TRIPOD ROLLER FOR A CONSTANT VELOCITY UNIVERSAL JOINT
20190257362 ยท 2019-08-22
Assignee
Inventors
- Christophe Walliser (Haguenau, FR)
- Xavier Mehul (Rosheim, FR)
- Eric Moschler (Haguenau, FR)
- Gabriel Dalstein (La Petite Pierre, FR)
- Jean-Philippe Dietrich (Drusenheim, FR)
Cpc classification
F16D2003/2026
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y10T29/49684
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
Y10S464/905
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
International classification
Abstract
A tripod roller for a constant velocity universal joint includes inner and outer rings separated by a set of rollers. During assembly of the tripod roller the rollers are assembled to one of the inner and outer rings and then the other of the inner and outer rings is moved axially into position. Then, a forming tool is applied to one of the rings, in a direction perpendicular to the roller axis, to create a securing region. The securing region prevents relative axial movement of the two rings during the assembly of the universal joint.
Claims
1. A tripod roller for a constant velocity universal joint, the tripod roller comprising: an inner ring and an outer ring arranged coaxially to a tripod roller axis; and a plurality of rollers arranged so as to roll between the inner ring and the outer ring; and wherein a first of the inner ring and the outer ring being a securing ring having a securing region, wherein the securing region is designed as an embossing region or caulking region, wherein the securing region axially secures a second of the inner ring and the outer ring or at least one of the rollers in a form-fitting manner as a securing partner.
2. The tripod roller of claim 1 wherein the securing region forms an axial end stop for the securing partner.
3. The tripod roller of claim 1 wherein the securing region is produced by a forming tool with an action direction running axially against the securing region.
4. The tripod roller of claim 1 wherein the securing ring is hardened in portions, wherein the securing region is not hardened.
5. The tripod roller of claim 1 wherein the securing region is hardened.
6. The tripod roller of claim 1 wherein the securing ring is formed without a rim on a first raceway side, wherein on the first raceway side, the securing region is formed as a radial overhang relative to a raceway of the securing ring.
7. The tripod roller of claim 1 wherein the securing ring has a rim on one shoulder side, wherein the securing region is formed on the shoulder side as a radial overhang relative to the rim.
8. The tripod roller of claim 1 wherein the second of the inner ring and the outer ring has a throat region, wherein the throat region faces the securing region.
9-10. (canceled)
11. A constant velocity universal joint comprising: first and second rings arranged coaxially with respect to a tripod roller axis; and a plurality of rollers arranged to roll between the first and second rings; and wherein the first ring has a securing region which axially secures the second ring in a form-fitting manner.
12. The constant velocity universal joint of claim 11 wherein the securing region forms an axial end stop for the second ring.
13. The constant velocity universal joint of claim 11 wherein the first ring is hardened in portions, wherein the securing region is not hardened.
14. The constant velocity universal joint of claim 11 wherein the first ring is formed without a rim on a first raceway side, wherein on the first raceway side, the securing region is formed as a radial overhang relative to a raceway of the securing ring.
15. The constant velocity universal joint of claim 11 wherein the first ring has a rim on one shoulder side, wherein the securing region is formed on the shoulder side as a radial overhang relative to the rim.
16. The constant velocity universal joint of claim 11 wherein the first ring is an inner ring and the second ring is an outer ring.
17. The constant velocity universal joint of claim 11 wherein the first ring is an inner ring and the second ring is an outer ring.
18. A method of assembling a tripod roller for a universal joint, the method comprising: arranging a plurality of rollers between an inner ring and an outer ring to facilitate relative rotation about a roller axis; and using a forming tool in a direction perpendicular to the roller axis to create a securing region on one of the inner ring and the outer ring, thereby axial securing the inner ring and outer ring to one another.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0028] Further features, advantages and effects arise from the description below of a preferred exemplary embodiment, and from the enclosed figures.
[0029]
[0030]
[0031]
[0032]
[0033]
[0034]
[0035]
[0036]
DETAILED DESCRIPTION
[0037] The same or corresponding parts carry the same or corresponding reference signs.
[0038]
[0039] The constant velocity universal joint 1 is arranged in the drive train between a gear output 3, in particular of a differential gear, and an intermediate shaft 4, in particular a wheel drive shaft or cardan shaft. The gear output 3 defines an output axis 5, the intermediate shaft 4 defines a shaft axis 6. The constant velocity universal joint 1 is configured to transmit a rotation and hence a drive torque from the output 3 to the intermediate shaft 4, and at the same time allow a pivoting or angular change between the output axis 5 and the shaft axis 6, such as can occur for example on suspension compression of a driven wheel connected to the intermediate shaft 4. The intermediate shaft 4 comprises a shaft stub portion 7 provided with a plurality of pegs 8, in this exemplary embodiment three pegs 8, which extend radially relative to the shaft axis 6. The pegs 8 are distributed regularly around the shaft axis 6 in the circumferential direction so as to form a tripod star.
[0040] The constant velocity universal joint 1 furthermore has an axle journal portion 10 which is coupled rotationally fixedly to the output 3 and which provides raceways for the tripod rollers 9.
[0041] While
[0042]
[0043] The inner ring 11 has a receiver 16 for a peg 8 of the shaft stub portion 7.
[0044] The inner ring 11 has a shoulder side 17, wherein the shoulder side 17 is configured as a rim and forms an axial stop for the rollers 13. In particular, the shoulder side 17 has a stop face 18 running in a radial plane relative to the tripod roller axis T. The stop face 18 does not however extend over the complete radial extension of the roller 13 but runs only up to the middle of the roller 13.
[0045] On the opposite axial side, the inner ring 11 is configured with a raceway side 19, wherein the raceway side 19 is either slightly set back relative to the inner raceway 14 or runs at least mostly in the same radial diameter. In principle therefore, the roller body 13 may be inserted into the inner ring 11 via the raceway side 19.
[0046] The outer ring 12 however is configured as a securing ring which has two shoulder sides 20a, b. Each of the shoulder sides 20a, b is configured as a rim and forms a stop for the roller body 13. Each of the sides has a stop face 21a, b which also lies in a radial plane relative to the tripod roller axis T.
[0047] Looking at the shoulder sides 17, 20a, b, the tripod roller 9 is secured by form fit in one direction against a shift of the outer ring 12 relative to the inner ring 11. It is however possible for the outer ring 12 to be moved to the right in
[0048] This is however prevented by the form-fit securing element, as explained in connection with
[0049] One part region 23, which directly adjoins the roller body 13, has a cylindrical casing surface arranged coaxially to the tripod roller axis T. Furthermore, this part region 23 is positioned opposite the shoulder side 17 of the assembly ring and/or inner ring 11. A securing region 24 adjoins the part region 23 and is formed by a caulking region and/or embossing region. The securing region 24 protrudes radially relative to the part region 23 by an overhang 25, as indicated by the two straight lines in
[0050] A throat region 27 is made on the shoulder side 17 of the assembly ring and/or inner ring 11 as a clearance. The throat region 27 may for example be formed as a separation. The throat region 27 is open axially towards the outside and/or faces the securing region 24. Without the throat region 27, the shoulder ring and/or outer ring 12 would have to be made wider in the region of the terminating shoulder side 22 in order to ensure that, in normal operation, the shoulder side 17 of the assembly ring and/or inner ring 11 does not come into contact with the terminating shoulder side 22. The stability of the shoulder side 17 is not significantly reduced by the throat region 27, however the securing region 24 and the shoulder side 17 may be placed close together in the axial direction.
[0051] On a possible production of the tripod roller 9, in a first step the inner ring 11, outer ring 12 and roller bodies 13 are mounted, and then the securing region 24 is produced by forming, namely by embossing and/or caulking.
[0052] In the tripod roller 9 in
[0053] The outer ring 12 however has two shoulder sides 20a, b with rims, wherein the rims have a free inner diameter which is only slightly larger than the outer diameter of the inner raceway 14. The outer ring 12 is formed as a securing ring and has two securing regions 24, which again adjoin a part region 23 with a cylinder casing surface arranged coaxially to the tripod roller axis T. The securing region 24a, b is in each case configured as a caulking region and/or embossing region which protrudes radially inwardly relative to the part region 23 by an overhang 25, as indicated by the two straight lines in
[0054] In production of this tripod roller 9 too, it is also possible that in a first step the inner ring 11, outer ring 12 and roller bodies 13 are mounted and then the securing region 24a, b is produced by forming, namely embossing and/or caulking.
[0055]
[0056] On assembly, firstly the roller bodies 13 may be laid in the inner ring 11 and this, together with the roller bodies 13, is pushed into the outer ring 12, since initially the free diameter of the raceway sides 19a, b is greater than the outer diameter of the shoulder sides 20a, b. In this assembled state, the forming tool 26 with an axial, in particular a purely axial, action direction W, may produce the securing regions 24a, b in the outer ring 12 by means of caulking and/or embossing.
[0057]
[0058] On assembly, the roller bodies 13 are first laid in the outer ring 12, then the inner ring 11 is inserted and then caulked and/or embossed by means of the forming tool 26, as has been described above.
[0059]
[0060] On assembly, the roller bodies 13 are first laid in the outer ring 12, then the inner ring 11 is inserted and then caulked and/or embossed by means of the forming tool 26, as has been described above.
[0061]
[0062] On assembly, the roller bodies 13 are first laid in the inner ring 11, then the outer ring 12 is pushed on and then caulked and/or embossed by means of the forming tool 26, as has been described above.
LIST OF REFERENCE SIGNS
[0063] 1 Constant velocity universal joint [0064] 2 Vehicle [0065] 3 Gear output [0066] 4 Intermediate shaft [0067] 5 Output axis [0068] 6 Shaft axis [0069] 7 Shaft stub portion [0070] 8 Peg [0071] 9 Tripod roller [0072] 10 Axle journal portion [0073] 11 Inner ring [0074] 12 Outer ring [0075] 13 Roller body [0076] 14 Inner raceway [0077] 15 Outer raceway [0078] 16 Receiver [0079] 17 Shoulder side [0080] 18 Stop face [0081] 19 Raceway side [0082] 20 Shoulder sides [0083] 21 a, b Stop faces [0084] 22 Terminating shoulder side [0085] 23 Part region [0086] 24, 24 a, b Securing region [0087] 25 Overhang [0088] 26 Forming tool [0089] 27, 27 a, b Throat region [0090] T Tripod roller axis [0091] W Action axis