TORSIONAL VIBRATION DAMPER ARRANGEMENT HAVING HUB-INTERNAL CONNECTING ELEMENTS
20230067417 · 2023-03-02
Assignee
Inventors
Cpc classification
F16H57/0006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F15/1207
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F2230/0005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F15/13185
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2057/0012
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D1/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16H57/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F15/121
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A torsional vibration damper arrangement for a drive train of a motor vehicle includes a torsional vibration damper having an input flange, a first output flange, a second output flange, a hub, a first connecting element, and a second connecting element. The first output flange is rotatable relative to the input flange about an axis of rotation against a spring device. The first connecting element lies on a first radius relative to the axis of rotation and connects the first output flange, the second output flange, and the hub in rotationally fixed and form-fitting or force-fitting manner for torque transmission to a further component. The second connecting element is disposed at least partially radially inside the hub and connects the hub to the second output flange in a force-fitting or form-fitting manner.
Claims
1. A torsional vibration damper arrangement for use in a drive train of a motor vehicle, including a torsional vibration damper having an input flange and at least one first output flange, which can be rotated relative to one another about an axis of rotation against a plurality of spring devices, the plurality of spring devices including at least one bow spring, the at least one first output flange being connected via a hub to a second output flange for torque transmission to a further component in a rotationally fixed manner, the at least one first output flange, the hub and the second output flange being connected in a form-fitting or force-fitting manner by at least one first connecting element, which lies on at least one first radius with respect to the axis of rotation, wherein at least one second connecting element is designed which connects the hub to the second output flange in a force-fitting or form-fitting manner, wherein the second connecting element is designed to be at least partially radially inside the hub.
2. The torsional vibration damper arrangement according to claim 1, wherein the second connecting element is aligned to be flush with the axis of rotation.
3. The torsional vibration damper arrangement according to claim 1, wherein the hub has a largest inner diameter and the second connecting element extends radially within said largest inner diameter.
4. The torsional vibration damper arrangement of claim 1, wherein multiple second connecting elements are designed.
5. The torsional vibration damper arrangement of claim 1, wherein the second connecting element includes a screw and a thread in the second output flange.
6. The torsional vibration damper arrangement of claim 1, wherein the second connecting element includes a screw and a threaded nut.
7. The torsional vibration damper arrangement of claim 1, wherein the second connecting element includes a spring element for applying an additional clamping force.
8. The torsional vibration damper arrangement of claim 1, wherein the second connecting element includes a bolt, a locking ring, and a spring element for applying an additional clamping force.
9. The torsional vibration damper arrangement of claim 7, wherein the spring element includes a disc spring.
10. A motor vehicle including a connecting shaft and the torsional vibration damper arrangement of claim 1, wherein the second output flange of the torsional vibration damper arrangement is connected to the connecting shaft in a rotationally fixed manner.
11. A torsional vibration damper arrangement for a drive train of a motor vehicle, comprising: a torsional vibration damper comprising: an input flange; and a first output flange, rotatable relative to the input flange about an axis of rotation against a spring device; a second output flange; a hub a first connecting element lying on a first radius relative to the axis of rotation, the first connecting element connecting the first output flange, the second output flange, and the hub in rotationally fixed and form-fitting or force-fitting manner for torque transmission to a further component; and a second connecting element disposed at least partially radially inside the hub and connecting the hub to the second output flange in a force-fitting or form-fitting manner.
12. The torsional vibration damper arrangement according to claim 11, wherein the second connecting element is aligned to be flush with the axis of rotation.
13. The torsional vibration damper arrangement according to claim 11, wherein the hub has a largest inner diameter and the second connecting element extends radially within the largest inner diameter.
14. The torsional vibration damper arrangement of claim 11, further comprising multiple second connecting elements.
15. The torsional vibration damper arrangement of claim 11, wherein: the second output flange comprises a thread; and the second connecting element comprises a screw threaded into the thread.
16. The torsional vibration damper arrangement of claim 11, wherein the second connecting element comprises a screw and a threaded nut.
17. The torsional vibration damper arrangement of claim 11, wherein the second connecting element comprises a spring element for applying an additional clamping force.
18. The torsional vibration damper arrangement of claim 17, wherein the second connecting element further comprises a bolt and a locking ring.
19. The torsional vibration damper arrangement of claim 18, wherein the spring element is a disc spring.
20. A motor vehicle comprising: the torsional vibration damper arrangement of claim 11; and a connecting shaft connected to the second output flange in a rotationally fixed manner.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Both the disclosure and the technical field are explained in more detail below with reference to the figures. It should be noted that the disclosure is not intended to be limited by the exemplary embodiments shown. For example, unless explicitly stated otherwise, it is also possible to extract partial aspects of the substantive matter outlined in the figures and to combine them with other components and knowledge from the present description and/or figures. It should also be noted that the figures and the proportions shown are only schematic. Identical reference symbols indicate the same objects, so that where applicable, explanations from other figures can also be used. In the figures:
[0018]
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DETAILED DESCRIPTION
[0028]
[0029]
[0030] The first output flanges 11 are designed to be rotatable relative to the input flange against the action of a spring device, not shown here, for damping torsional vibrations about an axis of rotation 15. The first output flanges 11 are connected to a hub 12 and a second output flange 13 in a rotationally fixed manner. A shaft, in this case the connecting shaft 4, is connected via the second output flange 13 by connecting means 14. This makes it possible to transmit torque to an output element, such as the connecting shaft 4 in this case, without this being designed to be inside the hub 12.
[0031] Where reference is made in this publication to the terms “axial” and “radial”, these are always understood to relate to the axis of rotation 15, unless otherwise specified.
[0032] Due to the moment M, which arises as a result of an angular and/or axial offset between the internal combustion engine 2 and the transmission 6, additional forces 16 act on the torsional vibration damper arrangement 9, e.g., on the first connecting elements 17, via which the at least one first output flange 11, the hub 12 and the second output flange 13 are connected to one another in a form-fitting and/or force-fitting manner in order to transmit torque. These additional forces 16 are axial forces in the direction of the axis of rotation 15.
[0033] The forces are subject to a certain periodicity due to the rotation of the torsional vibration damper arrangement 9 in operation, so that the amplitude of the additional force 16 acting on a certain first connecting element 17 is variable in time. Depending on the type of connection, this can have different effects. If, as in this example, a riveted connection is provided, the additional force 16 results in an axial load on the riveted connection. If instead a screw connection is designed as the first connecting element 17, the additional force 16 leads to a reduction of the axial clamping force and thus to a reduction of the possible moment transmission in the respective region. If a pin connection or additional toothing is also designed, the additional force 16 results in a bending load due to the elastic deformation of the components such as the second input flange 13 and hub 12, which can possibly lead to a failure of the first connecting element 17, so that the moment transmission via the torsional vibration damper arrangement 9 is at least reduced.
[0034]
[0035] Furthermore, the torsional vibration damper arrangement 9 includes a second connecting element 20. In the present example, the second connecting element 20 is a screw 21, which is arranged radially inside the hub 12 and whose axis is concentric with the axis of rotation 15. The second connecting element 20 is thus aligned to be flush with the axis of rotation. In this example, the second connecting element 20 is designed to be radially completely inside a largest inner radius 38 of the hub 12. The second connecting means 20 is thus designed to be centrally in the hub 12. This facilitates the design and mounting of the torsional vibration damper arrangement 9. In this example, the screw 21 corresponds to a corresponding thread 34 in the second output flange 13 and causes an axially acting additional clamping force 22, which counteracts the moment M applied to the connecting shaft 4.
[0036] This can result in a large first radius 19 and thus a large torque to be transmitted via the torsional vibration damper 10 with a reduction in the additional forces 16 acting on the first connecting elements 13. Alternatively, it is also possible to provide a corresponding thread 34 in the hub 12 and to connect the second connecting means 20 or the screw 21 to the thread from the direction of the second output flange 13,
[0037]
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[0042]
[0043] The torsional vibration damper arrangement 9 proposed here includes a torsional vibration damper 10, which can be connected on the output side to a shaft, for example a connecting shaft 4, via a lateral second output flange 13. By means of a second connecting means 20 radially inside the hub 12, an additional clamping force 22 is generated which counteracts an additional force 16 caused by a moment M acting on the second output flange 13 through the connecting shaft 4 due to an axial and/or angular offset and can stress, damage and possibly destroy the first connecting means 17 by which the hub 12 is connected to the second output flange 13 and the at least one first output flange 13 of the torsional vibration damper 10. This eliminates the need for a cardan shaft in installation situations where an internal combustion engine is designed to be spatially separated from a transmission.
REFERENCE NUMERALS
[0044] 1 Motor vehicle [0045] 2 internal combustion engine [0046] 3 Clutch [0047] 4 Connecting shaft [0048] 5 Transmission input shaft [0049] 6 Transmission [0050] 7 Crankshaft [0051] 8 Chassis [0052] 9 Torsional vibration damper arrangement [0053] 10 Torsional vibration damper [0054] 11 First output flange [0055] 12 Hub [0056] 13 Second output flange [0057] 14 Connecting means [0058] 15 Axis of rotation [0059] 16 Additional force [0060] 17 First connecting element [0061] 18 Rivet [0062] 19 First radius [0063] 20 Second connecting element [0064] 21 Screw [0065] 22 Additional clamping force [0066] 23 Screw [0067] 24 Screw [0068] 25 Threaded nut [0069] 26 Bolt [0070] 27 Securing ring [0071] 28 Spring element [0072] 29 Disc spring [0073] 30 Pin connection [0074] 31 Second radius [0075] 32 Screw connection [0076] 33 Axis [0077] 34 Thread [0078] 35 Input flange [0079] 36 Spring device [0080] 37 Bow spring [0081] 38 Largest inner radius