Rolling bearing device
09909622 ยท 2018-03-06
Assignee
Inventors
Cpc classification
F16C33/3837
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/3843
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/6674
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C19/163
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/6659
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C2322/39
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16C33/66
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/38
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A rolling bearing device includes: a bearing part having an inner ring, an outer ring, and balls; and an oil supply unit provided adjacent to an annular space between the inner ring and the outer ring and capable of supplying lubricating oil to the annular space. The bearing part has an annular cage provided in the annular space. The cage has a pair of annular parts and a plurality of bars. An outer circumferential surface of the annular part located on a first axial side has a contact portion capable of coming in contact with a part of an inner circumferential surface of the outer ring. A radially outer surface of the cage has, with the contact portion being a top, a first inclined surface provided from the top toward the first axial side and a second inclined surface provided from the top toward a second axial side.
Claims
1. A rolling bearing device comprising: a bearing part having an inner ring, an outer ring, a plurality of rolling elements interposed between the inner ring and the outer ring, and an annular cage provided in an annular space between the inner ring and the outer ring to retain the plurality of rolling elements; and an oil supply unit provided axially adjacent to the annular space and capable of supplying lubricating oil to the annular space, wherein the cage has a pair of annular parts, one of the annular parts being provided on a first axial side of the rolling elements and the other one of the annular parts being provided on a second axial side of the rolling elements, and a plurality of bars that are provided at intervals in a circumferential direction and connect the pair of annular parts to each other, clearances between the bars adjacent to one another in the circumferential direction constituting pockets in which the rolling elements are retained, an outer circumferential surface of the annular part located on the first axial side has a contact portion capable of coming in contact with a part of an inner circumferential surface of the outer ring, and a radially outer surface of the cage has, with the contact portion being a top at which a radial dimension of the cage is largest, a first inclined surface provided from the top toward the first axial side and a second inclined surface provided from the top toward the second axial side.
2. The rolling bearing device according to claim 1, wherein the first inclined surface is a surface of which an outer diameter increases gradually from an end of the cage on the first axial side toward the contact portion, and the second inclined surface is a surface of which an outer diameter increases gradually from an end of the cage on the second axial side toward the contact portion and of which an inclination angle is smaller than that of the first inclined surface.
3. The rolling bearing device according to claim 2, wherein the bearing part has a configuration of an angular contact ball bearing in which balls constituting the rolling elements come in contact with the inner ring and the outer ring at a contact angle, and the outer ring has a raceway surface which has a circular concave shape in cross-section and on which the balls roll, and a pair of shoulders that face the radially outer surface of the cage across a clearance, one of the shoulders being provided on the first axial side of the raceway surface and the other one of the shoulders being provided on the second axial side of the raceway surface.
4. The rolling bearing device according to claim 1, further comprising a clearance filler that reduces an axial dimension of an annular clearance provided between the oil supply unit and the annular part located axially adjacent to the oil supply unit.
5. The rolling bearing device according to claim 4, wherein the clearance filler is an annular spacer provided on an oil supply unit side, and the spacer has a first part located on a radially outer side, and a second part provided on a radially inner side of the first part and having an inclined guide surface that extends toward the radially outer side so as to gradually approach the cage.
6. A rolling bearing device comprising: a bearing part having an inner ring, an outer ring, a plurality of rolling elements interposed between the inner ring and the outer ring, and an annular cage provided in an annular space between the inner ring and the outer ring to retain the plurality of rolling elements; an oil supply unit provided axially adjacent to the annular space and capable of supplying lubricating oil to the annular space; and a clearance filler, wherein the cage has a pair of annular parts, one of the annular parts being provided on a first axial side of the rolling elements and the other one of the annular parts being on a second axial side of the rolling elements, and a plurality of bars that are provided at intervals in a circumferential direction and connect the pair of annular parts to each other, clearances between the bars adjacent to one another in the circumferential direction constituting pockets in which the rolling elements are retained, an outer circumferential surface of the annular part located axially adjacent to the oil supply unit has a contact portion capable of coming in contact with a part of an inner circumferential surface of the outer ring, and the clearance filler reduces an axial dimension of an annular clearance provided between the oil supply unit and the annular part located axially adjacent to the oil supply unit.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Features, advantages, and technical and industrial significance of exemplary embodiments will be described below with reference to the accompanying drawings, in which like numerals denote like elements, and wherein:
(2)
(3)
(4)
(5)
DETAILED DESCRIPTION OF EMBODIMENTS
(6) An embodiment of the present disclosure will be described below on the basis of the drawings.
(7) The bearing part 20 has an inner ring 21, an outer ring 22, a plurality of balls (rolling elements) 23, and an annular cage 24 retaining the balls 23. The inner ring 21 is a cylindrical member fitted on the outer side of the shaft 7, and has a raceway groove (hereinafter referred to as an inner ring raceway groove 25) formed as a raceway surface in the outer circumference. The outer ring 22 is a cylindrical member fixed to an inner circumferential surface of the bearing housing 8, and has a raceway groove (hereinafter referred to as an outer ring raceway groove 26) formed as a raceway surface in the inner circumference. In this embodiment, the inner ring 21 rotates along with the shaft 7 relative to the outer ring 22.
(8) The balls 23 are interposed between the inner ring 21 and the outer ring 22, and roll on the inner ring raceway groove 25 and the outer ring raceway groove 26. Thus, the inner ring 21 and the outer ring 22 are disposed concentrically, with an annular space 11 formed between the inner ring 21 and the outer ring 22. In this embodiment, the balls 23 have a contact angle to the raceway grooves 25, 26, and thus the bearing part 20 has a configuration of an angular contact ball bearing.
(9) As the bearing part 20 has a configuration of an angular contact ball bearing, the balls 23 come in contact with the outer ring raceway groove 26 at positions on a first side in the axial direction (hereafter, referred to as the first axial side). Accordingly, the outer ring 22 has a shoulder 45 on the first axial side to prevent the balls 23 from rolling out of the outer ring raceway groove 26. In this embodiment, the outer ring 22 further has a similar shoulder 47 on a second side in the axial direction (hereafter, referred to as the second axial side). The shoulder 45 on the first axial side and the shoulder 47 on the second axial side have the same diameter (inner diameter).
(10) The cage 24 is provided in the annular space 11. The cage 24 is formed by an annular member, and a plurality of pockets 27 in which the balls 23 are retained are formed in the cage 24 along a circumferential direction. The cage 24 has a pair of annular parts 31, 32 provided one on each axial side of the balls 23, and a plurality of bars 33 connecting the annular parts 31, 32 to each other. The bars 33 are provided at intervals in the circumferential direction. Each region surrounded by the annular parts 31, 32 and the bars 33, 33 adjacent to each other in the circumferential direction constitutes the pocket 27. With one ball 23 housed in each pocket 27, the cage 24 can retain the plurality of balls 23 arrayed in the circumferential direction.
(11) The annular parts 31, 32 are provided between the inner ring 21 and the outer ring 22, axially adjacent to the balls 23 from both sides. An outer circumferential part of the annular part (first annular part) 31 located on the first axial side can come in sliding contact with a part of an inner circumferential surface (shoulder 45) of the outer ring 22, and the cage 24 is radially positioned by the outer ring 22 (outer ring guide). On the other hand, an outer circumferential part of the annular part (second annular part) 32 located on the second axial side does not come in contact with the outer ring 22 (shoulder 47).
(12) The oil supply unit 40 has an annular shape as a whole, and is provided adjacent to the annular space 11 of the bearing part 20 from the first axial side. In
(13) The main body part 41 is provided axially adjacent to the outer ring 22 that is a fixed ring. In this embodiment, the main body part 41 is separate from the outer ring 22 and functions also as an outer ring spacer, and thus the main body part 41 is made of metal for rigidity. The main body part 41 is an annular member (annular case) having an internal space, and a tank 62 (see
(14) In
(15) Although not shown, a power source (a power generator, a rechargeable battery, etc.) for the pump 61, various sensors (sensors for detecting temperature, vibration, the state of an oil film, etc.), and the control unit that controls the pump 61 on the basis of outputs from these sensors may also be included in the main body part 41. Alternatively, these components and the tank 62 may be provided outside the rolling bearing device 10.
(16) The extension part 42 axially extends from a portion (a radially inner portion of a side surface) of the main body part 41 to the vicinity of the balls 23, and is interposed between the first annular part 31 of the cage 24 and the inner ring 21. The extension part 42 has a first wall (outer circumferential wall) 66 on the side of the first annular part 31 of the cage 24 and a second wall (inner circumferential wall) 67 on the side of the inner ring 21. A hollow portion 68 is formed between the walls 66, 67. Inside the hollow portion 68, the discharge port 64 of the pump 61 opens toward the balls 23. The oil droplets (lubricating oil) discharged from the discharge port 64 can pass through the hollow portion 68 and head to the inside of the bearing where the balls 23 are present, and can reach the balls 23 and the inner ring raceway groove 25. Then, the lubricating oil adhering to the balls 23 and the inner ring raceway groove 25 can spread to the outer ring raceway groove 26 and the cage 24 to contribute to the lubrication of these components. Thus, the oil supply unit 40 is provided axially adjacent to the annular space 11 of the bearing part 20, and can supply the lubricating oil to the annular space 11.
(17) The cage 24 will be further described.
(18) That part of the inner circumferential surface of the outer ring 22 with which the contact portion 35 comes in contact is an inner circumferential surface 46 of the shoulder 45 provided on the first axial side of the outer ring raceway groove 26, and the inner circumferential surface 46 serves as a guide surface for the cage 24. When the bearing part 20 rotates, the cage 24 rotates along with the balls 23 relative to the outer ring 22 that is the fixed ring, so that the contact portion 35 and the inner circumferential surface 46 come in sliding contact with each other. Thus, it is necessary to supply the lubricating oil supplied from the oil supply unit 40 not only to the balls 23 and the raceway grooves 25, 26 but also to the part (sliding part) where the contact portion 35 and the inner circumferential surface 46 come in sliding contact with each other.
(19) For this reason, the rolling bearing device 10 has a configuration to gather the lubricating oil supplied from the oil supply unit 40 at the gap between the contact portion 35 of the cage 24 and the inner circumferential surface 46 of the shoulder 45. As a part of this configuration, the radially outer surface 28 of the cage 24 has two inclined surfaces 51, 52. Specifically, the radially outer surface 28 of the cage 24 has the contact portion 35 as a top at which the radial dimension of the cage 24 is largest. The first inclined surface 51 is a tapered surface provided from the top (contact portion 35) toward the first axial side, and the second inclined surface 52 is a tapered surface provided from the top (contact portion 35) toward the second axial side. Thus, in a cross-section including a bearing centerline C0 (see
(20) In this embodiment, the contact portion 35 is formed as a short cylindrical surface centered on the bearing centerline C0 (see
(21) Thus, the radially outer surface 28 of the cage 24 has the contact portion 35 that can come in contact with the inner circumferential surface 46 of the shoulder 45 constituting a part of the inner circumferential surface of the outer ring 22, and the radially outer surface 28 further has, with the contact portion 35 being the top, the first inclined surface 51 and the second inclined surface 52 provided one on each axial side of the top. When the bearing part 20 rotates, i.e., the inner ring 21 in this embodiment rotates, the balls 23 and the cage 24 also rotate in the same direction. Thus, under the centrifugal force caused by this rotation, lubricating oil Q adhering to the radially outer surface 28 of the cage 24 flows along the first inclined surface 51 and the second inclined surface 52 and is guided to the contact portion 35. Moreover, the lubricating oil Q trying to pass through the pockets 27 toward the radially outer side is likely to join the lubricating oil Q flowing along the second inclined surface 52 and be carried toward the contact portion 35.
(22) In this way, the lubricating oil Q can be gathered at the gap between the contact portion 35 of the cage 24 and the inner circumferential surface 46 of the shoulder 45 of the outer ring 22. Accordingly, even when the amount of lubricating oil Q supplied from the oil supply unit 40 is small, the lubricating oil Q can be efficiently used to prevent seizure due to sliding between the cage 24 and the outer ring 22.
(23) The first inclined surface 51 and the second inclined surface 52 will be further described. The first inclined surface 51 is a surface of which the outer diameter increases gradually from an end 53 of the cage 24 on the first axial side toward the contact portion 35. The second inclined surface 52 is a surface of which the outer diameter increases gradually from an end 54 of the cage 24 on the second axial side toward the contact portion 35. Thus, an outer circumferential surface 36 of the second annular part 32 located on the second axial side and radially outer surfaces 37 of the bars 33 continuous with the second annular part 32 are included in the second inclined surface 52. In addition, a part of the outer circumferential surface 34 of the first annular part 31 on the first axial side is also included in the second inclined surface 52.
(24) An inclination angle 2 of the second inclined surface 52 is smaller than an inclination angle 1 of the first inclined surface 51. The inclination angles 1, 2 are inclination angles relative to an imaginary cylindrical surface centered on the bearing centerline C0. If the inclination angle 02 of the second inclined surface 52 is set to a small angle, the radial dimension of the second annular part 32 can be prevented from becoming too small. Moreover, a radial clearance a formed between an inner circumferential surface 48 of the shoulder 47 located on the second axial side of the outer ring 22 and the second annular part 32 can be reduced.
(25) As described above, the outer ring 22 has the raceway surface (outer ring raceway groove 26) which has a circular concave shape in cross-section and on which the balls 23 roll, and the pair of shoulders 45, 47 that are provided one on each axial side of the outer ring raceway groove 26, and the outer ring 22 has a deep groove shape. Accordingly, the outer ring 22 faces the radially outer surface 28 of the cage 24 across a clearance at each of the shoulders 45, 47. At the shoulder 45 located on the first axial side, the first annular part 31 (contact portion 35) can come in contact with the outer ring 22. At the shoulder 47 located on the second axial side, as described above, the second annular part 32 does not come in contact with the outer ring 22 and the clearance a formed therebetween is small. This allows the lubricating oil Q adhering to the inner circumferential surface 48 of the shoulder 47 of the outer ring 22 to be entrained and moved to the contact portion 35 by the lubricating oil Q flowing along the second inclined surface 52.
(26) Thus, as the cage 24 has the first inclined surface 51 and the second inclined surface 52, when the bearing part 20 rotates, the lubricating oil Q can be gathered along the inclined surfaces 51, 52 toward the contact portion 35, and such lubricating oil Q can be used to prevent seizure due to sliding between the cage 24 and the outer ring 22.
(27) Another configuration to gather the lubricating oil at the gap between the contact portion 35 of the cage 24 and the inner circumferential surface 46 of the shoulder 45 of the outer ring 22 will be described. As shown in
(28) Therefore, the rolling bearing device 10 further includes a clearance filler 55 that reduces an axial dimension X of the annular clearance B. In the embodiment shown in
(29) At least a part (first part 56) of the clearance filler 55 protrudes further toward the second axial side than a side surface 29 of the outer ring 22 in contact with the oil supply unit 40. Thus, the axial dimension X of the annular clearance B formed between the oil supply unit 40 and the first annular part 31 can be reduced. The clearance filler 55 (first part 56) is provided in contact with the inner circumferential surface 46 of the outer ring 22.
(30) When the bearing part 20 rotates, the cage 24 also rotates along with the balls 23, causing air around the first annular part 31 to be entrained and rotate in the circumferential direction. Accordingly, if the annular clearance B is narrowed by the clearance filler 55 as described above, the lubricating oil Q present in the annular clearance B can be involved in the rotating air. Moreover, the lubricating oil Q adhering to the side surface of the clearance filler 55 can be caused to flow by the flow of air along this side surface and supplied to the inner circumferential surface of the outer ring 22. Thus, according to the clearance filler 55, the lubricating oil Q present in the annular clearance B is given a chance to be supplied to the gap between the outer ring 22 and the contact portion 35 of the cage 24, which allows efficient use of the lubricating oil Q for lubrication.
(31) Even when a wide annular clearance B is left as is without the clearance filler 55 disposed therein, a flow of air in the circumferential direction occurs as the bearing part 20 rotates. However, if the annular clearance B is wide, the flow velocity of the air becomes lower on the side of the side surface 43 of the main body part 41 that is farther away from the cage 24. Accordingly, the lubricating oil adhering to the side surface 43 is less likely to be subjected to this flow of air and involved in the air. By contrast, if the clearance filler 55 is provided as shown in
(32) In the embodiment shown in
(33) According to this configuration, the flow velocity of the rotating air can be increased on the radially outer side in the annular clearance B, so that the lubricating oil Q on the radially inner side in the annular clearance B can be carried toward the radially outer side. Moreover, the lubricating oil Q adhering to the inclined guide surface 58 can flow along the inclined guide surface 58 toward the radially outer side. Thus, the lubricating oil Q on the radially inner side in the annular clearance B becomes available for lubricating the gap between the outer ring 22 and the contact portion 35 of the cage 24.
(34) In the embodiment shown in
(35) In the embodiments shown in
(36) To describe with reference to
(37) The outer circumferential surface 34 of the (first) annular part 31 located axially adjacent to the oil supply unit 40 has the contact portion 35 that can come in contact with a part of the inner circumferential surface (the inner circumferential surface 46 of the shoulder 45) of the outer ring 22. The rolling bearing device 10 further includes the clearance filler 55, and the clearance filler 55 reduces the axial dimension X of the annular clearance B formed between the oil supply unit 40 and the (first) annular part 31 located axially adjacent to the oil supply unit 40.
(38) According to the above rolling bearing device 10, when the bearing part 20 rotates, the cage 24 also rotates along with the balls 23, causing the air around the first annular part 31 to be entrained and rotate in the circumferential direction. Accordingly, if the annular clearance B is narrowed by the clearance filler 55, the lubricating oil Q present in the annular clearance B can be involved in the rotating air. Thus, the lubricating oil Q present in the annular clearance B is given a chance to be supplied to the gap between the outer ring 22 and the contact portion 35 of the cage 24. As a result, even when the amount of lubricating oil supplied from the oil supply unit 40 is small, the lubricating oil Q can be efficiently used to prevent seizure etc. due to sliding between the cage 24 and the outer ring 22.
(39) For the clearance filler 55, the configurations shown in
(40) To describe with reference to
(41) The rolling bearing device 10 of the present disclosure is not limited to the embodiments shown in the drawings but may be implemented in any other embodiments within the scope of the present disclosure. For example, in the above embodiments, the case has been described where the outer circumferential surface 36 (see