Rolling bearing
09995343 ยท 2018-06-12
Assignee
Inventors
Cpc classification
F16C35/067
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/586
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C19/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C19/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C2226/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C19/52
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16C35/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/58
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C19/52
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A rolling bearing includes an inner ring, an outer ring, a plurality of balls, and a cage that holds the balls. The inner ring is a rotating ring, and the outer ring is a fixed ring. An annular groove for creep suppression is formed in a fitting surface of the rolling bearing that is fitted on a mating member to which the outer ring is attached. The annular groove has a groove main body portion and inclined groove portions located on opposite sides of the groove main body portion in an axial direction and formed to be shallower than the groove main body portion such that the depth of each of the inclined groove portions increases toward the groove main body portion. The inclined groove portions come into contact with the mating member when the outer ring is elastically deformed by a radial load received from the balls.
Claims
1. A rolling bearing comprising: an inner ring; an outer ring; a plurality of rolling elements interposed between the inner ring and the outer ring; and a cage that holds the rolling elements, one of the inner ring and the outer ring being a rotating ring and the other being a fixed ring, wherein a fitting surface of the fixed ring attached to a mating member is formed as a first partial peripheral surface and a second partial peripheral surface each of which is a surface of the fixed ring facing the mating member in a radial direction, the first partial peripheral surface being arranged on one side in an axial direction, the second partial peripheral surface being arranged on the other side in the axial direction, and an annular groove for creep suppression is formed between the first partial peripheral surface and the second partial peripheral surface, the annular groove has a groove main body portion and inclined groove portions located on opposite sides of the groove main body portion in the axial direction and formed to be shallower than the groove main body portion such that a depth of each of the inclined groove portions increases toward the groove main body portion, and the inclined groove portions come into contact with the mating member when the fixed ring is elastically deformed by a radial load received from the rolling elements.
2. The rolling bearing according to claim 1, wherein the groove main body portion has a first groove in a center of the groove main body portion in the axial direction and second grooves located on opposite sides of the first groove in the axial direction and each formed to be continuous with the first groove and to be shallower than the first groove, and each of the second grooves has a groove depth at which a portion of the second groove that is closer to the first groove comes into contact with the mating member when the fixed ring is elastically deformed under the radial load received from the rolling elements.
3. The rolling bearing according to claim 2, wherein the portion of each of the second grooves is in contact with or out of contact with the mating member depending on a magnitude of the radial load imposed on the fixed ring.
4. The rolling bearing according to claim 1, wherein each of the inclined groove portions is in contact with or out of contact with the mating member depending on a magnitude of the radial load imposed on the fixed ring.
5. The rolling bearing according to claim 4, wherein the groove main body portion has a first groove in a center of the groove main body portion in the axial direction and second grooves located on opposite sides of the first groove in the axial direction and each formed to be continuous with the first groove and to be shallower than the first groove, and each of the second grooves has a groove depth at which a portion of the second groove that is closer to the first groove comes into contact with the mating member when the fixed ring is elastically deformed under the radial load received from the rolling elements.
6. The rolling bearing according to claim 5, wherein the portion of each of the second grooves is in contact with or out of contact with the mating member depending on a magnitude of the radial load imposed on the fixed ring.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The foregoing and further features and advantages of the invention will become apparent from the following description of example embodiments with reference to the accompanying drawings, wherein like numerals are used to represent like elements and wherein:
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DETAILED DESCRIPTION OF EMBODIMENTS
(12) Embodiments of the invention will be described based on the drawings.
(13) Annular portions 5a, 5b are provided on opposite sides of an inner peripheral surface 3 of the housing 2 (also referred to as a housing inner peripheral surface 3) in an axial direction. The rolling bearings 7, 7 are bearings for motors to which a preload is applied. The rolling bearings 7, 7 are subjected to a load (preload) in one direction along an axial direction.
(14) The rolling bearing 7 on one side (in
(15)
(16) The outer ring 12 is attached to the housing inner peripheral surface 3. The rolling elements are interposed between the inner ring 11 and the outer ring 12. The cage 14 holds the rolling elements. The rolling elements in the present embodiment are balls 13, and the rolling bearing 7 depicted in
(17) In the present embodiment, the inner ring 11 and the rotating shaft 4 are assembled in an interference fit state. The inner ring 11 is closely fitted over the rotating shaft 4 so as to be rotatable integrally with the rotating shaft 4. In contrast, the outer ring 12 is attached to the fixed housing 2. The outer ring 12 is assembled on the housing inner peripheral surface 3 in a clearance fit state. Thus, in a use state where the rotating shaft 4 is rotating along with the inner ring 11, creep (slip of the outer ring 12 with respect to the housing 2 in a circumferential direction) may occur between the outer ring 12 and the housing 2. The creep will further be described below.
(18) An inner-ring raceway groove (raceway surface) 11a is formed in an outer peripheral surface of the inner ring 11 such that the balls 13 roll through the inner-ring raceway groove 11a. An outer-ring raceway groove (raceway surface) 12a is formed in an inner peripheral surface of the inner ring 11 such that the balls 13 roll through the outer-ring raceway groove 12a. The balls 13 are provided in an annular space 15 between the inner ring 11 and the outer ring 12. Rotation of the rolling bearing 7 (rotation of the inner ring 11) allows the balls 13 to roll through the inner-ring raceway groove 11a and the outer-ring raceway groove 12a while being held by the cage 14.
(19) The cage 14 holds the balls 13 at predetermined intervals (regular intervals) along the circumferential direction. The cage 14 has a plurality of pockets 18 formed along the circumferential direction and in which the balls 13 are housed. The cage 14 of the present embodiment has a circular ring portion 14a and a plurality of cage bars 14b. The circular ring portion 14a is provided on one side of the balls 13 in the axial direction. The cage bars 14b extend from the circular ring portion 14a toward the other side in the axial direction. Each of the pockets 18 is arranged on the other side (in
(20) In the rolling bearing 7 in the present embodiment, the outer ring 12, which is a fixed ring, is attached to the housing 2 (mating member). An outer peripheral surface of the outer ring 12 corresponds to a fitting surface 22 for the housing 2 (inner peripheral surface 3). As depicted in
(21) In the diagrams depicting the annular groove 32, the annular groove 32 is illustrated to be deep in order to facilitate understanding of the shape thereof. However, the depth of the annular groove 32 is actually very small compared to the thickness of the outer ring 12, and may be, for example, less than 1 mm.
(22) Now, creep will be described which may occur between the housing 2 and the outer ring 12. The following three types of creep may occur in the rolling bearing 7.
(23) A bearing rotating direction described below is, in the present embodiment, a rotating direction of the inner ring 11, which is a rotating ring. First creep: creep in which the outer ring 12 slips slowly in the same direction as the bearing rotating direction Second creep: creep in which the outer ring 12 slips quickly in the same direction as the bearing rotating direction Third creep: creep in which the outer ring 12 slips in a direction opposite to the bearing rotating direction
(24) The first creep is likely to occur when a heavy load is imposed on the rolling bearing 7 in the radial direction. The first creep is expected to occur in accordance with the following mechanism. That is, if a heavy load is imposed on the rolling bearing 7 in the radial direction, the balls 13 pass through the outer-ring raceway groove 12a under the high load, and at this time, the outer peripheral side of the outer ring, which is located immediately below the balls 13, is partly elastically deformed. Since the balls 13 move along the outer-ring raceway groove 12a, the outer ring 12 is subjected to pulsating deformation (displacement). Thus, relative slip results from elastic deformation of a contact area between the outer ring 12 and the housing 2, and is expected to cause the first creep.
(25) The second creep is the same as the first creep in the moving direction (slip direction) of the outer ring 12. However, the second creep is likely to occur when no load is imposed on the rolling bearing 7 in the radial direction. In other words, the second creep is expected to result from rotation of the outer ring 12 in conjunction with rotation of the inner ring 11 when no load is imposed in the radial direction.
(26) In the third creep, the outer ring 12 moves (slips) in the direction opposite to the moving (slip) direction in the first and second creeps. The third creep is expected to result from centrifugal whirling of the outer ring 12 along the housing inner peripheral surface 3 caused by an unbalanced load in the radial direction.
(27) In the rolling bearing 7 in the present embodiment, the annular groove 32 is formed in the fitting surface 22 of the outer ring 12 and radially outward of the outer-ring raceway groove 12a in order to suppress the first creep. The annular groove 32 depicted in
(28) The annular groove 32 is formed in the fitting surface 22 of the outer ring 12, which is fitted on the housing 2. This allows restraint of the relative slip caused by elastic deformation as described above in connection with the generating mechanism of the first creep, enabling the first creep to be suppressed. In other words, when a heavy load is imposed on the rolling bearing 7 in the radial direction, an area of the outer ring 12 located radially outward of the outer-ring raceway groove 12a is elastically deformed outward in the radial direction (the diameter of the outer ring 12 is expanded). However, the annular groove 32 formed in this area allows the elastic deformation (diameter expansion) to occur mainly within the range of the annular groove 32. Thus, the effect of the direct contact between the elastically deformed portion and the housing inner peripheral surface 3 can be reduced. As a result, (substantially) no elastic deformation is transmitted to the housing 2, or the mating member, suppressing possible first creep between the outer ring 12 and the housing 2. As described above, the annular groove 32 serves as a groove (clearance groove) for suppression of the first creep.
(29) Formation of the annular groove 32 as described above provides the outer ring 12 with cylindrical portions 36, 37 on the opposite sides of the annular groove 32 in the axial direction. Outer peripheral surfaces 36a, 37a of the cylindrical portions 36, 37 are cylindrical surfaces centered around a bearing center line CO of the rolling bearing 7 and can come into contact with the housing 2 (inner peripheral surface 3) along the housing 2. As depicted in
(30) A configuration of the annular groove 32 will be described.
(31) The pair of inclined groove portions 48, 48 has an inclined shape (tapered shape) such that the depth of each inclined groove portion 48 increases toward the groove main body portion 40. The inclined groove portion 48 is shallower than the groove main body portion 40 at an end point 48c of the inclined groove portion 48, which is the deepest point (a point closest to the groove main body portion 40). A crossing between a bottom surface 48a of the inclined groove portion 48 and the outer peripheral surface 36a (37a) corresponds to a start point 48b of the inclined groove portion 48. A crossing between the bottom surface 48a of the inclined groove portion 48 and the side surface 40b of the groove main body portion 40 corresponds to an end point 48c of the inclined groove portion 48. The bottom surface 48a of the inclined groove portion 48 has a linear inclined shape in a section including the bearing center line C0. An angle formed between the outer peripheral surface 36a (37a) and an extension of the bottom surface 48a is denoted as in
(32) The shape of the inclined groove portion 48 (inclination angle ) is set as follows. In
(33) As described above, the inclined shape (inclination angle ) of the inclined groove portion 48 is set such that the bottom surface 48a comes into surface contact with the housing inner peripheral surface 3 when a strain on the outer ring 12 increases as the radial load imposed on the outer ring 12 becomes relatively heavy. In other words, the shape of the inclined groove portion 48 is set such that the bottom surface 48a approaches the cylindrical surface centered around the bearing center line CO when a heavy radial load is imposed on the outer ring 12 to elastically deform the outer ring 12 at the inclined groove portion 48.
(34) In the annular groove 32 having the inclined groove portions 48, 48 as described above, when the radial load imposed on the outer ring 12 becomes relatively heavy to place an increased strain on the outer ring 12, at least a part of each inclined groove portion 48 comes into contact with the housing 2 via the surface of the groove portion rather than via a corner thereof. This enables prevention of a local increase in the contact surface pressure on the housing 2. When a relatively light radial load is imposed on the outer ring 12 to place a low strain on the outer ring 12, the inclined groove portion 48 does not come into contact with the housing 2. Thus, the annular groove 32 includes the groove main body portion 40 and the inclined groove portions 48, 48 and has an increased groove width XO (see
(35) Improvement of the creep suppression effect based on the increased groove width X0 of the annular groove 32 will be described. When the outer ring 12 is elastically deformed outward in the radial direction by a radial load, the amount of strain placed on an outer peripheral portion of the outer ring 12 is high in a central portion Q1 close to the contact point P between each of the balls 13 and the outer-ring raceway surface 12a and decreases toward opposite sides Q2, Q3 in the axial direction. The amount of strain placed on the outer peripheral portion of the outer ring 12 is depicted in an upper area of
(36) Thus, in the rolling bearing 7 depicted in
(37) As described above, the case where a relatively heavy radial load is imposed on the rolling bearing 7 (a large amount of strain is placed on the rolling bearing 7) includes, for example, the case where, with the rotating apparatus (see
(38) As described above, in the rolling bearing 7 depicted in
(39)
(40) Functions of the annular groove 32 depicted in
(41) As described above, when a radial load is imposed on the rolling bearing 7, the outer ring 12 is elastically deformed by a radially outward load received from the balls 13. When the outer ring 12 is elastically deformed by a relatively heavy radial load, a portion 43 of each of the second grooves 42 that is closer to the first groove 41 comes into contact with the housing 2 (inner peripheral surface 3) as depicted in
(42) In contrast, even when a relatively heavy radial load, namely, a radial load heavy enough to bring the portion 43 into contact with the housing 2, is imposed on the outer ring 12, the first groove 41 is precluded from coming into contact with the housing 2 (inner peripheral surface 3). That is, the first groove 41 has the groove depth (h1) at which the first groove 41 is precluded from coming into contact with the housing 2.
(43) In the annular groove 32 depicted in
(44) As described above, in the rolling bearing 7 depicted in
(45) In the annular groove 32 depicted in
(46) As described above, the portions 43 of the second grooves 42 are allowed to be in contact with the housing 2 (see
(47) Even if an increased radial load imposed on the outer ring 12 brings the portions 43 of the second grooves 42 into contact with the housing 2, the first groove 41 is out of contact with the housing 2. This enables possible creep of the outer ring 12 to be effectively suppressed.
(48) In the above-described embodiment (see
(49) The embodiments as disclosed above are illustrative in every way and are not restrictive. In other words, the rolling bearing in the invention is not limited to the illustrated forms but may be in any other form within the scope of the invention. With reference to
(50) In the invention, the annular groove is formed in the fixed ring to allow possible creep to be suppressed and also to enable suppression of a local increase in the contact surface pressure on the mating member to which the fixed ring is attached.