US20080179107A1 - Rotary drag bit and methods therefor - Google Patents
Rotary drag bit and methods therefor Download PDFInfo
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- US20080179107A1 US20080179107A1 US12/020,399 US2039908A US2008179107A1 US 20080179107 A1 US20080179107 A1 US 20080179107A1 US 2039908 A US2039908 A US 2039908A US 2008179107 A1 US2008179107 A1 US 2008179107A1
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Images
Classifications
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- E—FIXED CONSTRUCTIONS
- E21—EARTH DRILLING; MINING
- E21B—EARTH DRILLING, e.g. DEEP DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
- E21B10/00—Drill bits
- E21B10/46—Drill bits characterised by wear resisting parts, e.g. diamond inserts
- E21B10/54—Drill bits characterised by wear resisting parts, e.g. diamond inserts the bit being of the rotary drag type, e.g. fork-type bits
- E21B10/55—Drill bits characterised by wear resisting parts, e.g. diamond inserts the bit being of the rotary drag type, e.g. fork-type bits with preformed cutting elements
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- E—FIXED CONSTRUCTIONS
- E21—EARTH DRILLING; MINING
- E21B—EARTH DRILLING, e.g. DEEP DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
- E21B10/00—Drill bits
- E21B10/42—Rotary drag type drill bits with teeth, blades or like cutting elements, e.g. fork-type bits, fish tail bits
- E21B10/43—Rotary drag type drill bits with teeth, blades or like cutting elements, e.g. fork-type bits, fish tail bits characterised by the arrangement of teeth or other cutting elements
Definitions
- the present invention in several embodiments, relates generally to a rotary drag bit for drilling subterranean formations and, more particularly, to rotary drag bits having select plural kerfing cutter configurations configured to enhance cutter life and performance, including methods therefor.
- Rotary drag bits have been use for subterranean drilling for many decades, and various sizes, shapes and patterns of natural and synthetic diamonds have been used on drag bit crowns as cutting elements.
- a drag bit can provide an improved rate of penetration (ROP) over a tri-cone bit in many formations.
- ROP rate of penetration
- a polycrystalline diamond compact (PDC) cutting element or cutter comprising a planar diamond cutting element or table formed onto a tungsten carbide substrate under high temperature and high pressure conditions.
- the PDC cutters are formed into a myriad of shapes, including circular, semicircular or tombstone, which are the most commonly used configurations.
- the PDC diamond tables are formed so the edges of the table are coplanar with the supporting tungsten carbide substrate or the table may overhang or be undercut slightly, forming a “lip” at the trailing edge of the table in order to improve the cutting effectiveness and wear life of the cutter as it comes into contact with formations of earth being drilled.
- Bits carrying PDC cutters which, for example, may be brazed into pockets in the bit face, pockets in blades extending from the face, or mounted to studs inserted into the bit body, have proven very effective in achieving a ROP in drilling subterranean formations exhibiting low to medium compressive strengths.
- the PDC cutters have provided drill bit designers with a wide variety of improved cutter deployments and orientations, crown configurations, nozzle placements and other design alternatives previously not possible with the use of small natural diamond or synthetic diamond cutters. While the PDC cutting element improves drill bit efficiency in drilling many subterranean formations, the PDC cutting element is nonetheless prone to wear when exposed to certain drilling conditions, resulting in a shortened life of a rotary drag bit using such cutting elements.
- Thermally stable diamond is another type of synthetic diamond, PDC material which can be used as a cutting element or cutter for a rotary drag bit.
- TSP cutters which have had catalyst used to promote formation of diamond-to-diamond bonds in the structure removed therefrom, have improved thermal performance over PDC cutters.
- the high frictional heating associated with hard and abrasive rock drilling applications creates cutting edge temperatures that exceed the thermal stability of PDC, whereas TSP cutters remain stable at higher operating temperatures. This characteristic also enables TSPs to be furnaced into the face of a matrix-type rotary drag bit.
- drilling parameters include, without limitation, formation type, weight on bit (WOB), cutter position, cutter rake angle, cutter count, cutter density, drilling temperature and drill string RPM, for example and further include other parameters understood by those of ordinary skill in the subterranean drilling art.
- One approach to enhancing bit life is to use the so-called “backup” cutter to extend the life of a primary cutter of the drag bit particularly when subjected to dysfunctional energy or harder, more abrasive, material in the subterranean formation.
- the backup cutter is positioned in a second cutter row, rotationally following in the path of a primary cutter, so as to engage the formation should the primary cutter fail or wear beyond an appreciable amount.
- backup cutters has proven to be a convenient technique for extending the life of a bit, while enhancing stability without the necessity of designing the bit with additional blades to carry more cutters which might decrease ROP or potentially compromise bit hydraulics due to reduced available fluid flow area over the bit face and less-than-optimum fluid flow due to unfavorable placement of nozzles in the bit face.
- a drag bit will experience less wear as the blade count is increased and undesirably will have slower ROP, while a drag bit with a lower blade count, with its faster ROP, is subjected to greater wear.
- Embodiments of a rotary drag bit include a bit body having a face and an axis, a plurality of blades extending longitudinally and radially over the face, and at least one split cutter set.
- Each cutter of the split cutter set includes a cutting surface protruding at least partially from, or exposed beyond, a surface of a blade of the drag bit. All of the cutters of a split cutter set are located substantially the same radial distance from the central axis of the bit and may be located at substantially the same elevation along the central axis of the bit or at locations that enable them to substantially traverse a common cutting path upon rotation of the bit body about its central axis.
- a split cutter set includes a first primary cutter on a first blade and a corresponding second primary cutter on a different, second blade.
- One of the first and second primary cutters may be a so-called “kerfing cutter,” which largely follows the cutting path of the other primary cutter, but removes additional material from the formation into which the drag bit is drilling.
- a split cutter set also includes at least one backup cutter positioned rotationally or helically behind the first primary cutter or the second primary cutter so as to follow substantially the same cutting path as the primary cutter behind which it is positioned.
- one or more backup cutters may be provided for each primary cutter of a split cutter set.
- Such a split cutter set enables faster drilling while reducing stress upon the cutters. In this respect, the lives of the cutters of the bit are extended and the bit is more durable than comparable conventional drag, bits, extending the life of the rotary drag bit.
- rotary drag bits may advantageously include split cutter sets with the following primary cutter configurations: a primary cutter on a first blade and a split cutter on a second, trailing blade, wherein the second, trailing blade may be located adjacent to the first blade, spaced apart from the first blade (at least in the direction of rotation of the drag bit) by another blade, opposite from (i.e., “opposing,” e.g., at about 180°) the first blade; or a split cutter on a first blade and a primary cutter on a second, trailing blade, with the second blade located adjacent to the first blade, spaced apart from the first blade (at least in the direction of rotation of the drag bit) by another blade, or opposite from (i.e., “opposing,” e.g., at about 180°) the first blade; or a pair of primary cutters on different, first and second blades, with the second blade immediately trailing the first blade, trailing an intervening blade the trails the first blade, or positioned opposite from the first blade
- FIG. 1 shows a frontal view of a rotary drag bit in accordance with a first embodiment of the invention.
- FIG. 2 shows a cutter and blade profile for the first embodiment of the invention.
- FIG. 3A shows a top view representation of an inline cutter set.
- FIG. 3B shows a face view representation of the inline cutter set.
- FIG. 4A shows a top view representation of a staggered cutter set.
- FIG. 4B shows a face view representation of the staggered cutter set.
- FIG. 5 shows a frontal view of a rotary drag bit in accordance with a second embodiment of the invention.
- FIG. 6 shows a cutter and blade profile for the second embodiment of the invention.
- FIG. 7 shows a cutter profile for a first blade of the bit of FIG. 5 .
- FIG. 8 shows a cutter profile for a second blade of the bit of FIG. 5 .
- FIG. 9 shows a cutter profile for a third blade of the bit of FIG. 5 .
- FIG. 10 shows a cutter profile for a fourth blade of the bit of FIG. 5 .
- FIG. 11 shows a cutter profile for a fifth blade of the bit of FIG. 5 .
- FIG. 12 shows a cutter profile for a sixth blade of the bit of FIG. 5 .
- FIG. 13 a frontal view of a rotary drag bit in accordance with a third embodiment of the invention.
- FIG. 14 shows a cutter and blade profile for the third embodiment of the invention.
- FIG. 15 shows a cutter profile for a first blade of the bit of FIG. 13 .
- FIG. 16 shows a cutter profile for a second blade of the bit of FIG. 13 .
- FIG. 17 shows a cutter profile for a third blade of the bit of FIG. 13 .
- FIG. 18 shows a top view representation of an inline cutter set having two sideraked cutters.
- FIG. 19 is a graph of cumulative diamond wearflat area during simulated drilling conditions for seven different drag bits over distance drilled.
- FIG. 20 is a graph of drilling penetration rate of the simulated drilling conditions of FIG. 19 .
- FIG. 21 is a graph of wearflat area for each cutter as a function of cutter radial position for the simulated drilling conditions of FIG. 19 at the end of the simulation.
- FIG. 22 shows a frontal view of a rotary drag bit in accordance with a fourth embodiment of the invention.
- FIG. 23 shows a cutter and blade profile for the fourth embodiment of the invention.
- FIG. 24 shows a frontal view of a rotary drag bit in accordance with a fifth embodiment of the invention.
- FIG. 25 shows a cutter and blade profile for the fifth embodiment of the invention.
- FIG. 26 shows a cutter profile for a first blade of the bit of FIG. 24 .
- FIG. 27 shows a cutter profile for a second blade of the bit of PIG. 24 .
- FIG. 28 shows a cutter profile for a third blade of the bit of FIG. 24 .
- FIG. 29 shows a cutter profile for a fourth blade of the bit of FIG. 24 .
- FIG. 30 shows a cutter profile for a fifth blade of the bit of FIG. 24 .
- FIG. 31 shows a cutter profile for a sixth blade of the bit of FIG. 24 .
- FIG. 32 is a graph of cumulative diamond wearflat area during simulated drilling conditions for two different drag bits over distance drilled.
- FIG. 33 is a graph of work rate of the simulated drilling conditions of FIG. 32 .
- FIG. 34 is a graph of wearflat rate for each cutter as a function of cutter radial position for the simulated drilling conditions of FIG. 32 at the end of the simulation.
- FIG. 35 shows a partial top view of a rotary drag bit.
- FIG. 36 shows a partial side view of the rotary drag bit of FIG. 35 .
- FIG. 37 shows a frontal view of a rotary drag bit in accordance with a sixth embodiment of the invention.
- FIG. 38 shows a cutter and blade profile for the sixth embodiment of the invention.
- rotary drag bits are provided that may drill further, may drill faster or may be more durable than rotary drag bits of conventional design.
- each drag bit is believed to offer improved life and greater performance regardless of the subterranean formation material being drilled.
- the rotary drag bit 110 is oriented as if it were viewed from the bottom, or by looking upwardly at its face or leading end 112 with the viewer positioned at the bottom of a bore hole.
- Bit 110 includes a plurality of cutting elements or cutters 114 bonded, as by brazing, into pockets 116 (as representatively shown) located in the blades 131 , 132 , 133 protruding from the face 112 of the drag bit 110 . While the cutters 114 may be bonded to the pockets 116 by brazing, other attachment techniques may be used as are well known to those of ordinary skill in the art.
- Reference number 114 is generally used to represent each of the cutters. The cutters 114 coupled to their respective pockets 116 upon the drag bit 110 , but specific cutters, including their attributes, will be called out by different reference numerals hereinafter to provide a more detailed presentation of the invention.
- the drag bit 110 in this embodiment is a so-called “matrix” body bit.
- “Matrix” bits include a mass of metal powder, such as tungsten carbide particles, infiltrated with a molten, subsequently hardenable binder, such as a copper-based alloy.
- the bit may also be a steel or other bit type, such as a sintered metal carbide.
- Steel bits are generally made from a forging or billet, then machined to a final shape. The invention is not limited by the type of bit body employed for implementation of any embodiment thereof.
- Fluid courses 120 lie between blades 131 , 132 , 133 and are provided with drilling fluid by ports 122 being at the end of passages leading from a plenum extending into a bit body 111 from a tubular shank at the upper, or trailing, end of the bit 110 .
- the ports 122 may include nozzles (not shown) secured thereto for enhancing and controlling flow of the drilling fluid.
- Fluid courses 120 extend to junk slots 126 traversing upwardly along the longitudinal side 124 of bit 110 between blades 131 , 132 , 133 .
- Gage pads (not shown) comprise longitudinally oriented protrusions having radial outer surfaces 121 extending from blades 131 , 132 , 133 and may include wear-resistant inserts or coatings as known in the art.
- drilling fluid emanating from ports 122 , sweeps formation cuttings away from the cutters 114 and moves generally radially outwardly through fluid courses 120 and then upwardly through junk slots 126 to an annulus between the drill string from which the bit 110 is suspended and supported and the surfaces of the bore hole.
- the drilling fluid also cools the cutters 114 during drilling while clearing formation cuttings from the bit face 112 .
- Each of the cutters 114 in this embodiment is a PDC cutter.
- any other suitable type of cutting element may be utilized with the embodiments of the invention presented.
- the cutters are shown as unitary structures in order to better describe and present the invention.
- the cutters 114 may comprise layers of materials.
- the PDC cutters 114 of the current embodiment each comprise a diamond table bonded to a supporting substrate, as previously described.
- the PDC cutters 114 remove material from the underlying subterranean formations by a shearing action as the drag bit 110 is rotated by contacting the formation with cutting edges 113 of the cutters 114 .
- the flow of drilling fluid suspends and carries the formation cuttings away through the junk slots 126 .
- the blades 131 , 132 , 133 are each considered to be primary blades.
- Each blade 131 132 , 133 in general terns of a primary blade, includes a body portion 134 that extends (longitudinally and radially projects) from the face 112 and is part of the bit body 111 (the bit body 111 is also known as the “frame” of the bit 110 ).
- the body portion 134 may extend to the gage region 165 .
- the body portion 134 includes a blade surface 135 , a leading face 136 and a trailing face 137 and may extend radially outward from either a cone region 160 or an axial center line C/L (shown by numeral 161 ) of the bit 110 toward a gage region 165 .
- Fluid courses 120 are located between the portions of adjacent blades 131 , 132 , 133 that are located on the face 112 of the bit, and are continuous with junk slots 126 that are located between the portions of adjacent blades 131 , 132 , 133 that extend along the gage region 165 of the bit 110 .
- bit 110 As the body portion 134 of the blades 131 , 132 , 133 radially extends outwardly from the axial center line 161 of the bit 110 , the blade surface 135 may radially widen, and the leading face 136 and the trailing face 137 may both axially protrude a greater distance from the face 112 of the bit body 111 . While the illustrated embodiment of bit 110 includes three blades 131 , 132 and 133 , a bit may have any number of blades, but generally will have no less than two blades separated by at least two fluid courses 120 and junk slots 126 .
- drilling fluid emanates from ports 122 , it is substantially transported by way of the fluid courses 120 to the junk slots 126 and onto the leading face 136 of the body portion 134 of each blade 131 , 132 , 133 during drilling. A portion of the drilling fluid will also wash across the blade surface 135 , including the trailing face 137 of the blade surface 135 , to cool and clean the cutters 114 .
- the drag bit 110 in this embodiment of the invention includes three primary blades 131 , 132 , 133 , but does not include any secondary or tertiary blades as are known in the art.
- a secondary blade or a tertiary blade provides additional support structure in order to increase the cutter density of the bit 10 by receiving additional primary cutters 114 thereon.
- a secondary or a tertiary blade is defined much like a primary blade, but extends radially toward the gage region generally from a nose region 162 , a flank region 163 or a shoulder region 164 of the bit 110 .
- a secondary blade or a tertiary blade is defined between leading and trailing fluid courses 120 in fluid communication with at least one of the ports 122 .
- a secondary blade or a tertiary blade, or a combination of secondary and tertiary blades may be provided between primary blades.
- the presence of secondary or tertiary blades decreases the available volume of the adjacent fluid courses 120 , providing less clearing action of the formation cuttings or cleaning of the cutters 114 .
- a drag bit 110 in accordance with an embodiment of the invention may include one or more secondary or tertiary blades when needed or desired to implement particular drilling characteristics of the drag bit.
- the rotary drag bit 110 comprises three blades 131 , 132 , 133 , three primary cutter rows 141 , 142 , 143 and three backup cutter groups 151 , 152 , 153 , respectively. While three backup cutter groups 151 , 152 , 153 are included, it is contemplated that the drag bit 110 may include one backup cutter group on one of the blades or a plurality of backup cutter groups on each blade greater or less than that illustrated. Further, it is contemplated that the drag bit 110 may have more or fewer blades than the three illustrated. Each of the backup cutter groups 151 , 152 , 153 may have one or more backup cutter sets.
- the backup cutter group 152 includes three backup cutter sets 152 ′, 152 ′′, 152 ′′′. A detailed description of backup cutter sets 152 ′, 152 ′′, 152 ′′′ of the backup cutter group 152 is now provided.
- Each primary cutter row 141 , 142 , 143 is arranged upon each blade 131 , 132 , 133 , respectively. Rotationally trailing each of the primary cutter rows 141 , 142 , 143 on each of the blades 131 , 132 , 133 multiplies a backup cutter group 151 , 152 , 153 , respectively. While each blade includes a primary cutter row rotationally followed by a backup cutter group in this embodiment, the drag bit 110 may have a backup cutter group selectively placed behind a primary cutter row on at least one of the blades of the bit body 111 . Further, the drag bit 110 may have a backup cutter group selectively placed on multiple blades of the bit body 111 .
- Each of the backup cutter groups 151 , 152 , and 153 may have one or more backup cutter sets.
- the backup cutter group 152 includes three multiple backup cutter sets 152 ′, 152 ′′, 152 ′′′. While backup cutter group 152 that is located on the same blade 132 and that rotationally trails the cutters of primary cutter row 142 includes three backup cutter sets 152 ′, 152 ′′, 152 ′′′, it is contemplated that the drag bit 110 may include one backup cutter set or a plurality of backup cutter sets in each backup cutter group greater or less than the three illustrated.
- the backup cutter sets 152 ′, 152 ′′, 152 ′′′ of cutter group 152 of blade 132 will be discussed in further detail below as they are representative of the other multiple backup cutter sets in the other cutter groups 151 , 153 .
- the backup cutter group 152 comprising the backup cutter sets 152 ′, 152 ′′, 152 ′′′, comprises a first trailing cutter row 154 , a second trailing cutter row 155 , and a third trailing cutter row 156 .
- Each of the rows 141 , 142 , 143 , 154 , 155 , 156 includes one or more cutters 114 positionally coupled to the blades 131 , 132 , 133 .
- a cutter row may be determined by a radial path extending from the centerline C/L (the centerline is extending out of FIG. 1 as indicated by numeral 161 ) of the face 112 of the drag bit 110 and may be further defined by having one or more cutting elements or cutters disposed substantially along or proximate to the radial path.
- the primary cutter row 142 of blade 132 comprises cutters 3 , 6 , 11 , 19 , 28 , 37 , 46 , 50 .
- Each of the backup cutter sets 152 ′, 152 ′′, 152 ′′′ respectively includes cutters 20 , 29 , 38 from the first trailing cutter row 154 , cutters 21 , 30 , 39 from the second trailing cutter row 155 , and cutters 57 , 58 , 59 from the third trailing cutter row 156 .
- the first trailing cutter row 154 rotationally trails the primary cutter row 142 and rotationally leads the second trailing cutter row 155 , which rotationally leads the third trailing cutter row 156 .
- each backup cutter set 152 ′, 152 ′′, 152 ′′′ of this embodiment includes cutters 114 in trailing cutter rows 154 , 155 , 156
- the number of cutter rows is only limited by the available area on the surface 135 of each blade 131 , 132 , 133 .
- the backup cutter set 152 ′ includes three cutters 20 , 21 , 57 from three trailing cutter rows 154 , 155 , 156 , respectively. While three cutters 20 , 21 , 57 are included in the backup cutter set 152 ′, it is contemplated that each backup cutter set may include cutters from a plurality of trailing cutter rows.
- the cutters 12 , 20 , 29 , 38 , 47 of the first trailing cutter row 154 rotationally trail the cutters 11 , 19 , 28 , 37 , 46 of the primary cutter row 142 , respectively, and are considered to be backup cutters in this embodiment.
- Backup cutters rotationally follow a primary cutter in substantially the same rotational path, at substantially the same radius from the centerline C/L in order to increase the durability and life of the drag bit 110 should a primary cutter fail or wear beyond its usefulness.
- the cutters 12 , 20 , 29 , 38 , 47 of the first trailing cutter row 154 may be any assortment or combination of primary, secondary and backup cutters.
- a secondary cutter may rotationally follow primary cutters in adjacent rotational paths, at varying radiuses from the centerline C/L in order to remove larger kerfs between primary cutters providing increased rate of penetration and durability of the drag bit 110 .
- the cutters 12 , 20 , 29 , 38 , 47 may be spaced along their rotational paths at various radial positions in order to enhance cutter performance when engaging the material of a particular subterranean formation.
- the cutters 12 , 20 , 29 , 38 , 47 rotationally trailing the cutters 11 , 19 , 28 , 37 , 46 , are underexposed with respect to the cutters 11 , 19 , 28 , 37 , 46 .
- the cutters 12 , 20 , 29 , 38 , 47 are underexposed by twenty-five thousandths (0.025) of an inch (0.635 millimeters).
- the cutters 21 , 30 , 39 of the second trailing cutter row 155 each rotationally trail the cutters 19 , 28 , 37 of the primary cutter row 142 , respectively, and are also considered to be backup cutters to the primary cutter row 142 in this embodiment.
- the cutters 21 , 30 , 39 may be backup cutters to the cutters 20 , 29 , 38 of the first trailing cutter row 154 or a combination of the first trailing cutter row 154 and the primary cutter row 142 .
- the cutters 21 , 30 , 39 are backup cutters
- the cutters 21 , 30 , 39 of the second trailing cutter row 55 may be any assortment or combination of primary, secondary and backup cutters.
- the cutters 21 , 30 , 39 rotationally trailing the cutters 19 , 28 , 37 , are underexposed with respect to the cutters 19 , 28 , 37 .
- the cutters 21 , 30 , 39 are underexposed relative to row 142 by fifty thousandths (0.050) of an inch (1.27 millimeters).
- the cutters 57 , 58 , 59 of the third trailing cutter row 156 each rotationally trail the cutters 19 , 28 , 37 of the primary cutter row 142 , respectively, and are also backup cutters to the primary cutter row 142 in this embodiment.
- the cutters 57 , 58 , 59 may be backup cutters to the cutters 21 , 30 , 39 of the second trailing cutter row 155 or a combination of the second trailing cutter row 155 , the first trailing cutter row 154 and the primary cutter row 142 .
- the cutters 57 , 58 , 59 are backup cutters
- the cutters 57 , 58 , 59 of the third trailing cutter row 156 may be any assortment or combination of primary, secondary and backup cutters.
- the cutters 57 , 58 , 59 , rotationally trailing the cutters 19 , 28 , 37 are under exposed with respect to the cutters 19 , 28 , 37 .
- the cutters 57 , 58 , 59 are under exposed by seventy-five thousandths of an inch (0.075) (1.905 millimeters).
- each of the cutters 12 , 20 , 29 , 38 , 47 , 21 , 30 , 39 , 57 , 58 , 59 may have different underexposures or little to no underexposure with respect the cutters 114 of the primary cutter row 142 irrespective of each of the other cutters 12 , 20 , 29 , 38 , 47 , 21 , 30 , 39 , 57 , 58 , 59 .
- the cutters 114 of the first trailing cutter row 154 , the second trailing cutter row 155 and the third trailing cutter row 156 are smaller than the cutters 114 of the primary cutter rows 141 , 142 , 143 .
- the smaller cutters 114 of the cutter rows 154 , 155 , 156 are able to provide backup support for the primary cutter rows 141 , 142 , 143 when needed, but also provide reduced rotational contact resistance with the material of a formation when the cutters 114 are not needed. While the smaller cutters 114 of the first trailing cutter row 154 , the second trailing cutter row 155 and the third trailing cutter row 156 are all the same size, it is contemplated that each cutter size may be greater or smaller than that illustrated. Also, while the cutters 14 of each cutter row 154 , 155 , 156 are all the same size, it is contemplated that the cutter size of each cutter row may be greater or smaller than the other cutter rows.
- one or more additional cutter rows may be included on a blade of a rotary drag bit rotationally following and in further addition to a primary cutter row and a backup cutter row.
- the one or more additional cutter rows in this aspect of the invention are not a second cutter row, a third cutter row or an nth cutter row located on subsequent blades of the drag bit.
- Each of the one or more additional backup cutter rows, the backup cutter row and the primary cutter row include one or more cutting elements or cutters on the same blade.
- Each of the cutters of the one or more additional backup cutter rows may align or substantially align in a concentrically rotational path with the cutters of the row that rotationally leads it.
- each cutter may radially follow slightly off-center from the rotational path of the cutters located in the backup cutter row and the primary cutter row.
- each one or more cutters of additional cutter row may have a specific exposure with respect to one or more cutters of a preceding cutter row on a blade of a drag bit.
- an exposure of one or more cutters of each cutter row may incrementally step-down in values from an exposure of one or more cutters of a preceding cutter row.
- each of the one or more cutters of the cutter row may be progressively underexposed with respect to cutters of a rotationally preceding cutter row.
- one or more cutters of each subsequent cutter row may have an underexposure to a greater or lesser extent from one or more cutters of the cutter row preceding it.
- the cutters of the backup cutter rows may be engineered to come into contact with the material of the formation as the wear flat area of the primary cutters increases.
- the cutters of the backup cutter rows are designed to engage the formation as the primary cutters wear in order to increase the life of the drag bit.
- a primary cutter is located typically toward or on the front or leading face 136 of the blade 131 to provide the majority of the cutting work load, particularly when the cutters are less worn.
- the backup cutters in the backup cutter rows begin to engage the formation and begin to take on or share the work from the primary cutters in order to better remove the material of the formation.
- FIG. 3A shows a top view representation of an inline cutter set 200 .
- FIG. 3A is a linear representation of a rotational or helical path 202 in which cutters 214 may be oriented upon a rotary drag bit.
- the inline cutter set 200 includes a primary cutter 204 , a first backup cutter 206 and a second backup cutter 208 , each cutter rotationally inline with the immediately preceding cutter, i.e., following substantially along the same rotational path 202 .
- the larger primary cutter 204 and smaller backup cutters 206 , 208 provide increased durability and provide longer life to a rotary drag bit.
- backup cutters 206 , 208 each provide backup support for the primary cutter 204 should it fail or be subject to unexpectedly high dysfunction energy. Also, the backup cutters 206 and 208 each provide redundant backup support for the primary cutter 204 as it wears. In this regard, backup cutters 206 , 208 are a backup cutter set.
- FIG. 3B shows a face view representation of the inline cutter set 200 .
- the inline cutter set 200 comprises a fully exposed cutter face 205 for the primary cutter 204 and partially exposed cutter faces 207 , 209 for the backup cutters 206 , 208 , respectively, relative to reference line 203 .
- the backup cutters 206 , 208 are underexposed with respect to the primary cutter 204 .
- the reference line 203 is also indicative of the amount of wear required upon the primary cutter 204 before the backup cutters 206 , 208 come into progressive engagement taking on a substantial amount of work load when cutting the material of a formation.
- the inline cutter set 200 may be utilized with other embodiments of the invention.
- the inline cutter set 200 may include a third backup cutter or a plurality of backup cutters in subsequent trailing rows of the cutter set. While the faces 205 , 207 , 209 include their respective exposures, the faces of the inline cutter set 200 may be configured to comprise the same exposure (or underexposures) or a combination of exposures for the cutters 204 , 206 , 208 . Optionally, while the backup cutter 206 , 208 are radially aligned with respect to the rotational path of the primary cutter 204 , either, of which may be radially offset to a greater or lesser radial extent from the other cutters.
- FIG. 4A shows a top view representation of a somewhat staggered cutter set 220 .
- FIG. 4A is a linear representation of a rotational or helical path 222 in which cutters 214 may be oriented upon a rotary drag bit.
- the staggered cutter set 220 includes a primary cutter 224 , a first backup cutter 226 and a second backup cutter 228 , each cutter radially staggered or offset from the other cutters 214 in a given rotational path.
- the first backup cutter 226 and second backup cutter 228 are smaller cutter sizes from the primary cutter 224 .
- the backup cutters 226 , 228 have different, overlapping rotational paths, both of which the primarily within the rotation path 222 of the primary cutter 224 .
- the larger primary cutter 224 and the smaller backup cutters 226 , 228 provide increased durability and provide longer life to a rotary drag bit.
- the backup cutters 226 , 228 each provide backup support for the primary cutter 224 should it fail or be subject to unexpectedly high dysfunction energy.
- the backup cutters 226 and 228 each provide redundant backup support for the primary cutter 224 as it wears. In this regard backup cutters 226 , 228 are a backup cutter set.
- FIG. 4B shows a face view representation of the staggered cutter set 220 .
- the staggered cutter set 220 is shown having a fully exposed cutter face 225 for the primary cutter 224 and partially exposed cutter faces 227 , 229 for the backup cutters 226 , 228 , respectively, relative to reference line 223 .
- the backup cutters 226 , 228 are also underexposed with respect to the primary cutter 224 .
- the reference line 223 is also indicative of the amount of wear required upon the primary cutter 224 before the backup cutters 226 , 228 begin to substantially share work load from the primary cutter 224 when cutting the material of a formation.
- staggered cutter set 220 provides two sharper cutters 226 , 228 staggered about the radial path of the primary cutter 224 for more aggressive cutting than if the cutters were inline.
- the staggered cutter set 220 may be utilized with any embodiment of the invention. Further, the staggered cutter set 220 may include a third backup cutter or a plurality of backup cutters in subsequent trailing rows of the cutter set. While the faces 225 , 227 , 229 include their respective exposures, the faces of the staggered cutter set 220 may be configured to comprise the same exposure (or underexposures) or a combination of exposures as shown in FIG. 4B for the cutter 224 , 226 , 228 .
- a cutter set may include a plurality of cutters 214 having at least one cutter radially staggered or offset from the other cutters 214 and at least one cutter rotationally inline with a preceding cutter.
- FIG. 5 shows a frontal view of a rotary drag bit 210 in accordance with a second embodiment of the invention.
- the rotary drag bit 210 comprises six blades 231 , 231 ′, 232 , 232 ′, 233 , 233 ′, each having a primary or first cutter row 241 and a second cutter row 251 extending from the center line C/L of the bit 210 .
- the cutter rows 241 , 251 include cutters 214 coupled to cutter pockets 216 of the blades 231 , 231 ′, 232 , 232 ′, 233 , 233 ′.
- each blade 231 , 231 ′, 232 , 232 ′, 233 , 233 ′ may have more or fewer cutter rows 241 , 251 than the two that are illustrated. Also, each of the cutter rows 241 , 251 may have fewer or greater numbers of cutters 214 than illustrated on each of the blades 231 , 231 ′, 232 , 232 ′, 233 , 233 ′.
- blades 231 , 232 , 233 are primary blades and blades 231 ′, 232 ′, 233 ′ are secondary blades.
- the secondary blades 231 ′, 232 ′, 233 ′ provide support for adding additional cutters 214 , particularly, in the nose region 262 (see FIG. 6 ) where the work requirement or potential for impact damage may be greater upon the cutters 214 .
- the cutters 214 of the second cutter rows 251 provide backup support for the respective cutters 214 of the first cutter rows 241 , respectively, should the cutters 214 become damaged or worn.
- each of the cutters 214 of the second cutter rows 251 may be oriented inline, offset, underexposed, or staggered, or a combination thereof, for example, without limitation, relative to each of their respective cutters 214 of the first cutter row 241 .
- a cutter 214 of a second cutter row 251 may assist and support a cutter 214 of the first cutter row 241 by removing material from the formation should the cutter 214 of the first cutter row 214 fail.
- the second cutter rows 251 include cutters 214 that are inline, offset, staggered, and/or underexposed on each of the blades 231 , 231 ′, 232 , 232 ′, 233 , 233 ′. Discussion of the second cutter rows 251 of the blades 231 , 231 ′, 232 , 232 ′, 233 , 233 ′ will now be taken in turn.
- FIG. 6 shows a cutter and blade profile 230 for the embodiment of the drag bit 210 depicted in FIG. 5 .
- the drag bit 210 has a cutter density of 51 cutters and a profile as represented by cutter and blade profile 230 .
- the cutters 214 are numbered 1 through 51 .
- the cutters 1 - 51 while they may include aspects of other embodiments of the invention, should not be confused with the numbered cutters of the other embodiments of the invention.
- Specific cutter profiles for each of the blades 231 , 231 ′, 232 , 232 ′, 233 , 233 ′ are shown in FIGS. 7 through 12 , respectively.
- the blade 231 carries a second cutter row 251 and a first cutter row 241 .
- the first cutter row 241 includes primary cutters 17 and 29 .
- the second cutter row 251 includes backup cutters 18 and 30 .
- Cutter 18 is staggered relative to and rotationally trails primary cutter 17
- cutter 30 is staggered relative to and rotationally trails primary cutter 29 .
- the cutters 17 and 18 form a staggered cutter set 280 .
- the cutters 29 and 30 also form a staggered cutter set 281 .
- Staggered cutters 18 and 30 form a staggered cutter row 291 . While the staggered cutters 18 , 30 have multi-exposure or offset underexposures relative to their respective primary cutters 17 , 29 , they may have the same or uniform underexposure compared to primary cutters 17 and 29 , respectively.
- FIG. 8 shows blade 231 ′, which carries a second cutter row 251 and a first cutter row 241 .
- the first cutter row 241 includes primary cutters 15 and 27 .
- the second cutter row 241 includes backup cutters 16 and 28 .
- Cutter 16 is staggered relative to and rotationally trails primary cutter 15
- cutter 28 is staggered relative to and rotationally trails primary cutter 27 .
- the cutters 15 and 16 form a staggered cutter set 281 .
- the cutters 27 and 28 also form a staggered cutter set 281 .
- Staggered cutters 16 and 28 form a staggered cutter row 292 . While the staggered cutters 16 , 28 have multi-exposure or offset underexposures relative to their respective primary cutters 15 , 27 , they may have the same or uniform underexposure compared to primary cutters 15 and 27 , respectively.
- FIG. 9 shows blade 232 , which carries a second cutter row 251 and a first cutter row 241 .
- the first cutter row 241 includes primary cutters 13 , 25 and 37 .
- the second cutter row 241 includes backup cutters 14 , 26 and 38 .
- Cutter 14 is staggered relative to and rotationally trails primary cutter 13
- cutter 38 is staggered relative to and rotationally trails primary cutter 37
- cutter 26 is inline relative to and rotationally trails primary cutter 25 .
- the cutters 13 and 14 , and 37 and 38 form two staggered cutter sets 283 , 284 , respectively.
- the cutters 25 and 27 form an inline cutter set 270 .
- inline cutter 26 and the staggered cutters 14 , 38 have multi-exposure or offset underexposures relative to their respective primary cutters 13 , 25 , and 37 , they may have the same or uniform underexposure compared to primary cutters 13 , 25 , and 37 , respectively.
- FIG. 10 shows blade 232 ′ having a second cutter row 251 comprising staggered cutters 12 , 36 and an inline cutter 24 forming a staggered cutter row 294 .
- a second cutter row 251 of blade 233 shown in FIG. 11 comprises staggered cutters 9 , 34 and an inline cutter 22 forming a staggered cutter row 295 .
- a second cutter row 251 of blade 233 ′ as shown in FIG. 12 comprises staggered cutters 20 , 32 forming a staggered cutter row 296 .
- staggered cutters and in-line cutters are arranged in the rows 251 of blades 231 , 231 ′, 232 , 232 ′, 233 , 233 ′ of the drag bit 210 as illustrated in FIGS. 7-12 , it is contemplated that one or more staggered cutters may be provided with or without the inline cutters illustrated in second cutter rows 251 of the blades 231 , 231 ′, 232 , 232 ′, 233 , 233 ′.
- a plurality of staggered cutters may have uniform underexposure or may be uniformly staggered with respect to their respective primary cutters.
- the staggered cutters may have substantially the same underexposure or amount of offset, i.e., staggering, with respect to their corresponding primary cutters as each of the underexposure and staggering of the other staggered cutters.
- one or more staggered cutter rows may be provided beyond the second cutter row 251 illustrated, the one or more staggered cutter rows may include cutters staggered non-uniformly distributed and having different underexposures with respect to other staggered cutters within the same cutter row.
- the second cutter row 251 may include cutters 214 having underexposures distributed non-linearly within a staggered cutter row, the cutters 214 being distributed with respect to the staggered cutter row extending radially outward from the centerline C/L of the drag bit 210 .
- FIG. 13 shows a frontal view of another embodiment of a rotary drag bit 310 .
- the rotary drag bit 310 comprises three primary blades 331 , 332 , 333 each comprising a primary or first cutter row 341 , 342 , 343 , a backup or second cutter row 344 , 345 , 346 , and an additional backup or third cutter row 347 , 348 , 349 , respectively, extending radially outward from the center line C/L of the bit 310 .
- one or more additional backup cutter rows may be provided upon at least one of the blades 331 , 332 , 333 beyond the first cutter rows 341 , 342 , 343 and the second cutter rows 344 , 345 , 346 illustrated.
- Each cutter row 341 , 342 , 343 , 344 , 345 , 346 , 347 , 348 , 349 includes a plurality of cutters 314 ; each cutter 314 coupled to a cutter pocket 316 of the blades 331 , 332 , 333 .
- the cutters 314 in cutter rows 341 , 342 , 343 are fully exposed cutters as shown in FIG. 14 , which provides a cutter and blade profile 330 for bit 310 .
- the drag bit 310 has a cutter density of 54 cutters and a profile as represented by cutter and blade profile 330 .
- the cutters 314 are numbered 1 through 54 . While the cutters 1 - 54 may incorporate aspects of other embodiments of the invention, they are not to be confused with the numbered cutters of the other embodiments of the invention.
- the cutters 314 in cutter rows 344 , 345 , 346 are underexposed by twenty-five thousandths (0.025) of an inch (0.635 millimeters) relative to the cutters in their rotationally leading cutter rows 341 , 342 , 343 .
- the cutters 314 in cutter rows 347 , 348 , 349 are underexposed by fifty thousandths (0.050) of an inch (1.27 millimeters) relative to the cutters in their rotationally leading cutter rows 341 , 342 , 343 .
- the cutter rows 341 , 344 , 347 form a cutter group 351 for the blade 331 .
- cutters of cutter rows 344 , 347 are underexposed by twenty-five thousandths (0.025) of an inch (0.635 millimeters) and fifty thousandths (0.050) of an inch (1.27 millimeters), respectively, with respect to the cutters of cutter row 341 , it is contemplated that each cutter row may be underexposed by a lesser, equal or greater extent than presented.
- Cutter rows 342 , 345 , 348 form a cutter group 352 for the blade 332
- the cutter rows 343 , 346 , 349 form a multi-layer cutter group 353 for the blade 333 .
- each of the multi-layer cutter groups 351 , 352 , 353 include cutter rows having cutters with the same underexposure relative to cutters of the leading row of each group, it is contemplated that they may include cutter rows with cutters having a greater or lesser extent of underexposure relative to cutters of their corresponding leading row.
- the first cutter row 341 of the cutter group 351 includes cutters 1 , 4 , 7 , 14 , 23 , 32 , 41 , 48 having a cutter diameter of 5 ⁇ 8 inch (about 16 millimeters) and includes cutter 54 having a cutter diameter of 1 ⁇ 2 inch (about 13 millimeters).
- the cutters 314 of the first cutter row 341 exhibit cutters sized larger than the cutters 314 of the second cutter row 344 and the third cutter row 347 .
- the second cutter row 344 of the cutter group 351 includes cutters 8 , 15 , 24 , 33 , 42 , 51 having a cutter diameter of 1 ⁇ 2 inch (about 13 millimeters).
- the third cutter row 347 of the cutter group 351 includes cutters 13 , 22 , 31 , 40 having a cutter diameter of 1 ⁇ 2 inch (about 13 millimeters).
- the cutter group 351 provides enhanced durability and life to the drag bit 310 by providing improved contact engagement with a formation over the life of the cutters 314 .
- the cutter group 351 has improved performance when cutting a formation by providing the smaller cutters 314 in the second and third cutter rows 344 , 345 which improve the performance of the larger cutters 314 of the first cutter row 341 .
- the smaller cutters 13 , 15 rotationally follow the larger cutter 14 in a rotational path providing less interference or resistance upon the formation while removing material than would be conventionally obtained with a single secondary row of cutters having the same cutter size with a primary row of cutters.
- the cutters 314 have 1 ⁇ 2 inch (about 13 millimeters) and 5 ⁇ 8 inch (about 16 millimeters) cutter diameters, the cutters 314 may have any larger or smaller cutter diameter than illustrated.
- the cutters 314 are inclined, i.e., have a backrake angle, at 15 degrees backset from the normal direction with respect to the rotational path each cutter travels in the drag bit 310 as would be understood by a person having ordinary skill in the art. It is anticipated that each of the cutters 314 may have more or less aggressive backrake angles for particular applications different from the 15 degree backrake angle illustrated.
- the cutter group 351 of blade 331 includes two inline cutter sets 370 , 372 and four staggered cutter sets 380 , 382 , 384 , 386 .
- the inline cutter sets 370 , 372 comprising cutters 7 , 8 and cutters 48 , 51 , respectively, provide backup support and extend the life of the primary cutters 7 and 48 .
- the staggered cutter sets 380 , 382 , 384 , 386 improve the ability to remove formation material while providing backup support for their respective primary cutters of those sets and extend the life the drag bit 310 .
- the cutter group 352 of blade 332 comprises three inline cutter sets 371 , 373 , 374 and three staggered cutter sets 381 , 383 , 385 as shown in FIG. 16 .
- the cutter group 353 of blade 333 comprises two inline cutter sets 375 , 376 and four staggered cutter sets 387 , 388 , 389 , 390 .
- a drag bit may include one or more cutter groups to improve the life and performance of the bit.
- a multi-layer cutter group may be included on one or more blades of a bit body, and further include one or more multi-exposure cutter rows, one or more staggered cutter sets, or one or more inline cutter sets, in any combination without limitation.
- a multi-layer cutter group may include cutter sets or cutter rows having different cutter sizes in order to improve, by reducing, the resistance experienced by a drag bit when a backup cutter follows a primary cutter.
- a smaller backup cutter is better suited for following a primary cutter that is larger in diameter in order to provide a smooth concentric motion as a drag bit rotates.
- each backup cutter by decreasing the diameter size of each backup cutter from a 5 ⁇ 8 inch (about 16 millimeters) cutter diameter of the primary cutter to 1 ⁇ 2 inch (about 13 millimeters), 11 millimeters, or 3 ⁇ 8 inch (about 9 millimeters), for example, without limitation, there is less interfering contact with the formation while removing material in a rotational path created by primary cutters.
- a cutter of a backup cutter row may have a backrake angle that is more or less aggressive than a backrake angle of a cutter on a primary cutter row.
- a less aggressive backrake angle is utilized; while giving up cutter performance, the less aggressive backrake angle made the primary cutter more durable and less likely to chip when subjected to dysfunctional energy or string bounce.
- a more aggressive backrake angle may be utilized on the backup cutters, the primary cutters or on both.
- the combined primary and backup cutters provide improved durability allowing the backrake angle to be aggressively selected in order to improve the overall performance of the cutters with less wear or chip potential caused by vibrational effects when drilling.
- a cutter of a backup cutter row may have a chamfer that is more or less aggressive than a chamfer of a cutter on a primary cutter row.
- a longer chamfer was utilized, particularly when a more aggressive backrake angle was used on a primary cutter. While giving up cutter performance, the longer chamfer made the primary cutter more durable and less likely to fracture when subjected to dysfunctional energy while cutting.
- a more aggressive, i.e., shorter, chamfer may be utilized on the backup cutters, the primary cutters or on both in order to increase the cutting rate of the bit.
- the combined cutters provide improved durability allowing the chamfer lengths to be more or less aggressive in order to improve the overall performance of the cutters with less fracture potential also caused by vibrational effects when drilling.
- a drag bit may include a backup cutter coupled to a cutter pocket of a blade, the cutter having a siderake angle with respect to the rotational path of the cutter.
- FIG. 18 shows a top view representation of a drag bit having an inline cutter set 300 with two sideraked cutters 302 , 303 .
- FIG. 18 is a linear representation of a rotational or helical path 301 in which the inline cutter set 300 may be oriented upon a rotary drag bit.
- the inline cutter set 300 includes a primary cutter 304 and two sideraked cutters 302 , 303 .
- the sideraked cutter 303 rotationally follows and is smaller than the primary cutter 304 , and is oriented at a siderake angle 305 .
- the sideraked cutter 302 is also oriented at a siderake angle in the opposite direction from the siderake angle 305 , as illustrated. While two sideraked cutters 302 , 303 are provided in the inline cutter set 300 , it is contemplated that one or more additional sideraked cutters (i.e., the two illustrated) may be provided. While wear flats 306 , 307 may develop upon the primary cutter 304 as it wears, by orienting the sideraked cutters 302 , 303 , at sideraked angles, the sideraked cutters 302 , 303 may maintain sharper edges 308 , 309 improving the ROP of the bit.
- the sharper edges 308 , 309 of the sideraked cutters 302 and 303 may increase the stress that the cutters 302 , 303 are able to apply upon the formation in order to fracture and remove material therefrom.
- the cutter set 300 is shown here having zero backrake angle or “rake,” it is contemplated that the cutters 302 , 303 , 304 may also be oriented at backrake angles as would be understood by a person having ordinary skill in the art.
- the sideraked cutter 303 is included with an inline cutter set 300 , it is also contemplated that the sideraked cutter may be utilized in a backup cutter set, a backup cutter set, a cutter row, a staggered cutter row, and a staggered cutter set, for example, without limitation.
- a cutting structure may be coupled to a blade of a drag bit, providing a larger diameter primary cutter placed at a front of the blade followed by one or more rows of smaller diameter cutters either in substantially the same helical path or some other variation of cutter rotational tracking.
- the smaller diameter cutters, which rotationally follow the primary cutter may be underexposed to different levels related to depth-of-cut or wear characteristics of the primary cutter so that the smaller cutters may engage the material of the formation at a specific depth of cut or after some worn state is achieved on the primary cutter.
- Depth of cut control features as described in U.S. Pat. No. 7,096,978 entitled “Drill bits with reduced exposure of cutters,” the disclosure of which is incorporated herein by this reference, may be utilized in embodiments of the invention.
- FIGS. 19 , 20 and 21 the performance of several drag bits 404 , 405 , 406 according to different embodiments of the invention are compared to the performance of conventional drag bits 407 , 408 , 409 , 410 .
- the FIGS. 19 , 20 and 21 each show the accumulated cutter wear flat area over the life of the drag bits 404 , 405 , 406 , 407 , 408 , 409 , 410 , as predicted by using software modeling.
- the drag bits 404 , 405 , 406 utilizing embodiments of the invention have improved wear flat versus ROP characteristics that extends the life of the cutting elements or cutters for faster rates of penetration while accumulating less wear upon the primary cutters as compared to the conventional drag bits 407 , 408 , 409 , 410 in order to improve overall drilling performance. Improved drilling performance may be qualified to mean drilling further faster without giving up durability of a drag bit.
- FIGS. 19 , 20 and 21 the results, as portrayed, are identified by reference to the numeral given to each of the drag bits 404 , 405 , 406 , 407 , 408 , 409 , 410 .
- the drag bit 404 comprises three blades and three rows of cutters on each blade.
- the first row of cutters is a primary row of cutters rotationally followed by two staggered cutter rows, in which the cutters of the first staggered cutter row are underexposed by twenty-five thousandths (0.025) of an inch (0.635 millimeters) and the cutters of the second staggered cutter row are underexposed by fifty thousandths (0.050) of an inch (about 1.27 millimeters).
- the drag bit 405 comprises three blades and three rows of cutters on each blade.
- the first row of cutters is a primary row of cutters rotationally followed by two inline cutter rows, in which the cutters of the first inline cutter row are underexposed by fifty thousandths (0.050) of an inch (1.27 millimeters) and the cutters of the second inline cutter row are underexposed by fifty thousandths (0.050) of an inch (1.27 millimeters).
- the drag bit 406 comprises three blades and three rows of cutters on each blade.
- the first row of cutters is a primary row of cutters rotationally followed by two inline cutter rows, in which the cutters of the first inline cutter row are underexposed by twenty-five thousandths (0.025) of an inch (0.635 millimeters) and the cutters of the second inline cutter row are underexposed by twenty-five thousandths (0.025) of an inch (0.635 millimeters).
- Conventional drag bit 407 comprises six blades and a single row of primary cutters on each of the blades.
- Conventional drag bit 408 comprises four blades with a primary row of cutters and a backup row of cutters on each of the blades.
- Conventional drag bit 409 comprises five blades and a single row of primary cutters on each of the blades.
- Conventional drag bit 410 comprises three blades with a primary row of cutters and a backup row of cutters on each of the blades.
- FIG. 19 is a graph 400 of cumulative diamond wearflat area during simulated drilling conditions for seven different drag bits 404 , 405 , 406 , 407 , 408 , 409 , 410 .
- the graph 400 of FIG. 19 includes a vertical axis indicating total diamond wearflat area of all the cutting elements in square inches (by 645.16 in square millimeters), and a horizontal axis indicating distance drilled in feet (by 0.3048 in meters).
- FIG. 19 shows the differences in the amount of wearflat area and the wearflat rate over the life of the bit are influenced by the layout and orientation of the cutters upon the drag bits 404 , 405 , 406 , 407 , 408 , 409 , 410 .
- the wearflat rate i.e., slope of the curves
- the drag bits 404 , 405 , 406 incorporating teachings of the present invention and conventional drag bit 410 maintained a lower wear rate.
- the wearflat rate for drag bits 407 , 409 begins to decrease as the wearflat area approaches the usable end for effective drilling, i.e., beyond 1200 feet (366 meters) as illustrated, the rate of penetration undesirably decreases at a significant rate over the remaining bit life.
- the wearflat rate begins to increase at a greater rate for the drag bits 404 , 405 , 406 , 408 , 410 having at least one backup cutter row.
- the wearflat rate of the drag bit 405 with multiple backup rows of cutters begins to increase over the wearflat rate of the drag bit 410 having only one row of backup cutters, indicating that the bit 410 is nearing its usable life and its rate of penetration is significantly decreasing as is shown in FIG. 20 .
- FIG. 20 is a graph 401 of drilling penetration rate of the simulated drilling conditions of FIG. 19 .
- the graph 401 of FIG. 20 includes a vertical axis indicating penetration rate (or ROP) in feet per hour (by 0.3048 in meters per hour), and a horizontal axis indicating wearflat area in square inches (by 645.16 in square millimeters).
- the drag bits 404 , 405 , 406 incorporating teachings of the present invention, and conventional drag bit 408 , each having backup cutters, experience improved ROP at wearflat area greater than 0.7 square inches (452 square millimeters).
- Conventional drag bits 407 , 409 , 410 experience an accelerated decrease in ROP as the wearflat area increases beyond about 0.7 square inches (452 square millimeters).
- FIG. 19 shows that drag bit 408 cannot bore as deeply into a formation as any of drag bits 404 , 405 , 406 incorporating teachings of the present invention.
- FIG. 21 is a graph 402 of wearflat area for each cutter as a function of cutter radial position for the simulated drilling conditions of FIG. 19 at the end of the simulation, i.e., when the penetration rate fell below 10 feet (3.04 meters) per hour, as shown in FIG. 20 .
- the graph 402 of FIG. 21 includes a vertical axis indicating diamond wearflat area of each cutting elements in square inches (by 645.16 in square millimeters), and a horizontal axis indicating the radial position of cutting element from the center of the drag bit in inches (by 25.4 in millimeters).
- the graph 402 indicates the worn state of each cutting element or cutter for each of the drag bits 404 , 405 , 406 , 407 , 408 , 409 , 410 at the end of the simulation.
- the primary row of cutters for the inventive drag bits 404 , 405 , 406 experienced less cutter wear when compared with the conventional drag bits 407 , 408 , 409 , 410 .
- the wear of the cutters provides an indication of the work load carried by each cutter and ultimately an indication of the ROP for a particular drag bit as its cutters wear.
- FIG. 22 shows a frontal view of a rotary drag bit 510 in accordance with another embodiment of the invention.
- the rotary drag bit 510 comprises three blades 531 , 532 , 533 , each comprising a front or first cutter row 541 , 542 , 543 , and a surface or second cutter row 544 , 545 , 546 , respectively, extending radially outward from the center line C/L of the bit 510 .
- the cutter rows 541 , 542 , 543 , 544 , 545 , 546 include a plurality of primary cutters 514 coupled to the drag bit 310 in cutter pockets 516 of the blades 531 , 532 , 533 .
- the cutter rows 541 , 542 , 543 , 544 , 545 , 546 allow primary cutters 514 to be selectively positioned on fewer blades than conventionally required to achieve a desired cutter profile.
- the second cutter rows 544 , 545 , 546 provide primary cutters 514 in at least two distinct cutter rows upon a single blade, which allows for a reduction in the number of blades otherwise required on a conventional drag bit, providing improved durability of a higher bladed drag bit while achieving faster ROP of a lower bladed drag bit.
- each of the three blades 531 , 532 , 533 may have fewer or more primary cutter rows beyond the second cutter rows 544 , 545 , 546 , respectively, as illustrated.
- the drag bit 510 may include one or more primary blades.
- one or more additional or backup cutter rows may be provided that include secondary, backup or multiple backup cutters upon at least one of the blades 531 , 532 , 533 beyond the first cutter rows 541 , 542 , 543 and the second cutter rows 544 , 545 , 546 , respectively, as illustrated.
- the drag bit 510 may incorporate aspects of other embodiments of the invention.
- the cutters 514 in cutter rows 541 , 542 , 543 , 544 , 545 , 546 are fully exposed primary cutters as shown in FIG. 23 , which shows a cutter and blade profile 530 for the fourth embodiment of the invention.
- the drag bit 510 has a cutter density of 51 cutters and a profile as represented by cutter and blade profile 530 .
- the cutters 514 are numbered 1 through 51 .
- the cutters 1 - 51 while they may include aspects of other embodiments of the invention, are not to be confused with the numbered cutters of the other embodiments of the invention.
- cutters 514 in cutter rows 544 , 545 , 546 are positioned in adjacent rotary paths and fully exposed with respect to the cutters 514 in cutter rows 541 , 542 , 543 allowing the cutters 514 to provide the diamond volume in certain radial locations on the drag bit in order to optimize formation material removal while controlling cutter wear.
- cutters 1 - 51 provide the cutter profile conventionally encountered on a 6 bladed drag bit, however the cutters 1 - 51 are able to remove more material from the formation at a faster rate because of their placement upon a drag bit with a lesser number of blades.
- Each of cutters 514 is inclined, i.e., has a back rake angle ranging between about 15 and about 30 degrees backward rotation from the normal direction orientation of the surface of the cutting table of each cutter relative to a tangent where an edge of the table contacts the borehole surface with respect to the rotational path each cutter travels as would be understood by a person having ordinary skill in the art. It is contemplated that each of the cutters 514 may have more or less aggressive backrake angles for particular applications different from the backrake angle illustrated.
- the backrake angle for the cutters 514 coupled substantially on each blade surface 535 in the second cutter rows 544 , 545 , 546 may have more or less aggressive backrake angles relative to the cutters 514 of the first cutter rows 541 , 542 , 543 which are coupled substantially toward a leading face 534 and subjected to more dysfunctional energy during formation drilling.
- a chamfer 515 is included on a cutting edge 513 of each of the cutters 514 .
- the chamfer 515 for each cutter 514 may vary between a very shallow, almost imperceptible surface for a more aggressive cutting structure up to a depth of ten thousandths (0.010) of an inch (0.254 millimeters) or sixteen thousandths (0.016) of an inch (0.406 millimeters), or even deeper for a less aggressive cutting structure, as would be understood by a person having ordinary skill in the art.
- each chamfer 515 may have more or less aggressive width for particular radial placement of each cutter 514 , i.e., cutter placement in a cone region 560 a nose region 562 , a flank region 563 , a shoulder region 564 or a gage region 565 of the drag bit 510 .
- the chamfer 515 of each cutter 514 coupled substantially on each blade surface 535 in the second cutter rows 544 , 545 , 546 may have more or less aggressive chamfer widths relative to each cutter 514 of the first cutter rows 541 , 542 , 543 which are coupled substantially toward a leading face 534 and subjected to more dysfunctional energy during formation drilling.
- ROP Faster penetration rate
- Conventional drag bits experience more wear upon cutters as the blade count decreases and the ROP increases.
- the lower blade count allows the blade surface 535 of each blade 531 , 532 , 533 to be widened, which provides space for increasing the cutter density or volume upon each blade, i.e., achieving an equivalent cutter density of a six bladed drag bit upon a three bladed bit.
- the cutters 514 wear at a slower rate for a faster ROP.
- more nozzles may be provided for each blade in order to provide increased fluid flow and to handle more cuttings created from the material of the formation being drilled.
- the ROP is further increased.
- the hydraulic cleaning of the drag bit 510 is enhanced to provide increased ROP while obtaining the durability of the conventional heavier bladed drag bit without the resultant lower ROP.
- a cutting structure of an X bladed drag bit is placed upon a Y Waded drag bit, where Y is less than X and the cutters 514 of the cutting structure are each coupled to the Y bladed drag bit on adjacent or partially overlapping rotational or helical paths.
- FIG. 24 shows a frontal view of a rotary drag bit 610 in accordance with another embodiment of the invention.
- the rotary drag bit 610 comprises six blades 631 , 631 ′, 632 , 632 ′, 633 , 633 ′ each comprising a primary or first cutter row 641 and a backup or second cutter row 651 extending from the center line C/L of the bit 610 .
- the cutter rows 641 , 651 include cutters 614 coupled to cutter pockets 616 of the blades 631 , 631 ′, 632 , 632 ′, 633 , 633 ′.
- each blade 631 , 631 ′, 632 , 632 ′, 633 , 633 ′ may have more or fewer cutter rows 641 , 651 than the two illustrated. Also, each of the cutter rows 641 , 651 may have fewer or greater numbers of cutters 614 than illustrated on each of the blades 631 , 631 ′, 632 , 632 ′, 633 , 633 ′.
- blades 631 , 632 , 633 are primary blades and blades 631 ′, 632 ′, 633 ′ are secondary blades.
- the secondary blades 631 ′, 632 ′, 633 ′ provide support for adding additional cutters 614 , particularly, in the nose or shoulder regions 662 (see FIG. 25 ) where the work requirement or potential for impact damage may be greater upon the cutters 614 .
- the cutters 614 of the second cutter rows 651 provide backup support for the respective cutters 614 of the first cutter rows 641 , respectively, should the cutters 614 become damaged or worn, and may also be selectively placed to share the work at different wear states of the cutters 614 of the first cutter rows 641 .
- each of the cutters 614 of the second cutter rows 651 may be oriented inline, offset, underexposed, or staggered, or a combination thereof, for example, without limitation, relative to each of their respective cutters 614 of the first cutter row 641 .
- a cutter 614 of a second cutter row 651 may assist and support a cutter 614 of the first cutter row 641 by removing material from the formation and still provide backup support should the primary cutter 614 of the first cutter row 641 fail.
- the second cutter rows 651 include cutters 614 of different underexposures on each of the blades 631 , 631 ′, 632 , 632 ′, 633 , 633 ′.
- the term “different” as used with the term “underexposed” or the term “underexposure” means that different cutters may have different extents of underexposures relative to anyone of the other cutters on the drag bit 610 , in this respect the cutters are said to be variably underexposed.
- each cutter 614 may engage material of the formation at different wear states of the primary cutters 614 of the first cutter rows 641 while providing backup support therefor. Discussion of the second cutter rows 651 of the blades 631 , 631 ′, 632 , 632 ′, 633 , 633 ′ will now be taken in turn.
- FIG. 25 shows a cutter and blade profile 630 for the second embodiment of the invention.
- the drag bit 610 has a cutter density of 51 cutters and a profile as represented by cutter and blade profile 630 .
- the cutters 614 for purposes of the drag bit 610 are numbered 1 through 51 .
- the cutters 1 - 51 while they may include aspects of other embodiments of the invention, should not be confused with the numerically numbered cutters of the other embodiments of the invention.
- Specific cutter profiles for each of the blades 631 , 631 ′, 632 , 632 ′, 633 , 633 ′ are shown in FIGS. 26 through 31 , respectively.
- the blade 631 illustrated in FIG. 26 includes a second cutter row 651 and a first cutter row 641 having a second cutter 18 underexposed by fifty thousandths (0.050) of an inch (1.27 millimeters) rotationally trailing a fully exposed primary cutter 17 , and a second cutter 30 underexposed by fifteen thousandths (0.015) of an inch (0.381 millimeters) rotationally trailing a fully exposed primary cutter 29 , respectively.
- the second cutters 18 , 30 have different underexposures of fifty thousandths (0.050) of an inch (1.27 millimeters) and fifteen thousandths (0.015) of an inch (0.381 millimeters), respectively, in the second cutter row 631 , they may have the greater or lesser amounts of underexposure, and may also have the same amount of underexposure.
- the cutters 17 and 18 form an underexposed cutter set 680 .
- the cutters 29 and 30 also form an underexposed cutter set 681 .
- the second cutters 18 and 30 form an underexposed cutter row 691 .
- the blade 631 ′ comprising a second cutter row 651 and a first cutter row 641 includes a second cutter 16 underexposed by fifty thousandths (0.050) of an inch (1.27 millimeters) rotationally trailing a fully exposed primary cutter 15 and another second cutter 28 underexposed by fifteen thousandths (0.015) of an inch (0.381 millimeters) rotationally trailing a fully exposed primary cutter 27 , respectively.
- While the second cutters 16 , 28 have underexposures of fifty thousandths (0.050) of an inch (1.27 millimeters) and fifteen thousandths (0.015) of an inch (0.381 millimeters), respectively, in the second cutter row 631 , they may have the greater or lesser amounts of underexposure, and may also have the same amount of underexposure.
- the cutters 15 and 16 form an underexposed cutter set 682 .
- the cutters 27 and 28 also form an underexposed cutter set 683 .
- the second cutters 16 and 28 form an underexposed cutter row 692 .
- the blade 632 as illustrated in FIG. 28 comprises a second cutter row 651 and a first cutter row 641 that include second cutters 14 , 26 , 38 underexposed by fifty thousandths (0.050) of an inch (1.27 millimeters), twenty-five thousandths (0.025) of an inch (0.635 millimeters) and fifteen thousandths (0.015) of an inch (0.381 millimeters) rotationally trailing fully exposed primary cutters 13 , 25 and 37 , respectively.
- While the second cutters 14 , 26 , 38 have underexposures of fifty thousandths (0.050) of an inch (1.27 millimeters), twenty-five thousandths (0.025) of an inch (0.635 millimeters) and fifteen thousandths (0.015) of an inch (0.381 millimeters), respectively, in the second cutter row 631 , they may have the greater or lesser amounts of underexposure, and may also have the same amount of underexposure.
- the cutters 13 and 14 , 25 and 26 , and 37 and 38 respectively form three underexposed cutter sets 684 , 685 , 686 .
- the second cutters 14 , 26 , 38 form an underexposed cutter row 693 .
- a second cutter row 651 of blade 632 ′ as illustrated in FIG. 29 comprises second cutters 12 , 24 , 36 underexposed by fifty thousandths (0.050) of an inch (1.27 millimeters), fifteen thousandths (0.015) of an inch (0.381 millimeters) and twenty-five thousandths (0.025) of an inch (0.635 millimeters) rotationally trailing fully exposed primary cutters 11 , 23 and 35 , respectively, and forming an underexposed cutter row 694 . Also as illustrated in FIG.
- a second cutter row 651 of blade 633 comprises second cutters 10 , 22 , 34 underexposed by fifty thousandths (0.050) of an inch (1.27 millimeters), twenty-five thousandths (0.025) of an inch (0.635 millimeters) and fifty thousandths (0.050) of an inch (1.27 millimeters) rotationally trailing fully exposed primary cutters 9 , 21 and 33 , respectively, and forming an underexposed cutter row 695 .
- second cutters 20 , 32 underexposed by twenty-five thousandths (0.025) of an inch (0.635 millimeters) and fifteen thousandths (0.015) of an inch (0.381 millimeters) rotationally trailing fully exposed primary cutters 19 and 31 , respectively, and forming an underexposed cutter row 696 . While various arrangements of second cutters 614 are arranged in the underexposed cutter rows 691 through 696 of blades 631 , 631 ′, 632 , 632 ′, 633 , 633 ′ of the drag bit 610 , it is contemplated that one or more second cutters may be provided having more or less underexposure for engagement with the material of a formation set for different wear stages of the primary cutters illustrated in rows 641 .
- second cutters 10 , 12 , 14 , 16 , and 18 may engage the material of the formation when substantial wear or damage occurs to their respective primary cutters 614
- second cutters 24 , 28 , 30 and 32 may engage the material of the formation when wear begins to develop on respective primary cutters 614 irrespective of damage thereto.
- a plurality of secondary cutting elements may be differently underexposed in one or more backup cutter rows radially extending outward from the centerline C/L of the drag bit 610 in order to provide a staged engagement of the cutting elements with the material of a formation as a function of the wear of a plurality of primary cutting elements.
- the secondary cutting elements may be differently underexposed in one or more backup cutter rows to provide backup coverage to the primary cutters in the event of primary cutter failure.
- FIG. 32 is a graph 600 of cumulative diamond wearflat area during simulated drilling conditions for a conventional drag bit 608 and a drag bit 610 .
- the conventional drag bit 608 includes six blades having a primary and a backup row of cutters on each of the blades, where the underexposure of the backup row of cutters is constant.
- the drag bit 610 is shown in FIG. 25 and described above.
- FIG. 32 includes a vertical axis indicating total diamond wearflat area of all the cutting elements in square inches (by 645.16 in square millimeters), and a horizontal axis indicating distance drilled in feet (by 0.3048 in meters).
- FIG. 32 shows the differences in the amount of wearflat area and that the wear at rate (slope) over the life of the bit is influenced by the cutting structure layout upon the drag bits 608 , 610 .
- the wearflat rate for both bits 608 , 610 i.e., slopes of the curves, are similar.
- the cutters of the conventional bit 608 wear at an increased rate
- the cutters of the novel bit 610 that incorporate teachings of the present invention wear at a slower rate as the underexposure of the backup cutters begin to engage the material of the formation to help optimize the load and wear upon each of the cutters.
- the variable underexposed backup cutters of the drag bit 610 allow for further drilling distance as compared to a comparable conventional bit 608 .
- the wearflat rate of the cutters may provide for enhanced performance in terms of total wear and depth of drilling.
- FIG. 33 is a graph 601 of work rate of the simulated drilling conditions of FIG. 32 .
- the graph 601 of FIG. 33 includes a vertical axis indicating work load for each cutting element in watts, and a horizontal axis indicating the radial position of cutting element from the center of the drag bit in inches (by 25.4 in millimeters).
- This graph 601 shows the work load on each cutting element at the end of drilling the material of a formation.
- the cutters of the drag bit 610 include differently underexposed second cutters, only specific second cutters engaged the formation as the primary cutter wore or were damaged. Thus, the second cutters of the drag bit 610 were subject to work only when a primary cutter was damaged or when a staged amount of wear developed upon the primary cutter.
- FIG. 34 is a graph 602 of wear rate for each cutter as a function of cutter radial position for the simulated drilling conditions of FIG. 32 .
- the graph 602 of FIG. 34 includes a vertical axis indicating diamond wear rate of each cutting element in square inches per minute (by 25.4 millimeters per minute), and a horizontal axis indicating the radial position of cutting element from the center of the drag bit in inches (by 25.4 in millimeters).
- the graph 602 indicates the wear rate of each cutting element or cutter for each of the drag bits 608 , 610 at the end of the simulation.
- variable underexposed cutters experienced a designed or staged amount of cutter wear, lessening the wear upon the primary cutters while increasing or optimizing the life of the drag bit 610 , and still providing backup cutter protection should a primary cutter fail.
- all of the backup cutters of the conventional bit 608 where unnecessarily exposed to the formation regardless of the wear state of the primary cutters, thereby wearing at an increased rate compared to the cutters of drag bit 610 .
- the wear rate (slope of the curve in FIG. 32 ) of the drag bit 610 increases at a slower rate to extend the life of all the cutters and, thus, achieves grater drilling depth.
- the graph 602 shows that the life of the bit 610 may be extended while providing backup cutters that may engage the material of a formation when a primary cutter fails or when a particular wear state is achieved on select primary cutters 614 .
- FIG. 35 shows a partial top view of a rotary drag bit 710 showing the concept of cutter siderake (siderake), cutter placement (side-side), and cutter size (size). “Siderake” is described above. “Side-side” is the amount of distance between cutters in the same cutter row. “Size” is the cutter size, typically indicated in by the cutters facial length or diameter.
- FIG. 36 shows a partial side view of the rotary drag bit 710 of FIG. 35 showing concepts of backrake, exposure, chamfer and spacing as described herein.
- FIG. 37 shows a frontal view of a rotary drag bit 810 in accordance with another embodiment of the invention, which includes a split cutter set.
- two primary cutters 814 e.g., two non-kerfing primary cutters, a primary cutter and a kerfing cutter, etc.
- blades 831 , 831 ′, 832 , 832 ′, 833 , 833 ′ may be located the same radial distance from a center line C/L of the bit 810 and at substantially the same elevation of the bit 810 and/or may follow substantially the same radial or helical cutting path.
- At least one of the primary cutters 814 of the split cutter set may be rotationally or helically followed by a backup cutter, which follows substantially the same cutting path as its corresponding, leading primary cutter.
- Each backup cutter may be located on the same blade as its corresponding primary and/or kerfing cutter, or a different blade from its corresponding primary and/or kerfing cutter.
- the illustrated embodiment of rotary drag bit 810 includes six blades 831 , 831 ′, 832 , 832 ′, 833 , 833 ′, each of which carries cutters 814 .
- blades 831 , 832 , 833 of the bit 810 are primary blades and blades 831 ′, 832 ′, 833 ′ are secondary blades.
- the secondary blades 831 ′, 832 ′, 833 ′ provide support for additional cutters 814 , particularly, in the nose region of the bit 810 , where the work requirement or potential for impact damage may be greater upon the cutters 814 .
- bit 810 is depicted as including six blades, similar embodiments of drag bits that include fewer than six blades or more than six blades are also contemplated to be within the scope of the present invention.
- each blade 831 , 831 ′, 832 , 832 ′, 833 , 833 ′ of bit 810 carries cutters 814 , which are coupled to cutter pockets 816 of the blades 831 , 831 ′, 832 , 832 ′, 833 , 833 ′.
- the cutters 814 may be arranged in rows on the blades 831 , 831 ′, 832 , 832 ′, 833 , 833 ′.
- each blade 831 , 831 ′, 832 , 832 ′, 833 , 833 ′ of the illustrated bit 810 has a primary or first cutter row 841 and a backup or second cutter row 851 arranged along a path that may extend generally from the center line C/L of the bit 810 toward the gage of the bit 810 . It is contemplated that each blade 831 , 831 ′, 832 , 832 ′, 833 , 833 ′ may have fewer or more cutter rows 841 , 851 than the two that are illustrated.
- each of the cutter rows 841 , 851 may have fewer or greater numbers of cutters 814 than illustrated on each of the blades 831 , 831 ′, 832 , 832 ′, 833 , 833 ′.
- the cutters 814 of the second cutter rows 851 provide backup support for the respective cutters 814 of the first cutter rows 841 , respectively, should the cutters 814 become damaged or worn.
- FIG. 37 illustrates the manner in which some of the cutters 814 of the bit 810 are arranged in split cutter sets 820 .
- the bit 810 may include fewer or more split cutter sets 820 than illustrated.
- each split cutter set 820 includes at least two subsets of two cutters 814 , with one subset including one cutter 814 from each of the first cutter row 841 and the second cutter row 851 of one blade 831 , 831 ′, 832 , 832 ′, 833 , 833 ′ and the other subset including one cutter 814 from each of the first cutter row 841 and the second cutter row 851 of a different blade 831 , 831 ′, 832 , 832 ′, 833 , 833 ′.
- the cutters 814 of the second subset are located on a blade 831 , 831 ′, 832 , 832 ′, 833 , 833 ′ of the drag bit 810 that rotationally follows the blade 831 , 831 ′, 832 , 832 ′, 833 , 833 ′ by which the first subset of cutters 814 are carried.
- a cutter 814 of a second cutter row 851 rotationally follows a corresponding cutter 814 of an adjacent first cutter row 841 .
- This subset 822 of cutters 814 together with another subset 821 of cutters 814 on a different blade 831 , 831 ′, 832 , 832 ′, 833 , 833 ′ but following substantially the same cutting path, forms a split cutter set 820 that improves the rate of formation removal while improving the life of the drag bit 810 by providing cutters 814 configured as backup and primary cutters.
- each of the cutters 814 of each cutter row 841 , 851 may be oriented inline, offset, underexposed, or staggered, or a combination thereof, for example, without limitation, relative to each of their respective cutters 814 of the split cutter set 820 , as described herein with respect to other embodiments of drag bits.
- a cutter 814 of a second cutter row 851 may assist and support a cutter 814 of the first cutter row 841 by removing material from the formation and still provide backup support should the cutter 814 of the first cutter row 814 fail.
- the split cutter set 820 includes a cutter subset 821 rotationally trailing another cutter subset 822 in substantially the cutting path upon rotation of the drag bit 810 .
- the cutter subset 821 includes numbered cutters 25 and 26 of which cutter 26 is located in the second cutter row 851 inline and underexposed with respect to cutter 25 in the first cutter row 841 on the blade 833 ′ and, together, rotationally trails the numbered cutters 23 and 24 of the cutter subset 822 .
- the numbered cutters 23 and 24 having substantially the same configurations as the cutters 25 and 26 of cutter subset 821 .
- Either of the cutter subsets 822 , 821 may have fewer or more cutters 814 performing backup support than the number of numbered cutters 24 and 26 illustrated.
- a split cutter set 820 may include at least two primary cutters 814 , each located on different blades of the bit 810 and configured to substantially follow within the same cutting path upon rotation of the bit 810 about its axis; for example, numbered cutter 23 on blade 833 and numbered cutter 25 on blade 833 ′. Discussion of plural split cutter sets 820 will now be taken with reference to FIG. 38 .
- FIG. 38 shows a cutter and blade profile 830 for bit 810 .
- the bit 810 has a cutter density of fifty-three (53) cutters and a profile as represented by cutter and blade profile 830 .
- the cutters 814 are numbered 1 through 53 , While the cutters 1 - 53 may be oriented in a manner that incorporate aspects of other embodiments of drag bits of the invention, they should not be confused with the numbered cutters of the other embodiments of drag bits of the invention.
- the cutter profile 830 shows that the drag bit 810 is configured with ten split cutter sets 820 .
- one split cutter sets 820 includes primary cutters 235 and 254 and backup cutters 245 and 264 , as mentioned herein above.
- the split cutter set 820 is configured as a trailing split cutter set comprising the backup cutter set 821 , situated upon the blade 833 ′, rotationally trailing the backup cutter set 822 , situated upon the blade 833 .
- other split cutter sets 820 arm also trailing split cutter sets.
- cutters 391 , 401 , 416 , 426 on blades 831 and 831 ′ form a trailing split cutter set.
- the split cutter set 820 as described herein above is considered a trailing kerfing and backup cutter set,” i.e., one primary cutter trailing another primary cutter upon different blades of the drag bit 810 for kerfing action while drilling, where at least one of the primary cutters includes a trailing backup cutter upon its respective blade as herein described above. It is recognized that both of the primary cutters may have one or more backup cutters according to the other embodiments of the invention described above.
- a split cutter set may include cutters 814 configured as an “opposing kerfing and backup cutter set”; a “trailing kerfing and leading backup cutter set”; an “opposing kerfing and leading backup cutter set”; a “trailing kerfing and trailing backup cutter set”; and an “opposing kerfing and trailing backup cutter set,” for example, and without limitation.
- an example of the “opposing kerfing and backup cutter set” includes one primary cutter and another primary cutter upon different, opposing blades of a drag bit, wherein at least one of the primary cutters is rotationally followed by a backup cutter carried by the same blade as its corresponding primary cutter.
- the term “opposing” is generally understood to include a cutter or blade configured so as to rotationally trail or lead by approximately 180 degrees of rotation relative to another cutter or blade. Again, it is recognized that both of the primary cutters may have one or more trailing backup cutters according to the other embodiments of the invention described above.
- an “opposing kerfing and backup cutter set” could representatively include (using a drag bit having six sequentially numbered blades 1 , 2 , 3 , 4 , 5 , and 6 and the numbered cutters of the cutter and blade profile shown in FIG. 38 ) a primary cutter 23 on blade 5 having a backup cutter 24 on blade 5 , and an opposing primary cutter 25 on blade 2 having a backup cutter 26 on blade 2 .
- An example of the “trailing kerfing and leading backup cutter set” includes one primary cutter trailing another primary cutter upon different blades of a drag bit, wherein at least one leading backup cutter travels along substantially the same rotational path as a corresponding primary cutter, and is positioned upon a blade leading the respective blade of the primary cutter.
- both of the primary cutters may have one or more leading backup cutters according to the other embodiments of the invention described above.
- One example of a “trailing kerfing and leading backup cutter set” could representatively include (using a drag bit having six sequentially numbered blades 1 , 2 , 3 , 4 , 5 , and 6 and the numbered cutters of the cutter and blade profile shown in FIG. 38 ) a primary cutter 23 on blade 5 having a backup cutter 24 on blade 1 , and a trailing primary cutter 25 on blade 4 having a backup cutter 26 on blade 6 .
- an example of the opposing kerfing and leading backup cutter set includes one primary cutter opposing another primary cutter upon different blades of a drag bit, wherein at least one of the primary cutters is rotationally or helically followed by a backup cutter upon a blade leading the blade by which the primary cutter is carried.
- each backup cutter may incorporate teachings according to the other embodiments of drag bits described above.
- One example of an “opposing kerfing and leading backup cutter set” could representatively include (using a drag bit having six sequentially numbered blades 1 , 2 , 3 , 4 , 5 , and 6 and the numbered cutters of the cutter and blade profile shown in FIG. 38 ) a primary cutter 23 on blade 5 having a backup cutter 24 on blade 6 , and an opposing primary cutter 25 on blade 2 having a backup cutter 26 on blade 3 .
- An example of the “trailing kerfing and trailing backup cutter set” includes one primary cutter trailing another primary cutter upon different blades of a drag bit, wherein at least one of the primary cutters includes a trailing backup cutter carried by the same blade. Again, it is recognized that both of the primary cutters may have one or more leading or trailing backup cutters according to the other embodiments of the invention described above.
- One example of a “trailing kerfing and trailing backup cutter set” could representatively include (using a drag bit having six sequentially numbered blades 1 , 2 , 3 , 4 , 5 , and 6 and the numbered cutters of the cutter and blade profile shown in FIG. 38 ) a primary cutter 23 on blade 5 having a backup cutter 24 on blade 3 , and a trailing primary cutter 25 on blade 4 having a backup cutter 26 on blade 2 .
- an example of the “opposing kerfing and trailing backup cutter set” includes one primary cutter opposing another primary cutter upon different blades of a drag bit, wherein at least one of the primary cutters includes a trailing backup cutter upon a blade trailing the respective blade of the primary cutter.
- both of the primary cutters may have one or more leading or trailing backup cutters according to the other embodiments of the invention described above.
- One example of an “opposing kerfing”, and trailing backup cutter set” could representatively include (using a drag bit having six sequentially numbered blades 1 , 2 , 3 , 4 , 5 , and 6 and the numbered cutters of the cutter and blade profile shown in FIG. 38 ) a primary cutter 23 on blade 5 having a backup cutter 24 on blade 4 , and an opposing primary cutter 25 on blade 2 having a backup cutter 26 on blade 1 .
- a split cutter set may include cutters uniformly configured with respect to other cutters of the split cutter set.
- the cutter may have the same rake angle, underexposure, and size, for example and without limitation.
- one or more of the cutters of a split cutter set may have non-uniformly configured or oriented cutters.
- the cutters of a split cutter set may include cutters that are inline with each other, staggered relative to one another, and exposed by different amounts, as described in reference to other embodiments of the invention.
- select cutter configurations and cutter orientation for cutters placed upon a rotary drag bit have been explored.
- the select cutter configurations may be optimized to have placement based upon optimizing depth of cut and rock removal strategy.
- Such a strategy would enable design of a cutting structure having the most optimal load sharing and vibration mitigation between select primary and backup cutters.
- backup cutters are placed upon a drag bit at a set distance behind with a uniform underexposure with respect to the primary cutters that they follow.
- rock removal strategy the placement of the primary cutters and secondary cutters may be optimized to effectively balance the load and rock removal of the drag bit for improved performance and life.
- each cutter in cutter rows upon a blade of a drag bit is optimized to provide the optimal siderake, cutter placement, cutter size, backrake, exposure, chamfer or spacing with respect to the other cutters in order to facilitate the optimization of the drag bit for drilling faster further.
- a rotary drag bit includes backup cutter configurations having different backrake angles and siderake angles, as described herein, positioned in select locations on the bit with respect to primary cutters in order to prolong the usable service life of the cutters by limiting vibrational effects and dysfunctional energy during drilling.
- varying backrake and siderake angles of the backup cutters in relationship to the primary cutters or other backup cutters provides for improved balancing of cutter forces and promotes a smoother work rate for the drill bit as describe herein above. Accordingly, by varying backrake and siderake angles of the backup cutters in the profile of the cutting element provides for enhanced vibration mitigation during formation drilling, particularly when dynamic dysfunctions occur, and increased cutting action as the cutting elements wear.
- select backup cutters for placement upon a rotary drag bit have been explored. Particularly, select backup cutters placed upon the same blade of the rotary drag bit as with the primary or secondary cutters to which they are associated. It is recognized that a backup cutter may, optionally, be placed upon a blade different from the blade to which the primary or secondary cutter is associated. In this respect, a primary or a secondary cutter may be placed upon one blade and a backup cutter may be placed upon another blade.
Abstract
A rotary drag bit includes a bit body having a face and an axis, a plurality of blades extending radially and longitudinally outward from the face, and at least one split cutter set. The split cutter set includes a plurality of cutters, where at least two of the cutters are primary and/or kerfing cutters located on different blades of the plurality of blades. The pair of primary and/or kerfing cutters of the split cutter set may be located substantially the same radial distance from a center line, or axis of rotation, of the bit and located at substantially the same longitude, or elevation, on the bit as one another, or follow substantially the same rotational or helical cutting path as each other. In addition, at least one backup cutter may be located substantially the same radial distance from a center line, or axis of rotation, of the bit and located at substantially the same longitude, or elevation, on the bit as one or both primary and/or kerfing cutters, or follow substantially the same rotational or helical path as one or both of the primary and/or kerfing cutters. The cutters of a split cutter set may be configured and oriented to provide improved bit life and reduced stress on the cutters. Other embodiments of rotary drag bits are also provided, including methods therefor.
Description
- This application claims the benefit of U.S. Provisional Patent Application Ser. No. 60/897,457, filed Jan. 25, 2007, for “ROTARY DRAG BIT,” the entire disclosure of which is hereby incorporated herein by this reference.
- The present invention, in several embodiments, relates generally to a rotary drag bit for drilling subterranean formations and, more particularly, to rotary drag bits having select plural kerfing cutter configurations configured to enhance cutter life and performance, including methods therefor.
- Rotary drag bits have been use for subterranean drilling for many decades, and various sizes, shapes and patterns of natural and synthetic diamonds have been used on drag bit crowns as cutting elements. A drag bit can provide an improved rate of penetration (ROP) over a tri-cone bit in many formations.
- Over the past few decades, rotary drag bit performance has been improved with the use of a polycrystalline diamond compact (PDC) cutting element or cutter, comprising a planar diamond cutting element or table formed onto a tungsten carbide substrate under high temperature and high pressure conditions. The PDC cutters are formed into a myriad of shapes, including circular, semicircular or tombstone, which are the most commonly used configurations. Typically, the PDC diamond tables are formed so the edges of the table are coplanar with the supporting tungsten carbide substrate or the table may overhang or be undercut slightly, forming a “lip” at the trailing edge of the table in order to improve the cutting effectiveness and wear life of the cutter as it comes into contact with formations of earth being drilled. Bits carrying PDC cutters, which, for example, may be brazed into pockets in the bit face, pockets in blades extending from the face, or mounted to studs inserted into the bit body, have proven very effective in achieving a ROP in drilling subterranean formations exhibiting low to medium compressive strengths. The PDC cutters have provided drill bit designers with a wide variety of improved cutter deployments and orientations, crown configurations, nozzle placements and other design alternatives previously not possible with the use of small natural diamond or synthetic diamond cutters. While the PDC cutting element improves drill bit efficiency in drilling many subterranean formations, the PDC cutting element is nonetheless prone to wear when exposed to certain drilling conditions, resulting in a shortened life of a rotary drag bit using such cutting elements.
- Thermally stable diamond (TSP) is another type of synthetic diamond, PDC material which can be used as a cutting element or cutter for a rotary drag bit. TSP cutters, which have had catalyst used to promote formation of diamond-to-diamond bonds in the structure removed therefrom, have improved thermal performance over PDC cutters. The high frictional heating associated with hard and abrasive rock drilling applications creates cutting edge temperatures that exceed the thermal stability of PDC, whereas TSP cutters remain stable at higher operating temperatures. This characteristic also enables TSPs to be furnaced into the face of a matrix-type rotary drag bit.
- While the PDC or TSP cutting elements provide better ROP and manifest less wear during drilling as compared to some other cutting element types, it is still desirable to further the life of rotary drag bits and improve cutter life regardless of the cutter type used. Researchers in the industry have long recognized that as the cutting elements wear, i.e., wearflat surfaces develop and are formed on each cutting element coming in contact with the subterranean formation during drilling, the penetration rate (or ROP) decreases. The decrease in the penetration rate is a manifestation that the cutting elements of the rotary drag bit are wearing out, particularly when other drilling parameters remain constant. Various drilling parameters include, without limitation, formation type, weight on bit (WOB), cutter position, cutter rake angle, cutter count, cutter density, drilling temperature and drill string RPM, for example and further include other parameters understood by those of ordinary skill in the subterranean drilling art.
- While researchers continue to develop and seek out improvements for longer lasting cutters or generalized improvements to cutter performance, they fail to accommodate or implement an engineered approach to achieving longer drag bit life by maintaining or increasing ROP by taking advantage of cutting element wear rates. In this regard, while ROP is many times a key attribute in identifying aspects of the drill bit performance, it would be desirable to utilize or take advantage of the nature of cutting element wear in extending or improving the life of the drag bit.
- One approach to enhancing bit life is to use the so-called “backup” cutter to extend the life of a primary cutter of the drag bit particularly when subjected to dysfunctional energy or harder, more abrasive, material in the subterranean formation. Conventionally, the backup cutter is positioned in a second cutter row, rotationally following in the path of a primary cutter, so as to engage the formation should the primary cutter fail or wear beyond an appreciable amount. The use of backup cutters has proven to be a convenient technique for extending the life of a bit, while enhancing stability without the necessity of designing the bit with additional blades to carry more cutters which might decrease ROP or potentially compromise bit hydraulics due to reduced available fluid flow area over the bit face and less-than-optimum fluid flow due to unfavorable placement of nozzles in the bit face. Conventionally, it is understood by a person of skill in the art that a drag bit will experience less wear as the blade count is increased and undesirably will have slower ROP, while a drag bit with a lower blade count, with its faster ROP, is subjected to greater wear. Also, it is believed that conventional backup cutters in combination with their associated primary cutters may undesirably lead to balling of the blade area with formation material. Accordingly, it would be desirable to utilize or take advantage of the use of backup cutters to increase the durability of the drag bit while providing increased ROP and without compromising bit hydraulics and formation cuttings removal. It would also be desirable to provide a drag bit having an improved, less restricted, flow area by further decreasing the number of blades conventionally required in order to achieve a more durable blade. Durability may be quantified in terms of cutter placement, and may further be considered in terms of the ability to maintain the sharpness of each cutter for a longer period of time while drilling. In this sense, “sharpness” of each cutter involves improving wear of the diamond table, including less chipping or damage to the diamond table cause by point loading, dysfunctional energy or drill string bounce.
- Accordingly, there is an ongoing desire to improve or extend rotary drag bit life and performance regardless of the subterranean formation type being drilled. There is a further desire to extend the life of a rotary drag bit by beneficially orienting and positioning cutters upon the bit body.
- Embodiments of a rotary drag bit include a bit body having a face and an axis, a plurality of blades extending longitudinally and radially over the face, and at least one split cutter set. Each cutter of the split cutter set includes a cutting surface protruding at least partially from, or exposed beyond, a surface of a blade of the drag bit. All of the cutters of a split cutter set are located substantially the same radial distance from the central axis of the bit and may be located at substantially the same elevation along the central axis of the bit or at locations that enable them to substantially traverse a common cutting path upon rotation of the bit body about its central axis. A split cutter set includes a first primary cutter on a first blade and a corresponding second primary cutter on a different, second blade. One of the first and second primary cutters may be a so-called “kerfing cutter,” which largely follows the cutting path of the other primary cutter, but removes additional material from the formation into which the drag bit is drilling. A split cutter set also includes at least one backup cutter positioned rotationally or helically behind the first primary cutter or the second primary cutter so as to follow substantially the same cutting path as the primary cutter behind which it is positioned. In some embodiments, one or more backup cutters may be provided for each primary cutter of a split cutter set. Such a split cutter set enables faster drilling while reducing stress upon the cutters. In this respect, the lives of the cutters of the bit are extended and the bit is more durable than comparable conventional drag, bits, extending the life of the rotary drag bit.
- Various embodiments of rotary drag bits are provided that may advantageously include split cutter sets with the following primary cutter configurations: a primary cutter on a first blade and a split cutter on a second, trailing blade, wherein the second, trailing blade may be located adjacent to the first blade, spaced apart from the first blade (at least in the direction of rotation of the drag bit) by another blade, opposite from (i.e., “opposing,” e.g., at about 180°) the first blade; or a split cutter on a first blade and a primary cutter on a second, trailing blade, with the second blade located adjacent to the first blade, spaced apart from the first blade (at least in the direction of rotation of the drag bit) by another blade, or opposite from (i.e., “opposing,” e.g., at about 180°) the first blade; or a pair of primary cutters on different, first and second blades, with the second blade immediately trailing the first blade, trailing an intervening blade the trails the first blade, or positioned opposite from the first blade.
- Also provided are methods of configuring a rotary drag bit and using a rotary drag bit in accordance with embodiments of the invention.
- Other advantages and features of the present invention will become apparent when viewed in light of the detailed description of the various embodiments of the invention when taken in conjunction with the attached drawings and appended claims.
-
FIG. 1 shows a frontal view of a rotary drag bit in accordance with a first embodiment of the invention. -
FIG. 2 shows a cutter and blade profile for the first embodiment of the invention. -
FIG. 3A shows a top view representation of an inline cutter set. -
FIG. 3B shows a face view representation of the inline cutter set. -
FIG. 4A shows a top view representation of a staggered cutter set. -
FIG. 4B shows a face view representation of the staggered cutter set. -
FIG. 5 shows a frontal view of a rotary drag bit in accordance with a second embodiment of the invention. -
FIG. 6 shows a cutter and blade profile for the second embodiment of the invention. -
FIG. 7 shows a cutter profile for a first blade of the bit ofFIG. 5 . -
FIG. 8 shows a cutter profile for a second blade of the bit ofFIG. 5 . -
FIG. 9 shows a cutter profile for a third blade of the bit ofFIG. 5 . -
FIG. 10 shows a cutter profile for a fourth blade of the bit ofFIG. 5 . -
FIG. 11 shows a cutter profile for a fifth blade of the bit ofFIG. 5 . -
FIG. 12 shows a cutter profile for a sixth blade of the bit ofFIG. 5 . -
FIG. 13 a frontal view of a rotary drag bit in accordance with a third embodiment of the invention. -
FIG. 14 shows a cutter and blade profile for the third embodiment of the invention. -
FIG. 15 shows a cutter profile for a first blade of the bit ofFIG. 13 . -
FIG. 16 shows a cutter profile for a second blade of the bit ofFIG. 13 . -
FIG. 17 shows a cutter profile for a third blade of the bit ofFIG. 13 . -
FIG. 18 shows a top view representation of an inline cutter set having two sideraked cutters. -
FIG. 19 is a graph of cumulative diamond wearflat area during simulated drilling conditions for seven different drag bits over distance drilled. -
FIG. 20 is a graph of drilling penetration rate of the simulated drilling conditions ofFIG. 19 . -
FIG. 21 is a graph of wearflat area for each cutter as a function of cutter radial position for the simulated drilling conditions ofFIG. 19 at the end of the simulation. -
FIG. 22 shows a frontal view of a rotary drag bit in accordance with a fourth embodiment of the invention. -
FIG. 23 shows a cutter and blade profile for the fourth embodiment of the invention. -
FIG. 24 shows a frontal view of a rotary drag bit in accordance with a fifth embodiment of the invention. -
FIG. 25 shows a cutter and blade profile for the fifth embodiment of the invention. -
FIG. 26 shows a cutter profile for a first blade of the bit ofFIG. 24 . -
FIG. 27 shows a cutter profile for a second blade of the bit of PIG. 24. -
FIG. 28 shows a cutter profile for a third blade of the bit ofFIG. 24 . -
FIG. 29 shows a cutter profile for a fourth blade of the bit ofFIG. 24 . -
FIG. 30 shows a cutter profile for a fifth blade of the bit ofFIG. 24 . -
FIG. 31 shows a cutter profile for a sixth blade of the bit ofFIG. 24 . -
FIG. 32 is a graph of cumulative diamond wearflat area during simulated drilling conditions for two different drag bits over distance drilled. -
FIG. 33 is a graph of work rate of the simulated drilling conditions ofFIG. 32 . -
FIG. 34 is a graph of wearflat rate for each cutter as a function of cutter radial position for the simulated drilling conditions ofFIG. 32 at the end of the simulation. -
FIG. 35 shows a partial top view of a rotary drag bit. -
FIG. 36 shows a partial side view of the rotary drag bit ofFIG. 35 . -
FIG. 37 shows a frontal view of a rotary drag bit in accordance with a sixth embodiment of the invention. -
FIG. 38 shows a cutter and blade profile for the sixth embodiment of the invention. - In embodiments of the invention to be described below, rotary drag bits are provided that may drill further, may drill faster or may be more durable than rotary drag bits of conventional design. In this respect, each drag bit is believed to offer improved life and greater performance regardless of the subterranean formation material being drilled.
- In
FIG. 1 , therotary drag bit 110 is oriented as if it were viewed from the bottom, or by looking upwardly at its face orleading end 112 with the viewer positioned at the bottom of a bore hole.Bit 110 includes a plurality of cutting elements orcutters 114 bonded, as by brazing, into pockets 116 (as representatively shown) located in theblades face 112 of thedrag bit 110. While thecutters 114 may be bonded to thepockets 116 by brazing, other attachment techniques may be used as are well known to those of ordinary skill in the art.Reference number 114 is generally used to represent each of the cutters. Thecutters 114 coupled to theirrespective pockets 116 upon thedrag bit 110, but specific cutters, including their attributes, will be called out by different reference numerals hereinafter to provide a more detailed presentation of the invention. - The
drag bit 110 in this embodiment is a so-called “matrix” body bit. “Matrix” bits include a mass of metal powder, such as tungsten carbide particles, infiltrated with a molten, subsequently hardenable binder, such as a copper-based alloy. Optionally, the bit may also be a steel or other bit type, such as a sintered metal carbide. Steel bits are generally made from a forging or billet, then machined to a final shape. The invention is not limited by the type of bit body employed for implementation of any embodiment thereof. -
Fluid courses 120 lie betweenblades ports 122 being at the end of passages leading from a plenum extending into abit body 111 from a tubular shank at the upper, or trailing, end of thebit 110. Theports 122 may include nozzles (not shown) secured thereto for enhancing and controlling flow of the drilling fluid.Fluid courses 120 extend to junkslots 126 traversing upwardly along thelongitudinal side 124 ofbit 110 betweenblades outer surfaces 121 extending fromblades ports 122, sweeps formation cuttings away from thecutters 114 and moves generally radially outwardly throughfluid courses 120 and then upwardly throughjunk slots 126 to an annulus between the drill string from which thebit 110 is suspended and supported and the surfaces of the bore hole. Advantageously, the drilling fluid also cools thecutters 114 during drilling while clearing formation cuttings from thebit face 112. - Each of the
cutters 114 in this embodiment is a PDC cutter. However, it is recognized that any other suitable type of cutting element may be utilized with the embodiments of the invention presented. For clarity in the various embodiments of the invention, the cutters are shown as unitary structures in order to better describe and present the invention. However, it is recognized that thecutters 114 may comprise layers of materials. In this regard, thePDC cutters 114 of the current embodiment each comprise a diamond table bonded to a supporting substrate, as previously described. ThePDC cutters 114 remove material from the underlying subterranean formations by a shearing action as thedrag bit 110 is rotated by contacting the formation with cuttingedges 113 of thecutters 114. As the formation is cut and comminuted by thecutters 144, the flow of drilling fluid suspends and carries the formation cuttings away through thejunk slots 126. - The
blades blade 131 132, 133, in general terns of a primary blade, includes abody portion 134 that extends (longitudinally and radially projects) from theface 112 and is part of the bit body 111 (thebit body 111 is also known as the “frame” of the bit 110). Thebody portion 134 may extend to thegage region 165. Thebody portion 134 includes ablade surface 135, a leadingface 136 and a trailingface 137 and may extend radially outward from either acone region 160 or an axial center line C/L (shown by numeral 161) of thebit 110 toward agage region 165.Fluid courses 120 are located between the portions ofadjacent blades face 112 of the bit, and are continuous withjunk slots 126 that are located between the portions ofadjacent blades gage region 165 of thebit 110. As thebody portion 134 of theblades axial center line 161 of thebit 110, theblade surface 135 may radially widen, and the leadingface 136 and the trailingface 137 may both axially protrude a greater distance from theface 112 of thebit body 111. While the illustrated embodiment ofbit 110 includes threeblades fluid courses 120 andjunk slots 126. - As drilling fluid emanates from
ports 122, it is substantially transported by way of thefluid courses 120 to thejunk slots 126 and onto the leadingface 136 of thebody portion 134 of eachblade blade surface 135, including the trailingface 137 of theblade surface 135, to cool and clean thecutters 114. - The
drag bit 110 in this embodiment of the invention includes threeprimary blades bit 10 by receiving additionalprimary cutters 114 thereon. A secondary or a tertiary blade is defined much like a primary blade, but extends radially toward the gage region generally from anose region 162, aflank region 163 or ashoulder region 164 of thebit 110. In this regard, a secondary blade or a tertiary blade is defined between leading and trailingfluid courses 120 in fluid communication with at least one of theports 122. Also, a secondary blade or a tertiary blade, or a combination of secondary and tertiary blades, may be provided between primary blades. However, the presence of secondary or tertiary blades decreases the available volume of the adjacentfluid courses 120, providing less clearing action of the formation cuttings or cleaning of thecutters 114. Optionally, adrag bit 110 in accordance with an embodiment of the invention may include one or more secondary or tertiary blades when needed or desired to implement particular drilling characteristics of the drag bit. - In accordance with the first embodiment of the invention as shown in
FIG. 1 , therotary drag bit 110 comprises threeblades primary cutter rows backup cutter groups backup cutter groups drag bit 110 may include one backup cutter group on one of the blades or a plurality of backup cutter groups on each blade greater or less than that illustrated. Further, it is contemplated that thedrag bit 110 may have more or fewer blades than the three illustrated. Each of thebackup cutter groups backup cutter group 152 includes three backup cutter sets 152′, 152″, 152′″. A detailed description of backup cutter sets 152′, 152″, 152′″ of thebackup cutter group 152 is now provided. - Each
primary cutter row blade primary cutter rows blades backup cutter group drag bit 110 may have a backup cutter group selectively placed behind a primary cutter row on at least one of the blades of thebit body 111. Further, thedrag bit 110 may have a backup cutter group selectively placed on multiple blades of thebit body 111. - Each of the
backup cutter groups backup cutter group 152 includes three multiple backup cutter sets 152′, 152″, 152′″. Whilebackup cutter group 152 that is located on thesame blade 132 and that rotationally trails the cutters ofprimary cutter row 142 includes three backup cutter sets 152′, 152″, 152′″, it is contemplated that thedrag bit 110 may include one backup cutter set or a plurality of backup cutter sets in each backup cutter group greater or less than the three illustrated. The backup cutter sets 152′, 152″, 152′″ ofcutter group 152 ofblade 132 will be discussed in further detail below as they are representative of the other multiple backup cutter sets in theother cutter groups - The
backup cutter group 152, comprising the backup cutter sets 152′, 152″, 152′″, comprises a firsttrailing cutter row 154, a secondtrailing cutter row 155, and a thirdtrailing cutter row 156. Each of therows more cutters 114 positionally coupled to theblades FIG. 1 as indicated by numeral 161) of theface 112 of thedrag bit 110 and may be further defined by having one or more cutting elements or cutters disposed substantially along or proximate to the radial path. - With additional reference to
FIG. 2 , theprimary cutter row 142 ofblade 132 comprisescutters cutters trailing cutter row 154,cutters trailing cutter row 155, andcutters trailing cutter row 156. The firsttrailing cutter row 154 rotationally trails theprimary cutter row 142 and rotationally leads the secondtrailing cutter row 155, which rotationally leads the thirdtrailing cutter row 156. While each backup cutter set 152′, 152″, 152′″ of this embodiment includescutters 114 in trailingcutter rows surface 135 of eachblade cutters cutter rows cutters - The
cutters trailing cutter row 154 rotationally trail thecutters primary cutter row 142, respectively, and are considered to be backup cutters in this embodiment. Backup cutters rotationally follow a primary cutter in substantially the same rotational path, at substantially the same radius from the centerline C/L in order to increase the durability and life of thedrag bit 110 should a primary cutter fail or wear beyond its usefulness. However, thecutters trailing cutter row 154 may be any assortment or combination of primary, secondary and backup cutters. While the present embodiment does not include any secondary cutters, a secondary cutter may rotationally follow primary cutters in adjacent rotational paths, at varying radiuses from the centerline C/L in order to remove larger kerfs between primary cutters providing increased rate of penetration and durability of thedrag bit 110. Depending upon the cutter assortment, thecutters cutters cutters cutters cutters - The
cutters trailing cutter row 155 each rotationally trail thecutters primary cutter row 142, respectively, and are also considered to be backup cutters to theprimary cutter row 142 in this embodiment. Optionally, thecutters cutters trailing cutter row 154 or a combination of the firsttrailing cutter row 154 and theprimary cutter row 142. While thecutters cutters trailing cutter row 55 may be any assortment or combination of primary, secondary and backup cutters. Further, thecutters cutters cutters cutters - The
cutters trailing cutter row 156 each rotationally trail thecutters primary cutter row 142, respectively, and are also backup cutters to theprimary cutter row 142 in this embodiment. Optionally, thecutters cutters trailing cutter row 155 or a combination of the secondtrailing cutter row 155, the firsttrailing cutter row 154 and theprimary cutter row 142. While thecutters cutters trailing cutter row 156 may be any assortment or combination of primary, secondary and backup cutters. Further, thecutters cutters cutters cutters - Optionally, in embodiments of the invention to be further described below, each of the
cutters cutters 114 of theprimary cutter row 142 irrespective of each of theother cutters - The
cutters 114 of the firsttrailing cutter row 154, the secondtrailing cutter row 155 and the thirdtrailing cutter row 156 are smaller than thecutters 114 of theprimary cutter rows smaller cutters 114 of thecutter rows primary cutter rows cutters 114 are not needed. While thesmaller cutters 114 of the firsttrailing cutter row 154, the secondtrailing cutter row 155 and the thirdtrailing cutter row 156 are all the same size, it is contemplated that each cutter size may be greater or smaller than that illustrated. Also, while thecutters 14 of eachcutter row - In an embodiment of the invention, one or more additional cutter rows may be included on a blade of a rotary drag bit rotationally following and in further addition to a primary cutter row and a backup cutter row. The one or more additional cutter rows in this aspect of the invention are not a second cutter row, a third cutter row or an nth cutter row located on subsequent blades of the drag bit. Each of the one or more additional backup cutter rows, the backup cutter row and the primary cutter row include one or more cutting elements or cutters on the same blade. Each of the cutters of the one or more additional backup cutter rows may align or substantially align in a concentrically rotational path with the cutters of the row that rotationally leads it. Optionally, each cutter may radially follow slightly off-center from the rotational path of the cutters located in the backup cutter row and the primary cutter row.
- In embodiments of the invention, each one or more cutters of additional cutter row may have a specific exposure with respect to one or more cutters of a preceding cutter row on a blade of a drag bit. For example, an exposure of one or more cutters of each cutter row may incrementally step-down in values from an exposure of one or more cutters of a preceding cutter row. In this respect, each of the one or more cutters of the cutter row may be progressively underexposed with respect to cutters of a rotationally preceding cutter row. Optionally, one or more cutters of each subsequent cutter row may have an underexposure to a greater or lesser extent from one or more cutters of the cutter row preceding it. By adjusting the amount of underexposure for the cutters of the cutter rows, the cutters of the backup cutter rows may be engineered to come into contact with the material of the formation as the wear flat area of the primary cutters increases. In this respect, the cutters of the backup cutter rows are designed to engage the formation as the primary cutters wear in order to increase the life of the drag bit. Generally, a primary cutter is located typically toward or on the front or leading
face 136 of theblade 131 to provide the majority of the cutting work load, particularly when the cutters are less worn. As the primary cutters of the drag bit are subjected to dynamic dysfunctional energy or as the cutters wear, the backup cutters in the backup cutter rows begin to engage the formation and begin to take on or share the work from the primary cutters in order to better remove the material of the formation. - In accordance with embodiments of the invention,
FIG. 3A shows a top view representation of an inline cutter set 200.FIG. 3A is a linear representation of a rotational orhelical path 202 in whichcutters 214 may be oriented upon a rotary drag bit. The inline cutter set 200 includes aprimary cutter 204, afirst backup cutter 206 and asecond backup cutter 208, each cutter rotationally inline with the immediately preceding cutter, i.e., following substantially along the samerotational path 202. The largerprimary cutter 204 and smallerbackup cutters backup cutters primary cutter 204 should it fail or be subject to unexpectedly high dysfunction energy. Also, thebackup cutters primary cutter 204 as it wears. In this regard,backup cutters -
FIG. 3B shows a face view representation of the inline cutter set 200. The inline cutter set 200 comprises a fully exposedcutter face 205 for theprimary cutter 204 and partially exposed cutter faces 207, 209 for thebackup cutters reference line 203. In this regard, thebackup cutters primary cutter 204. Thereference line 203 is also indicative of the amount of wear required upon theprimary cutter 204 before thebackup cutters faces cutters backup cutter primary cutter 204, either, of which may be radially offset to a greater or lesser radial extent from the other cutters. - In accordance with embodiments of the invention,
FIG. 4A shows a top view representation of a somewhat staggeredcutter set 220.FIG. 4A is a linear representation of a rotational orhelical path 222 in whichcutters 214 may be oriented upon a rotary drag bit. The staggered cutter set 220 includes aprimary cutter 224, afirst backup cutter 226 and asecond backup cutter 228, each cutter radially staggered or offset from theother cutters 214 in a given rotational path. Thefirst backup cutter 226 andsecond backup cutter 228 are smaller cutter sizes from theprimary cutter 224. For example, thebackup cutters rotation path 222 of theprimary cutter 224. The largerprimary cutter 224 and the smallerbackup cutters backup cutters primary cutter 224 should it fail or be subject to unexpectedly high dysfunction energy. Also, thebackup cutters primary cutter 224 as it wears. In thisregard backup cutters -
FIG. 4B shows a face view representation of the staggeredcutter set 220. The staggered cutter set 220 is shown having a fully exposedcutter face 225 for theprimary cutter 224 and partially exposed cutter faces 227, 229 for thebackup cutters reference line 223. In this regard, thebackup cutters primary cutter 224. Thereference line 223 is also indicative of the amount of wear required upon theprimary cutter 224 before thebackup cutters primary cutter 224 when cutting the material of a formation. Advantageously with staggered cutter set 220, as theprimary cutter 224 wears the staggered cutter set 220 provides twosharper cutters primary cutter 224 for more aggressive cutting than if the cutters were inline. The staggered cutter set 220 may be utilized with any embodiment of the invention. Further, the staggered cutter set 220 may include a third backup cutter or a plurality of backup cutters in subsequent trailing rows of the cutter set. While thefaces FIG. 4B for thecutter - In accordance with embodiments of the invention, a cutter set may include a plurality of
cutters 214 having at least one cutter radially staggered or offset from theother cutters 214 and at least one cutter rotationally inline with a preceding cutter. -
FIG. 5 shows a frontal view of arotary drag bit 210 in accordance with a second embodiment of the invention. Therotary drag bit 210 comprises sixblades first cutter row 241 and asecond cutter row 251 extending from the center line C/L of thebit 210. Thecutter rows cutters 214 coupled tocutter pockets 216 of theblades blade fewer cutter rows cutter rows cutters 214 than illustrated on each of theblades blades blades 231′, 232′, 233′ are secondary blades. Thesecondary blades 231′, 232′, 233′ provide support for addingadditional cutters 214, particularly, in the nose region 262 (seeFIG. 6 ) where the work requirement or potential for impact damage may be greater upon thecutters 214. Thecutters 214 of thesecond cutter rows 251 provide backup support for therespective cutters 214 of thefirst cutter rows 241, respectively, should thecutters 214 become damaged or worn. - In order to improve the life of the
drag bit 210, each of thecutters 214 of thesecond cutter rows 251 may be oriented inline, offset, underexposed, or staggered, or a combination thereof, for example, without limitation, relative to each of theirrespective cutters 214 of thefirst cutter row 241. In this regard, acutter 214 of asecond cutter row 251 may assist and support acutter 214 of thefirst cutter row 241 by removing material from the formation should thecutter 214 of thefirst cutter row 214 fail. In this embodiment of the invention, thesecond cutter rows 251 includecutters 214 that are inline, offset, staggered, and/or underexposed on each of theblades second cutter rows 251 of theblades -
FIG. 6 shows a cutter andblade profile 230 for the embodiment of thedrag bit 210 depicted inFIG. 5 . Thedrag bit 210 has a cutter density of 51 cutters and a profile as represented by cutter andblade profile 230. Thecutters 214 are numbered 1 through 51. The cutters 1-51, while they may include aspects of other embodiments of the invention, should not be confused with the numbered cutters of the other embodiments of the invention. Specific cutter profiles for each of theblades FIGS. 7 through 12 , respectively. - As shown in
FIG. 7 , theblade 231 carries asecond cutter row 251 and afirst cutter row 241. Thefirst cutter row 241 includesprimary cutters second cutter row 251 includesbackup cutters Cutter 18 is staggered relative to and rotationally trailsprimary cutter 17, whilecutter 30 is staggered relative to and rotationally trailsprimary cutter 29. Thecutters staggered cutter set 280. Likewise, thecutters staggered cutter set 281.Staggered cutters staggered cutter row 291. While thestaggered cutters primary cutters primary cutters -
FIG. 8 showsblade 231′, which carries asecond cutter row 251 and afirst cutter row 241. Thefirst cutter row 241 includesprimary cutters second cutter row 241 includesbackup cutters Cutter 16 is staggered relative to and rotationally trailsprimary cutter 15, whilecutter 28 is staggered relative to and rotationally trailsprimary cutter 27. Thecutters staggered cutter set 281. Likewise, thecutters staggered cutter set 281.Staggered cutters staggered cutter row 292. While thestaggered cutters primary cutters primary cutters -
FIG. 9 showsblade 232, which carries asecond cutter row 251 and afirst cutter row 241. Thefirst cutter row 241 includesprimary cutters second cutter row 241 includesbackup cutters Cutter 14 is staggered relative to and rotationally trailsprimary cutter 13, andcutter 38 is staggered relative to and rotationally trails primary cutter 37, whilecutter 26 is inline relative to and rotationally trailsprimary cutter 25. Thecutters cutters inline cutter 26 and thestaggered cutters primary cutters primary cutters - Similarly,
FIG. 10 showsblade 232′ having asecond cutter row 251 comprising staggeredcutters inline cutter 24 forming astaggered cutter row 294. Also, asecond cutter row 251 ofblade 233 shown inFIG. 11 comprises staggeredcutters 9, 34 and aninline cutter 22 forming astaggered cutter row 295. Further, asecond cutter row 251 ofblade 233′ as shown inFIG. 12 comprises staggeredcutters staggered cutter row 296. While various arrangements of staggered cutters and in-line cutters are arranged in therows 251 ofblades drag bit 210 as illustrated inFIGS. 7-12 , it is contemplated that one or more staggered cutters may be provided with or without the inline cutters illustrated insecond cutter rows 251 of theblades - In accordance with embodiments of the invention, a plurality of staggered cutters may have uniform underexposure or may be uniformly staggered with respect to their respective primary cutters. In this regard, the staggered cutters may have substantially the same underexposure or amount of offset, i.e., staggering, with respect to their corresponding primary cutters as each of the underexposure and staggering of the other staggered cutters. Also, it is contemplated that one or more staggered cutter rows may be provided beyond the
second cutter row 251 illustrated, the one or more staggered cutter rows may include cutters staggered non-uniformly distributed and having different underexposures with respect to other staggered cutters within the same cutter row. Further contemplated, thesecond cutter row 251 may includecutters 214 having underexposures distributed non-linearly within a staggered cutter row, thecutters 214 being distributed with respect to the staggered cutter row extending radially outward from the centerline C/L of thedrag bit 210. -
FIG. 13 shows a frontal view of another embodiment of arotary drag bit 310. Therotary drag bit 310 comprises threeprimary blades first cutter row second cutter row third cutter row bit 310. Optionally, one or more additional backup cutter rows may be provided upon at least one of theblades first cutter rows second cutter rows cutter row cutters 314; eachcutter 314 coupled to acutter pocket 316 of theblades - The
cutters 314 incutter rows FIG. 14 , which provides a cutter andblade profile 330 forbit 310. Thedrag bit 310 has a cutter density of 54 cutters and a profile as represented by cutter andblade profile 330. Thecutters 314 are numbered 1 through 54. While the cutters 1-54 may incorporate aspects of other embodiments of the invention, they are not to be confused with the numbered cutters of the other embodiments of the invention. Thecutters 314 incutter rows cutter rows cutters 314 incutter rows cutter rows cutter rows cutter group 351 for theblade 331. While the cutters ofcutter rows cutter row 341, it is contemplated that each cutter row may be underexposed by a lesser, equal or greater extent than presented.Cutter rows cutter group 352 for theblade 332, and thecutter rows multi-layer cutter group 353 for theblade 333. While each of themulti-layer cutter groups - Specific cutter profiles for each of the
blades FIGS. 15 through 17 , respectively. Forblade 331, thefirst cutter row 341 of thecutter group 351 includescutters cutters 314 of thefirst cutter row 341 exhibit cutters sized larger than thecutters 314 of thesecond cutter row 344 and thethird cutter row 347. Thesecond cutter row 344 of thecutter group 351 includescutters third cutter row 347 of thecutter group 351 includescutters cutter group 351 provides enhanced durability and life to thedrag bit 310 by providing improved contact engagement with a formation over the life of thecutters 314. Thecutter group 351 has improved performance when cutting a formation by providing thesmaller cutters 314 in the second andthird cutter rows larger cutters 314 of thefirst cutter row 341. In this regard, for example, thesmaller cutters larger cutter 14 in a rotational path providing less interference or resistance upon the formation while removing material than would be conventionally obtained with a single secondary row of cutters having the same cutter size with a primary row of cutters. While thecutters 314 have ½ inch (about 13 millimeters) and ⅝ inch (about 16 millimeters) cutter diameters, thecutters 314 may have any larger or smaller cutter diameter than illustrated. - The
cutters 314 are inclined, i.e., have a backrake angle, at 15 degrees backset from the normal direction with respect to the rotational path each cutter travels in thedrag bit 310 as would be understood by a person having ordinary skill in the art. It is anticipated that each of thecutters 314 may have more or less aggressive backrake angles for particular applications different from the 15 degree backrake angle illustrated. - As shown in
FIG. 15 , thecutter group 351 ofblade 331 includes two inline cutter sets 370, 372 and four staggered cutter sets 380, 382, 384, 386. In this embodiment, the inline cutter sets 370, 372, comprisingcutters cutters primary cutters drag bit 310. - The
cutter group 352 ofblade 332 comprises three inline cutter sets 371, 373, 374 and three staggered cutter sets 381, 383, 385 as shown inFIG. 16 . - As shown in
FIG. 17 , thecutter group 353 ofblade 333 comprises two inline cutter sets 375, 376 and four staggered cutter sets 387, 388, 389, 390. - In embodiments of the invention, a drag bit may include one or more cutter groups to improve the life and performance of the bit. Specifically, a multi-layer cutter group may be included on one or more blades of a bit body, and further include one or more multi-exposure cutter rows, one or more staggered cutter sets, or one or more inline cutter sets, in any combination without limitation.
- In embodiments of the invention, a multi-layer cutter group may include cutter sets or cutter rows having different cutter sizes in order to improve, by reducing, the resistance experienced by a drag bit when a backup cutter follows a primary cutter. In this regard, a smaller backup cutter is better suited for following a primary cutter that is larger in diameter in order to provide a smooth concentric motion as a drag bit rotates. In one aspect, by decreasing the diameter size of each backup cutter from a ⅝ inch (about 16 millimeters) cutter diameter of the primary cutter to ½ inch (about 13 millimeters), 11 millimeters, or ⅜ inch (about 9 millimeters), for example, without limitation, there is less interfering contact with the formation while removing material in a rotational path created by primary cutters. In another aspect, by providing backup cutters with smaller cutter size, there is decreased formation contact with the non-cutting surfaces of the backup cutters, which improves the ROP of the drag bit.
- In embodiments of the invention, a cutter of a backup cutter row may have a backrake angle that is more or less aggressive than a backrake angle of a cutter on a primary cutter row. Conventionally, in order to maintain the durability of a primary cutter a less aggressive backrake angle is utilized; while giving up cutter performance, the less aggressive backrake angle made the primary cutter more durable and less likely to chip when subjected to dysfunctional energy or string bounce. By providing backup cutters in embodiments of the invention, a more aggressive backrake angle may be utilized on the backup cutters, the primary cutters or on both. The combined primary and backup cutters provide improved durability allowing the backrake angle to be aggressively selected in order to improve the overall performance of the cutters with less wear or chip potential caused by vibrational effects when drilling.
- In embodiments of the invention, a cutter of a backup cutter row may have a chamfer that is more or less aggressive than a chamfer of a cutter on a primary cutter row. Conventionally, in order to maintain the durability of a primary cutter a longer chamfer was utilized, particularly when a more aggressive backrake angle was used on a primary cutter. While giving up cutter performance, the longer chamfer made the primary cutter more durable and less likely to fracture when subjected to dysfunctional energy while cutting. By providing backup cutters, a more aggressive, i.e., shorter, chamfer may be utilized on the backup cutters, the primary cutters or on both in order to increase the cutting rate of the bit. The combined cutters provide improved durability allowing the chamfer lengths to be more or less aggressive in order to improve the overall performance of the cutters with less fracture potential also caused by vibrational effects when drilling.
- In embodiments of the invention, a drag bit may include a backup cutter coupled to a cutter pocket of a blade, the cutter having a siderake angle with respect to the rotational path of the cutter. In one example,
FIG. 18 shows a top view representation of a drag bit having an inline cutter set 300 with twosideraked cutters FIG. 18 is a linear representation of a rotational orhelical path 301 in which the inline cutter set 300 may be oriented upon a rotary drag bit. The inline cutter set 300 includes aprimary cutter 304 and twosideraked cutters sideraked cutter 303 rotationally follows and is smaller than theprimary cutter 304, and is oriented at asiderake angle 305. Thesideraked cutter 302 is also oriented at a siderake angle in the opposite direction from thesiderake angle 305, as illustrated. While twosideraked cutters wear flats primary cutter 304 as it wears, by orienting thesideraked cutters sideraked cutters sharper edges wear flats primary cutter 304 grow, thesharper edges sideraked cutters cutters cutters sideraked cutter 303 is included with an inline cutter set 300, it is also contemplated that the sideraked cutter may be utilized in a backup cutter set, a backup cutter set, a cutter row, a staggered cutter row, and a staggered cutter set, for example, without limitation. - In embodiments of the invention, a cutting structure may be coupled to a blade of a drag bit, providing a larger diameter primary cutter placed at a front of the blade followed by one or more rows of smaller diameter cutters either in substantially the same helical path or some other variation of cutter rotational tracking. The smaller diameter cutters, which rotationally follow the primary cutter, may be underexposed to different levels related to depth-of-cut or wear characteristics of the primary cutter so that the smaller cutters may engage the material of the formation at a specific depth of cut or after some worn state is achieved on the primary cutter. Depth of cut control features as described in U.S. Pat. No. 7,096,978 entitled “Drill bits with reduced exposure of cutters,” the disclosure of which is incorporated herein by this reference, may be utilized in embodiments of the invention.
- In
FIGS. 19 , 20 and 21, the performance ofseveral drag bits conventional drag bits FIGS. 19 , 20 and 21 each show the accumulated cutter wear flat area over the life of thedrag bits drag bits conventional drag bits FIGS. 19 , 20 and 21, the results, as portrayed, are identified by reference to the numeral given to each of thedrag bits - The
drag bit 404 comprises three blades and three rows of cutters on each blade. The first row of cutters is a primary row of cutters rotationally followed by two staggered cutter rows, in which the cutters of the first staggered cutter row are underexposed by twenty-five thousandths (0.025) of an inch (0.635 millimeters) and the cutters of the second staggered cutter row are underexposed by fifty thousandths (0.050) of an inch (about 1.27 millimeters). - The
drag bit 405 comprises three blades and three rows of cutters on each blade. The first row of cutters is a primary row of cutters rotationally followed by two inline cutter rows, in which the cutters of the first inline cutter row are underexposed by fifty thousandths (0.050) of an inch (1.27 millimeters) and the cutters of the second inline cutter row are underexposed by fifty thousandths (0.050) of an inch (1.27 millimeters). - The
drag bit 406 comprises three blades and three rows of cutters on each blade. The first row of cutters is a primary row of cutters rotationally followed by two inline cutter rows, in which the cutters of the first inline cutter row are underexposed by twenty-five thousandths (0.025) of an inch (0.635 millimeters) and the cutters of the second inline cutter row are underexposed by twenty-five thousandths (0.025) of an inch (0.635 millimeters). -
Conventional drag bit 407 comprises six blades and a single row of primary cutters on each of the blades.Conventional drag bit 408 comprises four blades with a primary row of cutters and a backup row of cutters on each of the blades.Conventional drag bit 409 comprises five blades and a single row of primary cutters on each of the blades.Conventional drag bit 410 comprises three blades with a primary row of cutters and a backup row of cutters on each of the blades. -
FIG. 19 is agraph 400 of cumulative diamond wearflat area during simulated drilling conditions for sevendifferent drag bits graph 400 ofFIG. 19 includes a vertical axis indicating total diamond wearflat area of all the cutting elements in square inches (by 645.16 in square millimeters), and a horizontal axis indicating distance drilled in feet (by 0.3048 in meters).FIG. 19 shows the differences in the amount of wearflat area and the wearflat rate over the life of the bit are influenced by the layout and orientation of the cutters upon thedrag bits conventional drag bits drag bits conventional drag bit 410 maintained a lower wear rate. As the wearflat rate fordrag bits drag bits drag bit 405 with multiple backup rows of cutters begins to increase over the wearflat rate of thedrag bit 410 having only one row of backup cutters, indicating that thebit 410 is nearing its usable life and its rate of penetration is significantly decreasing as is shown inFIG. 20 . These changes in the wearflat rate for each of thedrag bits FIG. 20 ) and, thus, the overall life of the bit, particularly when drilling faster further is the desired goal. - Comparing
FIG. 19 andFIG. 20 , it will be appreciated that, in order to maintain a faster ROP over a given distance of drilling, it may be desirable to increase and control the wearflat growth of the cutters slowly at first and allow for a greater rate increase over the remaining life of the bit. By providing one or more backup cutter rows on each blade of a drag bit having fewer blades, the wearflat rate of the cutters may provide for enhanced performance in terms of wear and ROP characteristics. -
FIG. 20 is agraph 401 of drilling penetration rate of the simulated drilling conditions ofFIG. 19 . Thegraph 401 ofFIG. 20 includes a vertical axis indicating penetration rate (or ROP) in feet per hour (by 0.3048 in meters per hour), and a horizontal axis indicating wearflat area in square inches (by 645.16 in square millimeters). Thedrag bits conventional drag bit 408, each having backup cutters, experience improved ROP at wearflat area greater than 0.7 square inches (452 square millimeters).Conventional drag bits drag bit 408, with just the one backup cutter row, maintains a higher ROP as the cutters wear over its usable life,FIG. 19 shows that dragbit 408 cannot bore as deeply into a formation as any ofdrag bits -
FIG. 21 is agraph 402 of wearflat area for each cutter as a function of cutter radial position for the simulated drilling conditions ofFIG. 19 at the end of the simulation, i.e., when the penetration rate fell below 10 feet (3.04 meters) per hour, as shown inFIG. 20 . Thegraph 402 ofFIG. 21 includes a vertical axis indicating diamond wearflat area of each cutting elements in square inches (by 645.16 in square millimeters), and a horizontal axis indicating the radial position of cutting element from the center of the drag bit in inches (by 25.4 in millimeters). Thegraph 402 indicates the worn state of each cutting element or cutter for each of thedrag bits inventive drag bits conventional drag bits -
FIG. 22 shows a frontal view of arotary drag bit 510 in accordance with another embodiment of the invention. Therotary drag bit 510 comprises threeblades first cutter row second cutter row bit 510. Thecutter rows primary cutters 514 coupled to thedrag bit 310 in cutter pockets 516 of theblades cutter rows primary cutters 514 to be selectively positioned on fewer blades than conventionally required to achieve a desired cutter profile. In this regard, thesecond cutter rows primary cutters 514 in at least two distinct cutter rows upon a single blade, which allows for a reduction in the number of blades otherwise required on a conventional drag bit, providing improved durability of a higher bladed drag bit while achieving faster ROP of a lower bladed drag bit. Also, each of the threeblades second cutter rows - Optionally, while the
drag bit 510 includes threeblades drag bit 510 may include one or more primary blades. Also, one or more additional or backup cutter rows may be provided that include secondary, backup or multiple backup cutters upon at least one of theblades first cutter rows second cutter rows drag bit 510 may incorporate aspects of other embodiments of the invention. - The
cutters 514 incutter rows FIG. 23 , which shows a cutter andblade profile 530 for the fourth embodiment of the invention. Thedrag bit 510 has a cutter density of 51 cutters and a profile as represented by cutter andblade profile 530. Thecutters 514 are numbered 1 through 51. The cutters 1-51, while they may include aspects of other embodiments of the invention, are not to be confused with the numbered cutters of the other embodiments of the invention. Thecutters 514 incutter rows cutters 514 incutter rows cutters 514 to provide the diamond volume in certain radial locations on the drag bit in order to optimize formation material removal while controlling cutter wear. In this respect, cutters 1-51 provide the cutter profile conventionally encountered on a 6 bladed drag bit, however the cutters 1-51 are able to remove more material from the formation at a faster rate because of their placement upon a drag bit with a lesser number of blades. - Each of
cutters 514 is inclined, i.e., has a back rake angle ranging between about 15 and about 30 degrees backward rotation from the normal direction orientation of the surface of the cutting table of each cutter relative to a tangent where an edge of the table contacts the borehole surface with respect to the rotational path each cutter travels as would be understood by a person having ordinary skill in the art. It is contemplated that each of thecutters 514 may have more or less aggressive backrake angles for particular applications different from the backrake angle illustrated. In another aspect, it is also contemplated that the backrake angle for thecutters 514 coupled substantially on eachblade surface 535 in thesecond cutter rows cutters 514 of thefirst cutter rows face 534 and subjected to more dysfunctional energy during formation drilling. - A
chamfer 515 is included on acutting edge 513 of each of thecutters 514. Thechamfer 515 for eachcutter 514 may vary between a very shallow, almost imperceptible surface for a more aggressive cutting structure up to a depth of ten thousandths (0.010) of an inch (0.254 millimeters) or sixteen thousandths (0.016) of an inch (0.406 millimeters), or even deeper for a less aggressive cutting structure, as would be understood by a person having ordinary skill in the art. It is contemplated that eachchamfer 515 may have more or less aggressive width for particular radial placement of eachcutter 514, i.e., cutter placement in a cone region 560 anose region 562, aflank region 563, ashoulder region 564 or agage region 565 of thedrag bit 510. In another aspect, it is also contemplated that thechamfer 515 of eachcutter 514 coupled substantially on eachblade surface 535 in thesecond cutter rows cutter 514 of thefirst cutter rows face 534 and subjected to more dysfunctional energy during formation drilling. - Faster penetration rate, or ROP, is obtained when drilling a formation with the
drag bit 510. Conventional drag bits experience more wear upon cutters as the blade count decreases and the ROP increases. By providing thedrag bit 510 with the number of blades decreased from a conventional higher bladed bit, such as six blades, to the threeblades blade surface 535 of eachblade primary cutters 514 on eachblade cutters 514 wear at a slower rate for a faster ROP. Also, by providing the decreased number ofblades cutters 514, the ROP is further increased. Moreover, by providing adrag bit 510 with fewer blades and multiple rows of primary cutters, the hydraulic cleaning of thedrag bit 510 is enhanced to provide increased ROP while obtaining the durability of the conventional heavier bladed drag bit without the resultant lower ROP. - In one aspect of the
drag bit 510, a cutting structure of an X bladed drag bit is placed upon a Y Waded drag bit, where Y is less than X and thecutters 514 of the cutting structure are each coupled to the Y bladed drag bit on adjacent or partially overlapping rotational or helical paths. By providing the cutting structure of the X bladed drag bit upon the Y bladed drag bit, the durability of the X bladed drag bit is achieved on the Y bladed drag bit while achieving the higher penetration rate or efficiency of the Y laded drag bit. -
FIG. 24 shows a frontal view of arotary drag bit 610 in accordance with another embodiment of the invention. Therotary drag bit 610 comprises sixblades first cutter row 641 and a backup orsecond cutter row 651 extending from the center line C/L of thebit 610. Thecutter rows cutters 614 coupled tocutter pockets 616 of theblades blade fewer cutter rows cutter rows cutters 614 than illustrated on each of theblades blades blades 631′, 632′, 633′ are secondary blades. Thesecondary blades 631′, 632′, 633′ provide support for addingadditional cutters 614, particularly, in the nose or shoulder regions 662 (seeFIG. 25 ) where the work requirement or potential for impact damage may be greater upon thecutters 614. Thecutters 614 of thesecond cutter rows 651 provide backup support for therespective cutters 614 of thefirst cutter rows 641, respectively, should thecutters 614 become damaged or worn, and may also be selectively placed to share the work at different wear states of thecutters 614 of thefirst cutter rows 641. - In order to improve the life of the
drag bit 610, each of thecutters 614 of thesecond cutter rows 651 may be oriented inline, offset, underexposed, or staggered, or a combination thereof, for example, without limitation, relative to each of theirrespective cutters 614 of thefirst cutter row 641. In this regard, acutter 614 of asecond cutter row 651 may assist and support acutter 614 of thefirst cutter row 641 by removing material from the formation and still provide backup support should theprimary cutter 614 of thefirst cutter row 641 fail. - In this embodiment of the invention, the
second cutter rows 651 includecutters 614 of different underexposures on each of theblades drag bit 610, in this respect the cutters are said to be variably underexposed. By providing thecutters 614 that are differently underexposed, eachcutter 614 may engage material of the formation at different wear states of theprimary cutters 614 of thefirst cutter rows 641 while providing backup support therefor. Discussion of thesecond cutter rows 651 of theblades -
FIG. 25 shows a cutter andblade profile 630 for the second embodiment of the invention. Thedrag bit 610 has a cutter density of 51 cutters and a profile as represented by cutter andblade profile 630. Thecutters 614 for purposes of thedrag bit 610 are numbered 1 through 51. The cutters 1-51, while they may include aspects of other embodiments of the invention, should not be confused with the numerically numbered cutters of the other embodiments of the invention. Specific cutter profiles for each of theblades FIGS. 26 through 31 , respectively. - The
blade 631 illustrated inFIG. 26 includes asecond cutter row 651 and afirst cutter row 641 having asecond cutter 18 underexposed by fifty thousandths (0.050) of an inch (1.27 millimeters) rotationally trailing a fully exposedprimary cutter 17, and asecond cutter 30 underexposed by fifteen thousandths (0.015) of an inch (0.381 millimeters) rotationally trailing a fully exposedprimary cutter 29, respectively. While thesecond cutters second cutter row 631, they may have the greater or lesser amounts of underexposure, and may also have the same amount of underexposure. Thecutters cutters second cutters underexposed cutter row 691. - Illustrated in
FIG. 27 , theblade 631′ comprising asecond cutter row 651 and afirst cutter row 641 includes asecond cutter 16 underexposed by fifty thousandths (0.050) of an inch (1.27 millimeters) rotationally trailing a fully exposedprimary cutter 15 and anothersecond cutter 28 underexposed by fifteen thousandths (0.015) of an inch (0.381 millimeters) rotationally trailing a fully exposedprimary cutter 27, respectively. While thesecond cutters second cutter row 631, they may have the greater or lesser amounts of underexposure, and may also have the same amount of underexposure. Thecutters cutters second cutters underexposed cutter row 692. - The
blade 632 as illustrated inFIG. 28 comprises asecond cutter row 651 and afirst cutter row 641 that includesecond cutters primary cutters second cutters second cutter row 631, they may have the greater or lesser amounts of underexposure, and may also have the same amount of underexposure. Thecutters second cutters underexposed cutter row 693. - A
second cutter row 651 ofblade 632′ as illustrated inFIG. 29 comprisessecond cutters primary cutters underexposed cutter row 694. Also as illustrated inFIG. 30 , asecond cutter row 651 ofblade 633 comprisessecond cutters primary cutters underexposed cutter row 695. Further, asecond cutter row 651 ofblade 633′ as illustrated inFIG. 31 comprisessecond cutters primary cutters underexposed cutter row 696. While various arrangements ofsecond cutters 614 are arranged in the underexposedcutter rows 691 through 696 ofblades drag bit 610, it is contemplated that one or more second cutters may be provided having more or less underexposure for engagement with the material of a formation set for different wear stages of the primary cutters illustrated inrows 641. In this regard,second cutters primary cutters 614, whilesecond cutters primary cutters 614 irrespective of damage thereto. - In accordance with embodiments of the invention, a plurality of secondary cutting elements may be differently underexposed in one or more backup cutter rows radially extending outward from the centerline C/L of the
drag bit 610 in order to provide a staged engagement of the cutting elements with the material of a formation as a function of the wear of a plurality of primary cutting elements. Also, the secondary cutting elements may be differently underexposed in one or more backup cutter rows to provide backup coverage to the primary cutters in the event of primary cutter failure. - In
FIGS. 32 , 33 and 34, the results, as portrayed, are identified by reference to the numeral given to eachdrag bit FIG. 32 is agraph 600 of cumulative diamond wearflat area during simulated drilling conditions for aconventional drag bit 608 and adrag bit 610. Theconventional drag bit 608 includes six blades having a primary and a backup row of cutters on each of the blades, where the underexposure of the backup row of cutters is constant. Thedrag bit 610 is shown inFIG. 25 and described above. Thegraph 600 ofFIG. 32 includes a vertical axis indicating total diamond wearflat area of all the cutting elements in square inches (by 645.16 in square millimeters), and a horizontal axis indicating distance drilled in feet (by 0.3048 in meters).FIG. 32 shows the differences in the amount of wearflat area and that the wear at rate (slope) over the life of the bit is influenced by the cutting structure layout upon thedrag bits bits bits conventional bit 608 wear at an increased rate, whereas the cutters of thenovel bit 610 that incorporate teachings of the present invention wear at a slower rate as the underexposure of the backup cutters begin to engage the material of the formation to help optimize the load and wear upon each of the cutters. The variable underexposed backup cutters of thedrag bit 610 allow for further drilling distance as compared to a comparableconventional bit 608. By providing one or more underexposed cutter rows on one or more blades of a drag bit, the wearflat rate of the cutters may provide for enhanced performance in terms of total wear and depth of drilling. -
FIG. 33 is agraph 601 of work rate of the simulated drilling conditions ofFIG. 32 . Thegraph 601 ofFIG. 33 includes a vertical axis indicating work load for each cutting element in watts, and a horizontal axis indicating the radial position of cutting element from the center of the drag bit in inches (by 25.4 in millimeters). Thisgraph 601 shows the work load on each cutting element at the end of drilling the material of a formation. Advantageously, because the cutters of thedrag bit 610 include differently underexposed second cutters, only specific second cutters engaged the formation as the primary cutter wore or were damaged. Thus, the second cutters of thedrag bit 610 were subject to work only when a primary cutter was damaged or when a staged amount of wear developed upon the primary cutter. However, all of the backup cutters of theconventional bit 608 were undesirably subjected to work regardless of the amount of wear upon its primary cutters, thereby resulting in less than optimal performance. By providing each backup cutter with a variable amount of underexposure, the wear upon the primary cutters may be optimized to enhance the work upon each cutter while extending the usable life of the bit. -
FIG. 34 is agraph 602 of wear rate for each cutter as a function of cutter radial position for the simulated drilling conditions ofFIG. 32 . Thegraph 602 ofFIG. 34 includes a vertical axis indicating diamond wear rate of each cutting element in square inches per minute (by 25.4 millimeters per minute), and a horizontal axis indicating the radial position of cutting element from the center of the drag bit in inches (by 25.4 in millimeters). Thegraph 602 indicates the wear rate of each cutting element or cutter for each of thedrag bits drag bit 610, and still providing backup cutter protection should a primary cutter fail. However, all of the backup cutters of theconventional bit 608 where unnecessarily exposed to the formation regardless of the wear state of the primary cutters, thereby wearing at an increased rate compared to the cutters ofdrag bit 610. By providing the variable underexposed cutters, the wear rate (slope of the curve inFIG. 32 ) of thedrag bit 610 increases at a slower rate to extend the life of all the cutters and, thus, achieves grater drilling depth. Moreover, thegraph 602 shows that the life of thebit 610 may be extended while providing backup cutters that may engage the material of a formation when a primary cutter fails or when a particular wear state is achieved on selectprimary cutters 614. -
FIG. 35 shows a partial top view of arotary drag bit 710 showing the concept of cutter siderake (siderake), cutter placement (side-side), and cutter size (size). “Siderake” is described above. “Side-side” is the amount of distance between cutters in the same cutter row. “Size” is the cutter size, typically indicated in by the cutters facial length or diameter.FIG. 36 shows a partial side view of therotary drag bit 710 ofFIG. 35 showing concepts of backrake, exposure, chamfer and spacing as described herein. -
FIG. 37 shows a frontal view of arotary drag bit 810 in accordance with another embodiment of the invention, which includes a split cutter set. In the split cutter set, two primary cutters 814 (e.g., two non-kerfing primary cutters, a primary cutter and a kerfing cutter, etc.) that are carried bydifferent blades bit 810 and at substantially the same elevation of thebit 810 and/or may follow substantially the same radial or helical cutting path. At least one of theprimary cutters 814 of the split cutter set may be rotationally or helically followed by a backup cutter, which follows substantially the same cutting path as its corresponding, leading primary cutter. Each backup cutter may be located on the same blade as its corresponding primary and/or kerfing cutter, or a different blade from its corresponding primary and/or kerfing cutter. - The illustrated embodiment of
rotary drag bit 810 includes sixblades cutters 814. In this embodiment,blades bit 810 are primary blades andblades 831′, 832′, 833′ are secondary blades. Thesecondary blades 831′, 832′, 833′ provide support foradditional cutters 814, particularly, in the nose region of thebit 810, where the work requirement or potential for impact damage may be greater upon thecutters 814. Althoughbit 810 is depicted as including six blades, similar embodiments of drag bits that include fewer than six blades or more than six blades are also contemplated to be within the scope of the present invention. - As noted, each
blade bit 810 carriescutters 814, which are coupled tocutter pockets 816 of theblades cutters 814 may be arranged in rows on theblades blade bit 810 has a primary orfirst cutter row 841 and a backup orsecond cutter row 851 arranged along a path that may extend generally from the center line C/L of thebit 810 toward the gage of thebit 810. It is contemplated that eachblade more cutter rows cutter rows cutters 814 than illustrated on each of theblades cutters 814 of thesecond cutter rows 851 provide backup support for therespective cutters 814 of thefirst cutter rows 841, respectively, should thecutters 814 become damaged or worn. -
FIG. 37 illustrates the manner in which some of thecutters 814 of thebit 810 are arranged in split cutter sets 820. Thebit 810 may include fewer or more split cutter sets 820 than illustrated. In the depicted embodiment, each split cutter set 820 includes at least two subsets of twocutters 814, with one subset including onecutter 814 from each of thefirst cutter row 841 and thesecond cutter row 851 of oneblade cutter 814 from each of thefirst cutter row 841 and thesecond cutter row 851 of adifferent blade cutters 814 of the second subset are located on ablade drag bit 810 that rotationally follows theblade cutters 814 are carried. - In each
subset cutter 814 of asecond cutter row 851 rotationally follows acorresponding cutter 814 of an adjacentfirst cutter row 841. Thissubset 822 ofcutters 814, together with anothersubset 821 ofcutters 814 on adifferent blade drag bit 810 by providingcutters 814 configured as backup and primary cutters. It is also recognized in order to further improve the life of thedrag bit 810, each of thecutters 814 of eachcutter row respective cutters 814 of the split cutter set 820, as described herein with respect to other embodiments of drag bits. In this regard, acutter 814 of asecond cutter row 851 may assist and support acutter 814 of thefirst cutter row 841 by removing material from the formation and still provide backup support should thecutter 814 of thefirst cutter row 814 fail. - In this embodiment of the invention, the split cutter set 820 includes a
cutter subset 821 rotationally trailing anothercutter subset 822 in substantially the cutting path upon rotation of thedrag bit 810. Thecutter subset 821 includes numberedcutters cutter 26 is located in thesecond cutter row 851 inline and underexposed with respect tocutter 25 in thefirst cutter row 841 on theblade 833′ and, together, rotationally trails the numberedcutters cutter subset 822. The numberedcutters cutters cutter subset 821. Either of thecutter subsets more cutters 814 performing backup support than the number of numberedcutters primary cutters 814, each located on different blades of thebit 810 and configured to substantially follow within the same cutting path upon rotation of thebit 810 about its axis; for example, numberedcutter 23 onblade 833 and numberedcutter 25 onblade 833′. Discussion of plural split cutter sets 820 will now be taken with reference toFIG. 38 . -
FIG. 38 shows a cutter andblade profile 830 forbit 810. Thebit 810 has a cutter density of fifty-three (53) cutters and a profile as represented by cutter andblade profile 830. Thecutters 814 are numbered 1 through 53, While the cutters 1-53 may be oriented in a manner that incorporate aspects of other embodiments of drag bits of the invention, they should not be confused with the numbered cutters of the other embodiments of drag bits of the invention. Specific cutter profiles for each of theblades blades subscripted numerals - The
cutter profile 830 shows that thedrag bit 810 is configured with ten split cutter sets 820. For instance, one split cutter sets 820 includes primary cutters 235 and 254 and backup cutters 245 and 264, as mentioned herein above. In this embodiment, the split cutter set 820 is configured as a trailing split cutter set comprising the backup cutter set 821, situated upon theblade 833′, rotationally trailing the backup cutter set 822, situated upon theblade 833. In this embodiment ofbit 810, other split cutter sets 820 arm also trailing split cutter sets. For example,cutters blades blade 832 andcutters 442, 452 onblade 833′ all following in substantially the same rotational path upon rotation of thedrag bit 810 about its axis C/L. Cutters 433 and 442 are configured as primary cutters, andcutter 452 is configured as a secondary or backup cutter. - In another aspect of the invention, the split cutter set 820 as described herein above is considered a trailing kerfing and backup cutter set,” i.e., one primary cutter trailing another primary cutter upon different blades of the
drag bit 810 for kerfing action while drilling, where at least one of the primary cutters includes a trailing backup cutter upon its respective blade as herein described above. It is recognized that both of the primary cutters may have one or more backup cutters according to the other embodiments of the invention described above. - In accordance with embodiments of the invention, a split cutter set may include
cutters 814 configured as an “opposing kerfing and backup cutter set”; a “trailing kerfing and leading backup cutter set”; an “opposing kerfing and leading backup cutter set”; a “trailing kerfing and trailing backup cutter set”; and an “opposing kerfing and trailing backup cutter set,” for example, and without limitation. - An example of the “opposing kerfing and backup cutter set” includes one primary cutter and another primary cutter upon different, opposing blades of a drag bit, wherein at least one of the primary cutters is rotationally followed by a backup cutter carried by the same blade as its corresponding primary cutter. The term “opposing” is generally understood to include a cutter or blade configured so as to rotationally trail or lead by approximately 180 degrees of rotation relative to another cutter or blade. Again, it is recognized that both of the primary cutters may have one or more trailing backup cutters according to the other embodiments of the invention described above. One example of an “opposing kerfing and backup cutter set” could representatively include (using a drag bit having six sequentially numbered
blades FIG. 38 ) aprimary cutter 23 onblade 5 having abackup cutter 24 onblade 5, and an opposingprimary cutter 25 onblade 2 having abackup cutter 26 onblade 2. - An example of the “trailing kerfing and leading backup cutter set” includes one primary cutter trailing another primary cutter upon different blades of a drag bit, wherein at least one leading backup cutter travels along substantially the same rotational path as a corresponding primary cutter, and is positioned upon a blade leading the respective blade of the primary cutter. Again, it is recognized that both of the primary cutters may have one or more leading backup cutters according to the other embodiments of the invention described above. One example of a “trailing kerfing and leading backup cutter set” could representatively include (using a drag bit having six sequentially numbered
blades FIG. 38 ) aprimary cutter 23 onblade 5 having abackup cutter 24 onblade 1, and a trailingprimary cutter 25 onblade 4 having abackup cutter 26 onblade 6. - An example of the opposing kerfing and leading backup cutter set” includes one primary cutter opposing another primary cutter upon different blades of a drag bit, wherein at least one of the primary cutters is rotationally or helically followed by a backup cutter upon a blade leading the blade by which the primary cutter is carried. Again, it is recognized that each backup cutter may incorporate teachings according to the other embodiments of drag bits described above. One example of an “opposing kerfing and leading backup cutter set” could representatively include (using a drag bit having six sequentially numbered
blades FIG. 38 ) aprimary cutter 23 onblade 5 having abackup cutter 24 onblade 6, and an opposingprimary cutter 25 onblade 2 having abackup cutter 26 onblade 3. - An example of the “trailing kerfing and trailing backup cutter set” includes one primary cutter trailing another primary cutter upon different blades of a drag bit, wherein at least one of the primary cutters includes a trailing backup cutter carried by the same blade. Again, it is recognized that both of the primary cutters may have one or more leading or trailing backup cutters according to the other embodiments of the invention described above. One example of a “trailing kerfing and trailing backup cutter set” could representatively include (using a drag bit having six sequentially numbered
blades FIG. 38 ) aprimary cutter 23 onblade 5 having abackup cutter 24 onblade 3, and a trailingprimary cutter 25 onblade 4 having abackup cutter 26 onblade 2. - An example of the “opposing kerfing and trailing backup cutter set” includes one primary cutter opposing another primary cutter upon different blades of a drag bit, wherein at least one of the primary cutters includes a trailing backup cutter upon a blade trailing the respective blade of the primary cutter. Again, it is recognized that both of the primary cutters may have one or more leading or trailing backup cutters according to the other embodiments of the invention described above. One example of an “opposing kerfing”, and trailing backup cutter set” could representatively include (using a drag bit having six sequentially numbered
blades FIG. 38 ) aprimary cutter 23 onblade 5 having abackup cutter 24 onblade 4, and an opposingprimary cutter 25 onblade 2 having abackup cutter 26 onblade 1. - In accordance with embodiments of the invention, a split cutter set may include cutters uniformly configured with respect to other cutters of the split cutter set. In this regard, the cutter may have the same rake angle, underexposure, and size, for example and without limitation. Also, it is contemplated that one or more of the cutters of a split cutter set may have non-uniformly configured or oriented cutters. Furthermore, the cutters of a split cutter set may include cutters that are inline with each other, staggered relative to one another, and exposed by different amounts, as described in reference to other embodiments of the invention.
- In the embodiments of the invention described above, selected cutter configurations and cutter orientation for cutters placed upon a rotary drag bit have been explored. The select cutter configurations may be optimized to have placement based upon optimizing depth of cut and rock removal strategy. Such a strategy would enable design of a cutting structure having the most optimal load sharing and vibration mitigation between select primary and backup cutters. Conventionally, backup cutters are placed upon a drag bit at a set distance behind with a uniform underexposure with respect to the primary cutters that they follow. By implementing a rock removal strategy, the placement of the primary cutters and secondary cutters may be optimized to effectively balance the load and rock removal of the drag bit for improved performance and life. Essentially, the placement of each cutter in cutter rows upon a blade of a drag bit is optimized to provide the optimal siderake, cutter placement, cutter size, backrake, exposure, chamfer or spacing with respect to the other cutters in order to facilitate the optimization of the drag bit for drilling faster further.
- In the embodiments of the invention described above, a rotary drag bit includes backup cutter configurations having different backrake angles and siderake angles, as described herein, positioned in select locations on the bit with respect to primary cutters in order to prolong the usable service life of the cutters by limiting vibrational effects and dysfunctional energy during drilling. In this regard, it is understood that varying backrake and siderake angles of the backup cutters in relationship to the primary cutters or other backup cutters provides for improved balancing of cutter forces and promotes a smoother work rate for the drill bit as describe herein above. Accordingly, by varying backrake and siderake angles of the backup cutters in the profile of the cutting element provides for enhanced vibration mitigation during formation drilling, particularly when dynamic dysfunctions occur, and increased cutting action as the cutting elements wear.
- In the embodiments of the invention described above, select backup cutters for placement upon a rotary drag bit have been explored. Particularly, select backup cutters placed upon the same blade of the rotary drag bit as with the primary or secondary cutters to which they are associated. It is recognized that a backup cutter may, optionally, be placed upon a blade different from the blade to which the primary or secondary cutter is associated. In this respect, a primary or a secondary cutter may be placed upon one blade and a backup cutter may be placed upon another blade.
- While particular embodiments of the invention have been shown and described, numerous variations and alternate embodiments will occur to those skilled in the art. Accordingly, it is intended that the invention be limited only in terms of the appended claims and their legal equivalents.
Claims (29)
1. A rotary drag bit, comprising:
a bit body with a face and an axis;
a plurality of blades extending radially and longitudinally outward over the face; and
at least one split cutter set comprising a plurality of cutters, at least two cutters of the plurality of cutters are located on different blades of the plurality of blades, each cutter of the plurality of cutters including a cutting surface protruding at least partially from one blade of the plurality of blades and located to substantially traverse a common cutting path on rotation of the bit body about the axis, and configured to conditionally engage a formation on movement along the common cutting path.
2. The rotary drag bit of claim 1 , wherein the plurality of blades comprises at least one primary blade and at least one secondary blade.
3. The rotary drag bit of claim 1 , wherein the at least one split cutter set comprises at least one of an opposing kerfing and backup cutter set, a trailing kerfing and leading backup cutter set, an opposing kerfing and leading backup cutter set, a trailing kerfing and trailing backup cutter set, and an opposing kerfing and trailing backup cutter set.
4. The rotary drag bit of claim 1 , wherein the at least one split cutter set is configured with at least one cutter of the at least two cutters rotationally trailing another cutter of the at least two cutters.
5. The rotary drag bit of claim 1 , wherein the at least one split cutter set is configured with at least one cutter of the at least two cutters rotationally opposing another cutter of the at least two cutters.
6. The rotary drag bit of claim 1 , wherein the plurality of cutters of the at least one split cutter set are primary cutters, and the split cutter set further comprises at least one backup cutter including a cutting surface protruding at least partially from one of the plurality of blades, located to substantially traverse the common cutting path on rotation of the bit body about the axis, and configured to selectively engage a formation on movement along the cutting path.
7. The rotary drag bit of claim 6 , wherein the at least one backup cutter comprises a plurality of backup cutters, at least one backup cutter of the plurality of backup cutters configured to rotationally trail a corresponding primary cutter, and at least another backup cutter of the plurality of backup cutters configured to rotationally trail another corresponding primary cutter.
8. The rotary drag bit of claim 6 , wherein the at least one backup cutter comprises a plurality of backup cutters, at least one backup cutter of the plurality of backup cutters configured to rotationally oppose a corresponding primary cutter, and at least another backup cutter of the plurality of backup cutters configured to rotationally oppose another corresponding primary cutter.
9. The rotary drag bit of claim 6 , wherein the at least one backup cutter comprises a plurality of backup cutters, at least one backup cutter of the plurality of backup cutters configured to rotationally lead a corresponding primary cutter, and at least another backup cutter of the plurality of backup cutters configured to rotationally lead another corresponding primary cutter.
10. The rotary drag bit of claim 6 , wherein the at least one backup cutter protrudes at least partially from one of the plurality of blades rotationally trailing, opposing, or leading another of the plurality of blades comprising at least one of the primary cutters of the split cutler set.
11. The rotary drag bit of claim 6 , wherein the at least one backup cutter is underexposed relative to either of the primary cutters of the split cutter set.
12. A rotary drag bit, comprising:
a bit body with a face and an axis;
a plurality of blades extending radially and longitudinally outward over the face; and
at least one split cutter set comprising a plurality of primary cutters on at least two of the plurality of blades, each primary cutter comprising a cutting surface protruding at least partially from a blade, located to substantially traverse a common cutting path on rotation of the bit body about the axis, and configured to engage a formation on movement along the cutting path.
13. The rotary drag bit of claim 12 , wherein each of the plurality of primary cutters is configured to engage a formation with the same extent of exposure.
14. The rotary drag bit of claim 12 , wherein the at least one split cutter set comprises at least one of an opposing kerfing and backup cutter set, a trailing kerfing and leading backup cutter set, an opposing kerfing and leading backup cutter set, a trailing kerfing and trailing backup cutter set, and an opposing kerfing and trailing backup cutter set.
15. The rotary drag bit of claim 12 , wherein the at least one split cutter set is configured with one of the plurality of primary cutters rotationally trailing, opposing or leading the other of the plurality of the primary cutters.
16. The rotary drag bit of claim 1 , wherein the split cutter set further comprises a plurality of backup cutters, each backup cutter including a cutting surface protruding at least partially from one of the plurality of blades, located to substantially traverse the common cutting path on rotation of the bit body about the axis, and configured to selectively engage a formation on movement along the cutting path.
17. The rotary drag bit of claim 16 , wherein at least one backup cutter of the plurality of backup cutters is configured to rotationally trail, oppose, or lead a corresponding primary cutter, and at least another backup cutter of the plurality of backup cutters is configured to rotationally trail, oppose, or lead another corresponding primary cutter.
18. A rotary drag bit, comprising:
a bit body with a face and an axis;
a plurality of blades including a first blade and a second blade, each extending radially and longitudinally outward over the face;
a first primary cutter including a cutting surface protruding at least partially from the first blade, located to traverse a cutting path on rotation of the bit body about the axis, and configured to engage a formation on movement along the cutting path; and
a second primary cutter including a cutting surface protruding at least partially from the second blade, located to substantially traverse the common cutting path on rotation of the bit body about the axis, and configured to engage a formation on movement along the cutting path.
19. The rotary drag bit of claim 18 , wherein the first blade rotationally trails the second blade.
20. The rotary drag bit of claim 18 , wherein the first blade rotationally opposes the second blade.
21. The rotary drag bit of claim 18 , further comprising a backup cutter, the backup cutter including a cutting surface protruding at least partially from one of the plurality of blades, located to substantially traverse the common cutting path on rotation of the bit body about the axis, and configured to selectively engage a formation on movement along the cutting path.
22. The rotary drag bit of claim 21 , wherein the backup cutter protrudes at least partially from a third blade of the plurality of blades, the third blade rotationally trailing or opposing the second blade.
23. The rotary drag bit of claim 21 , wherein the backup cutter protrudes at least partially from a third blade of the plurality of blades, the third blade rotationally trailing or leading the second blade and the first blade.
24. A rotary drag bit, comprising:
a bit body with a face and an axis;
a plurality of blades including a first blade, a second blade, a third blade, and fourth blade, each extending radially and longitudinally outward from the face;
a first primary cutter including a cutting surface protruding at least partially from the first blade, located to traverse a cutting path on rotation of the bit body about the axis, and configured to engage a formation on movement along the cutting path;
a second primary cutter including a cutting surface protruding at least partially from the second blade, located to substantially traverse the common cutting path on rotation of the bit body about the axis, and configured to engage a formation on movement along the cutting path;
a first backup cutter including a cutting surface protruding at least partially from one of the first blade, the third blade or the fourth blade, located to substantially traverse the common cutting path on rotation of the bit body about the axis, and configured to selectively engage a formation on movement along the cutting path; and
a second backup cutter including a cutting surface protruding at least partially from one of one of the second blade, the third blade or the fourth blade, located to substantially traverse the common cutting path on rotation of the bit body about the axis, and configured to selectively engage a formation on movement along the cutting path.
25. The rotary drag bit of claim 24 , wherein the first backup cutter and the second backup cutter are underexposed with respect to the first primary cutter and the second primary cutter.
26. A method of designing a rotary drag bit, comprising:
configuring a bit body having a face and an axis, and a plurality of blades extending radially and longitudinally outward over the face; and
configuring at least one split cutter set comprising a plurality of cutters on the plurality of blades, at least two cutters of the plurality of cutters are located on different blades of the plurality of blades, each cutter of the plurality of cutters includes a cutting surface protruding at least partially from one of the plurality of blades and located to substantially traverse a common cutting path on rotation of the bit body about the axis, and configured to engage a formation on movement along the cutting path.
27. The method of claim 26 , wherein configuring the at least one split cutter set is configuring at least one of an opposing kerfing and backup cutter set, a trailing kerfing and leading backup cutter set, an opposing kerfing and leading backup cutter set, a trailing kerfing and trailing backup cutter set, and an opposing kerfing and trailing backup cutter set.
28. A method of using a rotary drag bit, comprising:
disposing a rotary drag bit to drill a borehole, the rotary drag bit comprising a bit body having a face and an axis, and a plurality of blades extending radially and longitudinally outward over the face; and at least one split cutter set comprising a plurality of cutters on the plurality of blades, at least two cutters of the plurality of cutters are located on different blades of the plurality of blades, each cutter of the plurality of cutters includes a cutting surface protruding at least partially from one of the plurality of blades and located to substantially traverse a common cutting path on rotation of the bit body about the axis, and configured to engage a formation on movement along the cutting path; and
drilling the borehole with the rotary drag bit.
29. The method of claim 28 , wherein disposing the rotary drag bit to drill a borehole comprises disposing the rotary drag bit to drill a borehole having the at least one split cutter set configured as at least one of an opposing kerfing and backup cutter set, a trailing kerfing and leading backup cutter set, an opposing kerfing and leading backup cutter set, a trailing kerfing and trailing backup cutter set, and an opposing kerfing and trailing backup cutter set.
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Cited By (21)
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---|---|---|---|---|
US20070106487A1 (en) * | 2005-11-08 | 2007-05-10 | David Gavia | Methods for optimizing efficiency and durability of rotary drag bits and rotary drag bits designed for optimal efficiency and durability |
US20080135297A1 (en) * | 2006-12-07 | 2008-06-12 | David Gavia | Rotary drag bits having a pilot cutter configuraton and method to pre-fracture subterranean formations therewith |
US20080142271A1 (en) * | 2004-09-09 | 2008-06-19 | Baker Hughes Incorporated | Methods of designing rotary drill bits including at least one substantially helically extending feature |
US20080179106A1 (en) * | 2007-01-25 | 2008-07-31 | Baker Hughes Incorporated | Rotary drag bit |
US20090266619A1 (en) * | 2008-04-01 | 2009-10-29 | Smith International, Inc. | Fixed Cutter Bit With Backup Cutter Elements on Secondary Blades |
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US20100155151A1 (en) * | 2008-12-19 | 2010-06-24 | Varel International | Multi-set pdc drill bit and method |
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US20110155472A1 (en) * | 2009-12-28 | 2011-06-30 | Baker Hughes Incorporated | Earth-boring tools having differing cutting elements on a blade and related methods |
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US20110259606A1 (en) * | 2004-02-19 | 2011-10-27 | Baker Hughes Incorporated | Casing shoes having drillable and non-drillable cutting elements in different regions and related methods |
US20120138365A1 (en) * | 2010-12-06 | 2012-06-07 | Varel International, Ind., L.P. | Shoulder durability enhancement for a pdc drill bit using secondary and tertiary cutting elements |
US20120222902A1 (en) * | 2011-03-01 | 2012-09-06 | Alsup Shelton W | High performance wellbore departure and drilling system |
US8851207B2 (en) | 2011-05-05 | 2014-10-07 | Baker Hughes Incorporated | Earth-boring tools and methods of forming such earth-boring tools |
US20140360789A1 (en) * | 2011-12-29 | 2014-12-11 | Smith International, Inc. | Spacing of rolling cutters on a fixed cutter bit |
US8991526B2 (en) | 2009-01-30 | 2015-03-31 | Drilformance Technologies, Llc | Drill bit |
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US20160290055A1 (en) * | 2013-12-18 | 2016-10-06 | Halliburton Energy Services, Inc. | Cutting structure design with new backup cutter methodology |
WO2019022971A1 (en) * | 2017-07-25 | 2019-01-31 | Halliburton Energy Services, Inc. | Fixed-cutter drill bits with track-set primary cutters and backup cutters |
US10710148B2 (en) | 2017-02-27 | 2020-07-14 | Baker Hughes, A Ge Company, Llc | Methods of forming forged fixed-cutter earth-boring drill bit bodies |
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Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
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US8915166B2 (en) * | 2007-07-27 | 2014-12-23 | Varel International Ind., L.P. | Single mold milling process |
US7730976B2 (en) * | 2007-10-31 | 2010-06-08 | Baker Hughes Incorporated | Impregnated rotary drag bit and related methods |
US9016407B2 (en) * | 2007-12-07 | 2015-04-28 | Smith International, Inc. | Drill bit cutting structure and methods to maximize depth-of-cut for weight on bit applied |
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US20100025121A1 (en) * | 2008-07-30 | 2010-02-04 | Thorsten Schwefe | Earth boring drill bits with using opposed kerfing for cutters |
US8720609B2 (en) * | 2008-10-13 | 2014-05-13 | Baker Hughes Incorporated | Drill bit with continuously sharp edge cutting elements |
US20100108402A1 (en) * | 2008-10-31 | 2010-05-06 | Baker Hughes Incorporated | Downhole cutting tool and method of making |
US8016050B2 (en) * | 2008-11-03 | 2011-09-13 | Baker Hughes Incorporated | Methods and apparatuses for estimating drill bit cutting effectiveness |
CA3037699A1 (en) | 2008-12-11 | 2010-06-17 | Halliburton Energy Services, Inc. | Multilevel force balanced downhole drilling tools and methods |
US8047307B2 (en) | 2008-12-19 | 2011-11-01 | Baker Hughes Incorporated | Hybrid drill bit with secondary backup cutters positioned with high side rake angles |
US20100175929A1 (en) * | 2009-01-09 | 2010-07-15 | Baker Hughes Incorporated | Cutter profile helping in stability and steerability |
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US8028764B2 (en) * | 2009-02-24 | 2011-10-04 | Baker Hughes Incorporated | Methods and apparatuses for estimating drill bit condition |
US8087478B2 (en) * | 2009-06-05 | 2012-01-03 | Baker Hughes Incorporated | Cutting elements including cutting tables with shaped faces configured to provide continuous effective positive back rake angles, drill bits so equipped and methods of drilling |
GB2503826B (en) | 2009-07-01 | 2014-02-26 | Smith International | Stabilizing members for fixed cutter drill bit |
US8079428B2 (en) | 2009-07-02 | 2011-12-20 | Baker Hughes Incorporated | Hardfacing materials including PCD particles, welding rods and earth-boring tools including such materials, and methods of forming and using same |
US20110005841A1 (en) * | 2009-07-07 | 2011-01-13 | Baker Hughes Incorporated | Backup cutting elements on non-concentric reaming tools |
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EP2481525A3 (en) | 2009-07-27 | 2013-10-02 | Baker Hughes Incorporated | Abrasive article |
US8127869B2 (en) | 2009-09-28 | 2012-03-06 | Baker Hughes Incorporated | Earth-boring tools, methods of making earth-boring tools and methods of drilling with earth-boring tools |
US20110100714A1 (en) * | 2009-10-29 | 2011-05-05 | Moss William A | Backup cutting elements on non-concentric earth-boring tools and related methods |
SA111320374B1 (en) | 2010-04-14 | 2015-08-10 | بيكر هوغيس انكوبوريتد | Method Of Forming Polycrystalline Diamond From Derivatized Nanodiamond |
US20120312603A1 (en) * | 2011-06-09 | 2012-12-13 | National Oilwell DHT, L.P. | Optimization of drill bit cutting structure |
US20140374169A1 (en) * | 2011-12-30 | 2014-12-25 | Smith International, Inc. | Retention of multiple rolling cutters |
US9493991B2 (en) | 2012-04-02 | 2016-11-15 | Baker Hughes Incorporated | Cutting structures, tools for use in subterranean boreholes including cutting structures and related methods |
US9464490B2 (en) * | 2012-05-03 | 2016-10-11 | Smith International, Inc. | Gage cutter protection for drilling bits |
CA2875021C (en) | 2012-05-30 | 2017-05-23 | Halliburton Energy Services, Inc. | Rotary drill bit and method for designing a rotary drill bit for directional and horizontal drilling |
WO2014011197A1 (en) * | 2012-07-13 | 2014-01-16 | Halliburton Energy Services, Inc. | Rotary drill bits with back-up cutiing elements to optimize bit life |
US9187958B2 (en) * | 2012-08-14 | 2015-11-17 | Chevron U.S.A. Inc. | Reamer with improved performance characteristics in hard and abrasive formations |
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CN103089156B (en) * | 2013-02-07 | 2015-07-08 | 杨立源 | Composite drill bit with cutter blade provided with cutter disk cutting structure |
US9140072B2 (en) | 2013-02-28 | 2015-09-22 | Baker Hughes Incorporated | Cutting elements including non-planar interfaces, earth-boring tools including such cutting elements, and methods of forming cutting elements |
US9475131B2 (en) | 2013-06-13 | 2016-10-25 | Kennametal Inc. | Milling cutter with stress reliefs |
WO2015084394A1 (en) | 2013-12-06 | 2015-06-11 | Halliburton Energy Services, Inc. | Rotary drill bit including multi-layer cutting elements |
CA2931408C (en) | 2013-12-26 | 2019-11-26 | Halliburton Energy Services, Inc. | Multilevel force balanced downhole drilling tools including cutting elements in a track-set configuration |
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WO2015127123A1 (en) | 2014-02-20 | 2015-08-27 | Ulterra Drilling Technologies, L.P. | Drill bit |
CA2952937C (en) | 2014-06-18 | 2023-06-27 | Ulterra Drilling Technologies, L.P. | Drill bit |
US11015394B2 (en) | 2014-06-18 | 2021-05-25 | Ulterra Drilling Technologies, Lp | Downhole tool with fixed cutters for removing rock |
WO2016019115A1 (en) | 2014-07-30 | 2016-02-04 | Baker Hughes Incorporated | Earth-boring tools, methods of forming earth-boring tools, and methods of forming a borehole in a subterranean formation |
US20160312538A1 (en) * | 2015-04-21 | 2016-10-27 | Shear Bits, Ltd. | Wellbore drill bit having shear cutters and gouging cutters |
WO2017105806A1 (en) * | 2015-12-18 | 2017-06-22 | Smith International, Inc. | Placement of non-planar cutting elements |
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US10344537B2 (en) * | 2016-07-28 | 2019-07-09 | Baker Hughes Incorporated | Earth-boring tools, methods of forming earth-boring tools, and methods of forming a borehole in a subterranean formation |
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US10954721B2 (en) | 2018-06-11 | 2021-03-23 | Baker Hughes Holdings Llc | Earth-boring tools and related methods |
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WO2020122924A1 (en) * | 2018-12-13 | 2020-06-18 | Halliburton Energy Services, Inc. | Rotary drill bit including multi-layer cutting elements |
WO2020180330A1 (en) * | 2019-03-07 | 2020-09-10 | Halliburton Energy Services, Inc. | Shaped cutter arrangements |
RU2717852C1 (en) * | 2019-04-09 | 2020-03-26 | Общество с ограниченной ответственностью "Химбурсервис" | Pdc drill bit for fluid absorption zone drilling |
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USD921703S1 (en) * | 2019-11-20 | 2021-06-08 | The Charles Machine Works, Inc. | Trail cutter |
CN113430315A (en) * | 2021-06-15 | 2021-09-24 | 安徽长江钢铁股份有限公司 | Mud drill sleeve |
CN113404436B (en) * | 2021-07-29 | 2022-08-09 | 东北石油大学 | Directional double-tooth self-balancing PDC drill bit suitable for soft and hard interlayer |
CN116517475B (en) * | 2023-06-30 | 2023-10-03 | 西南石油大学 | Novel wear-resistant and anti-collision beak-shaped tooth multi-blade PDC drill bit |
CN116988739B (en) * | 2023-09-26 | 2023-12-26 | 西南石油大学 | High-density PDC drill bit with longitudinal teeth distributed |
Citations (58)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US3707747A (en) * | 1970-01-31 | 1973-01-02 | Deutsche Edelstahlwerke Ag | Insert for cutting tool |
US4471845A (en) * | 1981-04-01 | 1984-09-18 | Christensen, Inc. | Rotary drill bit |
US4538690A (en) * | 1983-02-22 | 1985-09-03 | Nl Industries, Inc. | PDC cutter and bit |
US4602691A (en) * | 1984-06-07 | 1986-07-29 | Hughes Tool Company | Diamond drill bit with varied cutting elements |
US4815342A (en) * | 1987-12-15 | 1989-03-28 | Amoco Corporation | Method for modeling and building drill bits |
US4892159A (en) * | 1988-11-29 | 1990-01-09 | Exxon Production Research Company | Kerf-cutting apparatus and method for improved drilling rates |
US4981184A (en) * | 1988-11-21 | 1991-01-01 | Smith International, Inc. | Diamond drag bit for soft formations |
US5010789A (en) * | 1989-02-21 | 1991-04-30 | Amoco Corporation | Method of making imbalanced compensated drill bit |
US5119892A (en) * | 1989-11-25 | 1992-06-09 | Reed Tool Company Limited | Notary drill bits |
US5131478A (en) * | 1989-02-21 | 1992-07-21 | Brett J Ford | Low friction subterranean drill bit and related methods |
US5145017A (en) * | 1991-01-07 | 1992-09-08 | Exxon Production Research Company | Kerf-cutting apparatus for increased drilling rates |
US5238075A (en) * | 1992-06-19 | 1993-08-24 | Dresser Industries, Inc. | Drill bit with improved cutter sizing pattern |
USRE34435E (en) * | 1989-04-10 | 1993-11-09 | Amoco Corporation | Whirl resistant bit |
US5314033A (en) * | 1992-02-18 | 1994-05-24 | Baker Hughes Incorporated | Drill bit having combined positive and negative or neutral rake cutters |
US5332051A (en) * | 1991-10-09 | 1994-07-26 | Smith International, Inc. | Optimized PDC cutting shape |
US5443565A (en) * | 1994-07-11 | 1995-08-22 | Strange, Jr.; William S. | Drill bit with forward sweep cutting elements |
US5531281A (en) * | 1993-07-16 | 1996-07-02 | Camco Drilling Group Ltd. | Rotary drilling tools |
US5549171A (en) * | 1994-08-10 | 1996-08-27 | Smith International, Inc. | Drill bit with performance-improving cutting structure |
US5582261A (en) * | 1994-08-10 | 1996-12-10 | Smith International, Inc. | Drill bit having enhanced cutting structure and stabilizing features |
US5595252A (en) * | 1994-07-28 | 1997-01-21 | Flowdril Corporation | Fixed-cutter drill bit assembly and method |
US5607025A (en) * | 1995-06-05 | 1997-03-04 | Smith International, Inc. | Drill bit and cutting structure having enhanced placement and sizing of cutters for improved bit stabilization |
US5722499A (en) * | 1995-08-22 | 1998-03-03 | Smith International, Inc. | Multiple diamond layer polycrystalline diamond composite cutters |
US5816346A (en) * | 1996-06-06 | 1998-10-06 | Camco International, Inc. | Rotary drill bits and methods of designing such drill bits |
US5904213A (en) * | 1995-10-10 | 1999-05-18 | Camco International (Uk) Limited | Rotary drill bits |
US5937958A (en) * | 1997-02-19 | 1999-08-17 | Smith International, Inc. | Drill bits with predictable walk tendencies |
US5957227A (en) * | 1996-11-20 | 1999-09-28 | Total | Blade-equipped drilling tool, incorporating secondary cutting edges and passages designed for the removal of evacuated material |
US6123161A (en) * | 1997-06-14 | 2000-09-26 | Camco International (Uk) Limited | Rotary drill bits |
US6283233B1 (en) * | 1996-12-16 | 2001-09-04 | Dresser Industries, Inc | Drilling and/or coring tool |
US6296930B1 (en) * | 1998-06-08 | 2001-10-02 | Sumitomo Chemical Company, Limited | Aromatic liquid crystalline polyester resin and resin composition thereof |
US6298930B1 (en) * | 1999-08-26 | 2001-10-09 | Baker Hughes Incorporated | Drill bits with controlled cutter loading and depth of cut |
US6308790B1 (en) * | 1999-12-22 | 2001-10-30 | Smith International, Inc. | Drag bits with predictable inclination tendencies and behavior |
US6349780B1 (en) * | 2000-08-11 | 2002-02-26 | Baker Hughes Incorporated | Drill bit with selectively-aggressive gage pads |
US6394200B1 (en) * | 1999-10-28 | 2002-05-28 | Camco International (U.K.) Limited | Drillout bi-center bit |
US6408958B1 (en) * | 2000-10-23 | 2002-06-25 | Baker Hughes Incorporated | Superabrasive cutting assemblies including cutters of varying orientations and drill bits so equipped |
US6460631B2 (en) * | 1999-08-26 | 2002-10-08 | Baker Hughes Incorporated | Drill bits with reduced exposure of cutters |
US6510906B1 (en) * | 1999-11-29 | 2003-01-28 | Baker Hughes Incorporated | Impregnated bit with PDC cutters in cone area |
US6536543B2 (en) * | 2000-12-06 | 2003-03-25 | Baker Hughes Incorporated | Rotary drill bits exhibiting sequences of substantially continuously variable cutter backrake angles |
US6564886B1 (en) * | 1996-09-25 | 2003-05-20 | Smith International, Inc. | Drill bit with rows of cutters mounted to present a serrated cutting edge |
US6659207B2 (en) * | 1999-06-30 | 2003-12-09 | Smith International, Inc. | Bi-centered drill bit having enhanced casing drill-out capability and improved directional stability |
US6729420B2 (en) * | 2002-03-25 | 2004-05-04 | Smith International, Inc. | Multi profile performance enhancing centric bit and method of bit design |
US6883623B2 (en) * | 2002-10-09 | 2005-04-26 | Baker Hughes Incorporated | Earth boring apparatus and method offering improved gage trimmer protection |
US7000715B2 (en) * | 1997-09-08 | 2006-02-21 | Baker Hughes Incorporated | Rotary drill bits exhibiting cutting element placement for optimizing bit torque and cutter life |
US20060070771A1 (en) * | 2004-02-19 | 2006-04-06 | Mcclain Eric E | Earth boring drill bits with casing component drill out capability and methods of use |
US7025156B1 (en) * | 1997-11-18 | 2006-04-11 | Douglas Caraway | Rotary drill bit for casting milling and formation drilling |
US20060162968A1 (en) * | 2005-01-24 | 2006-07-27 | Smith International, Inc. | PDC drill bit using optimized side rake distribution that minimized vibration and deviation |
US20060180356A1 (en) * | 2005-01-24 | 2006-08-17 | Smith International, Inc. | PDC drill bit using optimized side rake angle |
US7178609B2 (en) * | 2003-08-19 | 2007-02-20 | Baker Hughes Incorporated | Window mill and drill bit |
US20070070771A1 (en) * | 2005-09-29 | 2007-03-29 | Danfoss Compressors Gmbh | Method and a control unit for controlling a power level |
US20070144789A1 (en) * | 2005-10-25 | 2007-06-28 | Simon Johnson | Representation of whirl in fixed cutter drill bits |
US7243745B2 (en) * | 2004-07-28 | 2007-07-17 | Baker Hughes Incorporated | Cutting elements and rotary drill bits including same |
US20070240905A1 (en) * | 2006-04-18 | 2007-10-18 | Varel International, Ltd. | Drill bit with multiple cutter geometries |
US20070267227A1 (en) * | 2006-05-08 | 2007-11-22 | Varel International Ind., L.P. | Drill bit with staged durability, stability and rop characteristics |
US20080135297A1 (en) * | 2006-12-07 | 2008-06-12 | David Gavia | Rotary drag bits having a pilot cutter configuraton and method to pre-fracture subterranean formations therewith |
US20080179106A1 (en) * | 2007-01-25 | 2008-07-31 | Baker Hughes Incorporated | Rotary drag bit |
US7594554B2 (en) * | 2006-02-23 | 2009-09-29 | Baker Hughes Incorporated | Cutting element insert for backup cutters in rotary drill bits, rotary drill bits so equipped, and methods of manufacture therefor |
US20090266619A1 (en) * | 2008-04-01 | 2009-10-29 | Smith International, Inc. | Fixed Cutter Bit With Backup Cutter Elements on Secondary Blades |
US7621348B2 (en) * | 2006-10-02 | 2009-11-24 | Smith International, Inc. | Drag bits with dropping tendencies and methods for making the same |
US20100000800A1 (en) * | 2007-01-31 | 2010-01-07 | Shilin Chen | Rotary Drill Bits with Protected Cutting Elements and Methods |
Family Cites Families (3)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US5551522A (en) | 1994-10-12 | 1996-09-03 | Smith International, Inc. | Drill bit having stability enhancing cutting structure |
US6089336A (en) * | 1995-10-10 | 2000-07-18 | Camco International (Uk) Limited | Rotary drill bits |
US20070261890A1 (en) | 2006-05-10 | 2007-11-15 | Smith International, Inc. | Fixed Cutter Bit With Centrally Positioned Backup Cutter Elements |
-
2008
- 2008-01-24 RU RU2009131831/03A patent/RU2009131831A/en unknown
- 2008-01-24 EP EP08724767A patent/EP2118430A2/en not_active Withdrawn
- 2008-01-24 CN CN200880006161A patent/CN101622421A/en active Pending
- 2008-01-24 WO PCT/US2008/000914 patent/WO2008091654A2/en active Application Filing
- 2008-01-24 CA CA2675070A patent/CA2675070C/en not_active Expired - Fee Related
- 2008-01-25 US US12/020,492 patent/US7762355B2/en active Active
- 2008-01-25 CN CN200880006237A patent/CN101627178A/en active Pending
- 2008-01-25 WO PCT/US2008/052108 patent/WO2008092113A2/en active Application Filing
- 2008-01-25 CN CN200880006207A patent/CN101622422A/en active Pending
- 2008-01-25 WO PCT/US2008/052128 patent/WO2008092130A1/en active Application Filing
- 2008-01-25 CA CA002675269A patent/CA2675269A1/en not_active Abandoned
- 2008-01-25 EP EP08728351A patent/EP2118432A1/en not_active Withdrawn
- 2008-01-25 RU RU2009131829/03A patent/RU2009131829A/en unknown
- 2008-01-25 US US12/019,814 patent/US7861809B2/en active Active
- 2008-01-25 EP EP08728331A patent/EP2111494A2/en not_active Withdrawn
- 2008-01-25 CA CA2675270A patent/CA2675270C/en not_active Expired - Fee Related
- 2008-01-25 US US12/020,399 patent/US20080179107A1/en not_active Abandoned
Patent Citations (65)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US3707747A (en) * | 1970-01-31 | 1973-01-02 | Deutsche Edelstahlwerke Ag | Insert for cutting tool |
US4471845A (en) * | 1981-04-01 | 1984-09-18 | Christensen, Inc. | Rotary drill bit |
US4538690A (en) * | 1983-02-22 | 1985-09-03 | Nl Industries, Inc. | PDC cutter and bit |
US4602691A (en) * | 1984-06-07 | 1986-07-29 | Hughes Tool Company | Diamond drill bit with varied cutting elements |
US4815342A (en) * | 1987-12-15 | 1989-03-28 | Amoco Corporation | Method for modeling and building drill bits |
US4981184A (en) * | 1988-11-21 | 1991-01-01 | Smith International, Inc. | Diamond drag bit for soft formations |
US4892159A (en) * | 1988-11-29 | 1990-01-09 | Exxon Production Research Company | Kerf-cutting apparatus and method for improved drilling rates |
US5010789A (en) * | 1989-02-21 | 1991-04-30 | Amoco Corporation | Method of making imbalanced compensated drill bit |
US5131478A (en) * | 1989-02-21 | 1992-07-21 | Brett J Ford | Low friction subterranean drill bit and related methods |
USRE34435E (en) * | 1989-04-10 | 1993-11-09 | Amoco Corporation | Whirl resistant bit |
US5119892A (en) * | 1989-11-25 | 1992-06-09 | Reed Tool Company Limited | Notary drill bits |
US5145017A (en) * | 1991-01-07 | 1992-09-08 | Exxon Production Research Company | Kerf-cutting apparatus for increased drilling rates |
US5332051A (en) * | 1991-10-09 | 1994-07-26 | Smith International, Inc. | Optimized PDC cutting shape |
US5314033A (en) * | 1992-02-18 | 1994-05-24 | Baker Hughes Incorporated | Drill bit having combined positive and negative or neutral rake cutters |
US5238075A (en) * | 1992-06-19 | 1993-08-24 | Dresser Industries, Inc. | Drill bit with improved cutter sizing pattern |
US5531281A (en) * | 1993-07-16 | 1996-07-02 | Camco Drilling Group Ltd. | Rotary drilling tools |
US5443565A (en) * | 1994-07-11 | 1995-08-22 | Strange, Jr.; William S. | Drill bit with forward sweep cutting elements |
US5595252A (en) * | 1994-07-28 | 1997-01-21 | Flowdril Corporation | Fixed-cutter drill bit assembly and method |
US5549171A (en) * | 1994-08-10 | 1996-08-27 | Smith International, Inc. | Drill bit with performance-improving cutting structure |
US5582261A (en) * | 1994-08-10 | 1996-12-10 | Smith International, Inc. | Drill bit having enhanced cutting structure and stabilizing features |
US5607025A (en) * | 1995-06-05 | 1997-03-04 | Smith International, Inc. | Drill bit and cutting structure having enhanced placement and sizing of cutters for improved bit stabilization |
US5722499A (en) * | 1995-08-22 | 1998-03-03 | Smith International, Inc. | Multiple diamond layer polycrystalline diamond composite cutters |
US5904213A (en) * | 1995-10-10 | 1999-05-18 | Camco International (Uk) Limited | Rotary drill bits |
US5967246A (en) * | 1995-10-10 | 1999-10-19 | Camco International (Uk) Limited | Rotary drill bits |
US5992547A (en) * | 1995-10-10 | 1999-11-30 | Camco International (Uk) Limited | Rotary drill bits |
US5816346A (en) * | 1996-06-06 | 1998-10-06 | Camco International, Inc. | Rotary drill bits and methods of designing such drill bits |
US6564886B1 (en) * | 1996-09-25 | 2003-05-20 | Smith International, Inc. | Drill bit with rows of cutters mounted to present a serrated cutting edge |
US5957227A (en) * | 1996-11-20 | 1999-09-28 | Total | Blade-equipped drilling tool, incorporating secondary cutting edges and passages designed for the removal of evacuated material |
US6283233B1 (en) * | 1996-12-16 | 2001-09-04 | Dresser Industries, Inc | Drilling and/or coring tool |
US5937958A (en) * | 1997-02-19 | 1999-08-17 | Smith International, Inc. | Drill bits with predictable walk tendencies |
US6123161A (en) * | 1997-06-14 | 2000-09-26 | Camco International (Uk) Limited | Rotary drill bits |
US7000715B2 (en) * | 1997-09-08 | 2006-02-21 | Baker Hughes Incorporated | Rotary drill bits exhibiting cutting element placement for optimizing bit torque and cutter life |
US7025156B1 (en) * | 1997-11-18 | 2006-04-11 | Douglas Caraway | Rotary drill bit for casting milling and formation drilling |
US6296930B1 (en) * | 1998-06-08 | 2001-10-02 | Sumitomo Chemical Company, Limited | Aromatic liquid crystalline polyester resin and resin composition thereof |
US6659207B2 (en) * | 1999-06-30 | 2003-12-09 | Smith International, Inc. | Bi-centered drill bit having enhanced casing drill-out capability and improved directional stability |
US6298930B1 (en) * | 1999-08-26 | 2001-10-09 | Baker Hughes Incorporated | Drill bits with controlled cutter loading and depth of cut |
US6460631B2 (en) * | 1999-08-26 | 2002-10-08 | Baker Hughes Incorporated | Drill bits with reduced exposure of cutters |
US7096978B2 (en) * | 1999-08-26 | 2006-08-29 | Baker Hughes Incorporated | Drill bits with reduced exposure of cutters |
US6779613B2 (en) * | 1999-08-26 | 2004-08-24 | Baker Hughes Incorporated | Drill bits with controlled exposure of cutters |
US6935441B2 (en) * | 1999-08-26 | 2005-08-30 | Baker Hughes Incorporated | Drill bits with reduced exposure of cutters |
US6394200B1 (en) * | 1999-10-28 | 2002-05-28 | Camco International (U.K.) Limited | Drillout bi-center bit |
US6510906B1 (en) * | 1999-11-29 | 2003-01-28 | Baker Hughes Incorporated | Impregnated bit with PDC cutters in cone area |
US6308790B1 (en) * | 1999-12-22 | 2001-10-30 | Smith International, Inc. | Drag bits with predictable inclination tendencies and behavior |
US6349780B1 (en) * | 2000-08-11 | 2002-02-26 | Baker Hughes Incorporated | Drill bit with selectively-aggressive gage pads |
US6408958B1 (en) * | 2000-10-23 | 2002-06-25 | Baker Hughes Incorporated | Superabrasive cutting assemblies including cutters of varying orientations and drill bits so equipped |
US6711969B2 (en) * | 2000-12-06 | 2004-03-30 | Baker Hughes Incorporated | Methods for designing rotary drill bits exhibiting sequences of substantially continuously variable cutter backrake angles |
US6536543B2 (en) * | 2000-12-06 | 2003-03-25 | Baker Hughes Incorporated | Rotary drill bits exhibiting sequences of substantially continuously variable cutter backrake angles |
US6729420B2 (en) * | 2002-03-25 | 2004-05-04 | Smith International, Inc. | Multi profile performance enhancing centric bit and method of bit design |
US6883623B2 (en) * | 2002-10-09 | 2005-04-26 | Baker Hughes Incorporated | Earth boring apparatus and method offering improved gage trimmer protection |
US7178609B2 (en) * | 2003-08-19 | 2007-02-20 | Baker Hughes Incorporated | Window mill and drill bit |
US20060070771A1 (en) * | 2004-02-19 | 2006-04-06 | Mcclain Eric E | Earth boring drill bits with casing component drill out capability and methods of use |
US7243745B2 (en) * | 2004-07-28 | 2007-07-17 | Baker Hughes Incorporated | Cutting elements and rotary drill bits including same |
US20060162968A1 (en) * | 2005-01-24 | 2006-07-27 | Smith International, Inc. | PDC drill bit using optimized side rake distribution that minimized vibration and deviation |
US20060180356A1 (en) * | 2005-01-24 | 2006-08-17 | Smith International, Inc. | PDC drill bit using optimized side rake angle |
US20070070771A1 (en) * | 2005-09-29 | 2007-03-29 | Danfoss Compressors Gmbh | Method and a control unit for controlling a power level |
US20070144789A1 (en) * | 2005-10-25 | 2007-06-28 | Simon Johnson | Representation of whirl in fixed cutter drill bits |
US7594554B2 (en) * | 2006-02-23 | 2009-09-29 | Baker Hughes Incorporated | Cutting element insert for backup cutters in rotary drill bits, rotary drill bits so equipped, and methods of manufacture therefor |
US20070240905A1 (en) * | 2006-04-18 | 2007-10-18 | Varel International, Ltd. | Drill bit with multiple cutter geometries |
US20070267227A1 (en) * | 2006-05-08 | 2007-11-22 | Varel International Ind., L.P. | Drill bit with staged durability, stability and rop characteristics |
US7621348B2 (en) * | 2006-10-02 | 2009-11-24 | Smith International, Inc. | Drag bits with dropping tendencies and methods for making the same |
US20080135297A1 (en) * | 2006-12-07 | 2008-06-12 | David Gavia | Rotary drag bits having a pilot cutter configuraton and method to pre-fracture subterranean formations therewith |
US20080179106A1 (en) * | 2007-01-25 | 2008-07-31 | Baker Hughes Incorporated | Rotary drag bit |
US20080179108A1 (en) * | 2007-01-25 | 2008-07-31 | Mcclain Eric E | Rotary drag bit and methods therefor |
US20100000800A1 (en) * | 2007-01-31 | 2010-01-07 | Shilin Chen | Rotary Drill Bits with Protected Cutting Elements and Methods |
US20090266619A1 (en) * | 2008-04-01 | 2009-10-29 | Smith International, Inc. | Fixed Cutter Bit With Backup Cutter Elements on Secondary Blades |
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US8011275B2 (en) * | 2004-09-09 | 2011-09-06 | Baker Hughes Incorporated | Methods of designing rotary drill bits including at least one substantially helically extending feature |
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US20080179108A1 (en) * | 2007-01-25 | 2008-07-31 | Mcclain Eric E | Rotary drag bit and methods therefor |
US7762355B2 (en) | 2007-01-25 | 2010-07-27 | Baker Hughes Incorporated | Rotary drag bit and methods therefor |
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US20090266619A1 (en) * | 2008-04-01 | 2009-10-29 | Smith International, Inc. | Fixed Cutter Bit With Backup Cutter Elements on Secondary Blades |
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US8020641B2 (en) * | 2008-10-13 | 2011-09-20 | Baker Hughes Incorporated | Drill bit with continuously sharp edge cutting elements |
US20100089664A1 (en) * | 2008-10-13 | 2010-04-15 | Baker Hughes Incorporated | Drill bit with continuously sharp edge cutting elements |
US20100155151A1 (en) * | 2008-12-19 | 2010-06-24 | Varel International | Multi-set pdc drill bit and method |
US8327956B2 (en) * | 2008-12-19 | 2012-12-11 | Varel International, Ind., L.P. | Multi-set PDC drill bit and method |
US8991526B2 (en) | 2009-01-30 | 2015-03-31 | Drilformance Technologies, Llc | Drill bit |
US8887839B2 (en) * | 2009-06-25 | 2014-11-18 | Baker Hughes Incorporated | Drill bit for use in drilling subterranean formations |
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US8505634B2 (en) | 2009-12-28 | 2013-08-13 | Baker Hughes Incorporated | Earth-boring tools having differing cutting elements on a blade and related methods |
US20110155472A1 (en) * | 2009-12-28 | 2011-06-30 | Baker Hughes Incorporated | Earth-boring tools having differing cutting elements on a blade and related methods |
US8794356B2 (en) | 2010-02-05 | 2014-08-05 | Baker Hughes Incorporated | Shaped cutting elements on drill bits and other earth-boring tools, and methods of forming same |
US20110192651A1 (en) * | 2010-02-05 | 2011-08-11 | Baker Hughes Incorporated | Shaped cutting elements on drill bits and other earth-boring tools, and methods of forming same |
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US9458674B2 (en) | 2010-08-06 | 2016-10-04 | Baker Hughes Incorporated | Earth-boring tools including shaped cutting elements, and related methods |
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US20120138365A1 (en) * | 2010-12-06 | 2012-06-07 | Varel International, Ind., L.P. | Shoulder durability enhancement for a pdc drill bit using secondary and tertiary cutting elements |
US8544568B2 (en) * | 2010-12-06 | 2013-10-01 | Varel International, Inc., L.P. | Shoulder durability enhancement for a PDC drill bit using secondary and tertiary cutting elements |
US20120222902A1 (en) * | 2011-03-01 | 2012-09-06 | Alsup Shelton W | High performance wellbore departure and drilling system |
US9004159B2 (en) * | 2011-03-01 | 2015-04-14 | Smith International, Inc. | High performance wellbore departure and drilling system |
US9915098B2 (en) | 2011-03-01 | 2018-03-13 | Smith International Inc. | Systems for forming lateral wellbores |
US8851207B2 (en) | 2011-05-05 | 2014-10-07 | Baker Hughes Incorporated | Earth-boring tools and methods of forming such earth-boring tools |
US20140360789A1 (en) * | 2011-12-29 | 2014-12-11 | Smith International, Inc. | Spacing of rolling cutters on a fixed cutter bit |
US9903162B2 (en) * | 2011-12-29 | 2018-02-27 | Smith International, Inc. | Spacing of rolling cutters on a fixed cutter bit |
US9316058B2 (en) | 2012-02-08 | 2016-04-19 | Baker Hughes Incorporated | Drill bits and earth-boring tools including shaped cutting elements |
US10017998B2 (en) | 2012-02-08 | 2018-07-10 | Baker Hughes Incorporated | Drill bits and earth-boring tools including shaped cutting elements and associated methods |
US20160290055A1 (en) * | 2013-12-18 | 2016-10-06 | Halliburton Energy Services, Inc. | Cutting structure design with new backup cutter methodology |
US20190195024A1 (en) * | 2013-12-18 | 2019-06-27 | Halliburton Energy Services, Inc. | Cutting structure design with secondary cutter methodology |
US10920496B2 (en) * | 2013-12-18 | 2021-02-16 | Halliburton Energy Services, Inc. | Cutting structure design with new backup cutter methodology |
US11542754B2 (en) * | 2013-12-18 | 2023-01-03 | Halliburton Energy Services, Inc. | Cutting structure design with secondary cutter methodology |
US10710148B2 (en) | 2017-02-27 | 2020-07-14 | Baker Hughes, A Ge Company, Llc | Methods of forming forged fixed-cutter earth-boring drill bit bodies |
US11364535B2 (en) | 2017-02-27 | 2022-06-21 | Baker Hughes Holdings Llc | Methods of forming forged fixed-cutter earth-boring drill bit bodies |
WO2019022971A1 (en) * | 2017-07-25 | 2019-01-31 | Halliburton Energy Services, Inc. | Fixed-cutter drill bits with track-set primary cutters and backup cutters |
GB2578381A (en) * | 2017-07-25 | 2020-05-06 | Halliburton Energy Services Inc | Fixed-cutter drill bits with track-set primary cutters and backup cutters |
US10982491B2 (en) | 2017-07-25 | 2021-04-20 | Halliburton Energy Services, Inc. | Fixed-cutter drill bits with track-set primary cutters and backup cutters |
Also Published As
Publication number | Publication date |
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US7762355B2 (en) | 2010-07-27 |
CA2675070C (en) | 2012-05-29 |
WO2008091654A3 (en) | 2008-09-18 |
WO2008092113A2 (en) | 2008-07-31 |
CA2675270C (en) | 2012-05-22 |
WO2008092130A1 (en) | 2008-07-31 |
CA2675270A1 (en) | 2008-07-31 |
US7861809B2 (en) | 2011-01-04 |
WO2008092113B1 (en) | 2008-10-23 |
EP2118432A1 (en) | 2009-11-18 |
CN101627178A (en) | 2010-01-13 |
WO2008092113A3 (en) | 2008-09-12 |
EP2118430A2 (en) | 2009-11-18 |
WO2008091654A2 (en) | 2008-07-31 |
CA2675269A1 (en) | 2008-07-31 |
CA2675070A1 (en) | 2008-07-31 |
RU2009131829A (en) | 2011-02-27 |
RU2009131831A (en) | 2011-02-27 |
CN101622421A (en) | 2010-01-06 |
CN101622422A (en) | 2010-01-06 |
WO2008091654B1 (en) | 2008-12-11 |
US20080179108A1 (en) | 2008-07-31 |
EP2111494A2 (en) | 2009-10-28 |
US20080179106A1 (en) | 2008-07-31 |
WO2008092130B1 (en) | 2008-10-23 |
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Owner name: BAKER HUGHES INCORPORATED, TEXAS Free format text: ASSIGNMENT OF ASSIGNORS INTEREST;ASSIGNOR:DOSTER, MICHAEL L.;REEL/FRAME:020611/0874 Effective date: 20080305 |
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