximately 690 degrees clockwise until a contoured extrusion element on the rotation knob makes contact with the right wing of the gate so that the left wing of the gate prevents motion by reacting statically against the shroud, according to one embodiment.
  • FIG. 74B illustrates the rotation knob rotated back 360Ā° until it knocks the right wing of the gate into a right-biased position, according to one embodiment.
  • FIG. 74C illustrates the rotation knob after it knocks the right wing of the gate into a right-biased position, according to one embodiment.
  • FIG. 75 is a sectional view of one embodiment of an ultrasonic transducer rotation system comprising a shroud and a gate fitted into one-half of the shroud, where the rotation system comprises a tactile feedback element.
  • FIGS. 76A-76C illustrate the dynamics of the gate interaction with a rotation knob, where the rotation knob comprises a tactile feedback element, according to one embodiment.
  • FIG. 76A illustrates the gate in a left-biased position such that the rotation knob comprising a tactile feedback element can be rotated approximately 690 degrees clockwise until a contoured extrusion element on the rotation knob makes contact with the right wing of the gate so that the left wing of the gate prevents motion by reacting statically against the shroud, according to one embodiment.
  • FIG. 76B illustrates the rotation knob comprising a tactile feedback element rotated back 360Ā° until it knocks the right wing of the gate into a right-biased position, according to one embodiment.
  • FIG. 76C illustrates the rotation knob comprising a tactile feedback element after it knocks the right wing of the gate into a right-biased position, according to one embodiment.
  • FIG. 77 illustrates one embodiment of an integrated RF/ultrasonic instrument electrically connected such that the ultrasonic blade/horn is electrically connected to a positive lead of an ultrasonic generator coupled to the instrument to provide RF spot coagulation.
  • the clamp arm and tube are connected to the return path.
  • FIG. 78 illustrates one embodiment of an integrated RF/ultrasonic instrument comprising four-lead jack connector mated with a slidable female mating plug electrically connected to a generator.
  • FIG. 79 is a detail view of one embodiment of a four-lead jack connector mated with a slidable female mating plug coupled to an ultrasonic transducer where position 1 provides an ultrasonic signal to the transducer, and where position 2 provides an electrosurgical signal to the device.
  • FIGS. 80-83 illustrate various embodiments of ultrasonic blades coated with an electrically insulative material to provide thermal insulation at the tissue contact area to minimize adhesion of tissue to the blade.
  • FIGS. 84-93 illustrate various embodiments of ultrasonic blades partially coated with an electrically insulative material to provide thermal insulation at the tissue contact area to minimize adhesion of tissue to the blade, where the lighter shade regions of the blade represent the coated portions and the darker shaded regions of the blade represent exposed surfaces that enable RF current to flow from the exposed region of the blade, through the tissue, and the movable jaw member. It is conceivable that this feature may be employed on the blade, the clamp arm, or both.
  • FIGS. 94-95 illustrate embodiments of two ultrasonic blades with non-symmetrical exposed surface, where the blades are coated with an electrically insulative material to provide thermal insulation at the tissue contact area to minimize adhesion of tissue to the blade, where the lighter shade regions of the blade represent the coated portions and the darker shaded regions of the blade represent exposed surfaces that enable RF current to flow from the exposed region of the blade, through the tissue, and the movable jaw member. It is conceivable that this feature may be employed on the blade, the clamp arm, or both.
  • FIG. 96 is a perspective view of one embodiment of an ultrasonic end effector comprising a metal heat shield.
  • FIG. 97 is a perspective view of another embodiment of an ultrasonic end effector comprising a retractable metal heat shield.
  • FIG. 98 is a side view of another embodiment of an ultrasonic end effector comprising a heat shield shown in cross-section.
  • FIG. 99 is a front view of the ultrasonic end effector shown in FIG. 98 , according to one embodiment.
  • FIG. 100 illustrates one embodiment of a clamp arm comprising a movable jaw member shown in a closed position and a dual purpose rotatable heat shield located below the ultrasonic blade.
  • FIG. 101 illustrates one embodiment of a movable jaw member shown in an open position and a dual purpose rotatable heat shield rotated such that it is interposed between the movable jaw member and the blade.
  • FIG. 102 illustrates an end view of one embodiment of a dual purpose rotatable heat shield rotated in a first position.
  • FIG. 103 illustrates an end view of one embodiment of the dual purpose rotatable heat shield rotated in a second position.
  • FIG. 104 is a top profile view of one embodiment of a heat shield showing a tapered portion of the shield.
  • FIG. 105 illustrates a conventional rongeur surgical instrument.
  • FIG. 106 illustrates one embodiment of an ultrasonic energy driven rongeur device.
  • FIG. 107 illustrates one embodiment of a surgical system including a surgical instrument and an ultrasonic generator.
  • FIG. 108 illustrates one embodiment of the surgical instrument shown in FIG. 107 .
  • FIG. 109 illustrates one embodiment of an ultrasonic end effector.
  • FIG. 110 illustrates another embodiment of an ultrasonic end effector.
  • FIG. 111 illustrates an exploded view of one embodiment of the surgical instrument shown in FIG. 107 .
  • FIGS. 112A and 112B illustrate one embodiment of an unlimited rotation connection for an integrated transducer
  • FIGS. 113A-113C illustrate one embodiment of an unlimited rotation connection for an integrated transducer.
  • FIGS. 114A and 114B illustrate one embodiment of an integrated RF/ultrasonic surgical end effector.
  • FIGS. 115A-115I illustrate various electrode arrangements for the integrated RF/ultrasonic surgical end effector of FIGS. 114A and 114B .
  • FIG. 116A illustrates one embodiment of an air cooled surgical instrument.
  • FIG. 116B illustrates one embodiment of a vortex tube.
  • FIG. 117 illustrates one embodiment of an integrated RF/ultrasonic surgical instrument comprising a double pole double throw switch.
  • FIG. 118 illustrates one embodiment of a double pole double throw switch.
  • FIGS. 119A-119E illustrate various embodiments of combination RF/ultrasonic end effectors.
  • FIGS. 120A-120C illustrate various embodiments of bipolar combination RF/ultrasonic end effectors.
  • FIGS. 121A-121C illustrate various embodiments of monopolar combination RF/ultrasonic end effectors.
  • the present disclosure is related to various embodiments of ultrasonic blades comprising various grasping features.
  • Conventional ultrasonic blades lack grasping features.
  • Such grasping features may be desirable on a gripping surface of an ultrasonic blade to provide additional gripping and to prevent tissue milking during grasping and treatment, which in some cases may improve hemostasis.
  • Tissue milking occurs when a tissue section slides, or milks, out of the jaws of a surgical device during treatment.
  • the present disclosure provides various blade modification features to prevent tissue milking, as well as provide better grasping forces.
  • the present disclosure is related to various embodiments of devices configured to prevent ingress of surgical matter, e.g., fluid and tissue, in the space between an ultrasonic blade and an inner or outer tube distal of the distal seal.
  • surgical matter e.g., fluid and tissue
  • an ultrasonic blade and an inner or outer tube distal of the distal seal Two main categories of embodiments are described.
  • a pressure or energy source attached to the blade-tube subassembly prevents fluid or tissue ingress into the space between the blade and the inner tube.
  • a flexible membrane(s) attached to either the blade or the inner tube prevents fluid or tissue ingress.
  • the present disclosure also is related to various embodiments of alternate closure mechanisms for ultrasonic devices.
  • Present ultrasonic devices utilize a tube-in-tube (TnT) closure mechanism to enable closure of the clamp arm, referred to herein as a movable jaw member, against an active length of the ultrasonic blade.
  • TnT tube-in-tube
  • the present embodiments of alternate closure mechanisms for ultrasonic devices may yield several advantages. For example, there may be differences among the drag force of actuating the inner tube against the outer tube resulting in variation in device clamp force. Additionally, the pivot location of the clamp arm on the outer tube causes a sharp angular closure, and results in a non-uniform closure profile. Furthermore, present device mechanism may be sensitive to variation in components, as the stackup links the inner and outer tube at the location of the insulated pin, which currently resides near the proximal end of the tube assembly.
  • the present disclosure also is related to various embodiments of shaft assembly/transducer rotation limiters to limit the rotation of the shaft and ultrasonic transducer.
  • the present disclosure also is related to various embodiments of shaft/ultrasonic transducer rotation systems to provide unlimited continuous rotation of an ultrasonic device.
  • tactile feedback may be provided to the user before a hard stop is hit.
  • the present disclosure also is related to various embodiments of an integrated RF/ultrasonic instrument electrically connected to provide RF spot coagulation energy for pre- or post-ultrasonic treatment of tissues with an ultrasonic/RF generator.
  • the integrated ultrasonic instrument enables the touch up of diffuse bleeding (capillary bleeding, cut site oozing) or pre-treatment of tissue without the need for coupling pressure and improves the coupling pressure needed for ultrasonic instruments to couple the blade to tissue such that friction-based tissue effect is effective.
  • the integrated ultrasonic instrument reduces (1) difficulty in applying enough pressure to generate haemostatic effect in loosely supported (i.e., un-clamped) tissue or (2) coupling pressure that generates too much tissue disruption that, in many cases, makes the diffuse bleeding worse.
  • a four-lead jack connector is mated with a slidable female mating plug to electrically isolate a secondary RF generator from the ultrasonic transducer when switching between RF energy and ultrasonic energy.
  • the present disclosure is also directed to ultrasonic blades comprising heat shields.
  • the heat shields may be fixed, translatable or rotatable.
  • the heat shield also may be used to conduct RF energy to target tissue.
  • the present disclosure also is related to coated ultrasonic/RF blades.
  • Ultrasonic blades are coated with an electrically insulative material to provide thermal insulation at the tissue contact area to minimize adhesion of tissue to the blade.
  • Conventional ultrasonic devices utilize one mode of treatment, which limits versatility.
  • conventional ultrasonic devices may be used for blood vessel sealing and transecting tissue.
  • Bipolar or monopolar RF may offer added benefits such as a method for spot coagulation and pretreatment of tissue.
  • Incorporating ultrasonic and RF may provide versatility and increase effectiveness.
  • conventional ultrasonic devices utilize coatings to provide reduced friction and thermal insulation at the distal end of the blade. These coatings are electrically insulative, and therefore limit current flow thus decreasing RF effectiveness.
  • current density may influence effectiveness.
  • a masking or selective coating removal process may be required. Creating an exposed area on the surface of the blade may provide a suitable path for current flow. It is conceivable that the same principles may be applied to the clamping member as well.
  • FIG. 107 is a right side view of one embodiment of an ultrasonic surgical instrument 10 .
  • the ultrasonic surgical instrument 10 may be employed in various surgical procedures including laparoscopic, endoscopic or traditional open surgical procedures.
  • the ultrasonic surgical instrument 10 comprises a handle assembly 12 , an elongated shaft assembly 14 , and an ultrasonic transducer 16 .
  • the handle assembly 12 comprises a trigger assembly 24 , a distal rotation assembly 13 , and an activation switch assembly 28 .
  • the elongated shaft assembly 14 comprises an end effector assembly 26 , which comprises elements to dissect tissue or mutually grasp, cut, and coagulate vessels and/or tissue, and actuating elements to actuate the end effector assembly 26 .
  • the handle assembly 12 is adapted to receive the ultrasonic transducer 16 at the proximal end.
  • the ultrasonic transducer 16 is mechanically engaged to the elongated shaft assembly 14 and portions of the end effector assembly 26 .
  • the ultrasonic transducer 16 is electrically coupled to a generator 20 via a cable 22 .
  • the ultrasonic surgical instrument 10 may be employed in more traditional open surgical procedures and in other embodiments, may be configured for use in laparoscopic or endoscopic procedures.
  • the ultrasonic surgical instrument 10 is described in terms of an laparoscopic instrument; however, it is contemplated that an open and/or endoscopic version of the ultrasonic surgical instrument 10 also may include the same or similar operating components and features as described herein.
  • the generator 20 comprises several functional elements, such as modules and/or blocks. Different functional elements or modules may be configured for driving different kinds of surgical devices.
  • an ultrasonic generator module 21 may drive an ultrasonic device, such as the ultrasonic surgical instrument 10 .
  • the generator 20 also comprises an electrosurgery/RF generator module 23 for driving an electrosurgical device (or an electrosurgical embodiment of the ultrasonic surgical instrument 10 ).
  • the generator 20 may be formed integrally within the handle assembly 12 . In such implementations, a battery would be co-located within the handle assembly 12 to act as the energy source.
  • the electrosurgery/RF generator module 23 may be configured to generate a therapeutic and/or a sub-therapeutic energy level.
  • the generator 20 includes a control system 25 integral with the generator 20 , and a foot switch 29 connected to the generator via a cable 27 .
  • the generator 20 may also comprise a triggering mechanism for activating a surgical instrument, such as the instrument 10 .
  • the triggering mechanism may include a power switch (not shown) as well as a foot switch 29 .
  • the generator 20 may provide energy to drive the acoustic assembly of the surgical instrument 10 and to drive the end effector 18 at a predetermined excursion level or provide the therapeutic/sub-therapeutic electromagnetic/RF energy.
  • the generator 20 drives or excites the acoustic assembly at any suitable resonant frequency of the acoustic assembly and/or drives the therapeutic/sub-therapeutic electromagnetic/RF energy.
  • the electrosurgical/RF generator module 23 may be implemented as an electrosurgery unit (ESU) capable of supplying power sufficient to perform bipolar electrosurgery using RF energy.
  • the ESU can be a bipolar ERBE ICC 350 sold by ERBE USA, Inc. of Marietta, Ga.
  • a surgical instrument having an active electrode and a return electrode can be utilized, wherein the active electrode and the return electrode can be positioned against, or adjacent to, the tissue to be treated such that current can flow from the active electrode to the return electrode through the tissue.
  • the electrosurgical/RF module 23 generator may be configured for therapeutic purposes by applying electrical energy to the tissue T sufficient for treating the tissue (e.g., cauterization).
  • the electrosurgical/RF generator module 23 may be configured to deliver a sub-therapeutic RF signal to implement a tissue impedance measurement module.
  • the electrosurgical/RF generator module 23 comprises a bipolar RF generator as described in more detail below.
  • the electrosurgical/RF generator module 12 may be configured to monitor electrical impedance Z, of tissue T and to control the characteristics of time and power level based on the tissue T by way of a return electrode on provided on a clamp member of the end effector assembly 26 . Accordingly, the electrosurgical/RF generator module 23 may be configured for sub-therapeutic purposes for measuring the impedance or other electrical characteristics of the tissue T.
  • a suitable ultrasonic generator module 21 may be configured to functionally operate in a manner similar to the GEN300 sold by Ethicon Endo-Surgery, Inc. of Cincinnati, Ohio as is disclosed in one or more of the following U.S. patents, all of which are incorporated by reference herein: U.S. Pat. No. 6,480,796 (Method for Improving the Start Up of an Ultrasonic System Under Zero Load Conditions); U.S. Pat. No. 6,537,291 (Method for Detecting Blade Breakage Using Rate and/or Impedance Information); U.S. Pat. No. 6,662,127 (Method for Detecting Presence of a Blade in an Ultrasonic System); U.S. Pat. No.
  • the generator 20 may be configured to operate in several modes. In one mode, the generator 20 may be configured such that the ultrasonic generator module 21 and the electrosurgical/RF generator module 23 may be operated independently. Alternatively, the ultrasonic generator module 21 may be configured to selectively apply either ultrasonic energy or either therapeutic sub-therapeutic RF energy to the end effector.
  • the ultrasonic generator module 21 may be activated to apply ultrasonic energy to the end effector assembly 26 and subsequently, either therapeutic sub-therapeutic RF energy may be applied to the end effector assembly 26 by the electrosurgical/RF generator module 23 .
  • the subtherapeutic electrosurgical/RF energy may be applied to tissue clamped between clamp elements of the end effector assembly 26 to measure tissue impedance to control the activation, or modify the activation, of the ultrasonic generator module 21 .
  • Tissue impedance feedback from the application of the subtherapeutic energy also may be employed to activate a therapeutic level of the electrosurgical/RF generator module 23 to seal the tissue (e.g., vessel) clamped between claim elements of the end effector assembly 26 .
  • the ultrasonic generator module 21 and the electrosurgical/RF generator module 23 may be activated simultaneously.
  • the ultrasonic generator module 21 is simultaneously activated with a sub-therapeutic RF energy level to measure tissue impedance simultaneously while the ultrasonic blade of the end effector assembly 26 cuts and coagulates the tissue (or vessel) clamped between the clamp elements of the end effector assembly 26 .
  • Such feedback may be employed, for example, to modify the drive output of the ultrasonic generator module 21 .
  • the ultrasonic generator module 21 may be driven simultaneously with electrosurgical/RF generator module 23 such that the ultrasonic blade portion of the end effector assembly 26 is employed for cutting the damaged tissue while the electrosurgical/RF energy is applied to electrode portions of the end effector clamp assembly 26 for sealing the tissue (or vessel).
  • the ultrasonic and the electrosurgical/RF energy can be employed sequentially with a single activation to achieve a desired tissue effect.
  • electrical energy is continuously applied by the generator 20 to a transducer stack or assembly of the acoustic assembly.
  • electrical energy is intermittently applied (e.g., pulsed) by the generator 20 .
  • a phase-locked loop in the control system of the generator 20 may monitor feedback from the acoustic assembly. The phase lock loop adjusts the frequency of the electrical energy sent by the generator 20 to match the resonant frequency of the selected longitudinal mode of vibration of the acoustic assembly.
  • a second feedback loop in the control system 25 maintains the electrical current supplied to the acoustic assembly at a pre-selected constant level in order to achieve substantially constant excursion at the end effector 18 of the acoustic assembly.
  • a third feedback loop in the control system 25 monitors impedance between electrodes located in the end effector assembly 26 .
  • FIGS. 107-111 show a manually operated ultrasonic surgical instrument, it will be appreciated that ultrasonic surgical instruments may also be used in robotic applications, for example, as described herein, as well as combinations of manual and robotic applications.
  • the electrical signal supplied to the acoustic assembly may cause the distal end of the end effector 18 to vibrate longitudinally in the range of, for example, approximately 20 kHz to 250 kHz.
  • the blade 22 may vibrate in the range of about 40 kHz to 56 kHz, for example, at about 50.0 kHz. In other embodiments, the blade 22 may vibrate at other frequencies including, for example, about 31 kHz or about 80 kHz.
  • the excursion of the vibrations at the blade can be controlled by, for example, controlling the amplitude of the electrical signal applied to the transducer assembly of the acoustic assembly by the generator 20 .
  • the triggering mechanism of the generator 20 allows a user to activate the generator 20 so that electrical energy may be continuously or intermittently supplied to the acoustic assembly.
  • the generator 20 also has a power line for insertion in an electro-surgical unit or conventional electrical outlet. It is contemplated that the generator 20 can also be powered by a direct current (DC) source, such as a battery.
  • the generator 20 can comprise any suitable generator, such as Model No. GEN04, and/or Model No. GE11 available from Ethicon Endo-Surgery, Inc.
  • FIG. 108 is a left perspective view of one example embodiment of the ultrasonic surgical instrument 10 showing the handle assembly 12 , the distal rotation assembly 13 , the elongated shaft assembly 14 , and the end effector assembly 26 .
  • the elongated shaft assembly 14 comprises a distal end 52 dimensioned to mechanically engage the end effector assembly 26 and a proximal end 50 that mechanically engages the handle assembly 12 and the distal rotation assembly 13 .
  • the proximal end 50 of the elongated shaft assembly 14 is received within the handle assembly 12 and the distal rotation assembly 13 . More details relating to the connections between the elongated shaft assembly 14 , the handle assembly 12 , and the distal rotation assembly 13 are provided in the description of FIG. 98 .
  • the trigger assembly 24 comprises a trigger 32 that operates in conjunction with a fixed handle 34 .
  • the fixed handle 34 and the trigger 32 are ergonomically formed and adapted to interface comfortably with the user.
  • the fixed handle 34 is integrally associated with the handle assembly 12 .
  • the trigger 32 is pivotally movable relative to the fixed handle 34 as explained in more detail below with respect to the operation of the ultrasonic surgical instrument 10 .
  • the trigger 32 is pivotally movable in direction 33 A toward the fixed handle 34 when the user applies a squeezing force against the trigger 32 .
  • a spring element 98 FIG. 111 ) causes the trigger 32 to pivotally move in direction 33 B when the user releases the squeezing force against the trigger 32 .
  • the trigger 32 comprises an elongated trigger hook 36 , which defines an aperture 38 between the elongated trigger hook 36 and the trigger 32 .
  • the aperture 38 is suitably sized to receive one or multiple fingers of the user therethrough.
  • the trigger 32 also may comprise a resilient portion 32 a molded over the trigger 32 substrate.
  • the overmolded resilient portion 32 a is formed to provide a more comfortable contact surface for control of the trigger 32 in outward direction 33 B.
  • the overmolded resilient portion 32 a may be provided over a portion of the elongated trigger hook 36 .
  • the proximal surface of the elongated trigger hook 32 remains uncoated or coated with a non-resilient substrate to enable the user to easily slide their fingers in and out of the aperture 38 .
  • the geometry of the trigger forms a fully closed loop which defines an aperture suitably sized to receive one or multiple fingers of the user therethrough.
  • the fully closed loop trigger also may comprise a resilient portion molded over the trigger substrate.
  • the fixed handle 34 comprises a proximal contact surface 40 and a grip anchor or saddle surface 42 .
  • the saddle surface 42 rests on the web where the thumb and the index finger are joined on the hand.
  • the proximal contact surface 40 has a pistol grip contour that receives the palm of the hand in a normal pistol grip with no rings or apertures.
  • the profile curve of the proximal contact surface 40 may be contoured to accommodate or receive the palm of the hand.
  • a stabilization tail 44 is located towards a more proximal portion of the handle assembly 12 .
  • the stabilization tail 44 may be in contact with the uppermost web portion of the hand located between the thumb and the index finger to stabilize the handle assembly 12 and make the handle assembly 12 more controllable.
  • the switch assembly 28 may comprise a toggle switch 30 .
  • the toggle switch 30 may be implemented as a single component with a central pivot 304 located within inside the handle assembly 12 to eliminate the possibility of simultaneous activation.
  • the toggle switch 30 comprises a first projecting knob 30 a and a second projecting knob 30 b to set the power setting of the ultrasonic transducer 16 between a minimum power level (e.g., MIN) and a maximum power level (e.g., MAX).
  • the rocker switch may pivot between a standard setting and a special setting. The special setting provides one or more special programs to be implemented by the device.
  • the toggle switch 30 rotates about the central pivot as the first projecting knob 30 a and the second projecting knob 30 b are actuated.
  • the one or more projecting knobs 30 a , 30 b are coupled to one or more arms that move through a small arc and cause electrical contacts to close or open an electric circuit to electrically energize or de-energize the ultrasonic transducer 16 in accordance with the activation of the first or second projecting knobs 30 a , 30 b .
  • the toggle switch 30 is coupled to the generator 20 to control the activation of the ultrasonic transducer 16 .
  • the toggle switch 30 comprises one or more electrical power setting switches to activate the ultrasonic transducer 16 to set one or more power settings for the ultrasonic transducer 16 .
  • the forces required to activate the toggle switch 30 are directed substantially toward the saddle point 42 , thus avoiding any tendency of the instrument to rotate in the hand when the toggle switch 30 is activated.
  • the first and second projecting knobs 30 a , 30 b are located on the distal end of the handle assembly 12 such that they can be easily accessible by the user to activate the power with minimal, or substantially no, repositioning of the hand grip, making it suitable to maintain control and keep attention focused on the surgical site (e.g., a monitor in a laparoscopic procedure) while activating the toggle switch 30 .
  • the projecting knobs 30 a , 30 b may be configured to wrap around the side of the handle assembly 12 to some extent to be more easily accessible by variable finger lengths and to allow greater freedom of access to activation in awkward positions or for shorter fingers.
  • the first projecting knob 30 a comprises a plurality of tactile elements 30 c , e.g., textured projections or ā€œbumpsā€ in the illustrated embodiment, to allow the user to differentiate the first projecting knob 30 a from the second projecting knob 30 b .
  • tactile elements 30 c e.g., textured projections or ā€œbumpsā€ in the illustrated embodiment, to allow the user to differentiate the first projecting knob 30 a from the second projecting knob 30 b .
  • the toggle switch 30 may be operated by the hand of the user. The user may easily access the first and second projecting knobs 30 a , 30 b at any point while also avoiding inadvertent or unintentional activation at any time.
  • the toggle switch 30 may readily operated with a finger to control the power to the ultrasonic assembly 16 and/or to the ultrasonic assembly 16 .
  • the index finger may be employed to activate the first contact portion 30 a to turn on the ultrasonic assembly 16 to a maximum (MAX) power level.
  • the index finger may be employed to activate the second contact portion 30 b to turn on the ultrasonic assembly 16 to a minimum (MIN) power level.
  • the rocker switch may pivot the instrument 10 between a standard setting and a special setting.
  • the special setting provides one or more special programs to be implemented by the instrument 10 .
  • the toggle switch 30 may be operated without the user having to look at the first or second projecting knob 30 a , 30 b .
  • the first projecting knob 30 a or the second projecting knob 30 b may comprise a texture or projections to tactilely differentiate between the first and second projecting knobs 30 a , 30 b without looking.
  • the trigger 32 and/or the toggle switch 30 may be employed to actuate the electrosurgical/RF generator module 23 individually or in combination with activation of the ultrasonic generator module 21 .
  • the distal rotation assembly 13 is rotatable without limitation in either direction about a longitudinal axis ā€œT.ā€
  • the distal rotation assembly 13 is mechanically engaged to the elongated shaft assembly 14 .
  • the distal rotation assembly 13 is located on a distal end of the handle assembly 12 .
  • the distal rotation assembly 13 comprises a cylindrical hub 46 and a rotation knob 48 formed over the hub 46 .
  • the hub 46 mechanically engages the elongated shaft assembly 14 .
  • the rotation knob 48 may comprise fluted polymeric features and may be engaged by a finger (e.g., an index finger) to rotate the elongated shaft assembly 14 .
  • the hub 46 may comprise a material molded over the primary structure to form the rotation knob 48 .
  • the rotation knob 48 may be overmolded over the hub 46 .
  • the hub 46 comprises an end cap portion 46 a that is exposed at the distal end.
  • the end cap portion 46 a of the hub 46 may contact the surface of a trocar during laparoscopic procedures.
  • the hub 46 may be formed of a hard durable plastic such as polycarbonate to alleviate any friction that may occur between the end cap portion 46 a and the trocar.
  • the rotation knob 48 may comprise ā€œscallopsā€ or flutes formed of raised ribs 48 a and concave portions 48 b located between the ribs 48 a to provide a more precise rotational grip.
  • the rotation knob 48 may comprise a plurality of flutes (e.g., three or more flutes). In other embodiments, any suitable number of flutes may be employed.
  • the rotation knob 48 may be formed of a softer polymeric material overmolded onto the hard plastic material.
  • the rotation knob 48 may be formed of pliable, resilient, flexible polymeric materials including VersaflexĀ® TPE alloys made by GLS Corporation, for example. This softer overmolded material may provide a greater grip and more precise control of the movement of the rotation knob 48 . It will be appreciated that any materials that provide adequate resistance to sterilization, are biocompatible, and provide adequate frictional resistance to surgical gloves may be employed to form the rotation knob 48 .
  • the handle assembly 12 is formed from two (2) housing portions or shrouds comprising a first portion 12 a and a second portion 12 b . From the perspective of a user viewing the handle assembly 12 from the distal end towards the proximal end, the first portion 12 a is considered the right portion and the second portion 12 b is considered the left portion.
  • Each of the first and second portions 12 a , 12 b includes a plurality of interfaces 69 ( FIG. 111 ) dimensioned to mechanically align and engage each another to form the handle assembly 12 and enclosing the internal working components thereof.
  • the fixed handle 34 which is integrally associated with the handle assembly 12 , takes shape upon the assembly of the first and second portions 12 a and 12 b of the handle assembly 12 .
  • a plurality of additional interfaces may be disposed at various points around the periphery of the first and second portions 12 a and 12 b of the handle assembly 12 for ultrasonic welding purposes, e.g., energy direction/deflection points.
  • the first and second portions 12 a and 12 b (as well as the other components described below) may be assembled together in any fashion known in the art. For example, alignment pins, snap-like interfaces, tongue and groove interfaces, locking tabs, adhesive ports, may all be utilized either alone or in combination for assembly purposes.
  • the elongated shaft assembly 14 comprises a proximal end 50 adapted to mechanically engage the handle assembly 12 and the distal rotation assembly 13 ; and a distal end 52 adapted to mechanically engage the end effector assembly 26 .
  • the elongated shaft assembly 14 comprises an outer tubular sheath 56 and a reciprocating tubular actuating member 58 located within the outer tubular sheath 56 .
  • the proximal end of the tubular reciprocating tubular actuating member 58 is mechanically engaged to the trigger 32 of the handle assembly 12 to move in either direction 60 A or 60 B in response to the actuation and/or release of the trigger 32 .
  • the pivotably moveable trigger 32 may generate reciprocating motion along the longitudinal axis ā€œT.ā€ Such motion may be used, for example, to actuate the jaws or clamping mechanism of the end effector assembly 26 .
  • a series of linkages translate the pivotal rotation of the trigger 32 to axial movement of a yoke coupled to an actuation mechanism, which controls the opening and closing of the jaws of the clamping mechanism of the end effector assembly 26 .
  • the distal end of the tubular reciprocating tubular actuating member 58 is mechanically engaged to the end effector assembly 26 .
  • the distal end of the tubular reciprocating tubular actuating member 58 is mechanically engaged to a clamp arm assembly 64 , which is pivotable about a pivot point 70 , to open and close the clamp arm assembly 64 in response to the actuation and/or release of the trigger 32 .
  • the clamp arm assembly 64 is movable in direction 62 A from an open position to a closed position about a pivot point 70 when the trigger 32 is squeezed in direction 33 A.
  • the clamp arm assembly 64 is movable in direction 62 B from a closed position to an open position about the pivot point 70 when the trigger 32 is released or outwardly contacted in direction 33 B.
  • the end effector assembly 26 is attached at the distal end 52 of the elongated shaft assembly 14 and includes a clamp arm assembly 64 and a blade 66 .
  • the jaws of the clamping mechanism of the end effector assembly 26 are formed by clamp arm assembly 64 and the blade 66 .
  • the blade 66 is ultrasonically actuatable and is acoustically coupled to the ultrasonic transducer 16 .
  • the trigger 32 on the handle assembly 12 is ultimately connected to a drive assembly, which together, mechanically cooperate to effect movement of the clamp arm assembly 64 .
  • Squeezing the trigger 32 in direction 33 A moves the clamp arm assembly 64 in direction 62 A from an open position, wherein the clamp arm assembly 64 and the blade 66 are disposed in a spaced relation relative to one another, to a clamped or closed position, wherein the clamp arm assembly 64 and the blade 66 cooperate to grasp tissue therebetween.
  • the clamp arm assembly 64 may comprise a clamp pad 69 to engage tissue between the blade 66 and the clamp arm 64 .
  • Releasing the trigger 32 in direction 33 B moves the clamp arm assembly 64 in direction 62 B from a closed relationship, to an open position, wherein the clamp arm assembly 64 and the blade 66 are disposed in a spaced relation relative to one another.
  • the proximal portion of the handle assembly 12 comprises a proximal opening 68 to receive the distal end of the ultrasonic assembly 16 .
  • the ultrasonic assembly 16 is inserted in the proximal opening 68 and is mechanically engaged to the elongated shaft assembly 14 .
  • the elongated trigger hook 36 portion of the trigger 32 provides a longer trigger lever with a shorter span and rotation travel.
  • the longer lever of the elongated trigger hook 36 allows the user to employ multiple fingers within the aperture 38 to operate the elongated trigger hook 36 and cause the trigger 32 to pivot in direction 33 B to open the jaws of the end effector assembly 26 .
  • the user may insert three fingers (e.g., the middle, ring, and little fingers) in the aperture 38 . Multiple fingers allows the surgeon to exert higher input forces on the trigger 32 and the elongated trigger hook 36 to activate the end effector assembly 26 .
  • the shorter span and rotation travel creates a more comfortable grip when closing or squeezing the trigger 32 in direction 33 A or when opening the trigger 32 in the outward opening motion in direction 33 B lessening the need to extend the fingers further outward. This substantially lessens hand fatigue and strain associated with the outward opening motion of the trigger 32 in direction 33 B.
  • the outward opening motion of the trigger may be spring-assisted by spring element 98 ( FIG. 111 ) to help alleviate fatigue.
  • the opening spring force is sufficient to assist the ease of opening, but not strong enough to adversely impact the tactile feedback of tissue tension during spreading dissection.
  • either the index finger may be used to control the rotation of the elongated shaft assembly 14 to locate the jaws of the end effector assembly 26 in a suitable orientation.
  • the middle and/or the other lower fingers may be used to squeeze the trigger 32 and grasp tissue within the jaws.
  • the index finger can be used to activate the toggle switch 30 to adjust the power level of the ultrasonic transducer 16 to treat the tissue.
  • the user may release the trigger 32 by pushing outwardly in the distal direction against the elongated trigger hook 36 with the middle and/or lower fingers to open the jaws of the end effector assembly 26 .
  • This basic procedure may be performed without the user having to adjust their grip of the handle assembly 12 .
  • FIGS. 109-110 illustrate the connection of the elongated shaft assembly 14 relative to the end effector assembly 26 .
  • the end effector assembly 26 comprises a clamp arm assembly 64 and a blade 66 to form the jaws of the clamping mechanism.
  • the blade 66 may be an ultrasonically actuatable blade acoustically coupled to the ultrasonic transducer 16 .
  • the trigger 32 is mechanically connected to a drive assembly.
  • the trigger 32 and the drive assembly mechanically cooperate to move the clamp arm assembly 64 to an open position in direction 62 A wherein the clamp arm assembly 64 and the blade 66 are disposed in spaced relation relative to one another, to a clamped or closed position in direction 62 B wherein the clamp arm assembly 64 and the blade 66 cooperate to grasp tissue therebetween.
  • the clamp arm assembly 64 may comprise a clamp pad 69 to engage tissue between the blade 66 and the clamp arm 64 .
  • the distal end of the tubular reciprocating tubular actuating member 58 is mechanically engaged to the end effector assembly 26 .
  • the distal end of the tubular reciprocating tubular actuating member 58 is mechanically engaged to the clamp arm assembly 64 , which is pivotable about the pivot point 70 , to open and close the clamp arm assembly 64 in response to the actuation and/or release of the trigger 32 .
  • the clamp arm assembly 64 is movable from an open position to a closed position in direction 62 B about a pivot point 70 when the trigger 32 is squeezed in direction 33 A.
  • the clamp arm assembly 64 is movable from a closed position to an open position in direction 62 A about the pivot point 70 when the trigger 32 is released or outwardly contacted in direction 33 B.
  • the clamp arm assembly 64 may comprise electrodes electrically coupled to the electrosurgical/RF generator module 23 to receive therapeutic and/or sub-therapeutic energy, where the electrosurgical/RF energy may be applied to the electrodes either simultaneously or non-simultaneously with the ultrasonic energy being applied to the blade 66 .
  • Such energy activations may be applied in any suitable combinations to achieve a desired tissue effect in cooperation with an algorithm or other control logic.
  • FIG. 111 is an exploded view of the ultrasonic surgical instrument 10 shown in FIG. 108 .
  • the exploded view shows the internal elements of the handle assembly 12 , the handle assembly 12 , the distal rotation assembly 13 , the switch assembly 28 , and the elongated shaft assembly 14 .
  • the first and second portions 12 a , 12 b mate to form the handle assembly 12 .
  • the first and second portions 12 a , 12 b each comprises a plurality of interfaces 69 dimensioned to mechanically align and engage one another to form the handle assembly 12 and enclose the internal working components of the ultrasonic surgical instrument 10 .
  • the rotation knob 48 is mechanically engaged to the outer tubular sheath 56 so that it may be rotated in circular direction 54 up to 360Ā°.
  • the outer tubular sheath 56 is located over the reciprocating tubular actuating member 58 , which is mechanically engaged to and retained within the handle assembly 12 via a plurality of coupling elements 72 .
  • the coupling elements 72 may comprise an O-ring 72 a , a tube collar cap 72 b , a distal washer 72 c , a proximal washer 72 d , and a thread tube collar 72 e .
  • the reciprocating tubular actuating member 58 is located within a reciprocating yoke 84 , which is retained between the first and second portions 12 a , 12 b of the handle assembly 12 .
  • the yoke 84 is part of a reciprocating yoke assembly 88 .
  • a series of linkages translate the pivotal rotation of the elongated trigger hook 32 to the axial movement of the reciprocating yoke 84 , which controls the opening and closing of the jaws of the clamping mechanism of the end effector assembly 26 at the distal end of the ultrasonic surgical instrument 10 .
  • a four-link design provides mechanical advantage in a relatively short rotation span, for example.
  • an ultrasonic transmission waveguide 78 is disposed inside the reciprocating tubular actuating member 58 .
  • the distal end 52 of the ultrasonic transmission waveguide 78 is acoustically coupled (e.g., directly or indirectly mechanically coupled) to the blade 66 and the proximal end 50 of the ultrasonic transmission waveguide 78 is received within the handle assembly 12 .
  • the proximal end 50 of the ultrasonic transmission waveguide 78 is adapted to acoustically couple to the distal end of the ultrasonic transducer 16 as discussed in more detail below.
  • the ultrasonic transmission waveguide 78 is isolated from the other elements of the elongated shaft assembly 14 by a protective sheath 80 and a plurality of isolation elements 82 , such as silicone rings.
  • the outer tubular sheath 56 , the reciprocating tubular actuating member 58 , and the ultrasonic transmission waveguide 78 are mechanically engaged by a pin 74 .
  • the switch assembly 28 comprises the toggle switch 30 and electrical elements 86 a , 86 b to electrically energize the ultrasonic transducer 16 in accordance with the activation of the first or second projecting knobs 30 a , 30 b.
  • the outer tubular sheath 56 isolates the user or the patient from the ultrasonic vibrations of the ultrasonic transmission waveguide 78 .
  • the outer tubular sheath 56 generally includes a hub 76 .
  • the outer tubular sheath 56 is threaded onto the distal end of the handle assembly 12 .
  • the ultrasonic transmission waveguide 78 extends through the opening of the outer tubular sheath 56 and the isolation elements 82 isolate the ultrasonic transmission waveguide 24 from the outer tubular sheath 56 .
  • the outer tubular sheath 56 may be attached to the waveguide 78 with the pin 74 .
  • the hole to receive the pin 74 in the waveguide 78 may occur nominally at a displacement node.
  • the waveguide 78 may screw or snap into the hand piece handle assembly 12 by a stud. Flat portions on the hub 76 enable the assembly to be torqued to a required level.
  • the hub 76 portion of the outer tubular sheath 56 is preferably constructed from plastic and the tubular elongated portion of the outer tubular sheath 56 is fabricated from stainless steel.
  • the ultrasonic transmission waveguide 78 may comprise polymeric material surrounding it to isolate it from outside contact.
  • the distal end of the ultrasonic transmission waveguide 78 may be coupled to the proximal end of the blade 66 by an internal threaded connection, preferably at or near an antinode. It is contemplated that the blade 66 may be attached to the ultrasonic transmission waveguide 78 by any suitable means, such as a welded joint or the like. Although the blade 66 may be detachable from the ultrasonic transmission waveguide 78 , it is also contemplated that the single element end effector (e.g., the blade 66 ) and the ultrasonic transmission waveguide 78 may be formed as a single unitary piece.
  • the trigger 32 is coupled to a linkage mechanism to translate the rotational motion of the trigger 32 in directions 33 A and 33 B to the linear motion of the reciprocating tubular actuating member 58 in corresponding directions 60 A and 60 B.
  • the trigger 32 comprises a first set of flanges 98 with openings formed therein to receive a first yoke pin 92 a .
  • the first yoke pin 92 a is also located through a set of openings formed at the distal end of the yoke 84 .
  • the trigger 32 also comprises a second set of flanges 96 to receive a first end 92 a of a link 92 .
  • a trigger pin 90 is received in openings formed in the link 92 and the second set of flanges 96 .
  • the trigger pin 90 is received in the openings formed in the link 92 and the second set of flanges 96 and is adapted to couple to the first and second portions 12 a , 12 b of the handle assembly 12 to form a trigger pivot point for the trigger 32 .
  • a second end 92 b of the link 92 is received in a slot 384 formed in a proximal end of the yoke 84 and is retained therein by a second yoke pin 94 b .
  • FIGS. 1-11 illustrates various embodiments of ultrasonic blades comprising grasping features.
  • Such grasping features may be included on a gripping surface of an ultrasonic blade to provide additional gripping and prevent tissue milking during grasping and treatment, which in some cases may improve hemostasis.
  • Tissue milking occurs when a tissue section slides, or milks, out of the jaws of a surgical device during treatment.
  • Blade modification features discussed below can prevent tissue milking, as well as provide better grasping forces.
  • a minimum grasping force for an ultrasonic clamp arm in a medical forceps having a movable jaw member is about 2.25 lb-f when clamped on a dry chamois while the device is inactive. During activation, however, the tissue may milk out of the jaws either proximally or distally.
  • the blade 100 comprising the tooth-like grasping features 102 for an ultrasonic shears device can help prevent tissue milking as well as provide better grasping forces.
  • Grasping features may take the form of several shapes as described in connection with FIGS. 1-11 , for example.
  • the grasping features could be located only on a portion of the blade, such as, for example, the distal tip, the center of the blade, the proximal section, or any portion of the blade.
  • the grasping features may be located along the entire length or a portion of the blade.
  • the features illustrated and described with respect to FIGS. 1-11 could be located longitudinally on a portion of the blade, such as, for example, configured along a center line of the blade, the left side of the blade, the right side of the blade, or both the right and left side of the blade.
  • the grasping features may be configured along the entire width of the blade.
  • Grasping features may include, for example, teeth machined into the blade, teeth protruding from the surface of the blade, protruding blocks, protruding bumps or spikes, holes formed in the blade, or protruding elongated bumps. These and other blade grasping features are described hereinbelow in connection with FIGS. 1-11 .
  • FIG. 1 illustrates one embodiment of an ultrasonic blade 100 with tooth-like grasping features 102 formed on a grasping surface 104 of the blade 100 .
  • the tooth-like grasping features 102 are formed along lateral portions 106 , 108 of the grasping surface 104 of the blade 100 , e.g., the left side of the blade 100 and the right side of the blade 100 .
  • the tooth-like grasping features 102 may be formed along the entire active length or a portion of the blade 100 . Elements of the tooth-like grasping features 102 may be uniformly or variable spaced.
  • the tooth-like grasping features 102 could be located only on a portion of the blade 100 , such as, for example, the distal tip 110 , the center 112 of the blade 100 , the proximal section 114 , or any portion of the blade 100 . In another embodiment, the tooth-like grasping features 102 may be located along the entire length or a portion of the blade 100 . In some embodiments, the tooth-like grasping features 102 could be located longitudinally on a portion of the blade 100 , such as, for example, configured along a center line 116 of the blade 100 , the left side 108 of the blade 100 , the right side 106 of the blade 100 , or both the right and left side of the blade 100 .
  • the tooth-like grasping features 102 may be configured along the entire width of the blade 100 .
  • the tooth-like grasping features 102 may be configured to trap tissue and prevent disengagement during activation to prevent tissue milking, as well as provide better grasping forces. Accordingly, the tooth-like grasping features 102 formed on the blade 100 improve tissue grasping.
  • the embodiments, however, are not limited in this context.
  • FIG. 2 illustrates one embodiment of an ultrasonic blade 200 with tooth-like grasping features 202 formed on a grasping portion 204 of the blade 200 where the teeth are machined into the grasping portion 204 of the blade 200 .
  • the blade 200 is part of a medical forceps 206 having a movable jaw member 208 , which is commonly referred to as a clamp arm.
  • the movable jaw member 208 comprises a clamp pad 210 to engage tissue between the blade 200 and the movable jaw member 208 , e.g., clamp arm.
  • the tooth-like grasping features 202 may be formed along the entire active length or a portion of the blade 200 .
  • Elements of the tooth-like grasping features 202 may be uniformly or variable spaced. Although not shown, the tooth-like grasping features 202 may be formed across the grasping surface 204 of the blade 200 , may be formed as multiple rows along the lateral portions of the blade 200 as shown in FIG. 1 , or may be formed as a single row along the longitudinal portion of the grasping surface 204 of the blade 200 .
  • the tooth-like grasping features 202 may be configured to trap tissue and prevent disengagement during activation to prevent tissue milking, as well as provide better grasping forces. Accordingly, the tooth-like grasping features 202 formed on the blade 200 improve tissue grasping.
  • the embodiments, however, are not limited in this context.
  • FIG. 3 illustrates one embodiment of an ultrasonic blade 300 with tooth-like grasping features 302 formed on a grasping portion 304 of the blade 300 , where the teeth 302 protrude from the grasping portion 304 of the blade 300 .
  • the blade 300 is part of a medical forceps 306 having a movable jaw member 308 , which is commonly referred to as a clamp arm.
  • the movable jaw member 308 comprises a clamp pad 310 to engage tissue between the blade 300 and the movable jaw member 308 , e.g., clamp arm.
  • the tooth-like grasping features 302 may be formed along the entire active length or a portion of the blade 300 .
  • Elements of the tooth-like grasping features 302 may be uniformly or variable spaced. Although not shown, the tooth-like grasping features 302 may be formed across the grasping surface 304 of the blade 300 , may be formed as multiple rows along the lateral portions of the blade 300 as shown in FIG. 1 , or may be formed as a single row along the longitudinal portion of the grasping surface 304 of the blade 300 .
  • the tooth-like grasping features 302 may be configured to trap tissue and prevent disengagement during activation to prevent tissue milking, as well as provide better grasping forces. Accordingly, the tooth-like grasping features 302 formed on the blade 300 improve tissue grasping.
  • the embodiments, however, are not limited in this context.
  • FIG. 4 illustrates one embodiment of an ultrasonic blade 400 with protruding block-like grasping features 402 formed on a grasping 404 portion of the blade 400 .
  • FIG. 5 is a side view of the ultrasonic blade shown in FIG. 4 .
  • the block-like grasping features 402 are formed along lateral portions 406 , 408 of the grasping surface 404 of the blade 400 .
  • the block-like grasping features 402 may be formed along the entire active length or a portion of the blade 400 . Elements of the block-like grasping features 402 may be uniformly or variable spaced.
  • the block-like grasping features 402 could be located only on a portion of the blade 400 , such as, for example, the distal tip 410 , the center 412 of the blade 400 , the proximal section 414 , or any portion of the blade 400 . In another embodiment, the block-like grasping features 402 may be located along the entire length or a portion of the blade 400 . In some embodiments, the block-like grasping features 402 could be located longitudinally on a portion of the blade 400 , such as, for example, configured along a center line 416 of the blade 400 , the left side 408 of the blade 400 , the right side 406 of the blade 400 , or both the right and left side of the blade 400 .
  • the block-like grasping features 402 may be configured along the entire width of the blade 400 .
  • the block-like grasping features 402 may be configured to trap tissue and prevent disengagement during activation to prevent tissue milking, as well as provide better grasping forces. Accordingly, the block-like grasping features 402 formed on the blade 400 improve tissue grasping.
  • the embodiments, however, are not limited in this context.
  • FIG. 6 illustrates one embodiment of an ultrasonic blade 500 with protruding grasping features 502 formed on a grasping portion 504 of the blade 500 .
  • FIG. 7A is a side view of the ultrasonic blade 500 shown in FIG. 6 and FIG. 7B shows the protruding grasping features 502 in the form of bump-like protrusions 510 whereas FIG. 7C shows the protruding grasping features 502 in the form of spike-like protrusions 512 .
  • the protruding grasping features 502 are formed along lateral portions 506 , 508 of the grasping surface 504 of the blade 500 .
  • the grasping features 502 may be formed along the entire active length or a portion of the blade 500 . Elements of the grasping features 502 may be uniformly or variable spaced. In other embodiments, the grasping features 502 could be located only on a portion of the blade 500 , such as, for example, the distal tip 520 , the center 522 of the blade 500 , the proximal section 524 , or any portion of the blade 500 . In another embodiment, the grasping features 502 may be located along the entire length or a portion of the blade 500 .
  • the grasping features 502 could be located longitudinally on a portion of the blade 500 , such as, for example, configured along a center line 526 of the blade 500 , the left side 508 of the blade 500 , the right side 506 of the blade 500 , or both the right and left side of the blade 500 .
  • the grasping features 502 may be configured along the entire width of the blade 500 .
  • the grasping features 502 may be configured to trap tissue and prevent disengagement during activation to prevent tissue milking, as well as provide better grasping forces. Accordingly, the grasping features 502 formed on the blade 500 improve tissue grasping.
  • the embodiments, however, are not limited in this context.
  • FIG. 8 illustrates one embodiment of an ultrasonic blade 600 with cavity-like grasping features 602 formed on a grasping portion 604 of the blade 600 .
  • FIG. 9A is a side view of an ultrasonic blade 600 having cylindrical cavity-like grasping features 611 partially formed into the grasping portion of the blade 610 .
  • FIG. 9B is a side view of an ultrasonic blade 600 having cylindrical cavity-like grasping features 613 formed through a grasping portion of the blade 612 .
  • FIG. 9C is a side view of an ultrasonic blade 600 having conical cavity-like grasping features 615 partially formed into the grasping portion of the blade 614 .
  • FIGS. 1 is a side view of an ultrasonic blade 600 having cylindrical cavity-like grasping features 611 partially formed into the grasping portion of the blade 610 .
  • FIG. 9B is a side view of an ultrasonic blade 600 having cylindrical cavity-like grasping features 613 formed through a grasping portion of the blade 612 .
  • the cavity-like grasping features 602 are distributed along portions of the grasping surface 604 of the blade 600 .
  • the grasping features 602 may be formed along the entire active length or a portion of the blade 600 . Elements of the grasping features 602 may be uniformly or variable spaced. In other embodiments, the grasping features 602 could be located only on a portion of the blade 600 , such as, for example, the distal tip 620 , the center 622 of the blade 600 , the proximal section 624 , or any portion of the blade 600 . In another embodiment, the grasping features 602 may be located along the entire length or a portion of the blade 600 .
  • the grasping features 602 could be located longitudinally on a portion of the blade 600 , such as, for example, configured along a center line 626 of the blade 600 , the left side 608 of the blade 600 , the right side 606 of the blade 600 , or both the right and left side of the blade 600 .
  • the grasping features 602 may be configured along the entire width of the blade 600 .
  • the grasping features 602 may be configured to trap tissue and prevent disengagement during activation to prevent tissue milking, as well as provide better grasping forces. Accordingly, the grasping features 602 formed on the blade 600 improve tissue grasping.
  • the embodiments, however, are not limited in this context.
  • FIG. 10 illustrates one embodiment of an ultrasonic blade 700 with transverse bump-like grasping features 702 formed on a grasping portion 704 of the blade 700 .
  • FIG. 11 is a side view of the ultrasonic blade 700 shown in FIG. 10 .
  • the transverse bump-like grasping features 702 are distributed transversally along across of the grasping surface 704 of the blade 700 .
  • the transverse bump-like grasping features 702 may be formed along the entire active length or a portion of the blade 700 . Elements of the transverse bump-like grasping features 702 may be uniformly or variable spaced.
  • the transverse bump-like grasping features 702 could be located only on a portion of the blade 700 , such as, for example, the distal tip 720 , the center 722 of the blade 700 , the proximal section 724 , or any portion of the blade 700 . In another embodiment, the transverse bump-like grasping features 702 may be located along the entire length or a portion of the blade 700 . In some embodiments, the transverse bump-like grasping features 702 could be located longitudinally on a portion of the blade 700 , such as, for example, configured along a center line 726 of the blade 700 , the left side 708 of the blade 700 , the right side 706 of the blade 700 , or both the right and left side of the blade 700 .
  • the transverse bump-like grasping features 702 may be configured along the entire width of the blade 700 .
  • the transverse bump-like grasping features 702 may be configured to trap tissue and prevent disengagement during activation to prevent tissue milking, as well as provide better grasping forces. Accordingly, the transverse bump-like grasping features 702 formed on the blade 700 improve tissue grasping.
  • the embodiments, however, are not limited in this context.
  • FIG. 12 is a side view of one embodiment of an end effector assembly comprising medical forceps 800 having a movable jaw member 802 and an ultrasonic blade 804 having protrusions 806 in the form of tooth-like grasping features formed in the grasping surface 808 of the blade 804 .
  • FIG. 13 is a top view of one embodiment of the medical forceps 800 shown in FIG. 12 with the movable jaw member 802 drawn in phantom line to show the ultrasonic blade 804 positioned below the movable jaw member 802 .
  • the protrusions 806 may be defined by several dimensions.
  • a first dimension ā€œaā€ represents the height of a protrusion 806 (e.g., tooth). In one embodiment, the dimension ā€œaā€ may be about 0.12 mm to 0.18 mm.
  • a second dimension ā€œbā€ represents the width of a protrusion 806 (e.g., tooth). In one embodiment, the dimension ā€œbā€ may be about 0.2 mm.
  • a third dimension ā€œcā€ represents the spacing between each protrusion 806 . In one embodiment, the dimension ā€œcā€ is about 0.5 mm.
  • the protrusions 806 may cover, in one embodiment, a distance represented by dimension ā€œdā€ which can be as little as 2 mm of the blade 804 to provide additional grasping strength.
  • the 2 mm of protrusions 806 may comprise any percentage of the blade 804 , such as, for example, 13% of a 15 mm blade.
  • the height of the protrusion 806 near the distal end 810 of the blade 804 may be approximately 2.3 mm.
  • the protrusions 806 may comprise about 5% of the total height of the blade 804 .
  • the protrusions 806 may include a pitch of 0.3 mm-1.0 mm, a depth of approximately 0.08 mm-0.8 mm, and an angle of approximately 5-90 degrees.
  • the protrusions 806 may be in the form of blocks, bumps, spikes, or speed bumps, as previously described. These alternate embodiments of the protrusions 806 would be formed having similar dimensions as the protrusions 806 described in connection with FIGS. 12 and 13 to have a similar affect on tissue, e.g., statistically better tissue grasping forces and preventing tissue milking.
  • the protrusions 806 may mate with alternating features formed on the clamp arm 802 or tissue pad 812 portion of the medical forceps 800 . In another embodiment, this mating is neither necessary nor required. In one non-mating embodiment, grasping efficiency may be increased by 64% using three features in the form of teeth. The presence of the features does not affect the tissue transection ability of the blade 804 .
  • the blade 804 may comprise protrusions 806 along the entire active length of the blade 804 .
  • the protrusions 806 may be configured to trap tissue and prevent disengagement during activation.
  • Various embodiments of protrusions 806 may include blade teeth, horizontal trenches, or cavities, as previously described.
  • FIGS. 14-18 illustrate various embodiments of ultrasonic blades comprising blade features is to address tissue milking.
  • tissue milking is defined as the event in which tissue begins to slip out of the jaws of an ultrasonic medical forceps having a movable jaw member and an ultrasonic blade upon device activation. This event increases the difficulty of manipulating tissue in low accessibility conditions.
  • the present disclosure provides three embodiments to improve the grasping ability during ultrasonic activation. At least one embodiment of each of the disclosed ultrasonic blades employs repeated features across the active length of the blade. These features are designed to trap tissue and prevent disengagement during activation. Based on the testing, the following embodiments have shown between a 30% and 40% improvement in grasping force during activation over conventional ultrasonic blades.
  • the three embodiments provide ultrasonic blade teeth geometries in the form of blade teeth, horizontal trenches, and holes (e.g., cavities) as described hereinbelow in connection with FIGS. 14-18 to prevent disengagement of tissue from the blade and clamp arm upon ultrasonic activation of the device and to improve tissue grasping ability prior to and during ultrasonic activation.
  • the ultrasonic blades comprise tissue trapping features to improve grasping ability and prevent tissue disengagement during ultrasonic activation of the blade.
  • FIG. 14 is a side view illustrating one embodiment of an ultrasonic blade 900 comprising tooth-like grasping features 902 having triangular grooves formed on a grasping surface 904 of the blade 900 .
  • FIG. 15 is a top view of the ultrasonic blade 900 shown in FIG. 14 .
  • the blade 900 comprises a proximal end 910 and a distal end 909 .
  • the blade 900 comprises tissue trapping features 902 in the form of triangular grooves repeated along a portion of or the entire longitudinal length of the blade 900 .
  • a distal side 906 toward the distal end 909 of the blade 900 of each feature 902 may be a surface perpendicular to the longitudinal axis of the blade 900 followed by an angled surface 908 that tapers off in a proximal direction 910 .
  • the features 902 may be characterized by dimensions a, b, c, and d.
  • dimension ā€œaā€ represents the heights of the feature 902 , which may be approximately 0.010ā€²ā€²
  • ā€œbā€ represents the width of the feature 902 , which may be approximately 0.020ā€²ā€²
  • ā€œcā€ represents the distance between the features 902 , which may be approximately 0.055ā€²ā€²
  • ā€œdā€ represents the distance from the most distal feature 902 to the distal 909 tip of the blade 900 , which may be approximately 0.015ā€²ā€².
  • the features 902 may be evenly spaced along the longitudinal length of the blade 900 .
  • the triangular grooves grasping features 902 may be unevenly spaced along the longitudinal length of the blade 900 .
  • the blade 900 comprises 12 evenly spaced triangular grooves grasping features 902 along the longitudinal length of the blade 900 .
  • FIG. 16 is a side view illustrating one embodiment of an ultrasonic blade 950 with tooth-like grasping features 952 including horizontal trenches having repeated semicircular grooves formed on a grasping surface 954 of the blade 950 .
  • FIG. 17 is a top view of the ultrasonic blade 950 shown in FIG. 16 .
  • the blade 950 comprises a proximal end 960 and a distal end 959 .
  • the blade 950 comprises tissue trapping features 952 in the form of horizontal trenches having semicircular grooves repeated along the longitudinal length of the blade 950 .
  • the features 952 may be characterized by dimensions e, f, g, and h.
  • dimension ā€œeā€ represents the diameter of the grooves, which may be approximately 0.020ā€²ā€²
  • ā€œfā€² represents the distance between each of the features 952 , which may be approximately 0.057ā€
  • ā€œgā€ represents the distance from the most distal feature 952 to the distal 909 tip of the blade 950 , which may be approximately 0.015ā€²ā€²
  • ā€œhā€ represents the depth of the grooves which may be approximately 0.005ā€²ā€².
  • the features 952 may be evenly spaced along the longitudinal length of the blade 950 .
  • the semicircular groove grasping features 952 may be unevenly spaced along the longitudinal length of the blade 950 .
  • the blade 950 comprises 12 evenly spaced semicircular groove grasping features 952 along the longitudinal length of the blade 950 .
  • FIG. 18 is a top view illustrating one embodiment of an ultrasonic blade 970 comprising grasping features 972 including cavities or holes formed on a grasping surface 974 of the blade 970 .
  • the blade 970 comprises a proximal end 980 and a distal end 979 .
  • the blade 970 comprises tissue trapping features 972 in the form of circular elements repeated along the longitudinal length of the blade 970 .
  • the features 972 may be characterized by dimensions i, j, and k.
  • dimension ā€œkā€ represents the diameter of a circular element, which may be approximately 0.020ā€²ā€²
  • ā€œiā€ represents the distance between each of the circular features 972 , which may be approximately 0.057ā€²ā€²
  • ā€œjā€ represents the distance from the most distal feature 972 ā€² to the distal 979 tip of the blade 970 , which may be approximately 0.015ā€²ā€².
  • the circular features 972 may be evenly spaced along the longitudinal length of the blade 970 .
  • the circular features 972 may be unevenly spaced along the longitudinal length of the blade 970 .
  • the blade 970 comprises 12 evenly spaced circular grasping features 972 along the longitudinal length of the blade 970 .
  • the present disclosure describes various embodiments of devices to prevent surgical matter, such as fluid or tissue, for example, from entering the space between an ultrasonic blade and an inner tube distal of the blade's distal seal.
  • Two main categories of embodiments are described.
  • a pressure or energy source attached to the blade-tube subassembly prevents fluid or tissue ingress into the space between the blade and the inner tube.
  • a flexible membrane(s) attached to either the blade or the inner tube prevents fluid or tissue ingress.
  • FIG. 32 illustrates one embodiment of a positive pressure fluid flow system 2300 comprising a pump and/or pump outlet 2306 located distal of the distal seal.
  • the external pump and/or pump outlet 2306 is fluidically coupled to the device distal of the distal node of an ultrasonic blade 2304 .
  • Air or other fluid medium 2308 is pumped into the space 2310 between the blade 2304 and the inner tube 2302 , forcing particulates and/or bodily fluids out of that space 2310 .
  • the pump and/or pump outlet 2306 is fluidically coupled to the space 2310 between the tube 2302 and the blade 2304 at a point distal from a distal blade seal 2312 , e.g., an O-ring or overmolded seal.
  • a distal blade seal 2312 e.g., an O-ring or overmolded seal.
  • the positive pressure fluid flow 2308 is directed to the distal end of the device to prevent accumulation of surgical matter in the space 2310 .
  • FIG. 49 illustrates one embodiment of a positive fluid pressure system 3500 in which air 3508 is pumped down the length of the inner tube 3502 through space 3506 .
  • the air 3508 prevents surgical matter from entering the space 3510 between the ultrasonic blade 3504 and the inner tube 3502 .
  • FIG. 49 shows a similar concept to that shown in FIG. 32 , but the distal node does not have a seal to the inner tube 3502 . Rather, air 3508 is pumped down the full length of the inner tube 3502 to prevent fluid and/or tissue ingress.
  • FIG. 26 illustrates one embodiment of a hybrid system comprising a contoured seal 1700 comprising a flexible membrane 1701 that acts as a pump to force surgical matter 1714 out of a distal tube 1706 area.
  • the pressurized flexible membrane 1701 blocks tissue ingress by contact.
  • the flexible membrane 1701 is attached to the inner tube 1706 and sealed to the ultrasonic blade 1704 .
  • the contoured seal 1700 seals a space 1702 between a portion of an ultrasonic blade 1704 and a tube 1706 .
  • the contoured seal 1700 has two points of contact 1708 , 1710 with the ultrasonic blade 1704 to minimize friction and interference and to provide a double seal.
  • a cavity 1712 is defined by the contoured seal 1700 for collecting surgical matter 1714 .
  • a separate duct 1718 may be provided to apply a positive pressure to the flexible membrane of the contoured seal 1700 to expel the surgical matter 1714 from the cavity 1712 .
  • a boot barrier (or seal, for example) may be added to an end effector portion of an ultrasonic instrument to prevent the buildup of surgical matter on the end effector.
  • the boot barrier seals the ultrasonic blade to the distal ends of one or more tube(s) near to the proximal end of the tissue effecting portion of the ultrasonic blade.
  • the boot barrier may be made from any suitable materials including compliant, thermally robust material that has a relatively low coefficient of friction in order to minimize the seal load on the blade.
  • Materials suitable for the boot barrier may include, for example, silicone rubber, parylene coated silicon rubber, Tetrafluoroethylene-hexafluoropropylene (FEP), which has similar properties to those of Polytetrafluoroethylene (PTFE) otherwise known in the trade as Teflon, shrink tubing, or any similar material.
  • FEP Tetrafluoroethylene-hexafluoropropylene
  • PTFE Polytetrafluoroethylene
  • shrink tubing or any similar material.
  • the blade may be coated to reduce power draw of the instrument due to inclusion of the boot barrier.
  • the boot barrier seals to the blade and may provide slight interference to the blade. Where the boot barrier seals to the blade, the boot barrier does not provide vertical reaction for clamping/bending of the blade in order to keep the load on the blade (from the boot) minimized.
  • the boot barrier may seal to the outer diameter of the tube(s), the inner diameter of the tube(s) or both.
  • One or more retention features may be provided on the blade and/or the tube(s) for retaining the boot to the blade and/or the tube(s). In one embodiment, the retention features may also be located on the boot barrier itself.
  • the boot barrier prevents build up and accumulation of surgical matter such as, for example, tissue, blood, melted fat, and other related materials encountered during surgery, between the distal portion of the tube(s) and the nearby portion of the blade of the ultrasonic surgery device.
  • This build up and accumulation may result in large and inconsistent mechanical loads on the system resulting in procedure interruptions due to high impedance either causing resonance issues or causing the system to bog down and potentially stop during activation.
  • the tube(s) are needed to protect tissue and users from the ultrasonically active blade and, in the case of shears-type device, to support and/or drive a clamp arm.
  • the ultrasonic blade is as active (ultrasonically) as possible in the proximal portion of its tissue effecting length.
  • FIG. 19 illustrates one embodiment of an end effector assembly 1000 comprising a medical forceps having a movable jaw member 1002 and an ultrasonic blade 1004 .
  • the jaw member 1002 is movable in direction 1016 .
  • a flexible boot barrier 1006 is positioned over a proximal portion 1008 of the blade 1004 and a distal portion of a tube 1010 to seal the blade 1004 to an outer diameter 1012 of the tube 1010 .
  • a retention feature 1014 may be provided on the outer diameter 1012 of the tube 1010 to keep the boot barrier 1006 in place.
  • the boot barrier 1006 may be made from silicone rubber or other similar materials.
  • the boot barrier 1006 may be coated with a lubricious material such as parylene, for example, to reduce friction.
  • the blade 1104 may be coated with similar lubricious materials to reduce friction. Reducing friction between the blade 1004 and the boot barrier 1006 reduces power draw due to the inclusion of the boot barrier 1006 .
  • FIG. 20 illustrates one embodiment of an end effector assembly 1100 comprising a medical forceps having a movable jaw member 1102 and an ultrasonic blade 1104 .
  • a flexible seal 1106 positioned over a proximal portion 1108 of the blade 1104 and within a distal portion 1110 of an inner tube 1112 to seal the blade 1104 to an inner diameter 1114 of the inner tube 1112 .
  • the inner tube 1112 is slidably movable within an outer tube 1116 .
  • FIG. 21 illustrates one embodiment of a slotted inner tube 1200 to conceal a lengthwise portion of an ultrasonic blade 1202 .
  • Slots 1204 provide fluid/tissue egress to discharge surgical matter that may accumulate in a space 1206 between the blade 1202 and the inner tube 1200 . Fluid/tissue egress through the slots 1204 at the distal end of an ultrasonic device prevents the accumulation of surgical matter.
  • an overmolded silicone distal seal 1208 is provided on or near the distal node of the blade 1202 .
  • a boot barrier may be overmolded, positioned just distal to the clamp arm edge, which could prevent tissue pinching, and anchored to the inner tube 1200 , or positioned within the inner tube 1200 and non-visible to the user as shown in FIG. 22 , for example.
  • Surgical matter such as fluid, blood, fat, or other tissue, can become lodged in that space between the outer diameter of the blade 1202 and the inner diameter of the inner tube 1200 .
  • the length of exposed blade may increase thus increasing the chance of tissue lodging therein.
  • tissue and fluid could cause a short circuit if the RF energy is allowed to flow from the blade through tissue that is inside the inner tube, rather than the desired energy path along the active (exposed) length of the blade.
  • a boot or distal tissue ingress prevention method or mechanism is provided as described herein below in connection with FIGS. 21-23 where surgical matter such as fluid or tissue is expelled from between the inner tube 1200 and the blade 1202 by slots 1204 , windows, apertures, or perforations formed in the inner tube 1200 .
  • FIG. 22 illustrates one embodiment of a perforated inner tube 1300 to conceal a lengthwise portion of an ultrasonic blade 1302 .
  • the inner tube 1300 is perforated with holes 1304 to allow surgical matter such as fluids/tissue to escape.
  • the perforations 1304 provide fluid/tissue egress to discharge surgical matter that may accumulate in a space 1306 between the blade 1302 and the inner tube 1300 .
  • the inner tube 1300 comprises a 180Ā° half circle and is perforated with holes 1304 to allow fluids/tissue to escape.
  • the tube 1300 is located between the active blade 1302 and the distal most overmold 1310 portion, which is located a distance 1308 from the distal tip of the blade 1302 .
  • FIG. 23 illustrates one embodiment of a fluid-directing ribbed and perforated inner tube 1400 to conceal a lengthwise portion 1401 of an ultrasonic blade 1402 .
  • Fluid-directing ribs 1404 perforations 1406 provide fluid egress to discharge surgical matter that may accumulate in a space 1410 between the blade 1402 and the inner tube 1400 .
  • the distal most overmold is located at a distance 1408 from the distal tip of the blade 1402 .
  • the ribs 1404 radiate inward and comprise holes 1406 located between each rib.
  • the ribs 1404 have a clearance with respect to the blade 1402 .
  • the spacing of the ribs 1404 is such that only fluids can pass, not solids of appreciable size.
  • the channeling configuration raises fluid velocity and raises likelihood of clearing out of holes 1406 .
  • FIG. 24 is one embodiment of a fluid-directing ribbed and perforated inner tube 1500 comprising converging ducts 1502 .
  • the converging ducts 1502 are fluidically coupled to apertures 1504 to provide fluid egress to discharge surgical matter.
  • FIG. 25 illustrates one embodiment of a contoured seal 1600 to seal a space 1602 between a portion of an ultrasonic blade 1604 distal to the distal seal and a tube 1606 .
  • the contoured flexible seal 1600 has two points of contact 1608 , 1610 with the ultrasonic blade 1604 to minimize friction and interference and to provide a double seal.
  • a cavity 1612 is defined by the contoured flexible seal 1600 for collecting surgical matter 1614 .
  • FIG. 27 illustrates one embodiment of a seal 1800 to seal a space 1802 between a portion of an ultrasonic blade 1804 distal to the distal seal and a tube 1806 .
  • the flexible seal 1800 has multiple points of contact 1808 to provide low interference point of contact between the seal 1800 and the blade 1804 .
  • the multiple points of contact 1808 reduce fluid wicking up the shaft of the blade 1804 .
  • a nose portion 1810 of the seal 1800 and the multiple points of contact 1808 block surgical matter from entering into the space 1802 between the blade 1804 and the tube 1806 .
  • FIG. 28 illustrates etched areas 1902 formed on an outer surface 1904 of an ultrasonic blade 1900 to prevent fluid/tissue ingress along the blade due to blade vibration.
  • FIG. 29 illustrates one embodiment of an end effector assembly 2000 comprising a medical forceps having a movable jaw 2002 member and a slidable ultrasonic blade 2004 partially retracted within a seal 2006 .
  • the movable jaw member 2002 comprises a clamp pad 2014 having a living hinge formed by necked down regions 2012 at the interface of the clamp pad 2014 and the seal 2006 .
  • the blade 2004 is slidable in direction 2010 and is received within the seal 2006 .
  • the seal 2006 is coupled to an inner tube 2008 to seal the blade 2004 to the tube 2008 and prevent fluid/tissue migration proximally.
  • FIG. 30 illustrates one embodiment of an inner tube 2100 having machined windows 2102 formed therein.
  • the windows 2102 allow drainage between the inner 2100 and an outer tube.
  • This embodiment may be an alternative to the embodiment show in FIG. 21 , for example.
  • FIG. 31 illustrates one embodiment of an end effector assembly 2200 comprising a medical forceps having a movable jaw member 2202 and an ultrasonic blade 2204 .
  • the movable jaw member 2202 comprises an extended clamp arm pad 2206 that follows the contour of the movable jaw member 2202 (e.g., clamp arm) into the space around the blade 2204 to cover the opening of the inner tube with a tissue stop element 2208 .
  • the tissue stop element 2208 deflects surgical matter and prevents it from entering the space between the blade 2204 and the inner tube 2212 .
  • the tissue stop element 2208 is contoured to the movable jaw member 2202 to cover an opening 2210 of the inner tube 2212 .
  • the clamp arm pad 2206 is machined with the tissue stop 2208 element to provide minimal interference between the blade 2204 and the tube 2212 .
  • the pad 2206 and/or the tissue stop element 2208 may be made of a lubricious material such as Teflon to minimize the load on the blade 2204 .
  • FIG. 38 illustrates one embodiment of an end effector assembly 2900 comprising a medical forceps having a movable jaw member 2902 and an ultrasonic blade 2904 .
  • the movable jaw member 2902 comprises a clamp arm pad 2908 having a deflector pad 2906 to deflect surgical matter.
  • FIG. 39 is a front view of the clamp arm pad 2908 and deflector pad 2906 shown in FIG. 38 .
  • An aperture 2910 is provided in the deflector pad 2906 to receive the ultrasonic blade 2904 therethrough.
  • FIG. 33 illustrates a portion of an end effector assembly 2400 comprising an ultrasonic blade 2404 including one embodiment of a boot barrier 2402 to seal the ultrasonic blade 2404 to a tube 2406 distal to the distal node 2410 of the blade.
  • the boot barrier 2402 seals the blade 2404 to an inner tube 2406 which is disposed within an outer tube 2408 .
  • the boot barrier 2402 may be formed of FEP to cover high stress regions of the blade 2404 .
  • the outer tube 2408 ends at a blade distal node 2410 .
  • FIG. 34 illustrates one embodiment of an end effector assembly 2500 comprising a medical forceps having a movable jaw member 2502 and an ultrasonic blade 2504 including a flexible seal 2506 positioned distal to an edge 2508 of the movable jaw member 2502 and anchored to an outer tube 2510 to prevent tissue pinching.
  • An inner tube 2512 is positioned within the outer tube 2510 .
  • the blade 2504 is positioned within the inner tube 2512 .
  • FIG. 35 illustrates one embodiment of an end effector assembly 2600 comprising a seal 2606 positioned within an inner tube 2602 and an ultrasonic blade 2604 positioned within the inner tube 2602 such that it is non-visible to the user.
  • the seal 2602 may either be a low friction material to minimize load on the blade 2604 or a small clearance 2608 may be provided between the seal 2606 and the blade 2604 to prevent contact with the blade.
  • the seal 2606 seals the space 2610 defined between the blade 2604 distal to the distal seal and an inner diameter of the inner tube 2602 to prevent the accumulation of surgical matter therein.
  • FIG. 36 illustrates one embodiment of a seal mechanism 2700 for an ultrasonic blade 2702 having a tapered inner tube 2704 portion distal to the blade distal seal 2716 where the inner tube 2704 necks down 2706 to a smaller diameter at a distal end defining a reduced entry space 2708 for surgical matter.
  • a conventional outer tube 2710 is provided over the tapered inner tube 2704 .
  • the diameter of the inner tube portion 2712 proximal to the necked down region 2706 is greater than the diameter of the inner tube portion 2714 distal to the necked down region 2706 .
  • the necked down region 2706 coincides with the location just distal to the distal-most overmold 2716 .
  • the inner tube 2704 may be necked down for a portion distal to the distal-most seal, to provide less open space for fluids and solids to enter.
  • FIG. 37 illustrates one embodiment of an overmolded flexible seal 2800 located over an inner tube 2802 that an ultrasonic blade 2804 punctures through during assembly.
  • the blade 2804 breaks through the overmolded flexible seal 2800 to seal the space 2808 between the blade 2804 and the inner tube 2802 .
  • a clamp arm pivot hole 2814 in the outer tube distal clevis 2816 enables a movable jaw member to open and close.
  • An outer tube distal clevis 2816 is located on a distal end of an outer tube. In one embodiment, the clevis 2816 can be welded on the distal end of the outer tube.
  • FIG. 40 illustrates one embodiment of a seal system 3000 for an ultrasonic blade 3002 .
  • a flexible seal 3004 seals the ultrasonic blade 3002 distal to a distal seal portion 3008 .
  • the flexible seal 3004 seals the blade 3002 to the inner diameter of the inner tube 3006 .
  • FIG. 41 illustrates one embodiment of a contoured inner tube 3100 or component that attaches to an inner tube 3100 to provide a circuitous path 3104 for fluid.
  • An area of the inner tube 3100 comprises a locally swaged pair of grooves 3106 , 3108 that may be employed to locate an O-ring that would touch the blade or provide a circuitous path to prevent ingress of fluids during use.
  • FIG. 42 illustrates one embodiment of a molded component 3110 with compliant arms that serves to block the distal opening of a tube assembly and is attached via arms going around a pin in the blade at a node location.
  • FIG. 43 illustrates one embodiment of an overmolded silicone bumper 3112 that adheres to the inside of an inner tube.
  • the bumper 3112 prevents fluid ingress and does not nominally touch the blade so there is no increase in blade loading during use.
  • FIGS. 44-47 illustrate one embodiment of how a pair of mandrels 3120 A, 3120 B can be inserted into an inner 3122 tube from both ends.
  • the mandrels 3120 A, 3120 B combine to form an overmold channel into which the silicone (or equivalent) bumper 3124 material would be injected.
  • the mandrels would then be removed leaving just the bumper 3124 .
  • FIG. 48 illustrates an end view of a seal system 3200 comprising an overmolded bumper 3124 affixed to an inner tube 3202 that does not seal to an ultrasonic blade 3204 .
  • the seal system 3200 is an end view of the tube assembly shown in FIG. 47 with the molded bumper 3124 in place.
  • FIG. 50 illustrates one embodiment of an inner tube 3600 comprising having a silicone seal 3602 attached thereto at minimal interference with an ultrasonic blade.
  • FIG. 51 illustrates one embodiment of seal system 3700 for sealing an ultrasonic blade 3704 to a tube 3706 .
  • the sealing system 3700 comprises a funnel 3702 to prevent ingress of surgical matter in the space 3708 between the blade 3704 distal to the distal node and the inner tube 3706 .
  • the funnel 3702 deflects surgical matter distally.
  • FIG. 52 illustrates one embodiment of a flexible seal 3802 located over an inner tube 3800 that an ultrasonic blade punctures through and dilates at location 3804 during assembly.
  • FIG. 53 illustrates one embodiment of an overmolded flexible seal 3900 attached to an ultrasonic blade 3902 distal of the distal node.
  • FIG. 54 illustrates one embodiment of an overmolded flexible seal 4000 attached to an ultrasonic blade 4002 distal of the distal node.
  • the overmolded flexible seal 4000 is made from an FEP material.
  • FIG. 55 illustrates one embodiment of a sealing system 4100 comprising multiple toroidal seals 4102 , 4104 , 4106 to seal an ultrasonic blade 4108 distal of the distal node.
  • the toroidal seals 4102 , 4104 , 4106 are suspended by small overmolded features 4110 that do not interfere with the blade 4108 .
  • FIG. 56 illustrates one embodiment of an end effector assembly 4200 comprising a medical forceps having a movable jaw member 4202 in an open position, an ultrasonic blade 4204 , and a slidably movable inner tube 4206 including a wiping seal 4208 .
  • the slidably movable inner tube 4206 moves distally in direction 4210 as the jaw member 4212 opens in direction 4212 .
  • the wiping seal 4208 surrounds the blade 4204 .
  • the wiping seal 4208 moves distally in direction 4210 along with the inner tube 4206 to wipe surgical matter off the blade 4204 .
  • FIG. 57 illustrates one embodiment of the end effector assembly 4200 shown in FIG. 56 comprising a medical forceps having a movable jaw member 4202 in a closed position.
  • the inner tube 4206 moves proximally in direction 4214 to retract the wiping seal 4208 .
  • the jaw member 4202 is opened as described in connection with FIG. 56 .
  • FIG. 58 illustrates one embodiment of an end effector assembly 4300 comprising a medical forceps having a movable jaw member 4302 in a closed position shown in solid line and in an open position shown in phantom line, an ultrasonic blade 4304 , a slidably movable outer tube 4306 , and a fixed inner tube 4308 with an overmolded flexible seal 4310 located on the inner tube 4308 over the blade 4304 .
  • FIG. 59 illustrates one embodiment of the end effector assembly 4300 comprising the movable jaw member 4302 in an open position. As shown in FIG. 59 , as the jaw member 4202 is opened the overmolded flexible seal 4310 seals the throat 4312 of the device to prevent surgical matter from entering the space 4314 between the blade 4304 and the inner tube 4308 .
  • Present ultrasonic devices utilize a tube-in-tube (TnT) closure mechanism to enable closure of the clamp arm, referred to herein as a movable jaw member, against an active length of the ultrasonic blade.
  • TnT tube-in-tube
  • the following embodiments of alternate closure mechanisms for ultrasonic devices may yield several advantages. For example, there may be differences among the drag force of actuating the inner tube against the outer tube results in variation in device clamp force. Additionally, the pivot location of the clamp arm on the outer tube causes a sharp angular closure, and magnifies the impact to a non-uniform closure profile. Furthermore, the predicate device mechanism may be sensitive to variation in components, as the stackup links the inner and outer tube at the location of the insulated pin, which currently sits near the proximal end of the tube assembly.
  • the ultrasonic device comprises a vibrating blade with a through hole at distal node, an actuator mechanism, an outer tube with cam surfaces at a distal end, and a clamp arm.
  • the clamp arm is rotatedly fixed to the vibrating blade.
  • the clamp arm is cammed open and closed (against vibrating blade) through relative motion between the outer tube and vibrating blade.
  • one or more pivots of the clamp arm are positioned at a distal node of the vibrating blade.
  • FIG. 60 is a perspective view of one embodiment of an end effector assembly 4400 comprising a medical forceps having a movable jaw member 4402 and an ultrasonic blade 4404 where the movable jaw member is rotatably attached to a distal node 4406 .
  • the outer tube 4412 is shown transparent to show the ultrasonic waveguide 4414 located therein.
  • FIG. 61 is a side view of the end effector assembly 4400 shown in FIG. 60 with the movable jaw member 4402 in an open position and shown transparent to show outer tube cam slots 4408 , 4410 to rotate the movable jaw member 4402 upon relative motion between the blade 4404 and the outer tube 4412 .
  • FIG. 62 illustrates one embodiment of the end effector assembly 4400 showing the movable jaw member 4402 pivot 4416 .
  • the movable jaw member 4402 (e.g., clamp arm) is rotatably anchored directly to the blade 4404 .
  • the anchoring is accomplished through eliminating the inner tube and attaching the movable jaw member 4402 at the most distal node 4406 of the blade 4404 so as not to interfere with the acoustical train of the device.
  • the attachment may be made through the use of a through hole and insulated pin 4416 attached to the movable jaw member 4402 , although other attachment means may be used and are contemplated, such as, for example, pins, screws, snap fits, overmolds or the like.
  • the outer tube 4412 contains a cam surface, which locates a second pin 4418 attached to the movable jaw member 4402 such that the movable jaw member 4402 rotates about the pivot at pin 4416 in the blade 4404 when there is relative motion between the blade 4404 and the outer tube 4412 .
  • additional geometries for the cam surface are contemplated, such as splines, curves, and the like. As shown in the embodiment of FIG. 62 , the pivot location at pin 4416 is positioned in a more proximal location than current devices.
  • the benefits of anchoring the movable jaw member 4402 to the blade 4404 at the distal node 4406 allows for a more parallel closure along the active portion 4420 of the blade 4404 , ultimately creating a more uniform pressure profile.
  • the configuration described in connection with FIGS. 60-62 operates at lower temperatures and can eliminate the need for a polyimide clamp arm pad within the movable jaw member 4402 .
  • the outer tube 4412 may extend longitudinally along the axis of the blade, to prevent tissue from contacting the non-active blade 4404 surface
  • the ultrasonic device comprises a vibrating blade with a hole through the distal node, an outer tube, a clamp arm, and a rigid link.
  • the clamp arm is coupled to the vibrating blade with a rigid link and system of revolute joints.
  • FIG. 63 is a side view of one embodiment of an end effector assembly 4500 comprising a medical forceps having a movable jaw member 4502 in a closed position and an ultrasonic blade 4504 .
  • the end effector assembly 4500 comprises a linkage 4506 to open and close the movable jaw member 4502 by employing relative motion between the outer tube 4508 and the blade 4504 .
  • FIG. 64 is a side view of the end effector assembly 4500 shown in FIG. 63 with the movable jaw member 4502 in an open position.
  • FIG. 65 is a bottom view of the end effector assembly 4500 shown in FIG. 63 with the movable jaw member 4502 in an open position.
  • FIG. 66 is a perspective view of the end effector assembly 4500 shown in FIG. 63 with the movable jaw member 4502 in an open position.
  • FIG. 67 is a perspective view of the end effector assembly 4500 shown in FIG. 63 with the movable jaw member 4502 in an open position.
  • the linkage 4506 may be a four bar linkage configured to actuate the movable jaw member 4502 (e.g., clamp arm) by utilizing relative motion between the outer tube 4508 and the blade 4504 .
  • the inner tube may be replaced with the rigid link 4506 .
  • the link 4506 may be pinned to the blade 4504 through the distal node 4510 , although other fastening means are contemplated such as pins, screws, snap fits, and the like. Locating a pin 4512 at the distal node 4510 minimizes interference to the acoustic train of the ultrasonic device.
  • the link 4506 is subsequently pinned to a bottom portion 4514 of the movable jaw member 4502 via pin 4516 and a second pivot of the movable jaw member 4502 is pinned to an end of the outer tube 4508 via pin 4518 .
  • Clamping may be achieved by displacing the outer tube 4508 forward relative to the blade 4504 in direction 4520 .
  • the link 4506 component ensures that the distance between the distal node 4510 and the lower pivot of the clamp arm remains constant. The presence of the link 4506 forces the movable jaw member 4502 to rotate as the outer tube 4508 is displaced in direction 4520 .
  • the rigid link 4506 may comprise a small stainless steel component formed from progressive stamping, although other materials and manufacturing processes are contemplated, such as metal injection molding (MIM), polymers formed from plastic injection molding, and the like.
  • MIM metal injection molding
  • the use of a rigid link 4506 also allows simplification of a trigger assembly. For example, a trigger assembly for actuating the inner tube may be removed.
  • the use of a four bar linkage 4506 also reduces frictional losses in the tube assembly and results in a decrease in accumulated pressure profile variations.
  • FIGS. 68-70 Yet another embodiment of an ultrasonic device comprising an alternate closure mechanism is described in connection with FIGS. 68-70 hereinbelow.
  • the embodiment illustrated in FIGS. 68-70 addresses issues such as tolerance accumulation between the blade, movable jaw member, inner tube, insulated pin, and rotation knob of existing ultrasonic devices.
  • FIG. 68 is a perspective view of one embodiment of an end effector assembly 4600 comprising a medical forceps having a movable jaw member 4602 and an ultrasonic blade 4604 with the movable jaw member 4602 shown in an open position.
  • An inner tube 4608 is translated with respect to the blade 4604 to open and close the movable jaw member 4602 .
  • FIG. 69 is a perspective view of the inner tube 4608 with the outer tube 4606 removed.
  • the inner tube 4608 is operatively coupled to the end effector assembly 4600 shown in FIG. 68 .
  • FIG. 70 is a perspective view of a notch portion 4610 of the inner tube 4608 shown in FIG. 69 .
  • the inner tube 4608 is configured to translate with respect to the blade 4604 to move the movable jaw member 4602 (e.g., clamp arm) and to generate clamp pressure against the blade 4604 .
  • the movable jaw member 4602 is attached and pivots at pivot 4612 on the inner tube 4608 .
  • the outer tube 4606 translates in direction 4614 to pivot the movable jaw member 4602 .
  • the inner tube 4608 has a notched region 4610 as shown in FIGS. 69 and 70 , that is squeezed inwardly into notches 4616 , 4618 formed in the blade 4604 that would be located at the node location of the blade 4604 .
  • the blade 4604 portion in the notched region 4610 location may be coated with a thin layer of silicone overmold to provide tight relationship between the inner tube 4608 and the blade 4604 .
  • such tight relationship provides good movable jaw member 4602 clocking with respect to the blade 4604 cutting surface 4620 ( FIG. 68 ).
  • a clamp arm pad 4622 also may be provided on the inside portion of the movable jaw member 4602 .
  • FIG. 71 illustrates one embodiment of an end effector assembly 4700 comprising a medical forceps having an end effector with a movable jaw member 4702 in a closed position, an ultrasonic blade 4704 , and a shaft assembly 4706 configured to counteract deflection of the blade 4704 .
  • a counter deflection element 4720 is provided on an inner tube 4710 at one of the blade nodes 4718 proximal to the distal node to counteract deflection of the blade 4704 by the movable jaw member 4702 .
  • a downward 4712 deflection of the blade 4704 by the movable jaw member 4702 is counteracted by the downward reaction force of counter deflection element 4720 at the node 4714 proximal to the distal node.
  • the counter deflection element 4720 may comprise a bulge into the inner lumen to provide downward counter force to the clamping force.
  • a window 4708 may be cut into the inner tube 4710 to allow a downward force to deflect the blade 4704 without making contact with the opposing wall of the inner tube 4710 .
  • any of the inner tubes and/or outer tubes disclosed herein may be coated with a polymer used as moisture and dielectric barriers.
  • parylene C may be selected due to its combination of barrier properties, cost, and other processing advantages. Parylene is the trade name for a variety of chemical vapor deposited poly(p-xylylene), for example.
  • the polymer coating is used to prevent shorting in the shaft from the blade to adjacent metal parts.
  • the just the inner tube e.g., actuator
  • the just the inner tube may be coated to prevent it from shorting to the blade which is one ā€œpoleā€ in the combined ultrasonic and bipolar (RF) device, where the other ā€œpoleā€ is the outer tube and the clamp arm.
  • the inner tube insulation provides a more robust and space efficient electrical insulating barrier than an intervening plastic tube, which may be considered an alternative embodiment.
  • a shaft rotation limiter comprises a single piece which interfaces with a transducer flange by a threaded connection.
  • the rotation limiter provides radial support through a component fixed in the shroud channels. The amount of rotation is limited by the allowed lateral motion of the component in the shroud channels as it is threaded along the transducer.
  • a shaft rotation limiter is described in connection with FIG. 72 hereinbelow.
  • FIG. 72 illustrates one embodiment of an ultrasonic transducer 4800 having a modified flange 4802 incorporating external threads 4804 to allow transducer rotation.
  • the transducer flange 4802 is modified to incorporate external threads 4804 .
  • the external threads 4804 may mate with a component 4810 having internal threads and at least two protruding bosses 4806 , 4808 .
  • the protruding bosses 4806 , 4808 engage into channels in the device shroud and limit transducer rotation.
  • the component 4810 with the threaded inner diameter interfaces with the transducer 4800 by threaded connection. Since the component 4810 is limited in transverse travel by the shroud channels, it provides radial support.
  • the component 4810 with the threaded inner diameter translates rotational movement of the transducer 4800 to a lateral motion of the component 4810 .
  • Rotation of the blade or transducer 4800 can be provided by a fixed rotation knob. Rotating the knob may cause the internally threaded component 4810 to translate laterally and rotation would be limited when the component 4810 can no longer translate.
  • the lateral movement may be defined by the length of the channel in the shroud or the length of the threaded flange 4802 on the transducer.
  • the shroud allows rotations in excess of 360Ā°.
  • the amount of rotation of the transducer 4800 is limited by the allowed lateral motion of the component 4810 in the shroud channels (not shown).
  • FIG. 73 is a sectional view of an ultrasonic transducer rotation system 4900 comprising a shroud 4902 and a gate 4904 fitted into one-half of the shroud 4902 .
  • the gate 4904 is L-shaped and has two wings 4906 A, 4906 B (right and left wings, respectively) extending at a fixed angle from a central axis 4908 positioned within a portion of the shroud 4902 .
  • One additional component, as well as modifications of a rotation knob and the right-hand or left-hand shroud 4902 allow for approximately 690Ā° of rotationā€”almost two full rotations.
  • the rotation knob is used by the operator to rotate the shaft and ultrasonic transducer of the device.
  • the additional component is referred to herein as the gate 4904 .
  • the gate 4904 is rotationally moveable about axis 4908 within the shroud 4902 to two positions.
  • the rotation knob will have an additional contoured extrusion element that extends to make contact with the gate 4904 . Where the gate 4904 is inserted into the shroud 4902 there will be a minimum amount of frictional contact between the shroud 4902 and the gate 4904 to keep the gate 4904 in place while it is not in contact with the rotation knob.
  • the gate 4904 in the shroud 4902 is constrained by a cylindrical hole 4912 and two bosses 4914 , 4916 with a slight undercut.
  • the axis 4908 of the gate 4904 that sits in the cylindrical hole 4912 would be constrained in part by features on the rotation knob.
  • the gate 4904 can be made of a rigid metal or a single stamped metal part or injection molded from plastic.
  • the gate 4904 can either snap into place in the shroud 4902 or be ultrasonically welded or heat staked to the shroud 4902 in such a fashion to allow free rotation of the gate 4904 about axis 4908 .
  • FIGS. 74A-74C illustrate the dynamics of the gate/rotation knob interaction.
  • FIG. 74A illustrates the gate 4904 in a left-biased position such that the rotation knob can be rotated 690Ā° clockwise until a contoured extrusion element 4910 on the rotation knob makes contact with the right wing 4906 A of the gate 4904 so that the left wing 4906 B of the gate 4904 prevents motion by reacting statically against the shroud 4902 .
  • the rotation knob contoured extrusion element 4910 is contacting the outside of the right wing 4906 A of the gate 4904 and is constrained to only move in a counter-clockwise direction.
  • FIG. 74B illustrates the rotation knob rotated back 360 degrees until it rotates the right wing 4906 A of the gate 4904 into a right-biased position. Upon full 360Ā° rotation the rotation knob extrusion 4910 contacts the inside of the right wing 4906 A of the gate 4904 , rotating the gate 4904 to the right as the knob rotates around.
  • FIG. 74C illustrates the rotation knob after it rotates the right wing 4906 A of the gate 4904 into a right-biased position. Subsequently, the rotation knob can be rotated an additional 330Ā° until the contoured extrusion element 4910 of the rotation knob contacts the left wing 4906 B of the gate 4904 and the right wing 4906 A of the gate 4904 prevents motion by reacting statically against the shroud 4902 . After 690Ā° of rotation the rotation knob contacts the outside of the left wing 4906 B of the gate 4904 . The right wing 4906 A of the gate 4904 is contacting the shroud 4902 and is therefore stopping further rotation of the rotation knob in the counterclockwise direction. This process can be reversed to spin the rotation knob clockwise back to its starting position.
  • FIG. 75 is a sectional view of an ultrasonic transducer rotation system 4920 comprising a shroud 4922 and a gate 4924 fitted into one-half of the shroud 4922 , where the rotation system includes a semi-compliant element.
  • the gate 4924 is L-shaped and has two wings 4926 A, 4926 B (right and left wings, respectively) extending at a fixed angle from a central axis 4928 positioned within a portion of the shroud 4922 .
  • One additional component, as well as modifications of a rotation knob and the right-hand or left-hand shroud 4922 allow for approximately 690Ā° of rotationā€”almost two full rotations.
  • the rotation knob is used by the operator to rotate the device shaft and ultrasonic transducer.
  • the additional component is referred to herein as the gate 4924 .
  • the gate 4924 is rotationally moveable about axis 4928 within the shroud 4922 to two positions.
  • the rotation knob will have an additional contoured extrusion element that extends to make contact with the gate 4924 . Where the gate 4924 is inserted into the shroud 4922 there will be a minimum amount of frictional contact between the shroud 4922 and the gate 4924 to keep the gate 4924 in place while it is not in contact with the rotation knob.
  • the gate 4924 in the shroud 4922 is constrained by a cylindrical hole 4932 and two bosses 4934 , 4936 with a slight undercut.
  • the axis 4928 of the gate 4924 that sits in the cylindrical hole 4932 would be constrained in part by features on the rotation knob.
  • the gate 4924 can be made of a rigid metal or injection molded from plastic.
  • the gate 4924 can either snap into place in the shroud 4922 or be ultrasonically welded or heat staked to the shroud 4922 in such a fashion to allow free rotation of gate 4924 about axis 4928 .
  • FIGS. 112A and 112B illustrate one embodiment of an unlimited rotation connection for an integrated transducer 6216 .
  • An unlimited rotation connection may be provided by the ultrasonic transducer rotation system 6220 .
  • the ultrasonic transducer rotation system 6220 may comprise, for example, a male plug 6222 and a female receptacle 6224 .
  • the male plug 6222 may be configured to freely rotate within the female receptacle 6224 while maintaining an electrical connection between the ultrasonic transducer 6216 and, for example, power system 6248 .
  • the male plug 6222 and the female receptacle 6224 may comprise a stereo plug and jack.
  • FIG. 112A illustrates the male plug 6222 and the female receptacle 6224 in an uncoupled, or unmated, position.
  • FIG. 112B illustrates the male plug 6222 and the female receptacle 6224 in a coupled, or mated, position. In the mated position, the male plug 6222 is able to freely rotate within the female receptacle while maintaining an electrical connection between the male plug 6222 and the female receptacle 6224 .
  • FIGS. 113A-113C illustrate one embodiment of an unlimited rotation connection 6520 .
  • the unlimited rotation connection 6520 comprises a male plug 6522 and a female receptacle 6524 .
  • the male plug 6522 may comprise a plurality of electrodes 6526 a - d coupled to an insulating tube 6528 .
  • the male plug 6522 may be coupled to a shaft/transducer assembly and may rotate in unison with the shaft/transducer assembly.
  • the first and second electrodes 6526 a - 6526 b may be coupled to the transducer.
  • the third and fourth electrodes 6526 c - 6526 d may be coupled to bipolar electrodes located at an end effector.
  • the fourth electrode 6526 d may be omitted.
  • the plurality of electrodes 6526 may each be coupled to a wire 6530 a - 6530 d .
  • the female receptacle 6524 may comprise a plurality of helical contacts 6532 a - 6532 d .
  • the plurality of helical contacts 6532 a - 6532 d may be positioned such that each of the helical contacts 6532 a - 6532 d is electrically coupled to a corresponding electrode 6526 a - 6526 d on the male plug 6522 when the male plug 6522 is inserted into the female receptacle 6524 .
  • FIG. 113B illustrates a cross-sectional view of the female receptacle 6524 take along line B-B.
  • the female receptacle 6524 comprises a individual helical contacts 6532 a - 6532 d separated by insulators 6534 a - 6534 c .
  • FIG. 113C illustrates the individual helical contact profile of a helical contact 6532 a .
  • the helical contact 6532 a may comprise a first metal plate 6536 a and a second metal plate 6536 b .
  • a plurality of twisted wires 6538 may be spirally twisted to assure contact between the male plug 6522 and the metal plates 6536 a , 6536 b . In some embodiments, the direction of the spiral may be alternated to provide increased connectivity in all directions of rotation.
  • the twisted wires 6538 may comprise a hyperbolic shape.
  • the tactile feedback element is added to the limited rotation mechanism shown in FIGS. 73-74C , which includes on the rotation knob an additional contoured extrusion element 4930 that extends to make contact with the gate 4924 (the mechanism that limits rotation).
  • a contoured extrusion element 4930 located on the rotation knob can be made of a semi-compliant material.
  • portions of contoured extrusion element 4930 indicated by elements 4938 may be comprised of a semi-compliant material.
  • the semi-compliant material could be made of rubber, medium to high density rubber, silicone, thermoplastic elastomers, springy piece of stainless steel, spring steel, copper, shape memory metals, and the like. Any of these materials can be insert molded or mechanically connected to the rotation knob.
  • contoured extrusion element 4930 ( FIGS. 76A-76C ) on the rotation knob is to contact the gate 4924 to provide the motion needed for the gate 4924 to function.
  • Adding compliance to the contoured extrusion element 4930 rotation knob feature enables the user to feel that they are approaching the hard stop a few degrees of rotation before the hard stop is contacted. This feedback may enable the user to change the way they use the device, either through rotating their wrist to get additional rotation or to choose to rotate the device back to a neutral position to ensure they have enough rotation to accomplish the task they need to perform.
  • FIGS. 76A-76C illustrate the dynamics of the gate interaction with a rotation knob, where the rotation knob comprises a tactile feedback element.
  • FIG. 76A illustrates the gate 4924 in a left-biased position such that the rotation knob can be rotated 690Ā° clockwise until a contoured extrusion element 4930 on the rotation knob makes contact with the right wing 4906 A of the gate 4924 so that the left wing 4926 B of the gate 4924 prevents motion by reacting statically against the shroud 4922 .
  • the rotation knob contoured extrusion element 4930 is contacting the outside of the right wing 4926 A of the gate 4924 and is constrained to only move in a counter-clockwise direction.
  • a layer of (insert-molded) semi-compliant material 4938 may be located on either side or both sides of the contoured extrusion element 4930 .
  • the semi-compliant material 4938 could be made of rubber, medium to high density rubber, silicone, thermoplastic elastomers, springy piece of stainless steel, spring steel, copper, shape memory metals, and the like. Any of these semi-compliant materials 4938 can be insert molded or mechanically connected to the rotation knob.
  • FIG. 76B illustrates the rotation knob rotated back 360 degrees until it knocks the right wing 4926 A of the gate 4924 into a right-biased position.
  • the contoured extrusion element 4930 of the rotation knob contacts the inside of the right wing 4926 A of the gate 4924 , rotating the gate 4924 to the right as the knob rotates around.
  • the semi-compliant material 4938 provides tactile feedback to the user.
  • FIG. 76C illustrates the rotation knob after it rotates the right wing 4926 A of the gate 4924 into a right-biased position. Subsequently, the rotation knob can be rotated an additional 330Ā° until the contoured extrusion element 4930 of the rotation knob contacts the left wing 4926 B of the gate 4924 and the right wing 4926 A of the gate 4924 prevents motion by reacting statically against the shroud 4922 . After 690Ā° of rotation the rotation knob contacts the outside of the left wing 4926 B of the gate 4924 . The right wing 4926 A of the gate 4924 is contacting the shroud 4922 and is therefore stopping further rotation of the rotation knob in the counterclockwise direction.
  • the semi-compliant material 4938 provides tactile feedback to the user.
  • the semi-compliant material 4938 tactile feedback element mat enable the user to change the way they use the device, either through rotating their wrist to get additional rotation or to choose to rotate the device back to a neutral position to ensure they have enough rotation to accomplish the task they need to perform.
  • FIG. 77 illustrates an integrated RF/ultrasonic instrument 5000 electrically connected such that an ultrasonic blade/horn 5002 is electrically connected to a positive lead 5006 of an ultrasonic generator 5004 and is also coupled to an RF generator to provide spot coagulation by applying RF energy to tissue 5018 .
  • the integrated RF/ultrasonic instrument 5000 enables the touch up of diffuse bleeding (capillary bleeding, cut site oozing) without the need for ultrasonic coupling pressure.
  • the coupling pressure needed for ultrasonic instruments, to couple the blade to tissue such that friction-based tissue effect is effective is relatively high which results in (1) difficulty in applying enough pressure to generate hemostatic effect in loosely supported (i.e., un-clamped) tissue or (2) coupling pressure that generates too much tissue disruption that, in many cases, makes the diffuse bleeding worse.
  • the integrated RF/ultrasonic instrument 5000 is wired such that the horn/blade 5002 is directly connected to the positive lead 5006 of the generator 5004 .
  • Conventional ultrasonic devices are wired such that the negative/return lead is connected to the horn/blade.
  • a switch 5010 is provided to enable two device functionalities (1) ultrasonic and (2) bipolar (RF) to be performed. The first state of the switch 5010 connects the negative/return lead 5008 to the piezoelectric transducer (PZT) stack 5020 such that the generator 5004 drives the PZT stack 5020 .
  • PZT piezoelectric transducer
  • the second state of the switch 5010 isolates the PZT stack 5020 and connects the negative/return 5008 to the device tube 5016 and a movable jaw member 5022 (e.g., clamp arm) through an electrical conductor 5014 and allows the generator 5004 signal to be driven through tissue 5018 located between the blade 5002 and the clamp arm 5022 .
  • the resistance in the tissue 5018 seals the vessels.
  • Feedback signals also may be provided back to the generator 5004 to adjust signal parameters (e.g., amplitude, frequency, pulsing, modulation, etc.)
  • the integrated RF/ultrasonic instrument 5000 may comprise a sealing button, wherein, when pressed, the generator 5004 may produce bipolar RF energy through the handpiece and into the ultrasonic blade 5002 and return through the clamp arm 5022 .
  • the electrical RF current may travel around the outside of the blade 5002 and create a robust bi-polar seal. The duration of the bipolar RF energy may be about one second, after which an algorithm may cause the generator 5004 to switch to the ultrasonic power curve, wherein the blade 5002 would be activated and the cut completed in the middle of two RF seals.
  • Ultrasonic cutting also may provide some sealing.
  • the application of RF energy provides added confidence that there is an RF seal in place on each side of the blade 5002 .
  • the RF/ultrasonic device comprises a blade or clamp arm or both with the distal end coated with thermally and electrically insulative material, wherein a distal end of the blade or clamp arm or both may have varying degrees of exposed (uncoated) areas that will be application dependent.
  • the exposed area on the blade or clamp arm or both may vary depending on application and may be either symmetrical or asymmetrical.
  • the exposed area on the blade may comprise at least one exposed area/segment separated by at least one coated segment.
  • a process of masking the blade or clamp arm or both to generate exposed area is provided. Alternatively, coating may be selectively removed to produce the same desired effect. Specific embodiments of such coated blades are described hereinbelow in connection with FIGS. 80-95 .
  • FIG. 78 illustrates one embodiment of an integrated RF/ultrasonic instrument 5030 electrically connected to an energy source such as a generator 5032 comprising four-lead jack connector 5046 is mated with a slidable female mating plug 5048 .
  • FIG. 79 is a detail view of the four-lead jack connector 5046 mated with a slidable female mating plug 5048 coupled to an ultrasonic transducer 5034 .
  • the generator 5032 may comprise a first ultrasonic energy source such as ultrasonic generator 5040 and a second RF energy source such as an RF generator 5044 either individually or integrated into the same housing.
  • An ultrasonic transducer 5034 is electrically connected to positive and negative leads 5036 (H+), 5038 (H ā‡ ) of the ultrasonic generator 5040 .
  • a monopolar positive lead 5042 (M+) is coupled to the RF generator 5044 .
  • a four-lead jack connector 5046 is mated with a slidable female mating plug 5048 to electrically engage either 1) connection of the ultrasonic generator 5040 leads 5036 , 5038 to the ultrasonic transducer 5034 or 2) connection of the monopolar RF generator 5044 lead 5042 to the transducer 5034 to prevent connecting both the ultrasonic generator 5040 and the monopolar RF generator 5044 to the transducer 5034 at the same time.
  • the female connector may be integrated in the device and the four lead jack may be mated to a generator.
  • a slidable switch 5074 comprises a slidable female connector 5048 configured to receive a rotatable jack connector 5046 .
  • the rotatable jack connector 5046 is used for mating with the slidable female connector 5048 for providing an electrical connection between two electrical devices, such as the transducer 5034 and the generator 5032 .
  • the rotatable jack connector 5046 comprises a tip terminal portion 5064 at a front end thereof, a ground terminal portion 5052 at a rear end thereof and two intermediate terminal portions 5056 , 5060 to the tip and ground terminal portions 5064 , 5052 .
  • the terminal portions 5052 , 5056 , 5060 , 5064 are electrically separated from each other by dielectric insulators 5054 .
  • the ground terminal portion 5052 connects with a connecting portion of 5046. Since the structure of the rotatable mating plug 5046 is well known by those skilled in the art, detailed description thereof is omitted here.
  • Conductive terminal portions 1, 2, 3, 4 are electrically connected to terminal portions 5052 , 5056 , 5060 , 5064 .
  • Conductive terminal portions 3 and 4 are electrically connected to terminal portions 5060 , 5064 and are electrically connected to the transducer 5034 .
  • the slidable female connector 5048 is slidable between Position 1 and Position 2. Position 1 may be configured to correspond with ultrasonic mode of operation and Position 2 may be configured to correspond with monopolar mode of operation.
  • Position 1 the monopolar RF lead 5042 (M+) from the monopolar RF generator 5044 is disconnected physically from the transducer 5034 .
  • the slidable female connector 5048 comprises contact portions 5066 , 5068 , 5070 , 5072 configured to electrically engage terminal portions 5052 , 5056 , 5060 , 5064 .
  • the slidable female connector 5048 includes an actuator portion 5074 that enables the user to slide the slidable female connector 5048 between multiple positions. As shown in particular in FIG. 79 , the slidable female connector 5048 is slidably movable between Position 1 and Position 2, ultrasonic and monopolar RF modes.
  • Position 1 places the integrated RF/ultrasonic instrument 5030 in ultrasonic mode.
  • the contact portions 5066 , 5068 are electrically engaged with terminal portions 5060 , 5064 thereby electrically coupling positive and negative leads 5036 (H+), 5038 (H ā‡ ) of the ultrasonic generator 5040 to the transducer 5034 through conductive terminal portions 3 and 4 .
  • the monopolar positive lead 5042 (M+) coupled to the RF generator 5044 is physically disconnected from the transducer 5034 .
  • Position 2 places the integrated RF/ultrasonic instrument 5030 in monopolar RF mode.
  • the contact portions 5066 , 5068 are electrically engaged with terminal portions 5052 , 5056 thereby electrically coupling positive and negative leads 5036 (H+), 5038 (H ā‡ ) of the ultrasonic generator 5040 to isolated conductive terminal portions 1 and 2, effectively disconnecting the ultrasonic generator 5040 from the transducer 5034 .
  • contact portion 5070 electrically engages terminal portion 5060 thereby electrically coupling the monopolar positive lead 5042 (M+) of the RF generator 5044 to the transducer 5034 through conductive terminal portion 3.
  • Contact portion 5072 electrically engages terminal tip portion 5064 , which is electrically isolated, or open.
  • FIGS. 114A and 114B illustrate one embodiment of an integrated RF/ultrasonic surgical instrument, for example, the integrated RF/ultrasonic surgical instrument 5030 , comprising an integrated RF/ultrasonic end effector 6304 .
  • the integrated RF/ultrasonic end effector 6304 may be configured to deliver RF energy and/or ultrasonic energy to a tissue section.
  • FIG. 114A illustrates a clamping arm 6364 in an open position.
  • An ultrasonic blade 6366 is positioned such that the clamping arm 6364 and the ultrasonic blade 6366 may clamp tissue therebetween.
  • the ultrasonic blade 6366 is positioned within a heat shield 6322 .
  • FIG. 114B illustrates the integrated RF/ultrasonic end effector 6304 in a clamped position.
  • FIGS. 115A-115I illustrate various embodiments of a cross-section of the integrated RF/ultrasonic end effector 6304 taken along line A-A.
  • RF electrodes 6370 , 6372 may be located on and/or comprise any suitable portion of the integrated RF/ultrasonic end effector 6304 .
  • FIGS. 115A-115F illustrates various embodiments of the integrated RF/ultrasonic end effector 6304 comprising a bipolar electrode arrangement.
  • FIG. 115A illustrates one embodiment of the integrated RF/ultrasonic end effector 6304 a .
  • Positive electrodes 6370 a , 6372 b may be located on the tissue-facing portion of the clamp pad 6368 .
  • the clamp arm 6364 a may comprise a return, or negative, electrode.
  • FIG. 115B illustrates one embodiment of the integrated RF/ultrasonic end effector 6304 b .
  • the positive electrodes 6370 b , 6372 b are located on the heat shield 6322 .
  • An insulator 6374 may be located between the positive electrodes 6370 a , 6370 b and the heat shield 6322 to insulate heat shield 6322 .
  • the clamp arm 6364 may function as the return electrode.
  • FIG. 115C is similar to FIG.
  • FIG. 115A is similar to FIG. 115B , with the exception that the clamp arm 6364 d extends laterally beyond the insulating clamp pad 6368 d .
  • the clamp pad 6368 e comprises a positive electrode 6370 e and a negative electrode 6372 e .
  • the heat shield 6322 f comprises the positive electrode 6370 f and the negative electrode 6372 f.
  • FIGS. 115G-115I illustrate various embodiments of the integrated RF/ultrasonic end effector 6304 comprising a monopolar electrode.
  • the ultrasonic blade 6366 g comprises a monopolar electrode for delivering RF energy to a tissue section.
  • the clamp arm 6364 h comprises the monopolar electrode.
  • the heat shield 6322 i comprises the monopolar electrode.
  • FIGS. 117-118 illustrate one embodiment of an integrated RF/ultrasonic surgical instrument 6602 .
  • the integrated RF/ultrasonic instrument 6602 may comprise an insulated shaft 6614 .
  • the shaft 6614 and end effector 6604 including the jaw 6664 and ultrasonic blade 6666 , may be energized with monopolar RF energy.
  • the monopolar RF energy may be controlled by a double pole double throw (DPDT) selector switch 6620 located, for example, on the handle 6612 of the integrated RF/ultrasonic instrument 6602 .
  • the DPDT selector switch 6628 may switch the integrated RF/ultrasonic instrument 6602 from an ultrasonic generator 6620 to a monopolar RF generator 6622 .
  • DPDT double pole double throw
  • FIG. 118 illustrates one embodiment of a DPDT selector switch 6628 which may be configured to switch between the ultrasonic generator 6620 and the monopolar RF generator 6622 .
  • the DPDT selector switch 6628 may comprise a user toggle 6630 .
  • FIGS. 80-83 illustrate various views of an ultrasonic blade 5100 coated with an electrically insulative material 5102 to provide thermal insulation at the tissue contact area to minimize adhesion of tissue to the blade 5100 .
  • Conventional ultrasonic devices utilize one mode of treatment, which limits versatility.
  • conventional ultrasonic devices may be used for blood vessel sealing and transecting tissue.
  • Bipolar RF may offer added benefits such as a method for spot coagulation and pretreatment of tissue.
  • Incorporating ultrasonic and RF may provide versatility and increase effectiveness.
  • conventional ultrasonic devices utilize coatings to provide insulation at the distal end of the blade. These coatings are electrically insulative, and therefore limit current flow thus decreasing RF effectiveness. Additionally, current density may influence effectiveness.
  • the entire waveguide of the blade may be coated with such coating to prevent shorting of the blade to the tube assembly return path. It is also contemplated that a similar coating and masking procedure may be employed in the clamp arm in order to provide a suitable path for current flow. In order to incorporate both energy modes into one device, a masking process for blade tip coating or coating removal process may be required. Creating an exposed area on the surface of the blade may provide a suitable path for current flow.
  • an ultrasonic blade 5100 comprises a lubricious coating 5102 having properties similar to Teflon on the distal end of the blade 5100 as shown in FIGS. 80-83 .
  • the use of RF as a mode of treatment requires current to flow from the blade 5100 , through tissue, and to a movable jaw member generally referred to as a clamp arm.
  • the coating 5102 is used to provide thermal insulation at the contact area and minimize adhesion of tissue to blade 5100 .
  • the coating 5102 also is electrically insulative, which limits the amount of current flow.
  • a method of masking the blade 5100 or removing coating selectively may be used to create exposed surfaces.
  • the lubricious coating 5102 provided on the blade 5100 may extend proximally so as to could coat the whole blade 5100 , for example.
  • the blade 5100 may be coated back to the distal node.
  • FIGS. 84-93 illustrate various ultrasonic blades partially coated with an electrically insulative material to provide thermal and electrical insulation at the tissue contact area to minimize adhesion of tissue to the blade, where the lighter shade regions 5202 of the blade represent the coated portions and the darker shaded regions 5204 of the blade represent exposed surfaces that enable RF current to flow from the exposed region of the blade, through the tissue, and the movable jaw member.
  • the exposed surface is symmetrical.
  • the area on the blade that requires and exposed surface may be application dependent. Therefore, a different percentage of coating/exposed area has been illustrated is FIGS. 84-93 .
  • the embodiments are not limited to only the illustrated coverage.
  • FIGS. 94-95 illustrate two ultrasonic blades with non-symmetrical exposed surfaces, where the blades are coated with an electrically insulative material to provide thermal insulation at the tissue contact area to minimize adhesion of tissue to the blade, where the lighter shade regions 5302 of the blade represent the coated portions and the darker shaded regions 5304 of the blade represent exposed surfaces that enable RF current to flow from the exposed region of the blade, through the tissue, and the movable jaw member.
  • Current density may impact functionality and may be controlled by providing different surface areas.
  • the surface areas do not have to be symmetrical on each side of the blade tip and may differ depending on performance.
  • the exposed area may consist of two or more segments that are separated by at least one coated segment (not illustrated). Other coated/exposed geometries are possible as well, such as varying the depth or width of the exposed area along the axis of the blade.
  • the blade and/or the tube assembly may be electrically charged to repel surgical matter.
  • FIGS. 119A-119E illustrate various embodiments of integrated RF/ultrasonic surgical end effectors.
  • the clamp arm may comprise, for example, a circular clamp arm 6764 a , 6764 b , a hook clamp arm 6764 c , a circular clamp arm comprising a cavity 6764 d , or a curved hook clamp arm 6764 e .
  • the ultrasonic blade may comprise, for example, a rectangular ultrasonic blade 6766 a , 6766 c and/or an elliptical ultrasonic blade 6766 b .
  • FIGS. 120A-120C illustrate various embodiments of bipolar integrated RF/ultrasonic end effectors.
  • the clamp arm 6864 a may comprise first electrode and the ultrasonic blade 6866 a may comprise a second electrode.
  • the clamp arm 6864 a or the ultrasonic blade 6866 a may comprise a return electrode.
  • the clamp arm 6864 b may comprise an insulating pad 6868 to separate the clamp arm 6864 b from the ultrasonic blade 6866 b .
  • the clamp arm 6864 c may comprise both a first electrode 6870 and a second electrode 6872 .
  • the first and second electrodes 6870 , 6872 may be separated by an insulating portion of the clamp arm 6864 c.
  • FIGS. 121A-121C comprise various embodiment of monopolar integrated RF/ultrasonic end effectors.
  • the entire clamp arm 6964 a may comprise a monopolar electrode.
  • the clamp arm 6964 b may comprise an insulating pad 6968 .
  • a portion of the clamp arm 6964 b may comprise a monopolar electrode.
  • the clamp arm 6964 c and an ultrasonic blade 6966 may comprise a single monopolar electrode.
  • FIG. 96 is a perspective view of one embodiment of an ultrasonic end effector 5400 comprising a metal heat shield 5402 .
  • the ultrasonic end effector 5400 comprises a clamp arm 5410 .
  • the clamp arm 5410 comprises a movable jaw member 5408 (clamp arm), a tissue pad 5412 , an ultrasonic blade 5404 , and a heat shield 5402 provided at a distance from the ultrasonic blade 5404 .
  • the heat shield 5402 is metal and contains apertures 5406 for air flow which provides cooling to the heat shield 5402 and the ultrasonic blade 5404 .
  • the heat shield 5402 is disposed opposite of the movable jaw member 5408 .
  • FIG. 97 is a perspective view of another embodiment of an ultrasonic end effector 5420 comprising a retractable metal heat shield 5422 .
  • the ultrasonic end effector 5420 comprises a clamp arm 5430 .
  • the clamp arm 5430 comprises a movable jaw member 5428 , a tissue pad 5432 , an ultrasonic blade 5424 , and a heat shield 5422 provided at a distance from the ultrasonic blade 5424 .
  • the metal heat shield 5422 is attachable to the ultrasonic blade 5424 at the distal most node location.
  • the attachment means also acts as a heat sink 5422 to remove heat from the blade 5424 .
  • the heat shield 5422 is metal and contains apertures 5426 for air flow which provides cooling to the heat shield 5422 and the ultrasonic blade 5424 .
  • the heat shield 5422 is disposed opposite of the movable jaw member 5428 .
  • FIG. 98 is a side view of another embodiment of an ultrasonic end effector 5440 comprising a heat shield 5444 shown in cross-section.
  • the ultrasonic end effector 5440 comprises a clamp arm 5448 .
  • the clamp arm 5448 comprises a movable jaw member 5252 , an ultrasonic blade 5450 , and a heat shield 5444 that also acts as a heat sink 5442 .
  • a pad 5452 may be provided on the blade 5450 side of the movable jaw member 5252 to grasp tissue between the pad 5452 and the blade 5450 .
  • the attachment of the heat shield 5444 /heat sink 5442 is at a node location.
  • FIG. 99 is a front view of the ultrasonic end effector 5440 shown in FIG. 98 , according to one embodiment.
  • FIGS. 100-104 illustrate various views of one embodiment of an ultrasonic end effector 5460 comprising a dual purpose rotatable heat shield 5462 .
  • FIG. 100 illustrates one embodiment of a clamp arm 5464 comprising a movable jaw member 5464 shown in a closed position and a dual purpose rotatable heat shield 5462 located below an ultrasonic blade 5468 .
  • the ultrasonic end effector 5460 comprises a clamp arm 5464 having a movable jaw member 5470 , an ultrasonic blade 5468 , and the dual purpose rotatable heat shield 5462 .
  • the clamp arm 5464 comprises a movable jaw member 5470 , which is shown in FIG.
  • the heat shield 5462 is dual purposed and is rotatable about the blade 5468 .
  • the blade 5468 in this example is a straight/non-curved configuration. While the heat shield 5468 is disposed opposite of the movable jaw member 5470 (shears type end-effector), it acts as a heat shield 5462 . After rotation about the blade 5468 , the heat shield 5462 now is disposed between the blade 5468 and the movable jaw member 5470 providing a tissue clamping surface, backed by the blade 5468 providing strength/support for the heat shield 5468 . Also, the heat shield 5468 may be configured to provide energy opposite of the energy that may be provided on the movable jaw member 5470 creating a bi-polar energy that may effect tissue.
  • FIG. 101 illustrates one embodiment of a movable jaw member 5470 shown in an open position and a dual purpose rotatable heat shield 5462 rotated such that it is interposed between the movable jaw member 5470 and the blade 5468 .
  • FIG. 102 illustrates an end view of one embodiment of a dual purpose rotatable heat shield 5462 rotated in a first position.
  • FIG. 103 illustrates an end view of one embodiment of the dual purpose rotatable heat shield 5462 rotated in a second position.
  • the rotatable heat shield 5462 has purposeful alignment that enables a tapered portion of the shield 5642 to come in between the top of the blade 5468 surface and the movable jaw member 5470 . This rotation enables ā€œback cuttingā€ if necessary while still allowing normal activation shielding.
  • an inner contour of the shield 5462 may be configured for contact to ā€œcleanā€ the tip upon rotation if necessary.
  • rotation of the shield 5462 from the stage 1 position into the stage 2 position enables RF energy to be applied for sealing only. Bottom surface of shield could have grip to assist in grasping as well when rotated to position 2.
  • FIG. 104 is a top profile view of one embodiment of a heat shield 5462 showing a tapered portion of the shield 5462 .
  • the heat shield 5462 includes a tapered portion defined by radius R 1 relative to radius R 2 , where R 2 >R 1 .
  • FIGS. 116A-116B illustrates one embodiment of a cooling system for an ultrasonic surgical instrument.
  • Air 6416 may be forced down an inner tube 6406 of the ultrasonic surgical instrument 6302 and over an ultrasonic end effector 6404 .
  • the air movement over the ultrasonic end effector 6304 may cool the ultrasonic end effector 6404 .
  • cold air may be used to increase the cooling of the end effector 6404 .
  • Air 6416 may be moved in the direction of shown to cool the ultrasonic end effector 6404 through convection heat transfer from the ultrasonic end effector 6404 to the air.
  • a hospital air-line 6410 may be coupled to the ultrasonic instrument 6302 to provide compressed air flow through the inner tube 6406 .
  • a hand pump 6412 and a reservoir 6414 may be located in the proximal end of the surgical instrument 6402 , such as, for example, in the handle.
  • a clinician may operate the hand pump 6412 to generate air pressure within the reservoir 6414 .
  • the hand pump 6412 may comprise, for example, a squeeze bulb.
  • the reservoir 6414 and/or the hospital air-line 6410 may be force air over the ultrasonic end effector 6404 with each opening and/or closing of the jaws.
  • the reservoir 6414 and/or the hospital air-line 6410 may provide a continuous flow of air over the ultrasonic end effector.
  • the inner tube 6406 may comprise a vortex tub, illustrated in FIG. 116B .
  • the vortex tube may facilitate movement of air 6416 within the inner tube 6406 to travel distally 6418 through the inner tube 6406 , over the ultrasonic end effector 6404 , and return 6420 to the proximal end of the inner tube 6406 which may be open to release the air.
  • the distal end of the vortex tube may comprise a splitter to split the stream of air 6418 to cool the distal end of the ultrasonic end effector 6404 .
  • FIG. 105 illustrates a conventional rongeur surgical instrument 6000 .
  • Certain orthopedic procedures such as spinal fusion are used to treat degenerative spinal disk disease.
  • One of the most commonly used instruments is the rongeur 6000 as shown in FIG. 105 for the removal of the spinal disk, which is made up of a nucleus and a tough annulus.
  • the rongeur 6000 uses a 4-bar linkage in combination with a clamp arm 6002 comprising a movable jaw member 6004 to take bites of the spinal disk material.
  • a number of bites 10 to 20
  • the multiple use of the rongeur 6000 can be fatiguing.
  • FIG. 106 illustrates one embodiment of an ultrasonic energy driven rongeur device 6100 .
  • the ultrasonic energy driven rongeur device 6100 comprises an ultrasonic transducer 6102 is added to one member of a 4-bar mechanism.
  • the rongeur device 6100 also comprises two elongate horizontal members. As shown in FIG. 106 , only the lower horizontal member 6104 coupled to a handle 6106 is shown.
  • the two elongate horizontal members of the ultrasonic rongeur device 6100 are each attached to one handle 6106 of the ultrasonic rongeur device 6100 .
  • the horizontal members are connected with a small link at a distal end 6103 , and the forward handle 6106 is the second link. These four members approach parallel-rules.
  • the bottom horizontal member 6104 is basically a straight rod which does not move.
  • the lower horizontal member 6104 may be considered an ultrasonic waveguide. Accordingly, the rest of the rongeur device 6100 is attached to the lower horizontal arm 6104 at nodes.
  • the proximal end of the lower horizontal member 6104 can be attached to an ultrasonic transducer 6102 to produce ultrasonic displacement at the distal end 6103 . The amplitude of the ultrasonic displacement will aid in cutting the tissue and therefore reduce the force required by the surgeon.
  • ultrasonic driven rongeur device 6100 include, without limitation, a novel closure mechanism for ultrasonic instruments based on a 4-bar linkage, lower force required to take a bite of spinal disk material, reduce surgeon fatigue, and novel instrument architecture for additional applications.
  • an algorithm refers to a self-consistent sequence of steps leading to a desired result, where a ā€œstepā€ refers to a manipulation of physical quantities which may, though need not necessarily, take the form of electrical or magnetic signals capable of being stored, transferred, combined, compared, and otherwise manipulated. It is common usage to refer to these signals as bits, values, elements, symbols, characters, terms, numbers, or the like. These and similar terms may be associated with the appropriate physical quantities and are merely convenient labels applied to these quantities.
  • any reference to ā€œone aspect,ā€ ā€œan aspect,ā€ ā€œone embodiment,ā€ or ā€œan embodimentā€ means that a particular feature, structure, or characteristic described in connection with the aspect is included in at least one aspect.
  • appearances of the phrases ā€œin one aspect,ā€ ā€œin an aspect,ā€ ā€œin one embodiment,ā€ or ā€œin an embodimentā€ in various places throughout the specification are not necessarily all referring to the same aspect.
  • the particular features, structures or characteristics may be combined in any suitable manner in one or more aspects.
  • Coupled and ā€œconnectedā€ along with their derivatives. It should be understood that these terms are not intended as synonyms for each other. For example, some aspects may be described using the term ā€œconnectedā€ to indicate that two or more elements are in direct physical or electrical contact with each other. In another example, some aspects may be described using the term ā€œcoupledā€ to indicate that two or more elements are in direct physical or electrical contact. The term ā€œcoupled,ā€ however, also may mean that two or more elements are not in direct contact with each other, but yet still co-operate or interact with each other.
  • Some or all of the embodiments described herein may generally comprise technologies for ultrasonic and RF treatment of tissue, or otherwise according to technologies described herein.
  • electrical circuitry includes, but is not limited to, electrical circuitry having at least one discrete electrical circuit, electrical circuitry having at least one integrated circuit, electrical circuitry having at least one application specific integrated circuit, electrical circuitry forming a general purpose computing device configured by a computer program (e.g., a general purpose computer configured by a computer program which at least partially carries out processes and/or devices described herein, or a microprocessor configured by a computer program which at least partially carries out processes and/or devices described herein), electrical circuitry forming a memory device (e.g., forms of random access memory), and/
  • Examples of a signal bearing medium include, but are not limited to, the following: a recordable type medium such as a floppy disk, a hard disk drive, a Compact Disc (CD), a Digital Video Disk (DVD), a digital tape, a computer memory, etc.; and a transmission type medium such as a digital and/or an analog communication medium (e.g., a fiber optic cable, a waveguide, a wired communications link, a wireless communication link (e.g., transmitter, receiver, transmission logic, reception logic, etc.), etc.).
  • a recordable type medium such as a floppy disk, a hard disk drive, a Compact Disc (CD), a Digital Video Disk (DVD), a digital tape, a computer memory, etc.
  • a transmission type medium such as a digital and/or an analog communication medium (e.g., a fiber optic cable, a waveguide, a wired communications link, a wireless communication link (e.g., transmitter, receiver, transmission logic, reception
  • any two components so associated can also be viewed as being ā€œoperably connected,ā€ or ā€œoperably coupled,ā€ to each other to achieve the desired functionality, and any two components capable of being so associated can also be viewed as being ā€œoperably couplable,ā€ to each other to achieve the desired functionality.
  • operably couplable include but are not limited to physically mateable and/or physically interacting components, and/or wirelessly interactable, and/or wirelessly interacting components, and/or logically interacting, and/or logically interactable components.
  • one or more components may be referred to herein as ā€œconfigured to,ā€ ā€œconfigurable to,ā€ ā€œoperable/operative to,ā€ ā€œadapted/adaptable,ā€ ā€œable to,ā€ ā€œconformable/conformed to,ā€ etc.
  • ā€œconfigured toā€ can generally encompass active-state components and/or inactive-state components and/or standby-state components, unless context requires otherwise.
  • use of a system or method may occur in a territory even if components are located outside the territory.
  • use of a distributed computing system may occur in a territory even though parts of the system may be located outside of the territory (e.g., relay, server, processor, signal-bearing medium, transmitting computer, receiving computer, etc. located outside the territory).
  • a sale of a system or method may likewise occur in a territory even if components of the system or method are located and/or used outside the territory. Further, implementation of at least part of a system for performing a method in one territory does not preclude use of the system in another territory.
  • An ultrasonic surgical instrument comprising: a waveguide comprising a proximal end and a distal end, wherein the proximal end is coupled to an ultrasonic transducer; a tube defining a lumen, wherein the waveguide is located within the lumen; an end effector coupled to the distal end of the waveguide, the end effector comprising an ultrasonic blade and a clamp arm operatively coupled to the end effector; and a tissue accumulation impedance mechanism coupled to the end effector, wherein the tissue accumulation impedance mechanism is configured to prevent tissue from accumulating within the lumen.
  • tissue accumulation impedance mechanism comprises a boot barrier configured to create a seal between the tube and the end effector.
  • tissue accumulation impedance mechanism comprises one or more apertures in the tube.
  • apertures comprise one or more windows.
  • the apertures comprises one or more holes.
  • the tube comprises a distal portion, wherein the distal portion comprises a half-circle cross section.
  • the tube comprises one or more ribs formed on an inner side of the tube.
  • tissue accumulation impedance mechanism comprises a pump configured to provide a positive pressure flow between the blade and the tube, wherein the positive pressure flow prevents tissue ingress into the lumen.
  • the tissue accumulation impedance mechanism comprises a slidable tube disposed within the lumen, the slidable tube slidable from a first position to a second position, wherein in the first position the slidable tube is disposed over the blade, and wherein in the second position the blade is exposed.
  • An ultrasonic surgical instrument comprising: z waveguide comprising a proximal end and a distal end, wherein the proximal end is coupled to a transducer; an end effector coupled to the distal end of the waveguide, the end effector comprising at least one tissue retention feature; a clamp arm operatively coupled to the end effector.
  • the at least one tissue retention feature comprises one or more indentations/grooves/notches formed in the end effector.
  • An ultrasonic surgical instrument comprising: a waveguide comprising a proximal end and a distal end, wherein the proximal end is coupled to a transducer; an end effector operatively coupled to the distal end of the waveguide guide; a rotation shroud configured to rotate the waveguide; and a rotation stop mechanism coupled to the rotation shroud prevent rotation of the rotation knob beyond a predetermined rotation.
  • the shroud comprises: at least one channel; and at least one boss, the at least one boss located within the at least one channel, wherein the at least one boss has a predetermined lateral movement limit, wherein when the at least one boss reaches the predetermined lateral movement limit, the at least one boss prevents further rotation of the rotation knob.
  • the rotation stop comprises: a gate comprising a first wing and a second wing, wherein the first and second wings are disposed at an angle, wherein the gate is disposed within the shroud, and wherein the gate allows a predetermined angle of rotation of the shroud.
  • contoured extrusion element comprises a tactile feedback element.
  • the tactile feedback element comprises a semi-compliant material selected from the group consisting of rubber, medium to high density rubber, silicone, thermoplastic elastomer, springy piece of stainless steel, spring steel, copper, shape memory metal, and combinations of any thereof.
  • An ultrasonic surgical instrument comprising: a waveguide comprising a proximal end and a distal end, wherein the proximal end is coupled to a transducer; an end effector coupled to the distal end of the waveguide; a clamp arm operatively coupled to the end effector; and a tube disposed over the waveguide, wherein the tube comprises a counter deflection element, wherein the counter deflection element is configured to allow deflection of the blade, wherein the deflection of the blade counteracts a force placed on the blade by the clamp arm when in a clamped position.
  • a surgical instrument comprising: a waveguide comprising a proximal end and a distal end, wherein the proximal end is coupled to a signal source, the signal source configured to provide an ultrasonic signal and an electrosurgical signal; an end effector coupled to the waveguide; a clamp arm operatively coupled to the end effector; and a sealing button, wherein the sealing button causes the surgical instrument to deliver the electrosurgical signal to the end effector and the clamp arm for a first period, and wherein the sealing button causes the surgical instrument to deliver the ultrasonic signal to the blade for a second period, wherein the second period is subsequent to the first period.
  • a surgical instrument comprising: a waveguide comprising a proximal end and a distal end, wherein the proximal end is coupled to a transducer; an end effector coupled to the distal end of the waveguide; a tube disposed over the waveguide; a cam surface formed on an outer surface of the tube; and a clamp arm operatively coupled to the cam surface.
  • the surgical instrument of claim 38 comprising: a pivot pin located within a hole defined by the end effector, the pivot pin operatively coupled to the clamp arm, wherein the clamp arm pivots about the pivot pin.
  • a surgical instrument comprising: a waveguide comprising a proximal end and a distal end, wherein the proximal end is coupled to a transducer; an end effector coupled to the distal end of the waveguide, the end effector defining a pin hole; a rigid pin disposed within the pin hole; a clamp arm; and a four-bar linkage; wherein the four-bar linkage is operatively coupled to the clamp arm and the rigid pin, wherein the four-bar linkage is actuatable to move the clamp arm to a clamped position.
  • the surgical instrument of claim 40 comprising: an outer tube, wherein the outer tube is coupled to the four-bar linkage, and wherein the outer-tube actuates the four-bar linkage from a first position to a second position.
  • An ultrasonic surgical instrument comprising: a waveguide comprising a proximal end and a distal end, wherein the proximal end is coupled to a transducer; and an end effector coupled to the distal end of the waveguide, wherein the end effector is partially coated with thermally and electrically insulative material such that the distal end of the end effector comprises one or more exposed sections.
  • An ultrasonic surgical instrument comprising: a waveguide comprising a proximal end and a distal end, wherein the proximal end is coupled to a transducer; and an end effector coupled to the distal end of the waveguide, a clamp arm operatively connected to the end effector wherein the clamp arm is partially coated with thermally and electrically insulative material such that the distal end of the clamp arm comprises one or more exposed sections.
  • the ultrasonic surgical instrument of claim 50 wherein the one or more exposed areas are symmetrical.
  • the ultrasonic surgical instrument of claim 50 wherein the waveguide is fully coated with thermally and electrically insulative material.
  • the ultrasonic surgical instrument of claim 50 wherein the waveguide is fully coated with thermally and electrically insulative material.
  • An ultrasonic surgical instrument comprising: a waveguide comprising a proximal end and a distal end, wherein the proximal end is coupled to a transducer; and an end effector coupled to the distal end of the waveguide, a clamp arm operatively connected to the end effector wherein the clamp arm and the end effector are partially coated with thermally and electrically insulative material such that the distal end of the end effector and clamp arm comprise one or more exposed sections.
  • the ultrasonic surgical instrument of claim 56 wherein the waveguide is fully coated with thermally and electrically insulative material.
  • An ultrasonic surgical instrument comprising: ultrasonic end effector comprising an ultrasonic surgical blade and a clamp arm; and a heat shield provided at a predetermined distance from the ultrasonic blade.
  • the ultrasonic instrument of 62 comprising a heat sink.
  • An integrated radio frequency (RF)/ultrasonic surgical instrument comprising: an ultrasonic transducer; a jack connector electrically coupled to the ultrasonic transducer; and a slidable female mating plug matable with the jack connector; wherein the slidable female mating plug is slidable in multiple positions to electrically couple the ultrasonic transducer to either an ultrasonic energy source or an RF energy source.
  • RF radio frequency
  • jack connector is a four-lead jack connector.
  • RF radio frequency
  • the slidable female mating plug in slidable between a first position and a second position; wherein in the first position the ultrasonic transducer is electrically coupled to the ultrasonic energy source and is electrically isolated from the RF energy source; and wherein in the second position the ultrasonic transducer is electrically coupled to the RF energy source and is electrically isolated from the ultrasonic energy source.
  • An ultrasonic energy driven rongeur device comprising: at least one elongate member; a linkage connected to a distal end of the at least one elongate member; an ultrasonic transducer coupled to the at least one elongate member; and a pivot located at an ultrasonic node of the at least one elongate member.
  • the ultrasonic energy driven rongeur device of claim 71 comprising: a second linkage connected to a proximal end of the at least one elongate member; and a second pivot located at a second ultrasonic of the at least one elongate member.
  • the ultrasonic energy driven rongeur device of claim 71 comprising: a second elongate member above the at least one elongate member; and a damping material disposed between the least one elongate member and the second elongate member.

Abstract

Disclosed are ultrasonic and electrosurgical devices. The disclosed embodiments include a surgical instrument comprising a waveguide and an end effector. The waveguide may comprise a proximal end and a distal end, wherein the proximal end is coupled to an ultrasonic transducer. The end effector may be coupled to the distal end of the waveguide. The end effector may comprise an ultrasonic blade and a clamp arm operatively coupled thereto. The blade may comprise one or more coated sections that are coated with a thermally and electrically insulative material and one or more exposed sections that are not coated with the thermally and electrically insulative material.

Description

    CROSS-REFERENCE TO RELATED APPLICATIONS
  • This application is a divisional application claiming priority under 35 U.S.C. Ā§121 to U.S. patent application Ser. No. 13/843,295, entitled ULTRASONIC AND ELECTROSURGICAL DEVICES, filed Mar. 15, 2013, now U.S. Patent Application Publication No. US 2014/0135804, which claims the benefit of U.S. Provisional Patent Application Ser. No. 61/726,890, filed Nov. 15, 2012, entitled ULTRASONIC AND ELECTROSURGICAL DEVICES, the disclosures of which are hereby incorporated by reference in their entirety.
  • INTRODUCTION
  • The present disclosure is related generally to ultrasonic and electrical surgical devices. More particularly, the present disclosure is related to various blade features for ultrasonic blades to improve tissue grasping, various seals and fluid egress features to prevent build up and accumulation of tissue and other bodily materials encountered during surgery on the distal portion of the tube(s) and the nearby portion of the blade of ultrasonic surgical devices, clamp closure mechanisms for ultrasonic end effectors to provide uniform clamp force, rotation mechanisms for ultrasonic transducers and devices, and combined electrosurgical and ultrasonic devices to provide tissue cutting and spot coagulation.
  • Ultrasonic surgical devices, such as ultrasonic scalpels, are used in many applications in surgical procedures by virtue of their unique performance characteristics. Depending upon specific device configurations and operational parameters, ultrasonic surgical devices can provide substantially simultaneous transection of tissue and hemostasis by coagulation, desirably minimizing patient trauma. An ultrasonic surgical device comprises a proximally-positioned ultrasonic transducer and an instrument coupled to the ultrasonic transducer having a distally-mounted end effector comprising an ultrasonic blade to cut and seal tissue. The end effector is typically coupled either to a handle and/or a robotic surgical implement via a shaft. The blade is acoustically coupled to the transducer via a waveguide extending through the shaft. Ultrasonic surgical devices of this nature can be configured for open surgical use, laparoscopic, or endoscopic surgical procedures including robotic-assisted procedures.
  • Ultrasonic energy cuts and coagulates tissue using temperatures lower than those used in electrosurgical procedures. Vibrating at high frequencies (e.g., 55,500 times per second), the ultrasonic blade denatures protein in the tissue to form a sticky coagulum. Pressure exerted on tissue by the blade surface in combination with a clamping mechanism collapses blood vessels and allows the coagulum to form a hemostatic seal. A surgeon can control the cutting speed and coagulation by the force applied to the tissue by the end effector, the time over which the force is applied and the selected excursion level of the end effector.
  • Also used in many surgical applications are electrosurgical devices. Electrosurgical devices apply electrical energy to tissue in order to treat tissue. An electrosurgical device may comprise an instrument having a distally-mounted end effector comprising one or more electrodes. The end effector can be positioned against tissue such that electrical current is introduced into the tissue. Electrosurgical devices can be configured for bipolar or monopolar operation. During bipolar operation, current is introduced into and returned from the tissue by active and return electrodes, respectively, of the end effector. During monopolar operation, current is introduced into the tissue by an active electrode of the end effector and returned through a return electrode (e.g., a grounding pad) separately located on a patient's body. Heat generated by the current flow through the tissue may form haemostatic seals within the tissue and/or between tissues and thus may be particularly useful for sealing blood vessels, for example. The end effector of an electrosurgical device sometimes also comprises a cutting member that is movable relative to the tissue and the electrodes to transect the tissue.
  • Electrical energy applied by an electrosurgical device can be transmitted to the instrument by a generator. The electrical energy may be in the form of radio frequency (ā€œRFā€) energy. RF energy is a form of electrical energy that may be in the frequency range of 300 kHz to 1 MHz. During its operation, an electrosurgical device can transmit low frequency RF energy through tissue, which causes ionic agitation, or friction, in effect resistive heating, thereby increasing the temperature of the tissue. Because a sharp boundary may be created between the affected tissue and the surrounding tissue, surgeons can operate with a high level of precision and control, without sacrificing adjacent tissues or critical structures. The low operating temperatures of RF energy may be useful for removing, shrinking, or sculpting soft tissue while simultaneously sealing blood vessels. RF energy may work particularly well on connective tissue, which is primarily comprised of collagen and shrinks when contacted by heat.
  • SUMMARY
  • In one embodiment, an ultrasonic surgical instrument comprises a waveguide comprising a proximal end and a distal end, wherein the proximal end is coupled to an ultrasonic transducer; an end effector coupled to the distal end of the waveguide; a tube comprising a lumen, wherein the waveguide is located within the lumen; a clamp arm pivotably connected to the tube; and a tissue accumulation impedance mechanism configured to prevent tissue from accumulating in the lumen.
  • In another embodiment of the ultrasonic surgical instrument, the tissue accumulation impedance mechanism comprises a boot barrier configured to create a seal between the tube and the end effector.
  • In another embodiment of the ultrasonic surgical instrument, the boot barrier is sealed to the tube using one or more retention features.
  • In another embodiment of the ultrasonic surgical instrument, the boot barrier comprises a cavity.
  • In another embodiment of the ultrasonic surgical instrument, the cavity is rounded to allow fluid to flow out of the cavity.
  • In another embodiment of the ultrasonic surgical instrument, the boot barrier comprises a plurality of contact points with the blade.
  • In another embodiment of the ultrasonic surgical instrument, the tissue accumulation impedance mechanism comprises one or more apertures in the tube.
  • In another embodiment of the ultrasonic surgical instrument, the apertures comprise one or more windows.
  • In another embodiment of the ultrasonic surgical instrument the apertures comprise one or more holes.
  • In another embodiment of the ultrasonic surgical instrument, the distal portion comprises a hemispherical cross section.
  • In another embodiment of the ultrasonic surgical instrument, the tube comprises one or more ribs formed on an inner side of the tube.
  • In another embodiment of the ultrasonic surgical instrument, the tissue accumulation impedance mechanism comprises a pump configured to provide a positive pressure flow between the blade and the tube, wherein the positive pressure flow prevents tissue ingress into the lumen.
  • In another embodiment of the ultrasonic surgical instrument, the pump or the outlet of the pump is located distally to a distal-most overmolded seal located within the lumen.
  • In another embodiment of the ultrasonic surgical instrument the tissue accumulation impedance mechanism comprises a slidable tube disposed within the lumen, the slidable tube slidable from a first position to a second position, wherein in the first position the slidable tube is disposed over the blade, and the second position the blade is exposed.
  • In one embodiment, an ultrasonic surgical instrument comprises a waveguide comprising a proximal end and a distal end, wherein the proximal end is coupled to an ultrasonic transducer; an end effector coupled to the distal end of the waveguide, the end effector comprising at least one tissue retention feature; a clamp arm operatively coupled to the end effector.
  • In another embodiment of the ultrasonic surgical instrument, the at least one tissue retention feature comprises one or more indentations/grooves/notches/texture formed in the end effector.
  • In another embodiment of the ultrasonic surgical instrument, the one or more indentations comprise triangular teeth.
  • In another embodiment of the ultrasonic surgical instrument, the one or more indentations comprise holes.
  • In another embodiment of the ultrasonic surgical instrument, the one or more indentations comprise horizontal trenches.
  • In another embodiment of the ultrasonic surgical instrument, the at least on tissue retention feature comprises one or more projections from the end effector.
  • In another embodiment of the ultrasonic surgical instrument, the one or more projections comprise triangular teeth.
  • In another embodiment of the ultrasonic surgical instrument, the one or more projections comprise blocks.
  • In another embodiment of the ultrasonic surgical instrument, the one or more projections comprise horizontal bumps.
  • In another embodiment of the ultrasonic surgical instrument, the one or more projections comprise circular bumps.
  • In another embodiment of the ultrasonic surgical instrument, the at least one tissue retention feature is disposed over an entire length of the blade.
  • In another embodiment of the ultrasonic surgical instrument, the at least one tissue retention feature is disposed over a discrete section of the blade.
  • In one embodiment, an ultrasonic surgical instrument comprises a waveguide comprising a proximal end and a distal end, wherein the proximal end is coupled to an ultrasonic transducer; an end effector operatively coupled to the distal end of the waveguide guide; a rotation shroud configured to rotate the waveguide; and a rotation stop mechanism coupled to the rotation shroud prevent rotation of the rotation knob beyond a predetermined rotation.
  • In another embodiment of the ultrasonic surgical instrument, the shroud comprises at least one channel; at least one boss, the at least one boss located within the at least one channel, wherein the at least one boss has a predetermined lateral movement limit, wherein when the at least one boss reaches the predetermined lateral movement limit, the at least one boss prevents further rotation of the rotation knob.
  • In another embodiment of the ultrasonic surgical instrument, the rotation stop comprises a gate comprising a first wing and a second wing, wherein the first and second wings are disposed at an angle, wherein the gate is disposed within the shroud and the gate allows a predetermined angle of rotation of the shroud.
  • In one embodiment, an ultrasonic surgical instrument comprises a waveguide comprising a proximal end and a distal end, wherein the proximal end is coupled to an ultrasonic transducer; an end effector coupled to the distal end of the waveguide; a clamp arm operatively coupled to the end effector; a tube disposed over the waveguide, wherein the tube comprises a counter deflection element, wherein the counter deflection element is configured to allow deflection of the blade, wherein the deflection of the blade counteracts a force placed on the blade by the clamp arm in a clamped position.
  • In one embodiment, a surgical instrument comprises a waveguide comprising a proximal end and a distal end, wherein the proximal end is coupled to a signal source, the signal source configured to provide an ultrasonic signal and an electrosurgical signal; an end effector coupled to the waveguide; a clamp arm operatively coupled to the end effector; and a sealing button, wherein the sealing button causes the surgical instrument to deliver the electrosurgical signal to the end effector and/or the clamp arm for a first period and the sealing button causes the surgical instrument to deliver the ultrasonic signal to the blade for a second period, wherein the second period is subsequent to the first period.
  • In another embodiment of the surgical instrument, the sealing button causes the surgical instrument to deliver the ultrasonic signal to the end effector prior to transmitting the electrosurgical signal to the end effector and/or clamp arm.
  • In another embodiment of the surgical instrument, the sealing button causes the surgical instrument to only deliver the ultrasonic signal to the end effector resulting in haemostatic transection of tissue. A separate spot coagulation button is provided on the handle. When the spot coagulation button is depressed, an electrosurgical signal is provided to either the end effector or the clamp arm or both to effect spot coagulation of tissue.
  • In another embodiment of the surgical instrument, wherein the electrosurgical signal is a monopolar RF signal.
  • In another embodiment of the surgical instrument, wherein the electrosurgical signal is a bipolar RF signal.
  • In one embodiment, a surgical instrument comprises a waveguide comprising a proximal end and a distal end, wherein the proximal end is coupled to an ultrasonic transducer; an end effector coupled to the distal end of the waveguide; a tube disposed over the waveguide; a cam surface formed on or in an outer surface of the tube; and a clamp arm, wherein the clamp arm is operatively coupled to the cam surface.
  • In another embodiment of the surgical instrument, a pivot pin is located within a hole defined by the end effector, the pivot pin operatively coupled to the clamp arm, wherein the clamp arm pivots about the pivot pin.
  • In another embodiment of the surgical instrument, the pivot pin is located at the distal most node of the waveguide.
  • In another embodiment of the surgical instrument, the tube is actuatable and the clamp arm is cammed open and closed against the end effector through relative motion between the tube and the end effector.
  • In one embodiment, a surgical instrument comprises a waveguide comprising a proximal end and a distal end, wherein the proximal end is coupled to an ultrasonic transducer; an end effector coupled to the distal end of the waveguide, the end effector defining a pin hole; a rigid pin disposed within the pin hole; a clamp arm operatively connected to the outer tube; and a four-bar linkage; wherein the four-bar linkage is operatively coupled to the clamp arm and the rigid pin, wherein the four-bar linkage is actuatable via end effector translation to move the clamp arm to a clamped position.
  • In another embodiment of the surgical instrument, an outer tube is coupled to the four-bar linkage and the outer-tube actuates the four-bar linkage from a first position to a second position.
  • In one embodiment, an ultrasonic surgical instrument comprises a waveguide comprising a proximal end and a distal end, wherein the proximal end is coupled to an ultrasonic transducer; an end effector coupled to the distal end of the waveguide, wherein the end effector is partially coated with thermally and electrically insulative material such that the distal end of the end effector comprises one or more exposed sections.
  • In another embodiment of the ultrasonic surgical instrument end effector, the one or more exposed areas are symmetrical.
  • In another embodiment of the ultrasonic surgical instrument end effector, the one or more exposed areas are asymmetrical.
  • In another embodiment of the ultrasonic surgical instrument end effector, the one or more exposed sections are separated by one or more coated sections.
  • In one embodiment, an ultrasonic surgical instrument comprises a waveguide comprising a proximal end and a distal end, wherein the proximal end is coupled to an ultrasonic transducer; an end effector coupled to the distal end of the waveguide, and a clamp arm is operatively connected to the end effector, wherein the clamp arm is partially coated with thermally and electrically insulative material such that the distal end of the clamp arm comprises one or more exposed sections.
  • In another embodiment of the ultrasonic surgical instrument clamp arm, the one or more exposed areas are symmetrical.
  • In another embodiment of the ultrasonic surgical instrument clamp arm, the one or more exposed areas are asymmetrical.
  • In another embodiment of the ultrasonic surgical instrument clamp arm, the one or more exposed sections are separated by one or more coated sections.
  • In one embodiment, an ultrasonic surgical instrument comprises a waveguide comprising a proximal end and a distal end, wherein the proximal end is coupled to an ultrasonic transducer; an end effector coupled to the distal end of the waveguide, and a clamp arm is operatively connected to the end effector, wherein the end effector and the clamp arm are partially coated with thermally and electrically insulative material such that the distal end of the end effector and clamp arm comprise one or more exposed sections.
  • In another embodiment of the ultrasonic surgical instrument, the one or more exposed areas are symmetrical.
  • In another embodiment of the ultrasonic surgical instrument, the one or more exposed areas are asymmetrical.
  • In another embodiment of the ultrasonic surgical instrument, the one or more exposed sections are separated by one or more coated sections.
  • The foregoing is a summary and thus may contain simplifications, generalizations, inclusions, and/or omissions of detail; consequently, those skilled in the art will appreciate that the summary is illustrative only and is NOT intended to be in any way limiting. Other aspects, features, and advantages of the devices and/or processes and/or other subject matter described herein will become apparent in the teachings set forth herein.
  • The foregoing summary is illustrative only and is not intended to be in any way limiting. In addition to the illustrative aspects, embodiments, and features described above, further aspects, embodiments, and features will become apparent by reference to the drawings and the following detailed description.
  • FIGURES
  • The novel features of the embodiments described herein are set forth with particularity in the appended claims. The embodiments, however, both as to organization and methods of operation may be better understood by reference to the following description, taken in conjunction with the accompanying drawings as follows.
  • FIG. 1 illustrates one embodiment of an ultrasonic blade with tooth-like grasping features formed on a grasping surface of the blade.
  • FIG. 2 illustrates one embodiment of the ultrasonic blade with tooth-like grasping features formed on a grasping portion of the blade, where the teeth are machined into the grasping portion of the blade.
  • FIG. 3 illustrates one embodiment of the ultrasonic blade with tooth-like grasping features formed on a grasping portion of the blade, where the teeth protrude from the grasping portion of the blade.
  • FIG. 4 illustrates one embodiment of an ultrasonic blade with protruding block-like grasping features formed on a grasping portion of the blade.
  • FIG. 5 is a side view of the ultrasonic blade shown in FIG. 4, according to one embodiment.
  • FIG. 6 illustrates one embodiment of an ultrasonic blade with protruding bump-like or spike-like grasping features formed on a grasping portion of the blade.
  • FIG. 7A is a side view of the ultrasonic blade shown in FIG. 6, according to one embodiment.
  • FIG. 7B shows bump-like protrusions, according to one embodiment.
  • FIG. 7C shows spike-like protrusions, according to one embodiment.
  • FIG. 8 illustrates one embodiment of an ultrasonic blade with cavity-like grasping features formed on a grasping portion of the blade.
  • FIG. 9A is a side view of the ultrasonic blade shown in FIG. 8 having cylindrical cavity-like grasping features partially formed into the grasping portion of the blade, according to one embodiment.
  • FIG. 9B is a side view of the ultrasonic blade shown in FIG. 8 having cylindrical cavity-like grasping features formed through the grasping portion of the blade, according to one embodiment.
  • FIG. 9C is a side view of the ultrasonic blade shown in FIG. 8 having conical cavity-like grasping features partially formed into the grasping portion of the blade, according to one embodiment.
  • FIG. 10 illustrates one embodiment of an ultrasonic blade with transverse bump-like grasping features formed on a grasping portion of the blade.
  • FIG. 11 is a side view of the ultrasonic blade shown in FIG. 10, according to one embodiment.
  • FIG. 12 is a side view of one embodiment of an end effector assembly comprising medical forceps having a movable jaw member and an ultrasonic blade having protrusions in the form of tooth-like grasping features formed on a grasping surface of the blade.
  • FIG. 13 is a top view of one embodiment of the medical forceps shown in FIG. 12 with the movable jaw member drawn in phantom line to show the ultrasonic blade positioned below the movable jaw member.
  • FIG. 14 is a side view illustrating one embodiment of an ultrasonic blade comprising tooth-like grasping features having triangular grooves formed on a grasping surface of the blade.
  • FIG. 15 is a top view of the ultrasonic blade shown in FIG. 14, according to one embodiment.
  • FIG. 16 is a side view illustrating one embodiment of an ultrasonic blade comprising tooth-like grasping features including horizontal trenches having repeated semicircular grooves formed on a grasping surface of the blade.
  • FIG. 17 is a top view of the ultrasonic blade shown in FIG. 16, according to one embodiment.
  • FIG. 18 is a top view illustrating one embodiment of an ultrasonic blade comprising grasping features including cavities formed on a grasping surface of the blade.
  • FIG. 19 illustrates one embodiment of an end effector assembly comprising a medical forceps having a movable jaw member and an ultrasonic blade with a flexible seal positioned over a proximal portion of the blade and a distal portion of a tube to seal the blade to an outer diameter of the tube.
  • FIG. 20 illustrates one embodiment of an end effector assembly comprising a medical forceps having a movable jaw member and an ultrasonic blade with a flexible seal positioned over a proximal portion of the blade and within a distal portion of a tube to seal the blade to an inner diameter of the tube.
  • FIG. 21 illustrates one embodiment of a slotted inner tube to conceal a lengthwise portion of an ultrasonic blade where the slots provide fluid egress to discharge surgical matter that may accumulate in a space between the blade and the inner tube.
  • FIG. 22 illustrates one embodiment of a perforated mutilated inner tube to conceal a lengthwise portion of an ultrasonic blade where the perforations provide fluid egress to discharge surgical matter that may accumulate in a space between the blade and the inner tube.
  • FIG. 23 illustrates one embodiment of a fluid-directing ribbed and perforated inner tube to conceal a lengthwise portion of an ultrasonic blade where the fluid-directing ribs and perforations provide fluid egress to discharge surgical matter that may accumulate in a space between the blade and the inner tube.
  • FIG. 24 is one embodiment of a fluid-directing ribbed and perforated inner tube comprising converging ducts
  • FIG. 25 illustrates one embodiment of a contoured seal to seal a space between a portion of an ultrasonic blade and an outer tube, where the flexible seal having two points of contact and defining a cavity for collecting surgical matter.
  • FIG. 26 illustrates one embodiment of a hybrid system comprising a contoured seal comprising a flexible membrane that acts as a pump to force surgical matter out of a distal inner tube area.
  • FIG. 27 illustrates one embodiment of a seal to seal a space between a portion of an ultrasonic blade and the tube, the flexible seal multiple points of contact and a low interference point of contact.
  • FIG. 28 illustrates etched areas formed on an outer surface of an ultrasonic blade to prevent tissue ingress, according to one embodiment.
  • FIG. 29 illustrates one embodiment of an end effector assembly comprising a medical forceps having a movable jaw member and a slidable ultrasonic blade partially retracted within a tube.
  • FIG. 30 illustrates one embodiment of an inner tube having machined windows formed therein to allow drainage between the inner and outer tubes.
  • FIG. 31 illustrates one embodiment of an end effector assembly comprising a medical forceps having a movable jaw member and an ultrasonic blade where the movable jaw member includes a pad with a tissue stop to deflect surgical matter where the tissue stop portion is contoured to the movable jaw member to cover an opening of the inner tube.
  • FIG. 32 illustrates one embodiment of a positive pressure fluid flow system to apply a positive pressure fluid flow between an outer tube and an ultrasonic blade at distal end thereof employing a pump or pump outlet located distal of a distal node.
  • FIG. 33 illustrates a portion of an end effector assembly comprising an ultrasonic blade including one embodiment of a flexible seal to seal the ultrasonic blade to a tube at a distal node, according to one embodiment.
  • FIG. 34 illustrates one embodiment of an end effector assembly comprising a medical forceps having a movable jaw member and an ultrasonic blade including a flexible seal positioned distal to an edge of the movable jaw member and anchored to a tube to prevent tissue pinching.
  • FIG. 35 illustrates one embodiment of a seal positioned within an inner tube and an ultrasonic blade positioned within the inner tube.
  • FIG. 36 illustrates one embodiment of a seal mechanism for an ultrasonic blade having a tapered inner tube portion distal to the last seal where the inner tube necks down to a smaller diameter at a distal end defining a reduce entry space for surgical matter.
  • FIG. 37 illustrates one embodiment of an overmolded flexible seal located over an inner tube that an ultrasonic blade punctures through during assembly.
  • FIG. 38 illustrates one embodiment of an end effector assembly comprising a medical forceps having a movable jaw member and an ultrasonic blade where the movable jaw member comprises a deflector pad to deflect surgical matter.
  • FIG. 39 is a front view of the deflector pad shown in FIG. 38, according to one embodiment.
  • FIG. 40 illustrates one embodiment of a seal system for an ultrasonic blade.
  • FIG. 41 illustrates one embodiment of a contoured inner tube or component that attaches to an inner tube to provide a circuitous path for fluid.
  • FIG. 42 illustrates one embodiment of a molded component with compliant arms that serve to block the distal opening of a tube assembly and is attached via the arms going around a pin in the blade at a node location.
  • FIG. 43 illustrates one embodiment of an overmolded silicone bumper that adheres to the inside of an inner tube.
  • FIGS. 44-47 illustrate one embodiment of how a pair of mandrels can be inserted into an inner tube from both ends to form the overmolded bumper in FIG. 43.
  • FIG. 48 illustrates one embodiment of an overmolded material affixed to an inner tube that does not seal to the ultrasonic blade.
  • FIG. 49 illustrates one embodiment of a positive fluid pressure system in which air is pumped down the length of the inner tube.
  • FIG. 50 illustrates one embodiment of an inner tube having a silicone seal attached thereto at minimal interference with ultrasonic blade.
  • FIG. 51 illustrates one embodiment of seal system for sealing an ultrasonic blade to a tube.
  • FIG. 52 illustrates one embodiment of a flexible seal located over an inner tube that an ultrasonic blade punctures through during assembly.
  • FIG. 53 illustrates one embodiment of an overmolded flexible seal attached to an ultrasonic blade distal of a distal seal.
  • FIG. 54 illustrates one embodiment of an overmolded flexible seal attached to an ultrasonic blade distal of a distal seal.
  • FIG. 55 illustrates one embodiment of a sealing system comprising multiple toroidal seals to seal an ultrasonic blade distal of a distal seal.
  • FIG. 56 illustrates one embodiment of an end effector assembly comprising a medical forceps having a movable jaw member in an open position, an ultrasonic blade, and a slidably movable inner tube including a wiping seal.
  • FIG. 57 illustrates one embodiment of the end effector assembly shown in FIG. 56 comprising a medical forceps having a movable jaw member in a closed position.
  • FIG. 58 illustrates one embodiment of an end effector assembly comprising a medical forceps having a movable jaw member in an open position shown in phantom line and a closed position shown in solid line, an ultrasonic blade, a slidably movable outer tube, and a fixed inner tube with a flexible seal located over the blade.
  • FIG. 59 illustrates one embodiment of an end effector assembly comprising a medical forceps having a movable jaw member in an open position, an ultrasonic blade, a slidably movable outer tube, and a fixed inner tube with a flexible seal overmolded on the inner tube.
  • FIG. 60 is a perspective view of one embodiment of an end effector assembly comprising a medical forceps having a movable jaw member and an ultrasonic blade where the movable jaw member is rotatably attached to a distal node.
  • FIG. 61 is a side view of one embodiment of the end effector assembly shown in FIG. 60 with the movable jaw member in an open position and shown transparent to show outer tube cam slots to rotate the movable jaw member upon relative motion between the blade and the outer tube.
  • FIG. 62 illustrates one embodiment of the end effector assembly shown in FIG. 60 showing the movable jaw member pivot.
  • FIG. 63 is a side view of one embodiment of an end effector assembly comprising a medical forceps having a movable jaw member in a closed position and an ultrasonic blade, the end effector assembly comprising a linkage to open and close the movable jaw member by employing relative motion between the outer tube and the blade.
  • FIG. 64 is a side view of the end effector assembly shown in FIG. 63 with the movable jaw member in an open position, according to one embodiment.
  • FIG. 65 is a bottom view of the end effector assembly shown in FIG. 63 with the movable jaw member in an open position, according to one embodiment.
  • FIG. 66 is a perspective view of the end effector assembly shown in FIG. 63 with the movable jaw member in an open position, according to one embodiment.
  • FIG. 67 is a perspective view of the end effector assembly shown in FIG. 63 with the movable jaw member in an open position, according to one embodiment.
  • FIG. 68 is a perspective view of one embodiment of an end effector assembly comprising a medical forceps having a movable jaw member and an ultrasonic blade with the movable jaw member shown in an open position, where an outer tube is translated with respect to the blade to open and close the movable jaw member.
  • FIG. 69 is a perspective view of the inner tube with the outer tube removed, where the inner tube is operatively coupled to the end effector assembly shown in FIG. 68, according to one embodiment.
  • FIG. 70 is a perspective view of a notch portion of the inner tube shown in FIG. 69, according to one embodiment.
  • FIG. 71 illustrates one embodiment of an end effector assembly comprising a medical forceps having a movable jaw member in a closed position, an ultrasonic blade, and a shaft assembly configured to counteract deflection of the blade.
  • FIG. 72 illustrates one embodiment of an ultrasonic transducer having a modified flange incorporating external threads to allow transducer rotation.
  • FIG. 73 is a sectional view of one embodiment of an ultrasonic transducer rotation system comprising a shroud and a gate fitted into one-half of the shroud.
  • FIGS. 74A-74C illustrate the dynamics of the gate interaction with a rotation knob, according to one embodiment.
  • FIG. 74A illustrates the gate in a left-biased position such that the rotation knob can be rotated approximately 690 degrees clockwise until a contoured extrusion element on the rotation knob makes contact with the right wing of the gate so that the left wing of the gate prevents motion by reacting statically against the shroud, according to one embodiment.
  • FIG. 74B illustrates the rotation knob rotated back 360Ā° until it knocks the right wing of the gate into a right-biased position, according to one embodiment.
  • FIG. 74C illustrates the rotation knob after it knocks the right wing of the gate into a right-biased position, according to one embodiment.
  • FIG. 75 is a sectional view of one embodiment of an ultrasonic transducer rotation system comprising a shroud and a gate fitted into one-half of the shroud, where the rotation system comprises a tactile feedback element.
  • FIGS. 76A-76C illustrate the dynamics of the gate interaction with a rotation knob, where the rotation knob comprises a tactile feedback element, according to one embodiment.
  • FIG. 76A illustrates the gate in a left-biased position such that the rotation knob comprising a tactile feedback element can be rotated approximately 690 degrees clockwise until a contoured extrusion element on the rotation knob makes contact with the right wing of the gate so that the left wing of the gate prevents motion by reacting statically against the shroud, according to one embodiment.
  • FIG. 76B illustrates the rotation knob comprising a tactile feedback element rotated back 360Ā° until it knocks the right wing of the gate into a right-biased position, according to one embodiment.
  • FIG. 76C illustrates the rotation knob comprising a tactile feedback element after it knocks the right wing of the gate into a right-biased position, according to one embodiment.
  • FIG. 77 illustrates one embodiment of an integrated RF/ultrasonic instrument electrically connected such that the ultrasonic blade/horn is electrically connected to a positive lead of an ultrasonic generator coupled to the instrument to provide RF spot coagulation. The clamp arm and tube are connected to the return path.
  • FIG. 78 illustrates one embodiment of an integrated RF/ultrasonic instrument comprising four-lead jack connector mated with a slidable female mating plug electrically connected to a generator.
  • FIG. 79 is a detail view of one embodiment of a four-lead jack connector mated with a slidable female mating plug coupled to an ultrasonic transducer where position 1 provides an ultrasonic signal to the transducer, and where position 2 provides an electrosurgical signal to the device.
  • FIGS. 80-83 illustrate various embodiments of ultrasonic blades coated with an electrically insulative material to provide thermal insulation at the tissue contact area to minimize adhesion of tissue to the blade.
  • FIGS. 84-93 illustrate various embodiments of ultrasonic blades partially coated with an electrically insulative material to provide thermal insulation at the tissue contact area to minimize adhesion of tissue to the blade, where the lighter shade regions of the blade represent the coated portions and the darker shaded regions of the blade represent exposed surfaces that enable RF current to flow from the exposed region of the blade, through the tissue, and the movable jaw member. It is conceivable that this feature may be employed on the blade, the clamp arm, or both.
  • FIGS. 94-95 illustrate embodiments of two ultrasonic blades with non-symmetrical exposed surface, where the blades are coated with an electrically insulative material to provide thermal insulation at the tissue contact area to minimize adhesion of tissue to the blade, where the lighter shade regions of the blade represent the coated portions and the darker shaded regions of the blade represent exposed surfaces that enable RF current to flow from the exposed region of the blade, through the tissue, and the movable jaw member. It is conceivable that this feature may be employed on the blade, the clamp arm, or both.
  • FIG. 96 is a perspective view of one embodiment of an ultrasonic end effector comprising a metal heat shield.
  • FIG. 97 is a perspective view of another embodiment of an ultrasonic end effector comprising a retractable metal heat shield.
  • FIG. 98 is a side view of another embodiment of an ultrasonic end effector comprising a heat shield shown in cross-section.
  • FIG. 99 is a front view of the ultrasonic end effector shown in FIG. 98, according to one embodiment.
  • FIG. 100 illustrates one embodiment of a clamp arm comprising a movable jaw member shown in a closed position and a dual purpose rotatable heat shield located below the ultrasonic blade.
  • FIG. 101 illustrates one embodiment of a movable jaw member shown in an open position and a dual purpose rotatable heat shield rotated such that it is interposed between the movable jaw member and the blade.
  • FIG. 102 illustrates an end view of one embodiment of a dual purpose rotatable heat shield rotated in a first position.
  • FIG. 103 illustrates an end view of one embodiment of the dual purpose rotatable heat shield rotated in a second position.
  • FIG. 104 is a top profile view of one embodiment of a heat shield showing a tapered portion of the shield.
  • FIG. 105 illustrates a conventional rongeur surgical instrument.
  • FIG. 106 illustrates one embodiment of an ultrasonic energy driven rongeur device.
  • FIG. 107 illustrates one embodiment of a surgical system including a surgical instrument and an ultrasonic generator.
  • FIG. 108 illustrates one embodiment of the surgical instrument shown in FIG. 107.
  • FIG. 109 illustrates one embodiment of an ultrasonic end effector.
  • FIG. 110 illustrates another embodiment of an ultrasonic end effector.
  • FIG. 111 illustrates an exploded view of one embodiment of the surgical instrument shown in FIG. 107.
  • FIGS. 112A and 112B illustrate one embodiment of an unlimited rotation connection for an integrated transducer
  • FIGS. 113A-113C illustrate one embodiment of an unlimited rotation connection for an integrated transducer.
  • FIGS. 114A and 114B illustrate one embodiment of an integrated RF/ultrasonic surgical end effector.
  • FIGS. 115A-115I illustrate various electrode arrangements for the integrated RF/ultrasonic surgical end effector of FIGS. 114A and 114B.
  • FIG. 116A illustrates one embodiment of an air cooled surgical instrument.
  • FIG. 116B illustrates one embodiment of a vortex tube.
  • FIG. 117 illustrates one embodiment of an integrated RF/ultrasonic surgical instrument comprising a double pole double throw switch.
  • FIG. 118 illustrates one embodiment of a double pole double throw switch.
  • FIGS. 119A-119E illustrate various embodiments of combination RF/ultrasonic end effectors.
  • FIGS. 120A-120C illustrate various embodiments of bipolar combination RF/ultrasonic end effectors.
  • FIGS. 121A-121C illustrate various embodiments of monopolar combination RF/ultrasonic end effectors.
  • DESCRIPTION
  • Before explaining the various embodiments of the ultrasonic and electrical surgical devices in detail, it should be noted that the various embodiments disclosed herein are not limited in their application or use to the details of construction and arrangement of parts illustrated in the accompanying drawings and description. Rather, the disclosed embodiments are may be positioned or incorporated in other embodiments, variations and modifications thereof, and may be practiced or carried out in various ways. Accordingly, embodiments of the ultrasonic and electrical surgical devices disclosed herein are illustrative in nature and are not meant to limit the scope or application thereof. Furthermore, unless otherwise indicated, the terms and expressions employed herein have been chosen for the purpose of describing the embodiments for the convenience of the reader and are not to limit the scope thereof. In addition, it should be understood that any one or more of the disclosed embodiments, expressions of embodiments, and/or examples thereof, can be combined with any one or more of the other disclosed embodiments, expressions of embodiments, and/or examples thereof, without limitation.
  • In the following description, like reference characters designate like or corresponding parts throughout the several views. Also, in the following description, it is to be understood that terms such as front, back, inside, outside, top, bottom and the like are words of convenience and are not to be construed as limiting terms. Terminology used herein is not meant to be limiting insofar as devices described herein, or portions thereof, may be attached or utilized in other orientations. The various embodiments will be described in more detail with reference to the drawings.
  • In various embodiments, the present disclosure is related to various embodiments of ultrasonic blades comprising various grasping features. Conventional ultrasonic blades lack grasping features. Such grasping features may be desirable on a gripping surface of an ultrasonic blade to provide additional gripping and to prevent tissue milking during grasping and treatment, which in some cases may improve hemostasis. Tissue milking occurs when a tissue section slides, or milks, out of the jaws of a surgical device during treatment. The present disclosure provides various blade modification features to prevent tissue milking, as well as provide better grasping forces.
  • In various embodiments, the present disclosure is related to various embodiments of devices configured to prevent ingress of surgical matter, e.g., fluid and tissue, in the space between an ultrasonic blade and an inner or outer tube distal of the distal seal. Two main categories of embodiments are described. First, a pressure or energy source attached to the blade-tube subassembly prevents fluid or tissue ingress into the space between the blade and the inner tube. Second, a flexible membrane(s) attached to either the blade or the inner tube prevents fluid or tissue ingress.
  • In various embodiments, the present disclosure also is related to various embodiments of alternate closure mechanisms for ultrasonic devices. Present ultrasonic devices utilize a tube-in-tube (TnT) closure mechanism to enable closure of the clamp arm, referred to herein as a movable jaw member, against an active length of the ultrasonic blade. The present embodiments of alternate closure mechanisms for ultrasonic devices may yield several advantages. For example, there may be differences among the drag force of actuating the inner tube against the outer tube resulting in variation in device clamp force. Additionally, the pivot location of the clamp arm on the outer tube causes a sharp angular closure, and results in a non-uniform closure profile. Furthermore, present device mechanism may be sensitive to variation in components, as the stackup links the inner and outer tube at the location of the insulated pin, which currently resides near the proximal end of the tube assembly.
  • In various embodiments, the present disclosure also is related to various embodiments of shaft assembly/transducer rotation limiters to limit the rotation of the shaft and ultrasonic transducer.
  • In various embodiments, the present disclosure also is related to various embodiments of shaft/ultrasonic transducer rotation systems to provide unlimited continuous rotation of an ultrasonic device. In various embodiments, tactile feedback may be provided to the user before a hard stop is hit.
  • In various embodiments, the present disclosure also is related to various embodiments of an integrated RF/ultrasonic instrument electrically connected to provide RF spot coagulation energy for pre- or post-ultrasonic treatment of tissues with an ultrasonic/RF generator. The integrated ultrasonic instrument enables the touch up of diffuse bleeding (capillary bleeding, cut site oozing) or pre-treatment of tissue without the need for coupling pressure and improves the coupling pressure needed for ultrasonic instruments to couple the blade to tissue such that friction-based tissue effect is effective. The integrated ultrasonic instrument reduces (1) difficulty in applying enough pressure to generate haemostatic effect in loosely supported (i.e., un-clamped) tissue or (2) coupling pressure that generates too much tissue disruption that, in many cases, makes the diffuse bleeding worse. In one embodiment, a four-lead jack connector is mated with a slidable female mating plug to electrically isolate a secondary RF generator from the ultrasonic transducer when switching between RF energy and ultrasonic energy.
  • In various embodiments, the present disclosure is also directed to ultrasonic blades comprising heat shields. The heat shields may be fixed, translatable or rotatable. The heat shield also may be used to conduct RF energy to target tissue.
  • In various embodiments, the present disclosure also is related to coated ultrasonic/RF blades. Ultrasonic blades are coated with an electrically insulative material to provide thermal insulation at the tissue contact area to minimize adhesion of tissue to the blade. Conventional ultrasonic devices utilize one mode of treatment, which limits versatility. For example, conventional ultrasonic devices may be used for blood vessel sealing and transecting tissue. Bipolar or monopolar RF may offer added benefits such as a method for spot coagulation and pretreatment of tissue. Incorporating ultrasonic and RF may provide versatility and increase effectiveness. However, conventional ultrasonic devices utilize coatings to provide reduced friction and thermal insulation at the distal end of the blade. These coatings are electrically insulative, and therefore limit current flow thus decreasing RF effectiveness. Additionally, current density may influence effectiveness. In order to incorporate both modes into one device, a masking or selective coating removal process may be required. Creating an exposed area on the surface of the blade may provide a suitable path for current flow. It is conceivable that the same principles may be applied to the clamping member as well.
  • General Surgical Instrument Overview
  • Before launching into a description of various embodiments, the present disclosures turns to the description of FIGS. 107-111, which describes various embodiments of a surgical system in which various embodiments of the ultrasonic and electrical surgical devices described in connection with FIGS. 1-106 may be practiced. Accordingly, FIG. 107 is a right side view of one embodiment of an ultrasonic surgical instrument 10. In the illustrated embodiment, the ultrasonic surgical instrument 10 may be employed in various surgical procedures including laparoscopic, endoscopic or traditional open surgical procedures. In one example embodiment, the ultrasonic surgical instrument 10 comprises a handle assembly 12, an elongated shaft assembly 14, and an ultrasonic transducer 16. The handle assembly 12 comprises a trigger assembly 24, a distal rotation assembly 13, and an activation switch assembly 28. The elongated shaft assembly 14 comprises an end effector assembly 26, which comprises elements to dissect tissue or mutually grasp, cut, and coagulate vessels and/or tissue, and actuating elements to actuate the end effector assembly 26. The handle assembly 12 is adapted to receive the ultrasonic transducer 16 at the proximal end. The ultrasonic transducer 16 is mechanically engaged to the elongated shaft assembly 14 and portions of the end effector assembly 26. The ultrasonic transducer 16 is electrically coupled to a generator 20 via a cable 22. Although the majority of the drawings depict a multiple end effector assembly 26 for use in connection with laparoscopic surgical procedures, the ultrasonic surgical instrument 10 may be employed in more traditional open surgical procedures and in other embodiments, may be configured for use in laparoscopic or endoscopic procedures. For the purposes herein, the ultrasonic surgical instrument 10 is described in terms of an laparoscopic instrument; however, it is contemplated that an open and/or endoscopic version of the ultrasonic surgical instrument 10 also may include the same or similar operating components and features as described herein.
  • In various embodiments, the generator 20 comprises several functional elements, such as modules and/or blocks. Different functional elements or modules may be configured for driving different kinds of surgical devices. For example, an ultrasonic generator module 21 may drive an ultrasonic device, such as the ultrasonic surgical instrument 10. In some example embodiments, the generator 20 also comprises an electrosurgery/RF generator module 23 for driving an electrosurgical device (or an electrosurgical embodiment of the ultrasonic surgical instrument 10). In various embodiments, the generator 20 may be formed integrally within the handle assembly 12. In such implementations, a battery would be co-located within the handle assembly 12 to act as the energy source.
  • In some embodiments, the electrosurgery/RF generator module 23 may be configured to generate a therapeutic and/or a sub-therapeutic energy level. In the example embodiment illustrated in FIG. 107, the generator 20 includes a control system 25 integral with the generator 20, and a foot switch 29 connected to the generator via a cable 27. The generator 20 may also comprise a triggering mechanism for activating a surgical instrument, such as the instrument 10. The triggering mechanism may include a power switch (not shown) as well as a foot switch 29. When activated by the foot switch 29, the generator 20 may provide energy to drive the acoustic assembly of the surgical instrument 10 and to drive the end effector 18 at a predetermined excursion level or provide the therapeutic/sub-therapeutic electromagnetic/RF energy. The generator 20 drives or excites the acoustic assembly at any suitable resonant frequency of the acoustic assembly and/or drives the therapeutic/sub-therapeutic electromagnetic/RF energy.
  • In one embodiment, the electrosurgical/RF generator module 23 may be implemented as an electrosurgery unit (ESU) capable of supplying power sufficient to perform bipolar electrosurgery using RF energy. In one embodiment, the ESU can be a bipolar ERBE ICC 350 sold by ERBE USA, Inc. of Marietta, Ga. In bipolar electrosurgery applications, as previously discussed, a surgical instrument having an active electrode and a return electrode can be utilized, wherein the active electrode and the return electrode can be positioned against, or adjacent to, the tissue to be treated such that current can flow from the active electrode to the return electrode through the tissue. Accordingly, the electrosurgical/RF module 23 generator may be configured for therapeutic purposes by applying electrical energy to the tissue T sufficient for treating the tissue (e.g., cauterization).
  • In one embodiment, the electrosurgical/RF generator module 23 may be configured to deliver a sub-therapeutic RF signal to implement a tissue impedance measurement module. In one embodiment, the electrosurgical/RF generator module 23 comprises a bipolar RF generator as described in more detail below. In one embodiment, the electrosurgical/RF generator module 12 may be configured to monitor electrical impedance Z, of tissue T and to control the characteristics of time and power level based on the tissue T by way of a return electrode on provided on a clamp member of the end effector assembly 26. Accordingly, the electrosurgical/RF generator module 23 may be configured for sub-therapeutic purposes for measuring the impedance or other electrical characteristics of the tissue T. Techniques and circuit configurations for measuring the impedance or other electrical characteristics of tissue T are discussed in more detail in commonly assigned U.S. Patent Publication No. 2011/0015631, titled ā€œElectrosurgical Generator for Ultrasonic Surgical Instruments,ā€ the disclosure of which is herein incorporated by reference in its entirety.
  • A suitable ultrasonic generator module 21 may be configured to functionally operate in a manner similar to the GEN300 sold by Ethicon Endo-Surgery, Inc. of Cincinnati, Ohio as is disclosed in one or more of the following U.S. patents, all of which are incorporated by reference herein: U.S. Pat. No. 6,480,796 (Method for Improving the Start Up of an Ultrasonic System Under Zero Load Conditions); U.S. Pat. No. 6,537,291 (Method for Detecting Blade Breakage Using Rate and/or Impedance Information); U.S. Pat. No. 6,662,127 (Method for Detecting Presence of a Blade in an Ultrasonic System); U.S. Pat. No. 6,678,899 (Method for Detecting Transverse Vibrations in an Ultrasonic Surgical System); U.S. Pat. No. 6,977,495 (Detection Circuitry for Surgical Handpiece System); U.S. Pat. No. 7,077,853 (Method for Calculating Transducer Capacitance to Determine Transducer Temperature); U.S. Pat. No. 7,179,271 (Method for Driving an Ultrasonic System to Improve Acquisition of Blade Resonance Frequency at Startup); and U.S. Pat. No. 7,273,483 (Apparatus and Method for Alerting Generator Function in an Ultrasonic Surgical System).
  • It will be appreciated that in various embodiments, the generator 20 may be configured to operate in several modes. In one mode, the generator 20 may be configured such that the ultrasonic generator module 21 and the electrosurgical/RF generator module 23 may be operated independently. Alternatively, the ultrasonic generator module 21 may be configured to selectively apply either ultrasonic energy or either therapeutic sub-therapeutic RF energy to the end effector.
  • For example, the ultrasonic generator module 21 may be activated to apply ultrasonic energy to the end effector assembly 26 and subsequently, either therapeutic sub-therapeutic RF energy may be applied to the end effector assembly 26 by the electrosurgical/RF generator module 23. As previously discussed, the subtherapeutic electrosurgical/RF energy may be applied to tissue clamped between clamp elements of the end effector assembly 26 to measure tissue impedance to control the activation, or modify the activation, of the ultrasonic generator module 21. Tissue impedance feedback from the application of the subtherapeutic energy also may be employed to activate a therapeutic level of the electrosurgical/RF generator module 23 to seal the tissue (e.g., vessel) clamped between claim elements of the end effector assembly 26.
  • In another embodiment, the ultrasonic generator module 21 and the electrosurgical/RF generator module 23 may be activated simultaneously. In one example, the ultrasonic generator module 21 is simultaneously activated with a sub-therapeutic RF energy level to measure tissue impedance simultaneously while the ultrasonic blade of the end effector assembly 26 cuts and coagulates the tissue (or vessel) clamped between the clamp elements of the end effector assembly 26. Such feedback may be employed, for example, to modify the drive output of the ultrasonic generator module 21. In another example, the ultrasonic generator module 21 may be driven simultaneously with electrosurgical/RF generator module 23 such that the ultrasonic blade portion of the end effector assembly 26 is employed for cutting the damaged tissue while the electrosurgical/RF energy is applied to electrode portions of the end effector clamp assembly 26 for sealing the tissue (or vessel). Alternatively, the ultrasonic and the electrosurgical/RF energy can be employed sequentially with a single activation to achieve a desired tissue effect.
  • When the generator 20 is activated via the triggering mechanism, in one embodiment electrical energy is continuously applied by the generator 20 to a transducer stack or assembly of the acoustic assembly. In another embodiment, electrical energy is intermittently applied (e.g., pulsed) by the generator 20. A phase-locked loop in the control system of the generator 20 may monitor feedback from the acoustic assembly. The phase lock loop adjusts the frequency of the electrical energy sent by the generator 20 to match the resonant frequency of the selected longitudinal mode of vibration of the acoustic assembly. In addition, a second feedback loop in the control system 25 maintains the electrical current supplied to the acoustic assembly at a pre-selected constant level in order to achieve substantially constant excursion at the end effector 18 of the acoustic assembly. In yet another embodiment, a third feedback loop in the control system 25 monitors impedance between electrodes located in the end effector assembly 26. Although FIGS. 107-111 show a manually operated ultrasonic surgical instrument, it will be appreciated that ultrasonic surgical instruments may also be used in robotic applications, for example, as described herein, as well as combinations of manual and robotic applications.
  • In ultrasonic operation mode, the electrical signal supplied to the acoustic assembly may cause the distal end of the end effector 18 to vibrate longitudinally in the range of, for example, approximately 20 kHz to 250 kHz. According to various embodiments, the blade 22 may vibrate in the range of about 40 kHz to 56 kHz, for example, at about 50.0 kHz. In other embodiments, the blade 22 may vibrate at other frequencies including, for example, about 31 kHz or about 80 kHz. The excursion of the vibrations at the blade can be controlled by, for example, controlling the amplitude of the electrical signal applied to the transducer assembly of the acoustic assembly by the generator 20. As noted above, the triggering mechanism of the generator 20 allows a user to activate the generator 20 so that electrical energy may be continuously or intermittently supplied to the acoustic assembly. The generator 20 also has a power line for insertion in an electro-surgical unit or conventional electrical outlet. It is contemplated that the generator 20 can also be powered by a direct current (DC) source, such as a battery. The generator 20 can comprise any suitable generator, such as Model No. GEN04, and/or Model No. GE11 available from Ethicon Endo-Surgery, Inc.
  • FIG. 108 is a left perspective view of one example embodiment of the ultrasonic surgical instrument 10 showing the handle assembly 12, the distal rotation assembly 13, the elongated shaft assembly 14, and the end effector assembly 26. In the illustrated embodiment the elongated shaft assembly 14 comprises a distal end 52 dimensioned to mechanically engage the end effector assembly 26 and a proximal end 50 that mechanically engages the handle assembly 12 and the distal rotation assembly 13. The proximal end 50 of the elongated shaft assembly 14 is received within the handle assembly 12 and the distal rotation assembly 13. More details relating to the connections between the elongated shaft assembly 14, the handle assembly 12, and the distal rotation assembly 13 are provided in the description of FIG. 98.
  • In the illustrated embodiment, the trigger assembly 24 comprises a trigger 32 that operates in conjunction with a fixed handle 34. The fixed handle 34 and the trigger 32 are ergonomically formed and adapted to interface comfortably with the user. The fixed handle 34 is integrally associated with the handle assembly 12. The trigger 32 is pivotally movable relative to the fixed handle 34 as explained in more detail below with respect to the operation of the ultrasonic surgical instrument 10. The trigger 32 is pivotally movable in direction 33A toward the fixed handle 34 when the user applies a squeezing force against the trigger 32. A spring element 98 (FIG. 111) causes the trigger 32 to pivotally move in direction 33B when the user releases the squeezing force against the trigger 32.
  • In one example embodiment, the trigger 32 comprises an elongated trigger hook 36, which defines an aperture 38 between the elongated trigger hook 36 and the trigger 32. The aperture 38 is suitably sized to receive one or multiple fingers of the user therethrough. The trigger 32 also may comprise a resilient portion 32 a molded over the trigger 32 substrate. The overmolded resilient portion 32 a is formed to provide a more comfortable contact surface for control of the trigger 32 in outward direction 33B. In one example embodiment, the overmolded resilient portion 32 a may be provided over a portion of the elongated trigger hook 36. The proximal surface of the elongated trigger hook 32 remains uncoated or coated with a non-resilient substrate to enable the user to easily slide their fingers in and out of the aperture 38. In another embodiment, the geometry of the trigger forms a fully closed loop which defines an aperture suitably sized to receive one or multiple fingers of the user therethrough. The fully closed loop trigger also may comprise a resilient portion molded over the trigger substrate.
  • In one example embodiment, the fixed handle 34 comprises a proximal contact surface 40 and a grip anchor or saddle surface 42. The saddle surface 42 rests on the web where the thumb and the index finger are joined on the hand. The proximal contact surface 40 has a pistol grip contour that receives the palm of the hand in a normal pistol grip with no rings or apertures. The profile curve of the proximal contact surface 40 may be contoured to accommodate or receive the palm of the hand. A stabilization tail 44 is located towards a more proximal portion of the handle assembly 12. The stabilization tail 44 may be in contact with the uppermost web portion of the hand located between the thumb and the index finger to stabilize the handle assembly 12 and make the handle assembly 12 more controllable.
  • In one example embodiment, the switch assembly 28 may comprise a toggle switch 30. The toggle switch 30 may be implemented as a single component with a central pivot 304 located within inside the handle assembly 12 to eliminate the possibility of simultaneous activation. In one example embodiment, the toggle switch 30 comprises a first projecting knob 30 a and a second projecting knob 30 b to set the power setting of the ultrasonic transducer 16 between a minimum power level (e.g., MIN) and a maximum power level (e.g., MAX). In another embodiment, the rocker switch may pivot between a standard setting and a special setting. The special setting provides one or more special programs to be implemented by the device. The toggle switch 30 rotates about the central pivot as the first projecting knob 30 a and the second projecting knob 30 b are actuated. The one or more projecting knobs 30 a, 30 b are coupled to one or more arms that move through a small arc and cause electrical contacts to close or open an electric circuit to electrically energize or de-energize the ultrasonic transducer 16 in accordance with the activation of the first or second projecting knobs 30 a, 30 b. The toggle switch 30 is coupled to the generator 20 to control the activation of the ultrasonic transducer 16. The toggle switch 30 comprises one or more electrical power setting switches to activate the ultrasonic transducer 16 to set one or more power settings for the ultrasonic transducer 16. The forces required to activate the toggle switch 30 are directed substantially toward the saddle point 42, thus avoiding any tendency of the instrument to rotate in the hand when the toggle switch 30 is activated.
  • In one example embodiment, the first and second projecting knobs 30 a, 30 b are located on the distal end of the handle assembly 12 such that they can be easily accessible by the user to activate the power with minimal, or substantially no, repositioning of the hand grip, making it suitable to maintain control and keep attention focused on the surgical site (e.g., a monitor in a laparoscopic procedure) while activating the toggle switch 30. The projecting knobs 30 a, 30 b may be configured to wrap around the side of the handle assembly 12 to some extent to be more easily accessible by variable finger lengths and to allow greater freedom of access to activation in awkward positions or for shorter fingers.
  • In the illustrated embodiment, the first projecting knob 30 a comprises a plurality of tactile elements 30 c, e.g., textured projections or ā€œbumpsā€ in the illustrated embodiment, to allow the user to differentiate the first projecting knob 30 a from the second projecting knob 30 b. It will be appreciated by those skilled in the art that several ergonomic features may be incorporated into the handle assembly 12. Such ergonomic features are described in U.S. Pat. App. Pub. No. 2009/055750 entitled ā€œErgonomic Surgical Instrumentsā€ which is incorporated by reference herein in its entirety.
  • In one example embodiment, the toggle switch 30 may be operated by the hand of the user. The user may easily access the first and second projecting knobs 30 a, 30 b at any point while also avoiding inadvertent or unintentional activation at any time. The toggle switch 30 may readily operated with a finger to control the power to the ultrasonic assembly 16 and/or to the ultrasonic assembly 16. For example, the index finger may be employed to activate the first contact portion 30 a to turn on the ultrasonic assembly 16 to a maximum (MAX) power level. The index finger may be employed to activate the second contact portion 30 b to turn on the ultrasonic assembly 16 to a minimum (MIN) power level. In another embodiment, the rocker switch may pivot the instrument 10 between a standard setting and a special setting. The special setting provides one or more special programs to be implemented by the instrument 10. The toggle switch 30 may be operated without the user having to look at the first or second projecting knob 30 a, 30 b. For example, the first projecting knob 30 a or the second projecting knob 30 b may comprise a texture or projections to tactilely differentiate between the first and second projecting knobs 30 a, 30 b without looking.
  • In other embodiments, the trigger 32 and/or the toggle switch 30 may be employed to actuate the electrosurgical/RF generator module 23 individually or in combination with activation of the ultrasonic generator module 21.
  • In one example embodiment, the distal rotation assembly 13 is rotatable without limitation in either direction about a longitudinal axis ā€œT.ā€ The distal rotation assembly 13 is mechanically engaged to the elongated shaft assembly 14. The distal rotation assembly 13 is located on a distal end of the handle assembly 12. The distal rotation assembly 13 comprises a cylindrical hub 46 and a rotation knob 48 formed over the hub 46. The hub 46 mechanically engages the elongated shaft assembly 14. The rotation knob 48 may comprise fluted polymeric features and may be engaged by a finger (e.g., an index finger) to rotate the elongated shaft assembly 14. The hub 46 may comprise a material molded over the primary structure to form the rotation knob 48. The rotation knob 48 may be overmolded over the hub 46. The hub 46 comprises an end cap portion 46 a that is exposed at the distal end. The end cap portion 46 a of the hub 46 may contact the surface of a trocar during laparoscopic procedures. The hub 46 may be formed of a hard durable plastic such as polycarbonate to alleviate any friction that may occur between the end cap portion 46 a and the trocar. The rotation knob 48 may comprise ā€œscallopsā€ or flutes formed of raised ribs 48 a and concave portions 48 b located between the ribs 48 a to provide a more precise rotational grip. In one example embodiment, the rotation knob 48 may comprise a plurality of flutes (e.g., three or more flutes). In other embodiments, any suitable number of flutes may be employed. The rotation knob 48 may be formed of a softer polymeric material overmolded onto the hard plastic material. For example, the rotation knob 48 may be formed of pliable, resilient, flexible polymeric materials including VersaflexĀ® TPE alloys made by GLS Corporation, for example. This softer overmolded material may provide a greater grip and more precise control of the movement of the rotation knob 48. It will be appreciated that any materials that provide adequate resistance to sterilization, are biocompatible, and provide adequate frictional resistance to surgical gloves may be employed to form the rotation knob 48.
  • In one example embodiment, the handle assembly 12 is formed from two (2) housing portions or shrouds comprising a first portion 12 a and a second portion 12 b. From the perspective of a user viewing the handle assembly 12 from the distal end towards the proximal end, the first portion 12 a is considered the right portion and the second portion 12 b is considered the left portion. Each of the first and second portions 12 a, 12 b includes a plurality of interfaces 69 (FIG. 111) dimensioned to mechanically align and engage each another to form the handle assembly 12 and enclosing the internal working components thereof. The fixed handle 34, which is integrally associated with the handle assembly 12, takes shape upon the assembly of the first and second portions 12 a and 12 b of the handle assembly 12. A plurality of additional interfaces (not shown) may be disposed at various points around the periphery of the first and second portions 12 a and 12 b of the handle assembly 12 for ultrasonic welding purposes, e.g., energy direction/deflection points. The first and second portions 12 a and 12 b (as well as the other components described below) may be assembled together in any fashion known in the art. For example, alignment pins, snap-like interfaces, tongue and groove interfaces, locking tabs, adhesive ports, may all be utilized either alone or in combination for assembly purposes.
  • In one example embodiment, the elongated shaft assembly 14 comprises a proximal end 50 adapted to mechanically engage the handle assembly 12 and the distal rotation assembly 13; and a distal end 52 adapted to mechanically engage the end effector assembly 26. The elongated shaft assembly 14 comprises an outer tubular sheath 56 and a reciprocating tubular actuating member 58 located within the outer tubular sheath 56. The proximal end of the tubular reciprocating tubular actuating member 58 is mechanically engaged to the trigger 32 of the handle assembly 12 to move in either direction 60A or 60B in response to the actuation and/or release of the trigger 32. The pivotably moveable trigger 32 may generate reciprocating motion along the longitudinal axis ā€œT.ā€ Such motion may be used, for example, to actuate the jaws or clamping mechanism of the end effector assembly 26. A series of linkages translate the pivotal rotation of the trigger 32 to axial movement of a yoke coupled to an actuation mechanism, which controls the opening and closing of the jaws of the clamping mechanism of the end effector assembly 26. The distal end of the tubular reciprocating tubular actuating member 58 is mechanically engaged to the end effector assembly 26. In the illustrated embodiment, the distal end of the tubular reciprocating tubular actuating member 58 is mechanically engaged to a clamp arm assembly 64, which is pivotable about a pivot point 70, to open and close the clamp arm assembly 64 in response to the actuation and/or release of the trigger 32. For example, in the illustrated embodiment, the clamp arm assembly 64 is movable in direction 62A from an open position to a closed position about a pivot point 70 when the trigger 32 is squeezed in direction 33A. The clamp arm assembly 64 is movable in direction 62B from a closed position to an open position about the pivot point 70 when the trigger 32 is released or outwardly contacted in direction 33B.
  • In one example embodiment, the end effector assembly 26 is attached at the distal end 52 of the elongated shaft assembly 14 and includes a clamp arm assembly 64 and a blade 66. The jaws of the clamping mechanism of the end effector assembly 26 are formed by clamp arm assembly 64 and the blade 66. The blade 66 is ultrasonically actuatable and is acoustically coupled to the ultrasonic transducer 16. The trigger 32 on the handle assembly 12 is ultimately connected to a drive assembly, which together, mechanically cooperate to effect movement of the clamp arm assembly 64. Squeezing the trigger 32 in direction 33A moves the clamp arm assembly 64 in direction 62A from an open position, wherein the clamp arm assembly 64 and the blade 66 are disposed in a spaced relation relative to one another, to a clamped or closed position, wherein the clamp arm assembly 64 and the blade 66 cooperate to grasp tissue therebetween. The clamp arm assembly 64 may comprise a clamp pad 69 to engage tissue between the blade 66 and the clamp arm 64. Releasing the trigger 32 in direction 33B moves the clamp arm assembly 64 in direction 62B from a closed relationship, to an open position, wherein the clamp arm assembly 64 and the blade 66 are disposed in a spaced relation relative to one another.
  • The proximal portion of the handle assembly 12 comprises a proximal opening 68 to receive the distal end of the ultrasonic assembly 16. The ultrasonic assembly 16 is inserted in the proximal opening 68 and is mechanically engaged to the elongated shaft assembly 14.
  • In one example embodiment, the elongated trigger hook 36 portion of the trigger 32 provides a longer trigger lever with a shorter span and rotation travel. The longer lever of the elongated trigger hook 36 allows the user to employ multiple fingers within the aperture 38 to operate the elongated trigger hook 36 and cause the trigger 32 to pivot in direction 33B to open the jaws of the end effector assembly 26. For example, the user may insert three fingers (e.g., the middle, ring, and little fingers) in the aperture 38. Multiple fingers allows the surgeon to exert higher input forces on the trigger 32 and the elongated trigger hook 36 to activate the end effector assembly 26. The shorter span and rotation travel creates a more comfortable grip when closing or squeezing the trigger 32 in direction 33A or when opening the trigger 32 in the outward opening motion in direction 33B lessening the need to extend the fingers further outward. This substantially lessens hand fatigue and strain associated with the outward opening motion of the trigger 32 in direction 33B. The outward opening motion of the trigger may be spring-assisted by spring element 98 (FIG. 111) to help alleviate fatigue. The opening spring force is sufficient to assist the ease of opening, but not strong enough to adversely impact the tactile feedback of tissue tension during spreading dissection.
  • For example, during a surgical procedure either the index finger may be used to control the rotation of the elongated shaft assembly 14 to locate the jaws of the end effector assembly 26 in a suitable orientation. The middle and/or the other lower fingers may be used to squeeze the trigger 32 and grasp tissue within the jaws. Once the jaws are located in the desired position and the jaws are clamped against the tissue, the index finger can be used to activate the toggle switch 30 to adjust the power level of the ultrasonic transducer 16 to treat the tissue. Once the tissue has been treated, the user the may release the trigger 32 by pushing outwardly in the distal direction against the elongated trigger hook 36 with the middle and/or lower fingers to open the jaws of the end effector assembly 26. This basic procedure may be performed without the user having to adjust their grip of the handle assembly 12.
  • FIGS. 109-110 illustrate the connection of the elongated shaft assembly 14 relative to the end effector assembly 26. As previously described, in the illustrated embodiment, the end effector assembly 26 comprises a clamp arm assembly 64 and a blade 66 to form the jaws of the clamping mechanism. The blade 66 may be an ultrasonically actuatable blade acoustically coupled to the ultrasonic transducer 16. The trigger 32 is mechanically connected to a drive assembly. Together, the trigger 32 and the drive assembly mechanically cooperate to move the clamp arm assembly 64 to an open position in direction 62A wherein the clamp arm assembly 64 and the blade 66 are disposed in spaced relation relative to one another, to a clamped or closed position in direction 62B wherein the clamp arm assembly 64 and the blade 66 cooperate to grasp tissue therebetween. The clamp arm assembly 64 may comprise a clamp pad 69 to engage tissue between the blade 66 and the clamp arm 64. The distal end of the tubular reciprocating tubular actuating member 58 is mechanically engaged to the end effector assembly 26. In the illustrated embodiment, the distal end of the tubular reciprocating tubular actuating member 58 is mechanically engaged to the clamp arm assembly 64, which is pivotable about the pivot point 70, to open and close the clamp arm assembly 64 in response to the actuation and/or release of the trigger 32. For example, in the illustrated embodiment, the clamp arm assembly 64 is movable from an open position to a closed position in direction 62B about a pivot point 70 when the trigger 32 is squeezed in direction 33A. The clamp arm assembly 64 is movable from a closed position to an open position in direction 62A about the pivot point 70 when the trigger 32 is released or outwardly contacted in direction 33B.
  • As previously discussed, the clamp arm assembly 64 may comprise electrodes electrically coupled to the electrosurgical/RF generator module 23 to receive therapeutic and/or sub-therapeutic energy, where the electrosurgical/RF energy may be applied to the electrodes either simultaneously or non-simultaneously with the ultrasonic energy being applied to the blade 66. Such energy activations may be applied in any suitable combinations to achieve a desired tissue effect in cooperation with an algorithm or other control logic.
  • FIG. 111 is an exploded view of the ultrasonic surgical instrument 10 shown in FIG. 108. In the illustrated embodiment, the exploded view shows the internal elements of the handle assembly 12, the handle assembly 12, the distal rotation assembly 13, the switch assembly 28, and the elongated shaft assembly 14. In the illustrated embodiment, the first and second portions 12 a, 12 b mate to form the handle assembly 12. The first and second portions 12 a, 12 b each comprises a plurality of interfaces 69 dimensioned to mechanically align and engage one another to form the handle assembly 12 and enclose the internal working components of the ultrasonic surgical instrument 10. The rotation knob 48 is mechanically engaged to the outer tubular sheath 56 so that it may be rotated in circular direction 54 up to 360Ā°. The outer tubular sheath 56 is located over the reciprocating tubular actuating member 58, which is mechanically engaged to and retained within the handle assembly 12 via a plurality of coupling elements 72. The coupling elements 72 may comprise an O-ring 72 a, a tube collar cap 72 b, a distal washer 72 c, a proximal washer 72 d, and a thread tube collar 72 e. The reciprocating tubular actuating member 58 is located within a reciprocating yoke 84, which is retained between the first and second portions 12 a, 12 b of the handle assembly 12. The yoke 84 is part of a reciprocating yoke assembly 88. A series of linkages translate the pivotal rotation of the elongated trigger hook 32 to the axial movement of the reciprocating yoke 84, which controls the opening and closing of the jaws of the clamping mechanism of the end effector assembly 26 at the distal end of the ultrasonic surgical instrument 10. In one example embodiment, a four-link design provides mechanical advantage in a relatively short rotation span, for example.
  • In one example embodiment, an ultrasonic transmission waveguide 78 is disposed inside the reciprocating tubular actuating member 58. The distal end 52 of the ultrasonic transmission waveguide 78 is acoustically coupled (e.g., directly or indirectly mechanically coupled) to the blade 66 and the proximal end 50 of the ultrasonic transmission waveguide 78 is received within the handle assembly 12. The proximal end 50 of the ultrasonic transmission waveguide 78 is adapted to acoustically couple to the distal end of the ultrasonic transducer 16 as discussed in more detail below. The ultrasonic transmission waveguide 78 is isolated from the other elements of the elongated shaft assembly 14 by a protective sheath 80 and a plurality of isolation elements 82, such as silicone rings. The outer tubular sheath 56, the reciprocating tubular actuating member 58, and the ultrasonic transmission waveguide 78 are mechanically engaged by a pin 74. The switch assembly 28 comprises the toggle switch 30 and electrical elements 86 a, 86 b to electrically energize the ultrasonic transducer 16 in accordance with the activation of the first or second projecting knobs 30 a, 30 b.
  • In one example embodiment, the outer tubular sheath 56 isolates the user or the patient from the ultrasonic vibrations of the ultrasonic transmission waveguide 78. The outer tubular sheath 56 generally includes a hub 76. The outer tubular sheath 56 is threaded onto the distal end of the handle assembly 12. The ultrasonic transmission waveguide 78 extends through the opening of the outer tubular sheath 56 and the isolation elements 82 isolate the ultrasonic transmission waveguide 24 from the outer tubular sheath 56. The outer tubular sheath 56 may be attached to the waveguide 78 with the pin 74. The hole to receive the pin 74 in the waveguide 78 may occur nominally at a displacement node. The waveguide 78 may screw or snap into the hand piece handle assembly 12 by a stud. Flat portions on the hub 76 enable the assembly to be torqued to a required level. In one example embodiment, the hub 76 portion of the outer tubular sheath 56 is preferably constructed from plastic and the tubular elongated portion of the outer tubular sheath 56 is fabricated from stainless steel. Alternatively, the ultrasonic transmission waveguide 78 may comprise polymeric material surrounding it to isolate it from outside contact.
  • In one example embodiment, the distal end of the ultrasonic transmission waveguide 78 may be coupled to the proximal end of the blade 66 by an internal threaded connection, preferably at or near an antinode. It is contemplated that the blade 66 may be attached to the ultrasonic transmission waveguide 78 by any suitable means, such as a welded joint or the like. Although the blade 66 may be detachable from the ultrasonic transmission waveguide 78, it is also contemplated that the single element end effector (e.g., the blade 66) and the ultrasonic transmission waveguide 78 may be formed as a single unitary piece.
  • In one example embodiment, the trigger 32 is coupled to a linkage mechanism to translate the rotational motion of the trigger 32 in directions 33A and 33B to the linear motion of the reciprocating tubular actuating member 58 in corresponding directions 60A and 60B. The trigger 32 comprises a first set of flanges 98 with openings formed therein to receive a first yoke pin 92 a. The first yoke pin 92 a is also located through a set of openings formed at the distal end of the yoke 84. The trigger 32 also comprises a second set of flanges 96 to receive a first end 92 a of a link 92. A trigger pin 90 is received in openings formed in the link 92 and the second set of flanges 96. The trigger pin 90 is received in the openings formed in the link 92 and the second set of flanges 96 and is adapted to couple to the first and second portions 12 a, 12 b of the handle assembly 12 to form a trigger pivot point for the trigger 32. A second end 92 b of the link 92 is received in a slot 384 formed in a proximal end of the yoke 84 and is retained therein by a second yoke pin 94 b. As the trigger 32 is pivotally rotated about the pivot point 190 formed by the trigger pin 90, the yoke translates horizontally along longitudinal axis ā€œTā€ in a direction indicated by arrows 60A, 60B.
  • Ultrasonic Blades with Various Grasping Features
  • FIGS. 1-11 illustrates various embodiments of ultrasonic blades comprising grasping features. Such grasping features may be included on a gripping surface of an ultrasonic blade to provide additional gripping and prevent tissue milking during grasping and treatment, which in some cases may improve hemostasis. Tissue milking occurs when a tissue section slides, or milks, out of the jaws of a surgical device during treatment. Blade modification features discussed below can prevent tissue milking, as well as provide better grasping forces.
  • A minimum grasping force for an ultrasonic clamp arm in a medical forceps having a movable jaw member is about 2.25 lb-f when clamped on a dry chamois while the device is inactive. During activation, however, the tissue may milk out of the jaws either proximally or distally. The blade 100 comprising the tooth-like grasping features 102 for an ultrasonic shears device can help prevent tissue milking as well as provide better grasping forces.
  • Grasping features may take the form of several shapes as described in connection with FIGS. 1-11, for example. The grasping features could be located only on a portion of the blade, such as, for example, the distal tip, the center of the blade, the proximal section, or any portion of the blade. In another embodiment, the grasping features may be located along the entire length or a portion of the blade. In some embodiments, the features illustrated and described with respect to FIGS. 1-11 could be located longitudinally on a portion of the blade, such as, for example, configured along a center line of the blade, the left side of the blade, the right side of the blade, or both the right and left side of the blade. In another embodiment, the grasping features may be configured along the entire width of the blade. Grasping features may include, for example, teeth machined into the blade, teeth protruding from the surface of the blade, protruding blocks, protruding bumps or spikes, holes formed in the blade, or protruding elongated bumps. These and other blade grasping features are described hereinbelow in connection with FIGS. 1-11.
  • FIG. 1 illustrates one embodiment of an ultrasonic blade 100 with tooth-like grasping features 102 formed on a grasping surface 104 of the blade 100. In the embodiment illustrated in FIG. 1 the tooth-like grasping features 102 are formed along lateral portions 106, 108 of the grasping surface 104 of the blade 100, e.g., the left side of the blade 100 and the right side of the blade 100. In one embodiment, the tooth-like grasping features 102 may be formed along the entire active length or a portion of the blade 100. Elements of the tooth-like grasping features 102 may be uniformly or variable spaced. In other embodiments, the tooth-like grasping features 102 could be located only on a portion of the blade 100, such as, for example, the distal tip 110, the center 112 of the blade 100, the proximal section 114, or any portion of the blade 100. In another embodiment, the tooth-like grasping features 102 may be located along the entire length or a portion of the blade 100. In some embodiments, the tooth-like grasping features 102 could be located longitudinally on a portion of the blade 100, such as, for example, configured along a center line 116 of the blade 100, the left side 108 of the blade 100, the right side 106 of the blade 100, or both the right and left side of the blade 100. In another embodiment, the tooth-like grasping features 102 may be configured along the entire width of the blade 100. The tooth-like grasping features 102 may be configured to trap tissue and prevent disengagement during activation to prevent tissue milking, as well as provide better grasping forces. Accordingly, the tooth-like grasping features 102 formed on the blade 100 improve tissue grasping. The embodiments, however, are not limited in this context.
  • FIG. 2 illustrates one embodiment of an ultrasonic blade 200 with tooth-like grasping features 202 formed on a grasping portion 204 of the blade 200 where the teeth are machined into the grasping portion 204 of the blade 200. In the embodiment illustrated in FIG. 2, the blade 200 is part of a medical forceps 206 having a movable jaw member 208, which is commonly referred to as a clamp arm. The movable jaw member 208 comprises a clamp pad 210 to engage tissue between the blade 200 and the movable jaw member 208, e.g., clamp arm. In one embodiment, the tooth-like grasping features 202 may be formed along the entire active length or a portion of the blade 200. Elements of the tooth-like grasping features 202 may be uniformly or variable spaced. Although not shown, the tooth-like grasping features 202 may be formed across the grasping surface 204 of the blade 200, may be formed as multiple rows along the lateral portions of the blade 200 as shown in FIG. 1, or may be formed as a single row along the longitudinal portion of the grasping surface 204 of the blade 200. The tooth-like grasping features 202 may be configured to trap tissue and prevent disengagement during activation to prevent tissue milking, as well as provide better grasping forces. Accordingly, the tooth-like grasping features 202 formed on the blade 200 improve tissue grasping. The embodiments, however, are not limited in this context.
  • FIG. 3 illustrates one embodiment of an ultrasonic blade 300 with tooth-like grasping features 302 formed on a grasping portion 304 of the blade 300, where the teeth 302 protrude from the grasping portion 304 of the blade 300. In the embodiment illustrated in FIG. 3, the blade 300 is part of a medical forceps 306 having a movable jaw member 308, which is commonly referred to as a clamp arm. The movable jaw member 308 comprises a clamp pad 310 to engage tissue between the blade 300 and the movable jaw member 308, e.g., clamp arm. In one embodiment, the tooth-like grasping features 302 may be formed along the entire active length or a portion of the blade 300. Elements of the tooth-like grasping features 302 may be uniformly or variable spaced. Although not shown, the tooth-like grasping features 302 may be formed across the grasping surface 304 of the blade 300, may be formed as multiple rows along the lateral portions of the blade 300 as shown in FIG. 1, or may be formed as a single row along the longitudinal portion of the grasping surface 304 of the blade 300. The tooth-like grasping features 302 may be configured to trap tissue and prevent disengagement during activation to prevent tissue milking, as well as provide better grasping forces. Accordingly, the tooth-like grasping features 302 formed on the blade 300 improve tissue grasping. The embodiments, however, are not limited in this context.
  • FIG. 4 illustrates one embodiment of an ultrasonic blade 400 with protruding block-like grasping features 402 formed on a grasping 404 portion of the blade 400. FIG. 5 is a side view of the ultrasonic blade shown in FIG. 4. In the embodiment illustrated in FIGS. 4 and 5 the block-like grasping features 402 are formed along lateral portions 406, 408 of the grasping surface 404 of the blade 400. In one embodiment, the block-like grasping features 402 may be formed along the entire active length or a portion of the blade 400. Elements of the block-like grasping features 402 may be uniformly or variable spaced. In other embodiments, the block-like grasping features 402 could be located only on a portion of the blade 400, such as, for example, the distal tip 410, the center 412 of the blade 400, the proximal section 414, or any portion of the blade 400. In another embodiment, the block-like grasping features 402 may be located along the entire length or a portion of the blade 400. In some embodiments, the block-like grasping features 402 could be located longitudinally on a portion of the blade 400, such as, for example, configured along a center line 416 of the blade 400, the left side 408 of the blade 400, the right side 406 of the blade 400, or both the right and left side of the blade 400. In another embodiment, the block-like grasping features 402 may be configured along the entire width of the blade 400. The block-like grasping features 402 may be configured to trap tissue and prevent disengagement during activation to prevent tissue milking, as well as provide better grasping forces. Accordingly, the block-like grasping features 402 formed on the blade 400 improve tissue grasping. The embodiments, however, are not limited in this context.
  • FIG. 6 illustrates one embodiment of an ultrasonic blade 500 with protruding grasping features 502 formed on a grasping portion 504 of the blade 500. FIG. 7A is a side view of the ultrasonic blade 500 shown in FIG. 6 and FIG. 7B shows the protruding grasping features 502 in the form of bump-like protrusions 510 whereas FIG. 7C shows the protruding grasping features 502 in the form of spike-like protrusions 512. In the embodiment illustrated in FIGS. 6 and 7A the protruding grasping features 502 are formed along lateral portions 506, 508 of the grasping surface 504 of the blade 500. In one embodiment, the grasping features 502 may be formed along the entire active length or a portion of the blade 500. Elements of the grasping features 502 may be uniformly or variable spaced. In other embodiments, the grasping features 502 could be located only on a portion of the blade 500, such as, for example, the distal tip 520, the center 522 of the blade 500, the proximal section 524, or any portion of the blade 500. In another embodiment, the grasping features 502 may be located along the entire length or a portion of the blade 500. In some embodiments, the grasping features 502 could be located longitudinally on a portion of the blade 500, such as, for example, configured along a center line 526 of the blade 500, the left side 508 of the blade 500, the right side 506 of the blade 500, or both the right and left side of the blade 500. In another embodiment, the grasping features 502 may be configured along the entire width of the blade 500. The grasping features 502 may be configured to trap tissue and prevent disengagement during activation to prevent tissue milking, as well as provide better grasping forces. Accordingly, the grasping features 502 formed on the blade 500 improve tissue grasping. The embodiments, however, are not limited in this context.
  • FIG. 8 illustrates one embodiment of an ultrasonic blade 600 with cavity-like grasping features 602 formed on a grasping portion 604 of the blade 600. FIG. 9A is a side view of an ultrasonic blade 600 having cylindrical cavity-like grasping features 611 partially formed into the grasping portion of the blade 610. FIG. 9B is a side view of an ultrasonic blade 600 having cylindrical cavity-like grasping features 613 formed through a grasping portion of the blade 612. FIG. 9C is a side view of an ultrasonic blade 600 having conical cavity-like grasping features 615 partially formed into the grasping portion of the blade 614. In the embodiment illustrated in FIGS. 8 and 9A-C, the cavity-like grasping features 602 are distributed along portions of the grasping surface 604 of the blade 600. In one embodiment, the grasping features 602 may be formed along the entire active length or a portion of the blade 600. Elements of the grasping features 602 may be uniformly or variable spaced. In other embodiments, the grasping features 602 could be located only on a portion of the blade 600, such as, for example, the distal tip 620, the center 622 of the blade 600, the proximal section 624, or any portion of the blade 600. In another embodiment, the grasping features 602 may be located along the entire length or a portion of the blade 600. In some embodiments, the grasping features 602 could be located longitudinally on a portion of the blade 600, such as, for example, configured along a center line 626 of the blade 600, the left side 608 of the blade 600, the right side 606 of the blade 600, or both the right and left side of the blade 600. In another embodiment, the grasping features 602 may be configured along the entire width of the blade 600. The grasping features 602 may be configured to trap tissue and prevent disengagement during activation to prevent tissue milking, as well as provide better grasping forces. Accordingly, the grasping features 602 formed on the blade 600 improve tissue grasping. The embodiments, however, are not limited in this context.
  • FIG. 10 illustrates one embodiment of an ultrasonic blade 700 with transverse bump-like grasping features 702 formed on a grasping portion 704 of the blade 700. FIG. 11 is a side view of the ultrasonic blade 700 shown in FIG. 10. In the embodiment illustrated in FIGS. 10 and 11, the transverse bump-like grasping features 702 are distributed transversally along across of the grasping surface 704 of the blade 700. In one embodiment, the transverse bump-like grasping features 702 may be formed along the entire active length or a portion of the blade 700. Elements of the transverse bump-like grasping features 702 may be uniformly or variable spaced. In other embodiments, the transverse bump-like grasping features 702 could be located only on a portion of the blade 700, such as, for example, the distal tip 720, the center 722 of the blade 700, the proximal section 724, or any portion of the blade 700. In another embodiment, the transverse bump-like grasping features 702 may be located along the entire length or a portion of the blade 700. In some embodiments, the transverse bump-like grasping features 702 could be located longitudinally on a portion of the blade 700, such as, for example, configured along a center line 726 of the blade 700, the left side 708 of the blade 700, the right side 706 of the blade 700, or both the right and left side of the blade 700. In another embodiment, the transverse bump-like grasping features 702 may be configured along the entire width of the blade 700. The transverse bump-like grasping features 702 may be configured to trap tissue and prevent disengagement during activation to prevent tissue milking, as well as provide better grasping forces. Accordingly, the transverse bump-like grasping features 702 formed on the blade 700 improve tissue grasping. The embodiments, however, are not limited in this context.
  • FIG. 12 is a side view of one embodiment of an end effector assembly comprising medical forceps 800 having a movable jaw member 802 and an ultrasonic blade 804 having protrusions 806 in the form of tooth-like grasping features formed in the grasping surface 808 of the blade 804. FIG. 13 is a top view of one embodiment of the medical forceps 800 shown in FIG. 12 with the movable jaw member 802 drawn in phantom line to show the ultrasonic blade 804 positioned below the movable jaw member 802.
  • In one embodiment, the protrusions 806 (e.g., teeth) may be defined by several dimensions. A first dimension ā€œaā€ represents the height of a protrusion 806 (e.g., tooth). In one embodiment, the dimension ā€œaā€ may be about 0.12 mm to 0.18 mm. A second dimension ā€œbā€ represents the width of a protrusion 806 (e.g., tooth). In one embodiment, the dimension ā€œbā€ may be about 0.2 mm. A third dimension ā€œcā€ represents the spacing between each protrusion 806. In one embodiment, the dimension ā€œcā€ is about 0.5 mm. The protrusions 806 may cover, in one embodiment, a distance represented by dimension ā€œdā€ which can be as little as 2 mm of the blade 804 to provide additional grasping strength. The 2 mm of protrusions 806 may comprise any percentage of the blade 804, such as, for example, 13% of a 15 mm blade. In one embodiment, the height of the protrusion 806 near the distal end 810 of the blade 804 may be approximately 2.3 mm. In one embodiment, the protrusions 806 may comprise about 5% of the total height of the blade 804. In various embodiments, the protrusions 806 may include a pitch of 0.3 mm-1.0 mm, a depth of approximately 0.08 mm-0.8 mm, and an angle of approximately 5-90 degrees. In various embodiments, the protrusions 806 may be in the form of blocks, bumps, spikes, or speed bumps, as previously described. These alternate embodiments of the protrusions 806 would be formed having similar dimensions as the protrusions 806 described in connection with FIGS. 12 and 13 to have a similar affect on tissue, e.g., statistically better tissue grasping forces and preventing tissue milking.
  • In one embodiment, the protrusions 806 may mate with alternating features formed on the clamp arm 802 or tissue pad 812 portion of the medical forceps 800. In another embodiment, this mating is neither necessary nor required. In one non-mating embodiment, grasping efficiency may be increased by 64% using three features in the form of teeth. The presence of the features does not affect the tissue transection ability of the blade 804. In one embodiment, the blade 804 may comprise protrusions 806 along the entire active length of the blade 804. The protrusions 806 may be configured to trap tissue and prevent disengagement during activation. Various embodiments of protrusions 806 may include blade teeth, horizontal trenches, or cavities, as previously described.
  • FIGS. 14-18 illustrate various embodiments of ultrasonic blades comprising blade features is to address tissue milking. As previously discussed, tissue milking is defined as the event in which tissue begins to slip out of the jaws of an ultrasonic medical forceps having a movable jaw member and an ultrasonic blade upon device activation. This event increases the difficulty of manipulating tissue in low accessibility conditions. To address this and other issues, the present disclosure provides three embodiments to improve the grasping ability during ultrasonic activation. At least one embodiment of each of the disclosed ultrasonic blades employs repeated features across the active length of the blade. These features are designed to trap tissue and prevent disengagement during activation. Based on the testing, the following embodiments have shown between a 30% and 40% improvement in grasping force during activation over conventional ultrasonic blades. The three embodiments provide ultrasonic blade teeth geometries in the form of blade teeth, horizontal trenches, and holes (e.g., cavities) as described hereinbelow in connection with FIGS. 14-18 to prevent disengagement of tissue from the blade and clamp arm upon ultrasonic activation of the device and to improve tissue grasping ability prior to and during ultrasonic activation. In various embodiments, the ultrasonic blades comprise tissue trapping features to improve grasping ability and prevent tissue disengagement during ultrasonic activation of the blade.
  • FIG. 14 is a side view illustrating one embodiment of an ultrasonic blade 900 comprising tooth-like grasping features 902 having triangular grooves formed on a grasping surface 904 of the blade 900. FIG. 15 is a top view of the ultrasonic blade 900 shown in FIG. 14. The blade 900 comprises a proximal end 910 and a distal end 909. The blade 900 comprises tissue trapping features 902 in the form of triangular grooves repeated along a portion of or the entire longitudinal length of the blade 900. A distal side 906 toward the distal end 909 of the blade 900 of each feature 902 may be a surface perpendicular to the longitudinal axis of the blade 900 followed by an angled surface 908 that tapers off in a proximal direction 910. In one embodiment, the features 902 may be characterized by dimensions a, b, c, and d. In one embodiment, dimension ā€œaā€ represents the heights of the feature 902, which may be approximately 0.010ā€³, ā€œbā€ represents the width of the feature 902, which may be approximately 0.020ā€³, ā€œcā€ represents the distance between the features 902, which may be approximately 0.055ā€³, and ā€œdā€ represents the distance from the most distal feature 902 to the distal 909 tip of the blade 900, which may be approximately 0.015ā€³. In one embodiment, the features 902 may be evenly spaced along the longitudinal length of the blade 900. In another embodiment, the triangular grooves grasping features 902 may be unevenly spaced along the longitudinal length of the blade 900. In the illustrated embodiment, the blade 900 comprises 12 evenly spaced triangular grooves grasping features 902 along the longitudinal length of the blade 900.
  • FIG. 16 is a side view illustrating one embodiment of an ultrasonic blade 950 with tooth-like grasping features 952 including horizontal trenches having repeated semicircular grooves formed on a grasping surface 954 of the blade 950. FIG. 17 is a top view of the ultrasonic blade 950 shown in FIG. 16. The blade 950 comprises a proximal end 960 and a distal end 959. The blade 950 comprises tissue trapping features 952 in the form of horizontal trenches having semicircular grooves repeated along the longitudinal length of the blade 950. In one embodiment, the features 952 may be characterized by dimensions e, f, g, and h. In one embodiment, dimension ā€œeā€ represents the diameter of the grooves, which may be approximately 0.020ā€³, ā€œfā€² represents the distance between each of the features 952, which may be approximately 0.057ā€, ā€œgā€ represents the distance from the most distal feature 952 to the distal 909 tip of the blade 950, which may be approximately 0.015ā€³, and ā€œhā€ represents the depth of the grooves which may be approximately 0.005ā€³. In one embodiment, the features 952 may be evenly spaced along the longitudinal length of the blade 950. In another embodiment, the semicircular groove grasping features 952 may be unevenly spaced along the longitudinal length of the blade 950. In the illustrated embodiment, the blade 950 comprises 12 evenly spaced semicircular groove grasping features 952 along the longitudinal length of the blade 950.
  • FIG. 18 is a top view illustrating one embodiment of an ultrasonic blade 970 comprising grasping features 972 including cavities or holes formed on a grasping surface 974 of the blade 970. The blade 970 comprises a proximal end 980 and a distal end 979. The blade 970 comprises tissue trapping features 972 in the form of circular elements repeated along the longitudinal length of the blade 970. In one embodiment, the features 972 may be characterized by dimensions i, j, and k. In one embodiment, dimension ā€œkā€ represents the diameter of a circular element, which may be approximately 0.020ā€³, ā€œiā€ represents the distance between each of the circular features 972, which may be approximately 0.057ā€³, and ā€œjā€ represents the distance from the most distal feature 972ā€² to the distal 979 tip of the blade 970, which may be approximately 0.015ā€³. In one embodiment, the circular features 972 may be evenly spaced along the longitudinal length of the blade 970. In another embodiment, the circular features 972 may be unevenly spaced along the longitudinal length of the blade 970. In the illustrated embodiment, the blade 970 comprises 12 evenly spaced circular grasping features 972 along the longitudinal length of the blade 970.
  • Ingress Prevention
  • The present disclosure describes various embodiments of devices to prevent surgical matter, such as fluid or tissue, for example, from entering the space between an ultrasonic blade and an inner tube distal of the blade's distal seal. Two main categories of embodiments are described. First, a pressure or energy source attached to the blade-tube subassembly prevents fluid or tissue ingress into the space between the blade and the inner tube. Second, a flexible membrane(s) attached to either the blade or the inner tube prevents fluid or tissue ingress.
  • In one embodiment, surgical matter in the form of fluid or tissue, for example, could be prevented from entering the distal inner tube area by the application of a constant pressure of a fluid medium (e.g., air, CO2 or saline solution) in the distal direction. FIG. 32 illustrates one embodiment of a positive pressure fluid flow system 2300 comprising a pump and/or pump outlet 2306 located distal of the distal seal. In the illustrated embodiment, the external pump and/or pump outlet 2306 is fluidically coupled to the device distal of the distal node of an ultrasonic blade 2304. Air or other fluid medium 2308 is pumped into the space 2310 between the blade 2304 and the inner tube 2302, forcing particulates and/or bodily fluids out of that space 2310. As illustrated in FIG. 32, the pump and/or pump outlet 2306 is fluidically coupled to the space 2310 between the tube 2302 and the blade 2304 at a point distal from a distal blade seal 2312, e.g., an O-ring or overmolded seal. Thus, the positive pressure fluid flow 2308 is directed to the distal end of the device to prevent accumulation of surgical matter in the space 2310.
  • FIG. 49 illustrates one embodiment of a positive fluid pressure system 3500 in which air 3508 is pumped down the length of the inner tube 3502 through space 3506. The air 3508 prevents surgical matter from entering the space 3510 between the ultrasonic blade 3504 and the inner tube 3502. FIG. 49 shows a similar concept to that shown in FIG. 32, but the distal node does not have a seal to the inner tube 3502. Rather, air 3508 is pumped down the full length of the inner tube 3502 to prevent fluid and/or tissue ingress.
  • FIG. 26 illustrates one embodiment of a hybrid system comprising a contoured seal 1700 comprising a flexible membrane 1701 that acts as a pump to force surgical matter 1714 out of a distal tube 1706 area. The pressurized flexible membrane 1701 blocks tissue ingress by contact. The flexible membrane 1701 is attached to the inner tube 1706 and sealed to the ultrasonic blade 1704. Thus, the relative movement between the blade 1704 and the distal tube 1706 causes the flexible membrane 1701 to act in a pump-like manner to force fluids, tissue, or other surgical matter to flow along the contour of the flexible membrane 1701 and out of the inner tube 1706 area. The contoured seal 1700 seals a space 1702 between a portion of an ultrasonic blade 1704 and a tube 1706. The contoured seal 1700 has two points of contact 1708, 1710 with the ultrasonic blade 1704 to minimize friction and interference and to provide a double seal. A cavity 1712 is defined by the contoured seal 1700 for collecting surgical matter 1714. In an alternative embodiment, a separate duct 1718 may be provided to apply a positive pressure to the flexible membrane of the contoured seal 1700 to expel the surgical matter 1714 from the cavity 1712.
  • In various other embodiments, a boot barrier (or seal, for example) may be added to an end effector portion of an ultrasonic instrument to prevent the buildup of surgical matter on the end effector. The boot barrier seals the ultrasonic blade to the distal ends of one or more tube(s) near to the proximal end of the tissue effecting portion of the ultrasonic blade. The boot barrier may be made from any suitable materials including compliant, thermally robust material that has a relatively low coefficient of friction in order to minimize the seal load on the blade. Materials suitable for the boot barrier may include, for example, silicone rubber, parylene coated silicon rubber, Tetrafluoroethylene-hexafluoropropylene (FEP), which has similar properties to those of Polytetrafluoroethylene (PTFE) otherwise known in the trade as Teflon, shrink tubing, or any similar material. In another embodiment, the blade may be coated to reduce power draw of the instrument due to inclusion of the boot barrier.
  • The boot barrier seals to the blade and may provide slight interference to the blade. Where the boot barrier seals to the blade, the boot barrier does not provide vertical reaction for clamping/bending of the blade in order to keep the load on the blade (from the boot) minimized. The boot barrier may seal to the outer diameter of the tube(s), the inner diameter of the tube(s) or both. One or more retention features may be provided on the blade and/or the tube(s) for retaining the boot to the blade and/or the tube(s). In one embodiment, the retention features may also be located on the boot barrier itself.
  • Generally, the boot barrier prevents build up and accumulation of surgical matter such as, for example, tissue, blood, melted fat, and other related materials encountered during surgery, between the distal portion of the tube(s) and the nearby portion of the blade of the ultrasonic surgery device. This build up and accumulation may result in large and inconsistent mechanical loads on the system resulting in procedure interruptions due to high impedance either causing resonance issues or causing the system to bog down and potentially stop during activation. The tube(s) are needed to protect tissue and users from the ultrasonically active blade and, in the case of shears-type device, to support and/or drive a clamp arm. Ideally, the ultrasonic blade is as active (ultrasonically) as possible in the proximal portion of its tissue effecting length. Solutions that maximize this ultrasonic activity also elongate the portion of the blade between its most distal node and the proximal end its tissue effecting length. The result is a relatively large annular volume that accumulates tissue, blood, fat, etc. with the aforementioned issues.
  • FIG. 19 illustrates one embodiment of an end effector assembly 1000 comprising a medical forceps having a movable jaw member 1002 and an ultrasonic blade 1004. The jaw member 1002 is movable in direction 1016. A flexible boot barrier 1006 is positioned over a proximal portion 1008 of the blade 1004 and a distal portion of a tube 1010 to seal the blade 1004 to an outer diameter 1012 of the tube 1010. A retention feature 1014 may be provided on the outer diameter 1012 of the tube 1010 to keep the boot barrier 1006 in place. As previously discussed, the boot barrier 1006 may be made from silicone rubber or other similar materials. In one embodiment, the boot barrier 1006 may be coated with a lubricious material such as parylene, for example, to reduce friction. In an alternative embodiment, the blade 1104 may be coated with similar lubricious materials to reduce friction. Reducing friction between the blade 1004 and the boot barrier 1006 reduces power draw due to the inclusion of the boot barrier 1006.
  • FIG. 20 illustrates one embodiment of an end effector assembly 1100 comprising a medical forceps having a movable jaw member 1102 and an ultrasonic blade 1104. A flexible seal 1106 positioned over a proximal portion 1108 of the blade 1104 and within a distal portion 1110 of an inner tube 1112 to seal the blade 1104 to an inner diameter 1114 of the inner tube 1112. The inner tube 1112 is slidably movable within an outer tube 1116.
  • FIG. 21 illustrates one embodiment of a slotted inner tube 1200 to conceal a lengthwise portion of an ultrasonic blade 1202. Slots 1204 provide fluid/tissue egress to discharge surgical matter that may accumulate in a space 1206 between the blade 1202 and the inner tube 1200. Fluid/tissue egress through the slots 1204 at the distal end of an ultrasonic device prevents the accumulation of surgical matter. In ultrasonic laparoscopic shears, for example, an overmolded silicone distal seal 1208 is provided on or near the distal node of the blade 1202. A boot barrier may be overmolded, positioned just distal to the clamp arm edge, which could prevent tissue pinching, and anchored to the inner tube 1200, or positioned within the inner tube 1200 and non-visible to the user as shown in FIG. 22, for example. In these devices, there is approximately 13 mm length of the blade 1202 that is concealed by the outer tube (not shown) and the inner tube 1200 before the distal seal 1208 is present. Surgical matter, such as fluid, blood, fat, or other tissue, can become lodged in that space between the outer diameter of the blade 1202 and the inner diameter of the inner tube 1200. In other instruments comprising similar shears, the length of exposed blade may increase thus increasing the chance of tissue lodging therein. This could result in increased transection times as the fluid/tissue becomes a heat sink or in relaxed pressure on the blade if the fluid/tissue hardens from applied blade heat. Additionally, if an RF modality is to be added to ultrasonic lap shears technology, tissue and fluid could cause a short circuit if the RF energy is allowed to flow from the blade through tissue that is inside the inner tube, rather than the desired energy path along the active (exposed) length of the blade. Thus a boot or distal tissue ingress prevention method or mechanism is provided as described herein below in connection with FIGS. 21-23 where surgical matter such as fluid or tissue is expelled from between the inner tube 1200 and the blade 1202 by slots 1204, windows, apertures, or perforations formed in the inner tube 1200.
  • FIG. 22 illustrates one embodiment of a perforated inner tube 1300 to conceal a lengthwise portion of an ultrasonic blade 1302. The inner tube 1300 is perforated with holes 1304 to allow surgical matter such as fluids/tissue to escape. The perforations 1304 provide fluid/tissue egress to discharge surgical matter that may accumulate in a space 1306 between the blade 1302 and the inner tube 1300. In the illustrated embodiment, the inner tube 1300 comprises a 180Ā° half circle and is perforated with holes 1304 to allow fluids/tissue to escape. The tube 1300 is located between the active blade 1302 and the distal most overmold 1310 portion, which is located a distance 1308 from the distal tip of the blade 1302.
  • FIG. 23 illustrates one embodiment of a fluid-directing ribbed and perforated inner tube 1400 to conceal a lengthwise portion 1401 of an ultrasonic blade 1402. Fluid-directing ribs 1404 perforations 1406 provide fluid egress to discharge surgical matter that may accumulate in a space 1410 between the blade 1402 and the inner tube 1400. The distal most overmold is located at a distance 1408 from the distal tip of the blade 1402. In the illustrated embodiment, the ribs 1404 radiate inward and comprise holes 1406 located between each rib. The ribs 1404 have a clearance with respect to the blade 1402. The spacing of the ribs 1404 is such that only fluids can pass, not solids of appreciable size. The channeling configuration raises fluid velocity and raises likelihood of clearing out of holes 1406.
  • FIG. 24 is one embodiment of a fluid-directing ribbed and perforated inner tube 1500 comprising converging ducts 1502. In one embodiment, the converging ducts 1502 are fluidically coupled to apertures 1504 to provide fluid egress to discharge surgical matter.
  • FIG. 25 illustrates one embodiment of a contoured seal 1600 to seal a space 1602 between a portion of an ultrasonic blade 1604 distal to the distal seal and a tube 1606. The contoured flexible seal 1600 has two points of contact 1608, 1610 with the ultrasonic blade 1604 to minimize friction and interference and to provide a double seal. A cavity 1612 is defined by the contoured flexible seal 1600 for collecting surgical matter 1614.
  • FIG. 27 illustrates one embodiment of a seal 1800 to seal a space 1802 between a portion of an ultrasonic blade 1804 distal to the distal seal and a tube 1806. The flexible seal 1800 has multiple points of contact 1808 to provide low interference point of contact between the seal 1800 and the blade 1804. The multiple points of contact 1808 reduce fluid wicking up the shaft of the blade 1804. A nose portion 1810 of the seal 1800 and the multiple points of contact 1808 block surgical matter from entering into the space 1802 between the blade 1804 and the tube 1806.
  • FIG. 28 illustrates etched areas 1902 formed on an outer surface 1904 of an ultrasonic blade 1900 to prevent fluid/tissue ingress along the blade due to blade vibration.
  • FIG. 29 illustrates one embodiment of an end effector assembly 2000 comprising a medical forceps having a movable jaw 2002 member and a slidable ultrasonic blade 2004 partially retracted within a seal 2006. The movable jaw member 2002 comprises a clamp pad 2014 having a living hinge formed by necked down regions 2012 at the interface of the clamp pad 2014 and the seal 2006. The blade 2004 is slidable in direction 2010 and is received within the seal 2006. The seal 2006 is coupled to an inner tube 2008 to seal the blade 2004 to the tube 2008 and prevent fluid/tissue migration proximally.
  • FIG. 30 illustrates one embodiment of an inner tube 2100 having machined windows 2102 formed therein. The windows 2102 allow drainage between the inner 2100 and an outer tube. This embodiment may be an alternative to the embodiment show in FIG. 21, for example.
  • FIG. 31 illustrates one embodiment of an end effector assembly 2200 comprising a medical forceps having a movable jaw member 2202 and an ultrasonic blade 2204. The movable jaw member 2202 comprises an extended clamp arm pad 2206 that follows the contour of the movable jaw member 2202 (e.g., clamp arm) into the space around the blade 2204 to cover the opening of the inner tube with a tissue stop element 2208. The tissue stop element 2208 deflects surgical matter and prevents it from entering the space between the blade 2204 and the inner tube 2212. The tissue stop element 2208 is contoured to the movable jaw member 2202 to cover an opening 2210 of the inner tube 2212. In one embodiment, the clamp arm pad 2206 is machined with the tissue stop 2208 element to provide minimal interference between the blade 2204 and the tube 2212. The pad 2206 and/or the tissue stop element 2208 may be made of a lubricious material such as Teflon to minimize the load on the blade 2204.
  • FIG. 38 illustrates one embodiment of an end effector assembly 2900 comprising a medical forceps having a movable jaw member 2902 and an ultrasonic blade 2904. The movable jaw member 2902 comprises a clamp arm pad 2908 having a deflector pad 2906 to deflect surgical matter.
  • FIG. 39 is a front view of the clamp arm pad 2908 and deflector pad 2906 shown in FIG. 38. An aperture 2910 is provided in the deflector pad 2906 to receive the ultrasonic blade 2904 therethrough.
  • FIG. 33 illustrates a portion of an end effector assembly 2400 comprising an ultrasonic blade 2404 including one embodiment of a boot barrier 2402 to seal the ultrasonic blade 2404 to a tube 2406 distal to the distal node 2410 of the blade. In one embodiment, the boot barrier 2402 seals the blade 2404 to an inner tube 2406 which is disposed within an outer tube 2408. In the embodiment illustrate din FIG. 33, the boot barrier 2402 may be formed of FEP to cover high stress regions of the blade 2404. In the illustrated embodiment, the outer tube 2408 ends at a blade distal node 2410.
  • FIG. 34 illustrates one embodiment of an end effector assembly 2500 comprising a medical forceps having a movable jaw member 2502 and an ultrasonic blade 2504 including a flexible seal 2506 positioned distal to an edge 2508 of the movable jaw member 2502 and anchored to an outer tube 2510 to prevent tissue pinching. An inner tube 2512 is positioned within the outer tube 2510. The blade 2504 is positioned within the inner tube 2512.
  • FIG. 35 illustrates one embodiment of an end effector assembly 2600 comprising a seal 2606 positioned within an inner tube 2602 and an ultrasonic blade 2604 positioned within the inner tube 2602 such that it is non-visible to the user. The seal 2602 may either be a low friction material to minimize load on the blade 2604 or a small clearance 2608 may be provided between the seal 2606 and the blade 2604 to prevent contact with the blade. The seal 2606 seals the space 2610 defined between the blade 2604 distal to the distal seal and an inner diameter of the inner tube 2602 to prevent the accumulation of surgical matter therein.
  • FIG. 36 illustrates one embodiment of a seal mechanism 2700 for an ultrasonic blade 2702 having a tapered inner tube 2704 portion distal to the blade distal seal 2716 where the inner tube 2704 necks down 2706 to a smaller diameter at a distal end defining a reduced entry space 2708 for surgical matter. A conventional outer tube 2710 is provided over the tapered inner tube 2704. The diameter of the inner tube portion 2712 proximal to the necked down region 2706 is greater than the diameter of the inner tube portion 2714 distal to the necked down region 2706. In one embodiment, the necked down region 2706 coincides with the location just distal to the distal-most overmold 2716. In one embodiment, the inner tube 2704 may be necked down for a portion distal to the distal-most seal, to provide less open space for fluids and solids to enter.
  • FIG. 37 illustrates one embodiment of an overmolded flexible seal 2800 located over an inner tube 2802 that an ultrasonic blade 2804 punctures through during assembly. As shown, as the blade 2804 is moved distally in direction 2806 during device assembly, the blade 2804 breaks through the overmolded flexible seal 2800 to seal the space 2808 between the blade 2804 and the inner tube 2802. A clamp arm pivot hole 2814 in the outer tube distal clevis 2816 enables a movable jaw member to open and close. An outer tube distal clevis 2816 is located on a distal end of an outer tube. In one embodiment, the clevis 2816 can be welded on the distal end of the outer tube.
  • FIG. 40 illustrates one embodiment of a seal system 3000 for an ultrasonic blade 3002. A flexible seal 3004 seals the ultrasonic blade 3002 distal to a distal seal portion 3008. In one embodiment, the flexible seal 3004 seals the blade 3002 to the inner diameter of the inner tube 3006.
  • FIG. 41 illustrates one embodiment of a contoured inner tube 3100 or component that attaches to an inner tube 3100 to provide a circuitous path 3104 for fluid. An area of the inner tube 3100 comprises a locally swaged pair of grooves 3106, 3108 that may be employed to locate an O-ring that would touch the blade or provide a circuitous path to prevent ingress of fluids during use.
  • FIG. 42 illustrates one embodiment of a molded component 3110 with compliant arms that serves to block the distal opening of a tube assembly and is attached via arms going around a pin in the blade at a node location.
  • FIG. 43 illustrates one embodiment of an overmolded silicone bumper 3112 that adheres to the inside of an inner tube. The bumper 3112 prevents fluid ingress and does not nominally touch the blade so there is no increase in blade loading during use.
  • FIGS. 44-47 illustrate one embodiment of how a pair of mandrels 3120A, 3120B can be inserted into an inner 3122 tube from both ends. The mandrels 3120A, 3120B combine to form an overmold channel into which the silicone (or equivalent) bumper 3124 material would be injected. The mandrels would then be removed leaving just the bumper 3124.
  • FIG. 48 illustrates an end view of a seal system 3200 comprising an overmolded bumper 3124 affixed to an inner tube 3202 that does not seal to an ultrasonic blade 3204. In the illustrated embodiment, the seal system 3200 is an end view of the tube assembly shown in FIG. 47 with the molded bumper 3124 in place.
  • FIG. 50 illustrates one embodiment of an inner tube 3600 comprising having a silicone seal 3602 attached thereto at minimal interference with an ultrasonic blade.
  • FIG. 51 illustrates one embodiment of seal system 3700 for sealing an ultrasonic blade 3704 to a tube 3706. In the illustrated embodiment, the sealing system 3700 comprises a funnel 3702 to prevent ingress of surgical matter in the space 3708 between the blade 3704 distal to the distal node and the inner tube 3706. The funnel 3702 deflects surgical matter distally.
  • FIG. 52 illustrates one embodiment of a flexible seal 3802 located over an inner tube 3800 that an ultrasonic blade punctures through and dilates at location 3804 during assembly.
  • FIG. 53 illustrates one embodiment of an overmolded flexible seal 3900 attached to an ultrasonic blade 3902 distal of the distal node.
  • FIG. 54 illustrates one embodiment of an overmolded flexible seal 4000 attached to an ultrasonic blade 4002 distal of the distal node. In one embodiment, the overmolded flexible seal 4000 is made from an FEP material.
  • FIG. 55 illustrates one embodiment of a sealing system 4100 comprising multiple toroidal seals 4102, 4104, 4106 to seal an ultrasonic blade 4108 distal of the distal node. The toroidal seals 4102, 4104, 4106 are suspended by small overmolded features 4110 that do not interfere with the blade 4108.
  • FIG. 56 illustrates one embodiment of an end effector assembly 4200 comprising a medical forceps having a movable jaw member 4202 in an open position, an ultrasonic blade 4204, and a slidably movable inner tube 4206 including a wiping seal 4208. As illustrated in FIG. 56, the slidably movable inner tube 4206 moves distally in direction 4210 as the jaw member 4212 opens in direction 4212. The wiping seal 4208 surrounds the blade 4204. As the jaw member 4202 opens in direction 4212 the wiping seal 4208 moves distally in direction 4210 along with the inner tube 4206 to wipe surgical matter off the blade 4204.
  • FIG. 57 illustrates one embodiment of the end effector assembly 4200 shown in FIG. 56 comprising a medical forceps having a movable jaw member 4202 in a closed position. As shown in FIG. 57, as the jaw member 4202 closes in direction 4216, the inner tube 4206 moves proximally in direction 4214 to retract the wiping seal 4208. To wipe the blade 4204 with the wiping seal 4208, the jaw member 4202 is opened as described in connection with FIG. 56.
  • FIG. 58 illustrates one embodiment of an end effector assembly 4300 comprising a medical forceps having a movable jaw member 4302 in a closed position shown in solid line and in an open position shown in phantom line, an ultrasonic blade 4304, a slidably movable outer tube 4306, and a fixed inner tube 4308 with an overmolded flexible seal 4310 located on the inner tube 4308 over the blade 4304.
  • FIG. 59 illustrates one embodiment of the end effector assembly 4300 comprising the movable jaw member 4302 in an open position. As shown in FIG. 59, as the jaw member 4202 is opened the overmolded flexible seal 4310 seals the throat 4312 of the device to prevent surgical matter from entering the space 4314 between the blade 4304 and the inner tube 4308.
  • Alternate Closure Mechanisms for Ultrasonic Devices
  • Present ultrasonic devices utilize a tube-in-tube (TnT) closure mechanism to enable closure of the clamp arm, referred to herein as a movable jaw member, against an active length of the ultrasonic blade. The following embodiments of alternate closure mechanisms for ultrasonic devices may yield several advantages. For example, there may be differences among the drag force of actuating the inner tube against the outer tube results in variation in device clamp force. Additionally, the pivot location of the clamp arm on the outer tube causes a sharp angular closure, and magnifies the impact to a non-uniform closure profile. Furthermore, the predicate device mechanism may be sensitive to variation in components, as the stackup links the inner and outer tube at the location of the insulated pin, which currently sits near the proximal end of the tube assembly.
  • One embodiment of an ultrasonic device comprising an alternate closure mechanism is described hereinbelow in connection with FIGS. 60-62. In one embodiment, the ultrasonic device comprises a vibrating blade with a through hole at distal node, an actuator mechanism, an outer tube with cam surfaces at a distal end, and a clamp arm. In another embodiment, the clamp arm is rotatedly fixed to the vibrating blade. In another embodiment, the clamp arm is cammed open and closed (against vibrating blade) through relative motion between the outer tube and vibrating blade. In yet another embodiment, one or more pivots of the clamp arm are positioned at a distal node of the vibrating blade. An illustrative example is discussed hereinbelow.
  • FIG. 60 is a perspective view of one embodiment of an end effector assembly 4400 comprising a medical forceps having a movable jaw member 4402 and an ultrasonic blade 4404 where the movable jaw member is rotatably attached to a distal node 4406. The outer tube 4412 is shown transparent to show the ultrasonic waveguide 4414 located therein. FIG. 61 is a side view of the end effector assembly 4400 shown in FIG. 60 with the movable jaw member 4402 in an open position and shown transparent to show outer tube cam slots 4408, 4410 to rotate the movable jaw member 4402 upon relative motion between the blade 4404 and the outer tube 4412. FIG. 62 illustrates one embodiment of the end effector assembly 4400 showing the movable jaw member 4402 pivot 4416.
  • With reference now to FIGS. 60-62, in one embodiment, the movable jaw member 4402 (e.g., clamp arm) is rotatably anchored directly to the blade 4404. The anchoring is accomplished through eliminating the inner tube and attaching the movable jaw member 4402 at the most distal node 4406 of the blade 4404 so as not to interfere with the acoustical train of the device. The attachment may be made through the use of a through hole and insulated pin 4416 attached to the movable jaw member 4402, although other attachment means may be used and are contemplated, such as, for example, pins, screws, snap fits, overmolds or the like. Additionally, the outer tube 4412 contains a cam surface, which locates a second pin 4418 attached to the movable jaw member 4402 such that the movable jaw member 4402 rotates about the pivot at pin 4416 in the blade 4404 when there is relative motion between the blade 4404 and the outer tube 4412. Furthermore, additional geometries for the cam surface are contemplated, such as splines, curves, and the like. As shown in the embodiment of FIG. 62, the pivot location at pin 4416 is positioned in a more proximal location than current devices. The benefits of anchoring the movable jaw member 4402 to the blade 4404 at the distal node 4406 allows for a more parallel closure along the active portion 4420 of the blade 4404, ultimately creating a more uniform pressure profile. In one embodiment, the configuration described in connection with FIGS. 60-62 operates at lower temperatures and can eliminate the need for a polyimide clamp arm pad within the movable jaw member 4402. Although not shown in the embodiment of FIG. 62, the outer tube 4412 may extend longitudinally along the axis of the blade, to prevent tissue from contacting the non-active blade 4404 surface
  • Another embodiment of an ultrasonic device comprising an alternate closure mechanism is described in connection with FIGS. 63-67 hereinbelow. The current closure mechanism experiences frictional losses caused by the relative motion of the inner tube against the outer tube and the inner tube against the blade overmolds. These frictional losses can be attributed to decreased tissue feedback experienced by users. In addition, the clamp force and pressure profile associated with tube-in-tube closure may be sensitive to component variation. More consistent sealing and transection ability can be achieved either by tighter tolerances or decreasing the number of components involved in closure. To address these and other issues, in one embodiment the ultrasonic device comprises a vibrating blade with a hole through the distal node, an outer tube, a clamp arm, and a rigid link. In another embodiment, the clamp arm is coupled to the vibrating blade with a rigid link and system of revolute joints. An illustrative example is discussed hereinbelow.
  • FIG. 63 is a side view of one embodiment of an end effector assembly 4500 comprising a medical forceps having a movable jaw member 4502 in a closed position and an ultrasonic blade 4504. The end effector assembly 4500 comprises a linkage 4506 to open and close the movable jaw member 4502 by employing relative motion between the outer tube 4508 and the blade 4504. FIG. 64 is a side view of the end effector assembly 4500 shown in FIG. 63 with the movable jaw member 4502 in an open position. FIG. 65 is a bottom view of the end effector assembly 4500 shown in FIG. 63 with the movable jaw member 4502 in an open position. FIG. 66 is a perspective view of the end effector assembly 4500 shown in FIG. 63 with the movable jaw member 4502 in an open position. FIG. 67 is a perspective view of the end effector assembly 4500 shown in FIG. 63 with the movable jaw member 4502 in an open position.
  • With reference now to FIGS. 63-67, in one embodiment, the linkage 4506 may be a four bar linkage configured to actuate the movable jaw member 4502 (e.g., clamp arm) by utilizing relative motion between the outer tube 4508 and the blade 4504. The inner tube may be replaced with the rigid link 4506. The link 4506 may be pinned to the blade 4504 through the distal node 4510, although other fastening means are contemplated such as pins, screws, snap fits, and the like. Locating a pin 4512 at the distal node 4510 minimizes interference to the acoustic train of the ultrasonic device. The link 4506 is subsequently pinned to a bottom portion 4514 of the movable jaw member 4502 via pin 4516 and a second pivot of the movable jaw member 4502 is pinned to an end of the outer tube 4508 via pin 4518. Clamping may be achieved by displacing the outer tube 4508 forward relative to the blade 4504 in direction 4520. The link 4506 component ensures that the distance between the distal node 4510 and the lower pivot of the clamp arm remains constant. The presence of the link 4506 forces the movable jaw member 4502 to rotate as the outer tube 4508 is displaced in direction 4520. In one embodiment, the rigid link 4506 may comprise a small stainless steel component formed from progressive stamping, although other materials and manufacturing processes are contemplated, such as metal injection molding (MIM), polymers formed from plastic injection molding, and the like. The use of a rigid link 4506 also allows simplification of a trigger assembly. For example, a trigger assembly for actuating the inner tube may be removed. The use of a four bar linkage 4506 also reduces frictional losses in the tube assembly and results in a decrease in accumulated pressure profile variations.
  • Yet another embodiment of an ultrasonic device comprising an alternate closure mechanism is described in connection with FIGS. 68-70 hereinbelow. The embodiment illustrated in FIGS. 68-70 addresses issues such as tolerance accumulation between the blade, movable jaw member, inner tube, insulated pin, and rotation knob of existing ultrasonic devices.
  • FIG. 68 is a perspective view of one embodiment of an end effector assembly 4600 comprising a medical forceps having a movable jaw member 4602 and an ultrasonic blade 4604 with the movable jaw member 4602 shown in an open position. An inner tube 4608 is translated with respect to the blade 4604 to open and close the movable jaw member 4602. FIG. 69 is a perspective view of the inner tube 4608 with the outer tube 4606 removed. The inner tube 4608 is operatively coupled to the end effector assembly 4600 shown in FIG. 68. FIG. 70 is a perspective view of a notch portion 4610 of the inner tube 4608 shown in FIG. 69.
  • With reference now to FIGS. 68-70, in one embodiment, the inner tube 4608 is configured to translate with respect to the blade 4604 to move the movable jaw member 4602 (e.g., clamp arm) and to generate clamp pressure against the blade 4604. In the embodiment illustrated in FIGS. 68-70, the movable jaw member 4602 is attached and pivots at pivot 4612 on the inner tube 4608. The outer tube 4606 translates in direction 4614 to pivot the movable jaw member 4602. The inner tube 4608 has a notched region 4610 as shown in FIGS. 69 and 70, that is squeezed inwardly into notches 4616, 4618 formed in the blade 4604 that would be located at the node location of the blade 4604. In one embodiment, the blade 4604 portion in the notched region 4610 location may be coated with a thin layer of silicone overmold to provide tight relationship between the inner tube 4608 and the blade 4604. such tight relationship provides good movable jaw member 4602 clocking with respect to the blade 4604 cutting surface 4620 (FIG. 68). As shown in FIG. 68, in one embodiment, a clamp arm pad 4622 also may be provided on the inside portion of the movable jaw member 4602.
  • FIG. 71 illustrates one embodiment of an end effector assembly 4700 comprising a medical forceps having an end effector with a movable jaw member 4702 in a closed position, an ultrasonic blade 4704, and a shaft assembly 4706 configured to counteract deflection of the blade 4704. A counter deflection element 4720 is provided on an inner tube 4710 at one of the blade nodes 4718 proximal to the distal node to counteract deflection of the blade 4704 by the movable jaw member 4702. In one embodiment, a downward 4712 deflection of the blade 4704 by the movable jaw member 4702 is counteracted by the downward reaction force of counter deflection element 4720 at the node 4714 proximal to the distal node. In one embodiment, the counter deflection element 4720 may comprise a bulge into the inner lumen to provide downward counter force to the clamping force. In another embodiment, a window 4708 may be cut into the inner tube 4710 to allow a downward force to deflect the blade 4704 without making contact with the opposing wall of the inner tube 4710.
  • Any of the inner tubes and/or outer tubes disclosed herein may be coated with a polymer used as moisture and dielectric barriers. Among them, parylene C may be selected due to its combination of barrier properties, cost, and other processing advantages. Parylene is the trade name for a variety of chemical vapor deposited poly(p-xylylene), for example. The polymer coating is used to prevent shorting in the shaft from the blade to adjacent metal parts. In one embodiment, the just the inner tube (e.g., actuator) may be coated to prevent it from shorting to the blade which is one ā€œpoleā€ in the combined ultrasonic and bipolar (RF) device, where the other ā€œpoleā€ is the outer tube and the clamp arm. The inner tube insulation provides a more robust and space efficient electrical insulating barrier than an intervening plastic tube, which may be considered an alternative embodiment.
  • Transducer Support and Limited Rotation with Single Component
  • In one embodiment, a shaft rotation limiter comprises a single piece which interfaces with a transducer flange by a threaded connection. The rotation limiter provides radial support through a component fixed in the shroud channels. The amount of rotation is limited by the allowed lateral motion of the component in the shroud channels as it is threaded along the transducer. One example of a shaft rotation limiter is described in connection with FIG. 72 hereinbelow.
  • FIG. 72 illustrates one embodiment of an ultrasonic transducer 4800 having a modified flange 4802 incorporating external threads 4804 to allow transducer rotation. In the illustrated embodiment, the transducer flange 4802 is modified to incorporate external threads 4804. The external threads 4804 may mate with a component 4810 having internal threads and at least two protruding bosses 4806, 4808. The protruding bosses 4806, 4808 engage into channels in the device shroud and limit transducer rotation. The component 4810 with the threaded inner diameter interfaces with the transducer 4800 by threaded connection. Since the component 4810 is limited in transverse travel by the shroud channels, it provides radial support. The component 4810 with the threaded inner diameter translates rotational movement of the transducer 4800 to a lateral motion of the component 4810. Rotation of the blade or transducer 4800 can be provided by a fixed rotation knob. Rotating the knob may cause the internally threaded component 4810 to translate laterally and rotation would be limited when the component 4810 can no longer translate. The lateral movement may be defined by the length of the channel in the shroud or the length of the threaded flange 4802 on the transducer. The shroud allows rotations in excess of 360Ā°. The amount of rotation of the transducer 4800 is limited by the allowed lateral motion of the component 4810 in the shroud channels (not shown).
  • Limited Rotation Of Ultrasonic Device With Rotation >360Ā°
  • FIG. 73 is a sectional view of an ultrasonic transducer rotation system 4900 comprising a shroud 4902 and a gate 4904 fitted into one-half of the shroud 4902. In the illustrated embodiment, the gate 4904 is L-shaped and has two wings 4906A, 4906B (right and left wings, respectively) extending at a fixed angle from a central axis 4908 positioned within a portion of the shroud 4902. One additional component, as well as modifications of a rotation knob and the right-hand or left-hand shroud 4902, allow for approximately 690Ā° of rotationā€”almost two full rotations. The rotation knob is used by the operator to rotate the shaft and ultrasonic transducer of the device. The additional component is referred to herein as the gate 4904. The gate 4904 is rotationally moveable about axis 4908 within the shroud 4902 to two positions. The rotation knob will have an additional contoured extrusion element that extends to make contact with the gate 4904. Where the gate 4904 is inserted into the shroud 4902 there will be a minimum amount of frictional contact between the shroud 4902 and the gate 4904 to keep the gate 4904 in place while it is not in contact with the rotation knob. The gate 4904 in the shroud 4902 is constrained by a cylindrical hole 4912 and two bosses 4914, 4916 with a slight undercut. The axis 4908 of the gate 4904 that sits in the cylindrical hole 4912 would be constrained in part by features on the rotation knob. The gate 4904 can be made of a rigid metal or a single stamped metal part or injection molded from plastic. The gate 4904 can either snap into place in the shroud 4902 or be ultrasonically welded or heat staked to the shroud 4902 in such a fashion to allow free rotation of the gate 4904 about axis 4908.
  • FIGS. 74A-74C illustrate the dynamics of the gate/rotation knob interaction. FIG. 74A illustrates the gate 4904 in a left-biased position such that the rotation knob can be rotated 690Ā° clockwise until a contoured extrusion element 4910 on the rotation knob makes contact with the right wing 4906A of the gate 4904 so that the left wing 4906B of the gate 4904 prevents motion by reacting statically against the shroud 4902. Thus, at the starting point, the rotation knob contoured extrusion element 4910 is contacting the outside of the right wing 4906A of the gate 4904 and is constrained to only move in a counter-clockwise direction.
  • FIG. 74B illustrates the rotation knob rotated back 360 degrees until it rotates the right wing 4906A of the gate 4904 into a right-biased position. Upon full 360Ā° rotation the rotation knob extrusion 4910 contacts the inside of the right wing 4906A of the gate 4904, rotating the gate 4904 to the right as the knob rotates around.
  • FIG. 74C illustrates the rotation knob after it rotates the right wing 4906A of the gate 4904 into a right-biased position. Subsequently, the rotation knob can be rotated an additional 330Ā° until the contoured extrusion element 4910 of the rotation knob contacts the left wing 4906B of the gate 4904 and the right wing 4906A of the gate 4904 prevents motion by reacting statically against the shroud 4902. After 690Ā° of rotation the rotation knob contacts the outside of the left wing 4906B of the gate 4904. The right wing 4906A of the gate 4904 is contacting the shroud 4902 and is therefore stopping further rotation of the rotation knob in the counterclockwise direction. This process can be reversed to spin the rotation knob clockwise back to its starting position.
  • FIG. 75 is a sectional view of an ultrasonic transducer rotation system 4920 comprising a shroud 4922 and a gate 4924 fitted into one-half of the shroud 4922, where the rotation system includes a semi-compliant element. In the illustrated embodiment, the gate 4924 is L-shaped and has two wings 4926A, 4926B (right and left wings, respectively) extending at a fixed angle from a central axis 4928 positioned within a portion of the shroud 4922. One additional component, as well as modifications of a rotation knob and the right-hand or left-hand shroud 4922, allow for approximately 690Ā° of rotationā€”almost two full rotations. The rotation knob is used by the operator to rotate the device shaft and ultrasonic transducer. The additional component is referred to herein as the gate 4924. The gate 4924 is rotationally moveable about axis 4928 within the shroud 4922 to two positions. The rotation knob will have an additional contoured extrusion element that extends to make contact with the gate 4924. Where the gate 4924 is inserted into the shroud 4922 there will be a minimum amount of frictional contact between the shroud 4922 and the gate 4924 to keep the gate 4924 in place while it is not in contact with the rotation knob. The gate 4924 in the shroud 4922 is constrained by a cylindrical hole 4932 and two bosses 4934, 4936 with a slight undercut. The axis 4928 of the gate 4924 that sits in the cylindrical hole 4932 would be constrained in part by features on the rotation knob. The gate 4924 can be made of a rigid metal or injection molded from plastic. The gate 4924 can either snap into place in the shroud 4922 or be ultrasonically welded or heat staked to the shroud 4922 in such a fashion to allow free rotation of gate 4924 about axis 4928.
  • Unlimited (continuous) rotation of an ultrasonic shear device with an integrated transducer requires the use of additional components that may not be cost-effective. One cost-effective solution is to limit rotation of the shaft of the device, thus allowing for a direct-wired connection between the transducer and the hand activation circuit. A tactile benefit is added to the mechanism that would limit rotation but provide tactile feedback before a hard stop is hit. This tactile feedback element may enable the user to change the way they use the device, either through rotating their wrist to get additional rotation or to choose to rotate the device back to a neutral position to ensure they have enough rotation to accomplish the task they need to perform.
  • FIGS. 112A and 112B illustrate one embodiment of an unlimited rotation connection for an integrated transducer 6216. An unlimited rotation connection may be provided by the ultrasonic transducer rotation system 6220. The ultrasonic transducer rotation system 6220 may comprise, for example, a male plug 6222 and a female receptacle 6224. The male plug 6222 may be configured to freely rotate within the female receptacle 6224 while maintaining an electrical connection between the ultrasonic transducer 6216 and, for example, power system 6248. For example, in one embodiment, the male plug 6222 and the female receptacle 6224 may comprise a stereo plug and jack. FIG. 112A illustrates the male plug 6222 and the female receptacle 6224 in an uncoupled, or unmated, position. FIG. 112B illustrates the male plug 6222 and the female receptacle 6224 in a coupled, or mated, position. In the mated position, the male plug 6222 is able to freely rotate within the female receptacle while maintaining an electrical connection between the male plug 6222 and the female receptacle 6224.
  • FIGS. 113A-113C illustrate one embodiment of an unlimited rotation connection 6520. The unlimited rotation connection 6520 comprises a male plug 6522 and a female receptacle 6524. The male plug 6522 may comprise a plurality of electrodes 6526 a-d coupled to an insulating tube 6528. The male plug 6522 may be coupled to a shaft/transducer assembly and may rotate in unison with the shaft/transducer assembly. In some embodiments, the first and second electrodes 6526 a-6526 b may be coupled to the transducer. In some embodiments, the third and fourth electrodes 6526 c-6526 d may be coupled to bipolar electrodes located at an end effector. In some embodiments, such as a monopolar electrode arrangement, the fourth electrode 6526 d may be omitted. The plurality of electrodes 6526 may each be coupled to a wire 6530 a-6530 d. The female receptacle 6524 may comprise a plurality of helical contacts 6532 a-6532 d. The plurality of helical contacts 6532 a-6532 d may be positioned such that each of the helical contacts 6532 a-6532 d is electrically coupled to a corresponding electrode 6526 a-6526 d on the male plug 6522 when the male plug 6522 is inserted into the female receptacle 6524. FIG. 113B illustrates a cross-sectional view of the female receptacle 6524 take along line B-B. The female receptacle 6524 comprises a individual helical contacts 6532 a-6532 d separated by insulators 6534 a-6534 c. FIG. 113C illustrates the individual helical contact profile of a helical contact 6532 a. The helical contact 6532 a may comprise a first metal plate 6536 a and a second metal plate 6536 b. A plurality of twisted wires 6538 may be spirally twisted to assure contact between the male plug 6522 and the metal plates 6536 a, 6536 b. In some embodiments, the direction of the spiral may be alternated to provide increased connectivity in all directions of rotation. The twisted wires 6538 may comprise a hyperbolic shape.
  • The tactile feedback element is added to the limited rotation mechanism shown in FIGS. 73-74C, which includes on the rotation knob an additional contoured extrusion element 4930 that extends to make contact with the gate 4924 (the mechanism that limits rotation). In the embodiment illustrated in FIGS. 75-76C, a contoured extrusion element 4930 (FIGS. 76A-76C) located on the rotation knob can be made of a semi-compliant material. Alternatively, portions of contoured extrusion element 4930 indicated by elements 4938, may be comprised of a semi-compliant material. The semi-compliant material could be made of rubber, medium to high density rubber, silicone, thermoplastic elastomers, springy piece of stainless steel, spring steel, copper, shape memory metals, and the like. Any of these materials can be insert molded or mechanically connected to the rotation knob.
  • The purpose of the contoured extrusion element 4930 (FIGS. 76A-76C) on the rotation knob is to contact the gate 4924 to provide the motion needed for the gate 4924 to function. Adding compliance to the contoured extrusion element 4930 rotation knob feature enables the user to feel that they are approaching the hard stop a few degrees of rotation before the hard stop is contacted. This feedback may enable the user to change the way they use the device, either through rotating their wrist to get additional rotation or to choose to rotate the device back to a neutral position to ensure they have enough rotation to accomplish the task they need to perform.
  • FIGS. 76A-76C illustrate the dynamics of the gate interaction with a rotation knob, where the rotation knob comprises a tactile feedback element. FIG. 76A illustrates the gate 4924 in a left-biased position such that the rotation knob can be rotated 690Ā° clockwise until a contoured extrusion element 4930 on the rotation knob makes contact with the right wing 4906A of the gate 4924 so that the left wing 4926B of the gate 4924 prevents motion by reacting statically against the shroud 4922. Thus, at the starting point, the rotation knob contoured extrusion element 4930 is contacting the outside of the right wing 4926A of the gate 4924 and is constrained to only move in a counter-clockwise direction. A layer of (insert-molded) semi-compliant material 4938 may be located on either side or both sides of the contoured extrusion element 4930. The semi-compliant material 4938 could be made of rubber, medium to high density rubber, silicone, thermoplastic elastomers, springy piece of stainless steel, spring steel, copper, shape memory metals, and the like. Any of these semi-compliant materials 4938 can be insert molded or mechanically connected to the rotation knob.
  • FIG. 76B illustrates the rotation knob rotated back 360 degrees until it knocks the right wing 4926A of the gate 4924 into a right-biased position. Upon full 360Ā° rotation the contoured extrusion element 4930 of the rotation knob contacts the inside of the right wing 4926A of the gate 4924, rotating the gate 4924 to the right as the knob rotates around. The semi-compliant material 4938 provides tactile feedback to the user.
  • FIG. 76C illustrates the rotation knob after it rotates the right wing 4926A of the gate 4924 into a right-biased position. Subsequently, the rotation knob can be rotated an additional 330Ā° until the contoured extrusion element 4930 of the rotation knob contacts the left wing 4926B of the gate 4924 and the right wing 4926A of the gate 4924 prevents motion by reacting statically against the shroud 4922. After 690Ā° of rotation the rotation knob contacts the outside of the left wing 4926B of the gate 4924. The right wing 4926A of the gate 4924 is contacting the shroud 4922 and is therefore stopping further rotation of the rotation knob in the counterclockwise direction. This process can be reversed to spin the rotation knob clockwise back to its starting position. The semi-compliant material 4938 provides tactile feedback to the user. The semi-compliant material 4938 tactile feedback element mat enable the user to change the way they use the device, either through rotating their wrist to get additional rotation or to choose to rotate the device back to a neutral position to ensure they have enough rotation to accomplish the task they need to perform.
  • RF Spot Coagulation with Integrated Ultrasonic/RF Generator
  • FIG. 77 illustrates an integrated RF/ultrasonic instrument 5000 electrically connected such that an ultrasonic blade/horn 5002 is electrically connected to a positive lead 5006 of an ultrasonic generator 5004 and is also coupled to an RF generator to provide spot coagulation by applying RF energy to tissue 5018. The integrated RF/ultrasonic instrument 5000 enables the touch up of diffuse bleeding (capillary bleeding, cut site oozing) without the need for ultrasonic coupling pressure. Further, the coupling pressure needed for ultrasonic instruments, to couple the blade to tissue such that friction-based tissue effect is effective, is relatively high which results in (1) difficulty in applying enough pressure to generate hemostatic effect in loosely supported (i.e., un-clamped) tissue or (2) coupling pressure that generates too much tissue disruption that, in many cases, makes the diffuse bleeding worse.
  • In one embodiment, the integrated RF/ultrasonic instrument 5000 is wired such that the horn/blade 5002 is directly connected to the positive lead 5006 of the generator 5004. Conventional ultrasonic devices are wired such that the negative/return lead is connected to the horn/blade. A switch 5010 is provided to enable two device functionalities (1) ultrasonic and (2) bipolar (RF) to be performed. The first state of the switch 5010 connects the negative/return lead 5008 to the piezoelectric transducer (PZT) stack 5020 such that the generator 5004 drives the PZT stack 5020. The second state of the switch 5010 isolates the PZT stack 5020 and connects the negative/return 5008 to the device tube 5016 and a movable jaw member 5022 (e.g., clamp arm) through an electrical conductor 5014 and allows the generator 5004 signal to be driven through tissue 5018 located between the blade 5002 and the clamp arm 5022. The resistance in the tissue 5018 seals the vessels. Feedback signals also may be provided back to the generator 5004 to adjust signal parameters (e.g., amplitude, frequency, pulsing, modulation, etc.)
  • In one embodiment, the integrated RF/ultrasonic instrument 5000 may comprise a sealing button, wherein, when pressed, the generator 5004 may produce bipolar RF energy through the handpiece and into the ultrasonic blade 5002 and return through the clamp arm 5022. In one embodiment, the electrical RF current may travel around the outside of the blade 5002 and create a robust bi-polar seal. The duration of the bipolar RF energy may be about one second, after which an algorithm may cause the generator 5004 to switch to the ultrasonic power curve, wherein the blade 5002 would be activated and the cut completed in the middle of two RF seals.
  • Ultrasonic cutting also may provide some sealing. The application of RF energy provides added confidence that there is an RF seal in place on each side of the blade 5002.
  • In one embodiment, the RF/ultrasonic device comprises a blade or clamp arm or both with the distal end coated with thermally and electrically insulative material, wherein a distal end of the blade or clamp arm or both may have varying degrees of exposed (uncoated) areas that will be application dependent. In another embodiment, the exposed area on the blade or clamp arm or both may vary depending on application and may be either symmetrical or asymmetrical. In another embodiment, the exposed area on the blade may comprise at least one exposed area/segment separated by at least one coated segment. In one embodiment, a process of masking the blade or clamp arm or both to generate exposed area is provided. Alternatively, coating may be selectively removed to produce the same desired effect. Specific embodiments of such coated blades are described hereinbelow in connection with FIGS. 80-95.
  • FIG. 78 illustrates one embodiment of an integrated RF/ultrasonic instrument 5030 electrically connected to an energy source such as a generator 5032 comprising four-lead jack connector 5046 is mated with a slidable female mating plug 5048. FIG. 79 is a detail view of the four-lead jack connector 5046 mated with a slidable female mating plug 5048 coupled to an ultrasonic transducer 5034. With reference to FIGS. 78-79, in one embodiment, the generator 5032 may comprise a first ultrasonic energy source such as ultrasonic generator 5040 and a second RF energy source such as an RF generator 5044 either individually or integrated into the same housing. An ultrasonic transducer 5034 is electrically connected to positive and negative leads 5036 (H+), 5038 (Hāˆ’) of the ultrasonic generator 5040. A monopolar positive lead 5042 (M+) is coupled to the RF generator 5044. A four-lead jack connector 5046 is mated with a slidable female mating plug 5048 to electrically engage either 1) connection of the ultrasonic generator 5040 leads 5036, 5038 to the ultrasonic transducer 5034 or 2) connection of the monopolar RF generator 5044 lead 5042 to the transducer 5034 to prevent connecting both the ultrasonic generator 5040 and the monopolar RF generator 5044 to the transducer 5034 at the same time. In one embodiment, the female connector may be integrated in the device and the four lead jack may be mated to a generator.
  • A slidable switch 5074 comprises a slidable female connector 5048 configured to receive a rotatable jack connector 5046. The rotatable jack connector 5046 is used for mating with the slidable female connector 5048 for providing an electrical connection between two electrical devices, such as the transducer 5034 and the generator 5032. Referring particularly to FIG. 79, the rotatable jack connector 5046 comprises a tip terminal portion 5064 at a front end thereof, a ground terminal portion 5052 at a rear end thereof and two intermediate terminal portions 5056, 5060 to the tip and ground terminal portions 5064, 5052. The terminal portions 5052, 5056, 5060, 5064 are electrically separated from each other by dielectric insulators 5054. The ground terminal portion 5052 connects with a connecting portion of 5046. Since the structure of the rotatable mating plug 5046 is well known by those skilled in the art, detailed description thereof is omitted here. Conductive terminal portions 1, 2, 3, 4 are electrically connected to terminal portions 5052, 5056, 5060, 5064. Conductive terminal portions 1 and 2 connected to terminal portions 5052, 5056 and are isolated and are not coupled to the transducer 5034. Conductive terminal portions 3 and 4 are electrically connected to terminal portions 5060, 5064 and are electrically connected to the transducer 5034.
  • In one embodiment, the slidable female connector 5048 is slidable between Position 1 and Position 2. Position 1 may be configured to correspond with ultrasonic mode of operation and Position 2 may be configured to correspond with monopolar mode of operation. In Position 1, the monopolar RF lead 5042 (M+) from the monopolar RF generator 5044 is disconnected physically from the transducer 5034. The slidable female connector 5048 comprises contact portions 5066, 5068, 5070, 5072 configured to electrically engage terminal portions 5052, 5056, 5060, 5064. The slidable female connector 5048 includes an actuator portion 5074 that enables the user to slide the slidable female connector 5048 between multiple positions. As shown in particular in FIG. 79, the slidable female connector 5048 is slidably movable between Position 1 and Position 2, ultrasonic and monopolar RF modes.
  • Moving the slidable female connector 5048 into Position 1 places the integrated RF/ultrasonic instrument 5030 in ultrasonic mode. In this position, the contact portions 5066, 5068 are electrically engaged with terminal portions 5060, 5064 thereby electrically coupling positive and negative leads 5036 (H+), 5038 (Hāˆ’) of the ultrasonic generator 5040 to the transducer 5034 through conductive terminal portions 3 and 4. In position 1, the monopolar positive lead 5042 (M+) coupled to the RF generator 5044 is physically disconnected from the transducer 5034.
  • Moving the slidable female connector 5048 into Position 2 places the integrated RF/ultrasonic instrument 5030 in monopolar RF mode. In this position, the contact portions 5066, 5068 are electrically engaged with terminal portions 5052, 5056 thereby electrically coupling positive and negative leads 5036 (H+), 5038 (Hāˆ’) of the ultrasonic generator 5040 to isolated conductive terminal portions 1 and 2, effectively disconnecting the ultrasonic generator 5040 from the transducer 5034. In position 2, contact portion 5070 electrically engages terminal portion 5060 thereby electrically coupling the monopolar positive lead 5042 (M+) of the RF generator 5044 to the transducer 5034 through conductive terminal portion 3. Contact portion 5072 electrically engages terminal tip portion 5064, which is electrically isolated, or open.
  • FIGS. 114A and 114B illustrate one embodiment of an integrated RF/ultrasonic surgical instrument, for example, the integrated RF/ultrasonic surgical instrument 5030, comprising an integrated RF/ultrasonic end effector 6304. The integrated RF/ultrasonic end effector 6304 may be configured to deliver RF energy and/or ultrasonic energy to a tissue section. FIG. 114A illustrates a clamping arm 6364 in an open position. An ultrasonic blade 6366 is positioned such that the clamping arm 6364 and the ultrasonic blade 6366 may clamp tissue therebetween. The ultrasonic blade 6366 is positioned within a heat shield 6322. FIG. 114B illustrates the integrated RF/ultrasonic end effector 6304 in a clamped position.
  • FIGS. 115A-115I illustrate various embodiments of a cross-section of the integrated RF/ultrasonic end effector 6304 taken along line A-A. As can be seen in FIGS. 115A-115I, RF electrodes 6370, 6372 may be located on and/or comprise any suitable portion of the integrated RF/ultrasonic end effector 6304. FIGS. 115A-115F illustrates various embodiments of the integrated RF/ultrasonic end effector 6304 comprising a bipolar electrode arrangement. For example, FIG. 115A illustrates one embodiment of the integrated RF/ultrasonic end effector 6304 a. Positive electrodes 6370 a, 6372 b may be located on the tissue-facing portion of the clamp pad 6368. The clamp arm 6364 a may comprise a return, or negative, electrode. FIG. 115B illustrates one embodiment of the integrated RF/ultrasonic end effector 6304 b. The positive electrodes 6370 b, 6372 b are located on the heat shield 6322. An insulator 6374 may be located between the positive electrodes 6370 a, 6370 b and the heat shield 6322 to insulate heat shield 6322. The clamp arm 6364 may function as the return electrode. FIG. 115C is similar to FIG. 115A, with the exception that the clamp arm 6364 c extends laterally beyond the insulting clamp pad 6368 c. FIG. 115D is similar to FIG. 115B, with the exception that the clamp arm 6364 d extends laterally beyond the insulating clamp pad 6368 d. In FIG. 115E, the clamp pad 6368 e comprises a positive electrode 6370 e and a negative electrode 6372 e. In FIG. 115F, the heat shield 6322 f comprises the positive electrode 6370 f and the negative electrode 6372 f.
  • FIGS. 115G-115I illustrate various embodiments of the integrated RF/ultrasonic end effector 6304 comprising a monopolar electrode. In FIG. 115G, the ultrasonic blade 6366 g comprises a monopolar electrode for delivering RF energy to a tissue section. In FIG. 115H, the clamp arm 6364 h comprises the monopolar electrode. In FIG. 115I, the heat shield 6322 i comprises the monopolar electrode.
  • FIGS. 117-118 illustrate one embodiment of an integrated RF/ultrasonic surgical instrument 6602. The integrated RF/ultrasonic instrument 6602 may comprise an insulated shaft 6614. The shaft 6614 and end effector 6604, including the jaw 6664 and ultrasonic blade 6666, may be energized with monopolar RF energy. The monopolar RF energy may be controlled by a double pole double throw (DPDT) selector switch 6620 located, for example, on the handle 6612 of the integrated RF/ultrasonic instrument 6602. The DPDT selector switch 6628 may switch the integrated RF/ultrasonic instrument 6602 from an ultrasonic generator 6620 to a monopolar RF generator 6622. FIG. 118 illustrates one embodiment of a DPDT selector switch 6628 which may be configured to switch between the ultrasonic generator 6620 and the monopolar RF generator 6622. The DPDT selector switch 6628 may comprise a user toggle 6630.
  • Coated Ultrasonic/RF Blades
  • FIGS. 80-83 illustrate various views of an ultrasonic blade 5100 coated with an electrically insulative material 5102 to provide thermal insulation at the tissue contact area to minimize adhesion of tissue to the blade 5100. Conventional ultrasonic devices utilize one mode of treatment, which limits versatility. For example, conventional ultrasonic devices may be used for blood vessel sealing and transecting tissue. Bipolar RF may offer added benefits such as a method for spot coagulation and pretreatment of tissue. Incorporating ultrasonic and RF may provide versatility and increase effectiveness. However, conventional ultrasonic devices utilize coatings to provide insulation at the distal end of the blade. These coatings are electrically insulative, and therefore limit current flow thus decreasing RF effectiveness. Additionally, current density may influence effectiveness. It may be contemplated that the entire waveguide of the blade may be coated with such coating to prevent shorting of the blade to the tube assembly return path. It is also contemplated that a similar coating and masking procedure may be employed in the clamp arm in order to provide a suitable path for current flow. In order to incorporate both energy modes into one device, a masking process for blade tip coating or coating removal process may be required. Creating an exposed area on the surface of the blade may provide a suitable path for current flow.
  • Accordingly, in one embodiment, an ultrasonic blade 5100 comprises a lubricious coating 5102 having properties similar to Teflon on the distal end of the blade 5100 as shown in FIGS. 80-83. The use of RF as a mode of treatment requires current to flow from the blade 5100, through tissue, and to a movable jaw member generally referred to as a clamp arm. The coating 5102 is used to provide thermal insulation at the contact area and minimize adhesion of tissue to blade 5100. However, the coating 5102 also is electrically insulative, which limits the amount of current flow. A method of masking the blade 5100 or removing coating selectively may be used to create exposed surfaces. In other embodiments, the lubricious coating 5102 provided on the blade 5100 may extend proximally so as to could coat the whole blade 5100, for example. In one embodiment, the blade 5100 may be coated back to the distal node.
  • FIGS. 84-93 illustrate various ultrasonic blades partially coated with an electrically insulative material to provide thermal and electrical insulation at the tissue contact area to minimize adhesion of tissue to the blade, where the lighter shade regions 5202 of the blade represent the coated portions and the darker shaded regions 5204 of the blade represent exposed surfaces that enable RF current to flow from the exposed region of the blade, through the tissue, and the movable jaw member. The exposed surface is symmetrical. The area on the blade that requires and exposed surface may be application dependent. Therefore, a different percentage of coating/exposed area has been illustrated is FIGS. 84-93. However, the embodiments are not limited to only the illustrated coverage. Although the embodiments shown in connection with FIGS. 84-93 show height-wise variation in electrically insulative blade coating, the lighter shaded regions 5202, it is contemplated within the scope of the present disclosure lengthwise variation in electrically insulative blade coating, the lighter shaded regions 5202, such that a portion of the distal tip of the blade exposed. In one example, the distal ā…“ of the sides of the blade would be exposed.
  • FIGS. 94-95 illustrate two ultrasonic blades with non-symmetrical exposed surfaces, where the blades are coated with an electrically insulative material to provide thermal insulation at the tissue contact area to minimize adhesion of tissue to the blade, where the lighter shade regions 5302 of the blade represent the coated portions and the darker shaded regions 5304 of the blade represent exposed surfaces that enable RF current to flow from the exposed region of the blade, through the tissue, and the movable jaw member. Current density may impact functionality and may be controlled by providing different surface areas. The surface areas do not have to be symmetrical on each side of the blade tip and may differ depending on performance. In addition, the exposed area may consist of two or more segments that are separated by at least one coated segment (not illustrated). Other coated/exposed geometries are possible as well, such as varying the depth or width of the exposed area along the axis of the blade.
  • In another embodiment, the blade and/or the tube assembly may be electrically charged to repel surgical matter.
  • FIGS. 119A-119E illustrate various embodiments of integrated RF/ultrasonic surgical end effectors. The clamp arm may comprise, for example, a circular clamp arm 6764 a, 6764 b, a hook clamp arm 6764 c, a circular clamp arm comprising a cavity 6764 d, or a curved hook clamp arm 6764 e. The ultrasonic blade may comprise, for example, a rectangular ultrasonic blade 6766 a, 6766 c and/or an elliptical ultrasonic blade 6766 b. FIGS. 120A-120C illustrate various embodiments of bipolar integrated RF/ultrasonic end effectors. In one embodiment, the clamp arm 6864 a may comprise first electrode and the ultrasonic blade 6866 a may comprise a second electrode. The clamp arm 6864 a or the ultrasonic blade 6866 a may comprise a return electrode. In some embodiments, the clamp arm 6864 b may comprise an insulating pad 6868 to separate the clamp arm 6864 b from the ultrasonic blade 6866 b. In some embodiments, the clamp arm 6864 c may comprise both a first electrode 6870 and a second electrode 6872. The first and second electrodes 6870, 6872 may be separated by an insulating portion of the clamp arm 6864 c.
  • FIGS. 121A-121C comprise various embodiment of monopolar integrated RF/ultrasonic end effectors. In some embodiments, the entire clamp arm 6964 a may comprise a monopolar electrode. In some embodiments, the clamp arm 6964 b may comprise an insulating pad 6968. A portion of the clamp arm 6964 b may comprise a monopolar electrode. In some embodiments, the clamp arm 6964 c and an ultrasonic blade 6966 may comprise a single monopolar electrode.
  • Heat Shielded Ultrasonic Blades
  • FIG. 96 is a perspective view of one embodiment of an ultrasonic end effector 5400 comprising a metal heat shield 5402. The ultrasonic end effector 5400 comprises a clamp arm 5410. The clamp arm 5410 comprises a movable jaw member 5408 (clamp arm), a tissue pad 5412, an ultrasonic blade 5404, and a heat shield 5402 provided at a distance from the ultrasonic blade 5404. The heat shield 5402 is metal and contains apertures 5406 for air flow which provides cooling to the heat shield 5402 and the ultrasonic blade 5404. The heat shield 5402 is disposed opposite of the movable jaw member 5408.
  • FIG. 97 is a perspective view of another embodiment of an ultrasonic end effector 5420 comprising a retractable metal heat shield 5422. The ultrasonic end effector 5420 comprises a clamp arm 5430. The clamp arm 5430 comprises a movable jaw member 5428, a tissue pad 5432, an ultrasonic blade 5424, and a heat shield 5422 provided at a distance from the ultrasonic blade 5424. In another embodiment, the metal heat shield 5422 is attachable to the ultrasonic blade 5424 at the distal most node location. The attachment means also acts as a heat sink 5422 to remove heat from the blade 5424. The heat shield 5422 is metal and contains apertures 5426 for air flow which provides cooling to the heat shield 5422 and the ultrasonic blade 5424. The heat shield 5422 is disposed opposite of the movable jaw member 5428.
  • FIG. 98 is a side view of another embodiment of an ultrasonic end effector 5440 comprising a heat shield 5444 shown in cross-section. The ultrasonic end effector 5440 comprises a clamp arm 5448. The clamp arm 5448 comprises a movable jaw member 5252, an ultrasonic blade 5450, and a heat shield 5444 that also acts as a heat sink 5442. A pad 5452 may be provided on the blade 5450 side of the movable jaw member 5252 to grasp tissue between the pad 5452 and the blade 5450. The attachment of the heat shield 5444/heat sink 5442 is at a node location. FIG. 99 is a front view of the ultrasonic end effector 5440 shown in FIG. 98, according to one embodiment.
  • FIGS. 100-104 illustrate various views of one embodiment of an ultrasonic end effector 5460 comprising a dual purpose rotatable heat shield 5462. FIG. 100 illustrates one embodiment of a clamp arm 5464 comprising a movable jaw member 5464 shown in a closed position and a dual purpose rotatable heat shield 5462 located below an ultrasonic blade 5468. The ultrasonic end effector 5460 comprises a clamp arm 5464 having a movable jaw member 5470, an ultrasonic blade 5468, and the dual purpose rotatable heat shield 5462. In one embodiment, the clamp arm 5464 comprises a movable jaw member 5470, which is shown in FIG. 100 in a closed position, and the rotatable heat shield 5462 is located below the ultrasonic blade 5468. In this embodiment, the heat shield 5462 is dual purposed and is rotatable about the blade 5468. The blade 5468 in this example is a straight/non-curved configuration. While the heat shield 5468 is disposed opposite of the movable jaw member 5470 (shears type end-effector), it acts as a heat shield 5462. After rotation about the blade 5468, the heat shield 5462 now is disposed between the blade 5468 and the movable jaw member 5470 providing a tissue clamping surface, backed by the blade 5468 providing strength/support for the heat shield 5468. Also, the heat shield 5468 may be configured to provide energy opposite of the energy that may be provided on the movable jaw member 5470 creating a bi-polar energy that may effect tissue.
  • FIG. 101 illustrates one embodiment of a movable jaw member 5470 shown in an open position and a dual purpose rotatable heat shield 5462 rotated such that it is interposed between the movable jaw member 5470 and the blade 5468.
  • FIG. 102 illustrates an end view of one embodiment of a dual purpose rotatable heat shield 5462 rotated in a first position. FIG. 103 illustrates an end view of one embodiment of the dual purpose rotatable heat shield 5462 rotated in a second position. With reference now to FIGS. 102-103, the rotatable heat shield 5462 has purposeful alignment that enables a tapered portion of the shield 5642 to come in between the top of the blade 5468 surface and the movable jaw member 5470. This rotation enables ā€œback cuttingā€ if necessary while still allowing normal activation shielding. Additionally an inner contour of the shield 5462 may be configured for contact to ā€œcleanā€ the tip upon rotation if necessary. Further if the shield 5462 is insulated, rotation of the shield 5462 from the stage 1 position into the stage 2 position enables RF energy to be applied for sealing only. Bottom surface of shield could have grip to assist in grasping as well when rotated to position 2.
  • FIG. 104 is a top profile view of one embodiment of a heat shield 5462 showing a tapered portion of the shield 5462. As shown, in one embodiment the heat shield 5462 includes a tapered portion defined by radius R1 relative to radius R2, where R2>R1.
  • FIGS. 116A-116B illustrates one embodiment of a cooling system for an ultrasonic surgical instrument. Air 6416 may be forced down an inner tube 6406 of the ultrasonic surgical instrument 6302 and over an ultrasonic end effector 6404. The air movement over the ultrasonic end effector 6304 may cool the ultrasonic end effector 6404. In one embodiment, cold air may be used to increase the cooling of the end effector 6404. Air 6416 may be moved in the direction of shown to cool the ultrasonic end effector 6404 through convection heat transfer from the ultrasonic end effector 6404 to the air. In some embodiments, a hospital air-line 6410 may be coupled to the ultrasonic instrument 6302 to provide compressed air flow through the inner tube 6406. In some embodiments, a hand pump 6412 and a reservoir 6414 may be located in the proximal end of the surgical instrument 6402, such as, for example, in the handle. A clinician may operate the hand pump 6412 to generate air pressure within the reservoir 6414. The hand pump 6412 may comprise, for example, a squeeze bulb. The reservoir 6414 and/or the hospital air-line 6410 may be force air over the ultrasonic end effector 6404 with each opening and/or closing of the jaws. In some embodiments, the reservoir 6414 and/or the hospital air-line 6410 may provide a continuous flow of air over the ultrasonic end effector. In some embodiments, the inner tube 6406 may comprise a vortex tub, illustrated in FIG. 116B. The vortex tube may facilitate movement of air 6416 within the inner tube 6406 to travel distally 6418 through the inner tube 6406, over the ultrasonic end effector 6404, and return 6420 to the proximal end of the inner tube 6406 which may be open to release the air. The distal end of the vortex tube may comprise a splitter to split the stream of air 6418 to cool the distal end of the ultrasonic end effector 6404.
  • Ultrasonic 4-Bar Closure with Application to an Ultrasonic Rongeur
  • FIG. 105 illustrates a conventional rongeur surgical instrument 6000. Certain orthopedic procedures such as spinal fusion are used to treat degenerative spinal disk disease. One of the most commonly used instruments is the rongeur 6000 as shown in FIG. 105 for the removal of the spinal disk, which is made up of a nucleus and a tough annulus. The rongeur 6000 uses a 4-bar linkage in combination with a clamp arm 6002 comprising a movable jaw member 6004 to take bites of the spinal disk material. Generally speaking, a number of bites (10 to 20) may be taken for complete removal of the spinal disk. The multiple use of the rongeur 6000 can be fatiguing.
  • Accordingly, FIG. 106 illustrates one embodiment of an ultrasonic energy driven rongeur device 6100. The ultrasonic energy driven rongeur device 6100 comprises an ultrasonic transducer 6102 is added to one member of a 4-bar mechanism. The rongeur device 6100 also comprises two elongate horizontal members. As shown in FIG. 106, only the lower horizontal member 6104 coupled to a handle 6106 is shown. The two elongate horizontal members of the ultrasonic rongeur device 6100 are each attached to one handle 6106 of the ultrasonic rongeur device 6100. The horizontal members are connected with a small link at a distal end 6103, and the forward handle 6106 is the second link. These four members approach parallel-rules. As can be seen in FIG. 106, the bottom horizontal member 6104 is basically a straight rod which does not move. In accordance with one embodiment of the present disclosure, by placing pivots 6108, 6110 of the lower horizontal member 6104 at Nodes, the lower horizontal member 6104 may be considered an ultrasonic waveguide. Accordingly, the rest of the rongeur device 6100 is attached to the lower horizontal arm 6104 at nodes. The proximal end of the lower horizontal member 6104 can be attached to an ultrasonic transducer 6102 to produce ultrasonic displacement at the distal end 6103. The amplitude of the ultrasonic displacement will aid in cutting the tissue and therefore reduce the force required by the surgeon. Not shown here is the need to insert some damping material between the two horizontal members and a sheath on the lower horizontal member 6104 to avoid contact with intervening tissue. Advantages of the ultrasonic driven rongeur device 6100 include, without limitation, a novel closure mechanism for ultrasonic instruments based on a 4-bar linkage, lower force required to take a bite of spinal disk material, reduce surgeon fatigue, and novel instrument architecture for additional applications.
  • While various details have been set forth in the foregoing description, it will be appreciated that the various aspects of the ultrasonic and electrosurgical devices may be practiced without these specific details. For example, for conciseness and clarity selected aspects have been shown in block diagram form rather than in detail. Some portions of the detailed descriptions provided herein may be presented in terms of instructions that operate on data that is stored in a computer memory. Such descriptions and representations are used by those skilled in the art to describe and convey the substance of their work to others skilled in the art. In general, an algorithm refers to a self-consistent sequence of steps leading to a desired result, where a ā€œstepā€ refers to a manipulation of physical quantities which may, though need not necessarily, take the form of electrical or magnetic signals capable of being stored, transferred, combined, compared, and otherwise manipulated. It is common usage to refer to these signals as bits, values, elements, symbols, characters, terms, numbers, or the like. These and similar terms may be associated with the appropriate physical quantities and are merely convenient labels applied to these quantities.
  • Unless specifically stated otherwise as apparent from the foregoing discussion, it is appreciated that, throughout the foregoing description, discussions using terms such as ā€œprocessingā€ or ā€œcomputingā€ or ā€œcalculatingā€ or ā€œdeterminingā€ or ā€œdisplayingā€ or the like, refer to the action and processes of a computer system, or similar electronic computing device, that manipulates and transforms data represented as physical (electronic) quantities within the computer system's registers and memories into other data similarly represented as physical quantities within the computer system memories or registers or other such information storage, transmission or display devices.
  • It is worthy to note that any reference to ā€œone aspect,ā€ ā€œan aspect,ā€ ā€œone embodiment,ā€ or ā€œan embodimentā€ means that a particular feature, structure, or characteristic described in connection with the aspect is included in at least one aspect. Thus, appearances of the phrases ā€œin one aspect,ā€ ā€œin an aspect,ā€ ā€œin one embodiment,ā€ or ā€œin an embodimentā€ in various places throughout the specification are not necessarily all referring to the same aspect. Furthermore, the particular features, structures or characteristics may be combined in any suitable manner in one or more aspects.
  • Some aspects may be described using the expression ā€œcoupledā€ and ā€œconnectedā€ along with their derivatives. It should be understood that these terms are not intended as synonyms for each other. For example, some aspects may be described using the term ā€œconnectedā€ to indicate that two or more elements are in direct physical or electrical contact with each other. In another example, some aspects may be described using the term ā€œcoupledā€ to indicate that two or more elements are in direct physical or electrical contact. The term ā€œcoupled,ā€ however, also may mean that two or more elements are not in direct contact with each other, but yet still co-operate or interact with each other.
  • Although various embodiments have been described herein, many modifications, variations, substitutions, changes, and equivalents to those embodiments may be implemented and will occur to those skilled in the art. Also, where materials are disclosed for certain components, other materials may be used. It is therefore to be understood that the foregoing description and the appended claims are intended to cover all such modifications and variations as falling within the scope of the disclosed embodiments. The following claims are intended to cover all such modification and variations.
  • Some or all of the embodiments described herein may generally comprise technologies for ultrasonic and RF treatment of tissue, or otherwise according to technologies described herein. In a general sense, those skilled in the art will recognize that the various aspects described herein which can be implemented, individually and/or collectively, by a wide range of hardware, software, firmware, or any combination thereof can be viewed as being composed of various types of ā€œelectrical circuitry.ā€ Consequently, as used herein ā€œelectrical circuitryā€ includes, but is not limited to, electrical circuitry having at least one discrete electrical circuit, electrical circuitry having at least one integrated circuit, electrical circuitry having at least one application specific integrated circuit, electrical circuitry forming a general purpose computing device configured by a computer program (e.g., a general purpose computer configured by a computer program which at least partially carries out processes and/or devices described herein, or a microprocessor configured by a computer program which at least partially carries out processes and/or devices described herein), electrical circuitry forming a memory device (e.g., forms of random access memory), and/or electrical circuitry forming a communications device (e.g., a modem, communications switch, or optical-electrical equipment). Those having skill in the art will recognize that the subject matter described herein may be implemented in an analog or digital fashion or some combination thereof.
  • The foregoing detailed description has set forth various embodiments of the devices and/or processes via the use of block diagrams, flowcharts, and/or examples. Insofar as such block diagrams, flowcharts, and/or examples contain one or more functions and/or operations, it will be understood by those within the art that each function and/or operation within such block diagrams, flowcharts, or examples can be implemented, individually and/or collectively, by a wide range of hardware, software, firmware, or virtually any combination thereof. In one embodiment, several portions of the subject matter described herein may be implemented via Application Specific Integrated Circuits (ASICs), Field Programmable Gate Arrays (FPGAs), digital signal processors (DSPs), or other integrated formats. However, those skilled in the art will recognize that some aspects of the embodiments disclosed herein, in whole or in part, can be equivalently implemented in integrated circuits, as one or more computer programs running on one or more computers (e.g., as one or more programs running on one or more computer systems), as one or more programs running on one or more processors (e.g., as one or more programs running on one or more microprocessors), as firmware, or as virtually any combination thereof, and that designing the circuitry and/or writing the code for the software and or firmware would be well within the skill of one of skill in the art in light of this disclosure. In addition, those skilled in the art will appreciate that the mechanisms of the subject matter described herein are capable of being distributed as a program product in a variety of forms, and that an illustrative embodiment of the subject matter described herein applies regardless of the particular type of signal bearing medium used to actually carry out the distribution. Examples of a signal bearing medium include, but are not limited to, the following: a recordable type medium such as a floppy disk, a hard disk drive, a Compact Disc (CD), a Digital Video Disk (DVD), a digital tape, a computer memory, etc.; and a transmission type medium such as a digital and/or an analog communication medium (e.g., a fiber optic cable, a waveguide, a wired communications link, a wireless communication link (e.g., transmitter, receiver, transmission logic, reception logic, etc.), etc.).
  • All of the above-mentioned U.S. patents, U.S. patent application publications, U.S. patent applications, foreign patents, foreign patent applications, non-patent publications referred to in this specification and/or listed in any Application Data Sheet, or any other disclosure material are incorporated herein by reference, to the extent not inconsistent herewith. As such, and to the extent necessary, the disclosure as explicitly set forth herein supersedes any conflicting material incorporated herein by reference. Any material, or portion thereof, that is said to be incorporated by reference herein, but which conflicts with existing definitions, statements, or other disclosure material set forth herein will only be incorporated to the extent that no conflict arises between that incorporated material and the existing disclosure material.
  • One skilled in the art will recognize that the herein described components (e.g., operations), devices, objects, and the discussion accompanying them are used as examples for the sake of conceptual clarity and that various configuration modifications are contemplated. Consequently, as used herein, the specific exemplars set forth and the accompanying discussion are intended to be representative of their more general classes. In general, use of any specific exemplar is intended to be representative of its class, and the non-inclusion of specific components (e.g., operations), devices, and objects should not be taken limiting.
  • With respect to the use of substantially any plural and/or singular terms herein, those having skill in the art can translate from the plural to the singular and/or from the singular to the plural as is appropriate to the context and/or application. The various singular/plural permutations are not expressly set forth herein for sake of clarity.
  • The herein described subject matter sometimes illustrates different components contained within, or connected with, different other components. It is to be understood that such depicted architectures are merely exemplary, and that in fact many other architectures may be implemented which achieve the same functionality. In a conceptual sense, any arrangement of components to achieve the same functionality is effectively ā€œassociatedā€ such that the desired functionality is achieved. Hence, any two components herein combined to achieve a particular functionality can be seen as ā€œassociated withā€ each other such that the desired functionality is achieved, irrespective of architectures or intermedial components. Likewise, any two components so associated can also be viewed as being ā€œoperably connected,ā€ or ā€œoperably coupled,ā€ to each other to achieve the desired functionality, and any two components capable of being so associated can also be viewed as being ā€œoperably couplable,ā€ to each other to achieve the desired functionality. Specific examples of operably couplable include but are not limited to physically mateable and/or physically interacting components, and/or wirelessly interactable, and/or wirelessly interacting components, and/or logically interacting, and/or logically interactable components.
  • In some instances, one or more components may be referred to herein as ā€œconfigured to,ā€ ā€œconfigurable to,ā€ ā€œoperable/operative to,ā€ ā€œadapted/adaptable,ā€ ā€œable to,ā€ ā€œconformable/conformed to,ā€ etc. Those skilled in the art will recognize that ā€œconfigured toā€ can generally encompass active-state components and/or inactive-state components and/or standby-state components, unless context requires otherwise.
  • While particular aspects of the present subject matter described herein have been shown and described, it will be apparent to those skilled in the art that, based upon the teachings herein, changes and modifications may be made without departing from the subject matter described herein and its broader aspects and, therefore, the appended claims are to encompass within their scope all such changes and modifications as are within the true spirit and scope of the subject matter described herein. It will be understood by those within the art that, in general, terms used herein, and especially in the appended claims (e.g., bodies of the appended claims) are generally intended as ā€œopenā€ terms (e.g., the term ā€œincludingā€ should be interpreted as ā€œincluding but not limited to,ā€ the term ā€œhavingā€ should be interpreted as ā€œhaving at least,ā€ the term ā€œincludesā€ should be interpreted as ā€œincludes but is not limited to,ā€ etc.). It will be further understood by those within the art that if a specific number of an introduced claim recitation is intended, such an intent will be explicitly recited in the claim, and in the absence of such recitation no such intent is present. For example, as an aid to understanding, the following appended claims may contain usage of the introductory phrases ā€œat least oneā€ and ā€œone or moreā€ to introduce claim recitations. However, the use of such phrases should not be construed to imply that the introduction of a claim recitation by the indefinite articles ā€œaā€ or ā€œanā€ limits any particular claim containing such introduced claim recitation to claims containing only one such recitation, even when the same claim includes the introductory phrases ā€œone or moreā€ or ā€œat least oneā€ and indefinite articles such as ā€œaā€ or ā€œanā€ (e.g., ā€œaā€ and/or ā€œanā€ should typically be interpreted to mean ā€œat least oneā€ or ā€œone or moreā€); the same holds true for the use of definite articles used to introduce claim recitations.
  • In addition, even if a specific number of an introduced claim recitation is explicitly recited, those skilled in the art will recognize that such recitation should typically be interpreted to mean at least the recited number (e.g., the bare recitation of ā€œtwo recitations,ā€ without other modifiers, typically means at least two recitations, or two or more recitations). Furthermore, in those instances where a convention analogous to ā€œat least one of A, B, and C, etc.ā€ is used, in general such a construction is intended in the sense one having skill in the art would understand the convention (e.g., ā€œa system having at least one of A, B, and Cā€ would include but not be limited to systems that have A alone, B alone, C alone, A and B together, A and C together, B and C together, and/or A, B, and C together, etc.). In those instances where a convention analogous to ā€œat least one of A, B, or C, etc.ā€ is used, in general such a construction is intended in the sense one having skill in the art would understand the convention (e.g., ā€œa system having at least one of A, B, or Cā€ would include but not be limited to systems that have A alone, B alone, C alone, A and B together, A and C together, B and C together, and/or A, B, and C together, etc.). It will be further understood by those within the art that typically a disjunctive word and/or phrase presenting two or more alternative terms, whether in the description, claims, or drawings, should be understood to contemplate the possibilities of including one of the terms, either of the terms, or both terms unless context dictates otherwise. For example, the phrase ā€œA or Bā€ will be typically understood to include the possibilities of ā€œAā€ or ā€œBā€ or ā€œA and B.ā€
  • With respect to the appended claims, those skilled in the art will appreciate that recited operations therein may generally be performed in any order. Also, although various operational flows are presented in a sequence(s), it should be understood that the various operations may be performed in other orders than those which are illustrated, or may be performed concurrently. Examples of such alternate orderings may include overlapping, interleaved, interrupted, reordered, incremental, preparatory, supplemental, simultaneous, reverse, or other variant orderings, unless context dictates otherwise. Furthermore, terms like ā€œresponsive to,ā€ ā€œrelated to,ā€ or other past-tense adjectives are generally not intended to exclude such variants, unless context dictates otherwise.
  • In certain cases, use of a system or method may occur in a territory even if components are located outside the territory. For example, in a distributed computing context, use of a distributed computing system may occur in a territory even though parts of the system may be located outside of the territory (e.g., relay, server, processor, signal-bearing medium, transmitting computer, receiving computer, etc. located outside the territory).
  • A sale of a system or method may likewise occur in a territory even if components of the system or method are located and/or used outside the territory. Further, implementation of at least part of a system for performing a method in one territory does not preclude use of the system in another territory.
  • Although various embodiments have been described herein, many modifications, variations, substitutions, changes, and equivalents to those embodiments may be implemented and will occur to those skilled in the art. Also, where materials are disclosed for certain components, other materials may be used. It is therefore to be understood that the foregoing description and the appended claims are intended to cover all such modifications and variations as falling within the scope of the disclosed embodiments. The following claims are intended to cover all such modification and variations.
  • In summary, numerous benefits have been described which result from employing the concepts described herein. The foregoing description of the one or more embodiments has been presented for purposes of illustration and description. It is not intended to be exhaustive or limiting to the precise form disclosed. Modifications or variations are possible in light of the above teachings. The one or more embodiments were chosen and described in order to illustrate principles and practical application to thereby enable one of ordinary skill in the art to utilize the various embodiments and with various modifications as are suited to the particular use contemplated. It is intended that the claims submitted herewith define the overall scope.
  • Various aspects of the subject matter described herein are set out in the following numbered clauses:
  • 1. An ultrasonic surgical instrument, comprising: a waveguide comprising a proximal end and a distal end, wherein the proximal end is coupled to an ultrasonic transducer; a tube defining a lumen, wherein the waveguide is located within the lumen; an end effector coupled to the distal end of the waveguide, the end effector comprising an ultrasonic blade and a clamp arm operatively coupled to the end effector; and a tissue accumulation impedance mechanism coupled to the end effector, wherein the tissue accumulation impedance mechanism is configured to prevent tissue from accumulating within the lumen.
  • 2. The surgical instrument of clause 1, wherein the tissue accumulation impedance mechanism comprises a boot barrier configured to create a seal between the tube and the end effector.
  • 3. The surgical instrument of clause 2, wherein the boot barrier is sealed to the tube
  • 4. The surgical instrument of clause 2, wherein the boot is retained by the tube or end effector using one or more retention features.
  • 5. The surgical instrument of clause 2, wherein the boot barrier is sealed to the ultrasonic blade by way of an interference fit between the boot barrier and the ultrasonic blade.
  • 6. The surgical instrument of clause 2, wherein the boot barrier comprises a cavity.
  • 7. The surgical instrument of clause 6, wherein the cavity is rounded to allow fluid to flow out of the cavity.
  • 8. The surgical instrument of clause 2, wherein the boot barrier comprises a plurality of contact points with the blade.
  • 9. The surgical instrument of claim 1, wherein the tissue accumulation impedance mechanism comprises one or more apertures in the tube.
  • 10. The surgical instrument of claim 9, wherein the apertures comprise one or more windows.
  • 11. The surgical instrument of claim 9, wherein the apertures comprises one or more holes.
  • 12. The surgical instrument of claim 1, wherein the tube comprises a distal portion, wherein the distal portion comprises a half-circle cross section.
  • 13. The surgical instrument of claim 1, wherein the tube comprises one or more ribs formed on an inner side of the tube.
  • 14. The surgical instrument of claim 1, wherein the tissue accumulation impedance mechanism comprises a pump configured to provide a positive pressure flow between the blade and the tube, wherein the positive pressure flow prevents tissue ingress into the lumen.
  • 15. The surgical instrument of claim 1, wherein the pump is located distally to a distal-most overmolded seal located within the lumen.
  • 16. The surgical instrument of claim 1, wherein the tissue accumulation impedance mechanism comprises a slidable tube disposed within the lumen, the slidable tube slidable from a first position to a second position, wherein in the first position the slidable tube is disposed over the blade, and wherein in the second position the blade is exposed.
  • 17. An ultrasonic surgical instrument comprising: z waveguide comprising a proximal end and a distal end, wherein the proximal end is coupled to a transducer; an end effector coupled to the distal end of the waveguide, the end effector comprising at least one tissue retention feature; a clamp arm operatively coupled to the end effector.
  • 18. The surgical instrument of claim 17, wherein the at least one tissue retention feature comprises one or more indentations/grooves/notches formed in the end effector.
  • 19. The surgical instrument of claim 18, wherein the one or more indentations comprise triangular teeth.
  • 20. The surgical instrument of claim 18, wherein the one or more indentations comprise holes.
  • 21. The surgical instrument of claim 18, wherein the one or more indentations comprise horizontal trenches.
  • 22. The surgical instrument of claim 17, wherein the at least one tissue retention feature is offset from the tissue dividing crown of the end effector.
  • 23. The surgical instrument of claim 17, wherein the at least on tissue retention feature comprises one or more projections from the end effector.
  • 24. The surgical instrument of claim 23, wherein the one or more projections comprise triangular teeth.
  • 25. The surgical instrument of claim 23, wherein the one or more projections comprise blocks.
  • 26. The surgical instrument of claim 23, wherein the one or more projections comprise horizontal bumps.
  • 27. The surgical instrument of claim 23, wherein the one or more projections comprise circular bumps.
  • 28. The surgical instrument of claim 17, wherein the at least one tissue retention feature is disposed over an entire length of the blade.
  • 29. The surgical instrument of claim 17, wherein the at least one tissue retention feature is disposed over a discrete section of the blade.
  • 30. An ultrasonic surgical instrument, comprising: a waveguide comprising a proximal end and a distal end, wherein the proximal end is coupled to a transducer; an end effector operatively coupled to the distal end of the waveguide guide; a rotation shroud configured to rotate the waveguide; and a rotation stop mechanism coupled to the rotation shroud prevent rotation of the rotation knob beyond a predetermined rotation.
  • 31. The surgical instrument of claim 30, wherein the shroud comprises: at least one channel; and at least one boss, the at least one boss located within the at least one channel, wherein the at least one boss has a predetermined lateral movement limit, wherein when the at least one boss reaches the predetermined lateral movement limit, the at least one boss prevents further rotation of the rotation knob.
  • 32. The surgical instrument of claim 30, wherein the rotation stop comprises: a gate comprising a first wing and a second wing, wherein the first and second wings are disposed at an angle, wherein the gate is disposed within the shroud, and wherein the gate allows a predetermined angle of rotation of the shroud.
  • 33. The surgical instrument of claim 30, wherein the rotation stop comprises a contoured extrusion element.
  • 34. The surgical instrument of claim 33, wherein the contoured extrusion element comprises a tactile feedback element.
  • 35. The surgical instrument of claim 34, wherein the tactile feedback element comprises a semi-compliant material selected from the group consisting of rubber, medium to high density rubber, silicone, thermoplastic elastomer, springy piece of stainless steel, spring steel, copper, shape memory metal, and combinations of any thereof.
  • 36. An ultrasonic surgical instrument, comprising: a waveguide comprising a proximal end and a distal end, wherein the proximal end is coupled to a transducer; an end effector coupled to the distal end of the waveguide; a clamp arm operatively coupled to the end effector; and a tube disposed over the waveguide, wherein the tube comprises a counter deflection element, wherein the counter deflection element is configured to allow deflection of the blade, wherein the deflection of the blade counteracts a force placed on the blade by the clamp arm when in a clamped position.
  • 37. A surgical instrument comprising: a waveguide comprising a proximal end and a distal end, wherein the proximal end is coupled to a signal source, the signal source configured to provide an ultrasonic signal and an electrosurgical signal; an end effector coupled to the waveguide; a clamp arm operatively coupled to the end effector; and a sealing button, wherein the sealing button causes the surgical instrument to deliver the electrosurgical signal to the end effector and the clamp arm for a first period, and wherein the sealing button causes the surgical instrument to deliver the ultrasonic signal to the blade for a second period, wherein the second period is subsequent to the first period.
  • 38. A surgical instrument, comprising: a waveguide comprising a proximal end and a distal end, wherein the proximal end is coupled to a transducer; an end effector coupled to the distal end of the waveguide; a tube disposed over the waveguide; a cam surface formed on an outer surface of the tube; and a clamp arm operatively coupled to the cam surface.
  • 39. The surgical instrument of claim 38, comprising: a pivot pin located within a hole defined by the end effector, the pivot pin operatively coupled to the clamp arm, wherein the clamp arm pivots about the pivot pin.
  • 40. The surgical instrument of claim 39, wherein the pivot pin is located at the distal most node of the waveguide.
  • 41. The surgical instrument of claim 38, wherein the tube is actuatable, and wherein the clamp arm is cammed open and closed against the end effector through relative motion between the tube and the end effector.
  • 42. A surgical instrument, comprising: a waveguide comprising a proximal end and a distal end, wherein the proximal end is coupled to a transducer; an end effector coupled to the distal end of the waveguide, the end effector defining a pin hole; a rigid pin disposed within the pin hole; a clamp arm; and a four-bar linkage; wherein the four-bar linkage is operatively coupled to the clamp arm and the rigid pin, wherein the four-bar linkage is actuatable to move the clamp arm to a clamped position.
  • 43. The surgical instrument of claim 40, comprising: an outer tube, wherein the outer tube is coupled to the four-bar linkage, and wherein the outer-tube actuates the four-bar linkage from a first position to a second position.
  • 44. An ultrasonic surgical instrument, comprising: a waveguide comprising a proximal end and a distal end, wherein the proximal end is coupled to a transducer; and an end effector coupled to the distal end of the waveguide, wherein the end effector is partially coated with thermally and electrically insulative material such that the distal end of the end effector comprises one or more exposed sections.
  • 45. The ultrasonic surgical instrument of claim 44, wherein the one or more exposed areas are symmetrical.
  • 46. The ultrasonic surgical instrument of claim 44, wherein the one or more exposed areas are asymmetrical.
  • 47. The ultrasonic surgical instrument of claim 44, wherein the one or more exposed sections are separated by one or more coated sections.
  • 48. The ultrasonic surgical instrument of claim 44, wherein the waveguide is fully coated with thermally and electrically insulative material.
  • 49. The ultrasonic surgical instrument of claim 44, wherein the waveguide is partially coated with thermally and electrically insulative material.
  • 50. An ultrasonic surgical instrument, comprising: a waveguide comprising a proximal end and a distal end, wherein the proximal end is coupled to a transducer; and an end effector coupled to the distal end of the waveguide, a clamp arm operatively connected to the end effector wherein the clamp arm is partially coated with thermally and electrically insulative material such that the distal end of the clamp arm comprises one or more exposed sections.
  • 51. The ultrasonic surgical instrument of claim 50, wherein the one or more exposed areas are symmetrical.
  • 52. The ultrasonic surgical instrument of claim 50, wherein the one or more exposed areas are asymmetrical.
  • 53. The ultrasonic surgical instrument of claim 50, wherein the one or more exposed sections are separated by one or more coated sections.
  • 54. The ultrasonic surgical instrument of claim 50, wherein the waveguide is fully coated with thermally and electrically insulative material.
  • 55. The ultrasonic surgical instrument of claim 50, wherein the waveguide is fully coated with thermally and electrically insulative material.
  • 56. An ultrasonic surgical instrument, comprising: a waveguide comprising a proximal end and a distal end, wherein the proximal end is coupled to a transducer; and an end effector coupled to the distal end of the waveguide, a clamp arm operatively connected to the end effector wherein the clamp arm and the end effector are partially coated with thermally and electrically insulative material such that the distal end of the end effector and clamp arm comprise one or more exposed sections.
  • 57. The ultrasonic surgical instrument of claim 56, wherein the one or more exposed areas are symmetrical.
  • 58. The ultrasonic surgical instrument of claim 56, wherein the one or more exposed areas are asymmetrical.
  • 59. The ultrasonic surgical instrument of claim 56, wherein the one or more exposed sections are separated by one or more coated sections.
  • 60. The ultrasonic surgical instrument of claim 56, wherein the waveguide is fully coated with thermally and electrically insulative material.
  • 61. The ultrasonic surgical instrument of claim 56, wherein the waveguide is fully coated with thermally and electrically insulative material.
  • 62. An ultrasonic surgical instrument, comprising: ultrasonic end effector comprising an ultrasonic surgical blade and a clamp arm; and a heat shield provided at a predetermined distance from the ultrasonic blade.
  • 63. The ultrasonic instrument of claim 62, wherein the heat shield is rotatable about the ultrasonic blade.
  • 64. The ultrasonic instrument of 62, comprising a heat sink.
  • 65. The ultrasonic instrument of 62, wherein the heat shield comprises a plurality of apertures.
  • 66. The ultrasonic instrument of 62, wherein the heat shield comprises a tapered portion.
  • 67. An integrated radio frequency (RF)/ultrasonic surgical instrument, comprising: an ultrasonic transducer; a jack connector electrically coupled to the ultrasonic transducer; and a slidable female mating plug matable with the jack connector; wherein the slidable female mating plug is slidable in multiple positions to electrically couple the ultrasonic transducer to either an ultrasonic energy source or an RF energy source.
  • 68. The integrated radio frequency (RF)/ultrasonic surgical instrument of claim 67, wherein the jack connector is rotatable with the ultrasonic transducer.
  • 69. The integrated radio frequency (RF)/ultrasonic surgical instrument of claim 67, wherein the jack connector is a four-lead jack connector.
  • 70. The integrated radio frequency (RF)/ultrasonic surgical instrument of claim 67, wherein the slidable female mating plug in slidable between a first position and a second position; wherein in the first position the ultrasonic transducer is electrically coupled to the ultrasonic energy source and is electrically isolated from the RF energy source; and wherein in the second position the ultrasonic transducer is electrically coupled to the RF energy source and is electrically isolated from the ultrasonic energy source.
  • 71. An ultrasonic energy driven rongeur device, comprising: at least one elongate member; a linkage connected to a distal end of the at least one elongate member; an ultrasonic transducer coupled to the at least one elongate member; and a pivot located at an ultrasonic node of the at least one elongate member.
  • 72. The ultrasonic energy driven rongeur device of claim 71, comprising: a second linkage connected to a proximal end of the at least one elongate member; and a second pivot located at a second ultrasonic of the at least one elongate member.
  • 73. The ultrasonic energy driven rongeur device of claim 71, comprising: a second elongate member above the at least one elongate member; and a damping material disposed between the least one elongate member and the second elongate member.

Claims (21)

1. A surgical instrument, comprising:
a waveguide comprising a proximal end and a distal end, wherein the proximal end is coupled to an ultrasonic transducer; and
an end effector coupled to the distal end of the waveguide, wherein the end effector comprises an ultrasonic blade and a clamp arm operatively coupled thereto, and wherein the blade comprises one or more coated sections that are coated with a thermally and electrically insulative material and one or more exposed sections that are not coated with the thermally and electrically insulative material.
2. The surgical instrument of claim 1, wherein the one or more exposed sections are symmetrical.
3. The surgical instrument of claim 1, wherein the one or more exposed sections are asymmetrical.
4. The surgical instrument of claim 1, wherein the one or more exposed sections are separated by the one or more coated sections.
5. The surgical instrument of claim 1, wherein the waveguide is fully coated with the thermally and electrically insulative material.
6. The surgical instrument of claim 1, wherein the waveguide is partially coated with the thermally and electrically insulative material.
7. The surgical instrument of claim 1, wherein the one or more exposed sections are suitable for conducting electrical current therethrough.
8. A surgical instrument, comprising:
a waveguide comprising a proximal end and a distal end, wherein the proximal end is coupled to an ultrasonic transducer; and
an end effector coupled to the distal end of the waveguide, wherein the end effector comprises an ultrasonic blade and a clamp arm operatively coupled thereto, and wherein the clamp arm comprises one or more coated sections that are coated with a thermally and electrically insulative material and one or more exposed sections that are not coated with the thermally and electrically insulative material.
9. The surgical instrument of claim 8, wherein the one or more exposed sections are symmetrical.
10. The surgical instrument of claim 8, wherein the one or more exposed sections are asymmetrical.
11. The surgical instrument of claim 8, wherein the one or more exposed sections are separated by the one or more coated sections.
12. The surgical instrument of claim 8, wherein the waveguide is fully coated with the thermally and electrically insulative material.
13. The surgical instrument of claim 8, wherein the waveguide is partially coated with the thermally and electrically insulative material.
14. The surgical instrument of claim 8, wherein the one or more exposed sections are suitable for conducting electrical current therethrough.
15. A surgical instrument, comprising:
a waveguide comprising a proximal end and a distal end, wherein the proximal end is coupled to an ultrasonic transducer; and
an end effector coupled to the distal end of the waveguide, wherein the end effector comprises an ultrasonic blade and a clamp arm operatively coupled thereto, and wherein the ultrasonic blade and the clamp arm comprise one or more coated sections that are coated with a thermally and electrically insulative material and one or more exposed sections that are not coated with the thermally and electrically insulative material.
16. The surgical instrument of claim 15, wherein the one or more exposed sections are symmetrical.
17. The surgical instrument of claim 15, wherein the one or more exposed sections are asymmetrical.
18. The surgical instrument of claim 15, wherein the one or more exposed sections are separated by the one or more coated sections.
19. The surgical instrument of claim 15, wherein the waveguide is fully coated with the thermally and electrically insulative material.
20. The surgical instrument of claim 15, wherein the waveguide is partially coated with the thermally and electrically insulative material.
21. The surgical instrument of claim 15, wherein the one or more exposed sections are suitable for conducting electrical current therethrough.
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Cited By (122)

* Cited by examiner, ā€  Cited by third party
Publication number Priority date Publication date Assignee Title
US9232979B2 (en) 2012-02-10 2016-01-12 Ethicon Endo-Surgery, Inc. Robotically controlled surgical instrument
US9237921B2 (en) 2012-04-09 2016-01-19 Ethicon Endo-Surgery, Inc. Devices and techniques for cutting and coagulating tissue
US9241731B2 (en) 2012-04-09 2016-01-26 Ethicon Endo-Surgery, Inc. Rotatable electrical connection for ultrasonic surgical instruments
US9241728B2 (en) 2013-03-15 2016-01-26 Ethicon Endo-Surgery, Inc. Surgical instrument with multiple clamping mechanisms
US9283045B2 (en) 2012-06-29 2016-03-15 Ethicon Endo-Surgery, Llc Surgical instruments with fluid management system
US9326788B2 (en) 2012-06-29 2016-05-03 Ethicon Endo-Surgery, Llc Lockout mechanism for use with robotic electrosurgical device
US9339289B2 (en) 2007-11-30 2016-05-17 Ehticon Endo-Surgery, LLC Ultrasonic surgical instrument blades
US9393037B2 (en) 2012-06-29 2016-07-19 Ethicon Endo-Surgery, Llc Surgical instruments with articulating shafts
US9408622B2 (en) 2012-06-29 2016-08-09 Ethicon Endo-Surgery, Llc Surgical instruments with articulating shafts
US9414853B2 (en) 2007-07-27 2016-08-16 Ethicon Endo-Surgery, Llc Ultrasonic end effectors with increased active length
US9427249B2 (en) 2010-02-11 2016-08-30 Ethicon Endo-Surgery, Llc Rotatable cutting implements with friction reducing material for ultrasonic surgical instruments
US9439668B2 (en) 2012-04-09 2016-09-13 Ethicon Endo-Surgery, Llc Switch arrangements for ultrasonic surgical instruments
US9504855B2 (en) 2008-08-06 2016-11-29 Ethicon Surgery, LLC Devices and techniques for cutting and coagulating tissue
US9504483B2 (en) 2007-03-22 2016-11-29 Ethicon Endo-Surgery, Llc Surgical instruments
US9510850B2 (en) 2010-02-11 2016-12-06 Ethicon Endo-Surgery, Llc Ultrasonic surgical instruments
US9623237B2 (en) 2009-10-09 2017-04-18 Ethicon Endo-Surgery, Llc Surgical generator for ultrasonic and electrosurgical devices
US9636135B2 (en) 2007-07-27 2017-05-02 Ethicon Endo-Surgery, Llc Ultrasonic surgical instruments
US9642644B2 (en) 2007-07-27 2017-05-09 Ethicon Endo-Surgery, Llc Surgical instruments
US9649126B2 (en) 2010-02-11 2017-05-16 Ethicon Endo-Surgery, Llc Seal arrangements for ultrasonically powered surgical instruments
US9700339B2 (en) 2009-05-20 2017-07-11 Ethicon Endo-Surgery, Inc. Coupling arrangements and methods for attaching tools to ultrasonic surgical instruments
US9707027B2 (en) 2010-05-21 2017-07-18 Ethicon Endo-Surgery, Llc Medical device
US9713507B2 (en) 2012-06-29 2017-07-25 Ethicon Endo-Surgery, Llc Closed feedback control for electrosurgical device
US9724118B2 (en) 2012-04-09 2017-08-08 Ethicon Endo-Surgery, Llc Techniques for cutting and coagulating tissue for ultrasonic surgical instruments
US9737326B2 (en) 2012-06-29 2017-08-22 Ethicon Endo-Surgery, Llc Haptic feedback devices for surgical robot
US9764164B2 (en) 2009-07-15 2017-09-19 Ethicon Llc Ultrasonic surgical instruments
US9795405B2 (en) 2012-10-22 2017-10-24 Ethicon Llc Surgical instrument
US9801648B2 (en) 2007-03-22 2017-10-31 Ethicon Llc Surgical instruments
US9848902B2 (en) 2007-10-05 2017-12-26 Ethicon Llc Ergonomic surgical instruments
US9848901B2 (en) 2010-02-11 2017-12-26 Ethicon Llc Dual purpose surgical instrument for cutting and coagulating tissue
US9883884B2 (en) 2007-03-22 2018-02-06 Ethicon Llc Ultrasonic surgical instruments
US9962182B2 (en) 2010-02-11 2018-05-08 Ethicon Llc Ultrasonic surgical instruments with moving cutting implement
US10010339B2 (en) 2007-11-30 2018-07-03 Ethicon Llc Ultrasonic surgical blades
US10034684B2 (en) 2015-06-15 2018-07-31 Ethicon Llc Apparatus and method for dissecting and coagulating tissue
US10034704B2 (en) 2015-06-30 2018-07-31 Ethicon Llc Surgical instrument with user adaptable algorithms
US10154852B2 (en) 2015-07-01 2018-12-18 Ethicon Llc Ultrasonic surgical blade with improved cutting and coagulation features
US10179022B2 (en) 2015-12-30 2019-01-15 Ethicon Llc Jaw position impedance limiter for electrosurgical instrument
US10194973B2 (en) 2015-09-30 2019-02-05 Ethicon Llc Generator for digitally generating electrical signal waveforms for electrosurgical and ultrasonic surgical instruments
US10201365B2 (en) 2012-10-22 2019-02-12 Ethicon Llc Surgeon feedback sensing and display methods
US10201382B2 (en) 2009-10-09 2019-02-12 Ethicon Llc Surgical generator for ultrasonic and electrosurgical devices
US10226273B2 (en) 2013-03-14 2019-03-12 Ethicon Llc Mechanical fasteners for use with surgical energy devices
US10245064B2 (en) 2016-07-12 2019-04-02 Ethicon Llc Ultrasonic surgical instrument with piezoelectric central lumen transducer
US10251664B2 (en) 2016-01-15 2019-04-09 Ethicon Llc Modular battery powered handheld surgical instrument with multi-function motor via shifting gear assembly
USD847990S1 (en) 2016-08-16 2019-05-07 Ethicon Llc Surgical instrument
US10278721B2 (en) 2010-07-22 2019-05-07 Ethicon Llc Electrosurgical instrument with separate closure and cutting members
US10285724B2 (en) 2014-07-31 2019-05-14 Ethicon Llc Actuation mechanisms and load adjustment assemblies for surgical instruments
US10285723B2 (en) 2016-08-09 2019-05-14 Ethicon Llc Ultrasonic surgical blade with improved heel portion
US10321950B2 (en) 2015-03-17 2019-06-18 Ethicon Llc Managing tissue treatment
US10342602B2 (en) 2015-03-17 2019-07-09 Ethicon Llc Managing tissue treatment
US10349999B2 (en) 2014-03-31 2019-07-16 Ethicon Llc Controlling impedance rise in electrosurgical medical devices
US10357303B2 (en) 2015-06-30 2019-07-23 Ethicon Llc Translatable outer tube for sealing using shielded lap chole dissector
US10376305B2 (en) 2016-08-05 2019-08-13 Ethicon Llc Methods and systems for advanced harmonic energy
US10420580B2 (en) 2016-08-25 2019-09-24 Ethicon Llc Ultrasonic transducer for surgical instrument
US10420579B2 (en) 2007-07-31 2019-09-24 Ethicon Llc Surgical instruments
US10426507B2 (en) 2007-07-31 2019-10-01 Ethicon Llc Ultrasonic surgical instruments
US10433900B2 (en) 2011-07-22 2019-10-08 Ethicon Llc Surgical instruments for tensioning tissue
US10441345B2 (en) 2009-10-09 2019-10-15 Ethicon Llc Surgical generator for ultrasonic and electrosurgical devices
US10456193B2 (en) 2016-05-03 2019-10-29 Ethicon Llc Medical device with a bilateral jaw configuration for nerve stimulation
US10463421B2 (en) 2014-03-27 2019-11-05 Ethicon Llc Two stage trigger, clamp and cut bipolar vessel sealer
US10485607B2 (en) 2016-04-29 2019-11-26 Ethicon Llc Jaw structure with distal closure for electrosurgical instruments
US10524854B2 (en) 2010-07-23 2020-01-07 Ethicon Llc Surgical instrument
US10537352B2 (en) 2004-10-08 2020-01-21 Ethicon Llc Tissue pads for use with surgical instruments
US10543008B2 (en) 2012-06-29 2020-01-28 Ethicon Llc Ultrasonic surgical instruments with distally positioned jaw assemblies
US10555769B2 (en) 2016-02-22 2020-02-11 Ethicon Llc Flexible circuits for electrosurgical instrument
US10575892B2 (en) 2015-12-31 2020-03-03 Ethicon Llc Adapter for electrical surgical instruments
US10595930B2 (en) 2015-10-16 2020-03-24 Ethicon Llc Electrode wiping surgical device
US10595929B2 (en) 2015-03-24 2020-03-24 Ethicon Llc Surgical instruments with firing system overload protection mechanisms
US10603064B2 (en) 2016-11-28 2020-03-31 Ethicon Llc Ultrasonic transducer
US10639092B2 (en) 2014-12-08 2020-05-05 Ethicon Llc Electrode configurations for surgical instruments
US10646269B2 (en) 2016-04-29 2020-05-12 Ethicon Llc Non-linear jaw gap for electrosurgical instruments
USRE47996E1 (en) 2009-10-09 2020-05-19 Ethicon Llc Surgical generator for ultrasonic and electrosurgical devices
US10702329B2 (en) 2016-04-29 2020-07-07 Ethicon Llc Jaw structure with distal post for electrosurgical instruments
US10716615B2 (en) 2016-01-15 2020-07-21 Ethicon Llc Modular battery powered handheld surgical instrument with curved end effectors having asymmetric engagement between jaw and blade
US10765470B2 (en) 2015-06-30 2020-09-08 Ethicon Llc Surgical system with user adaptable techniques employing simultaneous energy modalities based on tissue parameters
US10779845B2 (en) 2012-06-29 2020-09-22 Ethicon Llc Ultrasonic surgical instruments with distally positioned transducers
US10779879B2 (en) 2014-03-18 2020-09-22 Ethicon Llc Detecting short circuits in electrosurgical medical devices
US10779848B2 (en) 2006-01-20 2020-09-22 Ethicon Llc Ultrasound medical instrument having a medical ultrasonic blade
US10820920B2 (en) 2017-07-05 2020-11-03 Ethicon Llc Reusable ultrasonic medical devices and methods of their use
US10835307B2 (en) 2001-06-12 2020-11-17 Ethicon Llc Modular battery powered handheld surgical instrument containing elongated multi-layered shaft
US10842522B2 (en) 2016-07-15 2020-11-24 Ethicon Llc Ultrasonic surgical instruments having offset blades
US10842580B2 (en) 2012-06-29 2020-11-24 Ethicon Llc Ultrasonic surgical instruments with control mechanisms
US10856929B2 (en) 2014-01-07 2020-12-08 Ethicon Llc Harvesting energy from a surgical generator
US10856896B2 (en) 2005-10-14 2020-12-08 Ethicon Llc Ultrasonic device for cutting and coagulating
US10874418B2 (en) 2004-02-27 2020-12-29 Ethicon Llc Ultrasonic surgical shears and method for sealing a blood vessel using same
US10881449B2 (en) 2012-09-28 2021-01-05 Ethicon Llc Multi-function bi-polar forceps
US10881424B2 (en) 2018-02-13 2021-01-05 Covidien Lp Removable fluid reservoir and ultrasonic surgical instrument including the same
US10893883B2 (en) 2016-07-13 2021-01-19 Ethicon Llc Ultrasonic assembly for use with ultrasonic surgical instruments
US10898256B2 (en) 2015-06-30 2021-01-26 Ethicon Llc Surgical system with user adaptable techniques based on tissue impedance
US10912580B2 (en) 2013-12-16 2021-02-09 Ethicon Llc Medical device
US10912603B2 (en) 2013-11-08 2021-02-09 Ethicon Llc Electrosurgical devices
US10925659B2 (en) 2013-09-13 2021-02-23 Ethicon Llc Electrosurgical (RF) medical instruments for cutting and coagulating tissue
US10952759B2 (en) 2016-08-25 2021-03-23 Ethicon Llc Tissue loading of a surgical instrument
US10987123B2 (en) 2012-06-28 2021-04-27 Ethicon Llc Surgical instruments with articulating shafts
US11020140B2 (en) 2015-06-17 2021-06-01 Cilag Gmbh International Ultrasonic surgical blade for use with ultrasonic surgical instruments
US11033292B2 (en) 2013-12-16 2021-06-15 Cilag Gmbh International Medical device
US11051873B2 (en) 2015-06-30 2021-07-06 Cilag Gmbh International Surgical system with user adaptable techniques employing multiple energy modalities based on tissue parameters
US11058447B2 (en) 2007-07-31 2021-07-13 Cilag Gmbh International Temperature controlled ultrasonic surgical instruments
US11090104B2 (en) 2009-10-09 2021-08-17 Cilag Gmbh International Surgical generator for ultrasonic and electrosurgical devices
US11129670B2 (en) 2016-01-15 2021-09-28 Cilag Gmbh International Modular battery powered handheld surgical instrument with selective application of energy based on button displacement, intensity, or local tissue characterization
US11129669B2 (en) 2015-06-30 2021-09-28 Cilag Gmbh International Surgical system with user adaptable techniques based on tissue type
US11229471B2 (en) 2016-01-15 2022-01-25 Cilag Gmbh International Modular battery powered handheld surgical instrument with selective application of energy based on tissue characterization
US11266430B2 (en) 2016-11-29 2022-03-08 Cilag Gmbh International End effector control and calibration
US11311326B2 (en) 2015-02-06 2022-04-26 Cilag Gmbh International Electrosurgical instrument with rotation and articulation mechanisms
US11324527B2 (en) 2012-11-15 2022-05-10 Cilag Gmbh International Ultrasonic and electrosurgical devices
US11337747B2 (en) 2014-04-15 2022-05-24 Cilag Gmbh International Software algorithms for electrosurgical instruments
US11399855B2 (en) 2014-03-27 2022-08-02 Cilag Gmbh International Electrosurgical devices
US11452525B2 (en) 2019-12-30 2022-09-27 Cilag Gmbh International Surgical instrument comprising an adjustment system
USD974558S1 (en) 2020-12-18 2023-01-03 Stryker European Operations Limited Ultrasonic knife
US11589916B2 (en) 2019-12-30 2023-02-28 Cilag Gmbh International Electrosurgical instruments with electrodes having variable energy densities
US11660089B2 (en) 2019-12-30 2023-05-30 Cilag Gmbh International Surgical instrument comprising a sensing system
US11684412B2 (en) 2019-12-30 2023-06-27 Cilag Gmbh International Surgical instrument with rotatable and articulatable surgical end effector
US11696776B2 (en) 2019-12-30 2023-07-11 Cilag Gmbh International Articulatable surgical instrument
US11723716B2 (en) 2019-12-30 2023-08-15 Cilag Gmbh International Electrosurgical instrument with variable control mechanisms
US11759251B2 (en) 2019-12-30 2023-09-19 Cilag Gmbh International Control program adaptation based on device status and user input
US11779387B2 (en) 2019-12-30 2023-10-10 Cilag Gmbh International Clamp arm jaw to minimize tissue sticking and improve tissue control
US11779329B2 (en) 2019-12-30 2023-10-10 Cilag Gmbh International Surgical instrument comprising a flex circuit including a sensor system
US11786291B2 (en) 2019-12-30 2023-10-17 Cilag Gmbh International Deflectable support of RF energy electrode with respect to opposing ultrasonic blade
US11812957B2 (en) 2019-12-30 2023-11-14 Cilag Gmbh International Surgical instrument comprising a signal interference resolution system
US11911063B2 (en) 2019-12-30 2024-02-27 Cilag Gmbh International Techniques for detecting ultrasonic blade to electrode contact and reducing power to ultrasonic blade
US11937866B2 (en) 2019-12-30 2024-03-26 Cilag Gmbh International Method for an electrosurgical procedure
US11937863B2 (en) 2019-12-30 2024-03-26 Cilag Gmbh International Deflectable electrode with variable compression bias along the length of the deflectable electrode
US11944366B2 (en) 2019-12-30 2024-04-02 Cilag Gmbh International Asymmetric segmented ultrasonic support pad for cooperative engagement with a movable RF electrode
US11950797B2 (en) 2020-05-29 2024-04-09 Cilag Gmbh International Deflectable electrode with higher distal bias relative to proximal bias

Families Citing this family (82)

* Cited by examiner, ā€  Cited by third party
Publication number Priority date Publication date Assignee Title
US9226766B2 (en) 2012-04-09 2016-01-05 Ethicon Endo-Surgery, Inc. Serial communication protocol for medical device
US20140330298A1 (en) * 2013-05-03 2014-11-06 Ethicon Endo-Surgery, Inc. Clamp arm features for ultrasonic surgical instrument
CN105451675B (en) * 2013-08-07 2018-06-12 å„„ęž—å·“ę–Æę Ŗ式会ē¤¾ Ultrasonic treatment unit
US9622767B2 (en) 2013-09-11 2017-04-18 Covidien Lp Ultrasonic surgical instrument with cooling system
US9901358B2 (en) * 2013-11-15 2018-02-27 Ethicon Llc Ultrasonic surgical instrument with integral blade cleaning feature
US9949785B2 (en) * 2013-11-21 2018-04-24 Ethicon Llc Ultrasonic surgical instrument with electrosurgical feature
CN104669323A (en) * 2013-11-26 2015-06-03 大čæžéš†ę˜Ÿę–°ęę–™ęœ‰é™å…¬åø Paraffin cutting tool
US10004528B2 (en) 2013-11-26 2018-06-26 Ethicon Llc Sleeve features for ultrasonic blade of a surgical instrument
WO2015088014A1 (en) * 2013-12-13 2015-06-18 ć‚ŖćƒŖćƒ³ćƒ‘ć‚¹ę Ŗ式会ē¤¾ Treatment tool, treatment tool unit, and treatment system
US9707029B2 (en) 2013-12-20 2017-07-18 Ethicon Llc Shield mechanisms for surgical devices
JP5911650B2 (en) * 2014-02-17 2016-04-27 ć‚ŖćƒŖćƒ³ćƒ‘ć‚¹ę Ŗ式会ē¤¾ Grasping treatment device
US20150313667A1 (en) * 2014-05-02 2015-11-05 Covidien Lp Electrosurgical instruments including end-effector assembly configured to provide mechanical cutting action on tissue
US20150313628A1 (en) * 2014-05-02 2015-11-05 Covidien Lp Electrosurgical instruments including end-effector assembly configured to provide mechanical cutting action on tissue
JP5959769B2 (en) * 2014-05-23 2016-08-02 ć‚ŖćƒŖćƒ³ćƒ‘ć‚¹ę Ŗ式会ē¤¾ Treatment tool
US20160038220A1 (en) * 2014-08-11 2016-02-11 Covidien Lp Surgical instruments and methods for performing tonsillectomy and adenoidectomy procedures
US10004529B2 (en) 2014-11-25 2018-06-26 Ethicon Llc Features to drive fluid toward an ultrasonic blade of a surgical instrument
US10433863B2 (en) 2014-11-25 2019-10-08 Ethicon Llc Ultrasonic surgical instrument with blade cooling through retraction
US10206705B2 (en) 2014-11-25 2019-02-19 Ethicon Llc Features for communication of fluid through shaft assembly of ultrasonic surgical instrument
US9395555B2 (en) * 2014-12-23 2016-07-19 Trimax Safety Corp. Structure of eyeglasses
JP5959790B1 (en) * 2015-01-07 2016-08-02 ć‚ŖćƒŖćƒ³ćƒ‘ć‚¹ę Ŗ式会ē¤¾ Ultrasonic probe
CN106456226B (en) * 2015-01-07 2019-08-23 å„„ęž—å·“ę–Æę Ŗ式会ē¤¾ Ultrasonic probe and ultrasonic operation system
EP3243458A4 (en) * 2015-01-07 2018-07-04 Olympus Corporation Treatment instrument and treatment system
CN107427313B (en) * 2015-04-10 2021-05-18 å„„ęž—å·“ę–Æę Ŗ式会ē¤¾ Medical device
JP6472538B2 (en) 2015-04-10 2019-02-20 ć‚øćƒ£ć‚¤ćƒ©ć‚¹ ć‚Øćƒ¼ć‚·ćƒ¼ć‚Øćƒ ć‚¢ć‚¤ ć‚¤ćƒ³ć‚Æ Medical forceps with offset teeth
EP3287086B1 (en) * 2015-05-29 2020-09-02 Olympus Corporation Medical device
CN107708585B (en) * 2015-06-30 2020-08-18 å„„ęž—å·“ę–Æę Ŗ式会ē¤¾ Medical instrument
US10874417B2 (en) * 2015-08-11 2020-12-29 Reach Surgical, Inc. Double hook ultrasonic surgical blade
ES2932750T3 (en) 2015-08-12 2023-01-25 Reach Surgical Inc Curved Ultrasonic Surgical Blade
US11020200B2 (en) 2015-10-19 2021-06-01 Ethicon Llc Surgical instrument with dual mode end effector and compound lever with detents
US10660692B2 (en) 2015-12-10 2020-05-26 Ethicon Llc End effector for instrument with ultrasonic blade and bipolar clamp arm
US20170164997A1 (en) * 2015-12-10 2017-06-15 Ethicon Endo-Surgery, Llc Method of treating tissue using end effector with ultrasonic and electrosurgical features
US20170164972A1 (en) * 2015-12-10 2017-06-15 Ethicon Endo-Surgery, Llc End effector for instrument with ultrasonic and electrosurgical features
US10238413B2 (en) * 2015-12-16 2019-03-26 Ethicon Llc Surgical instrument with multi-function button
CN113274123A (en) * 2016-01-11 2021-08-20 ę·é”å£«é˜æåøŒčæˆå…¬åø(ä»„å„„ęž—å·“ę–Æē¾Žå›½å¤–ē§‘ꊀęœÆ名义) Forceps with tissue stop
US10342566B2 (en) * 2016-03-29 2019-07-09 Covidien Lp Devices, systems, and methods for cooling a surgical instrument
US10456156B2 (en) 2016-03-29 2019-10-29 Covidien Lp Devices, systems, and methods for cooling a surgical instrument
USD820441S1 (en) 2016-06-13 2018-06-12 Integra Lifesciences Nr Ireland Limited Surgical handpiece nosecone
US10660663B2 (en) * 2016-05-25 2020-05-26 Ethicon Llc Ultrasonic surgical instrument blade with heat reduction feature
JP6625746B2 (en) 2016-06-30 2019-12-25 åÆŒå£«ćƒ•ć‚¤ćƒ«ćƒ ę Ŗ式会ē¤¾ Ultrasound endoscope and method of manufacturing the same
WO2018008097A1 (en) * 2016-07-05 2018-01-11 ć‚ŖćƒŖćƒ³ćƒ‘ć‚¹ę Ŗ式会ē¤¾ Medical treatment device, operating method of medical treatment device, and treatment method
US10736648B2 (en) 2016-11-16 2020-08-11 Ethicon Llc Surgical instrument with removable portion to facilitate cleaning
US9833256B1 (en) 2016-12-14 2017-12-05 Ethicon Endo-Surgery, Llc Ultrasonic surgical instrument with transducer slip joint
US10603129B2 (en) * 2016-12-14 2020-03-31 Ethicon Llc Ultrasonic surgical instrument with integral torque wrench and longitudinal engagement
US10799284B2 (en) * 2017-03-15 2020-10-13 Ethicon Llc Electrosurgical instrument with textured jaws
US10881409B2 (en) 2017-05-02 2021-01-05 Covidien Lp Rotation assembly for a surgical device
US11033316B2 (en) * 2017-05-22 2021-06-15 Cilag Gmbh International Combination ultrasonic and electrosurgical instrument having curved ultrasonic blade
US11259856B2 (en) * 2017-05-22 2022-03-01 Cilag Gmbh International Combination ultrasonic and electrosurgical instrument and method for sealing tissue in successive phases
AU2018292547A1 (en) 2017-06-28 2019-12-05 Alcon Inc. Coated forceps for improved grasping
US10582945B2 (en) * 2018-03-20 2020-03-10 Ethicon Llc Surgical devices and systems with rotating end effector assemblies having an ultrasonic blade
US20210393317A1 (en) * 2017-08-07 2021-12-23 Covidien Lp Vessel sealing and dissection with controlled gap
US10925629B2 (en) * 2017-09-18 2021-02-23 Novuson Surgical, Inc. Transducer for therapeutic ultrasound apparatus and method
CN111372529A (en) * 2017-11-22 2020-07-03 å„„ęž—å·“ę–Æę Ŗ式会ē¤¾ Treatment tool and method for manufacturing treatment tool
US11446079B2 (en) 2018-01-17 2022-09-20 Covidien Lp Surgical instruments incorporating ultrasonic and electrosurgical functionality
US11589889B2 (en) 2018-01-17 2023-02-28 Covidien Lp Surgical instruments incorporating ultrasonic and electrosurgical functionality
US11564733B2 (en) * 2018-01-17 2023-01-31 Covidien Lp Surgical instruments incorporating ultrasonic and electrosurgical functionality
US11478267B2 (en) 2018-01-17 2022-10-25 Covidien Lp Surgical instruments incorporating ultrasonic and electrosurgical functionality
US11246621B2 (en) * 2018-01-29 2022-02-15 Covidien Lp Ultrasonic transducers and ultrasonic surgical instruments including the same
KR102011503B1 (en) * 2018-03-30 2019-08-16 (ģ£¼)ķœ“ėŸ¬ģŠ¤ķŠø Harmonic scalpel for surgical operation having blade which has improved cooling efficiency and operability
JP7431749B2 (en) * 2018-04-20 2024-02-15 ćƒŸć‚½ćƒ‹ć‚Æć‚¹ļ¼Œć‚Ø惫ć‚Øćƒ«ć‚·ćƒ¼ Ultrasonic surgical drills and assemblies
US11712290B2 (en) * 2018-06-08 2023-08-01 RELIGN Corporation Arthroscopic devices and methods
CN108836475A (en) * 2018-06-13 2018-11-20 äøœčŽžåø‚č”ę“²ēŸ„čƆäŗ§ęƒčæč„ē®”ē†ęœ‰é™å…¬åø A kind of bendable folded structure on electric coagulation forceps binding clip component
AU2020213767A1 (en) * 2019-01-30 2021-07-15 Integra Lifesciences Enterprises, Lllp Connector for surgical handpiece
KR102020179B1 (en) * 2019-04-09 2019-11-05 ģµœė³“ķ™˜ Electrode for electrosurgical handpiece
CN110403672A (en) * 2019-05-01 2019-11-05 ę­å·žåŗ·åŸŗ医ē–—å™Øę¢°č‚”ä»½ęœ‰é™å…¬åø Ultrasonic medical surgical instruments
CN110123416A (en) * 2019-05-01 2019-08-16 ę­å·žåŗ·åŸŗ医ē–—å™Øę¢°č‚”ä»½ęœ‰é™å…¬åø The floating support structure of ultrasonic transducer
US11123093B2 (en) * 2019-07-09 2021-09-21 Covidien Lp Jaw drive arm for surgical instruments and surgical instruments incorporating the same
US11529186B2 (en) 2019-07-22 2022-12-20 Covidien Lp Electrosurgical forceps including thermal cutting element
KR102106746B1 (en) * 2019-08-20 2020-05-26 ėŒ€ķ™”źø°źø°ģ£¼ģ‹ķšŒģ‚¬ laparoscopic instrument
US11844563B2 (en) 2019-11-19 2023-12-19 Covidien Lp Energy-based surgical instruments incorporating cooling features
US11365490B2 (en) 2019-12-21 2022-06-21 Covidien Lp Thermal cutting elements, electrosurgical instruments including thermal cutting elements, and methods of manufacturing
US20210196346A1 (en) * 2019-12-30 2021-07-01 Ethicon Llc Variation in electrode parameters and deflectable electrode to modify energy density and tissue interaction
EP4132403A1 (en) * 2020-04-08 2023-02-15 Covidien LP Surgical instruments incorporating ultrasonic and electro-surgical functionality
EP4157114A1 (en) * 2020-05-26 2023-04-05 Covidien LP Articulating ultrasonic surgical instruments and systems
WO2022182476A1 (en) * 2021-02-26 2022-09-01 Covidien Lp Surgical instruments, systems, and methods incorporating ultrasonic, electrosurgical, and fluid delivery functionality
CN116997301A (en) * 2021-03-17 2023-11-03 ęŸÆęƒ ęœ‰é™åˆä¼™å…¬åø Surgical instruments, systems, and methods incorporating electrosurgical functionality of ultrasonic blades
CN116981413A (en) * 2021-03-17 2023-10-31 ęŸÆęƒ ęœ‰é™åˆä¼™å…¬åø Ultrasonic surgical instruments and systems incorporating enhanced clamping functionality
WO2022234388A1 (en) * 2021-05-03 2022-11-10 Covidien Lp Surgical instruments, systems, and methods incorporating ultrasonic and electrosurgical functionality
US11687160B2 (en) * 2021-05-13 2023-06-27 Microsoft Technology Licensing, Llc Active control and calibration of haptic trackpad
CN117460471A (en) * 2021-06-11 2024-01-26 ęŸÆęƒ ęœ‰é™åˆä¼™å…¬åø Surgical instruments, systems, and methods incorporating ultrasonic transducers
WO2023135570A1 (en) * 2022-01-14 2023-07-20 Covidien Lp Multi-function ultrasonic blades and surgical instruments incorporating the same
DE102022112280A1 (en) * 2022-05-17 2023-11-23 Karl Storz Se & Co. Kg Endoscopic instrument system
KR102488054B1 (en) * 2022-07-22 2023-01-13 ģ”°ėŒ€ķ¬ Multi axis ultrasonic torsion energy injection system and method thereof

Citations (13)

* Cited by examiner, ā€  Cited by third party
Publication number Priority date Publication date Assignee Title
US5222937A (en) * 1991-01-11 1993-06-29 Olympus Optical Co., Ltd. Ultrasonic treatment apparatus
US5700261A (en) * 1996-03-29 1997-12-23 Ethicon Endo-Surgery, Inc. Bipolar Scissors
US6056735A (en) * 1996-04-04 2000-05-02 Olympus Optical Co., Ltd. Ultrasound treatment system
US6562035B1 (en) * 2001-04-19 2003-05-13 Levin John M Insulated surgical scissors including cauterizing tip
US20030109876A1 (en) * 2001-12-11 2003-06-12 Olympus Optical Co., Ltd. Instrument for high-frequency treatment and method of high-frequency treatment
US20080132887A1 (en) * 2006-07-04 2008-06-05 Shinya Masuda Surgical instrument
US20090143806A1 (en) * 2007-11-30 2009-06-04 Ethicon Endo-Surgery, Inc. Ultrasonic surgical blades
US20110066174A1 (en) * 2009-09-16 2011-03-17 Tyco Healthcare Group Lp Low Energy or Minimum Disturbance Method for Measuring Frequency Response Functions of Ultrasonic Surgical Devices in Determining Optimum Operating Point
US20120020314A1 (en) * 2007-11-15 2012-01-26 Christopher Martin Edward Osborn System, method, and computer-readable medium for mobile terminated call processing by a femtocell system
US20120101501A1 (en) * 2008-05-15 2012-04-26 Sumitomo Bakelite Co., Ltd. Endoscopic high-frequency hemostatic forceps
US20120203143A1 (en) * 2011-02-07 2012-08-09 Olympus Medical Systems Corp. Energy treatment instrument
US20120277778A1 (en) * 2010-02-12 2012-11-01 Shinya Masuda Ultrasonic surgical instrument
US20120296334A1 (en) * 2011-05-19 2012-11-22 Tyco Healthcare Group Lp Ultrasound Device for Precise Tissue Sealing and Blade-Less Cutting

Family Cites Families (2408)

* Cited by examiner, ā€  Cited by third party
Publication number Priority date Publication date Assignee Title
US1570025A (en) 1926-01-19 John van doiten yottng
USRE25033E (en) 1961-08-29 Vibratory machine tool and vibratory abrasion method
US969528A (en) 1909-12-23 1910-09-06 Reuben B Disbrow Butter-spade.
US1813902A (en) 1928-01-18 1931-07-14 Liebel Flarsheim Co Electrosurgical apparatus
US2188497A (en) 1936-09-24 1940-01-30 Waldorf Paper Prod Co Container and method of making the same
US2366274A (en) 1942-06-03 1945-01-02 Brunswick Balke Collender Co Plastic fastening means and method of applying the same
US2510693A (en) 1944-03-29 1950-06-06 Lee B Green Fastening member
US2425245A (en) 1945-03-30 1947-08-05 Conrad B Johnson Cushion grip for air hammers and the like
US2458152A (en) 1945-04-03 1949-01-04 Us Rubber Co Plastic rivet and method of making same
US2442966A (en) 1946-09-07 1948-06-08 American Cystoscope Makers Inc Electrosurgical resecting instrument
US2597564A (en) 1948-01-31 1952-05-20 Kenly C Bugg Stitch and seam opener
US2704333A (en) 1951-03-15 1955-03-15 Raytheon Mfg Co Ultrasonic vibratory devices
US2748967A (en) 1952-03-19 1956-06-05 William B Roach Bottle closure
US2849788A (en) 1952-08-02 1958-09-02 A V Roe Canada Ltd Method and apparatus for making hollow blades
US3033407A (en) 1953-07-03 1962-05-08 Union Carbide Corp Bottle closures
US2736960A (en) 1954-01-29 1956-03-06 James A Armstrong Razor blade knife
US2874470A (en) 1954-05-28 1959-02-24 James R Richards High frequency dental tool
DE1008144B (en) 1955-02-26 1957-05-09 Artur Haerter K G Electric dry shaver
NL106732C (en) 1955-03-08
US2845072A (en) 1955-06-21 1958-07-29 William A Shafer Surgical knife
US3053124A (en) 1959-11-16 1962-09-11 Cavitron Ultrasonics Inc Ultrasonic welding
US3015961A (en) 1960-05-02 1962-01-09 Sheffield Corp Machine component
US3166971A (en) 1960-11-23 1965-01-26 Air Reduction Riveting by electric discharge
US3082805A (en) 1960-12-21 1963-03-26 John H Royce Tissue macerator
US3433226A (en) 1965-07-21 1969-03-18 Aeroprojects Inc Vibratory catheterization apparatus and method of using
US3322403A (en) 1965-11-15 1967-05-30 Gray Company Inc Agitator
US3616375A (en) 1966-03-03 1971-10-26 Inoue K Method employing wave energy for the extraction of sulfur from petroleum and the like
US3525912A (en) 1966-03-28 1970-08-25 Scovill Manufacturing Co Selectable power source for a motor driven appliance
US3432691A (en) 1966-09-15 1969-03-11 Branson Instr Oscillatory circuit for electro-acoustic converter
US3526219A (en) 1967-07-21 1970-09-01 Ultrasonic Systems Method and apparatus for ultrasonically removing tissue from a biological organism
US3554198A (en) 1967-08-04 1971-01-12 Cardiac Electronics Inc Patient-isolating circuitry for cardiac facing device
US3636943A (en) 1967-10-27 1972-01-25 Ultrasonic Systems Ultrasonic cauterization
US3514856A (en) 1967-10-30 1970-06-02 Corning Glass Works Razor blade configuration
US3606682A (en) 1967-10-30 1971-09-21 Corning Glass Works Razor blades
US3513848A (en) 1967-12-11 1970-05-26 Ultrasonic Systems Ultrasonic suturing
US3489930A (en) 1968-07-29 1970-01-13 Branson Instr Apparatus for controlling the power supplied to an ultrasonic transducer
US3580841A (en) 1969-07-31 1971-05-25 Us Interior Ultrathin semipermeable membrane
US3629726A (en) 1969-08-29 1971-12-21 Surgical Design Corp Oscillator and oscillator control circuit
US3614484A (en) 1970-03-25 1971-10-19 Branson Instr Ultrasonic motion adapter for a machine tool
US3668486A (en) 1971-01-08 1972-06-06 Crest Ultrasonics Corp Load-sensitive generator for driving piezo-electric transducers
US3924335A (en) 1971-02-26 1975-12-09 Ultrasonic Systems Ultrasonic dental and other instrument means and methods
US3809977A (en) 1971-02-26 1974-05-07 Ultrasonic Systems Ultrasonic kits and motor systems
US3703651A (en) 1971-07-12 1972-11-21 Kollmorgen Corp Temperature-controlled integrated circuits
US3776238A (en) 1971-08-24 1973-12-04 Univ California Ophthalmic instrument
US3777760A (en) 1971-09-09 1973-12-11 H Essner Surgical stick
US3702948A (en) 1972-01-07 1972-11-14 Ultrasonic Systems Ultrasonic motors and scissors
US3885438A (en) 1972-02-04 1975-05-27 Sr Rano J Harris Automatic fluid injector
US3805787A (en) 1972-06-16 1974-04-23 Surgical Design Corp Ultrasonic surgical instrument
US3830098A (en) 1973-03-22 1974-08-20 Blackstone Corp Output monitored electromechanical devices
US3900823A (en) 1973-03-28 1975-08-19 Nathan O Sokal Amplifying and processing apparatus for modulated carrier signals
US5172344A (en) 1973-06-29 1992-12-15 Raytheon Company Deep submergence transducer
US4058126A (en) 1973-08-02 1977-11-15 Leveen Harry H Device for the fracture of the blood vessel lining
DE2339827B2 (en) 1973-08-06 1977-02-24 A6 In 3-02 DENTAL EQUIPMENT
US3918442A (en) 1973-10-10 1975-11-11 Georgy Alexandrovich Nikolaev Surgical instrument for ultrasonic joining of biological tissue
US3875945A (en) 1973-11-02 1975-04-08 Demetron Corp Electrosurgery instrument
JPS50100891A (en) 1973-12-21 1975-08-09
US3854737A (en) 1974-01-21 1974-12-17 Chemprene Combination rotary and reciprocating unitary sealing mechanism
US4012647A (en) 1974-01-31 1977-03-15 Ultrasonic Systems, Inc. Ultrasonic motors and converters
US3956826A (en) 1974-03-19 1976-05-18 Cavitron Corporation Ultrasonic device and method
US3946738A (en) 1974-10-24 1976-03-30 Newton David W Leakage current cancelling circuit for use with electrosurgical instrument
US3955859A (en) 1975-03-25 1976-05-11 The Torrington Company Bearing with multiple lip seal
US4005714A (en) 1975-05-03 1977-02-01 Richard Wolf Gmbh Bipolar coagulation forceps
US4074719A (en) 1975-07-12 1978-02-21 Kurt Semm Method of and device for causing blood coagulation
US4034762A (en) 1975-08-04 1977-07-12 Electro Medical Systems, Inc. Vas cautery apparatus
DE2646229A1 (en) 1976-10-13 1978-04-20 Erbe Elektromedizin HIGH FREQUENCY SURGICAL EQUIPMENT
DE2656278B2 (en) 1976-12-11 1979-03-15 Kurt Prof. Dr.Med. 2300 Kiel Semm Electrocoagulation instrument and
US4203430A (en) 1976-12-16 1980-05-20 Nagashige Takahashi Device for controlling curvature of an end section in an endoscope
US4180074A (en) 1977-03-15 1979-12-25 Fibra-Sonics, Inc. Device and method for applying precise irrigation, aspiration, medication, ultrasonic power and dwell time to biotissue for surgery and treatment
US4167944A (en) 1977-06-27 1979-09-18 Surgical Design Corp. Rotatable surgical cutting instrument with improved cutter blade wear
US4300083A (en) 1977-07-05 1981-11-10 Automation Devices, Inc. Constant amplitude controller and method
US4200106A (en) 1977-10-11 1980-04-29 Dinkelkamp Henry T Fixed arc cyclic ophthalmic surgical instrument
US4203444A (en) 1977-11-07 1980-05-20 Dyonics, Inc. Surgical instrument suitable for closed surgery such as of the knee
US4188927A (en) 1978-01-12 1980-02-19 Valleylab, Inc. Multiple source electrosurgical generator
US4304987A (en) 1978-09-18 1981-12-08 Raychem Corporation Electrical devices comprising conductive polymer compositions
GB2032221A (en) 1978-10-23 1980-04-30 Keeler Instr Ltd Hand Held Ultrasonic Transducer Instrument
US4237441A (en) 1978-12-01 1980-12-02 Raychem Corporation Low resistivity PTC compositions
JPS5590195A (en) 1978-12-28 1980-07-08 Ootake Seisakusho:Kk Ultrasonic oscillator with output meter
SU850068A1 (en) 1979-06-01 1981-07-30 Š’сŠµŃŠ¾ŃŽŠ·Š½Ń‹Š¹ ŠŠ°ŃƒŃ‡Š½Š¾-Š˜ŃŃŠ»ŠµŠ“Š¾Š²Š°Ń‚ŠµŠ»ŃŒŃŠŗŠøŠ¹ŠøŠ½ŃŃ‚Šøтут ŠœŠµŠ“ŠøцŠøŠ½ŃŠŗŠ¾Š³Š¾ ŠŸŃ€ŠøŠ±Š¾Ń€Š¾ŃŃ‚Ń€Š¾ŠµŠ½Šøя Device for ultrasonic surgery
US4461304A (en) 1979-11-05 1984-07-24 Massachusetts Institute Of Technology Microelectrode and assembly for parallel recording of neurol groups
US4314559A (en) 1979-12-12 1982-02-09 Corning Glass Works Nonstick conductive coating
US4281785A (en) 1979-12-21 1981-08-04 Dayco Corporation Stapling apparatus and method and thermoplastic stables used therewith
US4545926A (en) 1980-04-21 1985-10-08 Raychem Corporation Conductive polymer compositions and devices
WO1981003271A1 (en) 1980-05-13 1981-11-26 American Hospital Supply Corp A multipolar electrosurgical device
US4306570A (en) 1980-08-20 1981-12-22 Matthews Larry S Counter rotating biopsy needle
US4353371A (en) 1980-09-24 1982-10-12 Cosman Eric R Longitudinally, side-biting, bipolar coagulating, surgical instrument
US4562838A (en) 1981-01-23 1986-01-07 Walker William S Electrosurgery instrument
US5026370A (en) 1981-03-11 1991-06-25 Lottick Edward A Electrocautery instrument
US4409981A (en) 1981-07-20 1983-10-18 Minnesota Mining And Manufacturing Company Medical electrode
US4463759A (en) 1982-01-13 1984-08-07 Garito Jon C Universal finger/foot switch adaptor for tube-type electrosurgical instrument
US4535773A (en) 1982-03-26 1985-08-20 Inbae Yoon Safety puncturing instrument and method
GB2119102B (en) 1982-04-01 1985-09-04 Victor Company Of Japan Load impedance detector for audio power amplifiers
US4512344A (en) 1982-05-12 1985-04-23 Barber Forest C Arthroscopic surgery dissecting apparatus
US4445063A (en) 1982-07-26 1984-04-24 Solid State Systems, Corporation Energizing circuit for ultrasonic transducer
US4491132A (en) 1982-08-06 1985-01-01 Zimmer, Inc. Sheath and retractable surgical tool combination
US4545374A (en) * 1982-09-03 1985-10-08 Jacobson Robert E Method and instruments for performing a percutaneous lumbar diskectomy
US4492231A (en) 1982-09-17 1985-01-08 Auth David C Non-sticking electrocautery system and forceps
US4553544A (en) 1982-09-20 1985-11-19 Janome Sewing Machine Co. Ltd. Suturing instrument for surgical operation
US4504264A (en) 1982-09-24 1985-03-12 Kelman Charles D Apparatus for and method of removal of material using ultrasonic vibraton
US4526571A (en) 1982-10-15 1985-07-02 Cooper Lasersonics, Inc. Curved ultrasonic surgical aspirator
EP0111386B1 (en) 1982-10-26 1987-11-19 University Of Aberdeen Ultrasound hyperthermia unit
JPS5968513U (en) 1982-10-28 1984-05-09 ꌁē”°č£½č–¬ę Ŗ式会ē¤¾ Horn for ultrasonic scalpel
DE3301890C2 (en) 1983-01-21 1986-04-10 W.C. Heraeus Gmbh, 6450 Hanau Retractor
US4593691A (en) 1983-07-13 1986-06-10 Concept, Inc. Electrosurgery electrode
JPS6045668A (en) 1983-08-23 1985-03-12 廣ē€¬ć€€å¾³äø‰ Sewing method and apparatus using resin needle achieving stitch yarn effect
DE3480462D1 (en) 1983-09-13 1989-12-21 Valleylab Inc Electrosurgical generator
US4550870A (en) 1983-10-13 1985-11-05 Alchemia Ltd. Partnership Stapling device
US4808154A (en) * 1983-10-26 1989-02-28 Freeman Jerre M Phacoemulsification/irrigation and aspiration sleeve apparatus
US4878493A (en) 1983-10-28 1989-11-07 Ninetronix Venture I Hand-held diathermy apparatus
US4494759A (en) 1983-10-31 1985-01-22 Kieffer Robert A Seal for relatively rotatable parts
JPS60104872A (en) 1983-11-09 1985-06-10 Nippon Pillar Packing Co Ltd Shaft seal device for emergency use
US4574615A (en) 1983-12-19 1986-03-11 The Babcock & Wilcox Company Sonic apparatus and method for detecting the presence of a gaseous substance in a closed space
US4617927A (en) 1984-02-29 1986-10-21 Aspen Laboratories, Inc. Electrosurgical unit
US4633119A (en) 1984-07-02 1986-12-30 Gould Inc. Broadband multi-resonant longitudinal vibrator transducer
US4641053A (en) 1984-08-14 1987-02-03 Matsushita Seiko Co., Ltd. Ultrasonic liquid atomizer with an improved soft start circuit
EP0171967A3 (en) 1984-08-15 1987-11-04 Valleylab, Inc. Electrosurgical generator
US4608981A (en) 1984-10-19 1986-09-02 Senmed, Inc. Surgical stapling instrument with staple height adjusting mechanism
US4633874A (en) 1984-10-19 1987-01-06 Senmed, Inc. Surgical stapling instrument with jaw latching mechanism and disposable staple cartridge
US4634420A (en) 1984-10-31 1987-01-06 United Sonics Incorporated Apparatus and method for removing tissue mass from an organism
US4649919A (en) 1985-01-23 1987-03-17 Precision Surgical Instruments, Inc. Surgical instrument
US4640279A (en) 1985-08-08 1987-02-03 Oximetrix, Inc. Combination surgical scalpel and electrosurgical instrument
US4922902A (en) 1986-05-19 1990-05-08 Valleylab, Inc. Method for removing cellular material with endoscopic ultrasonic aspirator
US4750488A (en) 1986-05-19 1988-06-14 Sonomed Technology, Inc. Vibration apparatus preferably for endoscopic ultrasonic aspirator
US4712722A (en) 1985-09-04 1987-12-15 Eg&G, Inc. Concurrent ultrasonic weld evaluation system
JPS6266848A (en) 1985-09-20 1987-03-26 ä½å‹ćƒ™ćƒ¼ć‚Æćƒ©ć‚¤ćƒˆę Ŗ式会ē¤¾ Surgical operation appliance
US4674502A (en) 1985-09-27 1987-06-23 Coopervision, Inc. Intraocular surgical instrument
US4708127A (en) 1985-10-24 1987-11-24 The Birtcher Corporation Ultrasonic generating system with feedback control
US4662068A (en) 1985-11-14 1987-05-05 Eli Polonsky Suture fusing and cutting apparatus
US4646738A (en) 1985-12-05 1987-03-03 Concept, Inc. Rotary surgical tool
JPH0796017B2 (en) 1986-03-20 1995-10-18 ć‚ŖćƒŖćƒ³ćƒ‘ć‚¹å…‰å­¦å·„ę„­ę Ŗ式会ē¤¾ Biopsy device
JPH0767460B2 (en) 1986-03-28 1995-07-26 ć‚ŖćƒŖćƒ³ćƒ‘ć‚¹å…‰å­¦å·„ę„­ę Ŗ式会ē¤¾ Ultrasonic treatment device
US4827911A (en) 1986-04-02 1989-05-09 Cooper Lasersonics, Inc. Method and apparatus for ultrasonic surgical fragmentation and removal of tissue
US4694835A (en) 1986-05-21 1987-09-22 Minnesota Mining And Manufacturing Company Biomedical electrode
JPS62292153A (en) 1986-06-13 1987-12-18 ć‚ŖćƒŖćƒ³ćƒ‘ć‚¹å…‰å­¦å·„ę„­ę Ŗ式会ē¤¾ Ultrasonic living body tissue cutting probe
JPS62292154A (en) 1986-06-13 1987-12-18 ć‚ŖćƒŖćƒ³ćƒ‘ć‚¹å…‰å­¦å·„ę„­ę Ŗ式会ē¤¾ Ultrasonic living body tissue cutting probe
DE3689889D1 (en) 1986-07-17 1994-07-07 Erbe Elektromedizin High-frequency surgical device for the thermal coagulation of biological tissues.
US4735603A (en) 1986-09-10 1988-04-05 James H. Goodson Laser smoke evacuation system and method
JPH0777161B2 (en) 1986-10-24 1995-08-16 ę—„ęœ¬ćƒ”ć‚Æćƒˆćƒ­ćƒ³ę Ŗ式会ē¤¾ PTC composition, method for producing the same and PTC element
JPS63109386A (en) 1986-10-28 1988-05-14 Honda Denshi Giken:Kk Method for compensating temperature of ultrasonic sensor
US4954960A (en) 1986-11-07 1990-09-04 Alcon Laboratories Linear power control for ultrasonic probe with tuned reactance
EP0270819A3 (en) 1986-11-07 1989-01-11 Alcon Laboratories, Inc. Linear power control for ultrasonic probe with tuned reactance
US4852578A (en) 1986-11-13 1989-08-01 The United State Of America As Represented By The Administrator Of The National Aeronautics And Space Administration Rapidly quantifying the relative distention of a human bladder
US4761871A (en) 1986-11-21 1988-08-09 Phillips Petroleum Company Method of joining two thermoplastic articles
US4836186A (en) 1987-01-16 1989-06-06 Scholz Francis J Body compression device for patients under fluoroscopic examination
US4838853A (en) 1987-02-05 1989-06-13 Interventional Technologies Inc. Apparatus for trimming meniscus
DE8702446U1 (en) 1987-02-18 1987-10-08 Kothe, Lutz, 7760 Radolfzell, De
DE3807004A1 (en) 1987-03-02 1988-09-15 Olympus Optical Co ULTRASONIC TREATMENT DEVICE
US5001649A (en) 1987-04-06 1991-03-19 Alcon Laboratories, Inc. Linear power control for ultrasonic probe with tuned reactance
IL82163A (en) 1987-04-10 1990-07-26 Laser Ind Ltd Optical-fiber type power transmission device
US4936842A (en) 1987-05-08 1990-06-26 Circon Corporation Electrosurgical probe apparatus
US5106538A (en) 1987-07-21 1992-04-21 Raychem Corporation Conductive polymer composition
JP2568564B2 (en) 1987-07-21 1997-01-08 ę¾äø‹é›»å™Øē”£ę„­ę Ŗ式会ē¤¾ Lining material and ultrasonic drive motor using the lining material
US4867157A (en) 1987-08-13 1989-09-19 Baxter Travenol Laboratories, Inc. Surgical cutting instrument
US4850354A (en) 1987-08-13 1989-07-25 Baxter Travenol Laboratories, Inc. Surgical cutting instrument
US4819635A (en) 1987-09-18 1989-04-11 Henry Shapiro Tubular microsurgery cutting apparatus
US4844064A (en) 1987-09-30 1989-07-04 Baxter Travenol Laboratories, Inc. Surgical cutting instrument with end and side openings
US5015227A (en) 1987-09-30 1991-05-14 Valleylab Inc. Apparatus for providing enhanced tissue fragmentation and/or hemostasis
US4915643A (en) 1987-10-28 1990-04-10 Yazaki Corporation Connector
US5035695A (en) 1987-11-30 1991-07-30 Jaroy Weber, Jr. Extendable electrocautery surgery apparatus and method
JPH01151452A (en) 1987-12-09 1989-06-14 Olympus Optical Co Ltd Ultrasonic suction apparatus
JPH01198540A (en) 1987-12-24 1989-08-10 Sumitomo Bakelite Co Ltd Excretory treatment apparatus
EP0325456B1 (en) 1988-01-20 1995-12-27 G2 Design Limited Diathermy unit
US5163421A (en) 1988-01-22 1992-11-17 Angiosonics, Inc. In vivo ultrasonic system with angioplasty and ultrasonic contrast imaging
US4862890A (en) 1988-02-29 1989-09-05 Everest Medical Corporation Electrosurgical spatula blade with ceramic substrate
EP0336742A3 (en) 1988-04-08 1990-05-16 Bristol-Myers Company Method and apparatus for the calibration of electrosurgical apparatus
JPH0532094Y2 (en) 1988-05-17 1993-08-18
US4910389A (en) 1988-06-03 1990-03-20 Raychem Corporation Conductive polymer compositions
US4880015A (en) 1988-06-03 1989-11-14 Nierman David M Biopsy forceps
US4965532A (en) 1988-06-17 1990-10-23 Olympus Optical Co., Ltd. Circuit for driving ultrasonic transducer
US4896009A (en) 1988-07-11 1990-01-23 James River Corporation Gas permeable microwave reactive package
US4865159A (en) 1988-07-18 1989-09-12 Jamison Michael V Acoustic horn and attachment device
JP3088004B2 (en) 1989-04-28 2000-09-18 ę Ŗ式会ē¤¾ę±čŠ Operation command device
US4920978A (en) 1988-08-31 1990-05-01 Triangle Research And Development Corporation Method and apparatus for the endoscopic treatment of deep tumors using RF hyperthermia
US4903696A (en) 1988-10-06 1990-02-27 Everest Medical Corporation Electrosurgical generator
JPH0529698Y2 (en) 1988-10-27 1993-07-29
GB2226245A (en) 1988-11-18 1990-06-27 Alan Crockard Endoscope, remote actuator and aneurysm clip applicator.
US5318570A (en) 1989-01-31 1994-06-07 Advanced Osseous Technologies, Inc. Ultrasonic tool
US5061269A (en) 1989-02-07 1991-10-29 Joseph J. Berke Surgical rongeur power grip structure and method
US5084052A (en) 1989-02-09 1992-01-28 Baxter International Inc. Surgical cutting instrument with plurality of openings
DE3904558C2 (en) 1989-02-15 1997-09-18 Lindenmeier Heinz Automatically power-controlled high-frequency generator for high-frequency surgery
US4981756A (en) 1989-03-21 1991-01-01 Vac-Tec Systems, Inc. Method for coated surgical instruments and tools
US6129740A (en) 1989-04-24 2000-10-10 Michelson; Gary Karlin Instrument handle design
US5009661A (en) 1989-04-24 1991-04-23 Michelson Gary K Protective mechanism for surgical rongeurs
US5653713A (en) 1989-04-24 1997-08-05 Michelson; Gary Karlin Surgical rongeur
US5451227A (en) 1989-04-24 1995-09-19 Michaelson; Gary K. Thin foot plate multi bite rongeur
JPH02286149A (en) 1989-04-27 1990-11-26 Sumitomo Bakelite Co Ltd Surgery operating device
CA2007210C (en) 1989-05-10 1996-07-09 Stephen D. Kuslich Intervertebral reamer
US5226910A (en) 1989-07-05 1993-07-13 Kabushiki Kaisha Topcon Surgical cutter
JP2829864B2 (en) 1989-07-05 1998-12-02 ę Ŗ式会ē¤¾ćƒˆćƒ—ć‚³ćƒ³ Surgical cutter
DE3923851C1 (en) 1989-07-19 1990-08-16 Richard Wolf Gmbh, 7134 Knittlingen, De
US5123903A (en) 1989-08-10 1992-06-23 Medical Products Development, Inc. Disposable aspiration sleeve for ultrasonic lipectomy
US5226909A (en) 1989-09-12 1993-07-13 Devices For Vascular Intervention, Inc. Atherectomy device having helical blade and blade guide
DE69019289T2 (en) 1989-10-27 1996-02-01 Storz Instr Co Method for driving an ultrasonic transducer.
US5105117A (en) 1989-10-31 1992-04-14 Brother Kogyo Kabushiki Kaisha Ultrasonic motor
US5167619A (en) 1989-11-17 1992-12-01 Sonokineticss Group Apparatus and method for removal of cement from bone cavities
US5176677A (en) 1989-11-17 1993-01-05 Sonokinetics Group Endoscopic ultrasonic rotary electro-cauterizing aspirator
US5797958A (en) 1989-12-05 1998-08-25 Yoon; Inbae Endoscopic grasping instrument with scissors
US6099550A (en) 1989-12-05 2000-08-08 Yoon; Inbae Surgical instrument having jaws and an operating channel and method for use thereof
US5665100A (en) 1989-12-05 1997-09-09 Yoon; Inbae Multifunctional instrument with interchangeable operating units for performing endoscopic procedures
US5984938A (en) 1989-12-05 1999-11-16 Yoon; Inbae Surgical instrument with jaws and movable internal scissors and method for use thereof
US5108383A (en) 1989-12-08 1992-04-28 Allied-Signal Inc. Membranes for absorbent packets
IL93141A0 (en) 1990-01-23 1990-11-05 Urcan Medical Ltd Ultrasonic recanalization system
US5391144A (en) 1990-02-02 1995-02-21 Olympus Optical Co., Ltd. Ultrasonic treatment apparatus
US5126618A (en) 1990-03-06 1992-06-30 Brother Kogyo Kabushiki Kaisha Longitudinal-effect type laminar piezoelectric/electrostrictive driver, and printing actuator using the driver
US5026387A (en) 1990-03-12 1991-06-25 Ultracision Inc. Method and apparatus for ultrasonic surgical cutting and hemostatis
US5167725A (en) 1990-08-01 1992-12-01 Ultracision, Inc. Titanium alloy blade coupler coated with nickel-chrome for ultrasonic scalpel
US5263957A (en) 1990-03-12 1993-11-23 Ultracision Inc. Ultrasonic scalpel blade and methods of application
US5112300A (en) 1990-04-03 1992-05-12 Alcon Surgical, Inc. Method and apparatus for controlling ultrasonic fragmentation of body tissue
US5075839A (en) 1990-04-05 1991-12-24 General Electric Company Inductor shunt, output voltage regulation system for a power supply
JPH03296308A (en) 1990-04-13 1991-12-27 Advantest Corp Waveform generator
US5156633A (en) 1990-05-10 1992-10-20 Symbiosis Corporation Maryland dissector laparoscopic instrument
US5507297A (en) 1991-04-04 1996-04-16 Symbiosis Corporation Endoscopic instruments having detachable proximal handle and distal portions
US5241968A (en) 1990-05-10 1993-09-07 Symbiosis Corporation Single acting endoscopic instruments
JPH0546429Y2 (en) 1990-06-21 1993-12-06
CA2042006C (en) 1990-05-11 1995-08-29 Morito Idemoto Surgical ultrasonic horn
WO1991017716A1 (en) 1990-05-17 1991-11-28 Sumitomo Bakelite Company Limited Surgical instrument
USD327872S (en) 1990-06-06 1992-07-14 Raychem Corporation Coaxial cable connector
US5275609A (en) 1990-06-22 1994-01-04 Vance Products Incorporated Surgical cutting instrument
US5269785A (en) 1990-06-28 1993-12-14 Bonutti Peter M Apparatus and method for tissue removal
JP2863280B2 (en) 1990-07-04 1999-03-03 ć‚¢ć‚¹ćƒ¢ę Ŗ式会ē¤¾ Driving method of ultrasonic motor
JPH0621450Y2 (en) 1990-07-05 1994-06-08 ć‚¢ćƒ­ć‚«ę Ŗ式会ē¤¾ Ultrasonic surgical instrument
JP2987175B2 (en) 1990-07-05 1999-12-06 ć‚ŖćƒŖćƒ³ćƒ‘ć‚¹å…‰å­¦å·„ę„­ę Ŗ式会ē¤¾ Ultrasound therapy equipment
US5911699A (en) 1990-07-17 1999-06-15 Aziz Yehia Anis Removal of tissue
US5218529A (en) 1990-07-30 1993-06-08 University Of Georgia Research Foundation, Inc. Neural network system and methods for analysis of organic materials and structures using spectral data
USD332660S (en) 1990-09-17 1993-01-19 United States Surgical Corporation Surgical clip applier
US5725529A (en) 1990-09-25 1998-03-10 Innovasive Devices, Inc. Bone fastener
US5104025A (en) 1990-09-28 1992-04-14 Ethicon, Inc. Intraluminal anastomotic surgical stapler with detached anvil
US5509922A (en) 1990-10-05 1996-04-23 United States Surgical Corporation Endoscopic surgical instrument
US5486189A (en) 1990-10-05 1996-01-23 United States Surgical Corporation Endoscopic surgical instrument
JPH04150847A (en) 1990-10-12 1992-05-25 Katsuya Takasu Armpit smell surgical apparatus and chip for operation
US5042707A (en) 1990-10-16 1991-08-27 Taheri Syde A Intravascular stapler, and method of operating same
US5190541A (en) 1990-10-17 1993-03-02 Boston Scientific Corporation Surgical instrument and method
JP2960954B2 (en) 1990-10-17 1999-10-12 ć‚ŖćƒŖćƒ³ćƒ‘ć‚¹å…‰å­¦å·„ę„­ę Ŗ式会ē¤¾ Ultrasound therapy equipment
US5242460A (en) 1990-10-25 1993-09-07 Devices For Vascular Intervention, Inc. Atherectomy catheter having axially-disposed cutting edge
US5152762A (en) 1990-11-16 1992-10-06 Birtcher Medical Systems, Inc. Current leakage control for electrosurgical generator
US5162044A (en) 1990-12-10 1992-11-10 Storz Instrument Company Phacoemulsification transducer with rotatable handle
US5052145A (en) 1990-12-26 1991-10-01 Wang Wen Chang Electric fishing float
US5304115A (en) 1991-01-11 1994-04-19 Baxter International Inc. Ultrasonic angioplasty device incorporating improved transmission member and ablation probe
US5957882A (en) 1991-01-11 1999-09-28 Advanced Cardiovascular Systems, Inc. Ultrasound devices for ablating and removing obstructive matter from anatomical passageways and blood vessels
US5447509A (en) 1991-01-11 1995-09-05 Baxter International Inc. Ultrasound catheter system having modulated output with feedback control
US5368557A (en) 1991-01-11 1994-11-29 Baxter International Inc. Ultrasonic ablation catheter device having multiple ultrasound transmission members
US5184605A (en) 1991-01-31 1993-02-09 Excel Tech Ltd. Therapeutic ultrasound generator with radiation dose control
JPH05506176A (en) 1991-02-13 1993-09-16 ć‚¢ćƒ—ćƒ©ć‚¤ćƒ‰ć€€ćƒ”ćƒ‡ć‚£ć‚«ćƒ«ć€€ćƒŖć‚½ćƒ¼ć‚»ć‚¹ć€€ć‚¤ćƒ³ć‚³ćƒ¼ćƒćƒ¬ć‚¤ćƒ†ćƒƒćƒ‰ surgical trocar
US5231989A (en) 1991-02-15 1993-08-03 Raychem Corporation Steerable cannula
GB9103777D0 (en) 1991-02-22 1991-04-10 B & W Loudspeakers Analogue and digital convertors
US5438997A (en) 1991-03-13 1995-08-08 Sieben; Wayne Intravascular imaging apparatus and methods for use and manufacture
US5217460A (en) 1991-03-22 1993-06-08 Knoepfler Dennis J Multiple purpose forceps
US5109819A (en) 1991-03-29 1992-05-05 Cummins Electronics Company, Inc. Accelerator control system for a motor vehicle
JP3064458B2 (en) 1991-04-02 2000-07-12 ę—„ęœ¬é›»ę°—ę Ŗ式会ē¤¾ Thickness longitudinal vibration piezoelectric transformer and its driving method
US5258004A (en) 1991-04-04 1993-11-02 Symbiosis Corporation Double acting, dual pivot thoracoscopic surgical lung clamps
US5396900A (en) 1991-04-04 1995-03-14 Symbiosis Corporation Endoscopic end effectors constructed from a combination of conductive and non-conductive materials and useful for selective endoscopic cautery
US5163537A (en) 1991-04-29 1992-11-17 Simmons-Rand Company Battery changing system for electric battery-powered vehicles
US5160334A (en) 1991-04-30 1992-11-03 Utah Medical Products, Inc. Electrosurgical generator and suction apparatus
US5221282A (en) 1991-05-29 1993-06-22 Sonokinetics Group Tapered tip ultrasonic aspirator
US5190517A (en) 1991-06-06 1993-03-02 Valleylab Inc. Electrosurgical and ultrasonic surgical system
US5196007A (en) 1991-06-07 1993-03-23 Alan Ellman Electrosurgical handpiece with activator
US5484436A (en) 1991-06-07 1996-01-16 Hemostatic Surgery Corporation Bi-polar electrosurgical instruments and methods of making
US5330471A (en) 1991-06-07 1994-07-19 Hemostatic Surgery Corporation Bi-polar electrosurgical endoscopic instruments and methods of use
US5472443A (en) 1991-06-07 1995-12-05 Hemostatic Surgery Corporation Electrosurgical apparatus employing constant voltage and methods of use
US5234428A (en) 1991-06-11 1993-08-10 Kaufman David I Disposable electrocautery/cutting instrument with integral continuous smoke evacuation
US5383917A (en) 1991-07-05 1995-01-24 Jawahar M. Desai Device and method for multi-phase radio-frequency ablation
US5176695A (en) 1991-07-08 1993-01-05 Davinci Medical, Inc. Surgical cutting means
USD334173S (en) 1991-07-17 1993-03-23 Pan-International Industrial Corp. Plastic outer shell for a computer connector
US5257988A (en) 1991-07-19 1993-11-02 L'esperance Medical Technologies, Inc. Apparatus for phacoemulsifying cataractous-lens tissue within a protected environment
JPH0541716A (en) 1991-08-05 1993-02-19 Matsushita Electric Ind Co Ltd Digital transmission system
US5383888A (en) 1992-02-12 1995-01-24 United States Surgical Corporation Articulating endoscopic surgical apparatus
US5387207A (en) 1991-08-12 1995-02-07 The Procter & Gamble Company Thin-unit-wet absorbent foam materials for aqueous body fluids and process for making same
GR920100358A (en) 1991-08-23 1993-06-07 Ethicon Inc Surgical anastomosis stapling instrument.
US5246003A (en) 1991-08-28 1993-09-21 Nellcor Incorporated Disposable pulse oximeter sensor
US5285795A (en) 1991-09-12 1994-02-15 Surgical Dynamics, Inc. Percutaneous discectomy system having a bendable discectomy probe and a steerable cannula
US5275607A (en) 1991-09-23 1994-01-04 Visionary Medical, Inc. Intraocular surgical scissors
US5476479A (en) 1991-09-26 1995-12-19 United States Surgical Corporation Handle for endoscopic surgical instruments and jaw structure
JPH0595955A (en) 1991-10-07 1993-04-20 Olympus Optical Co Ltd Ultrasonic therapeutic apparatus
CA2535467C (en) 1991-10-09 2008-04-01 Ethicon, Inc. Electrosurgical device
USD347474S (en) 1991-10-11 1994-05-31 Ethicon, Inc. Endoscopic stapler
US5242339A (en) 1991-10-15 1993-09-07 The United States Of America As Represented By The Administrator Of The National Aeronautics And Space Adminstration Apparatus and method for measuring subject work rate on an exercise device
US5711472A (en) 1991-10-18 1998-01-27 United States Surgical Corporation Self contained gas powered surgical apparatus
US5312023A (en) 1991-10-18 1994-05-17 United States Surgical Corporation Self contained gas powered surgical apparatus
US5307976A (en) 1991-10-18 1994-05-03 Ethicon, Inc. Linear stapling mechanism with cutting means
US5478003A (en) 1991-10-18 1995-12-26 United States Surgical Corporation Surgical apparatus
US5163945A (en) 1991-10-18 1992-11-17 Ethicon, Inc. Surgical clip applier
US5562703A (en) 1994-06-14 1996-10-08 Desai; Ashvin H. Endoscopic surgical instrument
US5395312A (en) 1991-10-18 1995-03-07 Desai; Ashvin Surgical tool
US6250532B1 (en) 1991-10-18 2001-06-26 United States Surgical Corporation Surgical stapling apparatus
US5326013A (en) 1991-10-18 1994-07-05 United States Surgical Corporation Self contained gas powered surgical apparatus
JPH05115490A (en) 1991-10-25 1993-05-14 Olympus Optical Co Ltd Ultrasonic treatment device
US5713896A (en) 1991-11-01 1998-02-03 Medical Scientific, Inc. Impedance feedback electrosurgical system
US5665085A (en) 1991-11-01 1997-09-09 Medical Scientific, Inc. Electrosurgical cutting tool
US5531744A (en) 1991-11-01 1996-07-02 Medical Scientific, Inc. Alternative current pathways for bipolar surgical cutting tool
US5383874A (en) 1991-11-08 1995-01-24 Ep Technologies, Inc. Systems for identifying catheters and monitoring their use
AU3067392A (en) 1991-11-08 1993-06-07 Ep Technologies Inc Systems and methods for ablating tissue while monitoring tissue impedance
US5197964A (en) 1991-11-12 1993-03-30 Everest Medical Corporation Bipolar instrument utilizing one stationary electrode and one movable electrode
US5254129A (en) 1991-11-22 1993-10-19 Alexander Chris B Arthroscopic resector
US5433725A (en) 1991-12-13 1995-07-18 Unisurge, Inc. Hand-held surgical device and tools for use therewith, assembly and method
US6210402B1 (en) 1995-11-22 2001-04-03 Arthrocare Corporation Methods for electrosurgical dermatological treatment
WO1993014708A1 (en) 1992-02-03 1993-08-05 Ultracision Inc. Laparoscopic surgical apparatus and methods using ultrasonic energy
US5324299A (en) 1992-02-03 1994-06-28 Ultracision, Inc. Ultrasonic scalpel blade and methods of application
ATE155054T1 (en) 1992-02-07 1997-07-15 Valleylab Inc SURGICAL ULTRASONIC DEVICE
US5387215A (en) 1992-02-12 1995-02-07 Sierra Surgical Inc. Surgical instrument for cutting hard tissue and method of use
US5626595A (en) 1992-02-14 1997-05-06 Automated Medical Instruments, Inc. Automated surgical instrument
US5645075A (en) 1992-02-18 1997-07-08 Symbiosis Corporation Jaw assembly for an endoscopic instrument
US5428504A (en) 1992-02-18 1995-06-27 Motorola, Inc. Cooling cover for RF power devices
US5261922A (en) 1992-02-20 1993-11-16 Hood Larry L Improved ultrasonic knife
US5695510A (en) 1992-02-20 1997-12-09 Hood; Larry L. Ultrasonic knife
US5269297A (en) 1992-02-27 1993-12-14 Angiosonics Inc. Ultrasonic transmission apparatus
US5213569A (en) 1992-03-31 1993-05-25 Davis Peter L Tip for a tissue phacoemulsification device
US5411481A (en) 1992-04-08 1995-05-02 American Cyanamid Co. Surgical purse string suturing instrument and method
US5318525A (en) 1992-04-10 1994-06-07 Medtronic Cardiorhythm Steerable electrode catheter
US5573533A (en) 1992-04-10 1996-11-12 Medtronic Cardiorhythm Method and system for radiofrequency ablation of cardiac tissue
US5540681A (en) 1992-04-10 1996-07-30 Medtronic Cardiorhythm Method and system for radiofrequency ablation of tissue
US5620459A (en) 1992-04-15 1997-04-15 Microsurge, Inc. Surgical instrument
US5318589A (en) 1992-04-15 1994-06-07 Microsurge, Inc. Surgical instrument for endoscopic surgery
US5300068A (en) 1992-04-21 1994-04-05 St. Jude Medical, Inc. Electrosurgical apparatus
US5443463A (en) 1992-05-01 1995-08-22 Vesta Medical, Inc. Coagulating forceps
US5353474A (en) 1992-05-01 1994-10-11 Good Wayne T Transferrable personalized grip for a handle assembly and method for making same
US5318564A (en) 1992-05-01 1994-06-07 Hemostatic Surgery Corporation Bipolar surgical snare and methods of use
US5293863A (en) 1992-05-08 1994-03-15 Loma Linda University Medical Center Bladed endoscopic retractor
US5389098A (en) 1992-05-19 1995-02-14 Olympus Optical Co., Ltd. Surgical device for stapling and/or fastening body tissues
JP3069819B2 (en) 1992-05-28 2000-07-24 åƌ士通ę Ŗ式会ē¤¾ Heat sink, heat sink fixture used for the heat sink, and portable electronic device using the heat sink
US5906625A (en) 1992-06-04 1999-05-25 Olympus Optical Co., Ltd. Tissue-fixing surgical instrument, tissue-fixing device, and method of fixing tissue
US5318563A (en) 1992-06-04 1994-06-07 Valley Forge Scientific Corporation Bipolar RF generator
US5658300A (en) 1992-06-04 1997-08-19 Olympus Optical Co., Ltd. Tissue fixing surgical instrument, tissue-fixing device, and method of fixing tissues
JP3098858B2 (en) 1992-06-08 2000-10-16 ć‚ŖćƒŖćƒ³ćƒ‘ć‚¹å…‰å­¦å·„ę„­ę Ŗ式会ē¤¾ Ultrasonic motor
WO1994000059A1 (en) 1992-06-24 1994-01-06 Microsurge, Inc. Reusable endoscopic surgical instrument
US6449006B1 (en) 1992-06-26 2002-09-10 Apollo Camera, Llc LED illumination system for endoscopic cameras
US5394187A (en) 1992-06-26 1995-02-28 Apollo Camera, L.L.C. Video imaging systems and method using a single interline progressive scanning sensor and sequential color object illumination
US5264925A (en) 1992-06-26 1993-11-23 Life Surgery, Inc. Single sensor video imaging system and method using sequential color object illumination
US5408268A (en) 1992-06-26 1995-04-18 Apollo Camera, L.L.C. Video imaging system and method using a single full frame sensor and sequential color object illumination
JP3386517B2 (en) 1992-06-26 2003-03-17 ć‚ŖćƒŖćƒ³ćƒ‘ć‚¹å…‰å­¦å·„ę„­ę Ŗ式会ē¤¾ Ultrasonic treatment equipment
US5366466A (en) 1992-07-09 1994-11-22 Unisurge, Inc. Surgical scissors
DE9210327U1 (en) 1992-07-16 1992-11-26 Kothe, Lutz, 7760 Radolfzell, De
US5657429A (en) 1992-08-10 1997-08-12 Computer Motion, Inc. Automated endoscope system optimal positioning
US5542916A (en) 1992-08-12 1996-08-06 Vidamed, Inc. Dual-channel RF power delivery system
US5258006A (en) 1992-08-21 1993-11-02 Everest Medical Corporation Bipolar electrosurgical forceps
US5282817A (en) 1992-09-08 1994-02-01 Hoogeboom Thomas J Actuating handle for multipurpose surgical instrument
US5562659A (en) 1992-09-09 1996-10-08 Materials Conversion Corp. Electro-surgical instrument and method of fabrication
JPH06104503A (en) 1992-09-18 1994-04-15 Sharp Corp Bimorph piezoelectric actuator
US5282800A (en) 1992-09-18 1994-02-01 Edward Weck, Inc. Surgical instrument
US5626587A (en) 1992-10-09 1997-05-06 Ethicon Endo-Surgery, Inc. Method for operating a surgical instrument
US5601224A (en) 1992-10-09 1997-02-11 Ethicon, Inc. Surgical instrument
US5334198A (en) 1992-10-09 1994-08-02 Innovasive Devices, Inc. Surgical instrument
US5520704A (en) 1992-10-09 1996-05-28 United States Surgical Corporation Everting forceps with locking mechanism
US5330502A (en) 1992-10-09 1994-07-19 Ethicon, Inc. Rotational endoscopic mechanism with jointed drive mechanism
US5662662A (en) 1992-10-09 1997-09-02 Ethicon Endo-Surgery, Inc. Surgical instrument and method
US5374813A (en) 1992-10-15 1994-12-20 Life Surgery, Inc. Surgical instrument recycling and tracking system
US5309927A (en) 1992-10-22 1994-05-10 Ethicon, Inc. Circular stapler tissue retention spring method
KR100285388B1 (en) 1992-11-02 2001-03-15 ģ“ė§ˆģ“ źø°ģš”ģŠ¤ģ¼€ Ultrasonic device
US5275166A (en) 1992-11-16 1994-01-04 Ethicon, Inc. Method and apparatus for performing ultrasonic assisted surgical procedures
US5395364A (en) 1993-06-10 1995-03-07 Symbiosis Corporation Endoscopic instrument incorporating an elastomeric fluid seal
DE9321021U1 (en) 1992-11-30 1995-09-07 Valleylab Inc Ultrasonic surgical handpiece and energy initiator to maintain vibrations and linear dynamics
US5342356A (en) 1992-12-02 1994-08-30 Ellman Alan G Electrical coupling unit for electrosurgery
US5400267A (en) 1992-12-08 1995-03-21 Hemostatix Corporation Local in-device memory feature for electrically powered medical equipment
US5807393A (en) 1992-12-22 1998-09-15 Ethicon Endo-Surgery, Inc. Surgical tissue treating device with locking mechanism
US5403312A (en) 1993-07-22 1995-04-04 Ethicon, Inc. Electrosurgical hemostatic device
US5558671A (en) 1993-07-22 1996-09-24 Yates; David C. Impedance feedback monitor for electrosurgical instrument
DE4300307C2 (en) 1993-01-08 1996-09-19 Aesculap Ag Surgical instrument
JPH06217988A (en) 1993-01-26 1994-08-09 Terumo Corp Blood vessel sticking instrument
US5322055B1 (en) 1993-01-27 1997-10-14 Ultracision Inc Clamp coagulator/cutting system for ultrasonic surgical instruments
ATE164992T1 (en) 1993-01-29 1998-05-15 Smith & Nephew Inc SWIVELING CURVED INSTRUMENT
US5620447A (en) 1993-01-29 1997-04-15 Smith & Nephew Dyonics Inc. Surgical instrument
US5342359A (en) 1993-02-05 1994-08-30 Everest Medical Corporation Bipolar coagulation device
KR940019363A (en) 1993-02-22 1994-09-14 ģš”ģ‹œķžˆė° ģ‹œė°”ė…ø Oscillator Oscillation Method in Ultrasonic Cleaning
US5357423A (en) 1993-02-22 1994-10-18 Kulicke And Soffa Investments, Inc. Apparatus and method for automatically adjusting power output of an ultrasonic generator
US5445638B1 (en) 1993-03-08 1998-05-05 Everest Medical Corp Bipolar coagulation and cutting forceps
US5381067A (en) 1993-03-10 1995-01-10 Hewlett-Packard Company Electrical impedance normalization for an ultrasonic transducer array
CA2136352A1 (en) 1993-03-22 1994-09-29 Mark E. Steen Removal of tissue
US5346502A (en) 1993-04-15 1994-09-13 Ultracision, Inc. Laparoscopic ultrasonic surgical instrument and methods for manufacturing the instruments
US5370645A (en) 1993-04-19 1994-12-06 Valleylab Inc. Electrosurgical processor and method of use
US5540375A (en) 1993-04-20 1996-07-30 United States Surgical Corporation Endoscopic stapler
EP0696182B1 (en) 1993-04-30 2003-01-22 Medical Scientific, Inc. Impedance feedback electrosurgical system
GB9309142D0 (en) 1993-05-04 1993-06-16 Gyrus Medical Ltd Laparoscopic instrument
CA2121194A1 (en) 1993-05-06 1994-11-07 Corbett Stone Bipolar electrosurgical instruments
US5449370A (en) 1993-05-12 1995-09-12 Ethicon, Inc. Blunt tipped ultrasonic trocar
JP2665052B2 (en) 1993-05-14 1997-10-22 ć‚Øć‚¹ć‚¢ćƒ¼ćƒ«ć‚¢ć‚¤ ć‚¤ćƒ³ć‚æćƒ¼ćƒŠć‚·ćƒ§ćƒŠćƒ« Remote center positioning device
CA2124109A1 (en) 1993-05-24 1994-11-25 Mark T. Byrne Endoscopic surgical instrument with electromagnetic sensor
US5396266A (en) 1993-06-08 1995-03-07 Technical Research Associates, Inc. Kinesthetic feedback apparatus and method
US5500216A (en) 1993-06-18 1996-03-19 Julian; Jorge V. Topical hydrophobic composition and method
USD354564S (en) 1993-06-25 1995-01-17 Richard-Allan Medical Industries, Inc. Surgical clip applier
US5715817A (en) 1993-06-29 1998-02-10 C.R. Bard, Inc. Bidirectional steering catheter
US5395363A (en) 1993-06-29 1995-03-07 Utah Medical Products Diathermy coagulation and ablation apparatus and method
DE4323585A1 (en) 1993-07-14 1995-01-19 Delma Elektro Med App Bipolar high-frequency surgical instrument
US5501654A (en) 1993-07-15 1996-03-26 Ethicon, Inc. Endoscopic instrument having articulating element
US5805140A (en) 1993-07-16 1998-09-08 Immersion Corporation High bandwidth force feedback interface using voice coils and flexures
US5731804A (en) 1995-01-18 1998-03-24 Immersion Human Interface Corp. Method and apparatus for providing high bandwidth, low noise mechanical I/O for computer systems
CA2167367A1 (en) 1993-07-21 1995-02-02 Charles H. Klieman Surgical instrument for endoscopic and general surgery
US5827323A (en) 1993-07-21 1998-10-27 Charles H. Klieman Surgical instrument for endoscopic and general surgery
US5792165A (en) 1993-07-21 1998-08-11 Charles H. Klieman Endoscopic instrument with detachable end effector
US5688270A (en) 1993-07-22 1997-11-18 Ethicon Endo-Surgery,Inc. Electrosurgical hemostatic device with recessed and/or offset electrodes
US5810811A (en) 1993-07-22 1998-09-22 Ethicon Endo-Surgery, Inc. Electrosurgical hemostatic device
US5709680A (en) 1993-07-22 1998-01-20 Ethicon Endo-Surgery, Inc. Electrosurgical hemostatic device
GR940100335A (en) 1993-07-22 1996-05-22 Ethicon Inc. Electrosurgical device for placing staples.
US5693051A (en) 1993-07-22 1997-12-02 Ethicon Endo-Surgery, Inc. Electrosurgical hemostatic device with adaptive electrodes
US5817093A (en) 1993-07-22 1998-10-06 Ethicon Endo-Surgery, Inc. Impedance feedback monitor with query electrode for electrosurgical instrument
JP3578765B2 (en) 1993-07-26 2004-10-20 ć‚¤ćƒŽćƒ™ćƒ¼ć‚·ćƒ–ćƒ»ćƒ‡ć‚£ćƒć‚¤ć‚»ć‚¹ćƒ»ć‚¤ćƒ³ć‚³ćƒ¼ćƒćƒ¬ćƒ¼ćƒ†ćƒƒćƒ‰ Sewing device
US5678568A (en) 1993-07-27 1997-10-21 Olympus Optical Co., Ltd. System control apparatus, medical system control apparatus and image-plane display method of medical system control apparatus
US5419761A (en) 1993-08-03 1995-05-30 Misonix, Inc. Liposuction apparatus and associated method
US5451161A (en) 1993-08-24 1995-09-19 Parkell Products, Inc. Oscillating circuit for ultrasonic dental scaler
US5858018A (en) 1993-08-25 1999-01-12 Apollo Camera, Llc Low profile tool for applying spring action ligation clips
JPH08504120A (en) 1993-08-25 1996-05-07 ć‚¢ćƒćƒ­ ć‚­ćƒ£ćƒ”ćƒ©ļ¼ŒćƒŖ惟惆惃惉 ćƒ©ć‚¤ć‚¢ćƒ“ćƒŖćƒ†ć‚£ćƒ¼ ć‚«ćƒ³ćƒ‘ćƒ‹ćƒ¼ Surgical ligation clip
US5483501A (en) 1993-09-14 1996-01-09 The Whitaker Corporation Short distance ultrasonic distance meter
US5397333A (en) 1993-09-24 1995-03-14 Nusurg Medical, Inc. Surgical hook knife
DE4333257C2 (en) 1993-09-27 1997-09-04 Siemens Ag Method of obtaining an error flag signal
US5371429A (en) 1993-09-28 1994-12-06 Misonix, Inc. Electromechanical transducer device
US5361583A (en) 1993-09-30 1994-11-08 Ethicon, Inc. Pressurized fluid actuation system with variable force and stroke output for use in a surgical instrument
US5339723A (en) 1993-09-30 1994-08-23 Ethicon, Inc. Pressurized fluid actuation system for amplifying operator input force in a surgical instrument
US6210403B1 (en) 1993-10-07 2001-04-03 Sherwood Services Ag Automatic control for energy from an electrosurgical generator
US5607436A (en) 1993-10-08 1997-03-04 United States Surgical Corporation Apparatus for applying surgical clips
US5456689A (en) 1993-10-13 1995-10-10 Arnold J. Kresch Method and device for tissue resection
US5600526A (en) 1993-10-15 1997-02-04 The Texas A & M University System Load analysis system for fault detection
WO1995010978A1 (en) 1993-10-19 1995-04-27 Ep Technologies, Inc. Segmented electrode assemblies for ablation of tissue
US5423844A (en) 1993-10-22 1995-06-13 Promex, Inc. Rotary surgical cutting instrument
US6632221B1 (en) 1993-11-08 2003-10-14 Rita Medical Systems, Inc. Method of creating a lesion in tissue with infusion
US5472005A (en) 1993-11-16 1995-12-05 Campbell; Keith S. Ultrasonic cleaning apparatus for cleaning chandeliers
DE4340056A1 (en) 1993-11-24 1995-06-01 Delma Elektro Med App Laparoscopic surgical device
US5458598A (en) 1993-12-02 1995-10-17 Cabot Technology Corporation Cutting and coagulating forceps
USD358887S (en) 1993-12-02 1995-05-30 Cobot Medical Corporation Combined cutting and coagulating forceps
US5490860A (en) 1993-12-08 1996-02-13 Sofamor Danek Properties, Inc. Portable power cutting tool
US5471988A (en) 1993-12-24 1995-12-05 Olympus Optical Co., Ltd. Ultrasonic diagnosis and therapy system in which focusing point of therapeutic ultrasonic wave is locked at predetermined position within observation ultrasonic scanning range
US5359994A (en) 1994-01-24 1994-11-01 Welch Allyn, Inc. Proximal steering cable adjustment
US5465895A (en) 1994-02-03 1995-11-14 Ethicon Endo-Surgery, Inc. Surgical stapler instrument
DE4405656C2 (en) 1994-02-22 1998-12-10 Ferton Holding Body stone removal device
US5429131A (en) 1994-02-25 1995-07-04 The Regents Of The University Of California Magnetized electrode tip catheter
DE4447698B4 (en) 1994-02-27 2005-04-14 Hahn, Rainer, Dr.Med.Dent. Medical tool
DE69532486T2 (en) 1994-03-17 2004-12-23 Terumo K.K. Surgical instrument
US5649547A (en) 1994-03-24 1997-07-22 Biopsys Medical, Inc. Methods and devices for automated biopsy and collection of soft tissue
US5584830A (en) 1994-03-30 1996-12-17 Medtronic Cardiorhythm Method and system for radiofrequency ablation of cardiac tissue
US6500112B1 (en) 1994-03-30 2002-12-31 Brava, Llc Vacuum dome with supporting rim and rim cushion
US5511556A (en) 1994-04-11 1996-04-30 Desantis; Stephen A. Needle core biopsy instrument
US5817033A (en) 1994-04-11 1998-10-06 Desantis; Stephen A. Needle core biopsy device
US5417709A (en) 1994-04-12 1995-05-23 Symbiosis Corporation Endoscopic instrument with end effectors forming suction and/or irrigation lumens
US5480409A (en) 1994-05-10 1996-01-02 Riza; Erol D. Laparoscopic surgical instrument
US5553675A (en) 1994-06-10 1996-09-10 Minnesota Mining And Manufacturing Company Orthopedic surgical device
US5823197A (en) 1994-06-24 1998-10-20 Somnus Medical Technologies, Inc. Method for internal ablation of turbinates
US6464689B1 (en) 1999-09-08 2002-10-15 Curon Medical, Inc. Graphical user interface for monitoring and controlling use of medical devices
JPH0824266A (en) 1994-07-20 1996-01-30 Sumitomo Bakelite Co Ltd Horn for ultrasonic operation apparatus
AU694225B2 (en) 1994-08-02 1998-07-16 Ethicon Endo-Surgery, Inc. Ultrasonic hemostatic and cutting instrument
US5779130A (en) 1994-08-05 1998-07-14 United States Surgical Corporation Self-contained powered surgical apparatus
US5507738A (en) 1994-08-05 1996-04-16 Microsonic Engineering Devices Company, Inc. Ultrasonic vascular surgical system
US5451220A (en) 1994-08-15 1995-09-19 Microsonic Engineering Devices Company, Inc. Battery operated multifunction ultrasonic wire for angioplasty
TW266267B (en) 1994-08-23 1995-12-21 Ciba Geigy Process for sterilizing articles and providing sterile storage environments
US5456684A (en) 1994-09-08 1995-10-10 Hutchinson Technology Incorporated Multifunctional minimally invasive surgical instrument
US5522839A (en) 1994-09-09 1996-06-04 Pilling Weck Incorporated Dissecting forceps
US5451053A (en) 1994-09-09 1995-09-19 Garrido; Fernando P. Reconfigurable video game controller
US5694936A (en) 1994-09-17 1997-12-09 Kabushiki Kaisha Toshiba Ultrasonic apparatus for thermotherapy with variable frequency for suppressing cavitation
US5674219A (en) 1994-10-06 1997-10-07 Donaldson Company, Inc. Electrosurgical smoke evacuator
US5562610A (en) 1994-10-07 1996-10-08 Fibrasonics Inc. Needle for ultrasonic surgical probe
EP0705571A1 (en) 1994-10-07 1996-04-10 United States Surgical Corporation Self-contained powered surgical apparatus
US5632717A (en) 1994-10-07 1997-05-27 Yoon; Inbae Penetrating endoscope
US6142994A (en) 1994-10-07 2000-11-07 Ep Technologies, Inc. Surgical method and apparatus for positioning a diagnostic a therapeutic element within the body
US5562609A (en) 1994-10-07 1996-10-08 Fibrasonics, Inc. Ultrasonic surgical probe
US5720742A (en) 1994-10-11 1998-02-24 Zacharias; Jaime Controller and actuating system for surgical instrument
JP2638750B2 (en) 1994-10-13 1997-08-06 ćƒŖćƒ§ćƒ¼ćƒ“ę Ŗ式会ē¤¾ Power tool handle structure
US5752973A (en) 1994-10-18 1998-05-19 Archimedes Surgical, Inc. Endoscopic surgical gripping instrument with universal joint jaw coupler
USD381077S (en) 1994-10-25 1997-07-15 Ethicon Endo-Surgery Multifunctional surgical stapling instrument
US5549637A (en) 1994-11-10 1996-08-27 Crainich; Lawrence Articulated medical instrument
US5717306A (en) 1994-11-18 1998-02-10 Shipp; John I. Battery identification and power interrupt system
JPH08153914A (en) 1994-11-25 1996-06-11 Philips Japan Ltd Piezoelectric ceramic transformer
DE4444853B4 (en) 1994-12-16 2006-09-28 Hilti Ag Hand tool for material-removing machining with an electro-acoustic transducer for the generation of ultrasonic vibrations
US5632432A (en) 1994-12-19 1997-05-27 Ethicon Endo-Surgery, Inc. Surgical instrument
US5704534A (en) 1994-12-19 1998-01-06 Ethicon Endo-Surgery, Inc. Articulation assembly for surgical instruments
US5836957A (en) 1994-12-22 1998-11-17 Devices For Vascular Intervention, Inc. Large volume atherectomy device
AU701320B2 (en) 1994-12-22 1999-01-28 Ethicon Endo-Surgery, Inc. Impedance feedback monitor with query electrode for electrosurgical instrument
US5505693A (en) 1994-12-30 1996-04-09 Mackool; Richard J. Method and apparatus for reducing friction and heat generation by an ultrasonic device during surgery
US5563179A (en) 1995-01-10 1996-10-08 The Proctor & Gamble Company Absorbent foams made from high internal phase emulsions useful for acquiring and distributing aqueous fluids
US5486162A (en) 1995-01-11 1996-01-23 Fibrasonics, Inc. Bubble control device for an ultrasonic surgical probe
US5603711A (en) 1995-01-20 1997-02-18 Everest Medical Corp. Endoscopic bipolar biopsy forceps
CA2168404C (en) 1995-02-01 2007-07-10 Dale Schulze Surgical instrument with expandable cutting element
US5573424A (en) 1995-02-09 1996-11-12 Everest Medical Corporation Apparatus for interfacing a bipolar electrosurgical instrument to a monopolar generator
US6409722B1 (en) 1998-07-07 2002-06-25 Medtronic, Inc. Apparatus and method for creating, maintaining, and controlling a virtual electrode used for the ablation of tissue
US6544264B2 (en) 1995-03-10 2003-04-08 Seedling Enterprises, Llc Electrosurgery with cooled electrodes
US6503248B1 (en) 2000-10-30 2003-01-07 Seedling Enterprises, Llc Cooled, non-sticking electrosurgical devices
US5647871A (en) 1995-03-10 1997-07-15 Microsurge, Inc. Electrosurgery with cooled electrodes
RU2170059C2 (en) 1995-03-28 2001-07-10 ŠØтрŠ°ŃƒŠ± ŠœŠµŠ“ŠøŠŗŠ°Š» ŠŠ³ Catheter for removal of hazardous deposits from individual's blood vessels
US5571121A (en) 1995-03-28 1996-11-05 Heifetz; Milton D. Atraumatic clamp for temporary occlusion of blood vessels
US5882206A (en) 1995-03-29 1999-03-16 Gillio; Robert G. Virtual surgery system
US5655100A (en) 1995-03-31 1997-08-05 Sun Microsystems, Inc. Transaction activation processor for controlling memory transaction execution in a packet switched cache coherent multiprocessor system
US5599350A (en) 1995-04-03 1997-02-04 Ethicon Endo-Surgery, Inc. Electrosurgical clamping device with coagulation feedback
US5618307A (en) 1995-04-03 1997-04-08 Heartport, Inc. Clamp assembly and method of use
JP3571414B2 (en) 1995-05-11 2004-09-29 ć‚ŖćƒŖćƒ³ćƒ‘ć‚¹ę Ŗ式会ē¤¾ Ultrasonic incision coagulation equipment
US6669690B1 (en) * 1995-04-06 2003-12-30 Olympus Optical Co., Ltd. Ultrasound treatment system
JP3686117B2 (en) 1995-04-06 2005-08-24 ć‚ŖćƒŖćƒ³ćƒ‘ć‚¹ę Ŗ式会ē¤¾ Ultrasonic incision coagulator
US5624452A (en) 1995-04-07 1997-04-29 Ethicon Endo-Surgery, Inc. Hemostatic surgical cutting or stapling instrument
US6264650B1 (en) 1995-06-07 2001-07-24 Arthrocare Corporation Methods for electrosurgical treatment of intervertebral discs
US5707369A (en) 1995-04-24 1998-01-13 Ethicon Endo-Surgery, Inc. Temperature feedback monitor for hemostatic surgical instrument
US5779701A (en) 1995-04-27 1998-07-14 Symbiosis Corporation Bipolar endoscopic surgical scissor blades and instrument incorporating the same
US5800432A (en) 1995-05-01 1998-09-01 Ep Technologies, Inc. Systems and methods for actively cooling ablation electrodes using diodes
US6575969B1 (en) 1995-05-04 2003-06-10 Sherwood Services Ag Cool-tip radiofrequency thermosurgery electrode system for tumor ablation
US6430446B1 (en) 1995-05-05 2002-08-06 Thermage, Inc. Apparatus for tissue remodeling
US5674235A (en) 1995-05-10 1997-10-07 Ultralase Technologies International Ultrasonic surgical cutting instrument
DE69630188T2 (en) 1995-06-02 2004-08-12 Surgical Design Corp. PHACOEMULSIFICATION HANDPIECE, CUFF AND LACE
US5720744A (en) 1995-06-06 1998-02-24 Valleylab Inc Control system for neurosurgery
WO1996039086A1 (en) 1995-06-06 1996-12-12 Valleylab Inc. Power control for an electrosurgical generator
US6149620A (en) 1995-11-22 2000-11-21 Arthrocare Corporation System and methods for electrosurgical tissue treatment in the presence of electrically conductive fluid
US6210337B1 (en) 1995-06-07 2001-04-03 Atl Ultrasound Inc. Ultrasonic endoscopic probe
US7090672B2 (en) 1995-06-07 2006-08-15 Arthrocare Corporation Method for treating obstructive sleep disorder includes removing tissue from the base of tongue
US6293943B1 (en) 1995-06-07 2001-09-25 Ep Technologies, Inc. Tissue heating and ablation systems and methods which predict maximum tissue temperature
JP4219418B2 (en) 1995-06-13 2009-02-04 ę Ŗ式会ē¤¾ćƒŸćƒÆ惆惃ć‚Æ Ultrasonic surgical device
US6293942B1 (en) 1995-06-23 2001-09-25 Gyrus Medical Limited Electrosurgical generator method
US5591187A (en) 1995-07-14 1997-01-07 Dekel; Moshe Laparoscopic tissue retrieval device and method
US5782396A (en) 1995-08-28 1998-07-21 United States Surgical Corporation Surgical stapler
US5762256A (en) 1995-08-28 1998-06-09 United States Surgical Corporation Surgical stapler
JP3760959B2 (en) 1995-09-06 2006-03-29 ę Ŗ式会ē¤¾ćƒ‡ćƒ³ć‚½ćƒ¼ Generator
US5776130A (en) 1995-09-19 1998-07-07 Valleylab, Inc. Vascular tissue sealing pressure control
US5827271A (en) 1995-09-19 1998-10-27 Valleylab Energy delivery system for vessel sealing
US5662667A (en) 1995-09-19 1997-09-02 Ethicon Endo-Surgery, Inc. Surgical clamping mechanism
US5797959A (en) 1995-09-21 1998-08-25 United States Surgical Corporation Surgical apparatus with articulating jaw structure
US5772659A (en) 1995-09-26 1998-06-30 Valleylab Inc. Electrosurgical generator power control circuit and method
US6059997A (en) 1995-09-29 2000-05-09 Littlelfuse, Inc. Polymeric PTC compositions
US5630420A (en) 1995-09-29 1997-05-20 Ethicon Endo-Surgery, Inc. Ultrasonic instrument for surgical applications
US5674220A (en) 1995-09-29 1997-10-07 Ethicon Endo-Surgery, Inc. Bipolar electrosurgical clamping device
US5883615A (en) 1995-09-29 1999-03-16 Liebel-Flarsheim Company Foot-operated control system for a multi-function
US5796188A (en) 1995-10-05 1998-08-18 Xomed Surgical Products, Inc. Battery-powered medical instrument with power booster
US6428538B1 (en) 1995-10-20 2002-08-06 United States Surgical Corporation Apparatus and method for thermal treatment of body tissue
GB9521772D0 (en) 1995-10-24 1996-01-03 Gyrus Medical Ltd An electrosurgical instrument
JPH09130655A (en) 1995-10-30 1997-05-16 Sharp Corp Image pickup device
JPH09140722A (en) 1995-11-29 1997-06-03 Olympus Optical Co Ltd Ultrasonic therapy instrument
US5658281A (en) 1995-12-04 1997-08-19 Valleylab Inc Bipolar electrosurgical scissors and method of manufacture
US5755717A (en) 1996-01-16 1998-05-26 Ethicon Endo-Surgery, Inc. Electrosurgical clamping device with improved coagulation feedback
US5916229A (en) 1996-02-07 1999-06-29 Evans; Donald Rotating needle biopsy device and method
US5669922A (en) 1996-02-20 1997-09-23 Hood; Larry Ultrasonically driven blade with a radial hook that defines a circular recess
US5762255A (en) 1996-02-20 1998-06-09 Richard-Allan Medical Industries, Inc. Surgical instrument with improvement safety lockout mechanisms
US5792138A (en) 1996-02-22 1998-08-11 Apollo Camera, Llc Cordless bipolar electrocautery unit with automatic power control
US6682501B1 (en) 1996-02-23 2004-01-27 Gyrus Ent, L.L.C. Submucosal tonsillectomy apparatus and method
US5609573A (en) 1996-02-28 1997-03-11 Conmed Corporation Electrosurgical suction/irrigation instrument
DE19608716C1 (en) 1996-03-06 1997-04-17 Aesculap Ag Bipolar surgical holding instrument
US6036707A (en) 1996-03-07 2000-03-14 Devices For Vascular Intervention Catheter device having a selectively flexible housing
US5702390A (en) 1996-03-12 1997-12-30 Ethicon Endo-Surgery, Inc. Bioplar cutting and coagulation instrument
US6325795B1 (en) 1996-03-12 2001-12-04 Sherwood Services Ag Replaceable accessory cord and handswitch
US5830224A (en) 1996-03-15 1998-11-03 Beth Israel Deaconess Medical Center Catheter apparatus and methodology for generating a fistula on-demand between closely associated blood vessels at a pre-chosen anatomic site in-vivo
US5728130A (en) 1996-03-22 1998-03-17 Olympus Optical Co., Ltd. Ultrasonic trocar system
DE19613012C1 (en) 1996-03-25 1997-08-14 Siemens Ag Generation of fault classification signals by trained neural net
FR2746995B1 (en) 1996-03-28 1998-05-15 Sgs Thomson Microelectronics TRANSMISSION ENCODING METHOD AND DEVICE AND USE OF THE METHOD
US5626608A (en) 1996-03-29 1997-05-06 United States Surgical Corporation Surgical instrument having locking handle
US5723970A (en) 1996-04-05 1998-03-03 Linear Technology Corporation Battery charging circuitry having supply current regulation
US5766164A (en) 1996-07-03 1998-06-16 Eclipse Surgical Technologies, Inc. Contiguous, branched transmyocardial revascularization (TMR) channel, method and device
USD416089S (en) 1996-04-08 1999-11-02 Richard-Allan Medical Industries, Inc. Endoscopic linear stapling and dividing surgical instrument
US5792135A (en) 1996-05-20 1998-08-11 Intuitive Surgical, Inc. Articulated surgical instrument for performing minimally invasive surgery with enhanced dexterity and sensitivity
US5843109A (en) 1996-05-29 1998-12-01 Allergan Ultrasonic handpiece with multiple piezoelectric elements and heat dissipator
US5746756A (en) 1996-06-03 1998-05-05 Ethicon Endo-Surgery, Inc. Internal ultrasonic tip amplifier
JPH10127654A (en) 1996-11-05 1998-05-19 Olympus Optical Co Ltd Ultrasonic treatment tool
US6129735A (en) 1996-06-21 2000-10-10 Olympus Optical Co., Ltd. Ultrasonic treatment appliance
JP3274826B2 (en) 1997-10-15 2002-04-15 ć‚ŖćƒŖćƒ³ćƒ‘ć‚¹å…‰å­¦å·„ę„­ę Ŗ式会ē¤¾ Ultrasonic treatment tool
US6887252B1 (en) 1996-06-21 2005-05-03 Olympus Corporation Ultrasonic treatment appliance
JPH11128238A (en) 1997-10-28 1999-05-18 Olympus Optical Co Ltd Ultrasonic therapy device
US5906628A (en) 1996-06-26 1999-05-25 Olympus Optical Co., Ltd. Ultrasonic treatment instrument
JPH105237A (en) 1996-06-26 1998-01-13 Olympus Optical Co Ltd Ultrasonic processor
ATE349955T1 (en) 1996-07-01 2007-01-15 Univ Massachusetts FINGERTIP-ATTACHED INSTRUMENT FOR MINIMALLY INVASIVE SURGERY
US6113594A (en) 1996-07-02 2000-09-05 Ethicon, Inc. Systems, methods and apparatus for performing resection/ablation in a conductive medium
US5800448A (en) * 1996-07-24 1998-09-01 Surgical Design Corporation Ultrasonic surgical instrument
US6358264B2 (en) * 1996-07-24 2002-03-19 Surgical Design Corporation Surgical instruments with movable member
US5826576A (en) 1996-08-08 1998-10-27 Medtronic, Inc. Electrophysiology catheter with multifunction wire and method for making
US6031526A (en) 1996-08-08 2000-02-29 Apollo Camera, Llc Voice controlled medical text and image reporting system
US6017354A (en) 1996-08-15 2000-01-25 Stryker Corporation Integrated system for powered surgical tools
US6544260B1 (en) 1996-08-20 2003-04-08 Oratec Interventions, Inc. Method for treating tissue in arthroscopic environment using precooling and apparatus for same
US5836943A (en) 1996-08-23 1998-11-17 Team Medical, L.L.C. Electrosurgical generator
US5993972A (en) 1996-08-26 1999-11-30 Tyndale Plains-Hunter, Ltd. Hydrophilic and hydrophobic polyether polyurethanes and uses therefor
US6364888B1 (en) 1996-09-09 2002-04-02 Intuitive Surgical, Inc. Alignment of master and slave in a minimally invasive surgical apparatus
US5836909A (en) 1996-09-13 1998-11-17 Cosmescu; Ioan Automatic fluid control system for use in open and laparoscopic laser surgery and electrosurgery and method therefor
DE29623113U1 (en) 1996-09-18 1997-10-30 Winter & Ibe Olympus Axial handle for surgical, especially endoscopic, instruments
CA2213948C (en) 1996-09-19 2006-06-06 United States Surgical Corporation Ultrasonic dissector
US20050143769A1 (en) 2002-08-19 2005-06-30 White Jeffrey S. Ultrasonic dissector
GB2317566B (en) 1996-09-27 2000-08-09 Smiths Industries Plc Electrosurgery apparatus
US5833696A (en) 1996-10-03 1998-11-10 United States Surgical Corporation Apparatus for applying surgical clips
US6036667A (en) 1996-10-04 2000-03-14 United States Surgical Corporation Ultrasonic dissection and coagulation system
US6109500A (en) 1996-10-04 2000-08-29 United States Surgical Corporation Lockout mechanism for a surgical stapler
EP1946708B1 (en) 1996-10-04 2011-06-22 Tyco Healthcare Group LP Instrument for cutting tissue
EP1698289B1 (en) 1996-10-04 2008-04-30 United States Surgical Corporation Instrument for cutting tissue
US5989274A (en) 1996-10-17 1999-11-23 Ethicon Endo-Surgery, Inc. Methods and devices for improving blood flow to a heart of a patient
US5730752A (en) 1996-10-29 1998-03-24 Femrx, Inc. Tubular surgical cutters having aspiration flow control ports
US6126676A (en) 1996-10-30 2000-10-03 Ethicon, Inc. Surgical tipping apparatus
US6238366B1 (en) 1996-10-31 2001-05-29 Ethicon, Inc. System for fluid retention management
US6292700B1 (en) 1999-09-10 2001-09-18 Surx, Inc. Endopelvic fascia treatment for incontinence
US6091995A (en) 1996-11-08 2000-07-18 Surx, Inc. Devices, methods, and systems for shrinking tissues
US5891142A (en) 1996-12-06 1999-04-06 Eggers & Associates, Inc. Electrosurgical forceps
DE19651362C1 (en) 1996-12-10 1998-06-10 Endress Hauser Gmbh Co Device for monitoring a predetermined level in a container
US6331181B1 (en) 1998-12-08 2001-12-18 Intuitive Surgical, Inc. Surgical robotic tools, data architecture, and use
US6132368A (en) 1996-12-12 2000-10-17 Intuitive Surgical, Inc. Multi-component telepresence system and method
US5808396A (en) 1996-12-18 1998-09-15 Alcon Laboratories, Inc. System and method for tuning and controlling an ultrasonic handpiece
US5910129A (en) 1996-12-19 1999-06-08 Ep Technologies, Inc. Catheter distal assembly with pull wires
US6063098A (en) 1996-12-23 2000-05-16 Houser; Kevin Articulable ultrasonic surgical apparatus
US5776155A (en) 1996-12-23 1998-07-07 Ethicon Endo-Surgery, Inc. Methods and devices for attaching and detaching transmission components
US6051010A (en) 1996-12-23 2000-04-18 Ethicon Endo-Surgery, Inc. Methods and devices for joining transmission components
SE508289C2 (en) 1997-01-28 1998-09-21 Ericsson Telefon Ab L M Method and apparatus for monitoring and controlling oscillator signal
US6156389A (en) 1997-02-03 2000-12-05 Cytonix Corporation Hydrophobic coating compositions, articles coated with said compositions, and processes for manufacturing same
US5916213A (en) 1997-02-04 1999-06-29 Medtronic, Inc. Systems and methods for tissue mapping and ablation
US5904681A (en) 1997-02-10 1999-05-18 Hugh S. West, Jr. Endoscopic surgical instrument with ability to selectively remove different tissue with mechanical and electrical energy
US5810828A (en) 1997-02-13 1998-09-22 Mednext, Inc. Adjustable depth drill guide
US6206844B1 (en) 1997-02-28 2001-03-27 Ethicon Endo-Surgery, Inc. Reusable ultrasonic surgical instrument with removable outer sheath
US5810859A (en) 1997-02-28 1998-09-22 Ethicon Endo-Surgery, Inc. Apparatus for applying torque to an ultrasonic transmission component
US6508825B1 (en) 1997-02-28 2003-01-21 Lumend, Inc. Apparatus for treating vascular occlusions
US5968060A (en) 1997-02-28 1999-10-19 Ethicon Endo-Surgery, Inc. Ultrasonic interlock and method of using the same
US5944737A (en) 1997-10-10 1999-08-31 Ethicon Endo-Surgery, Inc. Ultrasonic clamp coagulator apparatus having improved waveguide support member
US5989275A (en) 1997-02-28 1999-11-23 Ethicon Endo-Surgery, Inc. Damping ultrasonic transmission components
US7083613B2 (en) 1997-03-05 2006-08-01 The Trustees Of Columbia University In The City Of New York Ringed forceps
US5957943A (en) 1997-03-05 1999-09-28 Ethicon Endo-Surgery, Inc. Method and devices for increasing ultrasonic effects
US6626901B1 (en) 1997-03-05 2003-09-30 The Trustees Of Columbia University In The City Of New York Electrothermal instrument for sealing and joining or cutting tissue
CA2283571C (en) 1997-03-10 2007-07-24 Applied Medical Resources Corporation Surgical clips and clamps
US5800449A (en) 1997-03-11 1998-09-01 Ethicon Endo-Surgery, Inc. Knife shield for surgical instruments
JP3832075B2 (en) 1997-03-25 2006-10-11 ć‚»ć‚¤ć‚³ćƒ¼ć‚Øćƒ—ć‚½ćƒ³ę Ŗ式会ē¤¾ Inkjet recording head, method for manufacturing the same, and piezoelectric element
US6033399A (en) 1997-04-09 2000-03-07 Valleylab, Inc. Electrosurgical generator with adaptive power control
US5897569A (en) 1997-04-16 1999-04-27 Ethicon Endo-Surgery, Inc. Ultrasonic generator with supervisory control circuitry
GB9708268D0 (en) 1997-04-24 1997-06-18 Gyrus Medical Ltd An electrosurgical instrument
JPH10295700A (en) 1997-04-25 1998-11-10 Sumitomo Bakelite Co Ltd Surgical operation appliance
AU6357298A (en) 1997-04-28 1998-10-29 Ethicon Endo-Surgery, Inc. Methods and devices for controlling the vibration of ultrasonic transmission components
US5968007A (en) 1997-05-01 1999-10-19 Sonics & Materials, Inc. Power-limit control for ultrasonic surgical instrument
USH2037H1 (en) 1997-05-14 2002-07-02 David C. Yates Electrosurgical hemostatic device including an anvil
USH1904H (en) 1997-05-14 2000-10-03 Ethicon Endo-Surgery, Inc. Electrosurgical hemostatic method and device
WO1998052792A1 (en) 1997-05-21 1998-11-26 Siemens Aktiengesellschaft Method and device for transmitting digital data from a measuring station in a motor vehicle occupant protection system to an air bag control device
US6152902A (en) 1997-06-03 2000-11-28 Ethicon, Inc. Method and apparatus for collecting surgical fluids
FR2764516B1 (en) 1997-06-11 1999-09-03 Inst Nat Sante Rech Med ULTRASONIC INTRATISSULAIRE APPLICATOR FOR HYPERTHERMIA
US5851212A (en) 1997-06-11 1998-12-22 Endius Incorporated Surgical instrument
US6475211B2 (en) 1997-06-17 2002-11-05 Cool Laser Optics, Inc. Method and apparatus for temperature control of biologic tissue with simultaneous irradiation
US6231565B1 (en) 1997-06-18 2001-05-15 United States Surgical Corporation Robotic arm DLUs for performing surgical tasks
US20030109778A1 (en) 1997-06-20 2003-06-12 Cardiac Assist Devices, Inc. Electrophysiology/ablation catheter and remote actuator therefor
JPH1112222A (en) 1997-06-25 1999-01-19 Nippon Shokubai Co Ltd Recovery of acrylic acid
US6144402A (en) 1997-07-08 2000-11-07 Microtune, Inc. Internet transaction acceleration
US5938633A (en) 1997-07-09 1999-08-17 Ethicon Endo-Surgery, Inc. Ultrasonic surgical devices
US5913823A (en) 1997-07-15 1999-06-22 Acuson Corporation Ultrasound imaging method and system for transmit signal generation for an ultrasonic imaging system capable of harmonic imaging
EP0996377A1 (en) 1997-07-18 2000-05-03 Gyrus Medical Limited An electrosurgical instrument
US6096037A (en) 1997-07-29 2000-08-01 Medtronic, Inc. Tissue sealing electrosurgery device and methods of sealing tissue
CA2244480A1 (en) 1997-08-04 1999-02-04 Gynecare, Inc. Apparatus and method for treating body tissues
US6024750A (en) 1997-08-14 2000-02-15 United States Surgical Ultrasonic curved blade
US6024744A (en) 1997-08-27 2000-02-15 Ethicon, Inc. Combined bipolar scissor and grasper
US6013052A (en) 1997-09-04 2000-01-11 Ep Technologies, Inc. Catheter and piston-type actuation device for use with same
US6267761B1 (en) 1997-09-09 2001-07-31 Sherwood Services Ag Apparatus and method for sealing and cutting tissue
WO1999012483A1 (en) 1997-09-11 1999-03-18 Genzyme Corporation Articulating endoscopic implant rotator surgical apparatus and method for using same
US5836990A (en) 1997-09-19 1998-11-17 Medtronic, Inc. Method and apparatus for determining electrode/tissue contact
US5865361A (en) 1997-09-23 1999-02-02 United States Surgical Corporation Surgical stapling apparatus
US5921956A (en) 1997-09-24 1999-07-13 Smith & Nephew, Inc. Surgical instrument
US5954717A (en) 1997-09-25 1999-09-21 Radiotherapeutics Corporation Method and system for heating solid tissue
US6358246B1 (en) 1999-06-25 2002-03-19 Radiotherapeutics Corporation Method and system for heating solid tissue
US6436116B1 (en) 1997-10-06 2002-08-20 Smith & Nephew, Inc. Methods and apparatus for removing veins
US6048224A (en) 1997-10-09 2000-04-11 Tekonsha Engineering Company Sealed multiple-contact electrical connector
US5954746A (en) 1997-10-09 1999-09-21 Ethicon Endo-Surgery, Inc. Dual cam trigger for a surgical instrument
US5947984A (en) 1997-10-10 1999-09-07 Ethicon Endo-Surger, Inc. Ultrasonic clamp coagulator apparatus having force limiting clamping mechanism
US5893835A (en) 1997-10-10 1999-04-13 Ethicon Endo-Surgery, Inc. Ultrasonic clamp coagulator apparatus having dual rotational positioning
US6068647A (en) 1997-10-10 2000-05-30 Ethicon Endo-Surgery, Inc. Ultrasonic clamp coagulator apparatus having improved clamp arm tissue pad
US5873873A (en) 1997-10-10 1999-02-23 Ethicon Endo-Surgery, Inc. Ultrasonic clamp coagulator apparatus having improved clamp mechanism
SE510713C2 (en) 1997-10-10 1999-06-14 Ericsson Telefon Ab L M Phase locking circuit and method for controlling voltage controlled oscillator
US5980510A (en) 1997-10-10 1999-11-09 Ethicon Endo-Surgery, Inc. Ultrasonic clamp coagulator apparatus having improved clamp arm pivot mount
US5954736A (en) 1997-10-10 1999-09-21 Ethicon Endo-Surgery, Inc. Coagulator apparatus having indexed rotational positioning
US6050943A (en) 1997-10-14 2000-04-18 Guided Therapy Systems, Inc. Imaging, therapy, and temperature monitoring ultrasonic system
WO1999020341A1 (en) 1997-10-16 1999-04-29 Electrologic Of America, Inc. Electrical stimulation therapy method and apparatus
US6176857B1 (en) 1997-10-22 2001-01-23 Oratec Interventions, Inc. Method and apparatus for applying thermal energy to tissue asymmetrically
JP2001520081A (en) 1997-10-23 2001-10-30 ć‚¢ćƒ¼ć‚¹ćƒ­ć‚±ć‚¢ ć‚³ćƒ¼ćƒćƒ¬ć‚¤ć‚·ćƒ§ćƒ³ Power supply for electrosurgery in conductive fluids and method of supplying the same
US6187003B1 (en) 1997-11-12 2001-02-13 Sherwood Services Ag Bipolar electrosurgical instrument for sealing vessels
WO1999023960A1 (en) 1997-11-12 1999-05-20 Isothermix Inc Methods and apparatus for welding blood vessels
US6050996A (en) 1997-11-12 2000-04-18 Sherwood Services Ag Bipolar electrosurgical instrument with replaceable electrodes
US6156029A (en) 1997-11-25 2000-12-05 Eclipse Surgical Technologies, Inc. Selective treatment of endocardial/myocardial boundary
US6068627A (en) 1997-12-10 2000-05-30 Valleylab, Inc. Smart recognition apparatus and method
US6126629A (en) 1997-12-18 2000-10-03 Bausch & Lomb Surgical, Inc. Multiple port phaco needle
US6033375A (en) 1997-12-23 2000-03-07 Fibrasonics Inc. Ultrasonic probe with isolated and teflon coated outer cannula
JPH11178833A (en) 1997-12-24 1999-07-06 Olympus Optical Co Ltd Ultrasonic treatment implement
US6165150A (en) 1997-12-29 2000-12-26 Surgical Design Corporation Tips for ultrasonic handpiece
US6388657B1 (en) 1997-12-31 2002-05-14 Anthony James Francis Natoli Virtual reality keyboard system and method
US6080149A (en) 1998-01-09 2000-06-27 Radiotherapeutics, Corporation Method and apparatus for monitoring solid tissue heating
JP4343434B2 (en) 1998-01-19 2009-10-14 ćƒ¤ćƒ³ć‚°ć€ćƒžć‚¤ć‚±ćƒ«ćƒ»ć‚øćƒ§ćƒ³ćƒ»ćƒ©ćƒ‰ćƒŖćƒ¼ Ultrasonic cutting tools
US6736813B2 (en) 1998-01-23 2004-05-18 Olympus Optical Co., Ltd. High-frequency treatment tool
DE19803439A1 (en) 1998-01-29 1999-08-05 Sachse Hans E Bone removal appliance of hollow cylinder with inner dia. deviating from circular cross section
US6296640B1 (en) 1998-02-06 2001-10-02 Ethicon Endo-Surgery, Inc. RF bipolar end effector for use in electrosurgical instruments
US6562037B2 (en) 1998-02-12 2003-05-13 Boris E. Paton Bonding of soft biological tissues by passing high frequency electric current therethrough
WO1999040861A1 (en) 1998-02-17 1999-08-19 Baker James A Radiofrequency medical instrument for vessel welding
US6132429A (en) 1998-02-17 2000-10-17 Baker; James A. Radiofrequency medical instrument and methods for luminal welding
JPH11225951A (en) 1998-02-17 1999-08-24 Olympus Optical Co Ltd Treatment tool for endoscope
DE19806718A1 (en) * 1998-02-18 1999-08-26 Storz Endoskop Gmbh System for treating of body tissue using ultrasound with generator and unit transmitting ultrasound on tissue and hollow probe
US6126658A (en) 1998-02-19 2000-10-03 Baker; James A. Radiofrequency medical instrument and methods for vessel welding
US6860878B2 (en) 1998-02-24 2005-03-01 Endovia Medical Inc. Interchangeable instrument
US6810281B2 (en) 2000-12-21 2004-10-26 Endovia Medical, Inc. Medical mapping system
US7775972B2 (en) 1998-02-24 2010-08-17 Hansen Medical, Inc. Flexible instrument
US8303576B2 (en) 1998-02-24 2012-11-06 Hansen Medical, Inc. Interchangeable surgical instrument
US20060074442A1 (en) 2000-04-06 2006-04-06 Revascular Therapeutics, Inc. Guidewire for crossing occlusions or stenoses
AUPP229398A0 (en) 1998-03-11 1998-04-09 Ampcontrol Pty Ltd Two wire communicaton system
US6159160A (en) 1998-03-26 2000-12-12 Ethicon, Inc. System and method for controlled infusion and pressure monitoring
US5935144A (en) * 1998-04-09 1999-08-10 Ethicon Endo-Surgery, Inc. Double sealed acoustic isolation members for ultrasonic
US6589200B1 (en) 1999-02-22 2003-07-08 Ethicon Endo-Surgery, Inc. Articulating ultrasonic surgical shears
US5897523A (en) 1998-04-13 1999-04-27 Ethicon Endo-Surgery, Inc. Articulating ultrasonic surgical instrument
US6454782B1 (en) 1998-04-13 2002-09-24 Ethicon Endo-Surgery, Inc. Actuation mechanism for surgical instruments
US5980546A (en) 1998-04-13 1999-11-09 Nexus Medical System, Inc. Llc Guillotine cutter used with medical procedures
JP3686765B2 (en) 1998-04-16 2005-08-24 ć‚ŖćƒŖćƒ³ćƒ‘ć‚¹ę Ŗ式会ē¤¾ Ultrasonic treatment device
AU754594B2 (en) 1998-04-24 2002-11-21 Indigo Medical, Incorporated Energy application system with ancillary information exchange capability, energy applicator, and methods associated therewith
US6003517A (en) 1998-04-30 1999-12-21 Ethicon Endo-Surgery, Inc. Method for using an electrosurgical device on lung tissue
US6270831B2 (en) 1998-04-30 2001-08-07 Medquest Products, Inc. Method and apparatus for providing a conductive, amorphous non-stick coating
US6514252B2 (en) 1998-05-01 2003-02-04 Perfect Surgical Techniques, Inc. Bipolar surgical instruments having focused electrical fields
US5994855A (en) 1998-05-07 1999-11-30 Optiva Corporation Automatic power adjustment system for introductory use of a vibrating device on a human body
US6193709B1 (en) * 1998-05-13 2001-02-27 Olympus Optical Co., Ltd. Ultrasonic treatment apparatus
US6162194A (en) 1998-05-20 2000-12-19 Apollo Camera, Llc Surgical irrigation apparatus and methods for use
US6740082B2 (en) 1998-12-29 2004-05-25 John H. Shadduck Surgical instruments for treating gastro-esophageal reflux
US7198635B2 (en) 2000-10-17 2007-04-03 Asthmatx, Inc. Modification of airways by application of energy
US6132448A (en) 1998-06-19 2000-10-17 Stryker Corporation Endoscopic irrigated bur
US6679882B1 (en) 1998-06-22 2004-01-20 Lina Medical Aps Electrosurgical device for coagulating and for making incisions, a method of severing blood vessels and a method of coagulating and for making incisions in or severing tissue
US6390973B1 (en) 1998-06-25 2002-05-21 Asahi Kogaku Kogyo Kabushiki Kaisha Endoscope for ultrasonic examination and surgical treatment associated thereto
US6309400B2 (en) 1998-06-29 2001-10-30 Ethicon Endo-Surgery, Inc. Curved ultrasonic blade having a trapezoidal cross section
CA2276313C (en) 1998-06-29 2008-01-29 Ethicon Endo-Surgery, Inc. Balanced ultrasonic blade including a plurality of balance asymmetries
US6077285A (en) 1998-06-29 2000-06-20 Alcon Laboratories, Inc. Torsional ultrasound handpiece
US6660017B2 (en) 1998-06-29 2003-12-09 Ethicon Endo-Surgery, Inc. Balanced ultrasonic blade including a singular balance asymmetry
CA2276316C (en) 1998-06-29 2008-02-12 Ethicon Endo-Surgery, Inc. Method of balancing asymmetric ultrasonic surgical blades
US6066132A (en) 1998-06-30 2000-05-23 Ethicon, Inc. Articulating endometrial ablation device
US6537272B2 (en) 1998-07-07 2003-03-25 Medtronic, Inc. Apparatus and method for creating, maintaining, and controlling a virtual electrode used for the ablation of tissue
US6096033A (en) 1998-07-20 2000-08-01 Tu; Hosheng Medical device having ultrasonic ablation capability
US6572639B1 (en) 1998-07-31 2003-06-03 Surx, Inc. Interspersed heating/cooling to shrink tissues for incontinence
US7534243B1 (en) 1998-08-12 2009-05-19 Maquet Cardiovascular Llc Dissection and welding of tissue
EP1162244A4 (en) 1998-08-24 2004-09-01 Daikin Ind Ltd Thin coating film made of fluoropolymer and method of forming the same
US6833865B1 (en) 1998-09-01 2004-12-21 Virage, Inc. Embedded metadata engines in digital capture devices
DE19839826A1 (en) 1998-09-01 2000-03-02 Karl Fastenmeier High-frequency device for generating a plasma arc for the treatment of human tissue
US6022362A (en) 1998-09-03 2000-02-08 Rubicor Medical, Inc. Excisional biopsy devices and methods
US6440147B1 (en) 1998-09-03 2002-08-27 Rubicor Medical, Inc. Excisional biopsy devices and methods
US6123702A (en) 1998-09-10 2000-09-26 Scimed Life Systems, Inc. Systems and methods for controlling power in an electrosurgical probe
US6086584A (en) 1998-09-10 2000-07-11 Ethicon, Inc. Cellular sublimation probe and methods
US6245065B1 (en) 1998-09-10 2001-06-12 Scimed Life Systems, Inc. Systems and methods for controlling power in an electrosurgical probe
US6391026B1 (en) 1998-09-18 2002-05-21 Pro Duct Health, Inc. Methods and systems for treating breast tissue
US6132427A (en) 1998-09-21 2000-10-17 Medicor Corporation Electrosurgical instruments
US6402748B1 (en) 1998-09-23 2002-06-11 Sherwood Services Ag Electrosurgical device having a dielectrical seal
US6929602B2 (en) 1998-09-28 2005-08-16 Kabushiki Kaisha Toshiba Endoscope apparatus
JP4136118B2 (en) 1998-09-30 2008-08-20 ć‚ŖćƒŖćƒ³ćƒ‘ć‚¹ę Ŗ式会ē¤¾ Electrosurgical equipment
US7137980B2 (en) 1998-10-23 2006-11-21 Sherwood Services Ag Method and system for controlling output of RF medical generator
US6398779B1 (en) 1998-10-23 2002-06-04 Sherwood Services Ag Vessel sealing system
US7901400B2 (en) 1998-10-23 2011-03-08 Covidien Ag Method and system for controlling output of RF medical generator
US6511480B1 (en) 1998-10-23 2003-01-28 Sherwood Services Ag Open vessel sealing forceps with disposable electrodes
US6796981B2 (en) 1999-09-30 2004-09-28 Sherwood Services Ag Vessel sealing system
US7364577B2 (en) 2002-02-11 2008-04-29 Sherwood Services Ag Vessel sealing system
US7267677B2 (en) 1998-10-23 2007-09-11 Sherwood Services Ag Vessel sealing instrument
US20040167508A1 (en) 2002-02-11 2004-08-26 Robert Wham Vessel sealing system
ES2251260T3 (en) 1998-10-23 2006-04-16 Sherwood Services Ag FORCEPS OF OBTURATION OF OPEN GLASSES WITH MEMBER OF BUMPER.
US7582087B2 (en) 1998-10-23 2009-09-01 Covidien Ag Vessel sealing instrument
US20100042093A9 (en) 1998-10-23 2010-02-18 Wham Robert H System and method for terminating treatment in impedance feedback algorithm
US6277117B1 (en) 1998-10-23 2001-08-21 Sherwood Services Ag Open vessel sealing forceps with disposable electrodes
US20040249374A1 (en) 1998-10-23 2004-12-09 Tetzlaff Philip M. Vessel sealing instrument
ES2241369T3 (en) 1998-10-23 2005-10-16 Sherwood Services Ag ENDOSCOPIC ELECTROCHIRURGICAL BIPOLAR FORCEPS.
US6585735B1 (en) 1998-10-23 2003-07-01 Sherwood Services Ag Endoscopic bipolar electrosurgical forceps
US7118570B2 (en) 2001-04-06 2006-10-10 Sherwood Services Ag Vessel sealing forceps with disposable electrodes
US6174311B1 (en) 1998-10-28 2001-01-16 Sdgi Holdings, Inc. Interbody fusion grafts and instrumentation
JP2000210299A (en) 1999-01-20 2000-08-02 Olympus Optical Co Ltd Surgical operation instrument
DE19850068C1 (en) 1998-10-30 2000-06-08 Storz Karl Gmbh & Co Kg Medical instrument for tissue preparation
US6459926B1 (en) 1998-11-20 2002-10-01 Intuitive Surgical, Inc. Repositioning and reorientation of master/slave relationship in minimally invasive telesurgery
PT1144314E (en) 1998-12-30 2003-09-30 Wedeco Ag DEVICE FOR EXPOSURE TO ULTRAVIOLET RADIATION, INTENDED FOR THE DISINFECTION OF LIQUIDS WITH A TRANSMISSION OF ULTRAVIOLET RADIATION LESS THAN NORMAL
US20030171747A1 (en) 1999-01-25 2003-09-11 Olympus Optical Co., Ltd. Medical treatment instrument
US7189206B2 (en) 2003-02-24 2007-03-13 Senorx, Inc. Biopsy device with inner cutter
US6174309B1 (en) 1999-02-11 2001-01-16 Medical Scientific, Inc. Seal & cut electrosurgical instrument
US6332891B1 (en) 1999-02-16 2001-12-25 Stryker Corporation System and method for performing image guided surgery
US6290575B1 (en) 1999-03-01 2001-09-18 John I. Shipp Surgical ligation clip with increased ligating force
DE19908721A1 (en) 1999-03-01 2000-09-28 Storz Karl Gmbh & Co Kg Instrument for cutting biological and especially human tissue
US6350269B1 (en) 1999-03-01 2002-02-26 Apollo Camera, L.L.C. Ligation clip and clip applier
US6027515A (en) 1999-03-02 2000-02-22 Sound Surgical Technologies Llc Pulsed ultrasonic device and method
US7550216B2 (en) 1999-03-03 2009-06-23 Foster-Miller, Inc. Composite solid polymer electrolyte membranes
US6666875B1 (en) 1999-03-05 2003-12-23 Olympus Optical Co., Ltd. Surgical apparatus permitting recharge of battery-driven surgical instrument in noncontact state
US20020022836A1 (en) 1999-03-05 2002-02-21 Gyrus Medical Limited Electrosurgery system
JP2000271142A (en) 1999-03-24 2000-10-03 Olympus Optical Co Ltd Electric-driven medical implement
US6582427B1 (en) 1999-03-05 2003-06-24 Gyrus Medical Limited Electrosurgery system
US6311783B1 (en) 1999-03-08 2001-11-06 William Harpell Gardening tool
US6190386B1 (en) 1999-03-09 2001-02-20 Everest Medical Corporation Electrosurgical forceps with needle electrodes
US6582451B1 (en) 1999-03-16 2003-06-24 The University Of Sydney Device for use in surgery
JP2000271145A (en) 1999-03-24 2000-10-03 Olympus Optical Co Ltd Device and system for treatment
US6416486B1 (en) 1999-03-31 2002-07-09 Ethicon Endo-Surgery, Inc. Ultrasonic surgical device having an embedding surface and a coagulating surface
US6251110B1 (en) 1999-03-31 2001-06-26 Ethicon Endo-Surgery, Inc. Combined radio frequency and ultrasonic surgical device
US6257241B1 (en) 1999-03-31 2001-07-10 Ethicon Endo-Surgery, Inc. Method for repairing tissue defects using ultrasonic radio frequency energy
US6287344B1 (en) 1999-03-31 2001-09-11 Ethicon Endo-Surgery, Inc. Method for repairing tissue defects using an ultrasonic device
JP2000287987A (en) 1999-04-01 2000-10-17 Olympus Optical Co Ltd Chargeable battery type medical treatment apparatus
US6594552B1 (en) 1999-04-07 2003-07-15 Intuitive Surgical, Inc. Grip strength with tactile feedback for robotic surgery
CA2370076C (en) 1999-04-15 2007-11-13 Ethicon Endo-Surgery, Inc. Ultrasonic transducer with improved compressive loading
US6278218B1 (en) 1999-04-15 2001-08-21 Ethicon Endo-Surgery, Inc. Apparatus and method for tuning ultrasonic transducers
WO2000064358A2 (en) * 1999-04-21 2000-11-02 Michael John Radley Young Surgical waveguide output configurations
EP1179992A1 (en) * 1999-04-23 2002-02-20 United States Surgical Corporation Second generation coil fastener applier with memory ring
US6152923A (en) 1999-04-28 2000-11-28 Sherwood Services Ag Multi-contact forceps and method of sealing, coagulating, cauterizing and/or cutting vessels and tissue
US6689146B1 (en) 1999-04-29 2004-02-10 Stryker Corporation Powered surgical handpiece with integrated irrigator and suction application
JP3662851B2 (en) 1999-05-07 2005-06-22 ć‚¢ć‚Øć‚¹ć‚Æćƒ©ćƒƒćƒ— ć‚¢ć‚Æćƒć‚§ćƒ³ć‚²ć‚¼ćƒ«ć‚·ćƒ£ćƒ•ćƒˆ ć‚¦ćƒ³ćƒˆ ć‚³ćƒ³ćƒ‘ćƒ‹ćƒ¼ ć‚³ćƒžćƒ³ćƒ‡ć‚£ćƒˆć‚²ć‚¼ćƒ«ć‚·ćƒ£ćƒ•ćƒˆ Rotary surgical tool
US20030130693A1 (en) 1999-05-18 2003-07-10 Levin John M. Laparoscopic/thorascopic insertion caps
US6233476B1 (en) 1999-05-18 2001-05-15 Mediguide Ltd. Medical positioning system
US6174310B1 (en) 1999-05-24 2001-01-16 Kirwan Surgical Products, Inc. Bipolar coaxial coagulator having offset connector pin
US6454781B1 (en) 1999-05-26 2002-09-24 Ethicon Endo-Surgery, Inc. Feedback control in an ultrasonic surgical instrument for improved tissue effects
US20030181898A1 (en) 1999-05-28 2003-09-25 Bowers William J. RF filter for an electrosurgical generator
US6793652B1 (en) 1999-06-02 2004-09-21 Power Medical Interventions, Inc. Electro-mechanical surgical device
US6517565B1 (en) 1999-06-02 2003-02-11 Power Medical Interventions, Inc. Carriage assembly for controlling a steering wire steering mechanism within a flexible shaft
US7695485B2 (en) 2001-11-30 2010-04-13 Power Medical Interventions, Llc Surgical device
ATE420605T1 (en) 1999-06-03 2009-01-15 Arsline Sa DEVICE FOR LIMITING THE PENETRATION OF A DRILLING TOOL IN DENTAL SURGERY, AND DEVICE FOR CALIBRATING AND STORING THE PENTERATION DEPTH
US6273852B1 (en) 1999-06-09 2001-08-14 Ethicon, Inc. Surgical instrument and method for treating female urinary incontinence
US6117152A (en) 1999-06-18 2000-09-12 Ethicon Endo-Surgery, Inc. Multi-function ultrasonic surgical instrument
US6214023B1 (en) 1999-06-21 2001-04-10 Ethicon Endo-Surgery, Inc. Ultrasonic surgical instrument with removable clamp arm
US6811842B1 (en) 1999-06-29 2004-11-02 The Procter & Gamble Company Liquid transport member for high flux rates between two port regions
US6254623B1 (en) 1999-06-30 2001-07-03 Ethicon Endo-Surgery, Inc. Ultrasonic clamp coagulator surgical instrument with improved blade geometry
US6488196B1 (en) 1999-06-30 2002-12-03 Axya Medical, Inc. Surgical stapler and method of applying plastic staples to body tissue
US20010031950A1 (en) 1999-07-16 2001-10-18 Samantha Bell Surgical blade coatings
JP2001029353A (en) 1999-07-21 2001-02-06 Olympus Optical Co Ltd Ultrasonic treating device
US6423073B2 (en) 1999-07-23 2002-07-23 Ethicon, Inc. Instrument for inserting graft fixation device
US6258034B1 (en) 1999-08-04 2001-07-10 Acuson Corporation Apodization methods and apparatus for acoustic phased array aperture for diagnostic medical ultrasound transducer
US6590733B1 (en) 1999-08-20 2003-07-08 Agere Systems Inc. Digital processing of pilot-tone amplitudes
TW449185U (en) 1999-08-20 2001-08-01 Chroma Ate Inc Charge/discharge control circuit for battery
US6666860B1 (en) 1999-08-24 2003-12-23 Olympus Optical Co., Ltd. Electric treatment system
US20020087155A1 (en) 1999-08-30 2002-07-04 Underwood Ronald A. Systems and methods for intradermal collagen stimulation
US6419675B1 (en) 1999-09-03 2002-07-16 Conmed Corporation Electrosurgical coagulating and cutting instrument
US6611793B1 (en) 1999-09-07 2003-08-26 Scimed Life Systems, Inc. Systems and methods to identify and disable re-use single use devices based on detecting environmental changes
US6651669B1 (en) 1999-09-07 2003-11-25 Scimed Life Systems, Inc. Systems and methods to identify and disable re-used single use devices based on cataloging catheter usage
US7077039B2 (en) 2001-11-13 2006-07-18 Sd3, Llc Detection system for power equipment
US6458142B1 (en) 1999-10-05 2002-10-01 Ethicon Endo-Surgery, Inc. Force limiting mechanism for an ultrasonic surgical instrument
US6379350B1 (en) 1999-10-05 2002-04-30 Oratec Interventions, Inc. Surgical instrument for ablation and aspiration
JP4233742B2 (en) 1999-10-05 2009-03-04 ć‚Øć‚·ć‚³ćƒ³ćƒ»ć‚Øćƒ³ćƒ‰āˆ’ć‚µćƒ¼ć‚ø悧ćƒŖć‚£ćƒ»ć‚¤ćƒ³ć‚³ćƒ¼ćƒćƒ¬ć‚¤ćƒ†ćƒƒćƒ‰ Connecting curved clamp arms and tissue pads used with ultrasonic surgical instruments
US6325811B1 (en) 1999-10-05 2001-12-04 Ethicon Endo-Surgery, Inc. Blades with functional balance asymmetries for use with ultrasonic surgical instruments
US20020077550A1 (en) 1999-10-05 2002-06-20 Rabiner Robert A. Apparatus and method for treating gynecological diseases using an ultrasonic medical device operating in a transverse mode
US20040097996A1 (en) 1999-10-05 2004-05-20 Omnisonics Medical Technologies, Inc. Apparatus and method of removing occlusions using an ultrasonic medical device operating in a transverse mode
US6551337B1 (en) 1999-10-05 2003-04-22 Omnisonics Medical Technologies, Inc. Ultrasonic medical device operating in a transverse mode
US6524251B2 (en) 1999-10-05 2003-02-25 Omnisonics Medical Technologies, Inc. Ultrasonic device for tissue ablation and sheath for use therewith
US6432118B1 (en) 1999-10-05 2002-08-13 Ethicon Endo-Surgery, Inc. Multifunctional curved blade for use with an ultrasonic surgical instrument
US20030036705A1 (en) 1999-10-05 2003-02-20 Omnisonics Medical Technologies, Inc. Ultrasonic probe device having an impedance mismatch with rapid attachment and detachment means
US6204592B1 (en) 1999-10-12 2001-03-20 Ben Hur Ultrasonic nailing and drilling apparatus
DE69927411T2 (en) 1999-10-15 2006-06-22 Lina Medical Aps An electrosurgical device for coagulating and cutting, a method for separating blood vessels, and a method for coagulating and cutting tissue into or out of tissue
US6356224B1 (en) 1999-10-21 2002-03-12 Credence Systems Corporation Arbitrary waveform generator having programmably configurable architecture
US20030109875A1 (en) 1999-10-22 2003-06-12 Tetzlaff Philip M. Open vessel sealing forceps with disposable electrodes
US6340878B1 (en) 1999-10-22 2002-01-22 Motorola, Inc. Silicon equivalent PTC circuit
US6716215B1 (en) 1999-10-29 2004-04-06 Image-Guided Neurologics Cranial drill with sterile barrier
US6440062B1 (en) 1999-11-10 2002-08-27 Asahi Kogaku Kogyo Kabushiki Kaisha Control wire driving mechanism for use in endoscope
US6443969B1 (en) 2000-08-15 2002-09-03 Misonix, Inc. Ultrasonic cutting blade with cooling
US20050099824A1 (en) 2000-08-04 2005-05-12 Color Kinetics, Inc. Methods and systems for medical lighting
JP2001149374A (en) 1999-11-29 2001-06-05 Asahi Optical Co Ltd Tissue-collection instrument for endoscope
RU2154437C1 (en) 1999-11-30 2000-08-20 Š—Š°Š¾ "Š’Š½ŠøŠøŠ¼Šæ-Š’ŠøтŠ°" Electrosurgical apparatus
US7153312B1 (en) 1999-12-02 2006-12-26 Smith & Nephew Inc. Closure device and method for tissue repair
US6635057B2 (en) 1999-12-02 2003-10-21 Olympus Optical Co. Ltd. Electric operation apparatus
US6352532B1 (en) 1999-12-14 2002-03-05 Ethicon Endo-Surgery, Inc. Active load control of ultrasonic surgical instruments
US6743245B2 (en) 1999-12-20 2004-06-01 Alcon Universal Ltd. Asynchronous method of operating microsurgical instruments
DK176336B1 (en) 1999-12-22 2007-08-20 Asahi Optical Co Ltd Endoscopic tissue collection instrument
US6884252B1 (en) 2000-04-04 2005-04-26 Circuit Tree Medical, Inc. Low frequency cataract fragmenting device
AU2594801A (en) 1999-12-30 2001-07-16 Pearl Technology Holdings, Llc Face-lifting device
US6511493B1 (en) 2000-01-10 2003-01-28 Hydrocision, Inc. Liquid jet-powered surgical instruments
US6702821B2 (en) 2000-01-14 2004-03-09 The Bonutti 2003 Trust A Instrumentation for minimally invasive joint replacement and methods for using same
US6416469B1 (en) 2000-01-26 2002-07-09 Genzyme Corporation Suture organizing and retaining device and base member for surgical retractor
DE20001340U1 (en) 2000-01-27 2000-03-30 Gersmann Achim Frameless belt clasp
US6589239B2 (en) 2000-02-01 2003-07-08 Ashok C. Khandkar Electrosurgical knife
US20020002377A1 (en) 2000-02-01 2002-01-03 Cimino William W. Aluminum ultrasonic surgical applicator and method of making such an applicator
SE0000344D0 (en) 2000-02-02 2000-02-02 Sudhir Chowdhury Disinfection of water
JP2002186901A (en) 2000-12-21 2002-07-02 Olympus Optical Co Ltd Ultrasonic surgical equipment
US6564806B1 (en) 2000-02-18 2003-05-20 Thomas J. Fogarty Device for accurately marking tissue
US6629974B2 (en) 2000-02-22 2003-10-07 Gyrus Medical Limited Tissue treatment method
US6723091B2 (en) 2000-02-22 2004-04-20 Gyrus Medical Limited Tissue resurfacing
WO2001062173A2 (en) 2000-02-25 2001-08-30 The Board Of Trustees Of The Leland Stanford Junior University Methods and apparatuses for maintaining a trajectory in sterotaxi for tracking a target inside a body
US6558385B1 (en) 2000-09-22 2003-05-06 Tissuelink Medical, Inc. Fluid-assisted medical device
US6953461B2 (en) 2002-05-16 2005-10-11 Tissuelink Medical, Inc. Fluid-assisted medical devices, systems and methods
US8048070B2 (en) 2000-03-06 2011-11-01 Salient Surgical Technologies, Inc. Fluid-assisted medical devices, systems and methods
US6506208B2 (en) 2000-03-06 2003-01-14 Robert B. Hunt Surgical instrument
US6428539B1 (en) 2000-03-09 2002-08-06 Origin Medsystems, Inc. Apparatus and method for minimally invasive surgery using rotational cutting tool
WO2001067970A1 (en) 2000-03-15 2001-09-20 Bioaccess, Inc. Orthopedic medical device
DE20004812U1 (en) 2000-03-16 2000-09-28 Knop Christian Endoscopic expanding pliers
AR028271A1 (en) 2000-03-24 2003-04-30 Kimberly Clark Co A SYSTEM FOR A HYGIENIC PRODUCT AND A PAD FOR WOMEN'S HYGIENE THAT UNDERSTANDS THIS SYSTEM
US6926712B2 (en) 2000-03-24 2005-08-09 Boston Scientific Scimed, Inc. Clamp having at least one malleable clamp member and surgical method employing the same
US6423082B1 (en) 2000-03-31 2002-07-23 Ethicon Endo-Surgery, Inc. Ultrasonic surgical blade with improved cutting and coagulation features
US6623501B2 (en) 2000-04-05 2003-09-23 Therasense, Inc. Reusable ceramic skin-piercing device
FR2807827B1 (en) 2000-04-12 2002-07-05 Technomed Medical Systems FLUID HANDLING SYSTEM FOR THERAPY APPARATUS
US6984220B2 (en) 2000-04-12 2006-01-10 Wuchinich David G Longitudinal-torsional ultrasonic tissue dissection
EP1278471B1 (en) 2000-04-27 2005-06-15 Medtronic, Inc. Vibration sensitive ablation apparatus
WO2001082811A1 (en) 2000-04-27 2001-11-08 Medtronic, Inc. System and method for assessing transmurality of ablation lesions
US20020107514A1 (en) 2000-04-27 2002-08-08 Hooven Michael D. Transmural ablation device with parallel jaws
JP4754148B2 (en) 2000-05-16 2011-08-24 ć‚¢ćƒˆćƒŖć‚Ŗ惋惃ć‚Æć‚¹ćƒ»ć‚¤ćƒ³ć‚³ćƒ¼ćƒćƒ¬ć‚¤ćƒ†ćƒƒćƒ‰ Apparatus and method for incorporating an ultrasonic transducer into a delivery member
DE10025352B4 (en) 2000-05-23 2007-09-20 Hilti Ag Tool device with an ultrasonic adapter
USD445092S1 (en) 2000-05-24 2001-07-17 Aten International Co., Ltd. Computer-cord-connector
USD445764S1 (en) 2000-05-24 2001-07-31 Aten International Co., Ltd. Computer-cord-connector
US6602262B2 (en) 2000-06-02 2003-08-05 Scimed Life Systems, Inc. Medical device having linear to rotation control
US20030204188A1 (en) 2001-11-07 2003-10-30 Artemis Medical, Inc. Tissue separating and localizing catheter assembly
DE10028319A1 (en) 2000-06-07 2001-12-13 Endress Hauser Gmbh Co Electromechanical transducer has piezoelectric elements in stack with intermediate contact electrodes in form of flat connecting vanes fed out of flexible circuit board
AU2001270943A1 (en) 2000-06-14 2001-12-24 Harmonia Medical Technologies, INC Surgical instrument and method of using the same
US20020002380A1 (en) 2000-06-30 2002-01-03 Bishop Gregory D. Ultrasonic clamp and coagulation apparatus with tissue support surface
US6558376B2 (en) 2000-06-30 2003-05-06 Gregory D. Bishop Method of use of an ultrasonic clamp and coagulation apparatus with tissue support surface
US6511478B1 (en) 2000-06-30 2003-01-28 Scimed Life Systems, Inc. Medical probe with reduced number of temperature sensor wires
US7235073B2 (en) 2000-07-06 2007-06-26 Ethicon Endo-Surgery, Inc. Cooled electrosurgical forceps
US6746443B1 (en) 2000-07-27 2004-06-08 Intuitive Surgical Inc. Roll-pitch-roll surgical tool
US6761698B2 (en) 2000-07-28 2004-07-13 Olympus Corporation Ultrasonic operation system
JP2003000612A (en) 2001-06-18 2003-01-07 Olympus Optical Co Ltd Energy treating system
US6773443B2 (en) 2000-07-31 2004-08-10 Regents Of The University Of Minnesota Method and apparatus for taking a biopsy
DE20013827U1 (en) 2000-08-10 2001-12-20 Kaltenbach & Voigt Medical or dental treatment instrument with a tool holder in the form of a vibrating rod
JP2002059380A (en) 2000-08-22 2002-02-26 Olympus Optical Co Ltd Master-slave device
US6730080B2 (en) 2000-08-23 2004-05-04 Olympus Corporation Electric operation apparatus
DE10042606A1 (en) 2000-08-30 2001-08-16 Siemens Ag Medical instrument has two interfitting cannulas with curvature altered by twisting by means of cog wheels, or drive mechanism.
US6551309B1 (en) 2000-09-14 2003-04-22 Cryoflex, Inc. Dual action cryoprobe and methods of using the same
IT1318881B1 (en) 2000-09-19 2003-09-10 St Microelectronics Srl HIGH EFFICIENCY PILOTING CIRCUIT FOR CAPACITIVE LOADS.
US20020082621A1 (en) 2000-09-22 2002-06-27 Schurr Marc O. Methods and devices for folding and securing tissue
US6475215B1 (en) 2000-10-12 2002-11-05 Naim Erturk Tanrisever Quantum energy surgical device and method
GB0025427D0 (en) * 2000-10-17 2000-11-29 Young Michael J R Ultrasonic tool mechanism
US6908472B2 (en) 2000-10-20 2005-06-21 Ethicon Endo-Surgery, Inc. Apparatus and method for altering generator functions in an ultrasonic surgical system
US7077853B2 (en) 2000-10-20 2006-07-18 Ethicon Endo-Surgery, Inc. Method for calculating transducer capacitance to determine transducer temperature
USD511145S1 (en) 2000-10-20 2005-11-01 Ethicon Endo-Surgery, Inc. Hand piece switch adapter
US6626926B2 (en) 2000-10-20 2003-09-30 Ethicon Endo-Surgery, Inc. Method for driving an ultrasonic system to improve acquisition of blade resonance frequency at startup
US6945981B2 (en) 2000-10-20 2005-09-20 Ethicon-Endo Surgery, Inc. Finger operated switch for controlling a surgical handpiece
CA2359281C (en) 2000-10-20 2010-12-14 Ethicon Endo-Surgery, Inc. Detection circuitry for surgical handpiece system
US6633234B2 (en) 2000-10-20 2003-10-14 Ethicon Endo-Surgery, Inc. Method for detecting blade breakage using rate and/or impedance information
US6809508B2 (en) 2000-10-20 2004-10-26 Ethicon Endo-Surgery, Inc. Detection circuitry for surgical handpiece system
JP4248781B2 (en) 2000-10-20 2009-04-02 ć‚Øć‚·ć‚³ćƒ³ćƒ»ć‚Øćƒ³ćƒ‰āˆ’ć‚µćƒ¼ć‚ø悧ćƒŖć‚£ćƒ»ć‚¤ćƒ³ć‚³ćƒ¼ćƒćƒ¬ć‚¤ćƒ†ćƒƒćƒ‰ Detection circuit for surgical handpiece system
US20020049551A1 (en) 2000-10-20 2002-04-25 Ethicon Endo-Surgery, Inc. Method for differentiating between burdened and cracked ultrasonically tuned blades
US6480796B2 (en) 2000-10-20 2002-11-12 Ethicon Endo-Surgery, Inc. Method for improving the start up of an ultrasonic system under zero load conditions
US6537291B2 (en) 2000-10-20 2003-03-25 Ethicon Endo-Surgery, Inc. Method for detecting a loose blade in a hand piece connected to an ultrasonic surgical system
US6678621B2 (en) 2000-10-20 2004-01-13 Ethicon Endo-Surgery, Inc. Output displacement control using phase margin in an ultrasonic surgical hand piece
US6679899B2 (en) 2000-10-20 2004-01-20 Ethicon Endo-Surgery, Inc. Method for detecting transverse vibrations in an ultrasonic hand piece
US6662127B2 (en) 2000-10-20 2003-12-09 Ethicon Endo-Surgery, Inc. Method for detecting presence of a blade in an ultrasonic system
US6338657B1 (en) 2000-10-20 2002-01-15 Ethicon Endo-Surgery Hand piece connector
US6623500B1 (en) 2000-10-20 2003-09-23 Ethicon Endo-Surgery, Inc. Ring contact for rotatable connection of switch assembly for use in a surgical system
JP4156231B2 (en) 2000-10-20 2008-09-24 ć‚Øć‚·ć‚³ćƒ³ćƒ»ć‚Øćƒ³ćƒ‰āˆ’ć‚µćƒ¼ć‚ø悧ćƒŖć‚£ćƒ»ć‚¤ćƒ³ć‚³ćƒ¼ćƒćƒ¬ć‚¤ćƒ†ćƒƒćƒ‰ Method for detecting transverse vibrations in an ultrasonic hand piece
US7273483B2 (en) 2000-10-20 2007-09-25 Ethicon Endo-Surgery, Inc. Apparatus and method for alerting generator functions in an ultrasonic surgical system
US6656177B2 (en) 2000-10-23 2003-12-02 Csaba Truckai Electrosurgical systems and techniques for sealing tissue
US6500176B1 (en) 2000-10-23 2002-12-31 Csaba Truckai Electrosurgical systems and techniques for sealing tissue
US6527736B1 (en) 2000-10-23 2003-03-04 Grieshaber & Co. Ag Schaffhausen Device for use in ophthalmologic procedures
JP2002132917A (en) 2000-10-26 2002-05-10 Fujitsu Ltd Printing service method and system, and printer
US6843789B2 (en) 2000-10-31 2005-01-18 Gyrus Medical Limited Electrosurgical system
US6893435B2 (en) 2000-10-31 2005-05-17 Gyrus Medical Limited Electrosurgical system
US20030139741A1 (en) 2000-10-31 2003-07-24 Gyrus Medical Limited Surgical instrument
JP2002143177A (en) 2000-11-07 2002-05-21 Miwatec:Kk Ultrasonic hand piece and ultrasonic horn used therefor
US7267685B2 (en) 2000-11-16 2007-09-11 Cordis Corporation Bilateral extension prosthesis and method of delivery
US6733506B1 (en) 2000-11-16 2004-05-11 Ethicon, Inc. Apparatus and method for attaching soft tissue to bone
CN2460047Y (en) 2000-11-16 2001-11-21 黄偄平 Computer virtual B ultrasonic diagnostic apparatus
US6543452B1 (en) 2000-11-16 2003-04-08 Medilyfe, Inc. Nasal intubation device and system for intubation
IT249046Y1 (en) 2000-12-11 2003-03-25 Optikon 2000 Spa EMULSIFIED TIP FOR OCULISTIC SURGERY, IN PARTICULAR FOR THE PHACOEMULSIFICATION OF CATARACT.
DE60144107D1 (en) 2000-12-20 2011-04-07 Fox Hollow Technologies Inc REDUCTION CATHETER
JP3561234B2 (en) 2000-12-21 2004-09-02 ć‚¢ć‚¤ć‚·ćƒ³ę©Ÿå·„ę Ŗ式会ē¤¾ Ultrasonic generation transmission device
US6690960B2 (en) 2000-12-21 2004-02-10 David T. Chen Video-based surgical targeting system
DE20021619U1 (en) 2000-12-21 2001-03-08 Neumann Anne Kathrin Surgical hand tool, in particular ultrasound scalpel
US8133218B2 (en) 2000-12-28 2012-03-13 Senorx, Inc. Electrosurgical medical system and method
US6840938B1 (en) 2000-12-29 2005-01-11 Intuitive Surgical, Inc. Bipolar cauterizing instrument
US7530986B2 (en) 2001-01-08 2009-05-12 Ethicon Endo-Surgery, Inc. Laminated ultrasonic end effector
EP1363700A4 (en) 2001-01-11 2005-11-09 Rita Medical Systems Inc Bone-treatment instrument and method
US20040138621A1 (en) 2003-01-14 2004-07-15 Jahns Scott E. Devices and methods for interstitial injection of biologic agents into tissue
US6620161B2 (en) 2001-01-24 2003-09-16 Ethicon, Inc. Electrosurgical instrument with an operational sequencing element
US6458128B1 (en) 2001-01-24 2002-10-01 Ethicon, Inc. Electrosurgical instrument with a longitudinal element for conducting RF energy and moving a cutting element
US6554829B2 (en) 2001-01-24 2003-04-29 Ethicon, Inc. Electrosurgical instrument with minimally invasive jaws
US6464702B2 (en) 2001-01-24 2002-10-15 Ethicon, Inc. Electrosurgical instrument with closing tube for conducting RF energy and moving jaws
US20020107517A1 (en) 2001-01-26 2002-08-08 Witt David A. Electrosurgical instrument for coagulation and cutting
US6500188B2 (en) 2001-01-29 2002-12-31 Ethicon Endo-Surgery, Inc. Ultrasonic surgical instrument with finger actuator
US6561983B2 (en) 2001-01-31 2003-05-13 Ethicon Endo-Surgery, Inc. Attachments of components of ultrasonic blades or waveguides
US6835199B2 (en) 2001-01-31 2004-12-28 Rex Medical, L.P. Apparatus and method for resectioning gastro-esophageal tissue
US6752815B2 (en) 2001-01-31 2004-06-22 Ethicon Endo-Surgery, Inc. Method and waveguides for changing the direction of longitudinal vibrations
USD444365S1 (en) 2001-01-31 2001-07-03 Campbell Hausfeld/Scott Fetzer Company Handheld power tool housing and handle
US20040054364A1 (en) 2002-02-08 2004-03-18 Ernest Aranyi Ultrasonic surgical instrument
US20080214967A1 (en) 2004-02-17 2008-09-04 Ernest Aranyi Ultrasonic surgical instrument
EP2000106B1 (en) 2001-02-08 2010-06-09 Tyco Healthcare Group Lp Ultrasonic surgical instrument
US20040097911A1 (en) 2001-02-13 2004-05-20 Olympus Optical Co., Ltd. Ultrasonic operating apparartus and tool for changing tip thereof
JP2002238919A (en) 2001-02-20 2002-08-27 Olympus Optical Co Ltd Control apparatus for medical care system and medical care system
US6533784B2 (en) 2001-02-24 2003-03-18 Csaba Truckai Electrosurgical working end for transecting and sealing tissue
US6383194B1 (en) 2001-02-26 2002-05-07 Viswanadham Pothula Flexible ultrasonic surgical snare
WO2002067798A1 (en) 2001-02-26 2002-09-06 Ntero Surgical, Inc. System and method for reducing post-surgical complications
US6719776B2 (en) 2001-03-01 2004-04-13 Ethicon Endo-Surgery, Inc. Thumb pad actuator for an ultrasonic surgical instrument
JP2002263579A (en) 2001-03-07 2002-09-17 Olympus Optical Co Ltd Ultrasonic transducer drive unit
US6514267B2 (en) 2001-03-26 2003-02-04 Iep Pharmaceutical Devices Inc. Ultrasonic scalpel
US20030014087A1 (en) 2001-03-30 2003-01-16 Neurocontrol Corporation Systems and methods for performing prosthetic or therapeutic neuromuscular stimulation using a programmable universal external controller
US6626848B2 (en) 2001-03-30 2003-09-30 Eric M. Neuenfeldt Method and device to reduce needle insertion force
US8348880B2 (en) 2001-04-04 2013-01-08 Ethicon Endo-Surgery, Inc. Ultrasonic surgical instrument incorporating fluid management
US7473253B2 (en) 2001-04-06 2009-01-06 Covidien Ag Vessel sealer and divider with non-conductive stop members
US7118587B2 (en) 2001-04-06 2006-10-10 Sherwood Services Ag Vessel sealer and divider
ES2240723T3 (en) 2001-04-06 2005-10-16 Sherwood Services Ag MOLDED INSULATING HINGE FOR BIPOLAR INSTRUMENTS.
USD457958S1 (en) 2001-04-06 2002-05-28 Sherwood Services Ag Vessel sealer and divider
US20030229344A1 (en) 2002-01-22 2003-12-11 Dycus Sean T. Vessel sealer and divider and method of manufacturing same
US7101372B2 (en) 2001-04-06 2006-09-05 Sherwood Sevices Ag Vessel sealer and divider
DE60115295T2 (en) 2001-04-06 2006-08-10 Sherwood Services Ag VASILY DEVICE
US7101371B2 (en) 2001-04-06 2006-09-05 Dycus Sean T Vessel sealer and divider
US7083618B2 (en) 2001-04-06 2006-08-01 Sherwood Services Ag Vessel sealer and divider
US7101373B2 (en) 2001-04-06 2006-09-05 Sherwood Services Ag Vessel sealer and divider
US20020151837A1 (en) 2001-04-16 2002-10-17 Surgicon Inc. Surgical irrigation apparatus and methods for use
JP2002306504A (en) 2001-04-18 2002-10-22 Olympus Optical Co Ltd Surgical system
US6994708B2 (en) 2001-04-19 2006-02-07 Intuitive Surgical Robotic tool with monopolar electro-surgical scissors
US6783524B2 (en) 2001-04-19 2004-08-31 Intuitive Surgical, Inc. Robotic surgical tool with ultrasound cauterizing and cutting instrument
US7824401B2 (en) 2004-10-08 2010-11-02 Intuitive Surgical Operations, Inc. Robotic tool with wristed monopolar electrosurgical end effectors
AU2002254712A1 (en) 2001-04-20 2002-11-05 Power Medical Interventions, Inc. Bipolar or ultrasonic surgical device
US7959626B2 (en) 2001-04-26 2011-06-14 Medtronic, Inc. Transmural ablation systems and methods
US6807968B2 (en) 2001-04-26 2004-10-26 Medtronic, Inc. Method and system for treatment of atrial tachyarrhythmias
US6699240B2 (en) 2001-04-26 2004-03-02 Medtronic, Inc. Method and apparatus for tissue ablation
US6913579B2 (en) 2001-05-01 2005-07-05 Surgrx, Inc. Electrosurgical working end and method for obtaining tissue samples for biopsy
US6531846B1 (en) 2001-05-03 2003-03-11 National Semiconductor Corporation Final discharge of a cell activated by a circuit that senses when a charging fault has occurred
US20020165577A1 (en) * 2001-05-04 2002-11-07 Ethicon Endo-Surgery, Inc. Easily detachable ultrasonic clamping device
CN100518685C (en) 2001-05-10 2009-07-29 脉ē®”åŠØåŠ›č‚”ä»½ęœ‰é™å…¬åø RF tissue ablation apparatus and method
US6588277B2 (en) 2001-05-21 2003-07-08 Ethicon Endo-Surgery Method for detecting transverse mode vibrations in an ultrasonic hand piece/blade
US6656198B2 (en) 2001-06-01 2003-12-02 Ethicon-Endo Surgery, Inc. Trocar with reinforced obturator shaft
ES2333037T3 (en) 2001-06-01 2010-02-16 Covidien Ag CABLE CONNECTOR OF A RETURN PAD.
US8052672B2 (en) 2001-06-06 2011-11-08 LENR Solutions, Inc. Fat removal and nerve protection device and method
US11229472B2 (en) 2001-06-12 2022-01-25 Cilag Gmbh International Modular battery powered handheld surgical instrument with multiple magnetic position sensors
JP2003010201A (en) 2001-06-27 2003-01-14 Pentax Corp Ultrasonic therapeutic instrument
US6817974B2 (en) 2001-06-29 2004-11-16 Intuitive Surgical, Inc. Surgical tool having positively positionable tendon-actuated multi-disk wrist joint
WO2003001988A2 (en) 2001-06-29 2003-01-09 The Trustees Of Columbia University In City Of New York Tripod knife for venous access
EP1408846B1 (en) 2001-06-29 2012-03-07 Intuitive Surgical Operations, Inc. Platform link wrist mechanism
US20040243147A1 (en) 2001-07-03 2004-12-02 Lipow Kenneth I. Surgical robot and robotic controller
US6740079B1 (en) 2001-07-12 2004-05-25 Neothermia Corporation Electrosurgical generator
US6923804B2 (en) 2001-07-12 2005-08-02 Neothermia Corporation Electrosurgical generator
US6678899B2 (en) 2001-07-20 2004-01-20 Mizuno Corporation Chest protector
US7037255B2 (en) 2001-07-27 2006-05-02 Ams Research Corporation Surgical instruments for addressing pelvic disorders
IL144638A (en) 2001-07-30 2005-12-18 Nano Size Ltd High power ultrasound reactor for the production of nano-powder materials
US6778023B2 (en) 2001-07-31 2004-08-17 Nokia Corporation Tunable filter and method of tuning a filter
WO2003013374A1 (en) 2001-08-06 2003-02-20 Penn State Research Foundation Multifunctional tool and method for minimally invasive surgery
RU2201163C1 (en) 2001-08-16 2003-03-27 ŠšŠµŠ¼ŠµŃ€Š¾Š²ŃŠŗŠ°Ń Š³Š¾Ń€Š¾Š“сŠŗŠ°Ń ŠŗŠ»ŠøŠ½ŠøчŠµŃŠŗŠ°Ń Š±Š¾Š»ŃŒŠ½ŠøцŠ° ā„– 3 ŠøŠ¼. Šœ.Š. ŠŸŠ¾Š“Š³Š¾Ń€Š±ŃƒŠ½ŃŠŗŠ¾Š³Š¾ Method for substituting dura mater defect
US20030040758A1 (en) 2001-08-21 2003-02-27 Yulun Wang Robotically controlled surgical instrument, visual force-feedback
WO2004078051A2 (en) 2001-08-27 2004-09-16 Gyrus Medial Limited Electrosurgical system
US7282048B2 (en) 2001-08-27 2007-10-16 Gyrus Medical Limited Electrosurgical generator and system
US6808525B2 (en) 2001-08-27 2004-10-26 Gyrus Medical, Inc. Bipolar electrosurgical hook probe for cutting and coagulating tissue
DE60239778D1 (en) 2001-08-27 2011-06-01 Gyrus Medical Ltd Electrosurgical device
US6994709B2 (en) 2001-08-30 2006-02-07 Olympus Corporation Treatment device for tissue from living tissues
US7229455B2 (en) 2001-09-03 2007-06-12 Olympus Corporation Ultrasonic calculus treatment apparatus
NL1018874C2 (en) 2001-09-03 2003-03-05 Michel Petronella Hub Vleugels Surgical instrument.
AU2002339884A1 (en) 2001-09-05 2003-03-18 Tissuelink Medical, Inc. Fluid assisted medical devices, fluid delivery systems and controllers for such devices, and methods
US20030050572A1 (en) 2001-09-07 2003-03-13 Brautigam Robert T. Specimen retrieving needle
US6802843B2 (en) 2001-09-13 2004-10-12 Csaba Truckai Electrosurgical working end with resistive gradient electrodes
US6773434B2 (en) 2001-09-18 2004-08-10 Ethicon, Inc. Combination bipolar forceps and scissors instrument
US6773409B2 (en) * 2001-09-19 2004-08-10 Surgrx Llc Surgical system for applying ultrasonic energy to tissue
GB2379878B (en) 2001-09-21 2004-11-10 Gyrus Medical Ltd Electrosurgical system and method
CN100450456C (en) 2001-09-28 2009-01-14 é”č¾¾åŒ»ē–—ē³»ē»Ÿå…¬åø Impedance controlled tissue ablation apparatus and method
US6616661B2 (en) 2001-09-28 2003-09-09 Ethicon, Inc. Surgical device for clamping, ligating, and severing tissue
US7166103B2 (en) 2001-10-01 2007-01-23 Electrosurgery Associates, Llc High efficiency electrosurgical ablator with electrode subjected to oscillatory or other repetitive motion
TW550063B (en) 2001-10-04 2003-09-01 George H Gibbens Iii Cycling suturing and knot-tying device
EP2550920B1 (en) 2001-10-05 2015-01-28 Covidien LP Surgical stapling apparatus adjustment method
US7796969B2 (en) 2001-10-10 2010-09-14 Peregrine Semiconductor Corporation Symmetrically and asymmetrically stacked transistor group RF switch
AU2002351481B2 (en) 2001-10-11 2008-05-08 Covidien Lp Long ultrasonic cutting blade formed of laminated smaller blades
JP2003126110A (en) 2001-10-24 2003-05-07 Olympus Optical Co Ltd Ultrasonic treatment equipment
US20050267464A1 (en) 2001-10-18 2005-12-01 Surgrx, Inc. Electrosurgical instrument and method of use
US6929644B2 (en) 2001-10-22 2005-08-16 Surgrx Inc. Electrosurgical jaw structure for controlled energy delivery
US7070597B2 (en) 2001-10-18 2006-07-04 Surgrx, Inc. Electrosurgical working end for controlled energy delivery
US6685703B2 (en) 2001-10-19 2004-02-03 Scimed Life Systems, Inc. Generator and probe adapter
US7125409B2 (en) 2001-10-22 2006-10-24 Surgrx, Inc. Electrosurgical working end for controlled energy delivery
US20040098010A1 (en) 2001-10-22 2004-05-20 Glenn Davison Confuser crown skin pricker
US6770072B1 (en) 2001-10-22 2004-08-03 Surgrx, Inc. Electrosurgical jaw structure for controlled energy delivery
US7041102B2 (en) 2001-10-22 2006-05-09 Surgrx, Inc. Electrosurgical working end with replaceable cartridges
US7311709B2 (en) 2001-10-22 2007-12-25 Surgrx, Inc. Electrosurgical instrument and method of use
US20060293656A1 (en) 2001-10-22 2006-12-28 Shadduck John H Electrosurgical instrument and method of use
US8075558B2 (en) 2002-04-30 2011-12-13 Surgrx, Inc. Electrosurgical instrument and method
US7517349B2 (en) 2001-10-22 2009-04-14 Vnus Medical Technologies, Inc. Electrosurgical instrument and method
US6926716B2 (en) 2001-11-09 2005-08-09 Surgrx Inc. Electrosurgical instrument
US7189233B2 (en) 2001-10-22 2007-03-13 Surgrx, Inc. Electrosurgical instrument
US7011657B2 (en) 2001-10-22 2006-03-14 Surgrx, Inc. Jaw structure for electrosurgical instrument and method of use
US6905497B2 (en) 2001-10-22 2005-06-14 Surgrx, Inc. Jaw structure for electrosurgical instrument
US7354440B2 (en) 2001-10-22 2008-04-08 Surgrx, Inc. Electrosurgical instrument and method of use
US7083619B2 (en) 2001-10-22 2006-08-01 Surgrx, Inc. Electrosurgical instrument and method of use
JP2003126104A (en) 2001-10-23 2003-05-07 Olympus Optical Co Ltd Ultrasonic incision apparatus
EP1482818A4 (en) 2001-10-24 2009-02-11 Stephen L M D Tillim A handle/grip and method for designing the like
JP3758554B2 (en) 2001-10-31 2006-03-22 ć‚½ćƒ‹ćƒ¼ę Ŗ式会ē¤¾ Information providing system, information providing method, storage medium, and computer program
JP3676997B2 (en) 2001-11-07 2005-07-27 ę Ŗ式会ē¤¾å²³å°† Spindle structure of ultrasonic processing machine and support horn used therefor
ES2386776T3 (en) * 2001-11-07 2012-08-30 Ethicon Endo-Surgery, Inc. Apparatus with clamp-type ultrasonic coagulator with improved tightening end effector
US7686770B2 (en) 2005-10-14 2010-03-30 Microfabrica Inc. Discrete or continuous tissue capture device and method for making
US6719765B2 (en) 2001-12-03 2004-04-13 Bonutti 2003 Trust-A Magnetic suturing system and method
US7753908B2 (en) 2002-02-19 2010-07-13 Endoscopic Technologies, Inc. (Estech) Apparatus for securing an electrophysiology probe to a clamp
US7226448B2 (en) 2001-12-04 2007-06-05 Estech, Inc. (Endoscopic Technologies, Inc.) Cardiac treatment devices and methods
RU22035U1 (en) 2001-12-06 2002-03-10 ŠžŠ±Ń‰ŠµŃŃ‚Š²Š¾ с Š¾Š³Ń€Š°Š½ŠøчŠµŠ½Š½Š¾Š¹ Š¾Ń‚Š²ŠµŃ‚стŠ²ŠµŠ½Š½Š¾ŃŃ‚ŃŒŃŽ "ŠŠ°ŃƒŃ‡Š½Š¾-ŠæрŠ¾ŠøŠ·Š²Š¾Š“стŠ²ŠµŠ½Š½Š¾Šµ Š¾Š±ŃŠŠµŠ“ŠøŠ½ŠµŠ½ŠøŠµ "ŠšŠ°ŃŠŗŠ°Š“-ŠŠ¢Š›" DEVICE FOR COAGULATION AND RESECTION OF BIOLOGICAL TISSUES
US20030114851A1 (en) 2001-12-13 2003-06-19 Csaba Truckai Electrosurgical jaws for controlled application of clamping pressure
US6602252B2 (en) 2002-01-03 2003-08-05 Starion Instruments Corporation Combined dissecting, cauterizing, and stapling device
DE10201569B4 (en) 2002-01-11 2008-12-24 Aesculap Ag Surgical instrument
WO2003061456A2 (en) 2002-01-22 2003-07-31 Sciogen Llc Electrosurgical instrument and method of use
US20030144680A1 (en) 2002-01-22 2003-07-31 Sontra Medical, Inc. Portable ultrasonic scalpel/cautery device
US6676660B2 (en) 2002-01-23 2004-01-13 Ethicon Endo-Surgery, Inc. Feedback light apparatus and method for use with an electrosurgical instrument
US6887209B2 (en) 2002-01-25 2005-05-03 Advanced Medical Optics Pulsed vacuum and/or flow method and apparatus for tissue removal
DE10204487B4 (en) 2002-01-30 2004-03-04 Infineon Technologies Ag temperature sensor
DE10203630A1 (en) 2002-01-30 2003-08-14 Fraunhofer Ges Forschung Sample holder for cryopreservation of biological samples
WO2003068046A2 (en) 2002-02-13 2003-08-21 Applied Medical Resources Corporation Tissue fusion/welder apparatus corporation
US20080177268A1 (en) 2002-02-14 2008-07-24 Wolfgang Daum Minimally-Invasive Approach to Bone-Obstructed Soft Tissue
US6733498B2 (en) 2002-02-19 2004-05-11 Live Tissue Connect, Inc. System and method for control of tissue welding
US20030158548A1 (en) 2002-02-19 2003-08-21 Phan Huy D. Surgical system including clamp and apparatus for securing an energy transmission device to the clamp and method of converting a clamp into an electrophysiology device
US6610059B1 (en) 2002-02-25 2003-08-26 Hs West Investments Llc Endoscopic instruments and methods for improved bubble aspiration at a surgical site
US7041083B2 (en) 2002-02-26 2006-05-09 Scimed Life Systems, Inc. Medical catheter assembly including a removable inner sleeve and method of using the same
US6819027B2 (en) 2002-03-04 2004-11-16 Cepheid Method and apparatus for controlling ultrasonic transducer
US20060259026A1 (en) 2005-05-05 2006-11-16 Baylis Medical Company Inc. Electrosurgical treatment method and device
US7247161B2 (en) 2002-03-22 2007-07-24 Gyrus Ent L.L.C. Powered surgical apparatus, method of manufacturing powered surgical apparatus, and method of using powered surgical apparatus
GB2387782B (en) * 2002-03-28 2004-04-07 Michael John Radley Young Improved surgical tool mechanism
AU2003223580A1 (en) 2002-04-12 2003-10-27 San Diego Swiss Machining, Inc. Ultrasonic microtube dental instruments and methods of using same
US7258688B1 (en) 2002-04-16 2007-08-21 Baylis Medical Company Inc. Computerized electrical signal generator
JP2003305050A (en) 2002-04-17 2003-10-28 Olympus Optical Co Ltd Ultrasonic operation apparatus
US20040030330A1 (en) 2002-04-18 2004-02-12 Brassell James L. Electrosurgery systems
WO2003090630A2 (en) 2002-04-25 2003-11-06 Tyco Healthcare Group, Lp Surgical instruments including micro-electromechanical systems (mems)
US20030204193A1 (en) 2002-04-25 2003-10-30 Stefan Gabriel Suture anchor insertion tool
CA2484635C (en) 2002-05-10 2011-01-04 Tyco Healthcare Group Lp Electrosurgical stapling apparatus
US20030212422A1 (en) 2002-05-13 2003-11-13 Paul Fenton Ultrasonic soft tissue cutting and coagulation systems with movable vibrating probe and fixed receiving clamp
US20030212332A1 (en) 2002-05-13 2003-11-13 Paul Fenton Disposable ultrasonic soft tissue cutting and coagulation systems
US20030212392A1 (en) 2002-05-13 2003-11-13 Paul Fenton Ultrasonic soft tissue cutting and coagulation systems having a curvilinear blade member and clamp
JP4425782B2 (en) 2002-05-13 2010-03-03 ć‚¢ć‚Æć‚·ćƒ¼ć‚¢ ćƒ”ćƒ‡ć‚£ć‚«ćƒ« ć‚¤ćƒ³ć‚³ćƒ¼ćƒćƒ¬ć‚¤ćƒ†ćƒƒćƒ‰ Ultrasound system for soft tissue cutting and coagulation
GB2388741B (en) 2002-05-17 2004-06-30 Morgan Crucible Co Transducer assembly
US6814731B2 (en) 2002-05-20 2004-11-09 Scimed Life Systems, Inc. Methods for RF ablation using jet injection of conductive fluid
JP2004000336A (en) 2002-05-31 2004-01-08 Olympus Corp Ultrasonic treatment apparatus
US6543456B1 (en) 2002-05-31 2003-04-08 Ethicon Endo-Surgery, Inc. Method for minimally invasive surgery in the digestive system
US20060159731A1 (en) 2002-06-03 2006-07-20 Yissum Research Development Company Of The Hebrew University Of Jerusalem Multi-layer collagenic article useful for wounds healing and a method for its production thereof
JP4808961B2 (en) 2002-06-04 2011-11-02 ć‚Ŗćƒ•ć‚£ć‚¹ ć‚Ŗ惖 惆ć‚Æ惎惭ć‚øćƒ¼ ćƒ©ć‚¤ć‚»ćƒ³ć‚·ćƒ³ć‚° ć‚¹ć‚æćƒ³ćƒ•ć‚©ćƒ¼ćƒ‰ ćƒ¦ćƒ‹ćƒćƒ¼ć‚·ćƒ†ć‚£ Device for rapidly aspirating and collecting body tissue from an encapsulated body space
WO2003101531A2 (en) 2002-06-04 2003-12-11 Sound Surgical Technologies, Llc Ultrasonic device and method for tissue coagulation
US7066893B2 (en) 2002-06-06 2006-06-27 Ethicon Endo-Surgery, Inc. Biopsy method
US6855140B2 (en) 2002-06-06 2005-02-15 Thomas E. Albrecht Method of tissue lesion removal
US7153315B2 (en) 2002-06-11 2006-12-26 Boston Scientific Scimed, Inc. Catheter balloon with ultrasonic microscalpel blades
US6837847B2 (en) 2002-06-13 2005-01-04 Usgi Medical, Inc. Shape lockable apparatus and method for advancing an instrument through unsupported anatomy
RU2284160C2 (en) 2002-06-24 2006-09-27 ŠŃ€ŠŗŠ°Š“ŠøŠ¹ Š’ŠµŠ½ŠøŠ°Š¼ŠøŠ½Š¾Š²Šøч Š”ŃƒŠ±Ń€Š¾Š²ŃŠŗŠøŠ¹ Device for rotating remote control instrument
AUPS322702A0 (en) 2002-06-28 2002-07-18 Cochlear Limited Cochlear implant electrode array
US7033356B2 (en) 2002-07-02 2006-04-25 Gyrus Medical, Inc. Bipolar electrosurgical instrument for cutting desiccating and sealing tissue
US7331410B2 (en) 2002-07-03 2008-02-19 Smith International, Inc. Drill bit arcuate-shaped inserts with cutting edges and method of manufacture
JP2005532869A (en) 2002-07-13 2005-11-04 ć‚¹ćƒˆćƒ©ć‚¤ć‚«ćƒ¼ćƒ»ć‚³ćƒ¼ćƒćƒ¬ćƒ¼ć‚·ćƒ§ćƒ³ Nose and throat cleaning system and cleaning method
US6958071B2 (en) 2002-07-13 2005-10-25 Stryker Corporation Surgical tool system
US6929622B2 (en) 2002-07-15 2005-08-16 Lai-Wen Chian Safety syringe cylinder
US20040047485A1 (en) 2002-07-16 2004-03-11 Stewart Sherrit Folded horns for vibration actuators
US7060075B2 (en) 2002-07-18 2006-06-13 Biosense, Inc. Distal targeting of locking screws in intramedullary nails
JP2004057588A (en) 2002-07-30 2004-02-26 Olympus Corp Surgical treatment instrument
WO2004011037A2 (en) 2002-07-31 2004-02-05 Tyco Heathcare Group, Lp Tool member cover and cover deployment device
WO2004012615A1 (en) 2002-08-02 2004-02-12 Olympus Corporation Ultrasonic treatment apparatus
US20040030254A1 (en) 2002-08-07 2004-02-12 Eilaz Babaev Device and method for ultrasound wound debridement
AU2003257309A1 (en) 2002-08-13 2004-02-25 Microbotics Corporation Microsurgical robot system
US20040176751A1 (en) 2002-08-14 2004-09-09 Endovia Medical, Inc. Robotic medical instrument system
US20040132383A1 (en) 2002-08-14 2004-07-08 Langford Mark A. Fluid jet cutting system
JP2004073582A (en) 2002-08-20 2004-03-11 Olympus Corp Vital tissue abscise tool
US8986297B2 (en) 2002-08-21 2015-03-24 Resect Medical, Inc. Thermal hemostasis and/or coagulation of tissue
US6942677B2 (en) 2003-02-26 2005-09-13 Flowcardia, Inc. Ultrasound catheter apparatus
DE10241702A1 (en) 2002-09-09 2004-03-18 Berchtold Holding Gmbh ultrasonic instrument
USD490059S1 (en) 2002-09-09 2004-05-18 Thermal Dynamics Corporation Connector adapter
US20040064151A1 (en) 2002-09-27 2004-04-01 Starion Instruments Corporation Ultrasonic forceps
US7465838B2 (en) 2002-10-01 2008-12-16 Ciba Specialty Chemical Corp. Chiral diols, their manufacture and ligands and catalysts derived therefrom
US7087054B2 (en) 2002-10-01 2006-08-08 Surgrx, Inc. Electrosurgical instrument and method of use
ATE416707T1 (en) 2002-10-02 2008-12-15 Olympus Corp OPERATIONAL SYSTEM WITH MULTIPLE MEDICAL DEVICES AND MULTIPLE REMOTE CONTROLS
DE60322450D1 (en) 2002-10-04 2008-09-04 Tyco Healthcare Surgical stapler with an articulated coupling and a clamping device
US7931649B2 (en) 2002-10-04 2011-04-26 Tyco Healthcare Group Lp Vessel sealing instrument with electrical cutting mechanism
ES2289334T3 (en) 2002-10-04 2008-02-01 Tyco Healthcare Group Lp TOOL ASSEMBLY FOR SURGICAL STAPLING DEVICE.
USD477408S1 (en) 2002-10-04 2003-07-15 Conmed Corporation Electrosurgical generator
ES2337248T3 (en) 2002-10-04 2010-04-22 Tyco Healthcare Group Lp TOOL ASSEMBLY FOR A SURGICAL STAPLING DEVICE.
JP2004129871A (en) 2002-10-10 2004-04-30 Olympus Corp Ultrasonic operating device
US7041088B2 (en) 2002-10-11 2006-05-09 Ethicon, Inc. Medical devices having durable and lubricious polymeric coating
US7682366B2 (en) 2002-10-16 2010-03-23 Olympus Corporation Calculus manipulation apparatus
US20040147934A1 (en) 2002-10-18 2004-07-29 Kiester P. Douglas Oscillating, steerable, surgical burring tool and method of using the same
US20040092921A1 (en) 2002-10-21 2004-05-13 Kadziauskas Kenneth E. System and method for pulsed ultrasonic power delivery employing cavitation effects
US20040092992A1 (en) 2002-10-23 2004-05-13 Kenneth Adams Disposable battery powered rotary tissue cutting instruments and methods therefor
JP2003116870A (en) 2002-10-23 2003-04-22 Miwatec:Kk Ultrasonic hand piece and ultrasonic horn used for this
US8162966B2 (en) 2002-10-25 2012-04-24 Hydrocision, Inc. Surgical devices incorporating liquid jet assisted tissue manipulation and methods for their use
AU2003301525A1 (en) 2002-10-25 2004-05-13 Hydrocision, Inc. Surgical devices incorporating liquid jet assisted tissue manipulation and methods for their use
JP4086621B2 (en) 2002-10-28 2008-05-14 ę Ŗ式会ē¤¾ćƒˆćƒƒćƒ— Surgical instrument handle structure
US7083620B2 (en) 2002-10-30 2006-08-01 Medtronic, Inc. Electrosurgical hemostat
US7678125B2 (en) 2002-11-12 2010-03-16 Apollo Camera, L.L.C. Surgical ligation clip
US6786383B2 (en) 2002-11-14 2004-09-07 Kimberly-Clark Worldwide, Inc. Ultrasonic horn assembly with fused stack components
US20040097912A1 (en) 2002-11-18 2004-05-20 Gonnering Wayne J. Electrosurgical generator and method with removable front panel having replaceable electrical connection sockets and illuminated receptacles
US6835082B2 (en) 2002-11-18 2004-12-28 Conmed Corporation Monopolar electrosurgical multi-plug connector device and method which accepts multiple different connector plugs
US6942660B2 (en) 2002-11-19 2005-09-13 Conmed Corporation Electrosurgical generator and method with multiple semi-autonomously executable functions
US6948503B2 (en) 2002-11-19 2005-09-27 Conmed Corporation Electrosurgical generator and method for cross-checking output power
US6905499B1 (en) 2002-11-26 2005-06-14 Thermal Corp. Heat pipe for cautery surgical Instrument
US7390317B2 (en) 2002-12-02 2008-06-24 Applied Medical Resources Corporation Universal access seal
JP4095919B2 (en) 2002-12-09 2008-06-04 ć‚øćƒ³ćƒžćƒ¼ę Ŗ式会ē¤¾ Measuring device for total knee replacement surgery
US7217128B2 (en) 2002-12-12 2007-05-15 Discus Dental Impressions, Inc. Ultrasonic dental insert having interchangeable plastic and metal tips
US8057468B2 (en) 2002-12-17 2011-11-15 Bovie Medical Corporation Method to generate a plasma stream for performing electrosurgery
US20040176686A1 (en) 2002-12-23 2004-09-09 Omnisonics Medical Technologies, Inc. Apparatus and method for ultrasonic medical device with improved visibility in imaging procedures
US6875220B2 (en) 2002-12-30 2005-04-05 Cybersonics, Inc. Dual probe
US8454639B2 (en) 2002-12-30 2013-06-04 Cybersonics, Inc. Dual probe with floating inner probe
US6926717B1 (en) 2003-01-14 2005-08-09 Jon C. Garito Electrosurgical breast electrode
US7287682B1 (en) 2003-01-20 2007-10-30 Hazem Ezzat Surgical device and method
US20040142667A1 (en) 2003-01-21 2004-07-22 Lochhead Donald Laird Method of correcting distortion in a power amplifier
US6899685B2 (en) 2003-01-24 2005-05-31 Acueity, Inc. Biopsy device
US20040158237A1 (en) 2003-02-11 2004-08-12 Marwan Abboud Multi-energy ablation station
JP2004248368A (en) 2003-02-12 2004-09-02 Asmo Co Ltd Ultrasonic motor and manufacturing method thereof
US7357802B2 (en) 2003-02-14 2008-04-15 The Board Of Trustees Of The Leland Stanford Junior University Electrosurgical system with uniformly enhanced electric field and minimal collateral damage
US7169146B2 (en) 2003-02-14 2007-01-30 Surgrx, Inc. Electrosurgical probe and method of use
JP4829100B2 (en) 2003-02-20 2011-11-30 ć‚³ćƒ“ć‚£ćƒ‡ć‚£ć‚Øćƒ³ćƒ»ć‚¢ć‚Æćƒć‚§ćƒ³ć‚²ć‚¼ćƒ«ć‚·ćƒ£ćƒ•ćƒˆ System and method for connecting an electrosurgical instrument to a generator
US7252641B2 (en) 2003-02-25 2007-08-07 Ethicon Endo-Surgery, Inc. Method of operating a biopsy device
EP1603462B1 (en) 2003-02-25 2015-07-15 Devicor Medical Products, Inc. Biopsy device with variable speed cutter advance
US7909820B2 (en) 2003-03-06 2011-03-22 Salient Surgical Technologies, Inc. Electrosurgical generator and bipolar electrosurgical device adaptors
US7077845B2 (en) 2003-03-11 2006-07-18 Arthrex, Inc. Surgical abrader with suction port proximal to bearing
WO2004082495A1 (en) * 2003-03-13 2004-09-30 Sherwood Services Ag Bipolar concentric electrode assembly for soft tissue fusion
US20060064086A1 (en) 2003-03-13 2006-03-23 Darren Odom Bipolar forceps with multiple electrode array end effector assembly
WO2004083797A2 (en) 2003-03-14 2004-09-30 Thermosurgery Technologies, Inc. Hyperthermia treatment system
US20040199192A1 (en) 2003-04-04 2004-10-07 Takayuki Akahoshi Phacoemulsification needle
JP3840194B2 (en) 2003-04-07 2006-11-01 ć‚­ćƒ¤ćƒŽćƒ³ę Ŗ式会ē¤¾ Vibrating knife
US7566318B2 (en) 2003-04-11 2009-07-28 Cardiac Pacemakers, Inc. Ultrasonic subcutaneous dissection tool incorporating fluid delivery
AU2003224930A1 (en) 2003-04-15 2004-11-26 Omnisonics Medical Technologies, Inc. Apparatus and method for preshaped ultrasonic probe
US20040215132A1 (en) 2003-04-22 2004-10-28 Inbae Yoon Spot coagulating & occluding instrument and method of use
EP1617776B1 (en) 2003-05-01 2015-09-02 Covidien AG System for programing and controlling an electrosurgical generator system
US8128624B2 (en) 2003-05-01 2012-03-06 Covidien Ag Electrosurgical instrument that directs energy delivery and protects adjacent tissue
US7160299B2 (en) 2003-05-01 2007-01-09 Sherwood Services Ag Method of fusing biomaterials with radiofrequency energy
EP1617778A2 (en) 2003-05-01 2006-01-25 Sherwood Services AG Electrosurgical instrument which reduces thermal damage to adjacent tissue
WO2004103156A2 (en) 2003-05-15 2004-12-02 Sherwood Services Ag Tissue sealer with non-conductive variable stop members and method of sealing tissue
USD496997S1 (en) 2003-05-15 2004-10-05 Sherwood Services Ag Vessel sealer and divider
US7615005B2 (en) 2003-05-16 2009-11-10 Ethicon Endo-Surgery, Inc. Medical apparatus for use with an endoscope
ES2321390T3 (en) 2003-05-20 2009-06-05 Dsm Ip Assets B.V. NANO-STRUCTURED SURFACE COATING PROCESS, NANO-STRUCTURED COATINGS AND ITEMS THAT UNDERSTAND THE COVERING.
US7380695B2 (en) 2003-05-20 2008-06-03 Ethicon Endo-Surgery, Inc. Surgical stapling instrument having a single lockout mechanism for prevention of firing
US9060770B2 (en) 2003-05-20 2015-06-23 Ethicon Endo-Surgery, Inc. Robotically-driven surgical instrument with E-beam driver
US7380696B2 (en) 2003-05-20 2008-06-03 Ethicon Endo-Surgery, Inc. Articulating surgical stapling instrument incorporating a two-piece E-beam firing mechanism
US6978921B2 (en) 2003-05-20 2005-12-27 Ethicon Endo-Surgery, Inc. Surgical stapling instrument incorporating an E-beam firing mechanism
US7090637B2 (en) 2003-05-23 2006-08-15 Novare Surgical Systems, Inc. Articulating mechanism for remote manipulation of a surgical or diagnostic tool
USD491666S1 (en) 2003-06-03 2004-06-15 Megadyne Medical Products, Inc. Electrosurgical generator
ITVI20030111A1 (en) 2003-06-06 2004-12-07 Telea Electronic Eng Srl ELECTRONIC SCALPEL FOR COAGULATION.
US8172870B2 (en) 2003-06-09 2012-05-08 Microline Surgical, Inc. Ligation clip applier
JP4079266B2 (en) 2003-06-11 2008-04-23 ę Ŗ式会ē¤¾ćƒŖć‚³ćƒ¼ Toner adhesion measuring apparatus and measuring method
US7156846B2 (en) 2003-06-13 2007-01-02 Sherwood Services Ag Vessel sealer and divider for use with small trocars and cannulas
US7150749B2 (en) 2003-06-13 2006-12-19 Sherwood Services Ag Vessel sealer and divider having elongated knife stroke and safety cutting mechanism
US7597693B2 (en) 2003-06-13 2009-10-06 Covidien Ag Vessel sealer and divider for use with small trocars and cannulas
EP1635713B1 (en) 2003-06-17 2012-04-11 Tyco Healthcare Group LP Surgical stapling device
CA2529740C (en) 2003-06-17 2013-12-24 Ethicon Endo-Surgery, Inc. Hand activated ultrasonic instrument
US20040260273A1 (en) 2003-06-18 2004-12-23 Wan Elaine Y. Magnetic surgical instrument system
US20040260300A1 (en) 2003-06-20 2004-12-23 Bogomir Gorensek Method of delivering an implant through an annular defect in an intervertebral disc
MXPA05014141A (en) 2003-06-24 2006-03-09 Healthonics Inc Apparatus and method for bioelectric stimulation, healing acceleration, pain relief, or pathogen devitalization.
US9035741B2 (en) 2003-06-27 2015-05-19 Stryker Corporation Foot-operated control console for wirelessly controlling medical devices
US7066895B2 (en) 2003-06-30 2006-06-27 Ethicon, Inc. Ultrasonic radial focused transducer for pulmonary vein ablation
US7412008B2 (en) 2003-06-30 2008-08-12 Freescale Semiconductor, Inc. Programmable phase mapping and phase rotation modulator and method
US7128720B2 (en) 2003-06-30 2006-10-31 Ethicon, Inc. Ultrasonic finger probe
US7037306B2 (en) 2003-06-30 2006-05-02 Ethicon, Inc. System for creating linear lesions for the treatment of atrial fibrillation
US7074218B2 (en) 2003-06-30 2006-07-11 Ethicon, Inc. Multi-modality ablation device
JP4206843B2 (en) 2003-07-02 2009-01-14 ć‚¢ć‚¤ć‚·ćƒ³ćƒ»ć‚Øć‚£ćƒ»ćƒ€ćƒ–ćƒŖ惄ę Ŗ式会ē¤¾ Navigation device
JP2005027907A (en) 2003-07-07 2005-02-03 Olympus Corp Ultrasonic surgery system and probe
US6786382B1 (en) 2003-07-09 2004-09-07 Ethicon Endo-Surgery, Inc. Surgical stapling instrument incorporating an articulation joint for a firing bar track
US7111769B2 (en) 2003-07-09 2006-09-26 Ethicon Endo-Surgery, Inc. Surgical instrument incorporating an articulation mechanism having rotation about the longitudinal axis
US7055731B2 (en) 2003-07-09 2006-06-06 Ethicon Endo-Surgery Inc. Surgical stapling instrument incorporating a tapered firing bar for increased flexibility around the articulation joint
US6981628B2 (en) 2003-07-09 2006-01-03 Ethicon Endo-Surgery, Inc. Surgical instrument with a lateral-moving articulation control
JP3895709B2 (en) 2003-07-10 2007-03-22 ć‚ŖćƒŖćƒ³ćƒ‘ć‚¹ę Ŗ式会ē¤¾ Ultrasonic coagulation / cutting device and control method of ultrasonic coagulation / cutting device
JP4130385B2 (en) 2003-07-23 2008-08-06 ē‹¬ē«‹č”Œę”æę³•äŗŗē§‘å­¦ęŠ€č”“ęŒÆčˆˆę©Ÿę§‹ Method for producing single-walled carbon nanotube containing guest molecule
JP2005040222A (en) 2003-07-24 2005-02-17 Olympus Corp Ultrasonic treatment apparatus
US7144403B2 (en) 2003-07-29 2006-12-05 Alcon, Inc. Surgical knife
JP4128496B2 (en) 2003-07-30 2008-07-30 ć‚ŖćƒŖćƒ³ćƒ‘ć‚¹ę Ŗ式会ē¤¾ Ultrasonic treatment device
JP4472395B2 (en) 2003-08-07 2010-06-02 ć‚ŖćƒŖćƒ³ćƒ‘ć‚¹ę Ŗ式会ē¤¾ Ultrasonic surgery system
US6915623B2 (en) 2003-08-14 2005-07-12 Ethicon, Inc. Method for assembling a package for sutures
US7951165B2 (en) 2003-08-18 2011-05-31 Boston Scientific Scimed, Inc. Endoscopic medical instrument and related methods of use
JP4612545B2 (en) 2003-08-19 2011-01-12 ęœ‰é™ä¼šē¤¾ćƒŖćƒćƒ¼ē²¾å·„ Bipolar high frequency treatment tool
JP2005058616A (en) 2003-08-19 2005-03-10 Olympus Corp Control device for medical system and method of control for medical system
JP4217134B2 (en) 2003-08-28 2009-01-28 ć‚ŖćƒŖćƒ³ćƒ‘ć‚¹ę Ŗ式会ē¤¾ Switch control device
JP3999715B2 (en) 2003-08-28 2007-10-31 ć‚ŖćƒŖćƒ³ćƒ‘ć‚¹ę Ŗ式会ē¤¾ Ultrasonic treatment device
JP2005074088A (en) 2003-09-02 2005-03-24 Olympus Corp Ultrasonic treating instrument
US7578820B2 (en) 2003-09-02 2009-08-25 Moore Jeffrey D Devices and techniques for a minimally invasive disc space preparation and implant insertion
EP1514518A1 (en) 2003-09-11 2005-03-16 SDGI Holdings, Inc. Impulsive percussion instruments for endplate preparation
US9168085B2 (en) 2006-09-29 2015-10-27 Baylis Medical Company Inc. Monitoring and controlling energy delivery of an electrosurgical device
US7083075B2 (en) 2003-09-29 2006-08-01 Ethicon Endo-Surgery, Inc. Multi-stroke mechanism with automatic end of stroke retraction
JP4129217B2 (en) 2003-09-29 2008-08-06 ć‚ŖćƒŖćƒ³ćƒ‘ć‚¹ę Ŗ式会ē¤¾ Ultrasonic surgery system, abnormality detection method and abnormality detection program thereof
US7135018B2 (en) 2003-09-30 2006-11-14 Ethicon, Inc. Electrosurgical instrument and method for transecting an organ
US6746284B1 (en) 2003-10-02 2004-06-08 Hon Hai Precision Ind. Co., Ltd. Electrical connector assembly having signal and power terminals
JP4391788B2 (en) 2003-10-03 2009-12-24 ć‚ŖćƒŖćƒ³ćƒ‘ć‚¹ę Ŗ式会ē¤¾ Medical system control device
US8357103B2 (en) 2003-10-14 2013-01-22 Suros Surgical Systems, Inc. Vacuum assisted biopsy needle set
AU2004281832B2 (en) 2003-10-17 2010-11-18 Covidien Lp Surgical stapling device with independent tip rotation
USD509589S1 (en) 2003-10-17 2005-09-13 Tyco Healthcare Group, Lp Handle for surgical instrument
US10105140B2 (en) 2009-11-20 2018-10-23 Covidien Lp Surgical console and hand-held surgical device
US20090090763A1 (en) 2007-10-05 2009-04-09 Tyco Healthcare Group Lp Powered surgical stapling device
US7572266B2 (en) 2003-10-21 2009-08-11 Young Wayne P Clip applier tool having a discharge configuration
US20050090817A1 (en) 2003-10-22 2005-04-28 Scimed Life Systems, Inc. Bendable endoscopic bipolar device
WO2005039395A2 (en) 2003-10-23 2005-05-06 Board Of Supervisors Of Louisiana State University And Agricultural And Mechanical College Sonic and ultrasonic surgical tips
JP2007509717A (en) 2003-10-28 2007-04-19 悶 ćƒ¦ćƒ¼ć‚Øćƒ¼ćƒ“ćƒ¼ ćƒŖć‚µćƒ¼ćƒ ćƒ•ć‚”ć‚¦ćƒ³ćƒ‡ćƒ¼ć‚·ćƒ§ćƒ³ Electrosurgical control system
KR20050040451A (en) 2003-10-28 2005-05-03 ģ‚¼ģ„±ģ „ģžģ£¼ģ‹ķšŒģ‚¬ Mobile terminal equipment having radio frequency identification function and programming method thereof
US7686826B2 (en) 2003-10-30 2010-03-30 Cambridge Endoscopic Devices, Inc. Surgical instrument
US20050096683A1 (en) 2003-11-01 2005-05-05 Medtronic, Inc. Using thinner laminations to reduce operating temperature in a high speed hand-held surgical power tool
US6979332B2 (en) 2003-11-04 2005-12-27 Medtronic, Inc. Surgical micro-resecting instrument with electrocautery and continuous aspiration features
US7163548B2 (en) 2003-11-05 2007-01-16 Ethicon Endo-Surgery, Inc Ultrasonic surgical blade and instrument having a gain step
JP4614965B2 (en) 2003-11-12 2011-01-19 ć‚¢ćƒ—ćƒ©ć‚¤ćƒ‰ ćƒ”ćƒ‡ć‚£ć‚«ćƒ« ćƒŖć‚½ćƒ¼ć‚·ćƒ¼ć‚ŗ ć‚³ćƒ¼ćƒćƒ¬ć‚¤ć‚·ćƒ§ćƒ³ Overmold gripping jaw
US20050107777A1 (en) 2003-11-13 2005-05-19 West Hugh S.Jr. Parallel wire ablator
US7232440B2 (en) 2003-11-17 2007-06-19 Sherwood Services Ag Bipolar forceps having monopolar extension
US7367976B2 (en) 2003-11-17 2008-05-06 Sherwood Services Ag Bipolar forceps having monopolar extension
US7811283B2 (en) 2003-11-19 2010-10-12 Covidien Ag Open vessel sealing instrument with hourglass cutting mechanism and over-ratchet safety
US7241294B2 (en) 2003-11-19 2007-07-10 Sherwood Services Ag Pistol grip electrosurgical pencil with manual aspirator/irrigator and methods of using the same
US7309849B2 (en) 2003-11-19 2007-12-18 Surgrx, Inc. Polymer compositions exhibiting a PTC property and methods of fabrication
US7252667B2 (en) 2003-11-19 2007-08-07 Sherwood Services Ag Open vessel sealing instrument with cutting mechanism and distal lockout
US7131970B2 (en) 2003-11-19 2006-11-07 Sherwood Services Ag Open vessel sealing instrument with cutting mechanism
US7131860B2 (en) 2003-11-20 2006-11-07 Sherwood Services Ag Connector systems for electrosurgical generator
US7879033B2 (en) 2003-11-20 2011-02-01 Covidien Ag Electrosurgical pencil with advanced ES controls
US7442193B2 (en) 2003-11-20 2008-10-28 Covidien Ag Electrically conductive/insulative over-shoe for tissue fusion
US7300435B2 (en) 2003-11-21 2007-11-27 Sherwood Services Ag Automatic control system for an electrosurgical generator
US7431720B2 (en) 2003-11-25 2008-10-07 Ethicon, Inc. Multi-function clamping device with stapler and ablation heads
US7118564B2 (en) 2003-11-26 2006-10-10 Ethicon Endo-Surgery, Inc. Medical treatment system with energy delivery device for limiting reuse
US8002770B2 (en) 2003-12-02 2011-08-23 Endoscopic Technologies, Inc. (Estech) Clamp based methods and apparatus for forming lesions in tissue and confirming whether a therapeutic lesion has been formed
US7317955B2 (en) 2003-12-12 2008-01-08 Conmed Corporation Virtual operating room integration
US20050149108A1 (en) 2003-12-17 2005-07-07 Microvention, Inc. Implant delivery and detachment system and method
US7326236B2 (en) 2003-12-23 2008-02-05 Xtent, Inc. Devices and methods for controlling and indicating the length of an interventional element
CN1634601A (en) 2003-12-26 2005-07-06 å‰ęž—ēœäø­ē«‹å®žäøšęœ‰é™å…¬åø Method for sterilizing medical appliance
US7210881B2 (en) 2003-12-30 2007-05-01 Greenberg Alex M Sleeved stop for a drill bit
US8337407B2 (en) 2003-12-30 2012-12-25 Liposonix, Inc. Articulating arm for medical procedures
JP4262631B2 (en) 2004-01-13 2009-05-13 ć‚ŖćƒŖćƒ³ćƒ‘ć‚¹ę Ŗ式会ē¤¾ Ultrasonic treatment device
US7632269B2 (en) 2004-01-16 2009-12-15 Ethicon Endo-Surgery, Inc. Electrosurgical instrument with replaceable cartridge
US20050165429A1 (en) 2004-01-23 2005-07-28 Peter Douglas Surgical clamp possessing a combined parallel and scissor style clamp head
US20050171522A1 (en) 2004-01-30 2005-08-04 Christopherson Mark A. Transurethral needle ablation system with needle position indicator
US7251531B2 (en) 2004-01-30 2007-07-31 Ams Research Corporation Heating method for tissue contraction
US20050177184A1 (en) 2004-02-09 2005-08-11 Easley James C. Torsional dissection tip
US7488322B2 (en) 2004-02-11 2009-02-10 Medtronic, Inc. High speed surgical cutting instrument
US20060264995A1 (en) * 2004-02-18 2006-11-23 Fanton Gary S Apparatus and methods for clearing obstructions from surgical cutting instruments
US7124932B2 (en) 2004-02-25 2006-10-24 Megadyne Medical Products, Inc. Electrosurgical counter and lockout mechanism
CN1922563A (en) 2004-02-25 2007-02-28 ēŽ›ę ¼ęˆ“ę©åŒ»ē–—äŗ§å“å…¬åø Electrosurgical counter and lockout mechanism
US20050188743A1 (en) 2004-02-26 2005-09-01 H. P. Intellectual Corp. Automatic ultrasonic frequency calibration scheme
US20050192611A1 (en) 2004-02-27 2005-09-01 Houser Kevin L. Ultrasonic surgical instrument, shears and tissue pad, method for sealing a blood vessel and method for transecting patient tissue
US20050192610A1 (en) 2004-02-27 2005-09-01 Houser Kevin L. Ultrasonic surgical shears and tissue pad for same
US20050234484A1 (en) 2004-02-27 2005-10-20 Houser Kevin L Ultrasonic surgical blade having transverse and longitudinal vibration
US8182501B2 (en) 2004-02-27 2012-05-22 Ethicon Endo-Surgery, Inc. Ultrasonic surgical shears and method for sealing a blood vessel using same
US7235071B2 (en) 2004-02-27 2007-06-26 Conmed Corporation Gas-assisted electrosurgical accessory connector and method with improved gas sealing and biasing for maintaining a gas tight seal
US7703459B2 (en) 2004-03-09 2010-04-27 Usgi Medical, Inc. Apparatus and methods for mapping out endoluminal gastrointestinal surgery
US7179254B2 (en) 2004-03-09 2007-02-20 Ethicon, Inc. High intensity ablation device
US7955331B2 (en) 2004-03-12 2011-06-07 Ethicon Endo-Surgery, Inc. Electrosurgical instrument and method of use
US8181840B2 (en) 2004-03-19 2012-05-22 Tyco Healthcare Group Lp Tissue tensioner assembly and approximation mechanism for surgical stapling device
US7625388B2 (en) 2004-03-22 2009-12-01 Alcon, Inc. Method of controlling a surgical system based on a load on the cutting tip of a handpiece
US20050249667A1 (en) 2004-03-24 2005-11-10 Tuszynski Jack A Process for treating a biological organism
JP4282523B2 (en) 2004-03-30 2009-06-24 ć‚ŖćƒŖćƒ³ćƒ‘ć‚¹ę Ŗ式会ē¤¾ Ultrasonic treatment device
EP3695799A1 (en) 2004-04-05 2020-08-19 The General Hospital Corporation Device and method for treating tissue
US20050222598A1 (en) * 2004-04-05 2005-10-06 Manoa Medical, Inc., A Delaware Corporation Tissue cutting device
JP2005296412A (en) 2004-04-13 2005-10-27 Olympus Corp Endoscopic treatment apparatus
US7220951B2 (en) 2004-04-19 2007-05-22 Surgrx, Inc. Surgical sealing surfaces and methods of use
JP4291202B2 (en) * 2004-04-20 2009-07-08 ć‚ŖćƒŖćƒ³ćƒ‘ć‚¹ę Ŗ式会ē¤¾ Ultrasonic treatment device
CA2562096A1 (en) 2004-05-03 2005-11-24 Ams Research Corporation Surgical implants and related methods
US20050248320A1 (en) 2004-05-04 2005-11-10 Denning Bruce S Switch reduction in a cordless power tool
US8333764B2 (en) 2004-05-12 2012-12-18 Medtronic, Inc. Device and method for determining tissue thickness and creating cardiac ablation lesions
US20050256405A1 (en) 2004-05-17 2005-11-17 Makin Inder Raj S Ultrasound-based procedure for uterine medical treatment
JP4554431B2 (en) 2004-05-18 2010-09-29 ćƒ­ćƒ¼ćƒ ę Ŗ式会ē¤¾ DTMF signal generation circuit, sound signal generation circuit, and communication apparatus
US7951095B2 (en) 2004-05-20 2011-05-31 Ethicon Endo-Surgery, Inc. Ultrasound medical system
US7708751B2 (en) 2004-05-21 2010-05-04 Ethicon Endo-Surgery, Inc. MRI biopsy device
US9638770B2 (en) 2004-05-21 2017-05-02 Devicor Medical Products, Inc. MRI biopsy apparatus incorporating an imageable penetrating portion
US20050261588A1 (en) 2004-05-21 2005-11-24 Makin Inder Raj S Ultrasound medical system
JP4304486B2 (en) 2004-05-27 2009-07-29 惞惄惀ę Ŗ式会ē¤¾ Engine fuel piping structure
US20050273090A1 (en) 2004-06-07 2005-12-08 Tim Nieman Methods and devices for directionally ablating tissue
US7066936B2 (en) 2004-06-07 2006-06-27 Ethicon, Inc. Surgical cutting and tissue vaporizing instrument
JP4727575B2 (en) * 2004-06-15 2011-07-20 ć‚ŖćƒŖćƒ³ćƒ‘ć‚¹ę Ŗ式会ē¤¾ Energy treatment tool
JP4343778B2 (en) 2004-06-16 2009-10-14 ć‚ŖćƒŖćƒ³ćƒ‘ć‚¹ę Ŗ式会ē¤¾ Ultrasonic surgical device
JP2006006410A (en) 2004-06-22 2006-01-12 Olympus Corp Ultrasonic surgery apparatus
US7226447B2 (en) 2004-06-23 2007-06-05 Smith & Nephew, Inc. Electrosurgical generator
US8137340B2 (en) 2004-06-23 2012-03-20 Applied Harmonics Corporation Apparatus and method for soft tissue ablation employing high power diode-pumped laser
DE102004031141A1 (en) 2004-06-28 2006-01-26 Erbe Elektromedizin Gmbh Electrosurgical instrument
CN100357150C (en) 2004-07-12 2007-12-26 ę›¹ęµ·ę“‹ Enclosed type two-wheeled motorcycle with movable floor
USD536093S1 (en) 2004-07-15 2007-01-30 Olympus Corporation Treatment apparatus for endoscope
US7535233B2 (en) 2004-07-15 2009-05-19 Cooper Technologies Company Traveling wave based relay protection
US7601136B2 (en) 2004-07-20 2009-10-13 Takayuki Akahoshi Infusion sleeve
CN101056593A (en) 2004-07-20 2007-10-17 č’‚å§†åŒ»čÆ公åø Multielectrode electrosurgical instrument
US7896875B2 (en) 2004-07-20 2011-03-01 Microline Surgical, Inc. Battery powered electrosurgical system
US7147138B2 (en) 2004-07-28 2006-12-12 Ethicon Endo-Surgery, Inc. Surgical stapling instrument having an electroactive polymer actuated buttress deployment mechanism
US7879070B2 (en) 2004-07-28 2011-02-01 Ethicon Endo-Surgery, Inc. Electroactive polymer-based actuation mechanism for grasper
US7404509B2 (en) 2004-07-28 2008-07-29 Ethicon Endo-Surgery, Inc. Electroactive polymer-based articulation mechanism for linear stapler
US7143925B2 (en) 2004-07-28 2006-12-05 Ethicon Endo-Surgery, Inc. Surgical instrument incorporating EAP blocking lockout mechanism
US7506790B2 (en) 2004-07-28 2009-03-24 Ethicon Endo-Surgery, Inc. Surgical instrument incorporating an electrically actuated articulation mechanism
EP1778104A1 (en) 2004-07-29 2007-05-02 X-Sten, Corp. Spinal ligament modification devices
CN100394897C (en) 2004-08-03 2008-06-18 å¼ ęƓē¬  Compound vibrated ultrasonic bone surgery apparatus
US8911438B2 (en) 2004-08-10 2014-12-16 Medtronic, Inc. Tuna device with integrated saline reservoir
DE102004055669B4 (en) 2004-08-11 2009-09-24 Erbe Elektromedizin Gmbh Electrosurgical instrument
DE102004040959B4 (en) 2004-08-24 2008-12-24 Erbe Elektromedizin Gmbh Surgical instrument
JP2006068396A (en) 2004-09-03 2006-03-16 Olympus Corp Medical system and control method for the same
US7195631B2 (en) 2004-09-09 2007-03-27 Sherwood Services Ag Forceps with spring loaded end effector assembly
JP4300169B2 (en) 2004-09-10 2009-07-22 ć‚¢ćƒ­ć‚«ę Ŗ式会ē¤¾ Ultrasound surgical device
US9125667B2 (en) 2004-09-10 2015-09-08 Vessix Vascular, Inc. System for inducing desirable temperature effects on body tissue
WO2006030563A1 (en) 2004-09-14 2006-03-23 Olympus Corporation Ultrasonic treatment implement, and probe, treatment section, and large-diameter section for ultrasonic treatment implement
JP2006081664A (en) 2004-09-15 2006-03-30 Olympus Corp Medical system and method for controlling medical system
US7540872B2 (en) 2004-09-21 2009-06-02 Covidien Ag Articulating bipolar electrosurgical instrument
US20070190485A1 (en) 2004-09-21 2007-08-16 Discus Dental Impressions, Inc. Dental instrument
MX2007003095A (en) 2004-09-24 2007-05-16 Univ Leland Stanford Junior Methods and devices for the non-thermal, electrically-induced closure of blood vessels.
JP4727964B2 (en) 2004-09-24 2011-07-20 ę Ŗ式会ē¤¾ę—„ē«‹č£½ä½œę‰€ Semiconductor device
US7422582B2 (en) 2004-09-29 2008-09-09 Stryker Corporation Control console to which powered surgical handpieces are connected, the console configured to simultaneously energize more than one and less than all of the handpieces
US7740594B2 (en) 2004-09-29 2010-06-22 Ethicon Endo-Surgery, Inc. Cutter for biopsy device
USD541418S1 (en) 2004-10-06 2007-04-24 Sherwood Services Ag Lung sealing device
USD531311S1 (en) 2004-10-06 2006-10-31 Sherwood Services Ag Pistol grip style elongated dissecting and dividing instrument
US7628792B2 (en) 2004-10-08 2009-12-08 Covidien Ag Bilateral foot jaws
US7553309B2 (en) 2004-10-08 2009-06-30 Covidien Ag Electrosurgical system employing multiple electrodes and method thereof
PL1802245T3 (en) 2004-10-08 2017-01-31 Ethicon Endosurgery Llc Ultrasonic surgical instrument
JP2006114072A (en) 2004-10-12 2006-04-27 Matsushita Electric Ind Co Ltd Control of disk data, virtual disk creation apparatus, method, program, and medium
JP2006115631A (en) 2004-10-15 2006-04-27 Konica Minolta Holdings Inc Piezoelectric driving device
US7738969B2 (en) 2004-10-15 2010-06-15 Baxano, Inc. Devices and methods for selective surgical removal of tissue
EP1805863B1 (en) 2004-10-18 2013-06-26 Black & Decker, Inc. Cordless power system
ATE554717T1 (en) 2004-10-20 2012-05-15 Atricure Inc SURGICAL CLAMP
JP4287354B2 (en) 2004-10-25 2009-07-01 ę Ŗ式会ē¤¾ę—„ē«‹č£½ä½œę‰€ Surgical instruments
US7337010B2 (en) 2004-10-29 2008-02-26 Medtronic, Inc. Medical device having lithium-ion battery
US20060095045A1 (en) 2004-11-01 2006-05-04 Sdgi Holdings, Inc. Methods for explantation of intervertebral disc implants
WO2006048966A1 (en) 2004-11-04 2006-05-11 Olympus Medical Systems Corp. Ultrasonic treating device, endoscope device and treating method
US7479148B2 (en) 2004-11-08 2009-01-20 Crescendo Technologies, Llc Ultrasonic shear with asymmetrical motion
US8617152B2 (en) 2004-11-15 2013-12-31 Medtronic Ablation Frontiers Llc Ablation system with feedback
US7641671B2 (en) 2004-11-22 2010-01-05 Design Standards Corporation Closing assemblies for clamping device
US20060109061A1 (en) 2004-11-22 2006-05-25 Masterwave, Inc. System and method for narrow bandwidth amplitude modulation
US7156189B1 (en) 2004-12-01 2007-01-02 The United States Of America As Represented By The Administrator Of The National Aeronautics And Space Administration Self mountable and extractable ultrasonic/sonic anchor
GB0426503D0 (en) 2004-12-02 2005-01-05 Orthosonics Ltd Improved osteotome
JP2006158525A (en) 2004-12-03 2006-06-22 Olympus Medical Systems Corp Ultrasonic surgical apparatus, and method of driving ultrasonic treatment instrument
EP1819304B1 (en) 2004-12-09 2023-01-25 Twelve, Inc. Aortic valve repair
US7371227B2 (en) 2004-12-17 2008-05-13 Ethicon Endo-Surgery, Inc. Trocar seal assembly
US7513025B2 (en) 2004-12-28 2009-04-07 The Boeing Company Magnetic field concentrator for electromagnetic forming
US7691095B2 (en) 2004-12-28 2010-04-06 St. Jude Medical, Atrial Fibrillation Division, Inc. Bi-directional steerable catheter control handle
US7862561B2 (en) 2005-01-08 2011-01-04 Boston Scientific Scimed, Inc. Clamp based lesion formation apparatus with variable spacing structures
JP2006217716A (en) 2005-02-02 2006-08-17 Olympus Corp Ultrasonic actuator driving unit and ultrasonic actuator driving method
US8628534B2 (en) 2005-02-02 2014-01-14 DePuy Synthes Products, LLC Ultrasonic cutting device
US7654431B2 (en) 2005-02-18 2010-02-02 Ethicon Endo-Surgery, Inc. Surgical instrument with guided laterally moving articulation member
US7559452B2 (en) 2005-02-18 2009-07-14 Ethicon Endo-Surgery, Inc. Surgical instrument having fluid actuated opposing jaws
US7559450B2 (en) 2005-02-18 2009-07-14 Ethicon Endo-Surgery, Inc. Surgical instrument incorporating a fluid transfer controlled articulation mechanism
US7780054B2 (en) 2005-02-18 2010-08-24 Ethicon Endo-Surgery, Inc. Surgical instrument with laterally moved shaft actuator coupled to pivoting articulation joint
US7784662B2 (en) 2005-02-18 2010-08-31 Ethicon Endo-Surgery, Inc. Surgical instrument with articulating shaft with single pivot closure and double pivot frame ground
GB2423931B (en) 2005-03-03 2009-08-26 Michael John Radley Young Ultrasonic cutting tool
EP1863388A1 (en) 2005-03-03 2007-12-12 Granit Medical Innovations, LLC Needle biopsy forceps with integral sample ejector
US20060200041A1 (en) 2005-03-04 2006-09-07 Ethicon Endo-Surgery, Inc. Biopsy device incorporating an adjustable probe sleeve
US7699846B2 (en) 2005-03-04 2010-04-20 Gyrus Ent L.L.C. Surgical instrument and method
US9031667B2 (en) 2005-03-04 2015-05-12 InterventionTechnology Pty Ltd Minimal device and method for effecting hyperthermia derived anesthesia
US7674263B2 (en) 2005-03-04 2010-03-09 Gyrus Ent, L.L.C. Surgical instrument and method
US20060217729A1 (en) 2005-03-09 2006-09-28 Brasseler Usa Medical Llc Surgical apparatus and tools for same
US20060206100A1 (en) 2005-03-09 2006-09-14 Brasseler Usa Medical Llc Surgical apparatus and power module for same, and a method of preparing a surgical apparatus
USD552241S1 (en) 2005-03-10 2007-10-02 Conmed Corporation Electrosurgical generator
US7285895B2 (en) 2005-03-15 2007-10-23 Crescendo Technologies, Llc Ultrasonic medical device and method
US20060211943A1 (en) 2005-03-15 2006-09-21 Crescendo Technologies, Llc Ultrasonic blade with terminal end balance features
US7784663B2 (en) 2005-03-17 2010-08-31 Ethicon Endo-Surgery, Inc. Surgical stapling instrument having load sensing control circuitry
US7931611B2 (en) 2005-03-23 2011-04-26 Misonix, Incorporated Ultrasonic wound debrider probe and method of use
US7918848B2 (en) 2005-03-25 2011-04-05 Maquet Cardiovascular, Llc Tissue welding and cutting apparatus and method
US8197472B2 (en) 2005-03-25 2012-06-12 Maquet Cardiovascular, Llc Tissue welding and cutting apparatus and method
US7491202B2 (en) 2005-03-31 2009-02-17 Covidien Ag Electrosurgical forceps with slow closure sealing plates and method of sealing tissue
US20090204114A1 (en) 2005-03-31 2009-08-13 Covidien Ag Electrosurgical Forceps with Slow Closure Sealing Plates and Method of Sealing Tissue
US7335997B2 (en) 2005-03-31 2008-02-26 Ethicon Endo-Surgery, Inc. System for controlling ultrasonic clamping and cutting instruments
US20060224160A1 (en) 2005-04-01 2006-10-05 Trieu Hai H Instruments and methods for aggressive yet continuous tissue removal
JP2006288431A (en) 2005-04-05 2006-10-26 Olympus Medical Systems Corp Ultrasonic surgical system
AU2006235506B2 (en) 2005-04-11 2011-06-30 Terumo Kabushiki Kaisha Methods and apparatus to achieve a closure of a layered tissue defect
US20060264809A1 (en) 2005-04-12 2006-11-23 Hansmann Douglas R Ultrasound catheter with cavitation promoting surface
US8523882B2 (en) 2005-04-14 2013-09-03 Ethicon Endo-Surgery, Inc. Clip advancer mechanism with alignment features
US7297149B2 (en) 2005-04-14 2007-11-20 Ethicon Endo-Surgery, Inc. Surgical clip applier methods
US8092475B2 (en) 2005-04-15 2012-01-10 Integra Lifesciences (Ireland) Ltd. Ultrasonic horn for removal of hard tissue
CA2605360C (en) 2005-04-21 2017-03-28 Asthmatx, Inc. Control methods and devices for energy delivery
EP1876957A2 (en) 2005-04-25 2008-01-16 Koninklijke Philips Electronics N.V. Ultrasound transducer assembly having improved thermal management
WO2006116454A2 (en) 2005-04-26 2006-11-02 Cook Vascular Incorporated Suture collar
US7871423B2 (en) 2005-04-29 2011-01-18 Bovie Medical Corporation Forceps for performing endoscopic or arthroscopic surgery
CA2605308C (en) 2005-05-03 2015-01-20 Ultreo, Inc. Oral hygiene devices employing an acoustic waveguide
US7320687B2 (en) 2005-05-04 2008-01-22 Lee Thomas H Tendon stripper
US7803156B2 (en) 2006-03-08 2010-09-28 Aragon Surgical, Inc. Method and apparatus for surgical electrocautery
US9339323B2 (en) 2005-05-12 2016-05-17 Aesculap Ag Electrocautery method and apparatus
JP4481922B2 (en) * 2005-05-13 2010-06-16 ć‚ŖćƒŖćƒ³ćƒ‘ć‚¹ćƒ”ćƒ‡ć‚£ć‚«ćƒ«ć‚·ć‚¹ćƒ†ćƒ ć‚ŗę Ŗ式会ē¤¾ Medical treatment tool
US20060264832A1 (en) 2005-05-20 2006-11-23 Medtronic, Inc. User interface for a portable therapy delivery device
JP4398406B2 (en) * 2005-06-01 2010-01-13 ć‚ŖćƒŖćƒ³ćƒ‘ć‚¹ćƒ”ćƒ‡ć‚£ć‚«ćƒ«ć‚·ć‚¹ćƒ†ćƒ ć‚ŗę Ŗ式会ē¤¾ Surgical instruments
US7717312B2 (en) 2005-06-03 2010-05-18 Tyco Healthcare Group Lp Surgical instruments employing sensors
EP3679882A1 (en) 2005-06-06 2020-07-15 Intuitive Surgical Operations, Inc. Laparoscopic ultrasound robotic surgical system
CN1877756A (en) 2005-06-10 2006-12-13 åƌ准ē²¾åƆ巄äøš(ę·±åœ³)ęœ‰é™å…¬åø Magnetic powder
US20080147058A1 (en) 2005-06-13 2008-06-19 Horrell Robin S Electrocautery system, provided with safe lighting during operational use
US7727177B2 (en) 2005-06-21 2010-06-01 Inasurgica, Llc Four function surgical instrument
WO2007002079A2 (en) 2005-06-21 2007-01-04 Traxtal Inc. System, method and apparatus for navigated therapy and diagnosis
US7655003B2 (en) 2005-06-22 2010-02-02 Smith & Nephew, Inc. Electrosurgical power control
JP2007000427A (en) 2005-06-24 2007-01-11 Olympus Medical Systems Corp Endoscope
US8241271B2 (en) 2005-06-30 2012-08-14 Intuitive Surgical Operations, Inc. Robotic surgical instruments with a fluid flow control system for irrigation, aspiration, and blowing
JP2007007810A (en) 2005-07-01 2007-01-18 Bosch Corp Spindle for ultrasonic machining
US7632267B2 (en) 2005-07-06 2009-12-15 Arthrocare Corporation Fuse-electrode electrosurgical apparatus
WO2007008703A2 (en) 2005-07-08 2007-01-18 Conceptual Gray, Llc Apparatus and method thereof for drilling holes in discrete controlled increments
EP1901666A4 (en) 2005-07-11 2010-01-06 Kyphon Inc Apparatus and methods of tissue removal within a spine
US20070060935A1 (en) 2005-07-11 2007-03-15 Schwardt Jeffrey D Apparatus and methods of tissue removal within a spine
US20070016236A1 (en) 2005-07-18 2007-01-18 Crescendo Technologies, Llc Balanced ultrasonic curved blade
US20070055228A1 (en) 2005-07-22 2007-03-08 Berg Howard K Ultrasonic scalpel device
US20070063618A1 (en) 2005-07-25 2007-03-22 Piezoinnovations Ultrasonic transducer devices and methods of manufacture
US7554343B2 (en) 2005-07-25 2009-06-30 Piezoinnovations Ultrasonic transducer control method and system
US8579176B2 (en) 2005-07-26 2013-11-12 Ethicon Endo-Surgery, Inc. Surgical stapling and cutting device and method for using the device
US7959050B2 (en) 2005-07-26 2011-06-14 Ethicon Endo-Surgery, Inc Electrically self-powered surgical instrument with manual release
US8573462B2 (en) 2006-05-19 2013-11-05 Ethicon Endo-Surgery, Inc. Electrical surgical instrument with optimized power supply and drive
US8097012B2 (en) 2005-07-27 2012-01-17 The Spectranetics Corporation Endocardial lead removing apparatus
EP1747761B1 (en) 2005-07-28 2009-10-14 Covidien AG An electrode assembly with electrode cooling element for an electrosurgical instrument
JP4734058B2 (en) 2005-07-29 2011-07-27 ć‚ŖćƒŖćƒ³ćƒ‘ć‚¹ćƒ”ćƒ‡ć‚£ć‚«ćƒ«ć‚·ć‚¹ćƒ†ćƒ ć‚ŗę Ŗ式会ē¤¾ Medical treatment device
US20070027468A1 (en) 2005-08-01 2007-02-01 Wales Kenneth S Surgical instrument with an articulating shaft locking mechanism
US7659833B2 (en) 2005-08-02 2010-02-09 Warner Thomas P System and method for remotely controlling devices
EP1749479A1 (en) 2005-08-02 2007-02-07 Marco Gandini Retractor instrument
US7540871B2 (en) 2005-08-03 2009-06-02 Conmed Corporation Integrated three-port receptacle and method for connecting hand and foot switched electrosurgical accessories
JP5124920B2 (en) 2005-08-16 2013-01-23 ć‚³ćƒ‹ć‚«ćƒŸćƒŽćƒ«ć‚æć‚¢ćƒ‰ćƒćƒ³ć‚¹ćƒˆćƒ¬ć‚¤ćƒ¤ćƒ¼ę Ŗ式会ē¤¾ Drive device
US7628791B2 (en) 2005-08-19 2009-12-08 Covidien Ag Single action tissue sealer
JP4402629B2 (en) * 2005-08-19 2010-01-20 ć‚ŖćƒŖćƒ³ćƒ‘ć‚¹ćƒ”ćƒ‡ć‚£ć‚«ćƒ«ć‚·ć‚¹ćƒ†ćƒ ć‚ŗę Ŗ式会ē¤¾ Ultrasonic coagulation and incision device
US7751115B2 (en) 2005-08-26 2010-07-06 Lg Electronics Inc. Electronic paper display device, manufacturing method and driving method thereof
US8353297B2 (en) 2005-08-31 2013-01-15 Novartis Ag Pulse manipulation for controlling a phacoemulsification surgical system
US9237891B2 (en) 2005-08-31 2016-01-19 Ethicon Endo-Surgery, Inc. Robotically-controlled surgical stapling devices that produce formed staples having different lengths
US8800838B2 (en) 2005-08-31 2014-08-12 Ethicon Endo-Surgery, Inc. Robotically-controlled cable-based surgical end effectors
WO2007033379A2 (en) 2005-09-14 2007-03-22 Neoguide Systems, Inc. Methods and apparatus for performing transluminal and other procedures
US8852184B2 (en) 2005-09-15 2014-10-07 Cannuflow, Inc. Arthroscopic surgical temperature control system
US7678105B2 (en) 2005-09-16 2010-03-16 Conmed Corporation Method and apparatus for precursively controlling energy during coaptive tissue fusion
US20070067123A1 (en) 2005-09-19 2007-03-22 Jungerman Roger L Advanced arbitrary waveform generator
US7472815B2 (en) 2005-09-21 2009-01-06 Ethicon Endo-Surgery, Inc. Surgical stapling instruments with collapsible features for controlling staple height
US20070066971A1 (en) 2005-09-21 2007-03-22 Podhajsky Ronald J Method and system for treating pain during an electrosurgical procedure
EP1767164B1 (en) 2005-09-22 2013-01-09 Covidien AG Electrode assembly for tissue fusion
US9445784B2 (en) 2005-09-22 2016-09-20 Boston Scientific Scimed, Inc Intravascular ultrasound catheter
US7311526B2 (en) 2005-09-26 2007-12-25 Apple Inc. Magnetic connector for electronic device
US7451904B2 (en) 2005-09-26 2008-11-18 Ethicon Endo-Surgery, Inc. Surgical stapling instrument having end effector gripping surfaces
DK1928518T3 (en) 2005-09-27 2016-08-01 Allegiance Corp MEDICAL SUCTION AND douche
US7357287B2 (en) 2005-09-29 2008-04-15 Ethicon Endo-Surgery, Inc. Surgical stapling instrument having preloaded firing assistance mechanism
CA2561034C (en) 2005-09-30 2014-12-09 Sherwood Services Ag Flexible endoscopic catheter with an end effector for coagulating and transfecting tissue
US7879035B2 (en) 2005-09-30 2011-02-01 Covidien Ag Insulating boot for electrosurgical forceps
EP1769765B1 (en) * 2005-09-30 2012-03-21 Covidien AG Insulating boot for electrosurgical forceps
CN100467087C (en) 2005-09-30 2009-03-11 äøœåŒ—大学 Cranial nerve electrostimulating device capable of remotely controlling exercise behevior
US7722607B2 (en) 2005-09-30 2010-05-25 Covidien Ag In-line vessel sealer and divider
US20070074584A1 (en) 2005-10-03 2007-04-05 Joseph Talarico Gentle touch surgical instrument and method of using same
US8096459B2 (en) 2005-10-11 2012-01-17 Ethicon Endo-Surgery, Inc. Surgical stapler with an end effector support
US7572268B2 (en) 2005-10-13 2009-08-11 Bacoustics, Llc Apparatus and methods for the selective removal of tissue using combinations of ultrasonic energy and cryogenic energy
US8152825B2 (en) 2005-10-14 2012-04-10 Ethicon Endo-Surgery, Inc. Medical ultrasound system and handpiece and methods for making and tuning
US20070191713A1 (en) 2005-10-14 2007-08-16 Eichmann Stephen E Ultrasonic device for cutting and coagulating
US20080051812A1 (en) 2006-08-01 2008-02-28 Baxano, Inc. Multi-Wire Tissue Cutter
US20080033465A1 (en) 2006-08-01 2008-02-07 Baxano, Inc. Multi-Wire Tissue Cutter
US8734438B2 (en) 2005-10-21 2014-05-27 Covidien Ag Circuit and method for reducing stored energy in an electrosurgical generator
CN2868227Y (en) 2005-10-24 2007-02-14 é’ŸęŽå®½ Five-in-one cutting knife
US7607557B2 (en) 2005-11-04 2009-10-27 Ethicon Endo-Surgery, Inc. Surgical stapling instruments structured for pump-assisted delivery of medical agents
US7372400B2 (en) 2005-11-07 2008-05-13 The Boeing Company Methods and apparatus for a navigation system with reduced susceptibility to interference and jamming
EP1955239A4 (en) 2005-11-08 2011-06-22 Univ Boston Manipulators employing multiple deformable elongate members
US20070106317A1 (en) 2005-11-09 2007-05-10 Shelton Frederick E Iv Hydraulically and electrically actuated articulation joints for surgical instruments
US20070118115A1 (en) 2005-11-22 2007-05-24 Sherwood Services Ag Bipolar electrosurgical sealing instrument having an improved tissue gripping device
US7997278B2 (en) 2005-11-23 2011-08-16 Barrx Medical, Inc. Precision ablating method
US8246642B2 (en) 2005-12-01 2012-08-21 Ethicon Endo-Surgery, Inc. Ultrasonic medical instrument and medical instrument connection assembly
CN101316560B (en) 2005-12-02 2011-01-26 ēš‡å®¶é£žåˆ©ęµ¦ē”µå­č‚”ä»½ęœ‰é™å…¬åø Automating the ablation procedure to minimize the need for manual intervention
US20070130771A1 (en) 2005-12-12 2007-06-14 Kimberly-Clark Worldwide, Inc. Methods for producing ultrasonic waveguides having improved amplification
US8033173B2 (en) 2005-12-12 2011-10-11 Kimberly-Clark Worldwide, Inc. Amplifying ultrasonic waveguides
JP2007165707A (en) 2005-12-15 2007-06-28 Nitto Denko Corp Flexible wiring circuit board
US20070149881A1 (en) 2005-12-22 2007-06-28 Rabin Barry H Ultrasonically Powered Medical Devices and Systems, and Methods and Uses Thereof
US7879029B2 (en) 2005-12-30 2011-02-01 Biosense Webster, Inc. System and method for selectively energizing catheter electrodes
US7930065B2 (en) 2005-12-30 2011-04-19 Intuitive Surgical Operations, Inc. Robotic surgery system including position sensors using fiber bragg gratings
US8382748B2 (en) 2006-01-03 2013-02-26 Donald J. Geisel High efficiency, precision electrosurgical apparatus and method
US7670334B2 (en) 2006-01-10 2010-03-02 Ethicon Endo-Surgery, Inc. Surgical instrument having an articulating end effector
US7871392B2 (en) 2006-01-12 2011-01-18 Integra Lifesciences (Ireland) Ltd. Endoscopic ultrasonic surgical aspirator for use in fluid filled cavities
US8721657B2 (en) 2006-01-13 2014-05-13 Olympus Medical Systems Corp. Medical instrument
CN100463660C (en) 2006-01-18 2009-02-25 重åŗ†ęµ·ę‰¶(Hifu)ꊀęœÆęœ‰é™å…¬åø Ultrasonic therapeutic pincers
US20070166663A1 (en) 2006-01-18 2007-07-19 Telles Heidi A Cordless ultrasonic dental scaler
US7621930B2 (en) 2006-01-20 2009-11-24 Ethicon Endo-Surgery, Inc. Ultrasound medical instrument having a medical ultrasonic blade
US20070173872A1 (en) 2006-01-23 2007-07-26 Ethicon Endo-Surgery, Inc. Surgical instrument for cutting and coagulating patient tissue
CA2574935A1 (en) 2006-01-24 2007-07-24 Sherwood Services Ag A method and system for controlling an output of a radio-frequency medical generator having an impedance based control algorithm
US20070173813A1 (en) 2006-01-24 2007-07-26 Sherwood Services Ag System and method for tissue sealing
CA2575392C (en) 2006-01-24 2015-07-07 Sherwood Services Ag System and method for tissue sealing
US8241282B2 (en) 2006-01-24 2012-08-14 Tyco Healthcare Group Lp Vessel sealing cutting assemblies
CN101371434B (en) 2006-01-24 2011-04-20 D2éŸ³é¢‘ęœ‰é™å…¬åø Systems and methods for improving performance in a digital amplifier by adding an ultrasonic signal to an input audio signal
US20160045248A1 (en) 2006-01-24 2016-02-18 Covidien Lp System and method for tissue sealing
US8734443B2 (en) 2006-01-24 2014-05-27 Covidien Lp Vessel sealer and divider for large tissue structures
US8685016B2 (en) 2006-01-24 2014-04-01 Covidien Ag System and method for tissue sealing
US7766910B2 (en) 2006-01-24 2010-08-03 Tyco Healthcare Group Lp Vessel sealer and divider for large tissue structures
US8298232B2 (en) 2006-01-24 2012-10-30 Tyco Healthcare Group Lp Endoscopic vessel sealer and divider for large tissue structures
US8147485B2 (en) 2006-01-24 2012-04-03 Covidien Ag System and method for tissue sealing
US8882766B2 (en) 2006-01-24 2014-11-11 Covidien Ag Method and system for controlling delivery of energy to divide tissue
US7815641B2 (en) 2006-01-25 2010-10-19 The Regents Of The University Of Michigan Surgical instrument and method for use thereof
AU2007210010A1 (en) 2006-01-27 2007-08-09 Medtronic, Inc. Ablation device and system for guiding said ablation device into a patient's body
TWI344558B (en) 2006-01-27 2011-07-01 Mstar Semiconductor Inc Measurement device for measuring gray-to-gray response time
US7416101B2 (en) 2006-01-31 2008-08-26 Ethicon Endo-Surgery, Inc. Motor-driven surgical cutting and fastening instrument with loading force feedback
US7644848B2 (en) 2006-01-31 2010-01-12 Ethicon Endo-Surgery, Inc. Electronic lockouts and surgical instrument including same
EP1976575A2 (en) 2006-01-31 2008-10-08 Angiotech BioCoatings, Corp. Lubricious echogenic coatings
US7753904B2 (en) 2006-01-31 2010-07-13 Ethicon Endo-Surgery, Inc. Endoscopic surgical instrument with a handle that can articulate with respect to the shaft
US7422139B2 (en) 2006-01-31 2008-09-09 Ethicon Endo-Surgery, Inc. Motor-driven surgical cutting fastening instrument with tactile position feedback
US7766210B2 (en) 2006-01-31 2010-08-03 Ethicon Endo-Surgery, Inc. Motor-driven surgical cutting and fastening instrument with user feedback system
US7464849B2 (en) 2006-01-31 2008-12-16 Ethicon Endo-Surgery, Inc. Electro-mechanical surgical instrument with closure system and anvil alignment components
US7845537B2 (en) 2006-01-31 2010-12-07 Ethicon Endo-Surgery, Inc. Surgical instrument having recording capabilities
US7568603B2 (en) 2006-01-31 2009-08-04 Ethicon Endo-Surgery, Inc. Motor-driven surgical cutting and fastening instrument with articulatable end effector
US8708213B2 (en) 2006-01-31 2014-04-29 Ethicon Endo-Surgery, Inc. Surgical instrument having a feedback system
US20110295295A1 (en) 2006-01-31 2011-12-01 Ethicon Endo-Surgery, Inc. Robotically-controlled surgical instrument having recording capabilities
US7464846B2 (en) 2006-01-31 2008-12-16 Ethicon Endo-Surgery, Inc. Surgical instrument having a removable battery
US8161977B2 (en) 2006-01-31 2012-04-24 Ethicon Endo-Surgery, Inc. Accessing data stored in a memory of a surgical instrument
US20070175955A1 (en) 2006-01-31 2007-08-02 Shelton Frederick E Iv Surgical cutting and fastening instrument with closure trigger locking mechanism
US7770775B2 (en) 2006-01-31 2010-08-10 Ethicon Endo-Surgery, Inc. Motor-driven surgical cutting and fastening instrument with adaptive user feedback
US7503893B2 (en) 2006-02-03 2009-03-17 Cannuflow, Inc. Anti-extravasation sheath and method
EP1815950A1 (en) 2006-02-03 2007-08-08 The European Atomic Energy Community (EURATOM), represented by the European Commission Robotic surgical system for performing minimally invasive medical procedures
EP1993459A4 (en) 2006-02-07 2010-04-28 Ams Res Corp Laparoscopic laser device and method
US7936203B2 (en) 2006-02-08 2011-05-03 Micron Technology, Inc. Temperature compensation via power supply modification to produce a temperature-independent delay in an integrated circuit
AR059339A1 (en) 2006-02-09 2008-03-26 Chugai Pharmaceutical Co Ltd CUMARINE DERIVATIVES FOR PROLIFERATIVE DISORDERS OF CELLS, PHARMACEUTICAL COMPOSITION AND THERAPEUTIC AGENT CONTAINING THEM
US7662151B2 (en) 2006-02-15 2010-02-16 Boston Scientific Scimed, Inc. Contact sensitive probes
US20070191712A1 (en) 2006-02-15 2007-08-16 Ethicon Endo-Surgery, Inc. Method for sealing a blood vessel, a medical system and a medical instrument
US7854735B2 (en) 2006-02-16 2010-12-21 Ethicon Endo-Surgery, Inc. Energy-based medical treatment system and method
US20070239101A1 (en) 2006-02-21 2007-10-11 David Kellogg Method for applying serum to a person's skin
US7645278B2 (en) * 2006-02-22 2010-01-12 Olympus Corporation Coagulating cutter
US9820771B2 (en) 2006-03-03 2017-11-21 Axcess Instruments Inc. Apparatus and method for minimally invasive surgery
US20070219481A1 (en) 2006-03-16 2007-09-20 Eilaz Babaev Apparatus and methods for the treatment of avian influenza with ultrasound
US7648499B2 (en) 2006-03-21 2010-01-19 Covidien Ag System and method for generating radio frequency energy
US8394115B2 (en) 2006-03-22 2013-03-12 Ethicon Endo-Surgery, Inc. Composite end effector for an ultrasonic surgical instrument
US8992422B2 (en) 2006-03-23 2015-03-31 Ethicon Endo-Surgery, Inc. Robotically-controlled endoscopic accessory channel
US9675375B2 (en) 2006-03-29 2017-06-13 Ethicon Llc Ultrasonic surgical system and method
US20070236213A1 (en) 2006-03-30 2007-10-11 Paden Bradley E Telemetry method and apparatus using magnetically-driven mems resonant structure
US20100081863A1 (en) 2008-09-30 2010-04-01 Ethicon Endo-Surgery, Inc. Methods and devices for performing gastrectomies and gastroplasties
US20100081883A1 (en) 2008-09-30 2010-04-01 Ethicon Endo-Surgery, Inc. Methods and devices for performing gastroplasties using a multiple port access device
US8425410B2 (en) 2008-09-30 2013-04-23 Ethicon Endo-Surgery, Inc. Surgical access device with protective element
US8430811B2 (en) 2008-09-30 2013-04-30 Ethicon Endo-Surgery, Inc. Multiple port surgical access device
US8485970B2 (en) 2008-09-30 2013-07-16 Ethicon Endo-Surgery, Inc. Surgical access device
WO2007118608A1 (en) 2006-04-11 2007-10-25 Erbe Elektromedizin Gmbh Multi-function device for endoscopic surgery
US20070249941A1 (en) 2006-04-21 2007-10-25 Alcon, Inc. Method for driving an ultrasonic handpiece with a class D amplifier
EP2015846A2 (en) 2006-04-24 2009-01-21 Ekos Corporation Ultrasound therapy system
US7601119B2 (en) 2006-04-25 2009-10-13 Hrayr Kamig Shahinian Remote manipulator with eyeballs
US7867228B2 (en) 2006-04-28 2011-01-11 Ethicon Endo-Surgery, Inc. Apparatus and method for performing an endoscopic mucosal resection
US9339326B2 (en) 2006-05-03 2016-05-17 Boston Scientific Scimed, Inc. Diamond-like carbon electrode coating
US7641653B2 (en) 2006-05-04 2010-01-05 Covidien Ag Open vessel sealing forceps disposable handswitch
US20070265613A1 (en) 2006-05-10 2007-11-15 Edelstein Peter Seth Method and apparatus for sealing tissue
US7351095B2 (en) 2006-05-10 2008-04-01 Craig Olsen Disposable surgical connector
US20070265616A1 (en) 2006-05-10 2007-11-15 Sherwood Services Ag Vessel sealing instrument with optimized power density
DE202006020056U1 (en) 2006-05-15 2007-09-20 Olympus Winter & Ibe Gmbh Forceps for vessel coagulation
US7586289B2 (en) 2006-05-23 2009-09-08 Ultralife Corporation Complete discharge device
JP2008001876A (en) 2006-05-23 2008-01-10 Asahi Kasei Corp Polyesterimide and method for producing the same
US20080039746A1 (en) * 2006-05-25 2008-02-14 Medtronic, Inc. Methods of using high intensity focused ultrasound to form an ablated tissue area containing a plurality of lesions
US20070282333A1 (en) 2006-06-01 2007-12-06 Fortson Reginald D Ultrasonic waveguide and blade
EP1862133A1 (en) 2006-06-02 2007-12-05 Olympus Medical Systems Corp. Ultrasonic surgical apparatus and method of driving ultrasonic treatment device
EP2032059A4 (en) 2006-06-05 2009-09-16 Broncus Tech Inc Devices for creating passages and sensing blood vessels
US7431704B2 (en) 2006-06-07 2008-10-07 Bacoustics, Llc Apparatus and method for the treatment of tissue with ultrasound energy by direct contact
US20070287933A1 (en) 2006-06-08 2007-12-13 Chris Phan Tissue debulking device and method of using the same
US20070299895A1 (en) 2006-06-09 2007-12-27 Johnson Scot L System and method of generating electrical stimulation waveforms as a therapeutic modality
JP4504332B2 (en) 2006-06-12 2010-07-14 ć‚ŖćƒŖćƒ³ćƒ‘ć‚¹ćƒ”ćƒ‡ć‚£ć‚«ćƒ«ć‚·ć‚¹ćƒ†ćƒ ć‚ŗę Ŗ式会ē¤¾ Surgical system and system operation information notification method
US8814870B2 (en) 2006-06-14 2014-08-26 Misonix, Incorporated Hook shaped ultrasonic cutting blade
US20080097501A1 (en) 2006-06-22 2008-04-24 Tyco Healthcare Group Lp Ultrasonic probe deflection sensor
ES2928065T3 (en) 2006-06-28 2022-11-15 Medtronic Ardian Luxembourg Thermally induced renal neuromodulation systems
IL176652A0 (en) 2006-06-29 2007-08-19 Elisra Electronic Systems Ltd Phase-coherent signal generator
DE102006030889B4 (en) 2006-07-04 2010-07-08 Infineon Technologies Ag Concept for generating radar signals
CA2656611C (en) 2006-07-06 2017-11-21 Leroy L. Yates Resecting device
US7776037B2 (en) 2006-07-07 2010-08-17 Covidien Ag System and method for controlling electrode gap during tissue sealing
GB0613662D0 (en) 2006-07-10 2006-08-16 Rotork Controls Improvements to valve actuators
US7717914B2 (en) 2006-07-11 2010-05-18 Olympus Medical Systems Corporation Treatment device
US7502234B2 (en) 2006-07-12 2009-03-10 Aaron Medical Industries, Inc. Planar transformer power supply
EP2040634B1 (en) 2006-07-13 2014-06-11 Bovie Medical Corporation Surgical sealing and cutting apparatus
US20080013809A1 (en) 2006-07-14 2008-01-17 Bracco Imaging, Spa Methods and apparatuses for registration in image guided surgery
US20080015575A1 (en) 2006-07-14 2008-01-17 Sherwood Services Ag Vessel sealing instrument with pre-heated electrodes
US7744615B2 (en) 2006-07-18 2010-06-29 Covidien Ag Apparatus and method for transecting tissue on a bipolar vessel sealing instrument
WO2008011575A1 (en) 2006-07-20 2008-01-24 Medtronic, Inc. Transmural ablation systems and methods
US7419490B2 (en) 2006-07-27 2008-09-02 Applied Medical Resources Corporation Bipolar electrosurgical scissors
JP2008033644A (en) 2006-07-28 2008-02-14 Takao Oishi Application service providing system and application service providing method
US7587536B2 (en) 2006-07-28 2009-09-08 Icron Technologies Corporation Method and apparatus for distributing USB hub functions across a network
US20080029570A1 (en) 2006-08-02 2008-02-07 Shelton Frederick E Pneumatically powered surgical cutting and fastening instrument with improved volume storage
US7731717B2 (en) 2006-08-08 2010-06-08 Covidien Ag System and method for controlling RF output during tissue sealing
US8034049B2 (en) 2006-08-08 2011-10-11 Covidien Ag System and method for measuring initial tissue impedance
US9757142B2 (en) 2006-08-09 2017-09-12 Olympus Corporation Relay device and ultrasonic-surgical and electrosurgical system
US20080125768A1 (en) 2006-08-09 2008-05-29 Olympus Medical Systems Corp. Relay device and ultrasonic-surgical and electrosurgical system
US7708758B2 (en) 2006-08-16 2010-05-04 Cambridge Endoscopic Devices, Inc. Surgical instrument
US7919184B2 (en) 2006-08-21 2011-04-05 Mohapatra Satish C Hybrid nanoparticles
AU2007286660A1 (en) 2006-08-25 2008-02-28 Eilaz Babaev Portable ultrasound device for the treatment of wounds
US8926620B2 (en) * 2006-08-25 2015-01-06 Kyphon Sarl Apparatus and methods for use of expandable members in surgical applications
US8025672B2 (en) * 2006-08-29 2011-09-27 Misonix, Incorporated Ultrasonic wound treatment method and apparatus
US20080058775A1 (en) * 2006-08-29 2008-03-06 Darian Alexander L Ultrasonic debrider probe and method of use
US8430897B2 (en) 2006-08-29 2013-04-30 Misonix Incorporated Ultrasonic wound debrider probe and method of use
US20080071269A1 (en) 2006-09-18 2008-03-20 Cytyc Corporation Curved Endoscopic Medical Device
US20080077145A1 (en) 2006-09-22 2008-03-27 Searete Llc, A Limited Liability Corporation Of The State Of Delaware Sterilizing cutting system
US7780663B2 (en) 2006-09-22 2010-08-24 Ethicon Endo-Surgery, Inc. End effector coatings for electrosurgical instruments
US20080082098A1 (en) 2006-09-29 2008-04-03 Kazue Tanaka Electric processing system
US8220690B2 (en) 2006-09-29 2012-07-17 Ethicon Endo-Surgery, Inc. Connected surgical staples and stapling instruments for deploying the same
US7799020B2 (en) 2006-10-02 2010-09-21 Conmed Corporation Near-instantaneous responsive closed loop control electrosurgical generator and method
EP2081481B1 (en) 2006-10-05 2015-03-11 Covidien LP Flexible endoscopic stitching devices
ATE544412T1 (en) 2006-10-05 2012-02-15 Erbe Elektromedizin TUBE SHAFT INSTRUMENT
DE102006047204B4 (en) 2006-10-05 2015-04-23 Erbe Elektromedizin Gmbh Tubular shaft instrument
CN101522127B (en) 2006-10-06 2011-11-16 Tyco医ē–—偄åŗ·é›†å›¢ Endoscopic vessel sealer and divider having a flexible articulating shaft
US8584921B2 (en) 2006-10-06 2013-11-19 Covidien Lp Surgical instrument with articulating tool assembly
US20090082716A1 (en) 2006-10-13 2009-03-26 Takayuki Akahoshi Akahoshi Linear to Torsional Converter for Phaco Handpieces
AU2007310988B2 (en) 2006-10-18 2013-08-15 Vessix Vascular, Inc. Tuned RF energy and electrical tissue characterization for selective treatment of target tissues
US20080147092A1 (en) 2006-10-23 2008-06-19 Michael Rogge Hybrid energy instrument combined with clip application capability
JP5054116B2 (en) 2006-11-09 2012-10-24 ć‚ØćƒŒć‚³ćƒ³ć‚æć‚Æ惈 ć‚µćƒ¼ć‚øć‚«ćƒ«ļ¼Œ ć‚¤ćƒ³ć‚³ćƒ¼ćƒćƒ¬ć‚¤ćƒ†ćƒƒćƒ‰ Vacuum coagulation probe
JP2008119250A (en) 2006-11-13 2008-05-29 Miwatec:Kk Handpiece for ultrasonic surgical instrument, and horn
US20080114364A1 (en) 2006-11-15 2008-05-15 Aoi Medical, Inc. Tissue cavitation device and method
US7714481B2 (en) * 2006-11-30 2010-05-11 Olympus Medical Systems Corp. Ultrasonic treatment apparatus
US9345462B2 (en) 2006-12-01 2016-05-24 Boston Scientific Scimed, Inc. Direct drive endoscopy systems and methods
EP2101668B1 (en) 2006-12-06 2012-09-05 Boston Scientific Limited Tissue ablation using pulse modulated radio frequency energy
DE102006058867A1 (en) 2006-12-07 2008-06-12 Aesculap Ag & Co. Kg Surgical switching power supply and surgical DC power tool
US7846160B2 (en) 2006-12-21 2010-12-07 Cytyc Corporation Method and apparatus for sterilization
US8444637B2 (en) 2006-12-29 2013-05-21 St. Jude Medical, Atrial Filbrillation Division, Inc. Steerable ablation device
PL1938908T3 (en) 2006-12-29 2010-10-29 Ultrazonix Dnt Ab Method for manufacturing a membrane and object provided with such a membrane
US8684253B2 (en) 2007-01-10 2014-04-01 Ethicon Endo-Surgery, Inc. Surgical instrument with wireless communication between a control unit of a robotic system and remote sensor
US8652120B2 (en) 2007-01-10 2014-02-18 Ethicon Endo-Surgery, Inc. Surgical instrument with wireless communication between control unit and sensor transponders
US8827133B2 (en) 2007-01-11 2014-09-09 Ethicon Endo-Surgery, Inc. Surgical stapling device having supports for a flexible drive mechanism
US8529565B2 (en) 2007-01-15 2013-09-10 Olympus Medical Systems Corp. Ultrasonic operating apparatus
US20080171938A1 (en) 2007-01-15 2008-07-17 Shinya Masuda Ultrasonic operating apparatus
JP5165696B2 (en) 2007-01-16 2013-03-21 ć‚Øć‚·ć‚³ćƒ³ćƒ»ć‚Øćƒ³ćƒ‰āˆ’ć‚µćƒ¼ć‚ø悧ćƒŖć‚£ćƒ»ć‚¤ćƒ³ć‚³ćƒ¼ćƒćƒ¬ć‚¤ćƒ†ćƒƒćƒ‰ Ultrasonic device for cutting and coagulation
JP4933911B2 (en) 2007-02-02 2012-05-16 å­¦ę ”ę³•äŗŗę—„ęœ¬åŒ»ē§‘大学 Ultrasound surgical device
US20110125149A1 (en) 2007-02-06 2011-05-26 Rizk El-Galley Universal surgical function control system
EP1972264A1 (en) 2007-02-07 2008-09-24 CODMAN & SHURTLEFF, INC. Endoscopic instrument holder
TWM318226U (en) 2007-02-09 2007-09-01 Guo-An Guo Structure for fast connection of waterproof cable connector
US7789883B2 (en) 2007-02-14 2010-09-07 Olympus Medical Systems Corp. Curative treatment system, curative treatment device, and treatment method for living tissue using energy
US7935114B2 (en) 2007-02-14 2011-05-03 Olympus Medical Systems Corp. Curative treatment system, curative treatment device, and treatment method for living tissue using energy
CA2678766C (en) 2007-02-25 2017-09-26 Baylis Medical Company Inc. Methods for control of energy delivery to multiple energy delivery devices
US20080208108A1 (en) 2007-02-28 2008-08-28 Kenichi Kimura Treatment apparatus for operation
US8848808B2 (en) 2007-03-01 2014-09-30 Lightfleet Corporation Time domain symbols
CA2680148C (en) 2007-03-06 2015-09-01 Tyco Healthcare Group Lp Surgical stapling apparatus
US7669747B2 (en) 2007-03-15 2010-03-02 Ethicon Endo-Surgery, Inc. Washer for use with a surgical stapling instrument
US20080234709A1 (en) 2007-03-22 2008-09-25 Houser Kevin L Ultrasonic surgical instrument and cartilage and bone shaping blades therefor
US8226675B2 (en) 2007-03-22 2012-07-24 Ethicon Endo-Surgery, Inc. Surgical instruments
US8057498B2 (en) 2007-11-30 2011-11-15 Ethicon Endo-Surgery, Inc. Ultrasonic surgical instrument blades
US8142461B2 (en) 2007-03-22 2012-03-27 Ethicon Endo-Surgery, Inc. Surgical instruments
JP5575490B2 (en) * 2007-03-22 2014-08-20 ć‚Øć‚·ć‚³ćƒ³ćƒ»ć‚Øćƒ³ćƒ‰āˆ’ć‚µćƒ¼ć‚ø悧ćƒŖć‚£ćƒ»ć‚¤ćƒ³ć‚³ćƒ¼ćƒćƒ¬ć‚¤ćƒ†ćƒƒćƒ‰ Ultrasonic surgical instrument blade
US8911460B2 (en) 2007-03-22 2014-12-16 Ethicon Endo-Surgery, Inc. Ultrasonic surgical instruments
US7862560B2 (en) 2007-03-23 2011-01-04 Arthrocare Corporation Ablation apparatus having reduced nerve stimulation and related methods
US8608745B2 (en) 2007-03-26 2013-12-17 DePuy Synthes Products, LLC System, apparatus, and method for cutting bone during an orthopaedic surgical procedure
US8056787B2 (en) 2007-03-28 2011-11-15 Ethicon Endo-Surgery, Inc. Surgical stapling and cutting instrument with travel-indicating retraction member
JP5197980B2 (en) 2007-03-29 2013-05-15 ć‚ŖćƒŖćƒ³ćƒ‘ć‚¹ćƒ”ćƒ‡ć‚£ć‚«ćƒ«ć‚·ć‚¹ćƒ†ćƒ ć‚ŗę Ŗ式会ē¤¾ Multi-joint bending mechanism and medical device with multi-joint bending mechanism
JP5074069B2 (en) 2007-03-29 2012-11-14 ć‚ŖćƒŖćƒ³ćƒ‘ć‚¹ćƒ”ćƒ‡ć‚£ć‚«ćƒ«ć‚·ć‚¹ćƒ†ćƒ ć‚ŗę Ŗ式会ē¤¾ Multi-joint bending mechanism and medical device with multi-joint bending mechanism
US8377044B2 (en) 2007-03-30 2013-02-19 Ethicon Endo-Surgery, Inc. Detachable end effectors
US20080243162A1 (en) 2007-04-02 2008-10-02 Norikiyo Shibata Trocar
US8187267B2 (en) 2007-05-23 2012-05-29 St. Jude Medical, Atrial Fibrillation Division, Inc. Ablation catheter with flexible tip and methods of making the same
US8267935B2 (en) 2007-04-04 2012-09-18 Tyco Healthcare Group Lp Electrosurgical instrument reducing current densities at an insulator conductor junction
US8951274B2 (en) 2007-04-06 2015-02-10 Hologic, Inc. Methods of high rate, low profile tissue removal
US9259233B2 (en) 2007-04-06 2016-02-16 Hologic, Inc. Method and device for distending a gynecological cavity
EP2134283B1 (en) 2007-04-06 2014-06-11 Hologic, Inc. System and device for tissue removal
US20080255413A1 (en) 2007-04-13 2008-10-16 Michael Zemlok Powered surgical instrument
US9050123B2 (en) 2007-04-16 2015-06-09 Smith & Nephew, Inc. Powered surgical system
WO2008130793A1 (en) 2007-04-17 2008-10-30 Tyco Healthcare Group Lp Electrical connector adapter
US8814856B2 (en) 2007-04-30 2014-08-26 Medtronic, Inc. Extension and retraction mechanism for a hand-held device
US20080275440A1 (en) 2007-05-03 2008-11-06 Medtronic, Inc. Post-ablation verification of lesion size
US20090327715A1 (en) 2007-05-04 2009-12-31 Smith Kevin W System and Method for Cryptographic Identification of Interchangeable Parts
GB0708783D0 (en) 2007-05-04 2007-06-13 Gyrus Medical Ltd Electrosurgical system
US20080281200A1 (en) 2007-05-10 2008-11-13 Misonix, Incorporated Elevated coupling liquid temperature during HIFU treatment method and hardware
US8641704B2 (en) 2007-05-11 2014-02-04 Medtronic Ablation Frontiers Llc Ablation therapy system and method for treating continuous atrial fibrillation
US8709008B2 (en) 2007-05-11 2014-04-29 Intuitive Surgical Operations, Inc. Visual electrode ablation systems
US7832611B2 (en) 2007-05-16 2010-11-16 The Invention Science Fund I, Llc Steerable surgical stapler
JP5019108B2 (en) 2007-05-22 2012-09-05 ć‚ŖćƒŖćƒ³ćƒ‘ć‚¹ę Ŗ式会ē¤¾ Treatment tool
GB0709994D0 (en) 2007-05-24 2007-07-04 Gyrus Medical Ltd Electrosurgical generator
US8409234B2 (en) 2007-05-25 2013-04-02 Hansen Medical, Inc. Rotational apparatus system and method for a robotic instrument system
US7810693B2 (en) 2007-05-30 2010-10-12 Ethicon Endo-Surgery, Inc. Surgical stapling and cutting instrument with articulatable end effector
US7549564B2 (en) 2007-06-22 2009-06-23 Ethicon Endo-Surgery, Inc. Surgical stapling instrument with an articulating end effector
US7798386B2 (en) 2007-05-30 2010-09-21 Ethicon Endo-Surgery, Inc. Surgical instrument articulation joint cover
US8157145B2 (en) 2007-05-31 2012-04-17 Ethicon Endo-Surgery, Inc. Pneumatically powered surgical cutting and fastening instrument with electrical feedback
US20080296346A1 (en) 2007-05-31 2008-12-04 Shelton Iv Frederick E Pneumatically powered surgical cutting and fastening instrument with electrical control and recording mechanisms
US7819299B2 (en) 2007-06-04 2010-10-26 Ethicon Endo-Surgery, Inc. Surgical instrument having a common trigger for actuating an end effector closing system and a staple firing system
US7832408B2 (en) 2007-06-04 2010-11-16 Ethicon Endo-Surgery, Inc. Surgical instrument having a directional switching mechanism
US8931682B2 (en) 2007-06-04 2015-01-13 Ethicon Endo-Surgery, Inc. Robotically-controlled shaft based rotary drive systems for surgical instruments
US8659208B1 (en) 2007-06-14 2014-02-25 Misonix, Inc. Waveform generator for driving electromechanical device
US20090023985A1 (en) 2007-06-14 2009-01-22 Usgi Medical, Inc. Endoluminal instrument management system
US8845630B2 (en) 2007-06-15 2014-09-30 Syneron Medical Ltd Devices and methods for percutaneous energy delivery
US7731072B2 (en) 2007-06-18 2010-06-08 Ethicon Endo-Surgery, Inc. Surgical stapling and cutting instrument with improved anvil opening features
GB2456533A (en) 2008-01-16 2009-07-22 Gyrus Medical Ltd Selection method for multi-instrument electrosurgical system
GB2450679A (en) 2007-06-19 2009-01-07 Gyrus Medical Ltd Electrosurgical System with status indicators on instruments
USD578643S1 (en) 2007-06-20 2008-10-14 Abbott Laboratories Medical device delivery handle
USD578645S1 (en) 2007-06-20 2008-10-14 Abbott Laboratories Medical device delivery handle
USD576725S1 (en) 2007-06-20 2008-09-09 Abbot Laboratories, Inc. Medical device delivery handle
USD578644S1 (en) 2007-06-20 2008-10-14 Abbott Laboratories Medical device delivery handle
US7604150B2 (en) 2007-06-22 2009-10-20 Ethicon Endo-Surgery, Inc. Surgical stapling instrument with an anti-back up mechanism
US7753245B2 (en) 2007-06-22 2010-07-13 Ethicon Endo-Surgery, Inc. Surgical stapling instruments
US7658311B2 (en) 2007-06-22 2010-02-09 Ethicon Endo-Surgery, Inc. Surgical stapling instrument with a geared return mechanism
US8408439B2 (en) 2007-06-22 2013-04-02 Ethicon Endo-Surgery, Inc. Surgical stapling instrument with an articulatable end effector
EP2170162B1 (en) 2007-06-26 2017-08-23 Vasonova, Inc. Apparatus for endovascular device guiding and positioning using physiological parameters
EP2162076B1 (en) 2007-06-29 2017-03-08 Covidien LP System for monitoring tissue during an electrosurgical procedure
US8328738B2 (en) 2007-06-29 2012-12-11 Actuated Medical, Inc. Medical tool for reduced penetration force with feedback means
US8105230B2 (en) 2007-07-09 2012-01-31 Olympus Medical Systems Corp. Medical system
US7834484B2 (en) 2007-07-16 2010-11-16 Tyco Healthcare Group Lp Connection cable and method for activating a voltage-controlled generator
DE102007034271A1 (en) 2007-07-19 2009-01-22 Celon Ag Medical Instruments High-frequency surgical device and method for its operation
US8702609B2 (en) 2007-07-27 2014-04-22 Meridian Cardiovascular Systems, Inc. Image-guided intravascular therapy catheters
US8808319B2 (en) 2007-07-27 2014-08-19 Ethicon Endo-Surgery, Inc. Surgical instruments
US8882791B2 (en) 2007-07-27 2014-11-11 Ethicon Endo-Surgery, Inc. Ultrasonic surgical instruments
US8523889B2 (en) 2007-07-27 2013-09-03 Ethicon Endo-Surgery, Inc. Ultrasonic end effectors with increased active length
US8257377B2 (en) 2007-07-27 2012-09-04 Ethicon Endo-Surgery, Inc. Multiple end effectors ultrasonic surgical instruments
US8348967B2 (en) 2007-07-27 2013-01-08 Ethicon Endo-Surgery, Inc. Ultrasonic surgical instruments
US8252012B2 (en) 2007-07-31 2012-08-28 Ethicon Endo-Surgery, Inc. Ultrasonic surgical instrument with modulator
US8430898B2 (en) 2007-07-31 2013-04-30 Ethicon Endo-Surgery, Inc. Ultrasonic surgical instruments
US8512365B2 (en) 2007-07-31 2013-08-20 Ethicon Endo-Surgery, Inc. Surgical instruments
US9044261B2 (en) 2007-07-31 2015-06-02 Ethicon Endo-Surgery, Inc. Temperature controlled ultrasonic surgical instruments
US20090043293A1 (en) 2007-08-10 2009-02-12 Eleme Medical Inc. Multi-module skin or body treatment device and the method of using
US20090048589A1 (en) 2007-08-14 2009-02-19 Tomoyuki Takashino Treatment device and treatment method for living tissue
US20090054886A1 (en) 2007-08-24 2009-02-26 Chie Yachi Surgical operating apparatus
US20090054894A1 (en) 2007-08-24 2009-02-26 Chie Yachi Surgical operating apparatus
GB0716590D0 (en) 2007-08-24 2007-10-03 Gyrus Medical Ltd Electrosurgical system
DE102007040358A1 (en) 2007-08-27 2009-03-05 Technische UniversitƤt MĆ¼nchen Trocar tube, trocar, obturator or rectoscope for transluminal endoscopic surgery over natural orifices
US8998891B2 (en) 2007-08-30 2015-04-07 Ellman International, Inc. Tri-frequency electrosurgical instrument
US8579897B2 (en) 2007-11-21 2013-11-12 Ethicon Endo-Surgery, Inc. Bipolar forceps
US8070036B1 (en) 2007-09-06 2011-12-06 Cardica, Inc True multi-fire surgical stapler configured to fire staples of different sizes
US7876030B2 (en) 2007-09-11 2011-01-25 Ngk Spark Plug Co., Ltd. Ultrasonic transducer which is either crimped or welded during assembly
US20090065565A1 (en) 2007-09-12 2009-03-12 Vascular Technologies, Inc. System, method and apparatus for preventing reuse of medical instruments
JP4104648B1 (en) 2007-09-13 2008-06-18 和征 ę¦ŠåŽŸ Battery pack
US20090076506A1 (en) 2007-09-18 2009-03-19 Surgrx, Inc. Electrosurgical instrument and method
DE102007044790A1 (en) 2007-09-19 2009-04-02 Dieter Mann One-hand device for eye surgery
US7877852B2 (en) 2007-09-20 2011-02-01 Tyco Healthcare Group Lp Method of manufacturing an end effector assembly for sealing tissue
US20090082766A1 (en) 2007-09-20 2009-03-26 Tyco Healthcare Group Lp Tissue Sealer and End Effector Assembly and Method of Manufacturing Same
DE102007047243A1 (en) 2007-09-25 2009-04-02 Karl Storz Gmbh & Co. Kg Bipolar medical instrument
US7703653B2 (en) 2007-09-28 2010-04-27 Tyco Healthcare Group Lp Articulation mechanism for surgical instrument
US20090088785A1 (en) 2007-09-28 2009-04-02 Shinya Masuda Surgical operating apparatus
AU2008221509B2 (en) * 2007-09-28 2013-10-10 Covidien Lp Dual durometer insulating boot for electrosurgical forceps
JP5403783B2 (en) 2007-10-05 2014-01-29 ć‚³ćƒ“ć‚£ćƒ‡ć‚£ć‚Øćƒ³ ćƒŖ惟惆惃惉 ćƒ‘ćƒ¼ćƒˆćƒŠćƒ¼ć‚·ćƒƒćƒ— Surgical stapler with articulation mechanism
USD594983S1 (en) 2007-10-05 2009-06-23 Ethicon Endo-Surgery, Inc. Handle assembly for surgical instrument
US8960520B2 (en) 2007-10-05 2015-02-24 Covidien Lp Method and apparatus for determining parameters of linear motion in a surgical instrument
US20130214025A1 (en) 2007-10-05 2013-08-22 Covidien Lp Powered surgical stapling device
US8967443B2 (en) 2007-10-05 2015-03-03 Covidien Lp Method and apparatus for determining parameters of linear motion in a surgical instrument
EP2217157A2 (en) 2007-10-05 2010-08-18 Ethicon Endo-Surgery, Inc. Ergonomic surgical instruments
US8535308B2 (en) 2007-10-08 2013-09-17 Biosense Webster (Israel), Ltd. High-sensitivity pressure-sensing probe
JP5587191B2 (en) * 2007-10-10 2014-09-10 ć‚Øć‚·ć‚³ćƒ³ćƒ»ć‚Øćƒ³ćƒ‰āˆ’ć‚µćƒ¼ć‚ø悧ćƒŖć‚£ćƒ»ć‚¤ćƒ³ć‚³ćƒ¼ćƒćƒ¬ć‚¤ćƒ†ćƒƒćƒ‰ Ultrasonic equipment for cutting and coagulation
EP2207595A4 (en) 2007-10-19 2012-10-24 Lockheed Corp System and method for conditioning animal tissue using laser light
US8070762B2 (en) 2007-10-22 2011-12-06 Atheromed Inc. Atherectomy devices and methods
US8460284B2 (en) 2007-10-26 2013-06-11 Encision, Inc. Multiple parameter fault detection in electrosurgical instrument shields
JP5364255B2 (en) 2007-10-31 2013-12-11 ćƒ†ćƒ«ćƒ¢ę Ŗ式会ē¤¾ Medical manipulator
EP2214562B1 (en) 2007-11-05 2016-04-27 Erbe Elektromedizin GmbH Surgical instrument for sealing blood vessels, and heat-curable adhesive as a medicament
WO2009062105A2 (en) 2007-11-08 2009-05-14 Angiodynamics, Inc. Device and method for providing power to lighting elements for use as a visual indicator in a medical probe
EP2211744A1 (en) 2007-11-13 2010-08-04 Boston Scientific Scimed, Inc. Apparatus system and method for coagulating and cutting tissue
EP2060238B1 (en) 2007-11-15 2012-02-15 Ewald Hensler Coagulation instrument
WO2009079155A2 (en) 2007-11-20 2009-06-25 The Cleveland Clinic Foundation Method and apparatus for tissue sampling
US8758342B2 (en) 2007-11-28 2014-06-24 Covidien Ag Cordless power-assisted medical cauterization and cutting device
US9050098B2 (en) 2007-11-28 2015-06-09 Covidien Ag Cordless medical cauterization and cutting device
US8377059B2 (en) 2007-11-28 2013-02-19 Covidien Ag Cordless medical cauterization and cutting device
US7901423B2 (en) 2007-11-30 2011-03-08 Ethicon Endo-Surgery, Inc. Folded ultrasonic end effectors with increased active length
US8663262B2 (en) 2007-12-03 2014-03-04 Covidien Ag Battery assembly for battery-powered surgical instruments
US8419757B2 (en) 2007-12-03 2013-04-16 Covidien Ag Cordless hand-held ultrasonic cautery cutting device
US8435257B2 (en) 2007-12-03 2013-05-07 Covidien Ag Cordless hand-held ultrasonic cautery cutting device and method
US8338726B2 (en) 2009-08-26 2012-12-25 Covidien Ag Two-stage switch for cordless hand-held ultrasonic cautery cutting device
US9017355B2 (en) * 2007-12-03 2015-04-28 Covidien Ag Battery-powered hand-held ultrasonic surgical cautery cutting device
US9314261B2 (en) 2007-12-03 2016-04-19 Covidien Ag Battery-powered hand-held ultrasonic surgical cautery cutting device
US8061014B2 (en) 2007-12-03 2011-11-22 Covidien Ag Method of assembling a cordless hand-held ultrasonic cautery cutting device
US9107690B2 (en) 2007-12-03 2015-08-18 Covidien Ag Battery-powered hand-held ultrasonic surgical cautery cutting device
EP2219533A4 (en) 2007-12-07 2013-12-18 Zevex Inc Method of inducing transverse motion in langevin type transducers using split electroding of ceramic elements
US9198715B2 (en) 2007-12-18 2015-12-01 Bovie Medical Corporation Surgical apparatus with removable tool cartridge
US20090163807A1 (en) 2007-12-21 2009-06-25 Sliwa John W Finger-mounted or robot-mounted transducer device
US9043018B2 (en) 2007-12-27 2015-05-26 Intuitive Surgical Operations, Inc. Medical device with orientable tip for robotically directed laser cutting and biomaterial application
US8562600B2 (en) 2007-12-27 2013-10-22 St. Jude Medical, Atrial Fibrillation Division, Inc. Integration of control software with a medical device and system
US8147488B2 (en) 2007-12-28 2012-04-03 Olympus Medical Systems Corp. Surgical operating apparatus
US8186877B2 (en) 2007-12-30 2012-05-29 St. Jude Medical, Atrial Fibrillation Division, Inc. Method and system for using common subchannel to assess the operating characteristics of transducers
US20090177119A1 (en) 2008-01-03 2009-07-09 Boston Scientific Scimed, Inc. Articulating intracorporeal medical device
US20090182331A1 (en) 2008-01-11 2009-07-16 Live Tissue Connect, Inc. Bipolar modular forceps cover assembly
US20090182322A1 (en) 2008-01-11 2009-07-16 Live Tissue Connect, Inc. Bipolar modular forceps modular arms
US20090182332A1 (en) 2008-01-15 2009-07-16 Ethicon Endo-Surgery, Inc. In-line electrosurgical forceps
US20090198272A1 (en) 2008-02-06 2009-08-06 Lawrence Kerver Method and apparatus for articulating the wrist of a laparoscopic grasping instrument
US8221418B2 (en) 2008-02-07 2012-07-17 Tyco Healthcare Group Lp Endoscopic instrument for tissue identification
US8561870B2 (en) 2008-02-13 2013-10-22 Ethicon Endo-Surgery, Inc. Surgical stapling instrument
BRPI0901282A2 (en) 2008-02-14 2009-11-17 Ethicon Endo Surgery Inc surgical cutting and fixation instrument with rf electrodes
US8636736B2 (en) 2008-02-14 2014-01-28 Ethicon Endo-Surgery, Inc. Motorized surgical cutting and fastening instrument
US8459525B2 (en) 2008-02-14 2013-06-11 Ethicon Endo-Sugery, Inc. Motorized surgical cutting and fastening instrument having a magnetic drive train torque limiting device
US9179912B2 (en) 2008-02-14 2015-11-10 Ethicon Endo-Surgery, Inc. Robotically-controlled motorized surgical cutting and fastening instrument
US8752749B2 (en) 2008-02-14 2014-06-17 Ethicon Endo-Surgery, Inc. Robotically-controlled disposable motor-driven loading unit
US8622274B2 (en) 2008-02-14 2014-01-07 Ethicon Endo-Surgery, Inc. Motorized cutting and fastening instrument having control circuit for optimizing battery usage
US8573465B2 (en) 2008-02-14 2013-11-05 Ethicon Endo-Surgery, Inc. Robotically-controlled surgical end effector system with rotary actuated closure systems
US8657174B2 (en) 2008-02-14 2014-02-25 Ethicon Endo-Surgery, Inc. Motorized surgical cutting and fastening instrument having handle based power source
US8758391B2 (en) 2008-02-14 2014-06-24 Ethicon Endo-Surgery, Inc. Interchangeable tools for surgical instruments
US7819298B2 (en) 2008-02-14 2010-10-26 Ethicon Endo-Surgery, Inc. Surgical stapling apparatus with control features operable with one hand
US8382792B2 (en) 2008-02-14 2013-02-26 Covidien Lp End effector assembly for electrosurgical device
US7861906B2 (en) 2008-02-14 2011-01-04 Ethicon Endo-Surgery, Inc. Surgical stapling apparatus with articulatable components
US7980443B2 (en) 2008-02-15 2011-07-19 Ethicon Endo-Surgery, Inc. End effectors for a surgical cutting and stapling instrument
US8608044B2 (en) 2008-02-15 2013-12-17 Ethicon Endo-Surgery, Inc. Feedback and lockout mechanism for surgical instrument
DE102008009623A1 (en) * 2008-02-18 2009-08-20 Kaltenbach & Voigt Gmbh Device for operating an electrically operated medical instrument
US8388646B2 (en) 2008-02-22 2013-03-05 Covidien Lp Monocoque jaw design
US20090216157A1 (en) * 2008-02-22 2009-08-27 Norihiro Yamada Ultrasonic operating apparatus
US8246575B2 (en) 2008-02-26 2012-08-21 Tyco Healthcare Group Lp Flexible hollow spine with locking feature and manipulation structure
GB2460392B (en) 2008-02-29 2012-08-01 Surgical Innovations Ltd Handle
EP3352107A1 (en) 2008-03-03 2018-07-25 NIKE Innovate C.V. Interactive athletic equipment system
DE102008013590A1 (en) 2008-03-11 2009-09-24 Epcos Ag Method for operating a piezoelectric element
US8328802B2 (en) 2008-03-19 2012-12-11 Covidien Ag Cordless medical cauterization and cutting device
US20090240244A1 (en) 2008-03-19 2009-09-24 Synergetics Usa, Inc. Electrosurgical Generator Having Boost Mode Control Based on Impedance
JP2009236177A (en) 2008-03-26 2009-10-15 Nok Corp Sealing structure
US9241768B2 (en) 2008-03-27 2016-01-26 St. Jude Medical, Atrial Fibrillation Division, Inc. Intelligent input device controller for a robotic catheter system
WO2009120992A2 (en) 2008-03-27 2009-10-01 St. Jude Medical, Arrial Fibrillation Division Inc. Robotic castheter system input device
ES2428719T3 (en) 2008-03-31 2013-11-11 Applied Medical Resources Corporation Electrosurgical system with means to measure tissue permittivity and conductivity
US20090248021A1 (en) 2008-03-31 2009-10-01 Tyco Healthcare Group Lp End Effector Assembly for Electrosurgical Devices and System for Using the Same
US8484833B2 (en) 2008-03-31 2013-07-16 Covidien Lp Automated assembly device to tolerate blade variation
US9642669B2 (en) 2008-04-01 2017-05-09 Olympus Corporation Treatment system, and treatment method for living tissue using energy
US8226665B2 (en) * 2008-04-04 2012-07-24 Tyco Healthcare Group Lp Ultrasonic needle driver
US20090254080A1 (en) * 2008-04-07 2009-10-08 Satoshi Honda Surgical operation apparatus
US20090254077A1 (en) 2008-04-08 2009-10-08 Tyco Healthcare Group Lp Arc Generation in a Fluid Medium
US20090259149A1 (en) 2008-04-15 2009-10-15 Naoko Tahara Power supply apparatus for operation
DE102008019380B4 (en) 2008-04-17 2012-11-22 Erbe Elektromedizin Gmbh Bipolar clamp for HF surgery
US20090270891A1 (en) 2008-04-18 2009-10-29 Jean Michael Beaupre Balanced ultrasonic curved blade
US20090264909A1 (en) 2008-04-18 2009-10-22 Jean Michael Beaupre Ultrasonic shears stop pad
US8357158B2 (en) 2008-04-22 2013-01-22 Covidien Lp Jaw closure detection system
WO2009132359A2 (en) 2008-04-25 2009-10-29 Downey Earl C Laparoscopic surgical instrument
US8348947B2 (en) 2008-04-25 2013-01-08 Olympus Medical Systems Corp. Treatment system, and treatment method for living tissue using energy
US20090270853A1 (en) 2008-04-28 2009-10-29 Chie Yachi Surgical operating apparatus
CA2722972A1 (en) 2008-05-05 2009-11-12 Stryker Corporation Surgical tool system including a tool and a console, the console capable of reading data from a memory integral with the tool over the conductors over which power is sourced to the tool
US20090287205A1 (en) 2008-05-16 2009-11-19 Boston Scientific Scimed, Inc. Systems and methods for preventing tissue popping caused by bubble expansion during tissue ablation
US7922061B2 (en) 2008-05-21 2011-04-12 Ethicon Endo-Surgery, Inc. Surgical instrument with automatically reconfigurable articulating end effector
GB0809243D0 (en) 2008-05-21 2008-06-25 Sra Dev Ltd Improved torsional mode tissue dissector
GB0809461D0 (en) 2008-05-23 2008-07-02 Gyrus Medical Ltd An electrosurgical generator and system
US9402680B2 (en) 2008-05-27 2016-08-02 Maquet Cardiovasular, Llc Surgical instrument and method
US8357149B2 (en) 2008-06-05 2013-01-22 Biosense Webster, Inc. Filter for simultaneous pacing and ablation
US8403926B2 (en) 2008-06-05 2013-03-26 Ethicon Endo-Surgery, Inc. Manually articulating devices
US8437832B2 (en) 2008-06-06 2013-05-07 Biosense Webster, Inc. Catheter with bendable tip
CN102014759B (en) 2008-06-11 2012-12-26 韩商ęœŖę„č‚”ä»½ęœ‰é™å…¬åø Instrument of surgical robot arm
JP5379501B2 (en) 2008-06-19 2013-12-25 ć‚ŖćƒŖćƒ³ćƒ‘ć‚¹ćƒ”ćƒ‡ć‚£ć‚«ćƒ«ć‚·ć‚¹ćƒ†ćƒ ć‚ŗę Ŗ式会ē¤¾ Ultrasonic treatment device
JP5430161B2 (en) 2008-06-19 2014-02-26 ć‚ŖćƒŖćƒ³ćƒ‘ć‚¹ćƒ”ćƒ‡ć‚£ć‚«ćƒ«ć‚·ć‚¹ćƒ†ćƒ ć‚ŗę Ŗ式会ē¤¾ Ultrasonic surgical device
US7543730B1 (en) 2008-06-24 2009-06-09 Tyco Healthcare Group Lp Segmented drive member for surgical instruments
JP2010009686A (en) 2008-06-27 2010-01-14 Pioneer Electronic Corp Optical disk reading apparatus, its management information providing method, management information providing program, computer readable recording medium-recorded management information providing program, and optical disk reproduction system
US8340726B1 (en) 2008-06-30 2012-12-25 Iwao Fujisaki Communication device
US9265567B2 (en) 2008-06-30 2016-02-23 Intuitive Surgical Operations, Inc. Vessel sealing instrument with stepped jaw
DE102008038314A1 (en) 2008-06-30 2010-01-07 Erbe Elektromedizin Gmbh An electrosurgical generator for treating a biological tissue, a method for controlling an output voltage of an electrosurgical generator, and corresponding use of the ESR
AU2009268582B2 (en) 2008-07-08 2014-08-07 Covidien Lp Surgical attachment for use with a robotic surgical system
US8262563B2 (en) 2008-07-14 2012-09-11 Ethicon Endo-Surgery, Inc. Endoscopic translumenal articulatable steerable overtube
US9204923B2 (en) 2008-07-16 2015-12-08 Intuitive Surgical Operations, Inc. Medical instrument electronically energized using drive cables
US8771270B2 (en) 2008-07-16 2014-07-08 Intuitive Surgical Operations, Inc. Bipolar cautery instrument
JP4267055B1 (en) 2008-07-18 2009-05-27 č¦ę–¹ ē”°ē†Š Suction catheter and suction catheter system
FR2934390B1 (en) 2008-07-22 2010-08-13 St Microelectronics Rousset MULTICANAL TRANSMISSION ON A UNIFIL BUS
JP5384869B2 (en) 2008-07-24 2014-01-08 ć‚ŖćƒŖćƒ³ćƒ‘ć‚¹ćƒ”ćƒ‡ć‚£ć‚«ćƒ«ć‚·ć‚¹ćƒ†ćƒ ć‚ŗę Ŗ式会ē¤¾ Endoscopic treatment system
US9247953B2 (en) 2008-08-01 2016-02-02 Syntheon, Llc Medical ultrasonic cauterization and cutting device and method
US8801752B2 (en) 2008-08-04 2014-08-12 Covidien Lp Articulating surgical device
US8968355B2 (en) 2008-08-04 2015-03-03 Covidien Lp Articulating surgical device
US8058771B2 (en) 2008-08-06 2011-11-15 Ethicon Endo-Surgery, Inc. Ultrasonic device for cutting and coagulating with stepped output
US8529437B2 (en) 2008-08-06 2013-09-10 Encision, Inc. Multifunctional surgical instrument with flexible end effector tools
US9089360B2 (en) 2008-08-06 2015-07-28 Ethicon Endo-Surgery, Inc. Devices and techniques for cutting and coagulating tissue
US20100036370A1 (en) 2008-08-07 2010-02-11 Al Mirel Electrosurgical instrument jaw structure with cutting tip
US8454599B2 (en) 2008-08-13 2013-06-04 Olympus Medical Systems Corp. Treatment apparatus and electro-surgical device
US8257387B2 (en) 2008-08-15 2012-09-04 Tyco Healthcare Group Lp Method of transferring pressure in an articulating surgical instrument
US8361569B2 (en) 2008-08-28 2013-01-29 Jnc Corporation Liquid crystal composition and liquid crystal display device
US8795274B2 (en) 2008-08-28 2014-08-05 Covidien Lp Tissue fusion jaw angle improvement
US8974477B2 (en) * 2008-08-29 2015-03-10 Olympus Medical Systems Corp. Ultrasonic operating apparatus
US20100057118A1 (en) * 2008-09-03 2010-03-04 Dietz Timothy G Ultrasonic surgical blade
US20100063528A1 (en) * 2008-09-05 2010-03-11 Beaupre Jean Michael Ultrasonic shears actuating mechanism
US20100063525A1 (en) 2008-09-05 2010-03-11 Jean Michael Beaupre Ultrasonic shears force limiting
EP2339950A4 (en) 2008-09-08 2014-02-26 Fujifilm Corp Endoscope system, method of using the same, assisting tool and adapter
WO2010030850A2 (en) 2008-09-12 2010-03-18 Ethicon Endo-Surgery, Inc. Ultrasonic device for fingertip control
US20100069903A1 (en) 2008-09-18 2010-03-18 Tyco Healthcare Group Lp Vessel Sealing Instrument With Cutting Mechanism
US7832612B2 (en) 2008-09-19 2010-11-16 Ethicon Endo-Surgery, Inc. Lockout arrangement for a surgical stapler
US9386983B2 (en) 2008-09-23 2016-07-12 Ethicon Endo-Surgery, Llc Robotically-controlled motorized surgical instrument
US9050083B2 (en) 2008-09-23 2015-06-09 Ethicon Endo-Surgery, Inc. Motorized surgical instrument
US8210411B2 (en) 2008-09-23 2012-07-03 Ethicon Endo-Surgery, Inc. Motor-driven surgical cutting instrument
US8328761B2 (en) 2008-09-30 2012-12-11 Ethicon Endo-Surgery, Inc. Variable surgical access device
US7967602B2 (en) 2008-10-07 2011-06-28 John Theodore Lindquist Pliers for forming orthodontic wires
US8608045B2 (en) 2008-10-10 2013-12-17 Ethicon Endo-Sugery, Inc. Powered surgical cutting and stapling apparatus with manually retractable firing system
US8020743B2 (en) 2008-10-15 2011-09-20 Ethicon Endo-Surgery, Inc. Powered articulatable surgical cutting and fastening instrument with flexible drive member
US20100106173A1 (en) 2008-10-23 2010-04-29 Hideto Yoshimine Ultrasonic surgical device
WO2010053108A1 (en) 2008-11-05 2010-05-14 ę Ŗ式会ē¤¾ ę—„ē«‹ćƒ”ćƒ‡ć‚£ć‚³ Phase shift inverter, x-ray high-voltage device using same, x-ray ct device, and x-ray imaging device
EP3173043A1 (en) 2008-11-11 2017-05-31 Shifamed Holdings, LLC Low profile electrode assembly
US20110313415A1 (en) 2008-11-11 2011-12-22 The Board Of Regents Of The University Of Texas System Medical Devices, Apparatuses, Systems, and Methods
JP5271050B2 (en) 2008-11-20 2013-08-21 ć‚¢ć‚ŗćƒ“ćƒ«ę Ŗ式会ē¤¾ Hume food management system and management method
US8197479B2 (en) 2008-12-10 2012-06-12 Tyco Healthcare Group Lp Vessel sealer and divider
WO2010068783A1 (en) 2008-12-12 2010-06-17 Corindus Inc. Remote catheter procedure system
US20100168741A1 (en) * 2008-12-29 2010-07-01 Hideo Sanai Surgical operation apparatus
CN101474081A (en) 2008-12-30 2009-07-08 ę·±åœ³åø‚č“éŸµå®žäøšęœ‰é™å…¬åø Device for producing orthogonal local oscillation signal in continuous Doppler ultrasound imaging system
WO2010078428A1 (en) 2008-12-30 2010-07-08 Optimyst Systems, Inc. Ophthalmic fluid delivery system
US8303579B2 (en) 2008-12-31 2012-11-06 Olympus Medical Systems Corp. Surgical operation system and surgical operation method
US8864757B2 (en) 2008-12-31 2014-10-21 St. Jude Medical, Atrial Fibrillation Division, Inc. System and method for measuring force and torque applied to a catheter electrode tip
JP5773884B2 (en) 2008-12-31 2015-09-02 ć‚»ćƒ³ćƒˆćƒ»ć‚øćƒ„ćƒ¼ćƒ‰ćƒ»ćƒ”ćƒ‡ć‚£ć‚«ćƒ«ćƒ»ć‚Ø悤惈ćƒŖć‚¢ćƒ«ćƒ»ćƒ•ć‚£ćƒ–ćƒŖćƒ¬ćƒ¼ć‚·ćƒ§ćƒ³ćƒ»ćƒ‡ć‚£ćƒ“ć‚£ć‚øćƒ§ćƒ³ćƒ»ć‚¤ćƒ³ć‚³ćƒ¼ćƒćƒ¬ćƒ¼ćƒ†ćƒƒćƒ‰ Robot catheter system input device
AU2010203588B2 (en) 2009-01-07 2014-01-16 Liquet Technologies, Inc. Tissue removal devices, systems and methods
US8361066B2 (en) 2009-01-12 2013-01-29 Ethicon Endo-Surgery, Inc. Electrical ablation devices
US8211100B2 (en) 2009-01-12 2012-07-03 Tyco Healthcare Group Lp Energy delivery algorithm for medical devices based on maintaining a fixed position on a tissue electrical conductivity v. temperature curve
US8602031B2 (en) 2009-01-12 2013-12-10 Hansen Medical, Inc. Modular interfaces and drive actuation through barrier
US8235917B2 (en) 2009-01-13 2012-08-07 Tyco Healthcare Group Lp Wireless electrosurgical controller
CN102281819B (en) 2009-01-14 2014-12-17 ēš‡å®¶é£žåˆ©ęµ¦ē”µå­č‚”ä»½ęœ‰é™å…¬åø Monitoring apparatus for monitoring an ablation procedure
US20100187283A1 (en) 2009-01-26 2010-07-29 Lawrence Crainich Method For Feeding Staples In a Low Profile Surgical Stapler
US8287485B2 (en) 2009-01-28 2012-10-16 Olympus Medical Systems Corp. Treatment system for surgery and control method of treatment system for surgery
US20110278343A1 (en) 2009-01-29 2011-11-17 Cardica, Inc. Clamping of Hybrid Surgical Instrument
US8989855B2 (en) 2009-01-30 2015-03-24 Medtronic Xomed, Inc. Nerve monitoring during electrosurgery
US8397971B2 (en) 2009-02-05 2013-03-19 Ethicon Endo-Surgery, Inc. Sterilizable surgical instrument
US8414577B2 (en) 2009-02-05 2013-04-09 Ethicon Endo-Surgery, Inc. Surgical instruments and components for use in sterile environments
US8485413B2 (en) 2009-02-05 2013-07-16 Ethicon Endo-Surgery, Inc. Surgical stapling instrument comprising an articulation joint
US8696917B2 (en) 2009-02-09 2014-04-15 Edwards Lifesciences Corporation Analyte sensor and fabrication methods
DE102009010101A1 (en) 2009-02-24 2010-08-26 Karl Storz Gmbh & Co. Kg Medical instrument for grasping surgical sutures
CA2751588A1 (en) 2009-02-26 2010-09-02 Stryker Corporation Surgical tool arrangement having a handpiece usable with multiple surgical tools
US20100228250A1 (en) 2009-03-05 2010-09-09 Intuitive Surgical Operations, Inc. Cut and seal instrument
US8858547B2 (en) 2009-03-05 2014-10-14 Intuitive Surgical Operations, Inc. Cut and seal instrument
EP2403421B1 (en) 2009-03-05 2019-07-31 Covidien LP Endoscopic vessel sealer and divider having a flexible articulating shaft
US8055208B2 (en) 2009-03-09 2011-11-08 Mettler-Toledo, Inc. Low energy data communication circuit for hazardous or nonhazardous environments
US8418073B2 (en) 2009-03-09 2013-04-09 Intuitive Surgical Operations, Inc. User interfaces for electrosurgical tools in robotic surgical systems
US8423182B2 (en) 2009-03-09 2013-04-16 Intuitive Surgical Operations, Inc. Adaptable integrated energy control system for electrosurgical tools in robotic surgical systems
US20120053597A1 (en) 2009-03-10 2012-03-01 Mcmaster University Mobile robotic surgical system
DE102009012600B3 (en) 2009-03-11 2010-10-28 Erbe Elektromedizin Gmbh High-frequency surgical generator
US9351642B2 (en) 2009-03-12 2016-05-31 The General Hospital Corporation Non-contact optical system, computer-accessible medium and method for measurement at least one mechanical property of tissue using coherent speckle technique(s)
US20100234906A1 (en) 2009-03-16 2010-09-16 Pacesetter, Inc. System and method for controlling rate-adaptive pacing based on a cardiac force-frequency relation detected by an implantable medical device
US8597287B2 (en) 2009-03-17 2013-12-03 Stryker Corporation Method and system for varying output intensity of energy applied to an electrosurgical probe
US8298225B2 (en) 2009-03-19 2012-10-30 Tyco Healthcare Group Lp System and method for return electrode monitoring
US8066167B2 (en) 2009-03-23 2011-11-29 Ethicon Endo-Surgery, Inc. Circular surgical stapling instrument with anvil locking system
CN102123670B (en) 2009-03-24 2014-03-19 å„„ęž—å·“ę–Æ医ē–—ę Ŗ式会ē¤¾ Robot system for endoscope treatment
US9277969B2 (en) 2009-04-01 2016-03-08 Covidien Lp Microwave ablation system with user-controlled ablation size and method of use
US8251994B2 (en) 2009-04-07 2012-08-28 Tyco Healthcare Group Lp Vessel sealer and divider with blade deployment alarm
US8287532B2 (en) 2009-04-13 2012-10-16 Biosense Webster, Inc. Epicardial mapping and ablation catheter
US10045819B2 (en) 2009-04-14 2018-08-14 Covidien Lp Frequency identification for microwave ablation probes
US8523852B2 (en) 2009-04-17 2013-09-03 Domain Surgical, Inc. Thermally adjustable surgical tool system
US20100274160A1 (en) 2009-04-22 2010-10-28 Chie Yachi Switching structure and surgical equipment
US20100274278A1 (en) 2009-04-22 2010-10-28 Pare Surgical, Inc. Endoscopic tissue grasping apparatus and method
US8277446B2 (en) 2009-04-24 2012-10-02 Tyco Healthcare Group Lp Electrosurgical tissue sealer and cutter
USD621503S1 (en) 2009-04-28 2010-08-10 Tyco Healthcare Group Ip Pistol grip laparoscopic sealing and dissection device
US8738110B2 (en) 2009-05-01 2014-05-27 Livermore National Security, Llc Rigid spine reinforced polymer microelectrode array probe and method of fabrication
RU2405603C1 (en) 2009-05-04 2010-12-10 Š’Š°Š»ŠµŃ€ŠøŠ¹ Š’ŠøŠŗтŠ¾Ń€Š¾Š²Šøч ŠŸŠµŠ“Š“ŠµŃ€ High-amplitude acoustic system for ultrasonic surgery and therapy
US8246615B2 (en) 2009-05-19 2012-08-21 Vivant Medical, Inc. Tissue impedance measurement using a secondary frequency
US20100298743A1 (en) 2009-05-20 2010-11-25 Ethicon Endo-Surgery, Inc. Thermally-activated coupling arrangements and methods for attaching tools to ultrasonic surgical instruments
US9700339B2 (en) 2009-05-20 2017-07-11 Ethicon Endo-Surgery, Inc. Coupling arrangements and methods for attaching tools to ultrasonic surgical instruments
US8056720B2 (en) 2009-05-28 2011-11-15 Symmetry Medical Manufacturing, Inc. Method and system for medical instrument sterilization containers
US8845537B2 (en) * 2009-06-03 2014-09-30 Olympus Medical Systems Corp. Ultrasound operation apparatus, ultrasound operation system, and cavitation utilization method
JP5462530B2 (en) 2009-06-03 2014-04-02 国ē«‹å¤§å­¦ę³•äŗŗ ę±äŗ¬åŒ»ē§‘ę­Æē§‘大学 Heat generating apparatus and biological tissue bonding apparatus
US8344596B2 (en) 2009-06-24 2013-01-01 Ethicon Endo-Surgery, Inc. Transducer arrangements for ultrasonic surgical instruments
US20100331742A1 (en) * 2009-06-26 2010-12-30 Shinya Masuda Surgical operating apparatus
WO2011004449A1 (en) 2009-07-06 2011-01-13 ć‚ŖćƒŖćƒ³ćƒ‘ć‚¹ćƒ”ćƒ‡ć‚£ć‚«ćƒ«ć‚·ć‚¹ćƒ†ćƒ ć‚ŗę Ŗ式会ē¤¾ Ultrasonic surgery apparatus
US8246618B2 (en) 2009-07-08 2012-08-21 Tyco Healthcare Group Lp Electrosurgical jaws with offset knife
WO2011008672A2 (en) 2009-07-15 2011-01-20 Ethicon Endo-Surgery, Inc. Electrosurgery generator for ultrasonic surgical instruments
US8461744B2 (en) 2009-07-15 2013-06-11 Ethicon Endo-Surgery, Inc. Rotating transducer mount for ultrasonic surgical instruments
US8663220B2 (en) 2009-07-15 2014-03-04 Ethicon Endo-Surgery, Inc. Ultrasonic surgical instruments
US9017326B2 (en) 2009-07-15 2015-04-28 Ethicon Endo-Surgery, Inc. Impedance monitoring apparatus, system, and method for ultrasonic surgical instruments
US9375281B2 (en) 2009-07-20 2016-06-28 Koninklijke Philips N.V. Light application apparatus for applying light to an object
GB2472216A (en) 2009-07-28 2011-02-02 Gyrus Medical Ltd Bipolar electrosurgical instrument with four electrodes
US8932282B2 (en) 2009-08-03 2015-01-13 Covidien Lp Power level transitioning in a surgical instrument
US8647350B2 (en) 2009-08-11 2014-02-11 Raptor Ridge, Llc Delivery device and method for compliant tissue fasteners
US7956620B2 (en) 2009-08-12 2011-06-07 Tyco Healthcare Group Lp System and method for augmented impedance sensing
US8430876B2 (en) 2009-08-27 2013-04-30 Tyco Healthcare Group Lp Vessel sealer and divider with knife lockout
US8747351B2 (en) 2009-08-28 2014-06-10 Biosense Webster, Inc. Catheter with multi-functional control handle having linear mechanism
US8568412B2 (en) 2009-09-09 2013-10-29 Covidien Lp Apparatus and method of controlling cutting blade travel through the use of etched features
US8974932B2 (en) 2009-09-14 2015-03-10 Warsaw Orthopedic, Inc. Battery powered surgical tool with guide wire
DE102009041329A1 (en) 2009-09-15 2011-03-24 Celon Ag Medical Instruments Combined Ultrasonic and HF Surgical System
WO2011033874A1 (en) 2009-09-15 2011-03-24 ć‚ŖćƒŖćƒ³ćƒ‘ć‚¹ćƒ”ćƒ‡ć‚£ć‚«ćƒ«ć‚·ć‚¹ćƒ†ćƒ ć‚ŗę Ŗ式会ē¤¾ Treatment instrument for endoscope
WO2011060031A1 (en) 2009-09-23 2011-05-19 Intuitive Surgical Operations, Inc. Curved cannula surgical system
US20110071523A1 (en) 2009-09-23 2011-03-24 Tyco Healthcare Group Lp Vessel Sealer with Self-Aligning Jaws
US8568400B2 (en) 2009-09-23 2013-10-29 Covidien Lp Methods and apparatus for smart handset design in surgical instruments
US8323310B2 (en) 2009-09-29 2012-12-04 Covidien Lp Vessel sealing jaw with offset sealing surface
US9820806B2 (en) 2009-09-29 2017-11-21 Covidien Lp Switch assembly for electrosurgical instrument
US8292886B2 (en) 2009-10-06 2012-10-23 Tyco Healthcare Group Lp Apparatus, system, and method for performing an electrosurgical procedure
US9039695B2 (en) 2009-10-09 2015-05-26 Ethicon Endo-Surgery, Inc. Surgical generator for ultrasonic and electrosurgical devices
US10441345B2 (en) 2009-10-09 2019-10-15 Ethicon Llc Surgical generator for ultrasonic and electrosurgical devices
US10172669B2 (en) 2009-10-09 2019-01-08 Ethicon Llc Surgical instrument comprising an energy trigger lockout
US8906016B2 (en) 2009-10-09 2014-12-09 Ethicon Endo-Surgery, Inc. Surgical instrument for transmitting energy to tissue comprising steam control paths
US9168054B2 (en) 2009-10-09 2015-10-27 Ethicon Endo-Surgery, Inc. Surgical generator for ultrasonic and electrosurgical devices
CA2777105C (en) 2009-10-09 2018-03-27 Ethicon Endo-Surgery, Inc. Surgical instrument surgical instrument comprising first and second drive systems actuatable by a common trigger mechanism
US8747404B2 (en) 2009-10-09 2014-06-10 Ethicon Endo-Surgery, Inc. Surgical instrument for transmitting energy to tissue comprising non-conductive grasping portions
US8574231B2 (en) 2009-10-09 2013-11-05 Ethicon Endo-Surgery, Inc. Surgical instrument for transmitting energy to tissue comprising a movable electrode or insulator
US8141762B2 (en) 2009-10-09 2012-03-27 Ethicon Endo-Surgery, Inc. Surgical stapler comprising a staple pocket
USRE47996E1 (en) 2009-10-09 2020-05-19 Ethicon Llc Surgical generator for ultrasonic and electrosurgical devices
US8623011B2 (en) 2009-10-09 2014-01-07 Ethicon Endo-Surgery, Inc. Magnetic surgical sled with locking arm
US11090104B2 (en) 2009-10-09 2021-08-17 Cilag Gmbh International Surgical generator for ultrasonic and electrosurgical devices
US8939974B2 (en) 2009-10-09 2015-01-27 Ethicon Endo-Surgery, Inc. Surgical instrument comprising first and second drive systems actuatable by a common trigger mechanism
US8038693B2 (en) 2009-10-21 2011-10-18 Tyco Healthcare Group Ip Methods for ultrasonic tissue sensing and feedback
WO2011052939A2 (en) 2009-10-26 2011-05-05 ģ£¼ģ‹ķšŒģ‚¬ ģ“ķ„“ Surgical instrument and adapter for single port surgery
US8460288B2 (en) 2009-10-28 2013-06-11 Olympus Corporation Biological-tissue joining apparatus
WO2011052391A1 (en) 2009-10-28 2011-05-05 ć‚ŖćƒŖćƒ³ćƒ‘ć‚¹ćƒ”ćƒ‡ć‚£ć‚«ćƒ«ć‚·ć‚¹ćƒ†ćƒ ć‚ŗę Ŗ式会ē¤¾ Medical device
US8388647B2 (en) 2009-10-28 2013-03-05 Covidien Lp Apparatus for tissue sealing
JP4704520B1 (en) 2009-10-28 2011-06-15 ć‚ŖćƒŖćƒ³ćƒ‘ć‚¹ćƒ”ćƒ‡ć‚£ć‚«ćƒ«ć‚·ć‚¹ćƒ†ćƒ ć‚ŗę Ŗ式会ē¤¾ High-frequency surgical apparatus and medical device operating method
EP2468203B1 (en) 2009-10-28 2013-12-25 Olympus Medical Systems Corp. Medical device
US20110112400A1 (en) 2009-11-06 2011-05-12 Ardian, Inc. High intensity focused ultrasound catheter apparatuses, systems, and methods for renal neuromodulation
DE102009046561A1 (en) 2009-11-10 2011-05-12 Robert Bosch Gmbh Method for operating at least one ultrasonic transducer
CN102596087B (en) 2009-11-13 2015-07-22 ē›“č§‚å¤–ē§‘ꉋęœÆę“ä½œå…¬åø Motor interface for parallel drive shafts within an independently rotating member
US8521331B2 (en) 2009-11-13 2013-08-27 Intuitive Surgical Operations, Inc. Patient-side surgeon interface for a minimally invasive, teleoperated surgical instrument
US8610501B2 (en) 2009-11-16 2013-12-17 Covidien Lp Class resonant-H electrosurgical generators
US20110125151A1 (en) 2009-11-24 2011-05-26 Strauss Timo High frequency surgical device
US9241730B2 (en) * 2009-11-25 2016-01-26 Eliaz Babaev Ultrasound surgical saw
CN102665584A (en) 2009-11-27 2012-09-12 å„„ęž—å·“ę–Æ医ē–—ę Ŗ式会ē¤¾ Instrument for therapeutic treatment, device for therapeutic treatment and method for therapeutic treatment
US8070711B2 (en) 2009-12-09 2011-12-06 Alcon Research, Ltd. Thermal management algorithm for phacoemulsification system
US8136712B2 (en) 2009-12-10 2012-03-20 Ethicon Endo-Surgery, Inc. Surgical stapler with discrete staple height adjustment and tactile feedback
JP5293586B2 (en) 2009-12-15 2013-09-18 åƌ士通ę Ŗ式会ē¤¾ Non-contact IC card system
US10039588B2 (en) 2009-12-16 2018-08-07 Covidien Lp System and method for tissue sealing
CN102100582A (en) 2009-12-16 2011-06-22 余姚åø‚ęŸ³å¶åˆ€åŒ»ē–—å™Øę¢°ē§‘ęŠ€ęœ‰é™å…¬åø Rotatable wrist minimally-invasive electrode
USD627066S1 (en) 2009-12-18 2010-11-09 Tyco Healthcare Group Lp Surgical instrument handle
US8591459B2 (en) 2009-12-21 2013-11-26 Ethicon Endo-Surgery, Inc. Use of biomarkers and therapeutic agents with surgical devices
DK2515770T3 (en) 2009-12-22 2019-02-25 Cook Medical Technologies Llc MEDICAL DEVICES WITH REMOVABLE THREADABLE BUYERS
US8851354B2 (en) 2009-12-24 2014-10-07 Ethicon Endo-Surgery, Inc. Surgical cutting instrument that analyzes tissue thickness
US8220688B2 (en) 2009-12-24 2012-07-17 Ethicon Endo-Surgery, Inc. Motor-driven surgical cutting instrument with electric actuator directional control assembly
US8267300B2 (en) 2009-12-30 2012-09-18 Ethicon Endo-Surgery, Inc. Dampening device for endoscopic surgical stapler
CN102596079B (en) 2010-01-21 2014-08-13 å„„ęž—å·“ę–Æ医ē–—ę Ŗ式会ē¤¾ Surgical treatment device
JP5231659B2 (en) 2010-01-22 2013-07-10 ć‚ŖćƒŖćƒ³ćƒ‘ć‚¹ćƒ”ćƒ‡ć‚£ć‚«ćƒ«ć‚·ć‚¹ćƒ†ćƒ ć‚ŗę Ŗ式会ē¤¾ Therapeutic treatment device
US8374670B2 (en) 2010-01-22 2013-02-12 Biosense Webster, Inc. Catheter having a force sensing distal tip
US8556929B2 (en) 2010-01-29 2013-10-15 Covidien Lp Surgical forceps capable of adjusting seal plate width based on vessel size
KR101638393B1 (en) 2010-01-29 2016-07-11 ģ‚¼ģ„±ģ „ģžģ£¼ģ‹ķšŒģ‚¬ Apparatus and method for displaying capacity and charging/discharging state of battery in poertable device
US8328061B2 (en) 2010-02-02 2012-12-11 Covidien Lp Surgical instrument for joining tissue
DE102010015899B4 (en) 2010-02-04 2022-07-28 Erbe Elektromedizin Gmbh Electrosurgical assembly and electrosurgical instrument
US8486096B2 (en) 2010-02-11 2013-07-16 Ethicon Endo-Surgery, Inc. Dual purpose surgical instrument for cutting and coagulating tissue
US8579928B2 (en) 2010-02-11 2013-11-12 Ethicon Endo-Surgery, Inc. Outer sheath and blade arrangements for ultrasonic surgical instruments
US8961547B2 (en) 2010-02-11 2015-02-24 Ethicon Endo-Surgery, Inc. Ultrasonic surgical instruments with moving cutting implement
US8951272B2 (en) * 2010-02-11 2015-02-10 Ethicon Endo-Surgery, Inc. Seal arrangements for ultrasonically powered surgical instruments
US8469981B2 (en) 2010-02-11 2013-06-25 Ethicon Endo-Surgery, Inc. Rotatable cutting implement arrangements for ultrasonic surgical instruments
US8419759B2 (en) * 2010-02-11 2013-04-16 Ethicon Endo-Surgery, Inc. Ultrasonic surgical instrument with comb-like tissue trimming device
US8382782B2 (en) 2010-02-11 2013-02-26 Ethicon Endo-Surgery, Inc. Ultrasonic surgical instruments with partially rotating blade and fixed pad arrangement
US9259234B2 (en) 2010-02-11 2016-02-16 Ethicon Endo-Surgery, Llc Ultrasonic surgical instruments with rotatable blade and hollow sheath arrangements
US8323302B2 (en) 2010-02-11 2012-12-04 Ethicon Endo-Surgery, Inc. Methods of using ultrasonically powered surgical instruments with rotatable cutting implements
US8531064B2 (en) 2010-02-11 2013-09-10 Ethicon Endo-Surgery, Inc. Ultrasonically powered surgical instruments with rotating cutting implement
US8585727B2 (en) 2010-02-14 2013-11-19 Oscar R. Polo Tissue severing devices and methods
USD631155S1 (en) 2010-02-23 2011-01-18 Cambridge Endoscopic Devices, Inc. Medical instrument
US8403945B2 (en) 2010-02-25 2013-03-26 Covidien Lp Articulating endoscopic surgical clip applier
US8439912B2 (en) 2010-02-26 2013-05-14 Covidien Lp De-tensioning mechanism for articulation drive cables
US9107684B2 (en) 2010-03-05 2015-08-18 Covidien Lp System and method for transferring power to intrabody instruments
US8864761B2 (en) 2010-03-10 2014-10-21 Covidien Lp System and method for determining proximity relative to a critical structure
US9165114B2 (en) 2010-03-11 2015-10-20 Koninklijke Philips N.V. Method and system for characterizing and visualizing electromagnetic tracking errors
US8827992B2 (en) 2010-03-26 2014-09-09 Aesculap Ag Impedance mediated control of power delivery for electrosurgery
US8696665B2 (en) 2010-03-26 2014-04-15 Ethicon Endo-Surgery, Inc. Surgical cutting and sealing instrument with reduced firing force
US8419727B2 (en) 2010-03-26 2013-04-16 Aesculap Ag Impedance mediated power delivery for electrosurgery
CN102470008B (en) 2010-03-31 2015-04-08 å„„ęž—å·“ę–Æ医ē–—ę Ŗ式会ē¤¾ Medical apparatus
USD638540S1 (en) 2010-04-08 2011-05-24 Terumo Kabushiki Kaisha Manipulator system operating handle for medical use
US8709035B2 (en) 2010-04-12 2014-04-29 Ethicon Endo-Surgery, Inc. Electrosurgical cutting and sealing instruments with jaws having a parallel closure motion
US8834518B2 (en) 2010-04-12 2014-09-16 Ethicon Endo-Surgery, Inc. Electrosurgical cutting and sealing instruments with cam-actuated jaws
US8623044B2 (en) 2010-04-12 2014-01-07 Ethicon Endo-Surgery, Inc. Cable actuated end-effector for a surgical instrument
US8496682B2 (en) 2010-04-12 2013-07-30 Ethicon Endo-Surgery, Inc. Electrosurgical cutting and sealing instruments with cam-actuated jaws
ES2387255T3 (en) 2010-04-14 2012-09-19 Tuebingen Scientific Medical Gmbh Surgical instrument with elastically movable instrument head
US8535311B2 (en) 2010-04-22 2013-09-17 Ethicon Endo-Surgery, Inc. Electrosurgical instrument comprising closing and firing systems
US8568397B2 (en) 2010-04-28 2013-10-29 Covidien Lp Induction sealing
US9241692B2 (en) 2010-04-28 2016-01-26 Sanovas, Inc. Pressure/vacuum actuated catheter forceps
US10265118B2 (en) 2010-05-04 2019-04-23 Covidien Lp Pinion blade drive mechanism for a laparoscopic vessel dissector
US8562592B2 (en) 2010-05-07 2013-10-22 Ethicon Endo-Surgery, Inc. Compound angle laparoscopic methods and devices
US9023070B2 (en) 2010-05-13 2015-05-05 Rex Medical, L.P. Rotational thrombectomy wire coupler
US8685020B2 (en) 2010-05-17 2014-04-01 Ethicon Endo-Surgery, Inc. Surgical instruments and end effectors therefor
EP2529658B1 (en) 2010-05-18 2016-03-02 Olympus Corporation Medical device
US20110284014A1 (en) 2010-05-19 2011-11-24 The Board Of Regents Of The University Of Texas System Medical Devices That Include Removable Magnet Units and Related Methods
US9044256B2 (en) 2010-05-19 2015-06-02 Board Of Regents, The University Of Texas System Medical devices, apparatuses, systems, and methods
EP2571441B1 (en) 2010-05-20 2020-03-25 Cook Medical Technologies LLC Lead system for electrical devices used in medical procedures
USD669992S1 (en) 2010-05-20 2012-10-30 Sound Surgical Technologies, Llc Ultrasonic amplifier
GB2480498A (en) 2010-05-21 2011-11-23 Ethicon Endo Surgery Inc Medical device comprising RF circuitry
JP4933684B2 (en) 2010-05-31 2012-05-16 ć‚ŖćƒŖćƒ³ćƒ‘ć‚¹ćƒ”ćƒ‡ć‚£ć‚«ćƒ«ć‚·ć‚¹ćƒ†ćƒ ć‚ŗę Ŗ式会ē¤¾ Endoscopic treatment tool
US8638428B2 (en) 2010-06-01 2014-01-28 Joe Denton Brown Method and apparatus for using optical feedback to detect fiber breakdown during surgical laser procedures
US8491625B2 (en) 2010-06-02 2013-07-23 Covidien Lp Apparatus for performing an electrosurgical procedure
US8430877B2 (en) 2010-06-02 2013-04-30 Covidien Lp Apparatus for performing an electrosurgical procedure
US8926607B2 (en) 2010-06-09 2015-01-06 Ethicon Endo-Surgery, Inc. Electrosurgical instrument employing multiple positive temperature coefficient electrodes
US8888776B2 (en) 2010-06-09 2014-11-18 Ethicon Endo-Surgery, Inc. Electrosurgical instrument employing an electrode
US8795276B2 (en) 2010-06-09 2014-08-05 Ethicon Endo-Surgery, Inc. Electrosurgical instrument employing a plurality of electrodes
US8790342B2 (en) 2010-06-09 2014-07-29 Ethicon Endo-Surgery, Inc. Electrosurgical instrument employing pressure-variation electrodes
US9005199B2 (en) 2010-06-10 2015-04-14 Ethicon Endo-Surgery, Inc. Heat management configurations for controlling heat dissipation from electrosurgical instruments
US8753338B2 (en) 2010-06-10 2014-06-17 Ethicon Endo-Surgery, Inc. Electrosurgical instrument employing a thermal management system
US20110306967A1 (en) 2010-06-10 2011-12-15 Payne Gwendolyn P Cooling configurations for electrosurgical instruments
US8764747B2 (en) 2010-06-10 2014-07-01 Ethicon Endo-Surgery, Inc. Electrosurgical instrument comprising sequentially activated electrodes
JP5006475B2 (en) 2010-06-17 2012-08-22 ć‚ŖćƒŖćƒ³ćƒ‘ć‚¹ćƒ”ćƒ‡ć‚£ć‚«ćƒ«ć‚·ć‚¹ćƒ†ćƒ ć‚ŗę Ŗ式会ē¤¾ Ultrasonic treatment system and method for operating ultrasonic treatment system
EP2582328B1 (en) 2010-06-18 2017-09-13 Howmedica Osteonics Corp. Patient-specific total hip arthroplasty
US8657489B2 (en) 2010-06-28 2014-02-25 Infineon Technologies Ag Power switch temperature control device and method
DE102010025298B4 (en) 2010-06-28 2023-06-15 Celon Ag Medical Instruments High frequency surgical device
US8226580B2 (en) 2010-06-30 2012-07-24 Biosense Webster (Israel), Ltd. Pressure sensing for a multi-arm catheter
US20120004655A1 (en) 2010-06-30 2012-01-05 Harrison Jay Kim Bipolar Connector System
ES2758557T3 (en) 2010-07-07 2020-05-05 Carevature Medical Ltd Surgical device for tissue removal
US9149324B2 (en) 2010-07-08 2015-10-06 Ethicon Endo-Surgery, Inc. Surgical instrument comprising an articulatable end effector
US8512336B2 (en) 2010-07-08 2013-08-20 Covidien Lp Optimal geometries for creating current densities in a bipolar electrode configuration
US8834466B2 (en) 2010-07-08 2014-09-16 Ethicon Endo-Surgery, Inc. Surgical instrument comprising an articulatable end effector
US8453906B2 (en) 2010-07-14 2013-06-04 Ethicon Endo-Surgery, Inc. Surgical instruments with electrodes
US8613383B2 (en) 2010-07-14 2013-12-24 Ethicon Endo-Surgery, Inc. Surgical instruments with electrodes
US20120022519A1 (en) 2010-07-22 2012-01-26 Ethicon Endo-Surgery, Inc. Surgical cutting and sealing instrument with controlled energy delivery
US8795327B2 (en) 2010-07-22 2014-08-05 Ethicon Endo-Surgery, Inc. Electrosurgical instrument with separate closure and cutting members
US8979843B2 (en) 2010-07-23 2015-03-17 Ethicon Endo-Surgery, Inc. Electrosurgical cutting and sealing instrument
US8702704B2 (en) 2010-07-23 2014-04-22 Ethicon Endo-Surgery, Inc. Electrosurgical cutting and sealing instrument
US20120022526A1 (en) 2010-07-23 2012-01-26 Ethicon Endo-Surgery, Inc. Electrosurgical cutting and sealing instrument
US9192431B2 (en) 2010-07-23 2015-11-24 Ethicon Endo-Surgery, Inc. Electrosurgical cutting and sealing instrument
US9011437B2 (en) 2010-07-23 2015-04-21 Ethicon Endo-Surgery, Inc. Electrosurgical cutting and sealing instrument
US20120022583A1 (en) 2010-07-23 2012-01-26 Eric Sugalski Surgical Tool with Crossbar Lever
USD637288S1 (en) 2010-07-23 2011-05-03 Conmed Corporation Surgical handpiece
US8979844B2 (en) 2010-07-23 2015-03-17 Ethicon Endo-Surgery, Inc. Electrosurgical cutting and sealing instrument
US8298233B2 (en) 2010-08-20 2012-10-30 Tyco Healthcare Group Lp Surgical instrument configured for use with interchangeable hand grips
US20120059286A1 (en) 2010-09-07 2012-03-08 Roger Hastings Self-Powered Ablation Catheter for Renal Denervation
US8663222B2 (en) 2010-09-07 2014-03-04 Covidien Lp Dynamic and static bipolar electrical sealing and cutting device
KR20120030174A (en) 2010-09-17 2012-03-28 ģ‚¼ģ„±ģ „ģžģ£¼ģ‹ķšŒģ‚¬ Surgery robot system and surgery apparatus and method for providing tactile feedback
GB201015998D0 (en) 2010-09-22 2010-11-03 Orthosonics Ltd Improved femoral implant revision tool
US9877720B2 (en) 2010-09-24 2018-01-30 Ethicon Llc Control features for articulating surgical device
US9089327B2 (en) 2010-09-24 2015-07-28 Ethicon Endo-Surgery, Inc. Surgical instrument with multi-phase trigger bias
US9402682B2 (en) 2010-09-24 2016-08-02 Ethicon Endo-Surgery, Llc Articulation joint features for articulating surgical device
US9545253B2 (en) 2010-09-24 2017-01-17 Ethicon Endo-Surgery, Llc Surgical instrument with contained dual helix actuator assembly
USD669993S1 (en) 2010-09-29 2012-10-30 Sound Surgical Technologies, Llc Console for use in power assisted lipoplasty
US8733613B2 (en) 2010-09-29 2014-05-27 Ethicon Endo-Surgery, Inc. Staple cartridge
RU2599210C2 (en) 2010-09-30 2016-10-10 Š­Ń‚ŠøŠŗŠ¾Š½ Š­Š½Š“Š¾-Š”ŠµŃ€Š“Š¶ŠµŃ€Šø, Š˜Š½Šŗ. Surgical cutting and suturing tools with separate and independent systems of application of fasteners and dissection of tissue
US20120080478A1 (en) 2010-09-30 2012-04-05 Ethicon Endo-Surgery, Inc. Surgical staple cartridges with detachable support structures and surgical stapling instruments with systems for preventing actuation motions when a cartridge is not present
US8888809B2 (en) 2010-10-01 2014-11-18 Ethicon Endo-Surgery, Inc. Surgical instrument with jaw member
US8695866B2 (en) 2010-10-01 2014-04-15 Ethicon Endo-Surgery, Inc. Surgical instrument having a power control circuit
CN103429182B (en) 2010-10-01 2016-01-20 伊č„æåŗ·å†…外ē§‘å…¬åø There is the surgical instruments of jaw member
US8979890B2 (en) 2010-10-01 2015-03-17 Ethicon Endo-Surgery, Inc. Surgical instrument with jaw member
US9017372B2 (en) 2010-10-01 2015-04-28 Covidien Lp Blade deployment mechanisms for surgical forceps
USD696631S1 (en) 2011-05-17 2013-12-31 Ethicon Endo-Surgery, Inc. Electrical connector
US9345534B2 (en) 2010-10-04 2016-05-24 Covidien Lp Vessel sealing instrument
GB201017968D0 (en) * 2010-10-23 2010-12-08 Sra Dev Ltd Ergonomic handpiece for laparoscopic and open surgery
CN107007348B (en) 2010-10-25 2019-05-31 ē¾Žę•¦åŠ›Afå¢ę£®å ”ęœ‰é™č“£ä»»å…¬åø For the estimation of nerve modulation treatment and device, the system and method for feedback
US8628529B2 (en) 2010-10-26 2014-01-14 Ethicon Endo-Surgery, Inc. Surgical instrument with magnetic clamping force
US20120109186A1 (en) 2010-10-29 2012-05-03 Parrott David A Articulating laparoscopic surgical instruments
US9451967B2 (en) 2010-11-01 2016-09-27 Boston Scientific Scimed, Inc. Tissue closure
US9011471B2 (en) 2010-11-05 2015-04-21 Ethicon Endo-Surgery, Inc. Surgical instrument with pivoting coupling to modular shaft and end effector
US9597143B2 (en) 2010-11-05 2017-03-21 Ethicon Endo-Surgery, Llc Sterile medical instrument charging device
US9161803B2 (en) 2010-11-05 2015-10-20 Ethicon Endo-Surgery, Inc. Motor driven electrosurgical device with mechanical and electrical feedback
US20120116381A1 (en) 2010-11-05 2012-05-10 Houser Kevin L Surgical instrument with charging station and wireless communication
US9510895B2 (en) 2010-11-05 2016-12-06 Ethicon Endo-Surgery, Llc Surgical instrument with modular shaft and end effector
AU2011323178A1 (en) 2010-11-05 2013-05-30 Ethicon Endo-Surgery, Inc. User feedback through handpiece of surgical instrument
US10085792B2 (en) 2010-11-05 2018-10-02 Ethicon Llc Surgical instrument with motorized attachment feature
US9072523B2 (en) 2010-11-05 2015-07-07 Ethicon Endo-Surgery, Inc. Medical device with feature for sterile acceptance of non-sterile reusable component
US9782214B2 (en) 2010-11-05 2017-10-10 Ethicon Llc Surgical instrument with sensor and powered control
WO2012061720A1 (en) 2010-11-05 2012-05-10 Ethicon Endo- Surgery, Inc. Surgical instrument with modular end effector and detection feature
US20120116265A1 (en) 2010-11-05 2012-05-10 Houser Kevin L Surgical instrument with charging devices
US9770285B2 (en) 2010-11-08 2017-09-26 Bovie Medical Corporation System and method for identifying and controlling an electrosurgical apparatus
US9144453B2 (en) 2010-11-08 2015-09-29 Bovie Medical Corporation Multi-mode electrosurgical apparatus
EP2640301B1 (en) 2010-11-15 2016-03-30 Intuitive Surgical Operations, Inc. Decoupling instrument shaft roll and end effector actuation in a surgical instrument
US8480703B2 (en) 2010-11-19 2013-07-09 Covidien Lp Surgical device
US8920421B2 (en) 2010-11-29 2014-12-30 Covidien Lp System and method for tissue sealing
US8784418B2 (en) 2010-11-29 2014-07-22 Covidien Lp Endoscopic surgical forceps
JP5734631B2 (en) 2010-12-02 2015-06-17 ć‚ŖćƒŖćƒ³ćƒ‘ć‚¹ę Ŗ式会ē¤¾ Surgery support system
US8801710B2 (en) 2010-12-07 2014-08-12 Immersion Corporation Electrosurgical sealing tool having haptic feedback
US8715277B2 (en) 2010-12-08 2014-05-06 Ethicon Endo-Surgery, Inc. Control of jaw compression in surgical instrument having end effector with opposing jaw members
US20120150169A1 (en) 2010-12-09 2012-06-14 Medtronic, Inc. Impedance measurement to monitor organ perfusion or hemodynamic status
GB201021032D0 (en) 2010-12-10 2011-01-26 Creo Medical Ltd Electrosurgical apparatus
BR112013015782B1 (en) 2010-12-21 2020-12-15 Stryker Corporation MOTORIZED SURGICAL TOOL
US9364171B2 (en) 2010-12-22 2016-06-14 Veebot Systems, Inc. Systems and methods for autonomous intravenous needle insertion
ES2900584T3 (en) 2010-12-23 2022-03-17 Bard Access Systems Inc System for guiding a rigid instrument
BR112013016141A2 (en) 2010-12-23 2018-06-26 Straumann Holding Ag medical instrument storage cartridge
US8862955B2 (en) 2010-12-29 2014-10-14 Stmicroelectronics S.R.L. Apparatus for at-speed testing, in inter-domain mode, of a multi-clock-domain digital integrated circuit according to BIST or SCAN techniques
US8936614B2 (en) 2010-12-30 2015-01-20 Covidien Lp Combined unilateral/bilateral jaws on a surgical instrument
US9044245B2 (en) 2011-01-05 2015-06-02 Medtronic Ablation Frontiers Llc Multipolarity epicardial radiofrequency ablation
US9028481B2 (en) 2011-01-05 2015-05-12 Covidien Lp System and method for measuring current of an electrosurgical generator
CN102595386A (en) 2011-01-06 2012-07-18 北äŗ¬äø‰ę˜Ÿé€šäæ”ꊀęœÆē ”ē©¶ęœ‰é™å…¬åø Method for supporting mobility of user equipment (UE)
US9113940B2 (en) 2011-01-14 2015-08-25 Covidien Lp Trigger lockout and kickback mechanism for surgical instruments
US8603089B2 (en) 2011-01-19 2013-12-10 Covidien Lp Surgical instrument including inductively coupled accessory
US20120191091A1 (en) 2011-01-24 2012-07-26 Tyco Healthcare Group Lp Reusable Medical Device with Advanced Counting Capability
US9028476B2 (en) 2011-02-03 2015-05-12 Covidien Lp Dual antenna microwave resection and ablation device, system and method of use
EP2662045B1 (en) 2011-02-10 2019-03-27 Olympus Corporation High-frequency operation apparatus
EP2672903A4 (en) 2011-02-10 2017-07-12 Actuated Medical, Inc. Medical tool with electromechanical control and feedback
US8986287B2 (en) 2011-02-14 2015-03-24 Adrian E. Park Adjustable laparoscopic instrument handle
KR101918531B1 (en) 2011-02-15 2018-11-14 ģøķŠœģ–“ķ‹°ėøŒ ģ„œģ§€ģ»¬ ģ˜¤ķ¼ė ˆģ“ģ…˜ģ¦ˆ ģøģ½”ķ¬ė ˆģ“ķ‹°ė“œ Seals and sealing methods for a surgical instrument having an articulated end effector actuated by a drive shaft
KR102222672B1 (en) 2011-02-15 2021-03-05 ģøķŠœģ–“ķ‹°ėøŒ ģ„œģ§€ģ»¬ ģ˜¤ķ¼ė ˆģ“ģ…˜ģ¦ˆ ģøģ½”ķ¬ė ˆģ“ķ‹°ė“œ Systems for detecting clamping or firing failure
CN103841907B (en) 2011-02-15 2019-06-14 史åƆ夫和内äæ®ęœ‰é™å…¬åø Arthroscope device for excising
WO2012112251A1 (en) 2011-02-15 2012-08-23 Intuitive Surgical Operations, Inc. Systems for indicating a clamping prediction
US9420394B2 (en) 2011-02-16 2016-08-16 Apple Inc. Panning presets
US9055961B2 (en) 2011-02-18 2015-06-16 Intuitive Surgical Operations, Inc. Fusing and cutting surgical instrument and related methods
US20120211542A1 (en) 2011-02-23 2012-08-23 Tyco Healthcare Group I.P Controlled tissue compression systems and methods
JP2012171088A (en) 2011-02-24 2012-09-10 Olympus Corp Master operation input device, and master-slave manipulator
CN103354736B (en) * 2011-03-09 2015-08-19 å„„ęž—å·“ę–Æ医ē–—ę Ŗ式会ē¤¾ bipolar treatment device
EP2688496B8 (en) 2011-03-24 2019-09-11 Ethicon LLC Energy-based scissors device
JP5165163B2 (en) * 2011-03-24 2013-03-21 ć‚ŖćƒŖćƒ³ćƒ‘ć‚¹ćƒ”ćƒ‡ć‚£ć‚«ćƒ«ć‚·ć‚¹ćƒ†ćƒ ć‚ŗę Ŗ式会ē¤¾ Grasping treatment device
CN202027624U (en) 2011-03-25 2011-11-09 薛ꖰ걶 Ultrasonic tool used for surgery
US8974479B2 (en) 2011-03-30 2015-03-10 Covidien Lp Ultrasonic surgical instruments
US20120253328A1 (en) 2011-03-30 2012-10-04 Tyco Healthcare Group Lp Combined presentation unit for reposable battery operated surgical system
EP2691037B1 (en) 2011-03-30 2021-03-10 Covidien LP Ultrasonic surgical instruments
WO2012135721A1 (en) * 2011-03-30 2012-10-04 Tyco Healthcare Group Lp Ultrasonic surgical instruments
US20120265241A1 (en) 2011-04-12 2012-10-18 Tyco Healthcare Group Lp Surgical Forceps and Method of Manufacturing Thereof
CA2774751C (en) * 2011-04-15 2018-11-06 Covidien Ag Battery powered hand-held ultrasonic surgical cautery cutting device
ITTO20110394A1 (en) 2011-05-05 2012-11-06 Univ Pisa CATHETER EQUIPPED WITH ELECTROMAGNETIC POSITION SENSORS, AND LOCALIZATION SYSTEM FOR CATHETER AND WIRE GUIDES
JP5763407B2 (en) 2011-05-09 2015-08-12 ę Ŗ式会ē¤¾ćƒ€ć‚¤ćƒ˜ćƒ³ Abnormality detection device and power generation system provided with the abnormality detection device
US8444664B2 (en) 2011-05-16 2013-05-21 Covidien Lp Medical ultrasound instrument with articulated jaws
US20120296371A1 (en) 2011-05-17 2012-11-22 Tyco Healthcare Group Lp Modular Shaft for Endoscopic Vessel Sealer and Divider
US9072535B2 (en) 2011-05-27 2015-07-07 Ethicon Endo-Surgery, Inc. Surgical stapling instruments with rotatable staple deployment arrangements
US9358065B2 (en) 2011-06-23 2016-06-07 Covidien Lp Shaped electrode bipolar resection apparatus, system and methods of use
US9636167B2 (en) 2011-05-31 2017-05-02 Covidien Lp Surgical device with DC power connection
KR101828354B1 (en) 2011-06-03 2018-02-12 ģ‚¼ģ„±ģ „ģžģ£¼ģ‹ķšŒģ‚¬ surgical device
US9615877B2 (en) 2011-06-17 2017-04-11 Covidien Lp Tissue sealing forceps
US9844384B2 (en) 2011-07-11 2017-12-19 Covidien Lp Stand alone energy-based tissue clips
JP5342041B2 (en) 2011-07-11 2013-11-13 ć‚­ćƒ¤ćƒŽćƒ³ę Ŗ式会ē¤¾ Assembly adjustment method and manufacturing method of multi-beam scanning optical apparatus
US9028478B2 (en) 2011-07-20 2015-05-12 Covidien Lp Articulating surgical apparatus
US20130023925A1 (en) 2011-07-20 2013-01-24 Tyco Healthcare Group Lp Articulating Surgical Apparatus
US8568390B2 (en) 2011-07-20 2013-10-29 Covidien Lp Articulating surgical apparatus
US9259265B2 (en) 2011-07-22 2016-02-16 Ethicon Endo-Surgery, Llc Surgical instruments for tensioning tissue
US10004526B2 (en) 2011-07-25 2018-06-26 Covidien Lp Ultrasonic dissection system
US9314301B2 (en) 2011-08-01 2016-04-19 Miramar Labs, Inc. Applicator and tissue interface module for dermatological device
EP2554132B1 (en) 2011-08-01 2016-03-02 Erbe Elektromedizin GmbH Tissue fusion instrument
JP5936914B2 (en) 2011-08-04 2016-06-22 ć‚ŖćƒŖćƒ³ćƒ‘ć‚¹ę Ŗ式会ē¤¾ Operation input device and manipulator system including the same
US8968317B2 (en) 2011-08-18 2015-03-03 Covidien Lp Surgical forceps
US9033973B2 (en) 2011-08-30 2015-05-19 Covidien Lp System and method for DC tissue impedance sensing
US9044243B2 (en) 2011-08-30 2015-06-02 Ethcon Endo-Surgery, Inc. Surgical cutting and fastening device with descendible second trigger arrangement
DE102011082102A1 (en) 2011-09-02 2013-03-07 Celon Ag Medical Instruments Electrode arrangement and electronic gripping instrument
DE102011082307A1 (en) 2011-09-07 2013-03-07 Celon Ag Medical Instruments Electrosurgical instrument, electrosurgical device and related methods
US9099863B2 (en) 2011-09-09 2015-08-04 Covidien Lp Surgical generator and related method for mitigating overcurrent conditions
US9204918B2 (en) 2011-09-28 2015-12-08 RELIGN Corporation Medical ablation system and method of use
US8961515B2 (en) 2011-09-28 2015-02-24 Covidien Lp Electrosurgical instrument
US9668806B2 (en) 2011-09-29 2017-06-06 Covidien Lp Surgical forceps including a removable stop member
US20130085510A1 (en) 2011-09-30 2013-04-04 Ethicon Endo-Surgery, Inc. Robot-mounted surgical tables
US9004071B2 (en) 2011-10-18 2015-04-14 Ian Joseph Alexander Nasal guide and method of use thereof
US9370400B2 (en) 2011-10-19 2016-06-21 Ethicon Endo-Surgery, Inc. Clip applier adapted for use with a surgical robot
US8968308B2 (en) 2011-10-20 2015-03-03 Covidien Lp Multi-circuit seal plates
US10085762B2 (en) * 2011-10-21 2018-10-02 Ethicon Llc Ultrasonic device for cutting and coagulating
USD687549S1 (en) 2011-10-24 2013-08-06 Ethicon Endo-Surgery, Inc. Surgical instrument
US9421060B2 (en) 2011-10-24 2016-08-23 Ethicon Endo-Surgery, Llc Litz wire battery powered device
US9492146B2 (en) 2011-10-25 2016-11-15 Covidien Lp Apparatus for endoscopic procedures
US8899462B2 (en) 2011-10-25 2014-12-02 Covidien Lp Apparatus for endoscopic procedures
JP6230541B2 (en) 2011-11-15 2017-11-15 ć‚¤ćƒ³ćƒ†ćƒ„ć‚¤ćƒ†ć‚£ćƒ– ć‚µćƒ¼ć‚øć‚«ćƒ« ć‚Ŗćƒšćƒ¬ćƒ¼ć‚·ćƒ§ćƒ³ć‚ŗļ¼Œ ć‚¤ćƒ³ć‚³ćƒ¼ćƒćƒ¬ć‚¤ćƒ†ćƒƒćƒ‰ Surgical instrument with a knife blade
US8968312B2 (en) 2011-11-16 2015-03-03 Covidien Lp Surgical device with powered articulation wrist rotation
US8876726B2 (en) 2011-12-08 2014-11-04 Biosense Webster (Israel) Ltd. Prevention of incorrect catheter rotation
US20130158660A1 (en) 2011-12-20 2013-06-20 Richard A. Bergs Medical Devices, Apparatuses, Systems, and Methods with Magnetic Shielding
US20130158659A1 (en) 2011-12-20 2013-06-20 Richard A. Bergs Medical Devices, Apparatuses, Systems, and Methods With Configurations for Shaping Magnetic-Fields and Interactions
WO2013096916A2 (en) 2011-12-23 2013-06-27 Vessix Vascular, Inc. Methods and apparatuses for remodeling tissue of or adjacent to a body passage
DE102012100040A1 (en) 2012-01-04 2013-07-04 Aesculap Ag Electrosurgical instrument and jaw part for this
US8382775B1 (en) 2012-01-08 2013-02-26 Vibrynt, Inc. Methods, instruments and devices for extragastric reduction of stomach volume
JP5192591B2 (en) 2012-01-16 2013-05-08 åÆŒå£«ćƒ•ć‚¤ćƒ«ćƒ ę Ŗ式会ē¤¾ Capsule endoscope and operation control method of capsule endoscope
JP6165780B2 (en) 2012-02-10 2017-07-19 ć‚Øć‚·ć‚³ćƒ³ćƒ»ć‚Øćƒ³ćƒ‰āˆ’ć‚µćƒ¼ć‚ø悧ćƒŖć‚£ćƒ»ć‚¤ćƒ³ć‚³ćƒ¼ćƒćƒ¬ć‚¤ćƒ†ćƒƒćƒ‰ļ¼„ļ½”ļ½ˆļ½‰ļ½ƒļ½ļ½Ž ļ¼„ļ½Žļ½„ļ½āˆ’ļ¼³ļ½•ļ½’ļ½‡ļ½…ļ½’ļ½™ļ¼Œļ¼©ļ½Žļ½ƒļ¼Ž Robot-controlled surgical instrument
US8752264B2 (en) 2012-03-06 2014-06-17 Covidien Lp Surgical tissue sealer
US20130253256A1 (en) 2012-03-20 2013-09-26 David B. Griffith Apparatuses, systems, and methods for use and transport of magnetic medical devices with transport fixtures or safety cages
US20130253480A1 (en) 2012-03-22 2013-09-26 Cory G. Kimball Surgical instrument usage data management
TWM438061U (en) 2012-04-03 2012-09-21 Inhon Internat Co Ltd Connector module and a male connector and the female connector
US9724118B2 (en) 2012-04-09 2017-08-08 Ethicon Endo-Surgery, Llc Techniques for cutting and coagulating tissue for ultrasonic surgical instruments
US9237921B2 (en) 2012-04-09 2016-01-19 Ethicon Endo-Surgery, Inc. Devices and techniques for cutting and coagulating tissue
US9226766B2 (en) 2012-04-09 2016-01-05 Ethicon Endo-Surgery, Inc. Serial communication protocol for medical device
US9241731B2 (en) 2012-04-09 2016-01-26 Ethicon Endo-Surgery, Inc. Rotatable electrical connection for ultrasonic surgical instruments
US9439668B2 (en) 2012-04-09 2016-09-13 Ethicon Endo-Surgery, Llc Switch arrangements for ultrasonic surgical instruments
US9044238B2 (en) 2012-04-10 2015-06-02 Covidien Lp Electrosurgical monopolar apparatus with arc energy vascular coagulation control
JP5883343B2 (en) 2012-04-12 2016-03-15 ę Ŗ式会ē¤¾ć‚¹ć‚ŗć‚­ćƒ—ćƒ¬ć‚·ć‚Ŗćƒ³ Medical manipulator
JP5940864B2 (en) 2012-04-12 2016-06-29 ć‚«ćƒ¼ćƒ« ć‚·ćƒ„ćƒˆćƒ«ćƒ„ ć‚²ć‚¼ćƒ«ć‚·ćƒ£ćƒ•ćƒˆ 惟惃惈 ćƒ™ć‚·ćƒ„ćƒ¬ćƒ³ć‚Æćƒ†ćƒ« ćƒćƒ•ćƒ„ćƒ³ć‚° ć‚¦ćƒ³ćƒˆ ć‚³ćƒ³ćƒ‘ćƒ‹ćƒ¼ ć‚³ćƒžćƒ³ćƒ‡ć‚£ćƒ¼ćƒˆć‚²ć‚¼ćƒ«ć‚·ćƒ£ćƒ•ćƒˆ Medical manipulator
US8968294B2 (en) 2012-04-17 2015-03-03 Covidien Lp Single or limited use device designs
US9788851B2 (en) 2012-04-18 2017-10-17 Ethicon Llc Surgical instrument with tissue density sensing
EP2838439A4 (en) 2012-04-18 2015-11-25 Cardica Inc Safety lockout for surgical stapler
CN104135955B (en) 2012-04-20 2016-10-19 å„„ęž—å·“ę–Æę Ŗ式会ē¤¾ Operation device
EP2840993A4 (en) 2012-04-24 2016-03-30 Cibiem Inc Endovascular catheters and methods for carotid body ablation
JP5555387B2 (en) 2012-04-26 2014-07-23 ć‚ŖćƒŖćƒ³ćƒ‘ć‚¹ćƒ”ćƒ‡ć‚£ć‚«ćƒ«ć‚·ć‚¹ćƒ†ćƒ ć‚ŗę Ŗ式会ē¤¾ Surgical system
US9060778B2 (en) 2012-04-26 2015-06-23 Medtronic Ablation Frontiers Llc Intermittent short circuit detection on a multi-electrode catheter
US9216050B2 (en) 2012-05-01 2015-12-22 Medtronic Ablation Frontiers Llc Detection of microbubble formation during catheter ablation
EP2844172B1 (en) 2012-05-02 2017-10-04 Ethicon LLC Electrosurgical device for cutting and coagulating
US9039731B2 (en) 2012-05-08 2015-05-26 Covidien Lp Surgical forceps including blade safety mechanism
DE102012208605A1 (en) 2012-05-23 2013-11-28 Karl Storz Gmbh & Co. Kg Medical instrument with a shaft with a flexible section and a controlled bendable section
EP2668922B1 (en) 2012-05-30 2016-10-26 Covidien AG System for tissue sealing
US9681884B2 (en) 2012-05-31 2017-06-20 Ethicon Endo-Surgery, Llc Surgical instrument with stress sensor
US9572592B2 (en) 2012-05-31 2017-02-21 Ethicon Endo-Surgery, Llc Surgical instrument with orientation sensing
JP5625135B2 (en) 2012-06-01 2014-11-12 ć‚ŖćƒŖćƒ³ćƒ‘ć‚¹ćƒ”ćƒ‡ć‚£ć‚«ćƒ«ć‚·ć‚¹ćƒ†ćƒ ć‚ŗę Ŗ式会ē¤¾ Treatment tool using energy
JP5572780B2 (en) 2012-06-06 2014-08-13 ć‚ŖćƒŖćƒ³ćƒ‘ć‚¹ćƒ”ćƒ‡ć‚£ć‚«ćƒ«ć‚·ć‚¹ćƒ†ćƒ ć‚ŗę Ŗ式会ē¤¾ Ultrasonic probe and method for manufacturing ultrasonic probe
US10677764B2 (en) 2012-06-11 2020-06-09 Covidien Lp Temperature estimation and tissue detection of an ultrasonic dissector from frequency response monitoring
US9101358B2 (en) 2012-06-15 2015-08-11 Ethicon Endo-Surgery, Inc. Articulatable surgical instrument comprising a firing drive
JP2014003731A (en) 2012-06-15 2014-01-09 Canon Inc Drive unit of vibration type actuator and medical system using the same
WO2013192431A1 (en) 2012-06-20 2013-12-27 Stryker Corporation Systems and methods for off-axis tissue manipulation
US8968296B2 (en) 2012-06-26 2015-03-03 Covidien Lp Energy-harvesting system, apparatus and methods
US8747238B2 (en) 2012-06-28 2014-06-10 Ethicon Endo-Surgery, Inc. Rotary drive shaft assemblies for surgical instruments with articulatable end effectors
US9072536B2 (en) 2012-06-28 2015-07-07 Ethicon Endo-Surgery, Inc. Differential locking arrangements for rotary powered surgical instruments
US20140005718A1 (en) 2012-06-28 2014-01-02 Ethicon Endo-Surgery, Inc. Multi-functional powered surgical device with external dissection features
US9125662B2 (en) 2012-06-28 2015-09-08 Ethicon Endo-Surgery, Inc. Multi-axis articulating and rotating surgical tools
US9028494B2 (en) 2012-06-28 2015-05-12 Ethicon Endo-Surgery, Inc. Interchangeable end effector coupling arrangement
US20140001231A1 (en) 2012-06-28 2014-01-02 Ethicon Endo-Surgery, Inc. Firing system lockout arrangements for surgical instruments
US9649111B2 (en) 2012-06-28 2017-05-16 Ethicon Endo-Surgery, Llc Replaceable clip cartridge for a clip applier
US9119657B2 (en) 2012-06-28 2015-09-01 Ethicon Endo-Surgery, Inc. Rotary actuatable closure arrangement for surgical end effector
US9561038B2 (en) 2012-06-28 2017-02-07 Ethicon Endo-Surgery, Llc Interchangeable clip applier
US20140005640A1 (en) 2012-06-28 2014-01-02 Ethicon Endo-Surgery, Inc. Surgical end effector jaw and electrode configurations
US9101385B2 (en) 2012-06-28 2015-08-11 Ethicon Endo-Surgery, Inc. Electrode connections for rotary driven surgical tools
US9289256B2 (en) 2012-06-28 2016-03-22 Ethicon Endo-Surgery, Llc Surgical end effectors having angled tissue-contacting surfaces
US20140005705A1 (en) 2012-06-29 2014-01-02 Ethicon Endo-Surgery, Inc. Surgical instruments with articulating shafts
US20140001234A1 (en) 2012-06-28 2014-01-02 Ethicon Endo-Surgery, Inc. Coupling arrangements for attaching surgical end effectors to drive systems therefor
US9326788B2 (en) 2012-06-29 2016-05-03 Ethicon Endo-Surgery, Llc Lockout mechanism for use with robotic electrosurgical device
US10028786B2 (en) 2012-06-29 2018-07-24 Covidien Lp Helical connector assembly
US9351754B2 (en) 2012-06-29 2016-05-31 Ethicon Endo-Surgery, Llc Ultrasonic surgical instruments with distally positioned jaw assemblies
US9283045B2 (en) 2012-06-29 2016-03-15 Ethicon Endo-Surgery, Llc Surgical instruments with fluid management system
US9226767B2 (en) 2012-06-29 2016-01-05 Ethicon Endo-Surgery, Inc. Closed feedback control for electrosurgical device
US9198714B2 (en) 2012-06-29 2015-12-01 Ethicon Endo-Surgery, Inc. Haptic feedback devices for surgical robot
US9393037B2 (en) 2012-06-29 2016-07-19 Ethicon Endo-Surgery, Llc Surgical instruments with articulating shafts
US9408622B2 (en) 2012-06-29 2016-08-09 Ethicon Endo-Surgery, Llc Surgical instruments with articulating shafts
US9820768B2 (en) 2012-06-29 2017-11-21 Ethicon Llc Ultrasonic surgical instruments with control mechanisms
US20140005702A1 (en) 2012-06-29 2014-01-02 Ethicon Endo-Surgery, Inc. Ultrasonic surgical instruments with distally positioned transducers
US9192421B2 (en) 2012-07-24 2015-11-24 Covidien Lp Blade lockout mechanism for surgical forceps
US9305497B2 (en) 2012-08-31 2016-04-05 Qualcomm Mems Technologies, Inc. Systems, devices, and methods for driving an analog interferometric modulator
DE102012109037B4 (en) 2012-09-25 2020-11-26 Adolf WĆ¼rth Gmbh & Co Kg Ultrasonic generator with low pass on the output side for a hand-held device
US9147965B2 (en) 2012-09-26 2015-09-29 Kc Magcon, Inc. Magnetic-enabled connector device
GB2506377A (en) 2012-09-27 2014-04-02 Creo Medical Ltd Electrosurgical apparatus comprising an RF generator, microwave generator, combining circuit and waveguide isolator
CN104853688B (en) 2012-09-28 2017-11-28 伊č„æåŗ·å†…外ē§‘å…¬åø Multifunctional bipolar tweezers
US9687290B2 (en) 2012-10-02 2017-06-27 Covidien Lp Energy-based medical devices
US9526564B2 (en) 2012-10-08 2016-12-27 Covidien Lp Electric stapler device
US10201365B2 (en) 2012-10-22 2019-02-12 Ethicon Llc Surgeon feedback sensing and display methods
US9095367B2 (en) 2012-10-22 2015-08-04 Ethicon Endo-Surgery, Inc. Flexible harmonic waveguides/blades for surgical instruments
US20140121569A1 (en) 2012-10-25 2014-05-01 Solta Medical, Inc. Ultrasonically heated probe
US20140135804A1 (en) 2012-11-15 2014-05-15 Ethicon Endo-Surgery, Inc. Ultrasonic and electrosurgical devices
US9277191B2 (en) 2012-12-12 2016-03-01 Schneider Electric USA, Inc. Security monitoring systems, methods and devices for electric vehicle charging stations
US8874220B2 (en) 2012-12-13 2014-10-28 Nuraleve Inc. Neurostimulation system, device, and method
EP2932930B1 (en) 2012-12-13 2018-06-27 Olympus Corporation Treatment instrument
US9468498B2 (en) 2012-12-20 2016-10-18 Cook Medical Technologies Llc Magnetic activation of monopolar and bipolar devices
US20140194875A1 (en) 2013-01-10 2014-07-10 Covidien Lp Surgical forceps
US20140194874A1 (en) 2013-01-10 2014-07-10 Ethicon Endo-Surgery, Inc. Electrosurgical end effector with independent closure feature and blade
US9149325B2 (en) 2013-01-25 2015-10-06 Ethicon Endo-Surgery, Inc. End effector with compliant clamping jaw
US9610114B2 (en) 2013-01-29 2017-04-04 Ethicon Endo-Surgery, Llc Bipolar electrosurgical hand shears
US9375256B2 (en) 2013-02-05 2016-06-28 Covidien Lp Electrosurgical forceps
US9560995B2 (en) 2013-02-25 2017-02-07 Covidien Lp Methods and systems for determining a probe-off condition in a medical device
US9700309B2 (en) 2013-03-01 2017-07-11 Ethicon Llc Articulatable surgical instruments with conductive pathways for signal communication
US9456863B2 (en) 2013-03-11 2016-10-04 Covidien Lp Surgical instrument with switch activation control
US10070916B2 (en) 2013-03-11 2018-09-11 Covidien Lp Surgical instrument with system and method for springing open jaw members
US10561560B2 (en) 2013-03-12 2020-02-18 Biolase, Inc. Dental laser unit with communication link to assistance center
US20140263552A1 (en) 2013-03-13 2014-09-18 Ethicon Endo-Surgery, Inc. Staple cartridge tissue thickness sensor system
US9498275B2 (en) 2013-03-14 2016-11-22 Covidien Lp Systems and methods for arc detection and drag adjustment
US9629623B2 (en) 2013-03-14 2017-04-25 Ethicon Endo-Surgery, Llc Drive system lockout arrangements for modular surgical instruments
US10226273B2 (en) 2013-03-14 2019-03-12 Ethicon Llc Mechanical fasteners for use with surgical energy devices
JP6141506B2 (en) 2013-03-15 2017-06-07 ć‚øćƒ£ć‚¤ćƒ©ć‚¹ ć‚Øćƒ¼ć‚·ćƒ¼ć‚Øćƒ ć‚¢ć‚¤ ć‚¤ćƒ³ć‚Æ Combined electrosurgical device
WO2014145148A2 (en) 2013-03-15 2014-09-18 Ellman International, Inc. Surgical instruments and systems with multimodes of treatments and electrosurgical operation
US9510906B2 (en) 2013-03-15 2016-12-06 Ethicon Endo-Surgery, Llc Tissue clamping features of surgical instrument end effector
US10842563B2 (en) 2013-03-15 2020-11-24 Covidien Lp System and method for power control of electrosurgical resonant inverters
PL2777583T3 (en) 2013-03-15 2020-11-16 Erbe Elektromedizin Gmbh Instrument for vessel fusion and separation
US9241728B2 (en) 2013-03-15 2016-01-26 Ethicon Endo-Surgery, Inc. Surgical instrument with multiple clamping mechanisms
US9907563B2 (en) 2013-04-08 2018-03-06 Boston Scientific Scimed, Inc. Medical systems and methods
WO2014178436A1 (en) 2013-05-02 2014-11-06 ć‚ŖćƒŖćƒ³ćƒ‘ć‚¹ćƒ”ćƒ‡ć‚£ć‚«ćƒ«ć‚·ć‚¹ćƒ†ćƒ ć‚ŗę Ŗ式会ē¤¾ Ultrasonic treatment system
US9574644B2 (en) 2013-05-30 2017-02-21 Ethicon Endo-Surgery, Llc Power module for use with a surgical instrument
CN203468630U (en) 2013-05-31 2014-03-12 ē‘žå„‡å¤–ē§‘å™Øę¢°(äø­å›½)ęœ‰é™å…¬åø Ultrasonic surgery system
US9385831B2 (en) 2013-06-05 2016-07-05 Raytheon Company Circuits and method to enable efficient generation of direct digital synthesizer based waveforms of arbitrary bandwidth
US9504520B2 (en) 2013-06-06 2016-11-29 Ethicon Endo-Surgery, Llc Surgical instrument with modular motor
US10285750B2 (en) 2013-07-29 2019-05-14 Covidien Lp Systems and methods for operating an electrosurgical generator
US9655670B2 (en) 2013-07-29 2017-05-23 Covidien Lp Systems and methods for measuring tissue impedance through an electrosurgical cable
CN105451675B (en) 2013-08-07 2018-06-12 å„„ęž—å·“ę–Æę Ŗ式会ē¤¾ Ultrasonic treatment unit
CN105246423B (en) 2013-08-29 2017-11-14 å„„ęž—å·“ę–Æę Ŗ式会ē¤¾ Hold processing unit and holding unit
US9295514B2 (en) 2013-08-30 2016-03-29 Ethicon Endo-Surgery, Llc Surgical devices with close quarter articulation features
US9814514B2 (en) 2013-09-13 2017-11-14 Ethicon Llc Electrosurgical (RF) medical instruments for cutting and coagulating tissue
US9861428B2 (en) 2013-09-16 2018-01-09 Ethicon Llc Integrated systems for electrosurgical steam or smoke control
US20150080876A1 (en) 2013-09-16 2015-03-19 Ethoicon Endo-Surgery, Inc Integrated systems for electrosurgical steam or smoke control
US10271840B2 (en) 2013-09-18 2019-04-30 Covidien Lp Apparatus and method for differentiating between tissue and mechanical obstruction in a surgical instrument
US10231747B2 (en) 2013-09-20 2019-03-19 Ethicon Llc Transducer features for ultrasonic surgical instrument
US9717548B2 (en) 2013-09-24 2017-08-01 Covidien Lp Electrode for use in a bipolar electrosurgical instrument
US10695119B2 (en) 2013-09-24 2020-06-30 Covidien Lp Power and bi directional data interface assembly and surgical system including the same
US9867651B2 (en) 2013-09-26 2018-01-16 Covidien Lp Systems and methods for estimating tissue parameters using surgical devices
US10130412B2 (en) 2013-09-26 2018-11-20 Covidien Lp Systems and methods for estimating tissue parameters using surgical devices
US10448986B2 (en) 2013-09-27 2019-10-22 Covidien Lp Electrosurgical medical device with power modulation
US20150112335A1 (en) 2013-10-18 2015-04-23 Ethicon Endo-Surgery, Inc. Electrosurgical devices with fluid flow control
US9526565B2 (en) 2013-11-08 2016-12-27 Ethicon Endo-Surgery, Llc Electrosurgical devices
US9265926B2 (en) 2013-11-08 2016-02-23 Ethicon Endo-Surgery, Llc Electrosurgical devices
US9861381B2 (en) 2013-11-12 2018-01-09 Ethicon Llc Removable battery casing for surgical instrument
US9949785B2 (en) 2013-11-21 2018-04-24 Ethicon Llc Ultrasonic surgical instrument with electrosurgical feature
US10004528B2 (en) 2013-11-26 2018-06-26 Ethicon Llc Sleeve features for ultrasonic blade of a surgical instrument
GB201321710D0 (en) 2013-12-09 2014-01-22 Creo Medical Ltd Electrosurgical apparatus
GB2521228A (en) 2013-12-16 2015-06-17 Ethicon Endo Surgery Inc Medical device
US9743946B2 (en) 2013-12-17 2017-08-29 Ethicon Llc Rotation features for ultrasonic surgical instrument
US9724120B2 (en) 2013-12-17 2017-08-08 Ethicon Endo-Surgery, Llc Clamp arm features for ultrasonic surgical instrument
US9795436B2 (en) 2014-01-07 2017-10-24 Ethicon Llc Harvesting energy from a surgical generator
US9408660B2 (en) 2014-01-17 2016-08-09 Ethicon Endo-Surgery, Llc Device trigger dampening mechanism
US9802033B2 (en) 2014-01-28 2017-10-31 Ethicon Llc Surgical devices having controlled tissue cutting and sealing
CN105658161B (en) 2014-02-06 2018-05-22 å„„ęž—å·“ę–Æę Ŗ式会ē¤¾ Ultrasonic probe and ultrasonic treatment unit
US10420607B2 (en) 2014-02-14 2019-09-24 Arthrocare Corporation Methods and systems related to an electrosurgical controller
US20150238260A1 (en) 2014-02-26 2015-08-27 Covidien Lp Surgical instruments including nerve stimulator apparatus for use in the detection of nerves in tissue and methods of directing energy to tissue using same
WO2015137139A1 (en) 2014-03-14 2015-09-17 ć‚ŖćƒŖćƒ³ćƒ‘ć‚¹ę Ŗ式会ē¤¾ Clamping unit and bipolar treatment tool
US9554854B2 (en) 2014-03-18 2017-01-31 Ethicon Endo-Surgery, Llc Detecting short circuits in electrosurgical medical devices
US9675374B2 (en) 2014-03-24 2017-06-13 Ethicon Llc Ultrasonic forceps
US9750499B2 (en) 2014-03-26 2017-09-05 Ethicon Llc Surgical stapling instrument system
US9733663B2 (en) 2014-03-26 2017-08-15 Ethicon Llc Power management through segmented circuit and variable voltage protection
US10092310B2 (en) 2014-03-27 2018-10-09 Ethicon Llc Electrosurgical devices
US20150272659A1 (en) 2014-03-27 2015-10-01 Ethicon Endo-Surgery, Inc. Two stage trigger, clamp and cut bipolar vessel sealer
US10463421B2 (en) 2014-03-27 2019-11-05 Ethicon Llc Two stage trigger, clamp and cut bipolar vessel sealer
US9737355B2 (en) 2014-03-31 2017-08-22 Ethicon Llc Controlling impedance rise in electrosurgical medical devices
US10058377B2 (en) 2014-04-02 2018-08-28 Covidien Lp Electrosurgical devices including transverse electrode configurations
US20150282879A1 (en) 2014-04-03 2015-10-08 Medtronic Minimed, Inc. Precise insertion site locator
US9918730B2 (en) 2014-04-08 2018-03-20 Ethicon Llc Methods and devices for controlling motorized surgical devices
US9913680B2 (en) 2014-04-15 2018-03-13 Ethicon Llc Software algorithms for electrosurgical instruments
US9757186B2 (en) 2014-04-17 2017-09-12 Ethicon Llc Device status feedback for bipolar tissue spacer
US20150313667A1 (en) 2014-05-02 2015-11-05 Covidien Lp Electrosurgical instruments including end-effector assembly configured to provide mechanical cutting action on tissue
US9872722B2 (en) 2014-05-05 2018-01-23 Covidien Lp Wake-up system and method for powered surgical instruments
US10342606B2 (en) 2014-05-06 2019-07-09 Cosman Instruments, Llc Electrosurgical generator
CN104013444A (en) 2014-06-23 2014-09-03 南äŗ¬å¹æę…ˆåŒ»ē–—ē§‘ęŠ€ęœ‰é™å…¬åø Phased array high-intensity focused ultrasonic ablation system
DE102014108914A1 (en) 2014-06-25 2015-12-31 Aesculap Ag Electrosurgical instrument and jaw part for this
EP3170463A4 (en) 2014-07-15 2018-03-28 Olympus Corporation Instrument
US10285724B2 (en) 2014-07-31 2019-05-14 Ethicon Llc Actuation mechanisms and load adjustment assemblies for surgical instruments
US9877776B2 (en) 2014-08-25 2018-01-30 Ethicon Llc Simultaneous I-beam and spring driven cam jaw closure mechanism
US10194976B2 (en) 2014-08-25 2019-02-05 Ethicon Llc Lockout disabling mechanism
US20160051316A1 (en) 2014-08-25 2016-02-25 Ethicon Endo-Surgery, Inc. Electrosurgical electrode mechanism
US10194972B2 (en) 2014-08-26 2019-02-05 Ethicon Llc Managing tissue treatment
US10172665B2 (en) 2014-09-18 2019-01-08 Covidien Lp System and method for controlling operation of an electrosurgical system
US9974539B2 (en) 2014-10-15 2018-05-22 Ethicon Llc Surgical instrument battery pack with voltage polling
US10639092B2 (en) 2014-12-08 2020-05-05 Ethicon Llc Electrode configurations for surgical instruments
EP3229718B1 (en) 2014-12-08 2019-02-27 Olympus Corporation A combined ultrasonic and hf surgical system as well as a control device and a method thereof
GB2533411B (en) 2014-12-19 2020-08-05 Gyrus Medical Ltd Electrosurgical system
US10111699B2 (en) 2014-12-22 2018-10-30 Ethicon Llc RF tissue sealer, shear grip, trigger lock mechanism and energy activation
US10159524B2 (en) 2014-12-22 2018-12-25 Ethicon Llc High power battery powered RF amplifier topology
US20160175029A1 (en) 2014-12-22 2016-06-23 Ethicon Endo-Surgery, Inc. Tissue sealing and cutting instrument with locking features
US9848937B2 (en) 2014-12-22 2017-12-26 Ethicon Llc End effector with detectable configurations
US10092348B2 (en) 2014-12-22 2018-10-09 Ethicon Llc RF tissue sealer, shear grip, trigger lock mechanism and energy activation
GB2535627B (en) 2015-01-14 2017-06-28 Gyrus Medical Ltd Electrosurgical system
GB2535003B (en) 2015-01-14 2018-12-12 Gyrus Medical Ltd Electrosurgical instrument
US9113912B1 (en) 2015-01-21 2015-08-25 Serene Medical, Inc. Systems and devices to identify and limit nerve conduction
US10245095B2 (en) 2015-02-06 2019-04-02 Ethicon Llc Electrosurgical instrument with rotation and articulation mechanisms
US9808246B2 (en) 2015-03-06 2017-11-07 Ethicon Endo-Surgery, Llc Method of operating a powered surgical instrument
US20160262786A1 (en) 2015-03-10 2016-09-15 Ethicon Endo-Surgery, Llc Surgical blades with fatigue resistant properties
US10342602B2 (en) 2015-03-17 2019-07-09 Ethicon Llc Managing tissue treatment
US10321950B2 (en) 2015-03-17 2019-06-18 Ethicon Llc Managing tissue treatment
US20160270842A1 (en) 2015-03-20 2016-09-22 Ethicon Endo-Surgery, Llc Electrosurgical device having controllable current paths
US10595929B2 (en) 2015-03-24 2020-03-24 Ethicon Llc Surgical instruments with firing system overload protection mechanisms
US10363084B2 (en) 2015-04-01 2019-07-30 Covidien Lp Interdigitation of waveforms for dual-output electrosurgical generators
US10314638B2 (en) 2015-04-07 2019-06-11 Ethicon Llc Articulating radio frequency (RF) tissue seal with articulating state sensing
US10117702B2 (en) 2015-04-10 2018-11-06 Ethicon Llc Surgical generator systems and related methods
US20160296270A1 (en) 2015-04-10 2016-10-13 Ethicon Endo-Surgery, Llc Devices and methods for providing additional power to surgical devices
US10130410B2 (en) 2015-04-17 2018-11-20 Ethicon Llc Electrosurgical instrument including a cutting member decouplable from a cutting member trigger
US9872725B2 (en) 2015-04-29 2018-01-23 Ethicon Llc RF tissue sealer with mode selection
EP4233742A3 (en) 2015-05-15 2023-10-25 Intuitive Surgical Operations, Inc. System for minimally invasive cutting instrument operation
US10034684B2 (en) 2015-06-15 2018-07-31 Ethicon Llc Apparatus and method for dissecting and coagulating tissue
US11020140B2 (en) 2015-06-17 2021-06-01 Cilag Gmbh International Ultrasonic surgical blade for use with ultrasonic surgical instruments
US11129669B2 (en) 2015-06-30 2021-09-28 Cilag Gmbh International Surgical system with user adaptable techniques based on tissue type
US10765470B2 (en) 2015-06-30 2020-09-08 Ethicon Llc Surgical system with user adaptable techniques employing simultaneous energy modalities based on tissue parameters
US10357303B2 (en) 2015-06-30 2019-07-23 Ethicon Llc Translatable outer tube for sealing using shielded lap chole dissector
US10034704B2 (en) 2015-06-30 2018-07-31 Ethicon Llc Surgical instrument with user adaptable algorithms
US11051873B2 (en) 2015-06-30 2021-07-06 Cilag Gmbh International Surgical system with user adaptable techniques employing multiple energy modalities based on tissue parameters
US10898256B2 (en) 2015-06-30 2021-01-26 Ethicon Llc Surgical system with user adaptable techniques based on tissue impedance
US10154852B2 (en) 2015-07-01 2018-12-18 Ethicon Llc Ultrasonic surgical blade with improved cutting and coagulation features
US10507033B2 (en) 2015-08-26 2019-12-17 Ethicon Llc Ultrasonic surgical instrument with replaceable clamp pad
US11058475B2 (en) 2015-09-30 2021-07-13 Cilag Gmbh International Method and apparatus for selecting operations of a surgical instrument based on user intention
US10548655B2 (en) 2015-10-16 2020-02-04 Ethicon Llc Control and electrical connections for electrode endocutter device
US10595930B2 (en) 2015-10-16 2020-03-24 Ethicon Llc Electrode wiping surgical device
US20170164997A1 (en) 2015-12-10 2017-06-15 Ethicon Endo-Surgery, Llc Method of treating tissue using end effector with ultrasonic and electrosurgical features
US10179022B2 (en) 2015-12-30 2019-01-15 Ethicon Llc Jaw position impedance limiter for electrosurgical instrument
US20170189095A1 (en) 2015-12-31 2017-07-06 Ethicon Endo-Surgery, Llc Multiple port electrical isolation technique for surgical instruments
US10575892B2 (en) 2015-12-31 2020-03-03 Ethicon Llc Adapter for electrical surgical instruments
US11229471B2 (en) 2016-01-15 2022-01-25 Cilag Gmbh International Modular battery powered handheld surgical instrument with selective application of energy based on tissue characterization
US10716615B2 (en) 2016-01-15 2020-07-21 Ethicon Llc Modular battery powered handheld surgical instrument with curved end effectors having asymmetric engagement between jaw and blade
US10709469B2 (en) 2016-01-15 2020-07-14 Ethicon Llc Modular battery powered handheld surgical instrument with energy conservation techniques
US11129670B2 (en) 2016-01-15 2021-09-28 Cilag Gmbh International Modular battery powered handheld surgical instrument with selective application of energy based on button displacement, intensity, or local tissue characterization
US20170202595A1 (en) 2016-01-15 2017-07-20 Ethicon Endo-Surgery, Llc Modular battery powered handheld surgical instrument with a plurality of control programs
US10555769B2 (en) 2016-02-22 2020-02-11 Ethicon Llc Flexible circuits for electrosurgical instrument
US20170312018A1 (en) 2016-04-29 2017-11-02 Ethicon Endo-Surgery, Llc Electrosurgical instrument with conductive gap setting member and insulative tissue engaging member having variable dimensions and stiffness
US10702329B2 (en) 2016-04-29 2020-07-07 Ethicon Llc Jaw structure with distal post for electrosurgical instruments
US10485607B2 (en) 2016-04-29 2019-11-26 Ethicon Llc Jaw structure with distal closure for electrosurgical instruments
US10856934B2 (en) 2016-04-29 2020-12-08 Ethicon Llc Electrosurgical instrument with electrically conductive gap setting and tissue engaging members
US10987156B2 (en) 2016-04-29 2021-04-27 Ethicon Llc Electrosurgical instrument with electrically conductive gap setting member and electrically insulative tissue engaging members
US10646269B2 (en) 2016-04-29 2020-05-12 Ethicon Llc Non-linear jaw gap for electrosurgical instruments
US10456193B2 (en) 2016-05-03 2019-10-29 Ethicon Llc Medical device with a bilateral jaw configuration for nerve stimulation
US20180014872A1 (en) 2016-07-15 2018-01-18 Ethicon Endo-Surgery, Llc Paired device and generator codes
US10376305B2 (en) 2016-08-05 2019-08-13 Ethicon Llc Methods and systems for advanced harmonic energy
US11266430B2 (en) 2016-11-29 2022-03-08 Cilag Gmbh International End effector control and calibration
US20210196361A1 (en) 2019-12-30 2021-07-01 Ethicon Llc Electrosurgical instrument with monopolar and bipolar energy capabilities
US20210196353A1 (en) 2019-12-30 2021-07-01 Ethicon Llc Multi-layer clamp arm pad for enhanced versatility and performance of a surgical device
US20210196302A1 (en) 2019-12-30 2021-07-01 Ethicon Llc Method for operating a surgical instrument
US11812957B2 (en) 2019-12-30 2023-11-14 Cilag Gmbh International Surgical instrument comprising a signal interference resolution system
US11744636B2 (en) 2019-12-30 2023-09-05 Cilag Gmbh International Electrosurgical systems with integrated and external power sources
US11696776B2 (en) 2019-12-30 2023-07-11 Cilag Gmbh International Articulatable surgical instrument
US20210196266A1 (en) 2019-12-30 2021-07-01 Ethicon Llc Surgical instrument comprising a control system responsive to software configurations
US11786294B2 (en) 2019-12-30 2023-10-17 Cilag Gmbh International Control program for modular combination energy device
US11937863B2 (en) 2019-12-30 2024-03-26 Cilag Gmbh International Deflectable electrode with variable compression bias along the length of the deflectable electrode
US11452525B2 (en) 2019-12-30 2022-09-27 Cilag Gmbh International Surgical instrument comprising an adjustment system
US20210196346A1 (en) 2019-12-30 2021-07-01 Ethicon Llc Variation in electrode parameters and deflectable electrode to modify energy density and tissue interaction
US11786291B2 (en) 2019-12-30 2023-10-17 Cilag Gmbh International Deflectable support of RF energy electrode with respect to opposing ultrasonic blade
US11911063B2 (en) 2019-12-30 2024-02-27 Cilag Gmbh International Techniques for detecting ultrasonic blade to electrode contact and reducing power to ultrasonic blade
US11944366B2 (en) 2019-12-30 2024-04-02 Cilag Gmbh International Asymmetric segmented ultrasonic support pad for cooperative engagement with a movable RF electrode
US20210196269A1 (en) 2019-12-30 2021-07-01 Ethicon Llc Surgical instrument comprising a feedback control circuit
US11779329B2 (en) 2019-12-30 2023-10-10 Cilag Gmbh International Surgical instrument comprising a flex circuit including a sensor system
US20210196267A1 (en) 2019-12-30 2021-07-01 Ethicon Llc Surgical instrument comprising an orientation detection system
US20210196364A1 (en) 2019-12-30 2021-07-01 Ethicon Llc Electrosurgical instrument for delivering blended energy modalities to tissue
US11660089B2 (en) 2019-12-30 2023-05-30 Cilag Gmbh International Surgical instrument comprising a sensing system
US20210196306A1 (en) 2019-12-30 2021-07-01 Ethicon Llc Non-biased deflectable electrode to minimize contact between ultrasonic blade and electrode
US20210196334A1 (en) 2019-12-30 2021-07-01 Ethicon Llc Method of operating a combination ultrasonic / bipolar rf surgical device with a combination energy modality end-effector
US20210196363A1 (en) 2019-12-30 2021-07-01 Ethicon Llc Electrosurgical instrument with electrodes operable in bipolar and monopolar modes
US11684412B2 (en) 2019-12-30 2023-06-27 Cilag Gmbh International Surgical instrument with rotatable and articulatable surgical end effector
US20210196352A1 (en) 2019-12-30 2021-07-01 Ethicon Llc Partially conductive clamp arm pad to enable electrode wear through and minimize short circuiting
US11779387B2 (en) 2019-12-30 2023-10-10 Cilag Gmbh International Clamp arm jaw to minimize tissue sticking and improve tissue control
US20210196345A1 (en) 2019-12-30 2021-07-01 Ethicon Llc User interface for surgical instrument with combination energy modality end-effector
US20210196270A1 (en) 2019-12-30 2021-07-01 Ethicon Llc Surgical instrument comprising a flex circuit

Patent Citations (13)

* Cited by examiner, ā€  Cited by third party
Publication number Priority date Publication date Assignee Title
US5222937A (en) * 1991-01-11 1993-06-29 Olympus Optical Co., Ltd. Ultrasonic treatment apparatus
US5700261A (en) * 1996-03-29 1997-12-23 Ethicon Endo-Surgery, Inc. Bipolar Scissors
US6056735A (en) * 1996-04-04 2000-05-02 Olympus Optical Co., Ltd. Ultrasound treatment system
US6562035B1 (en) * 2001-04-19 2003-05-13 Levin John M Insulated surgical scissors including cauterizing tip
US20030109876A1 (en) * 2001-12-11 2003-06-12 Olympus Optical Co., Ltd. Instrument for high-frequency treatment and method of high-frequency treatment
US20080132887A1 (en) * 2006-07-04 2008-06-05 Shinya Masuda Surgical instrument
US20120020314A1 (en) * 2007-11-15 2012-01-26 Christopher Martin Edward Osborn System, method, and computer-readable medium for mobile terminated call processing by a femtocell system
US20090143806A1 (en) * 2007-11-30 2009-06-04 Ethicon Endo-Surgery, Inc. Ultrasonic surgical blades
US20120101501A1 (en) * 2008-05-15 2012-04-26 Sumitomo Bakelite Co., Ltd. Endoscopic high-frequency hemostatic forceps
US20110066174A1 (en) * 2009-09-16 2011-03-17 Tyco Healthcare Group Lp Low Energy or Minimum Disturbance Method for Measuring Frequency Response Functions of Ultrasonic Surgical Devices in Determining Optimum Operating Point
US20120277778A1 (en) * 2010-02-12 2012-11-01 Shinya Masuda Ultrasonic surgical instrument
US20120203143A1 (en) * 2011-02-07 2012-08-09 Olympus Medical Systems Corp. Energy treatment instrument
US20120296334A1 (en) * 2011-05-19 2012-11-22 Tyco Healthcare Group Lp Ultrasound Device for Precise Tissue Sealing and Blade-Less Cutting

Cited By (229)

* Cited by examiner, ā€  Cited by third party
Publication number Priority date Publication date Assignee Title
US11229472B2 (en) 2001-06-12 2022-01-25 Cilag Gmbh International Modular battery powered handheld surgical instrument with multiple magnetic position sensors
US10835307B2 (en) 2001-06-12 2020-11-17 Ethicon Llc Modular battery powered handheld surgical instrument containing elongated multi-layered shaft
US11730507B2 (en) 2004-02-27 2023-08-22 Cilag Gmbh International Ultrasonic surgical shears and method for sealing a blood vessel using same
US10874418B2 (en) 2004-02-27 2020-12-29 Ethicon Llc Ultrasonic surgical shears and method for sealing a blood vessel using same
US11006971B2 (en) 2004-10-08 2021-05-18 Ethicon Llc Actuation mechanism for use with an ultrasonic surgical instrument
US10537352B2 (en) 2004-10-08 2020-01-21 Ethicon Llc Tissue pads for use with surgical instruments
US10856896B2 (en) 2005-10-14 2020-12-08 Ethicon Llc Ultrasonic device for cutting and coagulating
US10779848B2 (en) 2006-01-20 2020-09-22 Ethicon Llc Ultrasound medical instrument having a medical ultrasonic blade
US9987033B2 (en) 2007-03-22 2018-06-05 Ethicon Llc Ultrasonic surgical instruments
US9801648B2 (en) 2007-03-22 2017-10-31 Ethicon Llc Surgical instruments
US9883884B2 (en) 2007-03-22 2018-02-06 Ethicon Llc Ultrasonic surgical instruments
US10722261B2 (en) 2007-03-22 2020-07-28 Ethicon Llc Surgical instruments
US10828057B2 (en) 2007-03-22 2020-11-10 Ethicon Llc Ultrasonic surgical instruments
US9504483B2 (en) 2007-03-22 2016-11-29 Ethicon Endo-Surgery, Llc Surgical instruments
US9707004B2 (en) 2007-07-27 2017-07-18 Ethicon Llc Surgical instruments
US10398466B2 (en) 2007-07-27 2019-09-03 Ethicon Llc Ultrasonic end effectors with increased active length
US9636135B2 (en) 2007-07-27 2017-05-02 Ethicon Endo-Surgery, Llc Ultrasonic surgical instruments
US9642644B2 (en) 2007-07-27 2017-05-09 Ethicon Endo-Surgery, Llc Surgical instruments
US11690641B2 (en) 2007-07-27 2023-07-04 Cilag Gmbh International Ultrasonic end effectors with increased active length
US10531910B2 (en) 2007-07-27 2020-01-14 Ethicon Llc Surgical instruments
US11607268B2 (en) 2007-07-27 2023-03-21 Cilag Gmbh International Surgical instruments
US9913656B2 (en) 2007-07-27 2018-03-13 Ethicon Llc Ultrasonic surgical instruments
US9414853B2 (en) 2007-07-27 2016-08-16 Ethicon Endo-Surgery, Llc Ultrasonic end effectors with increased active length
US11666784B2 (en) 2007-07-31 2023-06-06 Cilag Gmbh International Surgical instruments
US10426507B2 (en) 2007-07-31 2019-10-01 Ethicon Llc Ultrasonic surgical instruments
US11877734B2 (en) 2007-07-31 2024-01-23 Cilag Gmbh International Ultrasonic surgical instruments
US10420579B2 (en) 2007-07-31 2019-09-24 Ethicon Llc Surgical instruments
US11058447B2 (en) 2007-07-31 2021-07-13 Cilag Gmbh International Temperature controlled ultrasonic surgical instruments
US9848902B2 (en) 2007-10-05 2017-12-26 Ethicon Llc Ergonomic surgical instruments
US10828059B2 (en) 2007-10-05 2020-11-10 Ethicon Llc Ergonomic surgical instruments
US10441308B2 (en) 2007-11-30 2019-10-15 Ethicon Llc Ultrasonic surgical instrument blades
US9339289B2 (en) 2007-11-30 2016-05-17 Ehticon Endo-Surgery, LLC Ultrasonic surgical instrument blades
US11439426B2 (en) 2007-11-30 2022-09-13 Cilag Gmbh International Ultrasonic surgical blades
US10888347B2 (en) 2007-11-30 2021-01-12 Ethicon Llc Ultrasonic surgical blades
US10433866B2 (en) 2007-11-30 2019-10-08 Ethicon Llc Ultrasonic surgical blades
US10463887B2 (en) 2007-11-30 2019-11-05 Ethicon Llc Ultrasonic surgical blades
US11266433B2 (en) 2007-11-30 2022-03-08 Cilag Gmbh International Ultrasonic surgical instrument blades
US11766276B2 (en) 2007-11-30 2023-09-26 Cilag Gmbh International Ultrasonic surgical blades
US10010339B2 (en) 2007-11-30 2018-07-03 Ethicon Llc Ultrasonic surgical blades
US10265094B2 (en) 2007-11-30 2019-04-23 Ethicon Llc Ultrasonic surgical blades
US11253288B2 (en) 2007-11-30 2022-02-22 Cilag Gmbh International Ultrasonic surgical instrument blades
US10245065B2 (en) 2007-11-30 2019-04-02 Ethicon Llc Ultrasonic surgical blades
US11690643B2 (en) 2007-11-30 2023-07-04 Cilag Gmbh International Ultrasonic surgical blades
US10045794B2 (en) 2007-11-30 2018-08-14 Ethicon Llc Ultrasonic surgical blades
US10433865B2 (en) 2007-11-30 2019-10-08 Ethicon Llc Ultrasonic surgical blades
US9795808B2 (en) 2008-08-06 2017-10-24 Ethicon Llc Devices and techniques for cutting and coagulating tissue
US11890491B2 (en) 2008-08-06 2024-02-06 Cilag Gmbh International Devices and techniques for cutting and coagulating tissue
US9504855B2 (en) 2008-08-06 2016-11-29 Ethicon Surgery, LLC Devices and techniques for cutting and coagulating tissue
US10335614B2 (en) 2008-08-06 2019-07-02 Ethicon Llc Devices and techniques for cutting and coagulating tissue
US10022567B2 (en) 2008-08-06 2018-07-17 Ethicon Llc Devices and techniques for cutting and coagulating tissue
US10022568B2 (en) 2008-08-06 2018-07-17 Ethicon Llc Devices and techniques for cutting and coagulating tissue
US10709906B2 (en) 2009-05-20 2020-07-14 Ethicon Llc Coupling arrangements and methods for attaching tools to ultrasonic surgical instruments
US9700339B2 (en) 2009-05-20 2017-07-11 Ethicon Endo-Surgery, Inc. Coupling arrangements and methods for attaching tools to ultrasonic surgical instruments
US9764164B2 (en) 2009-07-15 2017-09-19 Ethicon Llc Ultrasonic surgical instruments
US11717706B2 (en) 2009-07-15 2023-08-08 Cilag Gmbh International Ultrasonic surgical instruments
US10688321B2 (en) 2009-07-15 2020-06-23 Ethicon Llc Ultrasonic surgical instruments
US10263171B2 (en) 2009-10-09 2019-04-16 Ethicon Llc Surgical generator for ultrasonic and electrosurgical devices
USRE47996E1 (en) 2009-10-09 2020-05-19 Ethicon Llc Surgical generator for ultrasonic and electrosurgical devices
US10441345B2 (en) 2009-10-09 2019-10-15 Ethicon Llc Surgical generator for ultrasonic and electrosurgical devices
US10201382B2 (en) 2009-10-09 2019-02-12 Ethicon Llc Surgical generator for ultrasonic and electrosurgical devices
US10265117B2 (en) 2009-10-09 2019-04-23 Ethicon Llc Surgical generator method for controlling and ultrasonic transducer waveform for ultrasonic and electrosurgical devices
US9623237B2 (en) 2009-10-09 2017-04-18 Ethicon Endo-Surgery, Llc Surgical generator for ultrasonic and electrosurgical devices
US11090104B2 (en) 2009-10-09 2021-08-17 Cilag Gmbh International Surgical generator for ultrasonic and electrosurgical devices
US11871982B2 (en) 2009-10-09 2024-01-16 Cilag Gmbh International Surgical generator for ultrasonic and electrosurgical devices
US11382642B2 (en) 2010-02-11 2022-07-12 Cilag Gmbh International Rotatable cutting implements with friction reducing material for ultrasonic surgical instruments
US10299810B2 (en) 2010-02-11 2019-05-28 Ethicon Llc Rotatable cutting implements with friction reducing material for ultrasonic surgical instruments
US9427249B2 (en) 2010-02-11 2016-08-30 Ethicon Endo-Surgery, Llc Rotatable cutting implements with friction reducing material for ultrasonic surgical instruments
US10117667B2 (en) 2010-02-11 2018-11-06 Ethicon Llc Control systems for ultrasonically powered surgical instruments
US10835768B2 (en) 2010-02-11 2020-11-17 Ethicon Llc Dual purpose surgical instrument for cutting and coagulating tissue
US9962182B2 (en) 2010-02-11 2018-05-08 Ethicon Llc Ultrasonic surgical instruments with moving cutting implement
US11369402B2 (en) 2010-02-11 2022-06-28 Cilag Gmbh International Control systems for ultrasonically powered surgical instruments
US9649126B2 (en) 2010-02-11 2017-05-16 Ethicon Endo-Surgery, Llc Seal arrangements for ultrasonically powered surgical instruments
US9510850B2 (en) 2010-02-11 2016-12-06 Ethicon Endo-Surgery, Llc Ultrasonic surgical instruments
US9848901B2 (en) 2010-02-11 2017-12-26 Ethicon Llc Dual purpose surgical instrument for cutting and coagulating tissue
US9707027B2 (en) 2010-05-21 2017-07-18 Ethicon Endo-Surgery, Llc Medical device
US10278721B2 (en) 2010-07-22 2019-05-07 Ethicon Llc Electrosurgical instrument with separate closure and cutting members
US10524854B2 (en) 2010-07-23 2020-01-07 Ethicon Llc Surgical instrument
US10433900B2 (en) 2011-07-22 2019-10-08 Ethicon Llc Surgical instruments for tensioning tissue
US9925003B2 (en) 2012-02-10 2018-03-27 Ethicon Endo-Surgery, Llc Robotically controlled surgical instrument
US10729494B2 (en) 2012-02-10 2020-08-04 Ethicon Llc Robotically controlled surgical instrument
US9232979B2 (en) 2012-02-10 2016-01-12 Ethicon Endo-Surgery, Inc. Robotically controlled surgical instrument
US9439668B2 (en) 2012-04-09 2016-09-13 Ethicon Endo-Surgery, Llc Switch arrangements for ultrasonic surgical instruments
US11419626B2 (en) 2012-04-09 2022-08-23 Cilag Gmbh International Switch arrangements for ultrasonic surgical instruments
US9237921B2 (en) 2012-04-09 2016-01-19 Ethicon Endo-Surgery, Inc. Devices and techniques for cutting and coagulating tissue
US9700343B2 (en) 2012-04-09 2017-07-11 Ethicon Endo-Surgery, Llc Devices and techniques for cutting and coagulating tissue
US9724118B2 (en) 2012-04-09 2017-08-08 Ethicon Endo-Surgery, Llc Techniques for cutting and coagulating tissue for ultrasonic surgical instruments
US10517627B2 (en) 2012-04-09 2019-12-31 Ethicon Llc Switch arrangements for ultrasonic surgical instruments
US9241731B2 (en) 2012-04-09 2016-01-26 Ethicon Endo-Surgery, Inc. Rotatable electrical connection for ultrasonic surgical instruments
US10987123B2 (en) 2012-06-28 2021-04-27 Ethicon Llc Surgical instruments with articulating shafts
US10993763B2 (en) 2012-06-29 2021-05-04 Ethicon Llc Lockout mechanism for use with robotic electrosurgical device
US10335183B2 (en) 2012-06-29 2019-07-02 Ethicon Llc Feedback devices for surgical control systems
US9713507B2 (en) 2012-06-29 2017-07-25 Ethicon Endo-Surgery, Llc Closed feedback control for electrosurgical device
US10543008B2 (en) 2012-06-29 2020-01-28 Ethicon Llc Ultrasonic surgical instruments with distally positioned jaw assemblies
US10779845B2 (en) 2012-06-29 2020-09-22 Ethicon Llc Ultrasonic surgical instruments with distally positioned transducers
US11096752B2 (en) 2012-06-29 2021-08-24 Cilag Gmbh International Closed feedback control for electrosurgical device
US10524872B2 (en) 2012-06-29 2020-01-07 Ethicon Llc Closed feedback control for electrosurgical device
US11426191B2 (en) 2012-06-29 2022-08-30 Cilag Gmbh International Ultrasonic surgical instruments with distally positioned jaw assemblies
US10335182B2 (en) 2012-06-29 2019-07-02 Ethicon Llc Surgical instruments with articulating shafts
US10441310B2 (en) 2012-06-29 2019-10-15 Ethicon Llc Surgical instruments with curved section
US9737326B2 (en) 2012-06-29 2017-08-22 Ethicon Endo-Surgery, Llc Haptic feedback devices for surgical robot
US10966747B2 (en) 2012-06-29 2021-04-06 Ethicon Llc Haptic feedback devices for surgical robot
US9408622B2 (en) 2012-06-29 2016-08-09 Ethicon Endo-Surgery, Llc Surgical instruments with articulating shafts
US10398497B2 (en) 2012-06-29 2019-09-03 Ethicon Llc Lockout mechanism for use with robotic electrosurgical device
US11717311B2 (en) 2012-06-29 2023-08-08 Cilag Gmbh International Surgical instruments with articulating shafts
US11583306B2 (en) 2012-06-29 2023-02-21 Cilag Gmbh International Surgical instruments with articulating shafts
US9393037B2 (en) 2012-06-29 2016-07-19 Ethicon Endo-Surgery, Llc Surgical instruments with articulating shafts
US11602371B2 (en) 2012-06-29 2023-03-14 Cilag Gmbh International Ultrasonic surgical instruments with control mechanisms
US9326788B2 (en) 2012-06-29 2016-05-03 Ethicon Endo-Surgery, Llc Lockout mechanism for use with robotic electrosurgical device
US10842580B2 (en) 2012-06-29 2020-11-24 Ethicon Llc Ultrasonic surgical instruments with control mechanisms
US9283045B2 (en) 2012-06-29 2016-03-15 Ethicon Endo-Surgery, Llc Surgical instruments with fluid management system
US11871955B2 (en) 2012-06-29 2024-01-16 Cilag Gmbh International Surgical instruments with articulating shafts
US10881449B2 (en) 2012-09-28 2021-01-05 Ethicon Llc Multi-function bi-polar forceps
US10201365B2 (en) 2012-10-22 2019-02-12 Ethicon Llc Surgeon feedback sensing and display methods
US11179173B2 (en) 2012-10-22 2021-11-23 Cilag Gmbh International Surgical instrument
US9795405B2 (en) 2012-10-22 2017-10-24 Ethicon Llc Surgical instrument
US11324527B2 (en) 2012-11-15 2022-05-10 Cilag Gmbh International Ultrasonic and electrosurgical devices
US11272952B2 (en) 2013-03-14 2022-03-15 Cilag Gmbh International Mechanical fasteners for use with surgical energy devices
US10226273B2 (en) 2013-03-14 2019-03-12 Ethicon Llc Mechanical fasteners for use with surgical energy devices
US9743947B2 (en) 2013-03-15 2017-08-29 Ethicon Endo-Surgery, Llc End effector with a clamp arm assembly and blade
US9241728B2 (en) 2013-03-15 2016-01-26 Ethicon Endo-Surgery, Inc. Surgical instrument with multiple clamping mechanisms
US10925659B2 (en) 2013-09-13 2021-02-23 Ethicon Llc Electrosurgical (RF) medical instruments for cutting and coagulating tissue
US10912603B2 (en) 2013-11-08 2021-02-09 Ethicon Llc Electrosurgical devices
US10912580B2 (en) 2013-12-16 2021-02-09 Ethicon Llc Medical device
US11033292B2 (en) 2013-12-16 2021-06-15 Cilag Gmbh International Medical device
US10856929B2 (en) 2014-01-07 2020-12-08 Ethicon Llc Harvesting energy from a surgical generator
US10779879B2 (en) 2014-03-18 2020-09-22 Ethicon Llc Detecting short circuits in electrosurgical medical devices
US10932847B2 (en) 2014-03-18 2021-03-02 Ethicon Llc Detecting short circuits in electrosurgical medical devices
US11399855B2 (en) 2014-03-27 2022-08-02 Cilag Gmbh International Electrosurgical devices
US10463421B2 (en) 2014-03-27 2019-11-05 Ethicon Llc Two stage trigger, clamp and cut bipolar vessel sealer
US11471209B2 (en) 2014-03-31 2022-10-18 Cilag Gmbh International Controlling impedance rise in electrosurgical medical devices
US10349999B2 (en) 2014-03-31 2019-07-16 Ethicon Llc Controlling impedance rise in electrosurgical medical devices
US11337747B2 (en) 2014-04-15 2022-05-24 Cilag Gmbh International Software algorithms for electrosurgical instruments
US10285724B2 (en) 2014-07-31 2019-05-14 Ethicon Llc Actuation mechanisms and load adjustment assemblies for surgical instruments
US11413060B2 (en) 2014-07-31 2022-08-16 Cilag Gmbh International Actuation mechanisms and load adjustment assemblies for surgical instruments
US10639092B2 (en) 2014-12-08 2020-05-05 Ethicon Llc Electrode configurations for surgical instruments
US11311326B2 (en) 2015-02-06 2022-04-26 Cilag Gmbh International Electrosurgical instrument with rotation and articulation mechanisms
US10342602B2 (en) 2015-03-17 2019-07-09 Ethicon Llc Managing tissue treatment
US10321950B2 (en) 2015-03-17 2019-06-18 Ethicon Llc Managing tissue treatment
US10595929B2 (en) 2015-03-24 2020-03-24 Ethicon Llc Surgical instruments with firing system overload protection mechanisms
US10034684B2 (en) 2015-06-15 2018-07-31 Ethicon Llc Apparatus and method for dissecting and coagulating tissue
US11020140B2 (en) 2015-06-17 2021-06-01 Cilag Gmbh International Ultrasonic surgical blade for use with ultrasonic surgical instruments
US10952788B2 (en) 2015-06-30 2021-03-23 Ethicon Llc Surgical instrument with user adaptable algorithms
US10357303B2 (en) 2015-06-30 2019-07-23 Ethicon Llc Translatable outer tube for sealing using shielded lap chole dissector
US10898256B2 (en) 2015-06-30 2021-01-26 Ethicon Llc Surgical system with user adaptable techniques based on tissue impedance
US11553954B2 (en) 2015-06-30 2023-01-17 Cilag Gmbh International Translatable outer tube for sealing using shielded lap chole dissector
US10034704B2 (en) 2015-06-30 2018-07-31 Ethicon Llc Surgical instrument with user adaptable algorithms
US10765470B2 (en) 2015-06-30 2020-09-08 Ethicon Llc Surgical system with user adaptable techniques employing simultaneous energy modalities based on tissue parameters
US11141213B2 (en) 2015-06-30 2021-10-12 Cilag Gmbh International Surgical instrument with user adaptable techniques
US11903634B2 (en) 2015-06-30 2024-02-20 Cilag Gmbh International Surgical instrument with user adaptable techniques
US11051873B2 (en) 2015-06-30 2021-07-06 Cilag Gmbh International Surgical system with user adaptable techniques employing multiple energy modalities based on tissue parameters
US11129669B2 (en) 2015-06-30 2021-09-28 Cilag Gmbh International Surgical system with user adaptable techniques based on tissue type
US10154852B2 (en) 2015-07-01 2018-12-18 Ethicon Llc Ultrasonic surgical blade with improved cutting and coagulation features
US10194973B2 (en) 2015-09-30 2019-02-05 Ethicon Llc Generator for digitally generating electrical signal waveforms for electrosurgical and ultrasonic surgical instruments
US10687884B2 (en) 2015-09-30 2020-06-23 Ethicon Llc Circuits for supplying isolated direct current (DC) voltage to surgical instruments
US10751108B2 (en) 2015-09-30 2020-08-25 Ethicon Llc Protection techniques for generator for digitally generating electrosurgical and ultrasonic electrical signal waveforms
US11058475B2 (en) 2015-09-30 2021-07-13 Cilag Gmbh International Method and apparatus for selecting operations of a surgical instrument based on user intention
US10624691B2 (en) 2015-09-30 2020-04-21 Ethicon Llc Techniques for operating generator for digitally generating electrical signal waveforms and surgical instruments
US10736685B2 (en) 2015-09-30 2020-08-11 Ethicon Llc Generator for digitally generating combined electrical signal waveforms for ultrasonic surgical instruments
US10610286B2 (en) 2015-09-30 2020-04-07 Ethicon Llc Techniques for circuit topologies for combined generator
US11559347B2 (en) 2015-09-30 2023-01-24 Cilag Gmbh International Techniques for circuit topologies for combined generator
US11766287B2 (en) 2015-09-30 2023-09-26 Cilag Gmbh International Methods for operating generator for digitally generating electrical signal waveforms and surgical instruments
US11033322B2 (en) 2015-09-30 2021-06-15 Ethicon Llc Circuit topologies for combined generator
US10595930B2 (en) 2015-10-16 2020-03-24 Ethicon Llc Electrode wiping surgical device
US11666375B2 (en) 2015-10-16 2023-06-06 Cilag Gmbh International Electrode wiping surgical device
US10179022B2 (en) 2015-12-30 2019-01-15 Ethicon Llc Jaw position impedance limiter for electrosurgical instrument
US10575892B2 (en) 2015-12-31 2020-03-03 Ethicon Llc Adapter for electrical surgical instruments
US11229471B2 (en) 2016-01-15 2022-01-25 Cilag Gmbh International Modular battery powered handheld surgical instrument with selective application of energy based on tissue characterization
US11751929B2 (en) 2016-01-15 2023-09-12 Cilag Gmbh International Modular battery powered handheld surgical instrument with selective application of energy based on tissue characterization
US10716615B2 (en) 2016-01-15 2020-07-21 Ethicon Llc Modular battery powered handheld surgical instrument with curved end effectors having asymmetric engagement between jaw and blade
US10828058B2 (en) 2016-01-15 2020-11-10 Ethicon Llc Modular battery powered handheld surgical instrument with motor control limits based on tissue characterization
US10779849B2 (en) 2016-01-15 2020-09-22 Ethicon Llc Modular battery powered handheld surgical instrument with voltage sag resistant battery pack
US10537351B2 (en) 2016-01-15 2020-01-21 Ethicon Llc Modular battery powered handheld surgical instrument with variable motor control limits
US11229450B2 (en) 2016-01-15 2022-01-25 Cilag Gmbh International Modular battery powered handheld surgical instrument with motor drive
US10251664B2 (en) 2016-01-15 2019-04-09 Ethicon Llc Modular battery powered handheld surgical instrument with multi-function motor via shifting gear assembly
US10842523B2 (en) 2016-01-15 2020-11-24 Ethicon Llc Modular battery powered handheld surgical instrument and methods therefor
US11058448B2 (en) 2016-01-15 2021-07-13 Cilag Gmbh International Modular battery powered handheld surgical instrument with multistage generator circuits
US11684402B2 (en) 2016-01-15 2023-06-27 Cilag Gmbh International Modular battery powered handheld surgical instrument with selective application of energy based on tissue characterization
US11129670B2 (en) 2016-01-15 2021-09-28 Cilag Gmbh International Modular battery powered handheld surgical instrument with selective application of energy based on button displacement, intensity, or local tissue characterization
US10299821B2 (en) 2016-01-15 2019-05-28 Ethicon Llc Modular battery powered handheld surgical instrument with motor control limit profile
US11051840B2 (en) 2016-01-15 2021-07-06 Ethicon Llc Modular battery powered handheld surgical instrument with reusable asymmetric handle housing
US10709469B2 (en) 2016-01-15 2020-07-14 Ethicon Llc Modular battery powered handheld surgical instrument with energy conservation techniques
US11896280B2 (en) 2016-01-15 2024-02-13 Cilag Gmbh International Clamp arm comprising a circuit
US11134978B2 (en) 2016-01-15 2021-10-05 Cilag Gmbh International Modular battery powered handheld surgical instrument with self-diagnosing control switches for reusable handle assembly
US10555769B2 (en) 2016-02-22 2020-02-11 Ethicon Llc Flexible circuits for electrosurgical instrument
US11202670B2 (en) 2016-02-22 2021-12-21 Cilag Gmbh International Method of manufacturing a flexible circuit electrode for electrosurgical instrument
US10702329B2 (en) 2016-04-29 2020-07-07 Ethicon Llc Jaw structure with distal post for electrosurgical instruments
US10485607B2 (en) 2016-04-29 2019-11-26 Ethicon Llc Jaw structure with distal closure for electrosurgical instruments
US10646269B2 (en) 2016-04-29 2020-05-12 Ethicon Llc Non-linear jaw gap for electrosurgical instruments
US11864820B2 (en) 2016-05-03 2024-01-09 Cilag Gmbh International Medical device with a bilateral jaw configuration for nerve stimulation
US10456193B2 (en) 2016-05-03 2019-10-29 Ethicon Llc Medical device with a bilateral jaw configuration for nerve stimulation
US10966744B2 (en) 2016-07-12 2021-04-06 Ethicon Llc Ultrasonic surgical instrument with piezoelectric central lumen transducer
US10245064B2 (en) 2016-07-12 2019-04-02 Ethicon Llc Ultrasonic surgical instrument with piezoelectric central lumen transducer
US11883055B2 (en) 2016-07-12 2024-01-30 Cilag Gmbh International Ultrasonic surgical instrument with piezoelectric central lumen transducer
US10893883B2 (en) 2016-07-13 2021-01-19 Ethicon Llc Ultrasonic assembly for use with ultrasonic surgical instruments
US10842522B2 (en) 2016-07-15 2020-11-24 Ethicon Llc Ultrasonic surgical instruments having offset blades
US10376305B2 (en) 2016-08-05 2019-08-13 Ethicon Llc Methods and systems for advanced harmonic energy
US11344362B2 (en) 2016-08-05 2022-05-31 Cilag Gmbh International Methods and systems for advanced harmonic energy
US10285723B2 (en) 2016-08-09 2019-05-14 Ethicon Llc Ultrasonic surgical blade with improved heel portion
USD847990S1 (en) 2016-08-16 2019-05-07 Ethicon Llc Surgical instrument
USD924400S1 (en) 2016-08-16 2021-07-06 Cilag Gmbh International Surgical instrument
US11925378B2 (en) 2016-08-25 2024-03-12 Cilag Gmbh International Ultrasonic transducer for surgical instrument
US10779847B2 (en) 2016-08-25 2020-09-22 Ethicon Llc Ultrasonic transducer to waveguide joining
US10420580B2 (en) 2016-08-25 2019-09-24 Ethicon Llc Ultrasonic transducer for surgical instrument
US11350959B2 (en) 2016-08-25 2022-06-07 Cilag Gmbh International Ultrasonic transducer techniques for ultrasonic surgical instrument
US10952759B2 (en) 2016-08-25 2021-03-23 Ethicon Llc Tissue loading of a surgical instrument
US10603064B2 (en) 2016-11-28 2020-03-31 Ethicon Llc Ultrasonic transducer
US11266430B2 (en) 2016-11-29 2022-03-08 Cilag Gmbh International End effector control and calibration
US10820920B2 (en) 2017-07-05 2020-11-03 Ethicon Llc Reusable ultrasonic medical devices and methods of their use
US10881424B2 (en) 2018-02-13 2021-01-05 Covidien Lp Removable fluid reservoir and ultrasonic surgical instrument including the same
US11744636B2 (en) 2019-12-30 2023-09-05 Cilag Gmbh International Electrosurgical systems with integrated and external power sources
US11684412B2 (en) 2019-12-30 2023-06-27 Cilag Gmbh International Surgical instrument with rotatable and articulatable surgical end effector
US11779329B2 (en) 2019-12-30 2023-10-10 Cilag Gmbh International Surgical instrument comprising a flex circuit including a sensor system
US11786291B2 (en) 2019-12-30 2023-10-17 Cilag Gmbh International Deflectable support of RF energy electrode with respect to opposing ultrasonic blade
US11786294B2 (en) 2019-12-30 2023-10-17 Cilag Gmbh International Control program for modular combination energy device
US11812957B2 (en) 2019-12-30 2023-11-14 Cilag Gmbh International Surgical instrument comprising a signal interference resolution system
US11452525B2 (en) 2019-12-30 2022-09-27 Cilag Gmbh International Surgical instrument comprising an adjustment system
US11759251B2 (en) 2019-12-30 2023-09-19 Cilag Gmbh International Control program adaptation based on device status and user input
US11944366B2 (en) 2019-12-30 2024-04-02 Cilag Gmbh International Asymmetric segmented ultrasonic support pad for cooperative engagement with a movable RF electrode
US11779387B2 (en) 2019-12-30 2023-10-10 Cilag Gmbh International Clamp arm jaw to minimize tissue sticking and improve tissue control
US11589916B2 (en) 2019-12-30 2023-02-28 Cilag Gmbh International Electrosurgical instruments with electrodes having variable energy densities
US11723716B2 (en) 2019-12-30 2023-08-15 Cilag Gmbh International Electrosurgical instrument with variable control mechanisms
US11660089B2 (en) 2019-12-30 2023-05-30 Cilag Gmbh International Surgical instrument comprising a sensing system
US11707318B2 (en) 2019-12-30 2023-07-25 Cilag Gmbh International Surgical instrument with jaw alignment features
US11911063B2 (en) 2019-12-30 2024-02-27 Cilag Gmbh International Techniques for detecting ultrasonic blade to electrode contact and reducing power to ultrasonic blade
US11696776B2 (en) 2019-12-30 2023-07-11 Cilag Gmbh International Articulatable surgical instrument
US11937866B2 (en) 2019-12-30 2024-03-26 Cilag Gmbh International Method for an electrosurgical procedure
US11937863B2 (en) 2019-12-30 2024-03-26 Cilag Gmbh International Deflectable electrode with variable compression bias along the length of the deflectable electrode
US11950797B2 (en) 2020-05-29 2024-04-09 Cilag Gmbh International Deflectable electrode with higher distal bias relative to proximal bias
USD974558S1 (en) 2020-12-18 2023-01-03 Stryker European Operations Limited Ultrasonic knife

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US20220168005A1 (en) 2022-06-02
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US20150164535A1 (en) 2015-06-18
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AU2013344626A1 (en) 2015-05-07
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US11324527B2 (en) 2022-05-10
US20150164534A1 (en) 2015-06-18

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