Claims
- 1. A displacement joint, in particular for a constant velocity universal joint, comprising:
an outer joint part having circumferentially spaced recesses to form tracks; a tripod mounted in fixed rotative engagement to a driveshaft and including a tripod spider which has spherical arms spaced circumferentially in symmetric disposition for engagement in the recesses; and roller bearing assemblies fitted in the outer joint part for support of the tripod arms, with each tripod arm being guided by two of said roller bearing assemblies, each of which having a bearing shell, which receives the arm, rolling members, which are fitted with clearance in a cage and disposed between the track of the outer joint part and a contact surface of the bearing shell, wherein the cage is guided by shoulders of the outer joint part, which laterally bound the track, wherein the cage has opposite collars in parallel relationship to the shoulders for providing an axial stop for the rolling members and the bearing shell, and a positioning device provided between the bearing shell and the cage for centering the rolling members in relation to the bearing shell.
- 2. The displacement joint of claim 1, wherein the cage, the rolling members, the bearing shell and the positioning device of the roller bearing assembly are captivated to form a unitary structure.
- 3. The displacement joint of claim 1, wherein the roller bearing assemblies for each tripod arm define a longitudinal axis, said bearing shell having a receptacle configured to complement a contour of the tripod arm and extending transversely at a right angle to the longitudinal axis, for allowing a movement of the tripod arm relative to the bearing shell along the receptacle.
- 4. The displacement joint of claim 1, wherein the roller bearing assemblies for each tripod arm define a longitudinal axis, said cage being made through a process without material removal, wherein the collars of the cage extend parallel to the longitudinal axis on opposite sides of the rolling members for guiding the rolling members and the bearing shell at different levels.
- 5. The displacement joint of claim 4, wherein the cage has a substantially U-shaped configuration and is provided with pockets for the rolling members, with neighboring pockets being separated from one another by webs.
- 6. The displacement joint of claim 5, wherein the webs are spaced from one another at a distance which is smaller than a diameter of the rolling members to ensure an overlapping disposition of the webs with respect to the rolling members.
- 7. The displacement joint of claim 5, wherein the webs of the cage are formed in a central area with a recessed zone toward the bearing shell, said recessed zone extending beyond a midsection of the rolling members and configured so as to establish between the webs an axial distance which is smaller than a diameter of the rolling members.
- 8. The displacement joint of claim 4, wherein the cage has opposite ends, each end provided with a longitudinal stop arranged at a right angle to the collars.
- 9. The displacement joint of claim 1, wherein the contact surface of the bearing shell has a rectangular or square configuration for support of the bearing shell on the rolling members, said bearing shell having a contact surface distal side formed with a receptacle of half-round configuration to conform with a longitudinal axis of the rolling members for support upon the tripod arm.
- 10. The displacement joint of claim 1, wherein the positioning device has a single-part or multi-part spring member for force-fitting and/or form-fitting engagement between the cage and the bearing shell.
- 11. The displacement joint of claim 10, wherein the cage has opposite cage ends, each cage end provided with a longitudinal stop, said spring member having one spring end for securement to the longitudinal stop of one cage end and another spring end for securement to the longitudinal stop of the other cage end.
- 12. The displacement joint of claim 10, wherein the bearing shell has a longitudinal groove for guiding the spring member.
- 13. The displacement joint of claim 1, wherein the cage has opposite ends, each formed with a collar, said positioning device having a spring member guided by a stop formed in single-piece configuration with the collar of the cage.
- 14. The displacement joint of claim 10, wherein the spring member is a tension spring between the bearing shell and the cage.
- 15. The displacement joint of claim 10, wherein the spring member is a compression spring between the bearing shell and the cage.
- 16. The displacement joint of claim 1, wherein the bearing shell is configured as an extrusion part.
- 17. A displacement joint, in particular for a constant velocity universal joint, comprising:
an outer joint part having circumferentially spaced recesses to form tracks; a tripod mounted in fixed rotative engagement to a driveshaft and including a tripod spider which has spherical arms spaced circumferentially in symmetric disposition for engagement in the recesses; and roller bearing assemblies fitted in the outer joint part for support of the tripod arms, with each tripod arm being guided by two of said roller bearing assemblies in parallel tracks, each of the roller bearing assemblies having a bearing shell, which receives the tripod arm, a cap-shaped receptacle for the tripod arm, rolling members disposed between the track of the outer joint part and an outer side of the bearing shell, a cage having a trough-shaped configuration and made through a process without material removal for the rolling members and the bearing shell, and a positioning device for the bearing shell.
- 18. The displacement joint of claim 17, wherein the bearing shell is configured as an extrusion part.
- 19. The displacement joint of claim 17, wherein the tripod arm of the tripod spider is supported via a circular ring shaped contact surface in the bearing shell.
- 20. The displacement joint of claim 17, wherein each of the roller bearing assemblies is guided in the track of the outer joint part, with the track being bounded in axial direction on an outer side by a shoulder and configured without steps on an inner side in a direction toward a center of the tripod spider.
- 21. The displacement joint of claim 17, wherein the rolling members, the cage, the bearing shell and the positioning device are combined to form a unitary structure.
- 22. The displacement joint of claim 17, wherein the bearing shell is supported by the rolling members via a rectangular or square contact surface and tapers from the contact surface on all sides for formation of a truncated cone or truncated pyramid having a cap-shaped receptacle for the tripod arm at a location distal to the contact surface.
- 23. The displacement joint of claim 17, wherein the rolling members are placed in axial spaced-apart relationship in the cage, said cage being made through a deep-drawing process ad having a cage bottom having pockets, separated by webs, for receiving the rolling members.
- 24. The displacement joint of claim 23, wherein the webs of the cage are formed in a central area with a recessed zone toward the bearing shell, said recessed zone extending beyond a midsection of the rolling members and configured so as to establish between the webs an axial distance which is smaller than a diameter of the rolling members.
- 25. The displacement joint of claim 23, wherein the cage bottom has at least one embossment extending over an entire length of the cage and provided with pockets for the rolling members.
- 26. The displacement joint of claim 17, wherein the positioning device has a spring member in forced engagement with an end surface of the bearing shell, regardless of a direction of movement of the bearing shell.
- 27. The displacement joint of claim 26, wherein the spring member has at least one tripod arm and effects at least one two-stage force-fitting support of the bearing shell.
- 28. The displacement joint of claim 26, wherein the cage has a transverse wall configured to have first and second spring legs to form the spring member, with the first spring leg being longer than the second spring leg, wherein the first spring leg is supported in a neutral position upon the bearing shell, and the second spring leg becomes effective as the bearing shell shifts.
- 29. The displacement joint of claim 26, wherein the cage has a transverse wall formed with a multiply angled and/or wound spring leg having an end portion for support on the end surface of the bearing shell and resting upon a rigid edge or stop of the cage after a defined adjustment movement of the bearing shell.
- 30. The displacement joint of claim 26, wherein the spring member is a single-piece torsion spring secured to the bearing shell in a force-fitting and/or form-fitting manner and having spring ends for support against a transverse wall of the cage.
Priority Claims (3)
Number |
Date |
Country |
Kind |
100 59 999.0 |
Dec 2000 |
DE |
|
100 60 001.8 |
Dec 2000 |
DE |
|
100 59 962.1 |
Dec 2000 |
DE |
|
CROSS-REFERENCES TO RELATED APPLICATIONS
[0001] This application is a continuation of prior filed copending PCT International application no. PCT/EP01/13908, filed Nov. 28, 2001, on which priority is claimed under 35 U.S.C. §120, the disclosure of which is hereby incorporated by reference.
Continuations (1)
|
Number |
Date |
Country |
Parent |
PCT/EP01/13908 |
Nov 2001 |
US |
Child |
10452841 |
Jun 2003 |
US |