WO1980002059A1 - Keeper assembly - Google Patents

Keeper assembly Download PDF

Info

Publication number
WO1980002059A1
WO1980002059A1 PCT/US1979/000187 US7900187W WO8002059A1 WO 1980002059 A1 WO1980002059 A1 WO 1980002059A1 US 7900187 W US7900187 W US 7900187W WO 8002059 A1 WO8002059 A1 WO 8002059A1
Authority
WO
WIPO (PCT)
Prior art keywords
keeper
segments
keeper assembly
groove
assembly
Prior art date
Application number
PCT/US1979/000187
Other languages
French (fr)
Inventor
R Livesay
Original Assignee
Caterpillar Tractor Co
R Livesay
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Caterpillar Tractor Co, R Livesay filed Critical Caterpillar Tractor Co
Priority to PCT/US1979/000187 priority Critical patent/WO1980002059A1/en
Priority to JP50167379A priority patent/JPS56500266A/ja
Publication of WO1980002059A1 publication Critical patent/WO1980002059A1/en

Links

Classifications

    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16CSHAFTS; FLEXIBLE SHAFTS; ELEMENTS OR CRANKSHAFT MECHANISMS; ROTARY BODIES OTHER THAN GEARING ELEMENTS; BEARINGS
    • F16C11/00Pivots; Pivotal connections
    • F16C11/04Pivotal connections
    • F16C11/045Pivotal connections with at least a pair of arms pivoting relatively to at least one other arm, all arms being mounted on one pin
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B62LAND VEHICLES FOR TRAVELLING OTHERWISE THAN ON RAILS
    • B62DMOTOR VEHICLES; TRAILERS
    • B62D55/00Endless track vehicles
    • B62D55/08Endless track units; Parts thereof
    • B62D55/18Tracks
    • B62D55/20Tracks of articulated type, e.g. chains
    • B62D55/205Connections between track links
    • EFIXED CONSTRUCTIONS
    • E02HYDRAULIC ENGINEERING; FOUNDATIONS; SOIL SHIFTING
    • E02FDREDGING; SOIL-SHIFTING
    • E02F9/00Component parts of dredgers or soil-shifting machines, not restricted to one of the kinds covered by groups E02F3/00 - E02F7/00
    • E02F9/006Pivot joint assemblies
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16CSHAFTS; FLEXIBLE SHAFTS; ELEMENTS OR CRANKSHAFT MECHANISMS; ROTARY BODIES OTHER THAN GEARING ELEMENTS; BEARINGS
    • F16C2350/00Machines or articles related to building
    • F16C2350/26Excavators

Definitions

  • the present invention relates to -a keeper assembly wherein a plurality of replaceable keeper members provide a shoulder which functions to secure a first member against axial displacement with respect to a second member, and particularly to a retaining device for holding the keeper members in place.
  • Retaining rings having either a rectangular or circular cross sectional shape are conventionally used by the industry to prevent axial displacement of a bushing, for example, on a cylindrical shaft. Those rings having a circular cross section and mating with shallow semicircular grooves can only resist moderate axial forces, while those rings having a rectangular cross section can resist substantially higher axial forces. Although the rectangular retaining rings provide a more positive shoulder in a plane transverse the central axis of the shaft for resisting higher axial forces, the opposite sharp edged groove root corner causes high stresses in the shaft and a limi- tation on the load carrying capability of the assembly.
  • a plurality of arcuate keeper segments having a preselected cross sectional shape are positioned in a correspondingly profiled groove. Failure can occur at only very high loads in the end of the shaft by a shear failure cone eminating about halfway up the side of the groove. Actual use of the referenced keeper assembly is in the environment of an endless track chain joint, where space is at a premium. Unfortunately, the arcuate keeper segments must be inserted radially into the groove in the track pin shaft within a counterbore in a link prior to the installation of a retaining cap in the counterbore.
  • a keeper assembly having a plurality of arcuate keeper segments located in an annular groove of a first member for receiving axial loads from a force trans ⁇ mitting surface of a second member.
  • each keeper segment has an axially outwardly opening side seat, and a retaining member is releasably con ⁇ nected to the side seats for holding the keeper segments positively in the groove.
  • Fig. 1 is a diagrammatic, fragmentary, cross sectional view of a track chain joint illustrating a pair of keeper assemblies constructed in accordance with the present invention
  • Fig. 2 is an enlarged, fragmentary, diagram ⁇ matic, perspective end view of one end of the track chain joint illustrated in Fig. 1 showing one of the keeper assemblies including a retaining member, with a portion of the joint shown in cross section for clarity;
  • Fig. 3 is an elevational side view- of the retaining member of Fig. 2;
  • Fig. 4 is an enlarged, fragmentary, diagram ⁇ matic cross sectional view of the keeper assembly illustrated in Figs. 1 and 2;
  • Fig. 5 is a fragmentary view, comparable to Fig. 4, showing a second embodiment retaining member.
  • a first keeper assembly 10 and a second identical keeper assembly 12 are shown in connection with the opposite sides of a representative one of a plurality of interconnected endless track chain joints 14.
  • Each of the joints 14 includes a track pin 16 having a central axis 18, a cylindrical outer surface 20 and a pair of opposite end surfaces 22.
  • a lubricant reservoir 24 is formed within the pin and one or more radial passages 26 communicate fluid in the reservoir to the outer surface centrally of the pin.
  • a first pair of track links 28 is mounted as by a press fit on the opposite ends of a hollow cylindrical track bushing 30, and a second pair of track links 32 is mounted as by a press fit on the opposite ends of the track pin.
  • a pair of spacer rings 34 transmit axial loads between the bushing and the outer track links and to define the minumuirt spacing the rebetween for axial dimensional control of a pair of end face seal ring assemblies 36 circumscribing the spacer rings and disposed in a respective one of a pair of counterbores 38 in the outer track links.
  • first keeper assembly 10 As best illustrated in Figs. 2-4, it may be noted that a plurality of arcuate keeper segments 40 of preselected construction are included and received in an annular groove 42 in the track pin
  • First and second retaining means 44,46 are provide for containing the keeper segments in plac"e in.the groove, and for protecting the keeper assembly and track chain joint 14.
  • three identical arcuate keeper segments 40 are utilized which are substantially adjacent segments of an interrupted annular ring.
  • Each of these keeper segments has a pair of opposite end surfaces 48 as representatively indi- cated in Fig. 2 and as shown best in Fig. 4, a radially outer cylindrical surface 50, a planar side surface or thrust surface 52, a radially inner contoured surface 54, and an axially outwardly opening side seat or bench 56.
  • side seat it is meant that a recess is defined in each of the keeper segments for sub ⁇ stantially solely axially receiving the first retaining means 44 and simplifying assembly.
  • the side seat 56 is defined by an axially outwardly facing surface 58 oriented in use in a plane transverse to the central axis 18, and by an arcuate, radially outwardly facing surface or cylindrical surface portion 60.
  • the cylindrical surface portion 60 of the side seat is disposed radially inwardly of the cylindrical outer surface 20 by a preselected radial depth "d" as indicated in Fig. 4.
  • the annular groove 42 opens radially out ⁇ wardly on the cylindrical outer surface 20 of the pin 16 and extends continuously peripherally around the pin in the instant example.
  • the groove is defined by a planar sidewall 62 and a concave sidewall 64 connected to each other, and is located at a preselected minimum axial distance "D" from the end surface 22 of the pin as shown in Fig. 4. - •
  • the instant embodiment has three similar arcuate keeper segments 40 of about 120° span each for ease of insertion in the groove 42. But it is necessary to insert these keeper segments within the restrictive confines of an axially outwardly facing counterbore 66 in each of the track links 32.
  • Each counterbore is defined by an annular end wall or force transmitting surface 68 and a cylin ⁇ drical interval surface 70. In operation, the planar side surface 52 axially receives the force from the end wall 68.
  • the first retaining means 44 is seen to include an external retaining ring 72 having a substantially cylindrical internal surface 74 in the free state, a radially outer surface 75, and
  • the retaining ring 72 is of the usual C-shaped steel type having a gradual and symmetrical change of radial thickness around its periphery as is illustrated.
  • the 5 retaining ring is positionable on the side seat 56 of the individual keeper segments 40 to hold them in place before installation of the second retaining means 46.
  • the second retaining means 46 is substan ⁇ tially a retaining cap or cup 78 having an external 10 cylindrical surface 80 and an axially inwardly facing counterbore 82 including an internal cylindrical surface 84.
  • the three arcuate keeper segments 40 are installed fully within the pin groove 42 and are preferably temporarily held in place by a sticking agent applied to the radially inner contoured surface 54 thereof. Thereafter the small tangs of a
  • 25 plier-like tool of the usual type are placed in the eyes 76 of the retaining ring 72 and the eyes forcefully separated so that the ring is elastically deformed, permitting it to be inserted axially over the cylin ⁇ drical surface 20 of the track pin 16 and into engage-
  • O PI of the retaining ring is positioned against the cylin ⁇ drical surface portions 60 of the keeper segments. Since this occurs radially down into the pin groove by the preselected distance "d" the retaining ring is held positively in place.
  • the retaining cap 78 is press fitted into the internal surface 70 of the link counter ⁇ bore 66 such that the cap's internal surface 84 is disposed in preselected relatively close radial proximity to the outer cylindrical surfaces 50 of the keeper segments and to the outer surface 75 of the retaining ring.
  • a second embodiment keeper assembly 86 is illustrated having elements corresponding to those of the first embodiment indi ⁇ cated by the same reference ' numerals with a prime marking.
  • the second embodiment differs only in that the keeper segment's contoured surface 54' is a semi ⁇ circle in cross section rather than a quarter of a circle, and in that the retaining ring 72' is of different construction than the retaining ring 72.
  • the retaining ring '72' is a spiral wrap ring of relatively thin steel and of substantially radially elongate rectangular cross sectional configur- ation.
  • the retaining ring 72' is installed axially over the cylindrical surface 20' of the pin 16' and snapped radially into a positive engagement with the individual keeper segments 40' at the depressed side seats 56' .
  • the preselected cross sectional construction of the keeper segments 40,40' and the mating groove 42,42' has greatly- extended the load to failure capabilities of the keeper assemblies 10 and 86 when compared with conventional retaining ring arrangements with, for example, a groove having a sharp edged rectangular configuration.
  • the dual retaining means 44,46 provide the way to assure positive assembly of the keeper segments and positive containment and protection thereof in the severe service environment of a track chain joint.

Abstract

A keeper assembly transmits force from a second member (32) for a forced transmitting surface force (68) to first member (16) having an annular groove (42). A plurality of keeper segments (40) are located in the groove (42) and transfer force from the forced transmitting surface (68) into the first member (16). Each keeper segment has an axially outwardly opening side seat (56) and retaining means (44) are releasably connected to the side seats (56) for holding the keeper segments (40) positively in the groove (42).

Description

Description
Keeper Assembly
Technical Field
The present invention relates to -a keeper assembly wherein a plurality of replaceable keeper members provide a shoulder which functions to secure a first member against axial displacement with respect to a second member, and particularly to a retaining device for holding the keeper members in place.
Background Art
It is well known to utilize C-shaped retaining rings or snap rings capable of being spread and inserted over the end of a shaft and released into a groove around the shaft. Such rings are elastically deformed upon initial installation and are allowed to snap back toward their unstressed positions into the groove.
Retaining rings having either a rectangular or circular cross sectional shape are conventionally used by the industry to prevent axial displacement of a bushing, for example, on a cylindrical shaft. Those rings having a circular cross section and mating with shallow semicircular grooves can only resist moderate axial forces, while those rings having a rectangular cross section can resist substantially higher axial forces. Although the rectangular retaining rings provide a more positive shoulder in a plane transverse the central axis of the shaft for resisting higher axial forces, the opposite sharp edged groove root corner causes high stresses in the shaft and a limi- tation on the load carrying capability of the assembly.
O PI ,, WIPO - In one keeper assembly construction the maximum axial load retention capability is greatly extended. In that construction, a plurality of arcuate keeper segments having a preselected cross sectional shape are positioned in a correspondingly profiled groove. Failure can occur at only very high loads in the end of the shaft by a shear failure cone eminating about halfway up the side of the groove. Actual use of the referenced keeper assembly is in the environment of an endless track chain joint, where space is at a premium. Unfortunately, the arcuate keeper segments must be inserted radially into the groove in the track pin shaft within a counterbore in a link prior to the installation of a retaining cap in the counterbore. It is prior to the assembly of the retaining cap that one or more of the keeper segments can loosen and move radially outwardly from the groove and can interfere with proper insertion of the retaining cap resulting in a loss of time and effort. In view of the above, what is needed is a keeper assembly better able to hold the arcuate keeper segments positively in place in the groove.
Summary of the Invention
According to the present invention, a keeper assembly is provided having a plurality of arcuate keeper segments located in an annular groove of a first member for receiving axial loads from a force trans¬ mitting surface of a second member. Advantageously, each keeper segment has an axially outwardly opening side seat, and a retaining member is releasably con¬ nected to the side seats for holding the keeper segments positively in the groove.
OMPI /., WIFO Brief Description of the Drawings
Fig. 1 is a diagrammatic, fragmentary, cross sectional view of a track chain joint illustrating a pair of keeper assemblies constructed in accordance with the present invention;
Fig. 2 is an enlarged, fragmentary, diagram¬ matic, perspective end view of one end of the track chain joint illustrated in Fig. 1 showing one of the keeper assemblies including a retaining member, with a portion of the joint shown in cross section for clarity;
Fig. 3 is an elevational side view- of the retaining member of Fig. 2;
Fig. 4 is an enlarged, fragmentary, diagram¬ matic cross sectional view of the keeper assembly illustrated in Figs. 1 and 2; and
Fig. 5 is a fragmentary view, comparable to Fig. 4, showing a second embodiment retaining member.
Best Mode for Carrying Out the Invention in the embodiment of the invention illustrated in Fig. 1, a first keeper assembly 10 and a second identical keeper assembly 12 are shown in connection with the opposite sides of a representative one of a plurality of interconnected endless track chain joints 14. Each of the joints 14 includes a track pin 16 having a central axis 18, a cylindrical outer surface 20 and a pair of opposite end surfaces 22. A lubricant reservoir 24 is formed within the pin and one or more radial passages 26 communicate fluid in the reservoir to the outer surface centrally of the pin. A first pair of track links 28 is mounted as by a press fit on the opposite ends of a hollow cylindrical track bushing 30, and a second pair of track links 32 is mounted as by a press fit on the opposite ends of the track pin. Thus, the bushing and the inner track links 28 are free to rotate centrally on the track pin about the axis 18, while the outer track links 32 are relatively firmly secured to the track pin. A pair of spacer rings 34 transmit axial loads between the bushing and the outer track links and to define the minumuirt spacing the rebetween for axial dimensional control of a pair of end face seal ring assemblies 36 circumscribing the spacer rings and disposed in a respective one of a pair of counterbores 38 in the outer track links. The aforementioned track chain joint construction/ includin the spacer rings and the seal ring assemblies, for example, but excluding the keeper assemblies 10 and 12, is generally well known in the art.
Referring now to the construction of the first keeper assembly 10, as best illustrated in Figs. 2-4, it may be noted that a plurality of arcuate keeper segments 40 of preselected construction are included and received in an annular groove 42 in the track pin
16. First and second retaining means 44,46 are provide for containing the keeper segments in plac"e in.the groove, and for protecting the keeper assembly and track chain joint 14. in the embodiment illustrated, three identical arcuate keeper segments 40 are utilized which are substantially adjacent segments of an interrupted annular ring. Each of these keeper segments has a pair of opposite end surfaces 48 as representatively indi- cated in Fig. 2 and as shown best in Fig. 4, a radially outer cylindrical surface 50, a planar side surface or thrust surface 52, a radially inner contoured surface 54, and an axially outwardly opening side seat or bench 56. By the term "side seat" it is meant that a recess is defined in each of the keeper segments for sub¬ stantially solely axially receiving the first retaining means 44 and simplifying assembly. In the instant embodiment the side seat 56 is defined by an axially outwardly facing surface 58 oriented in use in a plane transverse to the central axis 18, and by an arcuate, radially outwardly facing surface or cylindrical surface portion 60. Advantageously, the cylindrical surface portion 60 of the side seat is disposed radially inwardly of the cylindrical outer surface 20 by a preselected radial depth "d" as indicated in Fig. 4. The annular groove 42 opens radially out¬ wardly on the cylindrical outer surface 20 of the pin 16 and extends continuously peripherally around the pin in the instant example. The groove is defined by a planar sidewall 62 and a concave sidewall 64 connected to each other, and is located at a preselected minimum axial distance "D" from the end surface 22 of the pin as shown in Fig. 4. - Although not clearly illustrated, the instant embodiment has three similar arcuate keeper segments 40 of about 120° span each for ease of insertion in the groove 42. But it is necessary to insert these keeper segments within the restrictive confines of an axially outwardly facing counterbore 66 in each of the track links 32. Each counterbore is defined by an annular end wall or force transmitting surface 68 and a cylin¬ drical interval surface 70. In operation, the planar side surface 52 axially receives the force from the end wall 68.
As shown best in Fig. 3, the first retaining means 44 is seen to include an external retaining ring 72 having a substantially cylindrical internal surface 74 in the free state, a radially outer surface 75, and
- EXΓ-
OMPI /,, WIFO . a pair of eyes 76 in the opposite ends thereof. The retaining ring 72 is of the usual C-shaped steel type having a gradual and symmetrical change of radial thickness around its periphery as is illustrated. The 5 retaining ring is positionable on the side seat 56 of the individual keeper segments 40 to hold them in place before installation of the second retaining means 46.
The second retaining means 46 is substan¬ tially a retaining cap or cup 78 having an external 10 cylindrical surface 80 and an axially inwardly facing counterbore 82 including an internal cylindrical surface 84.
Industrial Applicability
In operation, the track links 32 are axially
15 press fitted over the opposite ends of the track pins 16 to substantially complete the assembly of the track chain joints 14 in the usual manner. Thereafter the first and second keeper assemblies 10.and 12 are installed.
20 More particularly, the three arcuate keeper segments 40 are installed fully within the pin groove 42 and are preferably temporarily held in place by a sticking agent applied to the radially inner contoured surface 54 thereof. Thereafter the small tangs of a
25 plier-like tool of the usual type are placed in the eyes 76 of the retaining ring 72 and the eyes forcefully separated so that the ring is elastically deformed, permitting it to be inserted axially over the cylin¬ drical surface 20 of the track pin 16 and into engage-
30. ment with the side seats 56 of the individual keeper segments. Thereupon the eyes are allowed to approach each other so that the ring snaps back toward its unstressed condition whereupon the internal surface 74
- UREΛ
O PI of the retaining ring is positioned against the cylin¬ drical surface portions 60 of the keeper segments. Since this occurs radially down into the pin groove by the preselected distance "d" the retaining ring is held positively in place.
Thereafter, the retaining cap 78 is press fitted into the internal surface 70 of the link counter¬ bore 66 such that the cap's internal surface 84 is disposed in preselected relatively close radial proximity to the outer cylindrical surfaces 50 of the keeper segments and to the outer surface 75 of the retaining ring.
Referring now to Fig. 5, a second embodiment keeper assembly 86 is illustrated having elements corresponding to those of the first embodiment indi¬ cated by the same reference' numerals with a prime marking. The second embodiment differs only in that the keeper segment's contoured surface 54' is a semi¬ circle in cross section rather than a quarter of a circle, and in that the retaining ring 72' is of different construction than the retaining ring 72. Specifically, the retaining ring '72' is a spiral wrap ring of relatively thin steel and of substantially radially elongate rectangular cross sectional configur- ation. As before, the retaining ring 72' is installed axially over the cylindrical surface 20' of the pin 16' and snapped radially into a positive engagement with the individual keeper segments 40' at the depressed side seats 56' . i± has been found that the preselected cross sectional construction of the keeper segments 40,40' and the mating groove 42,42' has greatly- extended the load to failure capabilities of the keeper assemblies 10 and 86 when compared with conventional retaining ring arrangements with, for example, a groove having a sharp edged rectangular configuration. This is because the keeper segments transfer force from the abutting surfaces 52,52' ,68,68' radially toward the central axis 18 and obliquely into the more favorable load distrib¬ uting contoured surfaces 54,54". The dual retaining means 44,46 provide the way to assure positive assembly of the keeper segments and positive containment and protection thereof in the severe service environment of a track chain joint.
Other aspects, objects and advantages of this invention can be obtained from a study of the drawings, the disclosure and the appended claims.

Claims

Claims
1. In a keeper assembly (10) of the type including a first member (16) having a central axis (18) and an annular groove (42) opening on an outer cylindrical surface (20) , and a second member (32) having a force transmitting surface (68) , the improve¬ ment comprising: a plurality of arcuate keeper segments (40) positionable in the groove (42) and being of a construc- tion sufficient for transferring force from the force transmitting surface (68) of the second member (32) into the first member (16) , each segment (40) having an axially outwardly opening side seat (56) having an axially outwardly facing surface (58) and an arcuate radially outwardly facing surface (60) ; and retaining means (44) releasably connected to the side seats (56) for holding the arcuate keeper segments (40) positively in the groove (42) .
2. The keeper assembly of claim 1 wherein the retaining means (44) is an external retaining ring (72) of "C" configuration.
3. The keeper assembly of claim 1 wherein the retaining means (44) is a ring (72') of a general spiral configuration.
4. The keeper assembly of claim 1 wherein each of the radially outwardly facing surfaces (60) of the side seats (56) is located at a preselected depth "d" radially inwardly of the outer cylindrical surface 20 of the first member (16) , and the retaining means (44) contacts the radially outwardly facing surfaces (60) .
5. The keeper assembly of claim 4 wherein the radially outwardly facing surfaces (60) are arcuate cylindrical surface portions.
6. The keeper assembly of claim 1 including: containing means (46) for containing the keeper segments (40) and the retaining means (44) .
7. The keeper assembly of claim 6 wherein the containing means (46) is a cup (78) .
8. The keeper assembly of claim 6 wherein the containing means (46) is releasably connected to the second member (32) .
PCT/US1979/000187 1979-03-23 1979-03-23 Keeper assembly WO1980002059A1 (en)

Priority Applications (2)

Application Number Priority Date Filing Date Title
PCT/US1979/000187 WO1980002059A1 (en) 1979-03-23 1979-03-23 Keeper assembly
JP50167379A JPS56500266A (en) 1979-03-23 1979-03-23

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
PCT/US1979/000187 WO1980002059A1 (en) 1979-03-23 1979-03-23 Keeper assembly
WOUS79/00187 1979-03-23

Publications (1)

Publication Number Publication Date
WO1980002059A1 true WO1980002059A1 (en) 1980-10-02

Family

ID=22147549

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/US1979/000187 WO1980002059A1 (en) 1979-03-23 1979-03-23 Keeper assembly

Country Status (2)

Country Link
JP (1) JPS56500266A (en)
WO (1) WO1980002059A1 (en)

Cited By (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4884829A (en) * 1986-09-16 1989-12-05 Johannes Schaefer Vorm. Stettiner Schraubenwerke Gmbh & Co. Kg Plug-in connection for connecting tube and host lines in particular for use in tube-line systems of motor vehicles
US4995678A (en) * 1989-02-17 1991-02-26 Matsuhita Electric Industrial Co., Ltd. Protected pin retention device for crawler track assembly
US5016945A (en) * 1989-02-08 1991-05-21 O & K Orenstein & Koppel Aktiengesellschaft Arrangement for connecting and moving the plates of a caterpillar track of earth-moving machines
US5887958A (en) * 1997-02-21 1999-03-30 Berco S.P.A. Track link assembly having positive pin retention
US6305870B1 (en) * 1997-03-21 2001-10-23 Piolax Inc. Metal clip and, fixing structure for fixing shaftlike member to mount member having through hole, with the metal clip
US20090185853A1 (en) * 2006-01-20 2009-07-23 Fred Koelling Releasable locking mechanism
CN101403408B (en) * 2007-12-19 2010-12-22 奇瑞汽车股份有限公司 Retainer ring for compensating axial clearance and use thereof
US9090318B2 (en) 2006-01-20 2015-07-28 Lockdowel, Inc. Latching system
WO2015116645A1 (en) * 2014-01-28 2015-08-06 Caterpillar Inc. Lock assembly for a track roller frame

Families Citing this family (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4757887A (en) * 1986-07-10 1988-07-19 Dana Corporation Split thrust/retainer ring for an overrunning clutch

Citations (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US1758515A (en) * 1927-02-04 1930-05-13 Heiermann Hugo Wrist-pin construction
US2747953A (en) * 1953-05-19 1956-05-29 Krauss Maffei Ag Piston arrangement for internal combustion engines
US2823081A (en) * 1956-06-29 1958-02-11 Caterpillar Tractor Co Master track pin
US3398977A (en) * 1965-02-13 1968-08-27 Yoneda Rikizo Pipe coupling
US3884509A (en) * 1971-07-19 1975-05-20 Jr Richard O Marsh Pipe coupling devices
US3888597A (en) * 1972-02-24 1975-06-10 Int Harvester Co Retaining assembly
US4019824A (en) * 1976-02-03 1977-04-26 Percy Vernon L Positive ring retaining system
US4061366A (en) * 1975-10-01 1977-12-06 Affa Stephen N Connector
US4163589A (en) * 1978-04-24 1979-08-07 Caterpillar Tractor Co. Hinge joint for track link assemblies

Patent Citations (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US1758515A (en) * 1927-02-04 1930-05-13 Heiermann Hugo Wrist-pin construction
US2747953A (en) * 1953-05-19 1956-05-29 Krauss Maffei Ag Piston arrangement for internal combustion engines
US2823081A (en) * 1956-06-29 1958-02-11 Caterpillar Tractor Co Master track pin
US3398977A (en) * 1965-02-13 1968-08-27 Yoneda Rikizo Pipe coupling
US3884509A (en) * 1971-07-19 1975-05-20 Jr Richard O Marsh Pipe coupling devices
US3888597A (en) * 1972-02-24 1975-06-10 Int Harvester Co Retaining assembly
US4061366A (en) * 1975-10-01 1977-12-06 Affa Stephen N Connector
US4019824A (en) * 1976-02-03 1977-04-26 Percy Vernon L Positive ring retaining system
US4163589A (en) * 1978-04-24 1979-08-07 Caterpillar Tractor Co. Hinge joint for track link assemblies

Cited By (10)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4884829A (en) * 1986-09-16 1989-12-05 Johannes Schaefer Vorm. Stettiner Schraubenwerke Gmbh & Co. Kg Plug-in connection for connecting tube and host lines in particular for use in tube-line systems of motor vehicles
US5016945A (en) * 1989-02-08 1991-05-21 O & K Orenstein & Koppel Aktiengesellschaft Arrangement for connecting and moving the plates of a caterpillar track of earth-moving machines
US4995678A (en) * 1989-02-17 1991-02-26 Matsuhita Electric Industrial Co., Ltd. Protected pin retention device for crawler track assembly
US5887958A (en) * 1997-02-21 1999-03-30 Berco S.P.A. Track link assembly having positive pin retention
US6305870B1 (en) * 1997-03-21 2001-10-23 Piolax Inc. Metal clip and, fixing structure for fixing shaftlike member to mount member having through hole, with the metal clip
US20090185853A1 (en) * 2006-01-20 2009-07-23 Fred Koelling Releasable locking mechanism
US9090318B2 (en) 2006-01-20 2015-07-28 Lockdowel, Inc. Latching system
US10202993B2 (en) 2006-01-20 2019-02-12 Lockdowel, Inc. Latching system
CN101403408B (en) * 2007-12-19 2010-12-22 奇瑞汽车股份有限公司 Retainer ring for compensating axial clearance and use thereof
WO2015116645A1 (en) * 2014-01-28 2015-08-06 Caterpillar Inc. Lock assembly for a track roller frame

Also Published As

Publication number Publication date
JPS56500266A (en) 1981-03-05

Similar Documents

Publication Publication Date Title
US4288172A (en) Keeper assembly
US4182578A (en) Keeper assembly
US4277199A (en) Keeper assembly
KR930006216B1 (en) Torque limiting overload coupling
US3200615A (en) Sealing element
US4828423A (en) Tolerance ring and shim
WO1980002059A1 (en) Keeper assembly
US2926938A (en) Oil seal
KR970059521A (en) Split Clutch Assembly with Twist Lock Joint
EP1486714B1 (en) Fluid coupling
US3145547A (en) Alignment device
US3881324A (en) Universal joint
US4545627A (en) Creep preventing device of an annular member
EP0158444A3 (en) Rotatable shaft assembly
US4465395A (en) Polygon connection of a hub with a shaft
JPH0811980B2 (en) Axial seal assembly
US4639162A (en) Drawing lock for torque transmitting engagement between two shaft members arrestable in the open position
US4202219A (en) Chain pin assembly with captive securing means
US2974501A (en) Sealing rings
US4371356A (en) Sliding universal joints, particularly for automobile transmissions
US4637806A (en) Arrangement for mounting swivel pin bearing in yoke of universal joint
US4214764A (en) Axial-type sealing device arranged to provide the seal between a stationary and a rotatable element
US6168529B1 (en) Cross-piece for universal joint and universal joint
EP1214538B1 (en) Seal assembly having an encapsulated cone spring
CA1050293A (en) Universal joint and method for making the same

Legal Events

Date Code Title Description
AK Designated states

Designated state(s): JP US