Torsional vibration damper
09638283 · 2017-05-02
Assignee
Inventors
- Michael Wirachowski (Wurzburg, DE)
- Matthias Kram (Volkach, DE)
- Ying Dong (Bergrheinfeld, DE)
- Volker Stampf (Schweinfurt, DE)
- Jörg Sudau (Niederwerrn, DE)
- Armin STÜRMER (Rannungen, DE)
- Friedrich Kokott (Bergrheinfeld, DE)
- Christoph SASSE (Schweinfurt, DE)
- Daniel Pittner (Gerbrunn, DE)
- Oliver ANDRES (Bamberg, DE)
- Simone Vierneusel (Konigsberg-Holzhausen, DE)
- Dennis Egler (Espenau, DE)
- Kyrill Siemens (Wurzburg, DE)
Cpc classification
Y10T74/2128
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
F16F15/13128
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16F15/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A torsional vibration damper is provided with a damper mass carrier at which is received at least one damper mass that is movable relative to the damper mass carrier and at least one stop. The at least one stop is associated with each stop side of the at least one damper mass. The at least one damper mass and the stop have an extension in extension direction of a central axis. The at least one damper mass has a plurality of damper mass elements in extension direction of the central axis, while the stop has in extension direction of the central axis a stop profile at its side facing the stop sides of the damper mass elements. The stop profile has different radial distances from the central axis in association with the damper mass elements.
Claims
1. A torsional vibration damper comprising a damper mass carrier; at least one damper mass movably received at the damper mass carrier relative to the damper mass carrier; at least one stop associated with each stop side of the at least one damper mass, wherein the at least one damper mass and the stop have an extension in a direction of a central axis, a plurality of damper mass elements associated with the at least one damper mass arranged in the direction of the central axis, wherein the stop has in the direction of the central axis a stop profile at its side facing the stop sides of the damper mass elements, the stop profile having different radial distances from the central axis in association with each of the damper mass elements, a coupling arrangement, wherein the coupling arrangement has a torsional vibration damper unit in which the damping device having at least one circumferential spring set has a torsion damper input and a torsion damper output, wherein at least one of the torsion damper input, the torsion damper output, and an intermediate torsion damper component located between the torsion damper input and the torsion damper output is provided for receiving at least one damper mass support element of the damper mass carrier to be fixed with respect to relative rotation.
2. The torsional vibration damper according to claim 1, wherein the stop profile has a maximum radial distance from the central axis in association with a first damper mass element, a minimum radial distance in association with a second damper mass element, and a radial distance in association with at least one further damper mass element, wherein a magnitude of the radial distance lies between the maximum radial distance and the minimum radial distance.
3. The torsional vibration damper according to claim 2, wherein the first damper mass element is provided at a first axial side of the damper mass, the second damper mass element is provided at a second axial side of the damper mass, and the at least one further damper mass element is provided axially between the first damper mass element and the second damper mass element.
4. The torsional vibration damper according to claim 3, wherein a change in radial distance between the stop profile of the stop and the central axis follows an at least substantially continuous course between the first axial side of the damper mass and the second axial side of the damper mass.
5. The torsional vibration damper according to claim 4, wherein, starting from the first axial side of the damper mass, the stop profile of the stop narrows in a wedge shape at an angle in direction of the second axial side of the damper mass.
6. The torsional vibration damper according to claim 1, wherein the stops are fixed in circumferential direction between every two damper masses.
7. The torsional vibration damper according to claim 6, wherein the stops for the damper mass are fixed by at least one stop receiver.
8. The torsional vibration damper according to claim 7, wherein the at least one stop extends at least within a region between the associated stop receiver and the damper mass provided at both sides of this stop receiver.
9. The torsional vibration damper according to claim 8, wherein the stop in association with the respective stop receiver is provided with at least one holder that encloses the stop receiver.
10. The torsional vibration damper according to claim 9, wherein the at least one holder is configured to form a free space with an axial offset relative to the associated stop receiver.
11. The torsional vibration damper according to claim 7, wherein the at least one stop receiver for the stops is formed by at least one holding projection which, after engaging through one of a first associated recess and through engagement in a second associated recess of a component part of a coupling arrangement, is fixedly held through the component part.
12. The torsional vibration damper according to claim 1, wherein the at least one stop for the damper mass is displaceable in circumferential direction relative to the damper mass.
13. The torsional vibration damper according to claim 12, wherein at least one stop receiver is associated with the at least one stop for the damper mass, the at least one stop receiver configured to center the stop relative to the central axis.
14. The torsional vibration damper according to claim 13, wherein a sheath is associated with the at least one stop receiver.
15. The torsional vibration damper according to claim 1, wherein the stop is supported by its radially inner side at a component part of a coupling arrangement.
16. The torsional vibration damper according to claim 15, wherein respective stops for respective damper masses are at least one of secured to and least centered at, one of the damper mass carrier, a component part of a damping device of the coupling arrangement, and a component part of the coupling arrangement.
17. The torsional vibration damper according to claim 1, wherein the stop sides of the damper mass elements are adapted with respect to their geometry to a shape of the stop profile of the stop.
18. The torsional vibration damper according to claim 1, wherein the damper mass carrier, with respect to every damper mass, has two first guideways that cooperate with two second guideways of the respective damper mass, wherein rolling bodies configured to receive the damper masses at the damper mass carrier allow relative movement thereof and connect the two first guideways and the two second guideways to one another, wherein at least one of the two second guideways have in a radially outer region one of a planar shaping and a widening and the two first guideways have in a radially inner region one of a planar shaping and a widening so that a radial extension of the respective guideway takes on a maximum in a circumferential region of a respective initial region.
19. The torsional vibration damper according to claim 1, wherein, for a plurality of damper masses, the stops are collectively arranged at a common, annular, component part.
20. The torsional vibration damper according to claim 1, wherein the stops for the damper masses are arranged radially inwardly of the damper masses.
21. The torsional vibration damper according to claim 1, wherein the torsional vibration damper unit cooperates with a clutch mechanism.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The invention will be described more fully in the following with reference to the accompanying drawings. The drawings show:
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DETAILED DESCRIPTION OF THE PRESENTLY PREFERRED EMBODIMENTS
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(26) Guideways 13 are provided in pairs at the damper mass support elements 5 in each instance. These guideways 13 extend in a curved manner, in each instance with an initial region 14 in which the respective guideway 13 has the greatest radial distance from a central axis 15 and with connection regions 17, which extend circumferentially opposite one another so as to adjoin at both sides of the initial region 14. A circumferential end 18 of one of the two connection regions 17 is visible in
(27) A rolling body 20 is arranged in the guideways 13 in each instance, this rolling body 20 engaging in each instance in an associated guideway 22 of the damper masses 7, these guideways 22 being arranged in pairs in the damper masses 7 in each instance. In the diagram shown in
(28) Each of the damper masses 7 has at the radially inner ends thereof in each instance a geometric shaping 28 having contact curvatures 29 in the circumferentially middle portion, but having a circumferential end curvature 30 in the circumferentially outer portion. In a manner described below, this geometric shaping 28 cooperates with stops 31 provided radially inwardly of the damper masses 7 and at an annular component part 32.
(29) In circumferential direction between every two damper masses 7, the annular component part 32 has a holder 34 that encloses a spacer 11 in each instance such that the holder 34 serves as a stop receiver 35. The annular component part 32 is received at the damper mass support elements 5 and, therefore, at the damper mass carrier 3 to be fixed with respect to relative rotation. An annular body 33 extending in circumferential direction acts between every two stop receivers 35 as a stop 31. Accordingly, all of the stops 31 and all of the stop receivers 35 are brought together at the annular component part 32. Alternatively, other solutions, also not shown, in which each stop 31 or a partial group of stops 31 is received via a stop receiver 35 or a partial group of stop receivers 35 at a supporting component part such as the damper mass carrier 3 are conceivable.
(30) As shown in the cross sectional view in
(31) Starting from the first axial side A1 of the annular component part 32, there is a decreasing radial distance in extension direction of the central axis 15, i.e., in direction toward the second axial side A2 of the annular component part 32. However, this decrease in the radial distances causes an increase in the radial distances between the stop profile 40 of the respective stop 31 and the stop sides 42a, 42b, 42c of the respective damper mass elements 44a to 44c. Consequently, the radial distance between the stop profile 40 and stop side 42a is shortest at the first axial side A1, and the radial distance between the stop profile 40 and stop side 42c is greatest at the second axial side A2. However, the radial distance between stop profile 40 and stop side 42 between the first axial side A1 and the second axial side A2 takes on values between the radial distances at the two axial sides A1, A2 in terms of amount.
(32) While the stop profile 40 in the embodiment shown in
(33) When the torsional vibration damper 1 is operated at a speed at which the centrifugal force exceeds the weight force, the damper masses 7 tend radially outward under centrifugal force so that the rolling body 20 can position itself in the initial region 24 of the respective guideway 22 of the damper masses 7 in each instance. While torsional vibrations can force deflections of the damper masses 7 in circumferential direction so that the rolling bodies 20 are deflected out of the initial regions 24 of the guideways 22 into the connection regions 25 thereof, the rolling bodies 20 are always returned to the initial position under centrifugal force as the torsional vibration decays.
(34) However, when the centrifugal force drops below the weight force, for example, in creep mode of a motor vehicle or when stopping a drive, e.g., an internal combustion engine, the damper masses 7 drop radially inward and occupy a relative position, shown in
(35) As a result of forming the stop profile 40 provided at the respective stop 31 with an angle a relative to the central axis 15, the stop sides 42a to 42c of the individual damper mass elements 44a to 44c are oriented relative to the stop profile 40 at different drop heights F1 to F3 (see
(36) There is a further step for reducing the noise of impact on the stop 31. This step already follows from
(37) As has already been described, during operating states in which the centrifugal force falls below the weight force, the circumferential end curvature 30 of the respective damper mass element 44a to 44c engages the holder 34 and, therefore, the stop receiver 35 of the annular component part 32. To dampen this impact of the respective damper mass element 44a to 44c, the holder 34, and therefore the stop receiver 35, is formed such that, according to
(38) While the annular component part 32, according to
(39) According to
(40) To the extent that the torsional vibration damper 1 is shown,
(41) While spacers 11 are provided in the embodiment according to
(42) Alternatively, according to
(43) The holding projections 79 or 82 form alternative constructions of the stop receiver 35 in place of spacer 11 or stud 52.
(44) The torsional vibration damper 1 shown in
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(47) The annular component part 32 is axially supported by its axially free end 106 at the corresponding damper mass support element 5 to benefit an axial positioning of the annular component part 32 in relation to the damper mass carrier 3.
(48) According to one aspect of the invention, the first damper mass element 44a is provided at a first axial side Al of the damper mass 7, the second damper mass element 44c is provided at a second axial side A2 of the damper mass, and the at least one further damper mass element 44b is provided axially between the first damper mass element 44a and the second damper mass element 44c.
(49) According to one aspect of the invention, the stops 31 are fixed in circumferential direction between every two damper masses 7 when there is a plurality of stops 31 for the damper masses 7.
(50) According to one aspect of the invention, the stops 31 for the damper masses 7 are fixed by elements of at least one stop receiver 35.
(51) According to one aspect of the invention, the at least one stop 31 extends at least within the region between the associated stop receiver 35 and the damper masses 7 provided at both sides of this stop receiver 35.
(52) According to one aspect of the invention, the at least one stop 31 for the damper mass 7 is displaceable in circumferential direction relative to the damper mass 7.
(53) According to one aspect of the invention, at least one stop receiver 35 is associated with the at least one stop 31 for the damper mass 7, which at least one stop receiver 35 causes a centering of the stop 31 relative to the central axis 15.
(54) According to one aspect of the invention, the stop sides 42a to 42c of the damper mass elements 44a to 44c are adapted with respect to their geometry to the shape of the stop profile 40 of the stop 31.
(55) According to one aspect of the invention, for a plurality of damper masses 7, the stops 31 are collectively arranged at a common, preferably annular, component part 32.
(56) According to one aspect of the invention, the stops 31 for the damper masses 7 are secured to, or at least centered at, the damper mass carrier 3, a component part 74 of a damping device 70 of the coupling arrangement 56, or a component part 62 of the coupling arrangement 56.
(57) Thus, while there have shown and described and pointed out fundamental novel features of the invention as applied to a preferred embodiment thereof, it will be understood that various omissions and substitutions and changes in the form and details of the devices illustrated, and in their operation, may be made by those skilled in the art without departing from the spirit of the invention. For example, it is expressly intended that all combinations of those elements and/or method steps which perform substantially the same function in substantially the same way to achieve the same results are within the scope of the invention. Moreover, it should be recognized that structures and/or elements and/or method steps shown and/or described in connection with any disclosed form or embodiment of the invention may be incorporated in any other disclosed or described or suggested form or embodiment as a general matter of design choice. It is the intention, therefore, to be limited only as indicated by the scope of the claims appended hereto.