TORSIONAL VIBRATION DAMPER
20210215226 ยท 2021-07-15
Assignee
Inventors
Cpc classification
F16F15/165
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F15/13171
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C2361/55
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16F15/134
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F15/131
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A torsional vibration damper in the form of a two-mass flywheel for a motor vehicle, the dual-mass flywheel having a primary mass that is connected to the drive shaft of a drive engine in a torsionally rigid manner and revolves therewith, at least one energy storage element, and a secondary mass which is driven in a torsionally flexible manner by the primary mass via the energy storage element. The torque fed into the primary mass via the drive shaft is transmitted to at least one further link of the motor vehicle drive train arranged in a housing via an output shaft of the secondary mass. The primary mass is designed as a rotationally symmetrical hollow body that is concentric to its axis of rotation, open at least on one side, surrounds the secondary mass.
Claims
1-10. (canceled)
11. A torsional vibration damper in the form of a two-mass flywheel for a motor vehicle, comprising: a primary mass hat is connected to a drive shaft of a drive engine in a torsionally rigid manner and revolves therewith, at least one energy storage element, and a secondary mass which is driven in a torsionally flexible manner by the primary mass via the energy storage element, wherein the torque fed into the primary mass via the drive shaft is transmitted to at least one further link of the motor vehicle drive train arranged in a housing via an output shaft of the secondary mass, wherein the primary mass is a rotationally symmetrical hollow body that is open at least on one side concentrically to its axis of rotation and surrounds the secondary mass, and the open side of the hollow body is penetrated by the output shaft of the secondary mass, wherein the output shaft of the secondary mass is rotatably supported in the housing, wherein the hollow body forming the primary mass is rotatably supported on the housing by a sealing assembly sealing its open side in a liquid- and/or dust-tight manner
12. The torsional vibration damper according to claim 11, wherein the hollow body forming the primary mass is composed of at least two parts.
13. The torsional vibration damper according to claim 11, wherein the housing is connected to the housing of the drive engine such that they are fixed to the frame.
14. The torsional vibration damper according to claim 13, wherein the housing is the gearbox housing of the motor vehicle and the connection to the housing of the drive engine is formed by a bell-shaped attachment arranged on the gearbox housing and the bell-shaped attachment is screwed to the housing of the drive engine.
15. The torsional vibration damper according to claim 11, wherein centrifugal force pendulums are arranged on the secondary mass and are enclosed together therewith by the hollow body forming the primary mass.
16. The torsional vibration damper according to claim 11, wherein the sealing assembly between the hollow body forming the primary mass and the housing is formed by an elastically deformable friction ring.
17. The torsional vibration damper according to claim 11, wherein a pivot bearing assembly is arranged between the hollow body forming the primary mass and the housing.
18. The torsional vibration damper according to claim 17, wherein the pivot bearing assembly is a sliding pivot bearing with two degrees of freedom.
19. The torsional vibration damper according to claim 17, wherein the pivot bearing assembly is formed by a dust- and/or liquid-tight roller bearing with one degree of freedom.
20. The torsional vibration damper according to claim 17, wherein a device compensating for an axial offset between the axis of rotation of the primary mass and the central axis of the primary mass receptacle on the housing is arranged between the hollow body forming the primary mass and the housing.
21. The torsional vibration damper according to claim 12, wherein the housing is connected to the housing of the drive engine such that they are fixed to the frame.
22. The torsional vibration damper according to claim 12, wherein centrifugal force pendulums are arranged on the secondary mass and are enclosed together therewith by the hollow body forming the primary mass.
23. The torsional vibration damper according to claim 13, wherein centrifugal force pendulums are arranged on the secondary mass and are enclosed together therewith by the hollow body forming the primary mass.
24. The torsional vibration damper according to claim 14, wherein centrifugal force pendulums are arranged on the secondary mass and are enclosed together therewith by the hollow body forming the primary mass.
25. The torsional vibration damper according to claim 12, wherein the sealing assembly between the hollow body forming the primary mass and the housing is formed by an elastically deformable friction ring.
26. The torsional vibration damper according to claim 13, wherein the sealing assembly between the hollow body forming the primary mass and the housing is formed by an elastically deformable friction ring.
27. The torsional vibration damper according to claim 14, wherein the sealing assembly between the hollow body forming the primary mass and the housing is formed by an elastically deformable friction ring.
28. The torsional vibration damper according to claim 15, wherein the sealing assembly between the hollow body forming the primary mass and the housing is formed by an elastically deformable friction ring.
29. The torsional vibration damper according to claim 12, wherein a pivot bearing assembly is arranged between the hollow body forming the primary mass and the housing.
30. The torsional vibration damper according to claim 13, wherein a pivot bearing assembly is arranged between the hollow body forming the primary mass and the housing.
Description
[0019] Further embodiments and advantages of the invention are explained in more detail below with reference to the drawings. In which:
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
[0026] As can be seen in the sectional view of the torsional vibration damper 5 in
[0027] The cup-shaped first part 17 is connected to the cup base 20 via the flange 16, preferably by screw connections (not shown) and, forms a receiving channel 21 for the arc springs 14 by means of the inverted cup rim 18. The receiving channel 21 is filled with lubricating grease 22 surrounding the arc springs 14. A starter ring gear 30 is arranged on the outer circumference of the cup-shaped first part 17 which meshes with a starter pinion 31 of a starter (not shown). The starter pinion 31 is operatively connected with the starter ring gear 30 via an opening 32 in the bell-shaped attachment 4 on the gearbox housing 3, so that the interior of the bell-shaped attachment 4 is connected to the environment and is thus directly exposed to dust and liquids.
[0028] The second part 19, the large inner diameter 33 of which is arranged on the outer circumference of the first part 17, is welded to the first part 17, so that a space 23 is formed between the inverted cup rim 18 and the wall of the second part 19 extending radially inward. The thickened rim of the plate-shaped secondary mass 8 forming the flywheel mass 24 is arranged in the space 23. Contrary to the example shown, centrifugal pendulums (not shown) can be arranged on the flywheel mass 24, as is known per se, to increase the damping effect of the torsional vibration damper. As already mentioned above, the secondary mass 8 can be rotated relative to the primary mass 6 within the range of the spring travel defined by the arc spring 14. The part of the stepped tube having the small tube diameter adjoins the wall extending radially inward of the second part 19 of the primary mass 6, which is designed as a stepped tube. This protrudes into a recess 26 which is arranged concentrically to the axis of rotation 7 and which is formed in the housing wall 27 separating the space in the bell-shaped attachment 4 from the interior 25 of the gearbox housing 3. In the area of the recess 26, the housing wall 27 and the free end of the second part 19 of the primary mass 6 extend concentrically parallel to each another, at a constant distance from one another. In this area, a sealing assembly 28 is arranged between the housing wall 27 and the free end of the second part 19 of the primary mass 6, which seals the interior of the hollow body forming the primary mass 6 and thus the interior of the torsional vibration damper 5 against the environment. In this way, dust and/or liquids that has/have penetrated the bell-shaped attachment 4 on the gearbox housing 3 via the opening 32 can be kept away from the interior of the torsional vibration damper 5 without affecting the vibration behavior between the primary mass 6 and secondary mass 8. Additional measures may be necessary to prevent lateral forces, for example, caused when off-road vehicles drive over uneven ground, from overly stressing or, in extreme cases, even deforming the material of the primary mass 6, which is designed as a hollow body. In the chosen example, a pivot bearing assembly 29 is provided in the area between the housing wall 27 and the free end of the second part 19 of the primary mass 6, so that any lateral forces are dissipated by the housing wall 27. This pivot bearing assembly 29 does not affect the vibration behavior of the torsional vibration damper 5 either. If the pivot bearing assembly 29 is a sealed bearing, it also assumes the function of the sealing assembly 28.
[0029] There are various possibilities for implementing the sealing assembly 28 and optionally a pivot bearing assembly 29 to achieve the desired sealing effect and, if necessary, support the primary mass 6 on the housing wall 27, some of which are described below in connection with
[0030] A particularly simple possibility is shown in
[0031] The sealing assembly 28 according to
[0032] Deviating from the representation in
[0033] Another possible embodiment of a sealing assembly 28 in connection with a pivot bearing assembly 29 is shown in
[0034] The bottom right representation in
[0035] Further variants of embodiments of a sealing assembly 28 in connection with a pivot bearing assembly 29 can be seen in
[0036] From the representation according to
[0037]
[0038] It can be seen from the various possible embodiments of a sealing assembly and, optionally, a rotary bearing assembly between primary mass and gearbox housing described above as an example that generally all known shaft seals can be contemplated for sealing and all known pivot bearing assemblies can be contemplated for supporting.