Roller Unit for Sliding-Type Tripod Constant-Velocity Joint and Sliding-Type Tripod Constant-Velocity Joint
20170227060 · 2017-08-10
Assignee
Inventors
Cpc classification
F16D2003/2026
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A roller unit includes: an outer roller rollably provided in a corresponding one of raceway grooves of an outer member; an inner roller rotatably supported on a corresponding one of tripod shafts of an inner member; rolling elements rollably provided between an inner peripheral surface of the outer roller and an outer peripheral surface of the inner roller; an annular spacer in contact with an end surface of each of the rolling elements; and a snap ring fitted to the outer roller and configured to restrict axial displacement of the inner roller and the spacer. The rolling elements are rollably supported in the axial direction by the annular spacer in contact with the end surfaces of the rolling elements.
Claims
1. A roller unit for a sliding-type tripod constant-velocity joint, the sliding-type tripod constant-velocity joint including an outer member having a tubular shape, the outer member being coupled to a first shaft, the outer member having three raceway grooves provided in an inner peripheral surface of the outer member, and the three raceway grooves extending in a tube axial direction of the outer member, and an inner member provided inside the outer member, the inner member being coupled to a second shaft, the inner member including a boss portion and tripod shafts, the boss portion having an annular shape, the boss portion being coupled to the second shaft, the tripod shafts each extending outward in a radial direction of the boss portion, and the tripod shafts each being inserted into a corresponding one of the three raceway grooves, and the roller unit provided between the outer member and the inner member, the roller unit comprising: an outer roller rollably provided in a corresponding one of the three raceway grooves; an inner roller rotatably supported on a corresponding one of the tripod shafts of the inner member; rolling elements rollably provided between an inner peripheral surface of the outer roller and an outer peripheral surface of the inner roller; a spacer having an annular shape, and the spacer being in contact with an end surface of each of the rolling elements; and a snap ring fitted to the outer roller, and the snap ring being configured to restrict axial displacement of the inner roller and the spacer.
2. The roller unit according to claim 1, wherein the outer roller includes a flange provided on the inner peripheral surface of one axial end portion of the outer roller, and the outer roller has a fitting groove provided in the inner peripheral surface of the other axial end portion of the outer roller, the flange protrudes inward in a radial direction of the outer roller, and the flange is configured to restrict axial displacement of the inner roller and the rolling elements, and the snap ring is configured such that axial displacement of the inner roller, the spacer, and the rolling elements are restricted when the snap ring is fitted into the fitting groove.
3. A sliding-type tripod constant-velocity joint comprising: an outer member having a tubular shape, the outer member being coupled to a first shaft, the outer member having three raceway grooves provided in an inner peripheral surface of the outer member, and the three raceway grooves extending in a tube axial direction of the outer member; an inner member provided inside the outer member, the inner member being coupled to a second shaft, the inner member including a boss portion and tripod shafts, the boss portion having an annular shape, the boss portion being coupled to the second shaft, the tripod shafts each extending outward in a radial direction of the boss portion, and the tripod shafts each being inserted into a corresponding one of the three raceway grooves; and roller units provided between the outer member and the inner member, each of the roller units including an outer roller rollably provided in a corresponding one of the three raceway grooves, an inner roller rotatably supported on a corresponding one of the tripod shafts of the inner member, rolling elements rollably provided between an inner peripheral surface of the outer roller and an outer peripheral surface of the inner roller, a spacer having an annular shape, and the spacer being in contact with an end surface of each of the rolling elements, and a snap ring fitted to the outer roller, and the snap ring being configured to restrict axial displacement of the inner roller and the spacer.
4. The sliding-type tripod constant-velocity joint according to claim 3, wherein the outer roller includes a flange provided on the inner peripheral surface of one axial end portion of the outer roller, and the outer roller has a fitting groove provided in the inner peripheral surface of the other axial end portion of the outer roller, the flange protrudes inward in a radial direction of the outer roller, and the flange is configured to restrict axial displacement of the inner roller and the rolling elements, and the snap ring is configured such that axial displacement of the inner roller, the spacer, and the rolling elements are restricted when the snap ring is fitted into the fitting groove.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0020] Features, advantages, and technical and industrial significance of exemplary embodiments of the disclosure will be described below with reference to the accompanying drawings, in which like numerals denote like elements, and wherein:
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
DETAILED DESCRIPTION OF EMBODIMENTS
[0027] Hereinafter, a roller unit for a sliding-type tripod constant-velocity joint according to an embodiment of the disclosure will be described with reference to the accompanying drawings.
[0028] Here, description will be provided on an example case in which a sliding-type tripod constant-velocity joint provided with a roller unit according to the present embodiment is used for coupling of, for example, a power transmission shaft (hereinafter, referred to as “drive shaft”) of a vehicle.
[0029] In the example, a drive shaft assembly illustrated in
[0030] The tripod constant-velocity joint (TCVJ) will be described with reference to
[0031] The outer member 10 is a bottomed tubular member. The outer member 10 is coupled at its tube bottom side to the first shaft FS. Three raceway grooves 11 are provided in an inner peripheral surface of a tubular portion of the outer member 10 at regular intervals in the circumferential direction of the outer member 10. The raceway grooves 11 extend in the tube axial direction (the shaft axial direction: the right-left direction in
[0032] The inner member 20 is provided inside the tubular portion of the outer member 10. The inner member 20 includes a boss portion 21 having an annular shape and coupled to the intermediate shaft MS via splines, and three tripod shafts 22 extending radially outward from an outer periphery of the boss portion 21, which is formed in a generally spherical convex shape. Each of the tripod shafts 22 has a pillar shape, and is inserted into a corresponding one of the raceway grooves 11 of the outer member 10.
[0033] To be specific, as illustrated in
[0034] The overall shape of each roller unit 30 is a cylindrical shape. The roller unit 30 is rotatably and oscillatably provided on the outer peripheral side of the tripod shaft 22, and is rollably provided in the raceway groove 11. Each roller unit 30 includes an inner roller 31, an outer roller 32, needles 33 that serve as a plurality of rolling elements, two spacers 34, and two snap rings 35.
[0035] Each inner roller 31 has a cylindrical shape, and is rotatably and oscillatably supported on a corresponding one of the tripod shafts 22. Each outer roller 32 also has a cylindrical shape. An outer peripheral surface of the outer roller 32 has a shape that conforms to the raceway groove 11. Thus, the outer roller 32 is engaged with the raceway groove 11 so as to be rollable about an axis extending in the up-down direction in
[0036] Further, fitting grooves 32a having an annular shape and having a prescribed depth are provided in an inner peripheral surface of the outer roller 32. In the inner peripheral surface of the outer roller 32, one of the fitting grooves 32a is provided in an outer region (an upper region in
[0037] In the present embodiment, even when an angle is formed between the intermediate shaft MS and the first shaft FS, a rotary driving force is transmitted at a constant velocity between the intermediate shaft MS and the first shaft FS because the inner member 20 and the roller units 30 are interposed between the intermediate shaft MS and the first shaft FS.
[0038] As illustrated in
[0039] As illustrated in
[0040] The assembly of each roller unit 30 in the foregoing embodiment will be described below. First, one of the snap rings 35 is fitted into the fitting groove 32a provided in one end portion of the outer roller 32. Next, one of the spacers 34 is provided on the snap ring 35 fitted in the fitting groove 32a. Then, the needles 33 are provided on the inner peripheral surface of the outer roller 32 along the entire circumference thereof, such that one end of each needle 33 comes into contact with the spacer 34. The inner roller 31 is provided inward of the needles 33 in the radial direction of the roller unit 30, such that an end surface of one end portion of the inner roller 31 comes into contact with the snap ring 35. Further, the other one of the spacers 34 is provided between an inner peripheral portion of the outer roller 32 and an outer peripheral portion of the inner roller 31, such that the other one of the spacers 34 comes into contact with the other end of each needle 33. Finally, the other one of the snap rings 35 is fitted into the fitting groove 32a provided in the inner peripheral surface of the other end portion of the outer roller 32.
[0041] In the sliding-type tripod constant-velocity joint, each roller unit 30 is assembled such that the spacers 34 are interposed between the ends of the needles 33 and the snap rings 35. With this configuration, for example, even when the roller unit 30 oscillates relative to the tripod shaft 22 and the needles 33 turn around the inner roller 31 while rotating about their axes between the inner roller 31 and the outer roller 32, the spherical end surfaces of the needles 33 can smoothly roll on the flat surfaces of the spacers 34. Thus, the end portions of the needles 33 are reliably prevented from being caught in or falling into the openings 35a of the snap rings 35.
[0042] In the foregoing embodiment, the fitting grooves 32a are provided in the respective end portions of the inner peripheral surface of the outer roller 32 in the up-down direction, and the snap rings 35 are fitted into the respective fitting grooves 32a to hold the spacers 34. However, as another embodiment, a fitting groove 32a may be provided in only one of an upper portion and a lower portion of the outer roller 32, and a flange 32b may be provided at the other one of the upper portion and the lower portion of the outer roller 32.
[0043] That is, in the present embodiment, as illustrated in
[0044] In each of the roller units for a sliding-type tripod constant-velocity joint, the end surfaces of the needles are supported on the annular surface of the spacer, which is flat along the entire circumference thereof, and thus the end portions of the needles are reliably prevented from being caught in or falling into the opening of the snap ring. Therefore, the need to strictly perform dimensional tolerance management of the opening of the snap ring can be reduced, leading to a reduction of cost of the snap ring itself. Further, an allowable clearance can be increased due to the reduction in the need to strictly perform the dimensional tolerance management. This facilitates the fitting of the snap ring, thereby improving the efficiency of assembling the roller unit.