MULTI-ROW THRUST BALL BEARING
20220170505 · 2022-06-02
Assignee
Inventors
- Hironari SAKODA (Fujisawa-shi, Kanagawa, JP)
- Aya KIKUCHI (Fujisawa-shi, Kanagawa, JP)
- Yuta CHIHARA (Fujisawa-shi, Kanagawa, JP)
Cpc classification
F16C2326/01
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/3887
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C19/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/6651
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/585
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/3856
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/40
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C2240/40
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/583
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16C19/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/38
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
It is an object of the present invention to provide a thrust ball bearing which has a large load capacity, can realize thinned wall, and can further withstand a radial load. A pair of raceways (21, 22) include double rows of raceway grooves (23A, 23B) provided along a radial direction on surfaces facing each other. The retainer (40) includes claw-shaped protrusions (42) that protrude from peripheral edges of openings of pockets (41) in a convex manner and are arranged to face each other only in a circumferential direction of the retainer. A maximum width W of the claw-shaped protrusions (42) in the radial direction is smaller than a maximum width L of the raceway grooves (23) in the radial direction.
Claims
1. A multi-row thrust ball bearing comprising: a pair of raceways formed in an annular shape and disposed axially apart from each other; a plurality of balls rotatably disposed between the pair of raceway rings; a retainer, including a plurality of pockets, disposed between the pair of raceways and holding the plurality of balls at predetermined intervals, wherein: each of the pair of raceways has a plurality of rows of raceway grooves provided along a radial direction, the raceway grooves being disposed on surfaces of the pair of raceways facing each other; the retainer includes claw-shaped projections each of which protrudes from a periphery of an opening of each of pockets in a convex shape and are disposed opposite only in the circumferential direction of the retainer; and a maximum width of the claw-shaped protrusions in the radial direction is smaller than a maximum width of the raceway grooves in the radial direction.
2. The multi-row thrust ball bearing according to claim 1, wherein at least some of the plurality of pockets have phases different from each other in the circumferential direction between the pockets on an outer diameter side and the pockets on an inner diameter side.
3. The multi-row thrust ball bearing according to claim 2, wherein the retainer includes continuous portions that connect, among the pockets on the outer diameter side and the pockets on the inner diameter side that are adjacent to each other in the radial direction, the pockets on the outer diameter side and the pockets on the inner diameter side at relatively narrow intervals therebetween.
4. The multi-row thrust ball bearing according to claim 1, wherein the pockets are arranged at irregular intervals in the circumferential direction.
5. The multi-row thrust ball bearing according to claim 1, wherein each of the pair of raceways includes a recess configured to accommodate the retainer.
6. The multi-row thrust ball bearing according to claim 1, wherein a depth of the raceway groove is 20 to 30% of a diameter of the ball, and a groove curvature of the raceway groove is 50.5 to 56% of the diameter of the ball.
7. The multi-row thrust ball bearing according to claim 1, wherein a ridge line, formed by the raceway groove and a shoulder part of the raceway groove, is chamfered.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0038]
[0039]
[0040]
[0041]
[0042]
[0043]
[0044]
[0045]
DESCRIPTION OF EMBODIMENT
[0046] Hereinafter, an embodiment of the multi-row thrust ball bearing according to the present invention will be described in detail with reference to the drawings.
[0047] As illustrated in
[0048] Referring to
[0049] The outer diameter side raceway groove 23A and the inner diameter side raceway groove 23B are formed so that the cross-sectional shape in the radial direction is substantially arcuate. Further, as illustrated in
[0050] An annular outer diameter side edge portion 24 and an inner diameter side edge portion 25 are formed so as to protrude in the axial direction on the outer diameter side and the inner diameter side of the facing surfaces of the raceways 21 and 22, respectively. Processing of the raceways 21 and 22 requires grinding process of a back surface portion 26, the outer diameter side raceway groove 23A, and the inner diameter side raceway groove 23B. The grinding process of the back surface portion 26 requires an outer diameter side guide portion having a predetermined thickness determined for each processing equipment, and the outer diameter side edge portion 24 is used as the outer diameter side guide portion.
[0051] By the outer diameter side edge portion 24 and the inner diameter side edge portion 25, there are annular recesses 14 formed on the facing surfaces of the raceways 21 and 22, which are capable of accommodating the retainer 40, between the outer diameter side edge portion 24 and the inner diameter side edge portion 25. As illustrated in
[0052] Further, the annular recesses 14 obtained by forming the outer diameter side edge portion 24 and the inner diameter side edge portion 25 can be utilized as a lubricant reservoir for lubricating the balls 30, and the rolling resistance of the balls 30 is reduced, and wear of the balls 30, the outer diameter side raceway groove 23A, and the inner diameter side raceway groove 23B is suppressed.
[0053] In the present embodiment, the pair of raceways 21 and 22 and the plurality of balls 30 are made of metal, and it is preferable to form a surface-hardened layer by nitriding or the like in order to improve durability. Further, by forming the raceways 21 and 22 from the same member, the groove accuracy of the outer diameter side raceway groove 23A and the inner diameter side raceway groove 23B of the raceways 21 and 22 can be improved, and the manufacturing cost can be reduced.
[0054] Now, as illustrated in
[0055] As illustrated in
[0056] Further, as illustrated in
[0057] As a result, by ensuring the height of the claw-shaped protrusion 42, the ball 30 can be reliably held and the ball 30 can be prevented from falling out of the pocket 41. Further, even when the pair of raceways 21 and 22 are arranged closely to each other, since there is no possibility that the claw-shaped protrusions 42 interfere with the raceways 21 and 22, the multi-row thrust ball bearing 10 can be thinned.
[0058] The retainer 40 preferably has a sufficient elasticity to allow the claw-shaped protrusions 42 to bend and open when the ball 30 is fitted into the pocket 41, and has a small frictional resistance. For example, for its material, a synthetic resin is used, and for example, resins such as polyamide, polyacetal, high-density polyethylene, nylon, and the like can be used.
[0059] The multi-row thrust ball bearing 10 of the present embodiment is such that, by arranging the balls 30 along the double rows on the outer diameter side and the inner diameter side of the pair of raceways 21 and 22, the number of balls 30 is increased, and the load capacity is increased while space is efficiently utilized. The number of balls 30 on the outer diameter side and the inner diameter side can be arbitrarily set.
[0060] Further, as illustrated in
[0061] However, even when the pockets 41 on the outer diameter side and the pockets 41 on the inner diameter side are arranged so as to be shifted in phase from each other, as illustrated in
[0062] Therefore, for those portions where the phases of the pockets 41 on the outer diameter side and the inner diameter side are close to each other and the walls of the pockets 41 are relatively thin as compared with the walls of the other portion, it is preferable that continuous portions 44 for connecting the pockets 41 on the outer diameter side and the pockets 41 on the inner diameter side are provided in advance in the retainer to prevent the walls from being broken during the operation of the multi-row thrust ball bearing 10. The phase difference between the pockets 41 on the outer diameter side and the inner diameter side that requires the continuous portion 44 to be formed is 5° or less, for example.
[0063] Further, as illustrated in
[0064] Further, as illustrated in
[0065] As described above, according to the multi-row thrust ball bearing 10 of the present embodiment, the plurality of balls 30 are arranged in double rows between the outer diameter side raceway groove 23A and the inner diameter side raceway groove 23B of the pair of raceways 21 and 22. As a result, the load can be supported by more balls than the conventional thrust ball bearing, the load capacity of the thrust ball bearings can be increased, and both the radial load and the thrust load can be supported.
[0066] Further, the claw-shaped protrusion 42 is formed on the opening edge portion 43 of each pocket 41 so as to face only in the circumferential direction of the retainer 40. The maximum width W of the claw-shaped protrusion 42 in the radial direction is set to be smaller than the maximum width L of the outer diameter side raceway groove 23A and the inner diameter side raceway groove 23B in the radial direction. As a result, the multi-row thrust ball bearing 10 is assembled with the claw-shaped protrusions 42 accommodated in the outer diameter side raceway groove 23A and the inner diameter side raceway groove 23B, so that the intervals between the pair of raceways 21 and 22 can be narrowed, and the multi-row thrust ball bearing 10 can be thinned.
[0067] Note that the present invention is not limited to the embodiments described above, but may encompass modifications or improvements, as appropriate. For example, in the present embodiment, although it has been described that the balls are arranged in two rows at positions different from each other in the radial direction, the balls may be arranged in multiple rows including three or more rows (that is, a multi-row thrust ball bearing).
[0068] Although various embodiments have been described above with reference to the drawings, it goes without saying that the present invention is not limited to such examples. It will be apparent that those skilled in the art, within the scope described in the claims, can come up with various kinds of modification examples, or modifications, which are naturally within the technical scope of the present disclosure. In addition, the components in the embodiment described above may be arbitrarily combined without departing from the spirit of the disclosure.
[0069] This application is based upon Japanese Patent Application (Application No. 2019-024427), filed on Feb. 14, 2019, the entire contents of which are incorporated herein by reference.
REFERENCE SIGNS LIST
[0070] 10: multi-row thrust ball bearing [0071] 14: recess [0072] 21, 22: raceway [0073] 23: raceway groove [0074] 23A: outer diameter side raceway groove (raceway groove) [0075] 23B: inner diameter side raceway groove (raceway groove) [0076] 24: outer diameter side edge portion [0077] 25: inner diameter side edge portion [0078] 26: back surface portion [0079] 27: shoulder portion [0080] 28: chamfered portion [0081] 30: ball (rolling body) [0082] 40: retainer [0083] 41: pocket [0084] 42: claw-shaped protrusion [0085] 43: opening edge portion (periphery of opening) [0086] 44: continuous portion [0087] d: diameter of ball [0088] H: depth of raceway groove [0089] L: maximum width of raceway groove in radial direction [0090] r: groove curvature of raceway groove [0091] W: maximum width of claw-shaped protrusion in radial direction