Wheel bearing sealing device and manufacturing method therefor
10746229 ยท 2020-08-18
Assignee
Inventors
Cpc classification
F16C33/7833
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C2326/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C43/045
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C19/186
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16J15/3264
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/7883
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16J15/326
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/7823
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C41/007
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60B27/0073
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
According to one embodiment of the present disclosure, a sealing device of a wheel bearing may be disposed axially outside of rolling elements and may be mounted between an outer ring and a hub. The sealing device of the wheel bearing may comprise an outer ring slinger mounted on the outer ring, a hub slinger mounted on the hub, and a deviation-preventing protrusion which protrudes from an outer circumferential surface of the hub to hold an axial inner end of the hub slinger when the hub slinger moves inward in an axial direction. The outer circumferential surface of the hub may meet the deviation-preventing protrusion at right angles.
Claims
1. A sealing device of a wheel bearing which is disposed axially outside of rolling elements and mounted between an outer ring and a hub, the sealing device comprising: an outer ring slinger mounted on the outer ring; a hub slinger mounted on the hub; a deviation-preventing protrusion which protrudes from an outer circumferential surface of the hub to hold an axial inner end of the hub slinger when the hub slinger moves inward in an axial direction; and a hub groove depressed from the outer circumferential surface of the hub, wherein the hub groove comprising: a horizontal surface disposed radially inside of the outer circumferential surface of the hub; a hub outer circumference-connecting surface extending from an axial outer end of the horizontal surface in a radial direction; and a protrusion-connecting surface extending from an axial inner end of the horizontal surface in the radial direction; and wherein an axial outer end surface of the deviation-preventing protrusion is formed together with the protrusion-connecting surface by a same machining process, and the axial outer end surface of the deviation-preventing protrusion and the protrusion-connecting surface are formed as one surface continuously formed in the radial direction, wherein the hub slinger comprises a hub press fitted portion press fitted on a hub slinger press fitted surface that is the outer circumferential surface of the hub surrounded by the outer ring, wherein the deviation-preventing protrusion is formed to hold an axial inner end of the hub press fitted portion, and wherein the deviation-preventing protrusion is disposed to be spaced a certain distance apart from the axial inner end of the hub press fitted portion.
2. The sealing device of claim 1, wherein one surface of the deviation-preventing protrusion for holding the axial inner end of the hub slinger is formed by lathe-turning operation.
3. The sealing device of claim 1, wherein the horizontal surface, the protrusion-connecting surface, and the hub outer circumference-connecting surface are formed by lathe-turning operation.
4. The sealing device of claim 1, wherein the horizontal surface meets the protrusion-connecting surface at right angles.
Description
DESCRIPTION OF DRAWINGS
(1)
(2)
(3)
(4)
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(6)
DETAILED DESCRIPTION
(7) Hereinafter, exemplary embodiments of the present disclosure will be described below in detail with reference to the attached drawings.
(8)
(9) As shown in
(10) In a following description, for convenience of description, a side facing a wheel in an axial direction (a left side in the drawing) is defined as an outside in the axial direction and will be referred to as one side, one end, one end portion, and a designation similar thereto, and a side facing a vehicle body in the axial direction (a right side in the drawing) is defined as an inside in the axial direction and will be referred to as the other side, the other end, the other end portion, and a designation similar thereto.
(11) The hub 20 is connected with a wheel (not shown). Also, the hub 20 comprises a flange 22 integrally formed therewith as a mounting portion for the wheel. In addition, the flange 22 may be formed as a disc shape extending along a circumferential direction of the hub 20.
(12) The outer ring 40 is formed to surround an outer circumferential surface of the hub 20, and the outer circumferential surface of the hub 20 and an inner circumferential surface of the outer ring 40 are disposed to be spaced apart. Also, the outer ring 40 is connected with a vehicle body (not shown).
(13) The rolling element 50 is arranged between the outer circumferential surface of the hub 20 and the inner circumferential surface of the outer ring 40. That is, the rolling element 50 is disposed in a space formed between the outer circumferential surface of the hub 20 and the inner circumferential surface of the outer ring 40 which are spaced apart from each other. Also, the rolling element 50 rotatably connects the hub 20 to the outer ring 40. In addition, a plurality of such rolling elements 50 may be provided, and the plurality of rolling elements 50 may be arranged in multi rows. Meanwhile, the space where the rolling elements 50 are arranged may be filled with grease so as to smoothly drive the wheel bearing 10.
(14) The inner ring may be provided to surround the outer circumferential surface of the hub 20 between the outer ring 40 and the hub 20. Also, the inner ring may come into rolling-contact with at least one of the multi rows of the rolling elements 50.
(15) Generally, a hub or an inner ring of a wheel bearing is connected to one of a wheel and a vehicle body, and an outer ring is connected to the other of the wheel and the vehicle body which is not connected to the hub or the inner ring.
(16) Although the outer ring 40 connected to the vehicle body and the hub 20 connected to the wheel are shown in
(17) The wheel bearing 10 further comprises a sealing device 100. Also, the sealing device 100 is provided to close both ends of the space where the rolling elements 50 are arranged and maintain airtightness thereof. Particularly, at least one sealing device 100 is disposed between the outer ring 40 and the hub 20. In addition, the sealing device 100 prevents a leakage of the grease from the space in which the rolling elements 50 are arranged to the outside or prevents foreign substances from penetrating into the space in which the rolling elements 50 are arranged.
(18)
(19) As shown in
(20) The outer ring slinger 110 is a part mounted on one end of the outer ring 40 between the outer ring 40 and the hub 20 and comprises an outer ring contact portion 112, an outer ring press fitted portion 114, a bend extension portion 116, and a radial extension portion 118.
(21) The outer ring contact portion 112 has a radially extending shape and is disposed on an axial outer surface 46 of the outer ring 40. Here, the axial outer surface 46 of the outer ring 40 is an outer ring slinger contact surface 46 which comes into surface-contact with the outer ring slinger 110 when the outer ring slinger 110 is press fitted on the outer ring 40.
(22) The outer ring press fitted portion 114 is bent inward from a radial outer end of the outer ring contact portion 112 in an axial direction and extends to be disposed on an outer circumferential surface 43 of the one end of the outer ring 40. Here, the outer circumferential surface 43 of the one end of the outer ring 40 is an outer ring slinger press fitted surface 43 which is press fitted on the outer ring press fitted portion 114. Also, the outer ring press fitted portion 114 has an inner diameter formed to have a size corresponding to that of an outer diameter of the outer ring slinger press fitted surface 43.
(23) The bend extension portion 116 is bent inward and extends from a radial inner end of the outer ring contact portion 112 in the axial direction. Meanwhile, the bend extension portion 116 may extend to be inclined with respect to the axial direction.
(24) The radial extension portion 118 is bent inward and extends from an axial inner end of the bend extension portion 116 in a radial direction. Here, the radial extension portion 118 extends further toward an outside in the radial direction than an outer circumferential surface 23 of the hub 20 in parallel with the outer ring slinger press fitted surface 43 inside the radial direction. In addition, the outer circumferential surface 23 of the hub 20 in parallel with the outer ring slinger press fitted surface 43 is a hub slinger press fitted surface 23 that is press fitted on the hub slinger 120.
(25) The hub slinger 120 is a part mounted on the hub 20 between the outer ring 40 and the hub 20 and comprises a hub contact portion 122, a hub press fitted portion 124, an axial extension portion 125, and a connection portion 128.
(26) The hub contact portion 122 is disposed to face the outer ring contact portion 112 while being parallel therewith. Also, the hub contact portion 122 comes into surface-contact with and is supported by an axial inner surface 26 of the flange 22 of the hub 20 when the hub slinger 120 is press fitted on the hub 20. Here, the axial inner surface 26 of the flange 22, with which the hub contact portion 122 comes into surface-contact, is referred to as a hub slinger contact surface 26.
(27) The hub press fitted portion 124 is a part on which the hub slinger press fitted surface 23 is press fitted. Also, the hub press fitted portion 124 has an inner diameter formed to have a size corresponding to that of an outer diameter of the hub slinger press fitted surface 23.
(28) The axial extension portion 125 is bent inward and extends from a radial outer end of the hub contact portion 122 in the axial direction. Also, the radial outer end of the hub contact portion 122 extends further inside in the radial direction than the radial outer end of the outer ring contact portion 112. Meanwhile, an extending length of the axial extension portion 125 may be designed by those skilled in the art according to a spatial property between the axial extension portion 125 and the outer ring contact portion 112 so as to increase sealing performance.
(29) The connection portion 128 is formed to connect a radial inner end of the hub contact portion 122 to an axial outer end of the hub press fitted portion 124. Also, in order to allow the hub 20 adjacent to the connection portion 128 to surround the connection portion 128 while being spaced apart therefrom, the hub 20 between the hub slinger contact surface 26 and the hub slinger press fitted surface 23 is formed as a gentle curved surface 24 and the connection portion 128 extends to form a space from the curved surface 24 of the hub 20. Accordingly, an area where the hub slinger 120 receives a load transferred through the hub 20 is reduced, and thus deviation of the hub slinger 120 toward an axial inside is alleviated.
(30) The sealing member 130 is mounted on one of the outer ring slinger 110 and the hub slinger 120. Although the sealing member 130 is shown in
(31) Although shapes of the components of the sealing device 100 may be variously changed according to a design of those skilled in the art, the sealing device 100 of the wheel bearing 10 according to one embodiment of the present disclosure further comprises a hub groove 210 and a deviation-preventing protrusion 200.
(32) The hub groove 210 is formed as being depressed from an outer circumference of the hub slinger press fitted surface 23. Also, the hub groove 210 is disposed at an axial inner end of the hub press fitted portion 124. That is, the outer circumference of the hub slinger press fitted surface 23 where the axial inner end of the hub press fitted portion 124 is located is depressed to form the hub groove 210.
(33) The deviation-preventing protrusion 200 is formed to be stepped from the hub groove 210 at axial inside of the hub groove 210. Also, an outer diameter of the deviation-preventing protrusion 200 is formed to be greater than the inner diameter of the hub press fitted portion 124. Here, the hub groove 210 comprises a horizontal surface 212, a protrusion-connecting surface 214, and a hub outer circumference-connecting surface 216.
(34) The horizontal surface 212 is formed in parallel with the hub press fitted portion 124 and is stepped radially inside with the deviation-preventing protrusion 200. That is, an outer diameter of the horizontal surface 212 is smaller than the inner diameter of the hub press fitted portion 124 and the outer diameter of the hub slinger press fitted surface 23.
(35) The protrusion-connecting surface 214 is a surface formed to radially extend and connects the horizontal surface 212 to the deviation-preventing protrusion 200. Meanwhile, although the protrusion-connecting surface 214 is shown in
(36) The hub outer circumference-connecting surface 216 is a surface formed to radially extend and connects the horizontal surface 212 to the hub slinger press fitted surface 23.
(37) Meanwhile, the protrusion-connecting surface 214 and the hub outer circumference-connecting surface 216 respectively meet the horizontal surface 212 at right angles. Also, to allow the protrusion-connecting surface 214 and the hub outer circumference-connecting surface 216 to meet the horizontal surface 212 at precise right angles, the hub groove 210 may be formed by a lathe-turning operation. Here, the lathe-turning operation refers to a machining process of cutting an workpiece by a cutting tool while rotating the workpiece with a lathe. Since the lather-turning operation is widely known cutting process, a detailed description thereof will be omitted.
(38)
(39) As shown in
(40) The lathe-turning operation for the hub groove 210 (S100) may be performed before a grinding operation for the hub slinger contact surface 26 of the flange 22, the curved surface 24 of the hub 20, the hub slinger press fitted surface 23, and the like (S200) as shown in
(41) Meanwhile, it is obvious to those skilled in the art that after the lathe-turning operation for the hub groove 210 (S100) and the grinding operation for the surfaces of the hub 20 other than the hub groove 210, the hub slinger 120 passes the deviation-preventing protrusion 200 and is mounted to come into contact with the hub slinger contact surface 26.
(42) As described above, according to the one embodiment of the present disclosure, the hub groove 210 and the deviation-preventing protrusion 200 are at right angles and thus a deviation of the hub slinger 120 may be further stably prevented. Also, a problem of conventional wheel bearings that the hub slinger 120 goes over a structure for preventing the deviation of the hub slinger (such as the deviation-preventing protrusion 200 according to one embodiment of the present disclosure) may be prevented. Accordingly, sealing performance of the sealing device 100 of the wheel bearing 10 may be ensured, and ultimately, reliability with respect to performance of the wheel bearing 10 itself may be improved.
(43) Although the exemplary embodiments of the present disclosure have been described above, the present disclosure is not limited thereto and includes all modifications from the embodiments of the present disclosure within a range of being easily modified by one of ordinary skilled in the art and acknowledged as being equivalents thereof.