Rolling bearing
10584742 ยท 2020-03-10
Assignee
Inventors
Cpc classification
F16C33/586
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16J15/447
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/7843
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C19/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/78
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/783
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C19/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/805
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/80
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/785
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16C19/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C19/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/80
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A rolling bearing includes an outer ring, a plurality of rolling elements, a cage configured to rollably hold the plurality of rolling elements, and a shield. An inner peripheral surface of at least one axial end portion of the outer ring is provided with a large-diameter part, which has a diameter larger than an inner diameter of the outer ring, opens outward in an axial direction, and has an axial width greater than an axial width of the shield. An outer shape surface of the shield is configured by a plurality of circular arcs having a same central angle and equidistantly arranged on a circumference and a plurality of chords connecting adjacent circular arcs each other. The shield is press-fitted and fixed to the large-diameter part.
Claims
1. A rolling bearing comprising: an outer ring; an inner ring part; a plurality of rolling elements; a cage configured to rollably hold the plurality of rolling elements, and a shield, wherein an inner peripheral surface of at least one axial end portion of the outer ring is provided with a large-diameter part, which has a diameter larger than an inner diameter of the outer ring, opens outward in an axial direction, and has an axial width greater than an axial width of the shield, wherein an outer shape surface of the shield is configured by a plurality of circular arcs having a same central angle and equidistantly arranged on a circumference and a plurality of chords respectively connecting adjacent circular arcs, and wherein the shield is press-fitted and fixed to the large-diameter part.
2. The rolling bearing according to claim 1, wherein a central angle of the chord is greater than the central angle of the circular arc.
3. The rolling bearing according to claim 1, wherein at least one of (a) an edge portion between an axial end face and the outer shape surface of the shield and (b) an edge portion between an axial end face and the large-diameter part of the outer ring is provided with a pressing introduction portion.
4. The rolling bearing according to claim 3, wherein the pressing introduction portion has a taper shape or a convex curve-shaped section.
5. The rolling bearing according to claim 3, wherein both (a) the edge portion between the axial end face and the outer shape surface of the shield and (b) the edge portion between the axial end face and the large-diameter part of the outer ring are formed with the pressing introduction portion having a taper shape, and wherein when a diameter at a boundary part between the large-diameter part and the pressing introduction portion of the outer ring is A, a dimeter at a boundary part between the axial end face and the pressing introduction portion of the shield is B, and a diameter of the circular arc of the shield is C, a dimension relation of B<A<C is satisfied.
6. The rolling bearing according to claim 3, wherein the edge portion between the axial end face and the large-diameter part of the outer ring is formed with the pressing introduction portion having a convex curve-shaped section, and wherein the edge portion between the axial end face and the outer shape surface of the shield is formed with the pressing introduction portion having a taper shape.
7. The rolling bearing according to claim 3, wherein both edge portions between both axial end faces and the outer shape surface of the shield are provided with the pressing introduction portion.
8. The rolling bearing according to claim 1, wherein a labyrinth gap is formed between an inner-diameter surface of the shield and an outer shape surface of the inner ring part.
9. The rolling bearing according to claim 1, wherein the large-diameter part of the outer ring is formed with an axially inner end face for axially positioning the shield.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
DETAILED DESCRIPTION OF EMBODIMENTS
(10) Hereinafter, embodiments of the present invention will be described in detail with reference to the accompanying drawings.
(11) The shield 25 has a thin plate shape, like a flat washer having a constant thickness as shown in
(12) Also, the central angle of the chord 25b is designed greater than the central angle of the circular arc 25a, so that a press-fitting area to the large-diameter part 21a of the outer ring 21 is reduced. As a result, when incorporating the rolling bearing 20 into a housing or the like, it is possible to suppress deformation of the outer ring 21 so as not to influence the incorporation.
(13) The shield 25 is press-fitted and fixed so as to butt to an axially inner end face 21b of the large-diameter part 21a. That is, the large-diameter part 21a is provided so as to form the axially inner end face 21b for axially positioning the shield 25, and is preferably formed so that a minimum area of the axially inner end face 21b capable of determining a press-fitting position is to be secured. The shield 25 is formed to be axially symmetric. Therefore, upon the press-fitting, it is not necessary to distinguish a front surface and a back surface, so that it is possible to easily perform the assembling. Also, since the shield 25 is configured by the plurality of circular arcs 25a having the same central angle and equidistantly arranged on the circumference and the plurality of chords 25b connecting the adjacent circular arcs 25a each other, the shield can be mounted to the outer ring 21 in any phase and can be easily assembled. In the meantime, the press-fitting force, the pulling-out force, a degree of deformation of an outer diameter and the like are changed by the axial width of the shield 25, the number and central angle of the circular arcs and a diameter of the large-diameter part 21a relative to a diameter of the circular arc. Therefore, optimal values of dimensions of the respective parts are preferably set by a test and the like, considering a dimension of the outer ring of the bearing, a pulling-out force to be required, an allowable amount of deformation of an outer shape, and the like.
(14) An inscribed circle 25c of the respective chords 25b of the shield 25 preferably has a diameter larger than the inner diameter of the inner peripheral surface 21c of the outer ring 21. Also, the axially inner end face 21b of the large-diameter part 21a is preferably a flat surface so that a gap is not to be formed between the axially inner end face 21b and the shield 25. Thereby, it is possible to prevent introduction of foreign matters and grease leakage from a gap between the large-diameter part 21a of the outer ring and a radially outer side of the chord 25b of the shield 25. However, when the gap is small even though it exists, the gap becomes a labyrinth gap, so that it is possible to prevent the introduction of foreign matters and the grease leakage. Therefore, when the gap is inevitably formed, the gap is preferably set as small as possible.
(15) Also, as shown in
(16) Also, a taper shape, a convex curve-shaped section (curved shape) or a combination thereof can be applied to the pressing introduction portion 21d of the outer ring 21 and the pressing introduction portion 25d of the shield 25. When the taper shape is applied, taper angles 1, 2 are preferably 45 or lower (refer to
(17) Specifically, as shown in
(18) Also, when the pressing introduction portion 21d of the outer ring 21 and the pressing introduction portion 25d of the shield 25 are formed to have the taper shape, as shown in
(19) Also, as shown in
(20) Also, the pressing introduction portions 25d of the shield 25 are provided at both the edge portions between both axial end faces and the outer shape surface, so that it is not necessary to distinguish the front surface and back surface of the shield 25 upon the press-fitting and the shield can be easily mounted.
(21) In the meantime, in order to form the shield 25 to be axially symmetric and to remove burrs, the chord 25b is also punched from one axial side by a press machine and is then chamfered. The pressing introduction portions 25d are formed at the circular arc 25a after the chamfering.
(22) Also, the shield 25 shown in
(23) In any case, it is required that an outer diameter at a mid-point of the chord 25b is smaller than the inner diameter of the inner peripheral surface 21c of the outer ring 21 and a gap is not generated between the chord 25b and the inner peripheral surface of the outer ring 21. Therefore, as described above, the inscribed circle 25c of the respective chords 25b of the shield 25 has preferably the diameter greater than the inner diameter of the inner peripheral surface 21c of the outer ring 21.
(24) For example, the shield 25 shown in
(25) Specifically, the central angle of the circular arc 25a is set to 3.5, the central angle of the chord 25b is set to 19, so that a sum of the central angles , of the circular arc 25a and the chord 25b is 22.5. However, actually, considering a dimension tolerance, the central angle of the circular arc 25a is set within a range of 2 to 7, and the central angle of the chord 25b is set within a range of 15 to 22.
(26) In the meantime, as a pressing interference, 2 m is set. However, since the dimension tolerance of the shield 25 is 35 m and the dimension tolerance of the large-diameter part 21a of the outer ring 21 is 25 m, the actual pressing interference is 2 to 62 m.
(27) Also, in the first embodiment, the example where the outer ring 21 is provided with the large-diameter part 21a has been described. However, the shield 25 may be press-fitted to the inner peripheral surface 21c of the outer ring 21 without providing the large-diameter part 21a. Also, in the first embodiment, the example where the shields 25 are provided at both axial sides has been described. However, the shield 25 may be provided only at one axial side.
(28)
(29) The shield 35 has a thin plate shape, like a flat washer having a constant thickness as shown in
(30) Also, the central angle of the chord 35b is designed greater than the central angle of the circular arc 35a, so that a press-fitting area to the large-diameter part 31a of the outer ring 31 is reduced. As a result, when incorporating the rolling bearing 30 into a housing or the like, it is possible to suppress deformation of the outer ring 31 so as not to influence the incorporation.
(31) The shield 35 is press-fitted and fixed so as to butt to an axially inner end face 31b of the large-diameter part 31a. That is, the large-diameter part 31a is provided so as to form the axially inner end face 31b for axially positioning the shield 35, and is preferably formed so that a minimum area of the axially inner end face 31b capable of determining a press-fitting position is to be secured. In the meantime, the press-fitting force, the pulling-out force, a degree of deformation of an outer diameter and the like are changed by the axial width of the shield 35, the number and central angle of the circular arcs and a diameter of the large-diameter part 31a relative to a diameter of the circular arc. Therefore, optimal values of dimensions of the respective parts are preferably set by a test and the like, considering a dimension of the outer ring of the bearing, a pulling-out force to be required, an allowable amount of deformation of an outer shape, and the like.
(32) An inscribed circle 35c of the respective chords 35b of the shield 35 preferably has a diameter larger than the inner diameter of the outer ring. Also, the axially inner end face 31b of the large-diameter part 31a is preferably a flat surface so that a gap is not to be formed between the axially inner end face and the shield 35. Thereby, it is possible to prevent introduction of foreign matters and grease leakage from a gap between the large-diameter part 31a of the outer ring and a radially outer side of the chord 35b of the shield 35. However, when the gap is small even though it exists, the gap becomes a labyrinth gap, so that it is possible to prevent the introduction of foreign matters and the grease leakage. Therefore, when the gap is inevitably formed, the gap is preferably set as small as possible.
(33) In the second embodiment, the example where the outer ring 31 is provided with the large-diameter part 31a has been described. However, the shield 35 may be press-fitted to the inner peripheral surface 31c of the outer ring without providing the large-diameter part 31a. Also, in the second embodiment, the example where the shields 35 are provided at both axial sides has been described. However, the shield 35 may be provided only at one axial side. Also, in the bearing 30 of the second embodiment, the outer peripheral surface of the support shaft 32 equivalent to the inner ring is used as a raceway. However, a rolling bearing having an inner ring is also possible.
(34) The present invention is not limited to the above embodiments, and can be appropriately modified and improved. For example, in the above embodiments, the outer shape surface of the shield is configured by the plurality of circular arcs and the plurality of chords connecting the adjacent circular arcs each other. However, instead of the chord, a V-shaped cutout may also be used. Also, the rolling bearing of the present invention can be applied as a support bearing of a ball screw.
(35) As described above, the present disclosure discloses following matters:
(36) (1) A rolling bearing comprising:
(37) an outer ring;
(38) an inner ring part;
(39) a plurality of rolling elements;
(40) a cage configured to rollably hold the plurality of rolling elements, and
(41) a shield,
(42) wherein an inner peripheral surface of at least one axial end portion of the outer ring is provided with a large-diameter part, which has a diameter larger than an inner diameter of the outer ring, opens outward in an axial direction, and has an axial width greater than an axial width of the shield,
(43) wherein an outer shape surface of the shield is configured by a plurality of circular arcs having a same central angle and equidistantly arranged on a circumference and a plurality of chords connecting adjacent circular arcs each other, and
(44) wherein the shield is press-fitted and fixed to the large-diameter part. (2) The rolling bearing according to (1),
(45) wherein a central angle of the chord is greater than a central angle of the circular arc. (3) The rolling bearing according to (1) or (2),
(46) wherein at least one of (a) an edge portion between an axial end face and the outer shape surface of the shield and (b) an edge portion between an axial end face and the large-diameter part of the outer ring is provided with a pressing introduction portion. (4) The rolling bearing according to (3),
(47) wherein the pressing introduction portion has a taper shape or a convex curve-shaped section. (5) The rolling bearing according to (3),
(48) wherein both (a) the edge portion between the axial end face and the outer shape surface of the shield and (b) the edge portion between the axial end face and the large-diameter part of the outer ring are formed with the pressing introduction portion having a taper shape, and
(49) wherein when a diameter at a boundary part between the large-diameter part and the pressing introduction portion of the outer ring is A, a dimeter at a boundary part between the axial end face and the pressing introduction portion of the shield is B, and a diameter of the circular arc of the shield is C, a dimension relation of B<A<C is satisfied. (6) The rolling bearing according to (3),
(50) wherein the edge portion between the axial end face and the large-diameter part of the outer ring is formed with the pressing introduction portion having a convex curve-shaped section, and
(51) wherein the edge portion between the axial end face and the outer shape surface of the shield is formed with the pressing introduction portion having a taper shape. (7) The rolling bearing according to one of (3) to (6),
(52) wherein both edge portions between both axial end faces and the outer shape surface of the shield are provided with the pressing introduction portion. (8) The rolling bearing according to one of (1) to (7),
(53) wherein a labyrinth gap is formed between an inner-diameter surface of the shield and an outer shape surface of the inner ring part. (9) The rolling bearing according to one of (1) to (8),
(54) wherein the large-diameter part of the outer ring is formed with an axially inner end face for axially positioning the shield.
(55) The subject application is based on Japanese Patent Application No. 2017-031662 filed on Feb. 23, 2017, the contents of which are incorporated herein by reference.
DESCRIPTION OF REFERENCE NUMERALS
(56) 10, 20, 30: rolling bearing
(57) 11, 21, 31: outer ring
(58) 21a, 31a: large-diameter part
(59) 21b, 31b: axially inner end face
(60) 21c, 31c: inner peripheral surface
(61) 21d, 25d: pressing introduction portion
(62) 12, 22: inner ring (inner ring part)
(63) 32: support shaft (inner ring part)
(64) 13, 23, 33: rolling element
(65) 14, 15, 25, 35: shield
(66) 25a, 35a: circular arc
(67) 25b, 35b: chord
(68) 25c, 35c: inscribed circle of chord
(69) 27: cage
(70) : central angle of circular arc
(71) : central angle of chord