Bearing
12631211 ยท 2026-05-19
Assignee
Inventors
Cpc classification
F16C19/38
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/3706
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16C19/38
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C19/40
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A bearing includes: a plurality of cylindrical rollers arranged in a circumferential direction; and a separator adjacent to the cylindrical rollers in the circumferential direction. The separator has a cylindrical shape. An outer peripheral surface of the separator has an annular groove defined by a groove wall surface, a shape of the groove wall surface in a cross section including a center axis being an arc shape. The separator is oriented such that the groove wall surface contacts outer peripheral surfaces of the cylindrical rollers adjacent to separator in the circumferential direction. The groove wall surface has a curvature radius larger than a curvature radius of the outer peripheral surface of each cylindrical roller.
Claims
1. A bearing comprising: a first raceway member whose outer peripheral surface includes an annular first raceway surface; a second raceway member whose inner peripheral surface includes an annular second raceway surface facing the first raceway surface; a plurality of cylindrical rollers arranged in a circumferential direction such that the cylindrical rollers contact the first raceway surface and the second raceway surface in an annular rolling path along the first raceway surface and the second raceway surface; and a separator adjacent to the cylindrical rollers in the circumferential direction, the separator having a cylindrical shape, an outer peripheral surface of the separator having an annular groove defined by a groove wall surface, a shape of the groove wall surface in a cross section including a center axis of the separator being an arc shape, the separator being oriented such that the groove wall surface contacts outer peripheral surfaces of the cylindrical rollers adjacent to the separator in the circumferential direction, the groove wall surface having a curvature radius larger than a curvature radius of the outer peripheral surface of each cylindrical roller.
2. The bearing according to claim 1, wherein in the cross section of the separator including the center axis, the separator includes: a first corner, and a second corner located on a diagonal line of the separator with respect to the first corner, and in the cross section of the separator including the center axis, a length of the diagonal line is greater than or equal to an outer diameter of the separator.
3. The bearing according to claim 2, wherein the first raceway surface includes: a first contact surface to contact the outer peripheral surfaces of the cylindrical rollers, and a second contact surface to contact end surfaces of the cylindrical rollers, the second contact surface being orthogonal to the first contact surface, the second raceway surface includes: a third contact surface to contact the outer peripheral surfaces of the cylindrical rollers, and a fourth contact surface to contact end surfaces of the cylindrical roller, the fourth contact surface being orthogonal to the third contact surface, and the separator is sandwiched between the cylindrical rollers disposed on both sides of the separator in the circumferential direction with the groove wall surface being in contact with the cylindrical rollers such that the outer peripheral surface faces the fourth contact surface and is separated from the second contact surface, a first end surface of the separator in a direction in which the center axis extends faces the first contact surface, and a second end surface opposite to the first end surface faces the third contact surface.
4. The bearing according to claim 3, wherein the plurality of cylindrical rollers are arranged in a plurality of lines separated from one another in a width direction.
5. The bearing according to claim 2, wherein the plurality of cylindrical rollers are arranged in a plurality of lines separated from one another in a width direction.
6. The bearing according to claim 1, wherein the first raceway surface includes: a first contact surface to contact the outer peripheral surfaces of the cylindrical rollers, and a second contact surface to contact end surfaces of the cylindrical rollers, the second contact surface being orthogonal to the first contact surface, the second raceway surface includes: a third contact surface to contact the outer peripheral surfaces of the cylindrical rollers, and a fourth contact surface to contact end surfaces of the cylindrical roller, the fourth contact surface being orthogonal to the third contact surface, and the separator is sandwiched between the cylindrical rollers disposed on both sides of the separator in the circumferential direction with the groove wall surface being in contact with the cylindrical rollers such that the outer peripheral surface faces the fourth contact surface and is separated from the second contact surface, a first end surface of the separator in a direction in which the center axis extends faces the first contact surface, and a second end surface opposite to the first end surface faces the third contact surface.
7. The bearing according to claim 6, wherein the plurality of cylindrical rollers are arranged in a plurality of lines separated from one another in a width direction.
8. The bearing according to claim 1, wherein the plurality of cylindrical rollers are arranged in a plurality of lines separated from one another in a width direction.
Description
BRIEF DESCRIPTION OF DRAWINGS
(1)
(2)
(3)
(4)
(5)
DESCRIPTION OF EMBODIMENTS
Summary of Embodiment
(6) A bearing according to the present disclosure includes: a first raceway member whose outer peripheral surface includes an annular first raceway surface; a second raceway member whose inner peripheral surface includes an annular second raceway surface facing the first raceway surface; a plurality of cylindrical rollers arranged in a circumferential direction such that the cylindrical rollers contact the first raceway surface and the second raceway surface in an annular rolling path along the first raceway surface and the second raceway surface; and a separator adjacent to the cylindrical rollers in the circumferential direction. The separator has a cylindrical shape. An outer peripheral surface of the separator has an annular groove. The groove is defined by a groove wall surface, and a shape of the groove wall surface in a cross section including a center axis being an arc shape. The separator is oriented such that the groove wall surface contacts outer peripheral surfaces of the cylindrical rollers adjacent to the separator in the circumferential direction. The groove wall surface has a curvature radius larger than a curvature radius of the outer peripheral surface of each cylindrical roller.
(7) In the bearing, the curvature radius of the groove wall surface of the separator is larger than the curvature radius of the outer peripheral surface of each the cylindrical roller. Accordingly, as compared to a case where the curvature radius of the groove wall surface is equal to the curvature radius of the outer peripheral surface of each cylindrical roller, it is possible to suppress occurrence of damage such as indentation on the groove wall surface of the separator due to contact with the cylindrical rollers. Thus, the bearing can reduce damage of the separator as compared to conventional bearings.
(8) In the bearing, in a cross section of the separator including the center axis, the separator may include a first corner, and a second corner located on a diagonal line of the separator with respect to the first corner. In the cross section of the separator including the center axis, a length of the diagonal line may be greater than or equal to an outer diameter of the separator. This configuration can reduce falling down of the separator, as compared to a case where the length of the diagonal line is less than the outer diameter of the separator.
(9) In the bearing, the first raceway surface may include a first contact surface to contact the outer peripheral surfaces of the cylindrical rollers, and a second contact surface to contact end surfaces of the cylindrical rollers, the second contact surface being continuous with the first contact surface in an inner end of the first contact surface and being orthogonal to the first contact surface. The second raceway surface may include a third contact surface to contact the outer peripheral surfaces of the cylindrical rollers, and a fourth contact surface to contact end surfaces of the cylindrical roller, the fourth contact surface being continuous with the third contact surface in an inner end of the third contact surface and being orthogonal to the third contact surface. The cylindrical rollers may be disposed at both sides of the separator in the circumferential direction. The separator may be sandwiched between the cylindrical rollers disposed at both sides of the separator in the circumferential direction with the groove wall surface being in contact with the cylindrical rollers such that the outer peripheral surface faces the fourth contact surface and is separated from the second contact surface, a first end surface of the separator in a direction in which the center axis extends faces the first contact surface, and a second end surface opposite to the first end surface faces the third contact surface. This configuration can reduce wear of the separator caused by contact with the raceway.
(10) In the bearing, the plurality of cylindrical rollers may be arranged in a plurality of lines separated from one another in a width direction.
Specific Examples of Embodiment
(11) A specific embodiment of a bearing according to the present disclosure will be described hereinafter with reference to the drawings. In the following drawings, the same or corresponding parts are denoted by the same reference numerals, and the description thereof will not be repeated.
(12) First, a configuration of a bearing 1 according to this embodiment will be described with reference to
(13) The bearing 1 is a rolling bearing including a plurality of cylindrical rollers 30 as rolling elements. As illustrated in
(14) As illustrated in
(15) Each of the first raceway surfaces 13 includes a first contact surface 13A, and a second contact surface 13B continuous with the first contact surface 13A at an inner end of the first contact surface 13A. As illustrated in
(16) As illustrated in
(17) Each of the second raceway surfaces 23 includes a third contact surface 23A, and a fourth contact surface 23B continuous with the third contact surface 23A at an outer end of the third contact surface 23A. As illustrated in
(18) As illustrated in
(19) An annular rolling path (space) along the first raceway surfaces 13 and the second raceway surfaces 23 is formed between the first raceway member 10 and the second raceway member 20. As illustrated in
(20) Each of the cylindrical rollers 30 includes an imaginary first center axis A1 and an annular outer peripheral surface 30A surrounding the first center axis A1. As illustrated in
(21) In this embodiment, the plurality of cylindrical rollers 30 are arranged in a plurality of lines (first annular line and second annular line) separated from each other in the width direction D1. In each of the annular lines, the first center axes A1 of the cylindrical rollers 30 are oriented in the same direction. On the other hand, as illustrated in
(22) The bearing 1 further includes a plurality of separators 40 arranged adjacent to the cylindrical rollers 30 in the circumferential direction (
(23) As illustrated in
(24) As illustrated in
(25) The first annular surface 44 and the second annular surface 45 are annular surfaces surrounding the second center axis A2. As illustrated in
(26)
(27) As illustrated in
(28) As illustrated in
(29) As described above, in the bearing 1 according to this embodiment, the curvature radius r1 of the groove wall surface 46 of each separator 40 is larger than the curvature radius r2 of the outer peripheral surface 30A of each cylindrical roller 30. Thus, as compared to a case where the curvature radius r1 of the groove wall surface 46 is equal to the curvature radius r2 of the outer peripheral surface 30A of the cylindrical roller 30, it is possible to reduce occurrence of damage such as indentation on the groove wall surfaces 46 of the separators 40 due to contact with the cylindrical rollers 30. Accordingly, the bearing 1 according to this embodiment can reduce damage of the separators 40. In addition, since the bearing 1 according to this embodiment employs the separators 40 smaller in size than the cylindrical rollers 30, the number of the cylindrical rollers 30 can be increased. This can also enhance load bearing performance of the bearing 1.
(30) Other embodiments will now be described.
(31) In the embodiment described above, the case where the first raceway member 10 has an annular shape has been described as an example. However, the present disclosure is not limited to this example. The first raceway member may be a stud, for example. That is, the bearing according to the present disclosure is also applicable to a cam follower.
(32) In the bearing 1 according to the above embodiment, an inlet for placing the cylindrical rollers 30 in the rolling path formed between the first raceway surfaces 13 and the second raceway surfaces 23 may be formed through the second raceway member 20 in the radial direction D2. In this case, this inlet is closed with a lid (not shown). The lid may be fixed to the second raceway member 20 by a fixing member such as a pin.
(33) In the above embodiment, the case where the cylindrical rollers 30 and the separators 40 are alternately arranged in the entire raceway has been described as an example, but the present disclosure is not limited to this example. For example, the plurality of separators 40 may be disposed between two cylindrical rollers 30 arranged in the circumferential direction.
(34) In the above embodiment, the case where the outer peripheral surface 43 of each separator 40 includes the first annular surface 44 and the second annular surface 45 as well as the groove wall surface 46 has been described as an example, but the present disclosure is not limited to this example. For example, the entire outer peripheral surface 43 of each separator 40 may be the groove wall surface 46.
(35) In the above embodiment, the case where the length of the diagonal line L1 of each separator 40 is greater than or equal to the outer diameter L2 of the separator 40 has been described as an example, but the present disclosure is not limited to this example. The length of the diagonal line L1 may be equal to the outer diameter L2, or may be less than the outer diameter L2. In each separator 40, one or both of the first recess 41 and the second recess 42 may be omitted.
(36) It should be understood that the embodiments disclosed here are illustrative and non-restrictive in every respect. The scope of the present disclosure is defined by the terms of the claims, rather than the description above, and is intended to include any modifications within the scope and meaning equivalent to the terms of the claims.