Bearing Structure

The bearing structure uses V-shaped protrusions and a high-thermal expansion support member to generate dynamic pressure, addressing thermal expansion issues and reducing costs while improving durability.

JP7732959B2Active Publication Date: 2025-09-02HONDA MOTOR CO LTD
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Patent Information

Application Number
JP2022157288
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-09-30
Publication Date
2025-09-02
Estimated Expiration
2042-09-30

AI Technical Summary

Technical Problem

The existing bearing structures that mount a ferrous metal bearing in a non-ferrous metal housing face issues with thermal expansion, leading to gaps that allow the bearing to rotate relative to the housing, reducing durability and increasing manufacturing costs due to the need for recesses and high-thermal expansion members.

Method used

A bearing structure with a support member made of a material with a higher thermal expansion coefficient than the outer ring, featuring V-shaped rotation inhibiting protrusions on the outer ring's side surfaces, which generate dynamic pressure with a fluid to restrict relative rotation, reducing parts and manufacturing costs.

Benefits of technology

This configuration effectively suppresses relative rotation by generating axial loads through dynamic pressure, reducing the number of parts and manufacturing steps while enhancing bearing durability.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide a bearing that reduces an increase in manufacturing cost without increasing the number of components of the bearing.SOLUTION: A bearing 12 of a bearing structure 10 comprises rotation restraining protrusions 24 protruding in an axial direction from at least one side surface out of a first side surface 26 and a second side surface 28. First and second protrusions 46 and 48 of the rotation restraining protrusions 24 each has a V-shape comprising a vertex facing in a circumferential direction of the bearing 12. A supporting member 14 comprises first and second wall surfaces 52 and 54 facing the rotation restraining protrusions 24. When an inner ring 20 rotates, fluid L is supplied between first and second outer ring side surfaces 32 and 34 comprising the first and second protrusions 46 and 48 and the first and second wall surfaces 52 and 54 respectively.SELECTED DRAWING: Figure 4
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Description

[Technical Field]

[0001] The present invention relates to a bearing structure having a bearing with an inner ring and an outer ring, and a support member that fixes the outer ring. [Background technology]

[0002] When a bearing made of ferrous metal is mounted in a housing made of non-ferrous metal, the heat generated by the bearing's rotation causes both the bearing and the housing to thermally expand. The housing, which has a higher coefficient of thermal expansion, expands more than the bearing, sometimes widening the gap between the bearing and the housing. This gap can cause the bearing to rotate relative to the housing, potentially reducing the bearing's durability.

[0003] In the bearing structure of Patent Document 1, the bearing is mounted in a housing. The side of the outer ring is provided with a ring-shaped recess. A high thermal expansion member made of a non-ferrous metal is mounted in the recess. The high thermal expansion member is positioned so that it faces the inner surface of the housing. When the bearing heats up, the high thermal expansion member expands and comes into contact with the housing. This prevents the bearing from rotating relative to the housing. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] Japanese Utility Model Application Publication No. 3-2921 Summary of the Invention [Problem to be solved by the invention]

[0005] However, the bearing structure of Patent Document 1 requires processing to form a recess on the side surface of the outer ring, which increases manufacturing costs and the number of manufacturing steps. The need for a high thermal expansion material increases the number of bearing parts and manufacturing costs.

[0006] The present invention aims to solve the above-mentioned problems. [Means for solving the problem]

[0007] An aspect of the present invention is a bearing structure comprising an outer ring, an inner ring arranged inside the outer ring and rotatable relative to the outer ring, and a plurality of rolling elements arranged between the inner ring and the outer ring, and a support member formed of a material with a higher thermal expansion coefficient than the outer ring and to which the outer ring is fixed, the bearing having an annular first side surface facing one axial side of the bearing and an annular second side surface facing the other axial side, the bearing having a rotation inhibiting protrusion protruding in the axial direction from at least one of the first side surface and the second side surface, the rotation inhibiting protrusion being formed in a V-shape with an apex facing the circumferential direction of the bearing, the support member having a wall surface facing the rotation inhibiting protrusion in the axial direction, and when the inner ring rotates, a fluid is supplied between the wall surface and the side surface on which the rotation inhibiting protrusion is arranged. [Effects of the Invention]

[0008] According to the present invention, when the inner ring of the bearing rotates, a fluid (liquid lubricant or coolant) is supplied between the side surface of the bearing and the wall surface of the support member, allowing the rotation-restricting protrusion to generate dynamic pressure in the gap between the side surface of the bearing and the wall surface of the support member. This simple configuration of providing the rotation-restricting protrusion generates a load in the thrust direction (axial direction) on the bearing and restricts relative rotation of the outer ring supported by the support member. As a result, compared to configurations in which the bearing includes a recess and a high-thermal expansion member, it is possible to reduce the number of parts, manufacturing costs, and manufacturing man-hours while improving the durability of the bearing. [Brief explanation of the drawings]

[0009] [Figure 1] FIG. 1 is an overall cross-sectional view showing a bearing structure according to a first embodiment of the present invention. [Figure 2]FIG. 2 is an overall front view of the bearing shown in FIG. 1 as seen from the first side surface side. [Figure 3] FIG. 3 is an overall front view of the bearing shown in FIG. 1 as seen from the second side surface side. [Figure 4] FIG. 4 is an enlarged cross-sectional view of the bearing structure of FIG. [Figure 5] 5 is an enlarged front view showing the vicinity of the first projection of the outer ring of FIG. 2. FIG. [Figure 6] 6 is an enlarged front view showing the vicinity of the second projection of the outer ring of FIG. 3. FIG. [Figure 7] FIG. 7 is an enlarged cross-sectional view showing a state in which the bearing has moved in the axial direction due to dynamic pressure generated by the rotation restricting projection. [Figure 8] FIG. 8 is an overall cross-sectional view of a bearing structure according to a second embodiment of the present invention. [Figure 9] FIG. 9 is an enlarged cross-sectional view of the bearing structure of FIG. [Figure 10] FIG. 10 is an overall front view of the bearing shown in FIG. 8 as seen from the first side surface side. [Figure 11] FIG. 11 is an overall front view of the bearing shown in FIG. 8 as seen from the second side surface side. [Figure 12] 12 is an enlarged front view showing the vicinity of the second projection of the inner ring of FIG. 11. FIG. [Figure 13] FIG. 13 is an enlarged cross-sectional view showing a state in which the bearing has moved in the axial direction due to dynamic pressure generated by the rotation suppressing projection. DETAILED DESCRIPTION OF THE INVENTION

[0010] 1, a bearing structure 10 according to the first embodiment includes a bearing 12 and a support member 14 to which the bearing 12 is fixed. The bearing 12 is fixed in a mounting groove 16 of the support member 14.

[0011] The bearing 12 includes an outer ring 18, an inner ring 20, a plurality of rolling elements 22, and a rotation suppressing protrusion 24. The outer ring 18 is fixed in the mounting groove 16 of the support member 14, and the inner ring 20 is supported so as to be rotatable relative to the outer ring 18. Below, we will explain the case where the rotation direction R of the inner ring 20 is counterclockwise when the bearing 12 is viewed in the axial direction from the first side surface 26 side shown in Figure 2.

[0012] The bearing 12 has a first side surface 26 and a second side surface 28. The first side surface 26 is formed in an annular shape and faces one side in the axial direction of the bearing 12. The second side surface 28 is formed in an annular shape and faces the other side in the axial direction of the bearing 12.

[0013] As shown in Figure 2, the outer ring 18 is made of a metal material and has a circular ring shape with a central axis. The outer ring 18 is accommodated in and fixed to the mounting groove 16 of the support member 14 (see Figure 1). The outer peripheral surface of the outer ring 18 is annular. The inner circumference of the outer ring 18 has an annular first rolling groove 30. The first rolling groove 30 is a groove in which multiple rolling elements 22 can roll. The first rolling groove 30 is recessed radially outward from the inner peripheral surface of the outer ring 18.

[0014] The outer ring 18 has a first outer ring side surface 32 and a second outer ring side surface 34. The first outer ring side surface 32 is formed in an annular shape and constitutes a part of the first side surface 26. As shown in FIG. 3 , the second outer ring side surface 34 is formed in an annular shape and constitutes a part of the second side surface 28.

[0015] 4, the first outer ring side surface 32 and the second outer ring side surface 34 are spaced apart in the axial direction of the outer ring 18. The first and second outer ring side surfaces 32, 34 are flat surfaces perpendicular to the axial direction of the outer ring 18. The first outer ring side surface 32 and the second outer ring side surface 34 are parallel.

[0016] As shown in Figure 2, the inner ring 20 is made of a metal material and has a circular shape with a central axis. The inner ring 20 is disposed inside the outer ring 18. The inner ring 20 is disposed so as to be rotatable relative to the outer ring 18. The center of the inner ring 20 has a shaft hole 36. The shaft hole 36 passes through the inner ring 20 in the axial direction. A rotating shaft 38 is inserted into and supported in the shaft hole 36 (see Figure 1). The inner ring 20 and the rotating shaft 38 rotate together.

[0017] As shown in Figure 4, the inner ring 20 has an annular second rolling groove 40 on its outer periphery. The second rolling groove 40 is a groove in which multiple rolling elements 22 can roll. The second rolling groove 40 is recessed radially inward from the outer periphery of the inner ring 20. The first rolling groove 30 and the second rolling groove 40 face each other. Multiple rolling elements 22 are arranged between the first rolling groove 30 and the second rolling groove 40.

[0018] The inner ring 20 has a first inner ring side surface 42 and a second inner ring side surface 44. As shown in Fig. 2, the first inner ring side surface 42 is formed in an annular shape and constitutes a part of the first side surface 26. As shown in Fig. 3, the second inner ring side surface 44 is formed in an annular shape and constitutes a part of the second side surface 28.

[0019] As shown in Figure 4, the first inner ring side surface 42 and the second inner ring side surface 44 are spaced apart in the axial direction of the inner ring 20. The first and second inner ring side surfaces 42, 44 are flat surfaces perpendicular to the axial direction of the inner ring 20. The first inner ring side surface 42 and the second inner ring side surface 44 are parallel. In the axial direction of the bearing 12, the first inner ring side surface 42 and the first outer ring side surface 32 are arranged in approximately the same position, and the second inner ring side surface 44 and the second outer ring side surface 34 are arranged in approximately the same position.

[0020] The plurality of rolling elements 22 are arranged between the outer periphery of the inner ring 20 and the inner periphery of the outer ring 18. The rolling elements 22 are, for example, spherical balls. Each rolling element 22 is inserted between the first rolling groove 30 of the outer ring 18 and the second rolling groove 40 of the inner ring 20. The plurality of rolling elements 22 are movable in the circumferential direction along the first and second rolling grooves 30, 40. The plurality of rolling elements 22 enable the inner ring 20 to rotate relative to the outer ring 18.

[0021] The rotation inhibiting protrusion 24 is capable of inhibiting relative rotation of the outer ring 18 with respect to the support member 14. The rotation inhibiting protrusion 24 protrudes in the axial direction from at least one of the first side surface 26 and the second side surface 28. The rotation inhibiting protrusion 24 is disposed on the outer ring 18. The rotation inhibiting protrusion 24 has a first protrusion 46 and a second protrusion 48.

[0022] As shown in Fig. 2, the first projection 46 is disposed on the first outer ring side surface 32, which is part of the first side surface 26. As shown in Fig. 3, the second projection 48 is disposed on the second outer ring side surface 34, which is part of the second side surface 28.

[0023] As shown in Fig. 4, the first protrusion 46 protrudes in the axial direction from the first outer ring side surface 32. The first protrusion 46 is, for example, a printed body printed on the first outer ring side surface 32 by a printer. The first protrusion 46 protrudes from the first outer ring side surface 32 by ink from the printer.

[0024] As shown in FIG. 5 , the first projection 46 is V-shaped. The first projection 46 has an apex 46a and a hem 46b. The apex 46a is located at the tip of the first projection 46. The apex 46a has a tapered shape that is pointed toward the tip. The hem 46b is located at the base end of the first projection 46. The hem 46b gradually widens in a bifurcated shape in a direction away from the apex 46a. The ends of the hem 46b extend to the vicinity of the outer edge and inner edge of the first outer ring side surface 32.

[0025] When the first outer ring side surface 32 is viewed from the axial direction of the outer ring 18 shown in Fig. 2, the apexes 46a of the first projections 46 are disposed in a counterclockwise circumferential direction. That is, the apexes 46a are disposed in the rotational direction R of the inner ring 20. The bases 46b of the first projections 46 are disposed in a position clockwise (counter-rotational) from the apexes 46a in the circumferential direction.

[0026] As shown in FIG. 2, a plurality of first protrusions 46 are arranged along the circumferential direction of the outer ring 18. The plurality of first protrusions 46 are arranged at equal intervals in the circumferential direction of the outer ring 18. The plurality of first protrusions 46 constitute a first protrusion portion 461. A plurality of first protrusion portions 461 are arranged. The plurality of first protrusion portions 461 are arranged at equal intervals in the circumferential direction of the outer ring 18. Here, a case where three first protrusion portions 461 are provided, as shown in FIG. 2, will be described. The first protrusions 46 (first protrusion portions 461) may be arranged on a portion of the first outer ring side surface 32, or may be arranged over the entire circumferential direction of the first outer ring side surface 32.

[0027] As shown in Fig. 4, the second protrusion 48 protrudes in the axial direction from the second outer ring side surface 34. The second protrusion 48 is, for example, a printed material printed on the second outer ring side surface 34 by a printer. The second protrusion 48 protrudes from the second outer ring side surface 34 using printer ink. The first protrusion 46 and the second protrusion 48 protrude in opposite directions to each other in the axial direction of the central axis of the outer ring 18.

[0028] 6, the second protrusion 48 is V-shaped. The second protrusion 48 has the same shape as the first protrusion 46. Therefore, the same reference numerals are used for the same components as the first protrusion 46, and detailed description thereof will be omitted.

[0029] When the second outer ring side surface 34 is viewed from the axial direction of the outer ring 18 shown in Figure 3, the apexes 48a of the second projections 48 are disposed in a counterclockwise circumferential direction. The bases 48b of the second projections 48 are disposed clockwise relative to the apexes 48a in the circumferential direction. The rotational direction R of the inner ring 20 in Figure 3 is clockwise.

[0030] That is, the apex 46a of the first projection 46 is arranged facing the rotation direction R of the inner ring 20, and the apex 48a of the second projection 48 is arranged facing the opposite direction (reverse direction) to the rotation direction R of the inner ring 20. In the circumferential direction of the outer ring 18, the apex 46a of the first projection 46 and the apex 48a of the second projection 48 are arranged facing in opposite directions to each other.

[0031] As shown in FIG. 3, a plurality of second protrusions 48 are arranged in the circumferential direction of the outer ring 18. The plurality of second protrusions 48 are arranged at equal intervals in the circumferential direction of the outer ring 18. The plurality of second protrusions 48 constitute a second protrusion portion 481. A plurality of second protrusion portions 481 are arranged. The plurality of second protrusion portions 481 are arranged at equal intervals in the circumferential direction of the outer ring 18. Here, a case where three second protrusions 481 are provided as shown in FIG. 3 will be described.

[0032] The second projections 48 (second projection portions 481) may be disposed on a portion of the second outer ring side surface 34, or may be disposed over the entire second outer ring side surface 34 in the circumferential direction.

[0033] 1, the support member 14 is made of a metal material such as aluminum. The material of the support member 14 has a higher coefficient of thermal expansion than the material of the outer ring 18. In other words, the support member 14 is made of a material with a higher coefficient of thermal expansion than the outer ring 18.

[0034] The support member 14 has an annular mounting groove 16. The mounting groove 16 faces the outer ring 18 of the bearing 12, and the outer ring 18 is inserted and fixed in place. The mounting groove 16 is recessed in a direction radially away from the central axis of the bearing 12. When viewed from a direction perpendicular to the axial direction of the central axis of the bearing 12 shown in Figure 1, the cross section of the mounting groove 16 is rectangular.

[0035] 4, the mounting groove 16 has a peripheral wall 50 and a pair of first and second wall surfaces 52, 54. The peripheral wall 50 is disposed radially outward of the mounting groove 16. The peripheral wall 50 is parallel to the central axis of the bearing 12. The peripheral wall 50 faces the outer peripheral surface of the outer ring 18.

[0036] The first wall surface 52 and the second wall surface 54 are spaced apart from each other in the extension direction of the peripheral wall 50, with the peripheral wall 50 therebetween. The first and second wall surfaces 52, 54 are each approximately perpendicular to the peripheral wall 50. The first wall surface 52 and the second wall surface 54 are parallel to each other.

[0037] When the outer ring 18 is mounted in the mounting groove 16, the first outer ring side surface 32 of the outer ring 18 faces the first wall surface 52. The peripheral wall 50 and the outer peripheral surface of the outer ring 18 come into contact with each other. The multiple first protrusions 46 and the first wall surface 52 face each other. The first wall surface 52 and the first outer ring side surface 32 of the outer ring 18 are able to come into contact with each other. When the outer ring 18 is mounted in the mounting groove 16, the second outer ring side surface 34 of the outer ring 18 and the second wall surface 54 face each other. The second protrusions 48 and the second wall surface 54 face each other. The second wall surface 54 and the second outer ring side surface 34 of the outer ring 18 are able to come into contact with each other. The first wall surface 52 and the second wall surface 54 are spaced apart from each other in the axial direction of the central axis of the bearing 12.

[0038] The first outer ring side surface 32 contacts the first wall surface 52, the second outer ring side surface 34 contacts the second wall surface 54, and the peripheral wall 50 contacts the outer peripheral surface of the outer ring 18. This holds the outer ring 18 in the mounting groove 16 of the support member 14. A first fluid supply portion 56 for supplying fluid L is provided between the first outer ring side surface 32 and the first wall surface 52. A second fluid supply portion 58 for supplying fluid L is provided between the second outer ring side surface 34 and the second wall surface 54. Fluid L is supplied to the bearing 12 from a fluid supply source (not shown). The fluid L is, for example, a lubricant or coolant such as oil. The fluid L lubricates the inner ring 20 of the bearing 12 as it rotates. At this time, a portion of the fluid L is supplied to the first and second fluid supply portions 56, 58, respectively.

[0039] Next, the operation of the bearing 12 will be described.

[0040] When the rotary shaft 38 is rotated by a driving force from a driving source (not shown), the inner ring 20 of the bearing 12 rotates together with the rotary shaft 38. The rotation directions R of the rotary shaft 38 and the inner ring 20 are the same (counterclockwise in FIG. 2, clockwise in FIG. 3). At this time, because the outer ring 18 is fixed in the mounting groove 16 of the support member 14, the outer ring 18 does not rotate with respect to the support member 14. The inner ring 20 rotates relative to the outer ring 18 via the multiple rolling elements 22. In other words, the rotary shaft 38 is rotatably supported by the bearing 12. At this time, a portion of the fluid L is supplied to the first and second fluid supply portions 56, 58 from a fluid supply source (not shown).

[0041] As the inner ring 20 rotates, the inner ring 20, the multiple rolling elements 22, and the outer ring 18 heat up, generating heat. The heat generated in the bearing 12 is transferred to the mounting groove 16 of the support member 14 via the first and second outer ring side surfaces 32, 34 and the outer peripheral surface of the outer ring 18. This causes the outer ring 18 of the bearing 12 to thermally expand. The heat transferred from the outer ring 18 causes thermal expansion in the vicinity of the mounting groove 16 of the support member 14.

[0042] At this time, the thermal expansion coefficient of the support member 14 is greater than that of the outer ring 18. As a result, the support member 14 undergoes greater thermal deformation than the outer ring 18, and as a result, first and second gaps S1 and S2 are formed between the first and second wall surfaces 52 and 54 of the support member 14 and the first and second outer ring side surfaces 32 and 34 of the outer ring 18, respectively, as shown by the two-dot chain lines in FIG. 4. The first and second gaps S1 and S2 are spaced a predetermined distance apart in the axial direction of the bearing 12. The first gap S1 is formed in the first fluid supply section 56 to which the fluid L is supplied. The second gap S2 is formed in the second fluid supply section 58 to which the fluid L is supplied. The fitting force between the outer peripheral surface of the outer ring 18 and the peripheral wall 50 is weakened.

[0043] The fitting force between the outer peripheral surface of the outer ring 18 and the peripheral wall 50 weakens, creating first and second gaps S1, S2, which releases the outer ring 18 from the mounting groove 16 of the support member 14 and makes it non-fixed. As a result, the outer ring 18 becomes rotatable in the rotational direction R (counterclockwise in FIG. 2 ) together with the inner ring 20 as the inner ring 20 rotates. The outer ring 18 rotates while sliding against the mounting groove 16.

[0044] When the outer ring 18 begins to rotate in the rotational direction R in conjunction with the rotation of the inner ring 20, as shown in FIG. 5, in the first fluid supply portion 56, the first protrusions 46 move in the rotational direction R, with the apexes 46a at the forefront. When the first protrusions 46 (first protrusion portions 461) move in the rotational direction R, the apexes 46a push the fluid L in the first fluid supply portion 56 radially inward and radially outward of the outer ring 18. The fluid L moves along each first protrusion 46 of the first protrusion portions 461 from the apexes 46a to the base portions 46b, thereby forcing the fluid L outward from the first fluid supply portion 56. That is, as shown in FIG. 7, the first protrusions 46 push the fluid L outward from the first gap S1 between the first outer ring side surface 32 and the first wall surface 52. This reduces the amount of fluid L in the first fluid supply portion 56. That is, the film thickness of the fluid L in the first fluid supply portion 56 becomes thinner. The thickness direction of the fluid L in the first gap S1 is the axial direction of the bearing 12.

[0045] At this time, as the multiple first protrusions 46 move in the rotational direction R in the first fluid supply section 56 shown in Figure 5, the movement of the outer ring 18 in the rotational direction R is suppressed by the contact resistance between each first protrusion 46 and the fluid L.

[0046] As shown in FIG. 6 , when the outer ring 18 begins to rotate in the rotational direction R of the inner ring 20 (clockwise in FIG. 6 ), the second protrusions 48 move in the rotational direction R in the second fluid supply portion 58, with the hem 48b at the forefront. When the second protrusions 48 (second protrusion portions 481) move in the rotational direction R, the hem 48b causes the fluid L in the second fluid supply portion 58 to be collected along the second protrusions 48 toward the inside of the second protrusions 48. As the fluid L moves from the hem 48b to the apex 48a on the inside of the second protrusions 48, each second protrusion 48 collects the fluid L around the second protrusions 48 in the second fluid supply portion 58. At this time, as the multiple second protrusions 48 move within the second fluid supply portion 58, contact resistance between each second protrusion 48 and the fluid L suppresses movement of the outer ring 18 in the rotational direction R.

[0047] 7, the amount of fluid L in the second fluid supply portion 58 increases, generating a dynamic pressure (pressing force) that axially urges the second outer ring side surface 34 of the outer ring 18 toward the first outer ring side surface 32. The pressing force (load) caused by the fluid L generated in the second fluid supply portion 58 presses and moves the second outer ring side surface 34 of the outer ring 18 toward the first outer ring side surface 32. The first protrusion 46 of the outer ring 18 approaches the first wall surface 52 of the support member 14.

[0048] That is, when first and second gaps S1, S2 are generated between the mounting groove 16 of the support member 14 and the outer ring 18 due to thermal expansion as the bearing 12 rotates, the multiple second protrusions 48 generate a pressing force in the second fluid supply portion 58 (second gap S2), causing the outer ring 18 to move in the axial direction. This generates a load on the outer ring 18 in the axial direction, and by bringing the first outer ring side surface 32 of the outer ring 18 closer to the first wall surface 52 of the mounting groove 16, movement of the outer ring 18 in the rotational direction R relative to the support member 14 is suppressed. Sliding of the outer ring 18 relative to the support member 14 is suppressed.

[0049] Next, a bearing structure 80 according to a second embodiment will be described. Note that the same components as those in the bearing structure 10 according to the first embodiment will be given the same reference numerals, and detailed description thereof will be omitted.

[0050] As shown in FIG. 8, the bearing structure 80 includes a bearing 82 and a support member 84 .

[0051] 9, the bearing 82 includes a rotation suppressing protrusion 86 that can suppress relative rotation of the outer ring 18 with respect to the support member 84. The rotation suppressing protrusion 86 includes a first protrusion 88 and a second protrusion 90.

[0052] As shown in Fig. 10, the first projection 88 is disposed on the first outer ring side surface 32 of the outer ring 18 that constitutes the first side surface 26. The apex 46a of the first projection 88 is disposed facing counterclockwise in the circumferential direction. The apex 46a of the first projection 88 is disposed facing the rotational direction R of the inner ring 20. The hem 46b of the first projection 88 is disposed in a position clockwise from the apex 46a in the circumferential direction.

[0053] 11 , the second projection 90 is disposed on the second inner ring side surface 44 of the inner ring 20 that constitutes the second side surface 28. The first projection 88 and the second projection 90 are disposed on opposite sides of each other in the axial direction of the bearing 82. The apex 48a of the second projection 90 is disposed facing in the circumferential direction in a counterclockwise direction. The apex 48a of the second projection 90 is disposed facing in the opposite direction (reverse direction) to the rotational direction R of the inner ring 20.

[0054] 9, the support member 84 is made of a metal material such as aluminum. The material of the support member 84 has a higher coefficient of thermal expansion than the material of the outer ring 18. In other words, the support member 84 is made of a material with a higher coefficient of thermal expansion than the outer ring 18.

[0055] The support member 84 has an annular mounting groove 92. The mounting groove 92 faces the outer ring 18 and the inner ring 20 of the bearing 82. The outer ring 18 is fixed in the mounting groove 92. The mounting groove 92 of the support member 84 surrounds the outer ring 18 and the inner ring 20.

[0056] The mounting groove 92 has a peripheral wall 50 and a pair of first and second wall surfaces 94, 96. When the bearing 82 is mounted in the mounting groove 92, the first outer ring side surface 32 of the outer ring 18 and the first inner ring side surface 42 of the inner ring 20 face each other with the first wall surface 94. The first protrusion 88 of the first outer ring side surface 32 faces the first wall surface 94. The first wall surface 94 and the first outer ring side surface 32 of the outer ring 18 can come into contact with each other.

[0057] When the bearing 82 is mounted in the mounting groove 92, the second outer ring side surface 34 of the outer ring 18 and the second inner ring side surface 44 of the inner ring 20 face each other and the second wall surface 96. The second protrusion 90 of the second inner ring side surface 44 faces the second wall surface 96. The first outer ring side surface 32 contacts the first wall surface 94, the second outer ring side surface 34 contacts the second wall surface 96, and the outer peripheral surface of the outer ring 18 is fitted into the peripheral wall 50 of the mounting groove 92, thereby holding the outer ring 18 in the mounting groove 92 of the support member 84.

[0058] Next, the operation when the inner race 20 of the bearing 82 rotates will be described.

[0059] When the inner ring 20 rotates together with the rotating shaft 38, the bearing 82 generates heat, causing thermal expansion of the inner ring 20 and the outer ring 18, and the heat transferred from the bearing 82 causes thermal expansion of the vicinity of the mounting groove 92 of the support member 84 (see the two-dot chain line in Figure 9). As shown in Figure 9, first and second gaps S1, S2 are generated between the first and second wall surfaces 94, 96 of the support member 84 and the first and second outer ring side surfaces 32, 34 of the outer ring 18. The fitting force between the outer peripheral surface of the outer ring 18 and the peripheral wall 50 of the mounting groove 92 is weakened.

[0060] The fitting force between the outer ring 18 and the peripheral wall 50 of the mounting groove 92 weakens, and first and second gaps S1, S2 are created, causing the outer ring 18 to be released from the fixed state of the support member 84 relative to the mounting groove 92 and enter an unlocked state. As a result, the outer ring 18 becomes rotatable together with the inner ring 20 in the rotational direction R (counterclockwise in FIG. 10) as the inner ring 20 rotates.

[0061] When the outer ring 18 begins to rotate in the rotation direction R of the inner ring 20, in the first fluid supply portion 56, the first protrusion 88 moves in the rotation direction R, with the apex 46a at the forefront, as shown in FIG. 10 . When the first protrusion 88 moves in the rotation direction R, the apex 46a pushes the fluid L in the first gap S1 between the first outer ring side surface 32 and the first wall surface 94 radially inward and radially outward of the outer ring 18. The fluid L is pushed outward from the first fluid supply portion 56. This reduces the amount of fluid L in the first gap S1.

[0062] As the inner ring 20 rotates in the rotational direction R, as shown in FIG. 12 , the second protrusions 90 arranged on the inner ring 20 move in the rotational direction R, with the bottom 48b at the forefront. When the second protrusions 90 move in the rotational direction R, the bottom 48b causes the fluid L between the second inner ring side surface 44 and the second wall surface 96 to be collected along the second protrusions 90 toward the inside of the second protrusions 90. The amount of fluid L between the second inner ring side surface 44 and the second wall surface 96 shown in FIG. 13 increases, generating a dynamic pressure (pressing force) that urges the second inner ring side surface 44 of the inner ring 20 in the axial direction toward the first inner ring side surface 42. The pressing force of the fluid L presses the second inner ring side surface 44 of the inner ring 20 toward the first inner ring side surface 42, causing the inner ring 20 to move.

[0063] As the second inner ring side surface 44 of the inner ring 20 moves axially toward the first inner ring side surface 42 (first wall surface 52), the multiple rolling elements 22 move axially together with the inner ring 20 toward the first wall surface 94. As the multiple rolling elements 22 move, the outer ring 18 moves axially together with the rolling elements 22 toward the first wall surface 94. As shown in FIG. 13 , the first protrusion 88 of the outer ring 18 approaches the first wall surface 94 of the support member 84.

[0064] As a result, when first and second gaps S1, S2 are generated between the mounting groove 92 of the support member 84 and the outer ring 18 due to thermal expansion as the bearing 82 rotates, the second protrusion 90 (rotation suppressing protrusion 86) of the inner ring 20 generates a pressing force between the second wall surface 96 and the second inner ring side surface 44, moving the inner ring 20 toward the first wall surface 52 of the support member 84 and pressing the outer ring 18 toward the first wall surface 52 via the inner ring 20 and the rolling elements 22. This generates a load on the outer ring 18 in the axial direction, bringing the first outer ring side surface 32 closer to the first wall surface 94 of the mounting groove 92, thereby suppressing movement of the outer ring 18 in the rotational direction R relative to the support member 84. Sliding of the outer ring 18 relative to the support member 84 is suppressed.

[0065] Alternatively, the first projection 88 may be disposed on the first inner ring side surface 42 of the inner ring 20 , and the second projection 90 may be disposed on the second outer ring side surface 34 of the outer ring 18 .

[0066] As described above, in the embodiment of the present invention, when rotation of the inner ring 20 causes thermal expansion of the bearings 12, 82 and the support members 14, 84, generating first and second gaps S1, S2, the fluid L from the first and second fluid supply units 56, 58 can be used to generate dynamic pressure in the axial direction of the bearings 12, 82 through the rotation suppressing protrusions 24, 86. This allows a simple configuration in which the rotation suppressing protrusions 24, 86 are provided on at least one of the first and second side surfaces 26, 28 of the bearings 12, 82 to generate a load in the thrust direction (axial direction) on the bearings 12, 82 and suppress relative rotation of the outer ring 18 supported by the support members 14, 84. As a result, compared to a configuration in which a recess and a high-thermal expansion member are provided in the bearings, it is possible to reduce the number of parts, manufacturing costs, and manufacturing steps of the bearings 12, 82, while suppressing relative rotation of the bearings 12, 82, thereby improving the durability of the bearings 12, 82 and the support members 14, 84.

[0067] By arranging the rotation suppressing protrusions 24 on the first outer ring side surface 32 and the second outer ring side surface 34 of the outer ring 18, dynamic pressure can be generated between the first and second outer ring side surfaces 32, 34 of the outer ring 18 and the first and second wall surfaces 52, 54 of the support member 14. This allows the outer ring 18 to move axially due to the dynamic pressure, effectively suppressing relative rotation of the outer ring 18 with respect to the support member 14.

[0068] By arranging the apex 46a of the rotation inhibiting protrusion 24 so that it faces the rotation direction R of the inner ring 20, the fluid L in the first gap S1 (first fluid supply portion 56) can be pushed aside by the rotation inhibiting protrusion 24. This makes it possible to reduce the pressure of the fluid L in the first gap S1.

[0069] The rotation suppressing projection 24 has a first projection 46 arranged on the first outer ring side surface 32 of the outer ring 18 and a second projection 48 arranged on the second outer ring side surface 34, and the first and second projections 46, 48 can generate dynamic pressure on the first and second outer ring side surfaces 32, 34 sides of the outer ring 18, respectively. This makes it possible to more effectively suppress relative rotation of the outer ring 18 with respect to the support member 14.

[0070] In bearing 12, apexes 46a of first protrusions 46 are disposed facing the rotational direction R of inner ring 20, and apexes 48a of second protrusions 48 are disposed facing the opposite direction to rotational direction R of inner ring 20, so that first protrusions 46 reduce the pressure in first gap S1 facing first outer ring side surface 32, and second protrusions 48 collect fluid L in second gap S2 toward apexes 48a, thereby increasing the pressure in second gap S2. As a result, a pressing force acts on bearing 12 in the direction from second outer ring side surface 34 to first outer ring side surface 32, effectively suppressing relative rotation of outer ring 18 with respect to support member 14.

[0071] The rotation suppressing projection 24 has a first projection 46 disposed on the first outer ring side surface 32 of the outer ring 18 and a second projection 48 disposed on the second inner ring side surface 44 of the inner ring 20, and therefore can generate dynamic pressure on both sides in the axial direction of the bearing 12 via the inner ring 20 and the outer ring 18. This makes it possible to effectively suppress relative rotation of the outer ring 18 with respect to the support member 14.

[0072] In the bearing 82, the apex 46a of the first protrusion 88 arranged on the outer ring 18 is arranged to face the rotational direction R of the inner ring 20, and the apex 48a of the second protrusion 90 arranged on the inner ring 20 is arranged to face the opposite direction to the rotational direction R of the inner ring 20. As a result, the first protrusion 88 reduces the pressure in the first gap S1 of the bearing 82, and the second protrusion 90 increases the pressure in the second gap S2 of the bearing 82. As a result, a pressing force acts on the bearing 82 in the direction from the second outer ring side surface 34 to the first outer ring side surface 32, effectively suppressing relative rotation of the outer ring 18 with respect to the support member 84.

[0073] Since the first protrusions 46, 88 and the second protrusions 48, 90 of the rotation suppression protrusions 24, 86 are printed on the first and second side surfaces 26, 28, respectively, the first protrusions 46, 88 and the second protrusions 48, 90 can be easily formed on the first and second side surfaces 26, 28 of the bearings 12, 82.

[0074] The above embodiment can be summarized as follows.

[0075] The above embodiment includes a bearing (12, 82) having an outer ring (18), an inner ring (20) disposed inside the outer ring and rotatable relative to the outer ring, and a plurality of rolling elements (22) disposed between the inner ring and the outer ring; a support member (14, 84) formed of a material having a thermal expansion coefficient greater than that of the outer ring and to which the outer ring is fixed, the bearing having an annular first side surface (26) facing one side in the axial direction of the bearing and an annular second side surface (28) facing the other side in the axial direction, The bearing has a rotation suppression protrusion (24, 86) protruding in the axial direction from at least one of the first side surface and the second side surface, The rotation suppressing protrusion is formed in a V-shape having vertices (46a, 48a) facing in the circumferential direction of the bearing, The support member has a wall surface (52, 54, 94, 96) that faces the rotation suppression protrusion in the axial direction, and when the inner ring rotates, a fluid (L) is supplied between the side surface on which the rotation suppression protrusion is arranged and the wall surface.

[0076] the outer ring has an annular first outer ring side surface (32) that is a part of the first side surface and an annular second outer ring side surface (34) that is a part of the second side surface, The rotation inhibiting protrusion is disposed on at least one of the first outer ring side surface and the second outer ring side surface.

[0077] The apex (46a) of the rotation restricting projection faces the rotation direction (R) of the inner ring.

[0078] The rotation inhibiting projection has a first projection (46) arranged on the first outer ring side surface and a second projection (48) arranged on the second outer ring side surface.

[0079] the apex of the first protrusion faces the rotation direction of the inner ring, The apex of the second projection faces in a direction opposite to the rotation direction of the inner ring.

[0080] the outer ring has an annular first outer ring side surface that is a part of the first side surface and an annular second outer ring side surface that is a part of the second side surface, the inner ring has an annular first inner ring side surface (42) that is another part of the first side surface and an annular second inner ring side surface (44) that is another part of the second side surface, The rotation inhibiting projection has a first projection (88) arranged on the first outer ring side surface and a second projection (90) arranged on the second inner ring side surface.

[0081] the apex of the first protrusion faces the rotation direction of the inner ring, The apex of the second projection faces in a direction opposite to the rotation direction of the inner ring.

[0082] The rotation suppressing protrusion is a printed material printed on the side surface.

[0083] The present invention is not limited to the above disclosure, and various configurations can be adopted without departing from the gist of the present invention. [Explanation of symbols]

[0084] 10, 80... Bearing structure 12, 82... Bearing 14, 84... Support member 18... Outer ring 20...inner ring 22...rolling element 24, 86...Rotation suppression protrusion 26...First side surface 28...Second side 46a, 48a...Vertex 52, 94...First wall 54, 96...Second wall

Claims

1. a bearing including an outer ring, an inner ring disposed inside the outer ring and rotatable relative to the outer ring, and a plurality of rolling elements disposed between the inner ring and the outer ring; a support member to which the outer ring is fixed, the support member being formed from a material having a thermal expansion coefficient greater than that of the outer ring, the bearing having an annular first side surface facing one side in an axial direction of the bearing and an annular second side surface facing the other side in the axial direction, the bearing has a rotation suppression protrusion protruding in the axial direction from at least one of the first side surface and the second side surface, The rotation suppressing protrusion is formed in a V-shape having an apex facing in the circumferential direction of the bearing, A bearing structure in which the support member has a wall surface that faces the rotation inhibiting protrusion in the axial direction, and when the inner ring rotates, a fluid is supplied between the side surface on which the rotation inhibiting protrusion is arranged and the wall surface.

2. 2. The bearing structure according to claim 1, the outer ring has an annular first outer ring side surface that is a part of the first side surface and an annular second outer ring side surface that is a part of the second side surface, A bearing structure, wherein the rotation suppressing protrusion is disposed on at least one of the first outer ring side surface and the second outer ring side surface.

3. 3. The bearing structure according to claim 2, A bearing structure, wherein the apex of the rotation suppressing protrusion faces in the direction of rotation of the inner ring.

4. 3. The bearing structure according to claim 2, A bearing structure, wherein the rotation suppressing protrusion has a first protrusion arranged on the first outer ring side surface and a second protrusion arranged on the second outer ring side surface.

5. 5. The bearing structure according to claim 4, the apex of the first protrusion faces the rotation direction of the inner ring, a bearing structure in which the apex of the second protrusion faces in a direction opposite to a rotation direction of the inner ring;

6. 2. The bearing structure according to claim 1, the outer ring has an annular first outer ring side surface that is a part of the first side surface and an annular second outer ring side surface that is a part of the second side surface, the inner ring has an annular first inner ring side surface that is another part of the first side surface and an annular second inner ring side surface that is another part of the second side surface, A bearing structure, wherein the rotation suppressing protrusion has a first protrusion arranged on the first outer ring side surface and a second protrusion arranged on the second inner ring side surface.

7. 7. The bearing structure according to claim 6, the apex of the first protrusion faces the rotation direction of the inner ring, a bearing structure in which the apex of the second protrusion faces in a direction opposite to a rotation direction of the inner ring;

8. The bearing structure according to any one of claims 1 to 7, A bearing structure, wherein the rotation suppressing protrusion is a printed material printed on the side surface.

Citation Information

Patent Citations

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