METHOD FOR ASSEMBLING A TRIPOD ROLLER, TRIPOD ROLLER, AND CONSTANT VELOCITY JOINT HAVING THE TRIPOD ROLLER
20200347891 ยท 2020-11-05
Assignee
Inventors
- Xavier Mehul (Rosheim, FR)
- Christophe Walliser (Haguenau, FR)
- Jean-Philippe Dietrich (Drusenheim, FR)
- Eric Moschler (Haguenau, FR)
- Gabriel Dalstein (La Petite Pierre, FR)
Cpc classification
F16D2003/2026
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
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
F16D2300/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2250/0084
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
Constant velocity joints are used in vehicles to transmit a torque from the drive train to the driven wheels and at the same time to allow bending movements to allow the vehicle to drive around bends or to dip the chassis relative to the driven wheels. An outer ring of a tripod roller has flanges which retain rollers and retain an inner ring. During assembly, the inner ring is cooled such that its diameter is reduced such that it can be moved into position axially without interference from the flange. Once the parts return to the same temperature, the inner ring and rollers are retained.
Claims
1. A method for assembling a tripod roller, the tripod roller comprising: an inner ring and an outer ring, the inner ring and the outer ring being designed as running rings, a plurality of rolling elements, the rolling elements being arranged in a rolling element space between the running rings, a first and a second flange, the flanges axially delimiting the rolling element space and/or forming an axial run-up for the rolling elements, the flanges in each case defining a flange diameter, the flanges being assigned to one of the running rings, so that this running ring forms a flange ring and the other running ring forms a thrust ring, a raceway for the rolling elements of the thrust ring defining a raceway diameter, the flanges being integrally formed on the flange ring and the raceway diameter overlaps both flange diameters such that the thrust ring between the flanges is kept captive in the axial direction, in the method the running rings being assembled one inside the other, the running rings having a temperature difference during the assembly process.
2. The method according to claim 1, wherein the temperature difference is greater than 100 C.
3. The method according to claim 1, wherein the inner ring is cooled or the outer ring is heated to produce the temperature difference.
4. A tripod roller having an inner ring and an outer ring, the inner ring and the outer ring being designed as running rings and having a plurality of rolling elements, the rolling elements being arranged in a rolling element space between the running rings, having a first and a second flange, the flanges axially delimiting the rolling element space the flanges each defining a flange diameter, the flanges being assigned to one of the running rings, so that this running ring forms a flange ring and the other running ring forms a thrust ring, the raceway of the thrust ring defining a raceway diameter wherein the flanges are integrally formed on the flange ring and the raceway diameter overlaps both flange diameters such that the running ring between the flanges is held captive in the axial direction.
5. The tripod roller according to claim 4, characterized in that the difference between the raceway diameter and at least one of the flange diameters is selected such that the running rings can be assembled if the running rings have a temperature difference.
6. The tripod roller according to claim 4, wherein one of the flanges is designed as a support flange and the other flange as an assembly flange, the difference between the raceway diameter and the flange diameter of the support flange being greater than the difference between the raceway diameter and the flange diameter of the assembly flange.
7. The tripod roller according to claim 4, wherein the flange ring is designed as the outer ring and the thrust ring is designed as the inner ring.
8. The tripod roller according to claim 4, wherein the inner ring is designed without a flange.
9. The tripod roller according to claim 4, wherein the inner ring is designed as a straight hollow cylinder.
10. A constant velocity joint comprising at least one tripod roller according to claim 4.
11. The method according to claim 1, wherein the temperature difference is greater than 150 C.
12. A method of assembling a constant velocity joint tripod roller, comprising: providing an outer ring having two radially inward facing flanges, a first of the flanges having a nominal flange diameter at a nominal temperature and an assembly flange diameter at an outer ring assembly temperature; providing an inner ring having an nominal outer diameter at the nominal temperature and an assembly outer diameter at an inner ring assembly temperature, the nominal outer diameter being greater than the nominal flange diameter and the assembly outer diameter being less than the assembly flange diameter; adjusting a temperature of the outer ring to the outer ring assembly temperature; adjusting a temperature of the tripod inner ring to the inner ring assembly temperature; inserting a plurality of rollers between the flanges of the outer ring; axially inserting the inner ring into the outer ring; and adjusting the temperature of the outer ring and the temperature of the inner ring to the nominal temperature such that the inner ring is axially retained between the flanges.
13. The method of claim 12 wherein adjusting the temperature of the inner ring to the inner ring assembly temperature comprises cooling the inner ring.
14. The method of claim 12 wherein the nominal temperature is 20 C.
15. The method of claim 12 wherein the outer ring assembly temperature exceeds the inner ring assembly temperature by more than 100 C.
16. The method of claim 15 wherein the outer ring assembly temperature exceeds the inner ring assembly temperature by more than 150 C.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0026] Further features, advantages and effects result from the following description of a preferred exemplary embodiment and the attached figures. In these:
[0027]
[0028]
[0029]
DETAILED DESCRIPTION
[0030]
[0031] The constant velocity joint 1 is arranged in the drive train between a transmission output 3, in particular a differential, and an intermediate shaft 4, in particular a wheel drive shaft or an articulated shaft. The transmission output 3 defines an output axis 5, the intermediate shaft 4 defines a shaft axis 6. The constant velocity joint 1 is designed to transmit a rotation and thus a drive torque from the output 3 to the intermediate shaft 4 and at the same time to enable pivoting or a change in angle between the output axle 5 and the shaft axle 6, as is the case, for example, upon compression of the driven wheel, which is connected to the intermediate shaft 4. The intermediate shaft 4 has a stub shaft section 7, on which a plurality of pins 8, in this exemplary embodiment three pins 8, are arranged, which extend radially to the shaft axis 6. The pins 8 are evenly arranged in the circumferential direction around the shaft axis 6, so that they form a tripod star 11. Only one of the pins 8 is shown graphically in
[0032] The constant velocity joint 1 also has a bell section 10 which is non-rotatably coupled to the outlet 3 and which provides raceways for the tripod rollers 9.
[0033] While an exemplary embodiment is shown in
[0034]
[0035]
[0036] The tripod roller 9 has an inner ring 12 and an outer ring 13, which are arranged coaxially and concentrically to one another and have the tripod roller axis T as the axis of rotation. Inner ring 12 and outer ring 13 may each be referred to as running rings.
[0037] The outer ring 13 is partially circular, segment-shaped and/or spherical on the radial outer side thereof. The outer ring 13 has a first and a second flange 16, 17, the flanges 16, 17 extending radially inwards. The flanges 16, 17 are rectangular in the longitudinal section. The first flange 16 defines a first flange diameter BD1 due to the free opening cross-section thereof, the second flange 17 defines a second flange diameter BD2 due to the free opening cross-section thereof. The flanges 16, 17 are formed in one piece in the outer ring 13 and/or are produced from a common base material without separation. In the longitudinal section shown, the flanges 16, 17 are directed radially inward to the tripod roller axis T. The outer ring 13 is thus designed as a flange ring.
[0038] A plurality of rolling elements 14 are arranged between the inner ring 12 and the outer ring 13, the rolling elements 14 being designed as rollers, in particular cylindrical rollers or needles. The rolling elements 14 are arranged between the inner ring and the outer ring 12, 13 in a rolling element space 15, the rolling element space 15 being delimited in the radial direction on the one hand by an inner raceway 18 and on the other hand by an outer raceway 19. In the axial direction, the rolling element space 15 is delimited by the flanges 16, 17, which form a run-up for the rolling elements 14.
[0039] The inner ring 12 has the inner raceway 18 as the maximum outer diameter. In particular, the inner ring 12 is rectangular in the longitudinal section shown. The inner race 18 defines a raceway diameter LD from the inner ring 12.
[0040] In
[0041] The assembly is made possible in that a temperature difference between the inner ring and the outer ring 12, 13 is implemented during the assembly process, so that the inner ring 12 is reduced in size relative to the outer ring 13 due to a contraction. This is implemented in that the inner ring 12 is cooled from a temperature T1 to a lower temperature T2, for example with liquid nitrogen, and is inserted into the outer ring 13 in the cooled state at the temperature T2, The corresponding method is visualized by
[0042] In the exemplary embodiment of the tripod roller 9 in
[0043] In
LIST OF REFERENCE SYMBOLS
[0044] 1 Constant velocity joint [0045] 2 Vehicle [0046] 3 Gear output [0047] 4 Intermediate shaft [0048] 5 Output axis [0049] 6 Shaft axis [0050] 7 Stub shaft section [0051] 8 Pin [0052] 9 Tripod roller [0053] 10 Articulated bell [0054] 11 Tripod star [0055] 12 Inner ring [0056] 13 Outer ring [0057] 14 Rolling elements [0058] 15 Rolling element space [0059] 16 First flange [0060] 17 Second flange [0061] 18 Inner raceway [0062] 19 Outdoor raceway