Structure and method for coupling wheel bearings
09636946 ยท 2017-05-02
Assignee
Inventors
Cpc classification
F16C43/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C2226/52
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C2326/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C2226/80
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60B2310/316
PERFORMING OPERATIONS; TRANSPORTING
F16D1/076
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60B27/0078
PERFORMING OPERATIONS; TRANSPORTING
F16C19/187
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60B27/0036
PERFORMING OPERATIONS; TRANSPORTING
B60B27/0042
PERFORMING OPERATIONS; TRANSPORTING
F16C2226/60
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60B27/0021
PERFORMING OPERATIONS; TRANSPORTING
Y10T29/49689
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F16C2226/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16C19/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B23P15/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The present invention relates to a structure and a method for coupling a wheel bearing that include a wheel hub for mounting a vehicle wheel, a hollow inner ring press-fitted into an end portion of the wheel hub, an annular outer ring disposed at a radial exterior of the wheel hub and the inner ring, and rolling elements disposed between the wheel hub or the inner ring and the outer ring, wherein the wheel hub and the inner ring are splined to each other and the inner ring and the joint member are coupled through facial spline. According to the present invention, driving torque of a constant velocity joint may be stably delivered to the wheel hub and noise may be reduced.
Claims
1. A structure for coupling a wheel bearing comprising: a wheel hub formed of a flange for mounting a vehicle wheel; a hollow inner ring press-fitted onto an end portion of the wheel hub; an annular outer ring disposed at an outside of the wheel hub and the inner ring; at least one rolling elements disposed between the wheel hub or the inner ring and the outer ring; and a hollow pin splined to an interior circumference of the wheel hub and an interior circumference of the inner ring.
2. The structure of claim 1, wherein a first spline is formed at the interior circumference of the wheel hub, a second spline is formed at an exterior circumference of the hollow pin, and a third spline is formed at the interior circumference of the inner ring, and wherein the second spline is splined simultaneously with the first spline and the third spline.
3. The structure of claim 1, wherein a first facial spline is formed radially at an end surface of the inner ring, and wherein the structure further comprises a joint member formed of a second facial spline engaged with the first facial spline; and a bolt penetrating through the hollow pin and coupling the joint member with the wheel hub.
4. The structure of claim 1, wherein an end of the hollow pin is bent radially outwardly so as to form a supporting portion.
5. The structure of claim 4, wherein the other end of the hollow pin is bent radially outwardly so as to form a bending portion.
6. The structure of claim 5, wherein the bending portion is formed by orbital forming process.
7. The structure of claim 1, wherein the end portion of the wheel hub has an interior circumference stepped radially outwardly so as to form a stepped portion, and the inner ring is formed of a press-fitted portion protruded in an axial direction so as to be press-fitted into the stepped portion.
8. The structure of claim 7, wherein a diameter of an interior circumference of the stepped portion is smaller than that of an exterior circumference of the press-fitted portion.
9. A structure for coupling a wheel bearing comprising: a wheel hub formed of a flange for mounting a vehicle wheel; a hollow inner ring penetrating through and press-fitted into an interior circumference of the wheel hub; an annular outer ring disposed at an outside of the wheel hub and the inner ring; and at least one rolling element disposed between the wheel hub or the inner ring and the outer ring, wherein a part of the inner ring penetrating through the wheel hub is splined to an interior circumference of the wheel hub, wherein a first facial spline is formed radially at an end surface of the inner ring, and wherein the structure further comprises a joint member formed of a second facial spline engaged with the first facial spline; and a bolt penetrating through the inner ring and coupling the joint member with the wheel hub.
10. The structure of claim 9, wherein a first spline is formed at an interior circumference of the wheel hub, a second spline splined to the first spline is formed at a part of the inner ring, a press-fitted portion protruded in an axial direction so as to be press-fitted into the wheel hub is formed at other portion than the second spline of the inner ring.
11. The structure of claim 9, wherein a boundary portion where an exterior circumference of the inner ring and the interior circumference of the wheel hub contacts with each other is welded such that preload applied to the wheel hub is maintained.
12. A method for coupling a wheel bearing comprising: forming a stepped portion stepped radially outwardly at an interior circumference of an end portion of a hollow wheel hub having a flange for mounting a vehicle wheel; forming a press-fitted portion at an inner ring, the press-fitted portion being protruded in an axial direction so as to be press-fitted into the stepped portion; forming a first spline at an interior circumference of the wheel hub, forming a second spline at an exterior circumference of a hollow pin inserted into the wheel hub and the inner ring, and forming a third spline at an interior circumference of the inner ring; coupling the inner ring to the wheel hub by press-fitting the press-fitted portion into the stepped portion; and inserting the hollow pin into the wheel hub and the inner ring so as for the second spline to be splined to the first spline and the third spline simultaneously.
13. The method of claim 12, further comprising: forming a first facial spline radially at an end surface of the inner ring and forming a second facial spline engaging with the first facial spline at a joint member; mounting the joint member to the inner ring so as to engage the first facial spline and the second facial spline; and inserting a bolt into the hollow pin and coupling the bolt to an engaging groove of the joint member.
14. A method for coupling a wheel bearing comprising: forming a first spline at a part of an interior circumference of a hollow wheel hub having a flange for mounting a vehicle wheel; forming an inner ring to penetrate through the wheel hub, wherein a second spline splined to the first spline is formed at a part of the inner ring; forming a press-fitted portion at other part of the inner ring, the press-fitted portion being protruded in an axial direction so as to be press-fitted into the wheel hub; and assembling the inner ring and the wheel hub by press-fitting the press-fitted portion into the wheel hub and splining the first spline with the second spline.
15. The method of claim 14, further comprising: forming a first facial spline radially at an end surface of the inner ring and forming a second facial spline engaging with the first facial spline at a joint member; mounting the joint member to the inner ring so as to engage the first facial spline and the second facial spline; and inserting a bolt into a hollow space of the inner ring and coupling the bolt to an engaging groove of the joint member.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DESCRIPTION OF SYMBOLS
(14) TABLE-US-00001 100: wheel hub 110: first spline 120: hub bolt 130: stepped portion 200: inner ring 210: third spline 220: first facial spline 230: second spline 240: press-fitted portion 300: outer ring 400: rolling element 500: hollow pin 510: second spline 520: supporting portion 530: bending portion 600: joint member 610: second facial spline 620: engaging groove 700: bolt
BEST MODE FOR EXECUTING THE INVENTION
(15) Exemplary embodiments of the present invention will hereinafter be described in detail with reference to the accompanying drawings.
(16)
(17) As shown in
(18) The wheel hub 100 transfers driving torque of the joint member 600 such as a constant velocity joint (CVJ) to a vehicle wheel. The wheel hub 100 is provided with a flange 101 and a hub bolt 120 for mounting the vehicle wheel. The flange 101, as shown in
(19) The wheel hub 100 has an annular shape and a first spline 110 is formed on an interior circumference of the wheel hub. The first spline 110 has a shape corresponding to that of a second spline 510 formed on an exterior circumference of the hollow pin 500.
(20) In one or more exemplary embodiments, the first spline 110, as shown in
(21) The inner ring 200 is press-fitted into an interior circumference of an end portion of the wheel hub 100. The inner ring 200 has an annular shape similar to the wheel hub 100, and a diameter of an interior circumference of the inner ring 200 is the same as that of the interior circumference of the wheel hub 100.
(22) The stepped portion 130 that is stepped radially outwardly is formed at the interior circumference of the end portion of the wheel hub 100 as shown in
(23) In order to press-fit the inner ring 200 into the wheel hub 100, a diameter of the interior circumference of the stepped portion 130 is formed smaller than that of an exterior circumference of the press-fitted portion 240 a little and the inner ring 200 is press-fitted into the wheel hub 100 by a hydraulic press.
(24) In one or more exemplary embodiments, a raised spot (not shown) may be formed at the interior circumference of the stepped portion 130 of the wheel hub 100 and a protrusion (not shown) caught by the raised spot may be formed at an exterior circumference of the press-fitted portion 240 of the inner ring 200. After that, the inner ring 200 may be press-fitted into the wheel hub 100.
(25) In addition, when the press-fitted portion 240 of the inner ring 200 is press-fitted into the stepped portion 130 of the wheel hub 100, the stepped portion 130, the press-fitted portion 240, and edges of the stepped portion 130 and the press-fitted portion 240 may be worn out and durability thereof may be deteriorated. Therefore, as shown in
(26) A third spline 210 to which the second spline 510 of the hollow pin 500 is splined is formed at the interior circumference of the inner ring 200 similar to the wheel hub 100.
(27) As shown in
(28) In addition, a second facial spline 610 engaging with the first facial spline 220 of the inner ring 200 is formed at a surface of the joint member 600 contacting with the end surface of the inner ring 200. Since power delivery from the joint member 600 to the inner ring 200 is assisted by the first facial spline 220 and the second facial spline 610 engaging with each other, stable power delivery may be achieved and noise may be reduced in power delivery.
(29) As shown in
(30) In one or more exemplary embodiments, as shown in
(31) In addition, a first sealing member 411 may be mounted between the exterior circumference of the wheel hub 100 adjacent to the flange 101 and the interior circumference of the end portion of the outer ring 300. The first sealing member 411 generally has a ring shape, prevents foreign material such as dust and moisture from entering a space between the wheel hub 100 and the outer ring 300, and prevents lubrication for smoothening sliding of the first rolling element 410 from being leaked from the space between the outer ring 300 and the wheel hub 100.
(32) In the same way, a second sealing member 421 may be mounted between the exterior circumference of the end portion of the inner ring 200 and the interior circumference of the other end portion of the outer ring 300. The second sealing member 421 generally has a ring shape, prevents foreign material such as dust and moisture from entering a space between the inner ring 200 and the outer ring 300, and prevents lubrication for smoothening sliding of the second rolling element 420 form being leaked from the space between the inner ring 200 and the outer ring 300.
(33) The hollow pin 500 is splined simultaneously to the interior circumference of the wheel hub 100 and the interior circumference of the inner ring 200 such that the driving torque delivered from the joint member 600 to the inner ring 200 is delivered to the wheel hub 100. For this purpose, a second spline 510 corresponding to the first spline 110 of the wheel hub 100 and the third spline 210 of the inner ring 200 is formed at an exterior circumference of the hollow pin 500.
(34) As shown in
(35) In one or more exemplary embodiments, an end surface of the supporting portion 520 is flat so as to be operated as a bolt seat stably supporting a bolt 700 by contacting with a head of the bolt 700 when coupling with the bolt 700.
(36) In addition, as shown in
(37) The bending portion 530 is formed by orbital forming process or swaging process so as to maintain preload applied to the wheel bearing stably.
(38) In one or more exemplary embodiments, as shown in
(39) In one or more exemplary embodiments, as shown in
(40) The joint member 600 is mounted at a driving axle connected to a final reduction device in a front-wheel drive vehicle so as to deliver power to the vehicle wheel, and may be a constant velocity joint (CVJ) which delivers power with constant speed.
(41) The second facial spline 610 engaging with the first facial spline 220 of the inner ring 200 is formed at the end surface of the joint member 600. Since power delivery from the joint member 600 to the inner ring 200 is assisted by the first facial spline 220 and the second facial spline 610 engaging with each other, stable power delivery may be achieved.
(42) The bolt 700 penetrates through the hollow pin 500 form a side of the wheel hub 100 and couples with the joint member 600. For this purpose, an engaging groove 620 into which the bolt 700 is inserted is formed at a center portion of the joint member 600.
(43)
(44) Referring to
(45) The stepped portion 130 stepped radially outwardly is formed at the wheel hub 100 at step S101. The flange 101 for mounting the vehicle wheel is formed at the wheel hub 100 and is coupled to the hub bolt 120. As shown in
(46) The press-fitted portion 240 protruded in the axial direction and press-fitted into the stepped portion 130 of the wheel hub 100 is formed at the inner ring 200 at step S102.
(47) After that, the first spline 110 is formed at the interior circumference of the wheel hub 100, the second spline 510 is formed at the exterior circumference of the hollow pin 500 inserted into the wheel hub 100 and the inner ring 200, and the third spline 210 is formed at the interior circumference of the inner ring 300 at step S103.
(48) As shown in
(49) Since the second spline 510 of the hollow pin 500 is simultaneously splined to the first and third splines 110 and 210, the driving torque of the joint member 600 received from the inner ring 200 is delivered stably to the wheel hub 100.
(50) In one or more exemplary embodiments, the first spline 110 of the wheel hub 100 and the third spline 210 of the inner ring 200 may be formed through separate processes or through the same process after the wheel hub 100 and the inner ring 200 are aligned.
(51) As shown in
(52) After that, the first rolling element 410 is disposed between the exterior circumference of the end portion of the wheel hub 100 at step S105.
(53) As shown in
(54) After that, as shown in
(55) After that, the second rolling element 420 is disposed to contact the interior circumference of the other end portion of the outer ring at step S107 in a state that the outer ring 300 is mounted.
(56) After that, the inner ring 200 is press-fitted into the wheel hub 100 and the inner ring 200 and the wheel hub 100 are assembled firstly at step S108.
(57) At this time, the press-fitted portion 240 of the inner ring 200 formed at the step S102 is press-fitted into the stepped portion 130 of the wheel hub 100 formed at the step S101.
(58) In one or more exemplary embodiments, since the diameter of the interior circumference of the stepped portion 130 is smaller than that of the exterior circumference of the press-fitted portion 240 a little, the inner ring 200 may be press-fitted into the wheel hub 100 using the hydraulic press.
(59) In one or more exemplary embodiments, the raised spot (not shown) may be formed at the interior circumference of the stepped portion 130 of the wheel hub 100 and the protrusion (not shown) caught by the raised spot may be formed at an exterior circumference of the press-fitted portion 240 of the inner ring 200. After that, the inner ring 200 may be press-fitted into the wheel hub 100.
(60) In a state that the inner ring 200 is press-fitted, as shown in
(61) After that, the hollow pin 500 at which the second spline 510 corresponding to the first spline 110 of the wheel hub 100 and the third spline 210 of the inner ring 200 is formed is inserted and assembled simultaneously into the wheel hub 100 and the inner ring 200 at step S109.
(62) Referring to
(63) In one or more exemplary embodiments, the bending portion 530 is formed through orbital forming process or swaging process in a state that the hollow pin 500 is inserted into the wheel hub 100 and the inner ring 200 such that preload is maintained.
(64) In one or more exemplary embodiments, as shown in
(65) After that, the joint member 600 having the second facial spline 610 engaging with the first facial spline 220 of the inner ring 200 is mounted at the inner ring 200 at step S110.
(66) As shown in
(67) Lastly, the bolt 700 penetrates through the hollow pin 500 and is coupled to the engaging groove 620 of the joint member 600 at step S111.
(68) Since the inner ring 200 and the joint member 600 are coupled through facial spline and the inner ring 200 and the wheel hub 100 is splined to the hollow pin 500 according to the first exemplary embodiment of the present invention, stable power delivery may be achieved and durability may improve. In addition, since the inner ring 200 is press-fitted into the end portion of the wheel hub 100, creep of the inner ring 200 may be prevented and noise may be reduced when power is delivered. Since engagement is achieved by the bolt 700, assembling or disassembling may be easy and maintainability may improve.
(69)
(70) As shown in
(71) The wheel hub 100 transfers driving torque of the joint member 600 such as a constant velocity joint (CVJ) to a vehicle wheel. The wheel hub 100 is provided with a flange 101 and a hub bolt 120 for mounting the vehicle wheel. The flange 101, as shown in
(72) The wheel hub 100 has an annular shape and a first spline 110 is formed on a part of an interior circumference of the wheel hub.
(73) As shown in
(74) In one or more exemplary embodiments, as shown in
(75) In addition, a first sealing member 411 may be mounted between the exterior circumference of the wheel hub 100 adjacent to the flange 101 and the interior circumference of the end portion of the outer ring 300. The first sealing member 411 generally has a ring shape, prevents foreign material such as dust and moisture from entering a space between the wheel hub 100 and the outer ring 300, and prevents lubrication for smoothening sliding of the first rolling element 410 from being leaked from the space between the outer ring 300 and the wheel hub 100.
(76) In the same way, a second sealing member 421 may be mounted between the exterior circumference of the end portion of the inner ring 200 and the interior circumference of the other end portion of the outer ring 300. The second sealing member 421 generally has a ring shape, prevents foreign material such as dust and moisture from entering a space between the inner ring 200 and the outer ring 300, and prevents lubrication for smoothening sliding of the second rolling element 420 form being leaked from the space between the inner ring 200 and the outer ring 300.
(77) In the second exemplary embodiment, different from the first exemplary embodiment, the inner ring 200 is not press-fitted into the end portion of the wheel hub 100 but penetrates through and is press-fitted into the interior circumference of the wheel hub 100.
(78) Therefore, as shown in
(79) A part of the inner ring 200 penetrating through the wheel hub 100 is a press-fitted portion 240 and is press-fitted into the interior circumference of the wheel hub 100, and the other part of the inner ring 200 penetrating through the wheel hub 100 other than the press-fitted portion 240 is formed of a second spline 230 so as to be splined to the first spline 110 of the wheel hub 100.
(80) In order to press-fit the inner ring 200 into the wheel hub 100, a diameter of the interior circumference of the wheel hub 100 is smaller than a diameter of the exterior circumference of the press-fitted portion 240 a little and the inner ring 200 is press-fitted into the wheel hub 100 by a hydraulic press.
(81) In one or more exemplary embodiments, a raised spot (not shown) may be formed at the interior circumference of the wheel hub 100 and a protrusion (not shown) caught by the raised spot may be formed at an exterior circumference of the press-fitted portion 240. After that, the inner ring 200 may be press-fitted into the wheel hub 100.
(82) In one or more exemplary embodiments, as shown in
(83) In one or more exemplary embodiments, as shown in
(84) Therefore, the hollow pin 500 is not necessary and the inner ring 200 functions as the hollow pin 500 of the first exemplary embodiment in the second exemplary embodiment, contrary to first exemplary embodiment.
(85) As described above, the part of the inner ring 200 penetrating through the wheel hub 100 may be the press-fitted portion 240 and the other part of the inner ring 200 penetrating through the wheel hub 100 may be the second spline 230. In this case, as shown in
(86) As shown in
(87) In addition, boundary portions of the exterior circumference of the inner ring 200 and the interior circumference of the wheel hub 100 contacting with each other may be welded such that preload applied to the wheel bearing can be maintained.
(88) In one or more exemplary embodiments, as shown in
(89) As shown in
(90)
(91) Referring to
(92) The first spline 110 is formed at a part of the interior circumference of the wheel hub 100 at step S201.
(93) The inner ring 200 is formed to penetrate the interior circumference of the wheel hub 100, wherein the second spline 230 splined to the first spline 110 of the wheel hub 100 is formed at a part of the exterior circumference of the inner ring 200 at step S202.
(94) As shown in
(95) In addition, the other portion of the exterior circumference of the inner ring 200 penetrating through the wheel hub 100 other than the second spline 230 is formed of the press-fitted portion 240 at step S203.
(96)
(97) The first facial spline 220 is formed radially at the end surface of the inner ring 200 and the second facial spline 610 engaging with the first facial spline 220 is formed at the joint member 600 at step S204.
(98) As shown in
(99) After that, the first rolling element 410 is disposed on the exterior circumference of the wheel hub 100 at step S205.
(100) As shown in
(101) After that, as shown in
(102) After that, the second rolling element 420 is disposed to contact the interior circumference of the other end portion of the outer ring at step S207 in a state that the outer ring 300 is mounted.
(103) After that, the inner ring 200 is press-fitted and mounted into the wheel hub 100 at step S208.
(104) At this time, as shown in
(105) In one or more exemplary embodiments, the diameter of the interior circumference of the wheel hub 100 is smaller than that of the exterior circumference of the press-fitted portion 240, and the inner ring 200 may be press-fitted into the wheel hub 100 by the hydraulic press.
(106) In one or more exemplary embodiments, the raised spot (not shown) may be formed at the interior circumference of the wheel hub 100 the wheel hub 100 and the protrusion (not shown) caught by the raised spot may be formed at the exterior circumference of the press-fitted portion 240 of the inner ring 200. After that, the inner ring 200 may be press-fitted into the wheel hub 100.
(107) In a state that the inner ring 200 is press-fitted, as shown in
(108) After that, in a state that the wheel hub 100 is pressed onto the inner ring 200, the boundary portions of the exterior circumference of the other end portion of the inner ring 200 and the interior circumference of the wheel hub 100 may be welded at step S209.
(109) As shown in
(110) After that, the joint member 600 provided with the second facial spline 610 engaging with the first facial spline 220 of the inner ring 200 is mounted at the inner ring 200 at step S210.
(111) As shown in
(112) Lastly, the bolt 700 penetrates through the hollow space of the inner ring 300 and engaged with the engaging groove 620 of the joint member 600 at step S211.
(113) As shown in
(114) Since the driving torque is delivered through the first and second facial splines 220 and 610 of the inner ring 200 and the joint member 600 and is then delivered from the inner ring 200 to the wheel hub 100 through the first and second splines 110 and 230 according to the second exemplary embodiment of the present invention, the driving torque can be delivered stably. In addition, since the inner ring 200 is mounted to maintain the preload applied to the wheel bearing through the press-fitted portion 240 and welding, the driving torque can be delivered further stably and noise occurring when power delivery may be reduced.
(115) While this invention has been described in connection with what is presently considered to be practical exemplary embodiments, it is to be understood that the invention is not limited to the disclosed embodiments, but, on the contrary, is intended to cover various modifications and equivalent arrangements included within the spirit and scope of the appended claims.