CLUTCH WITH TORQUE FLOW DISTRIBUTION FOR PARTIAL BOOSTING
20190128336 ยท 2019-05-02
Inventors
Cpc classification
F16D13/56
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2013/706
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D13/54
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D13/683
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16D13/54
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D13/68
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A clutch (1), includes an input side (2) which is prepared for the introduction of torque, and an output side (3) which is prepared for the forwarding of torque to at least one transmission input shaft (4). The clutch includes first friction elements (5) as part of a first multiple disc assembly (6) and having second friction elements (7) as part of a second multiple disc assembly (8). The first friction elements (5) are connected to the input side (2) in a torque-transmitting manner and the second friction elements (7) are connected to the output side (3) in a torque-transmitting manner. The first and second friction elements (5, 7) can be brought into frictional engagement with one another by way of a pressing force (F), in order to transmit a torque (M) from the input side (2) to the output side (3). At least one leaf spring (9) is provided which is configured to boost the pressing force (F). The second multiple disc assembly (8) is split and the friction elements (7) thereof are attached to two torque forwarding devices (45, 46) which are separate from one another, in such a way that a torque flow to the transmission input shaft (4) runs via a first torque path (DW1) which contains the at least one leaf spring (9), and a second torque path (DW2) which is separate therefrom.
Claims
1-9. (canceled)
10. A clutch having an input side for an introducing torque and an output side for a transferring torque to a transmission input shaft, the clutch comprising: first friction elements as part of a first plate pack; second friction elements as part of a second plate pack, the first friction elements being connected to the input side for torque transmission and the second friction elements are connected to the output side for the torque transmission, the first and second friction elements configured for being brought into frictional engagement with one another by a contact pressure in order to transmit a torque from the input side to the output side; and at least one leaf spring configured to boost the contact pressure, the second plate pack being divided and the second friction elements being attached to a first torque transfer device and a second torque transfer device, the first torque transfer device and the second torque transfer device being separate from one another so that a torque flow to the transmission input shaft runs via a first torque path containing at least the one leaf spring and a second torque path separate from the first torque path.
11. The clutch as claimed in claim 10, wherein the second torque path does not include any leaf springs.
12. The clutch as claimed in claim 10, wherein the first torque transfer device includes a pressure plate and a pressure disk connected to one another for torque transmission, the first torque transfer device also including a support flange connected to the pressure plate and the pressure disk by at least the at least one leaf spring for torque transmission.
13. The clutch as claimed in claim 12, wherein the second torque transfer device includes a plate carrier and a hub connected to one another for torque transmission.
14. The clutch as claimed in claim 13, wherein the first torque path runs through a first area of the second plate pack and the first torque transfer device to the transmission input shaft, the first torque transfer device being connected to the first area of the second plate pack by the pressure plate for torque transmission, the second torque path running through a second area of the second plate pack and the second torque transfer device to the transmission input shaft, the second torque transfer device being connected to the second area of the second plate pack by the plate carrier for torque transmission.
15. The clutch as claimed in claim 14 wherein the second plate pack includes at least one first area plate and at least one second area plate, the at least one first area plate being connected to the pressure plate for torque transmission, the at least one second area plate being connected to the plate carrier for torque transmission.
16. The clutch as claimed in claim 15 wherein the at least one first area plate includes lugs for engaging embossments of the pressure plate for torque transmission and the at least one second area plate includes lugs for engaging embodiments of the plate carrier for torque transmission.
17. The clutch as claimed in claim 14, wherein the plate carrier is connected to the second area of the second plate pack through positive interlock.
18. The clutch as claimed in claim 14, wherein the pressure plate is connected to the first area of the second plate pack through positive interlock.
19. The clutch as claimed in claim 13 wherein an axially extending portion of the plate carrier is radially outside of an axially extending portion of the pressure plate.
20. The clutch as claimed in claim 10, wherein the first friction elements are friction plates and the second friction elements are steel plates.
21. The clutch as claimed in claim 10, wherein the leaf spring, at least in a fitted state, has a setting angle greater than 0 and less than 80.
22. The clutch as claimed in claim 10 wherein the first torque path flows through all of the second friction elements and the second torque path flows through only some of the second friction elements.
23. The clutch as claimed in claim 10 wherein the first torque transfer device and the second torque transfer device are configured for being directly connected to the transmission input shaft.
24. A method of constructing a clutch having an input side for an introducing torque and an output side for a transferring torque to a transmission input shaft, the method comprising: connecting first friction elements of a first plate pack to the input side for torque transmission; connecting second friction elements of a second plate pack to the output side for the torque transmission, the second plate pack being divided; arranging the first and second friction elements for being brought into frictional engagement with one another by a contact pressure in order to transmit a torque from the input side to the output side; attaching the second friction elements to a first torque transfer device and a second torque transfer device; and providing at least one leaf spring configured to boost the contact pressure, the first torque transfer device and the second torque transfer device being separate from one another so that a torque flow to the transmission input shaft runs via a first torque path containing at least the one leaf spring and a second torque path separate from the first torque path.
25. The method as claimed in claim 24, wherein the first torque transfer device includes a pressure plate and a pressure disk connected to one another for torque transmission, the first torque transfer device also including a support flange connected to the pressure plate and the pressure disk by at least the at least one leaf spring for torque transmission.
26. The method as claimed in claim 25, wherein the second torque transfer device includes a plate carrier and a hub connected to one another for torque transmission.
27. The method as claimed in claim 26, wherein the first torque path runs through a first area of the second plate pack and the first torque transfer device to the transmission input shaft, the first torque transfer device being connected to the first area of the second plate pack by the pressure plate for torque transmission, the second torque path running through a second area of the second plate pack and the second torque transfer device to the transmission input shaft, the second torque transfer device being connected to the second area of the second plate pack by the plate carrier for torque transmission.
Description
BRIEF SUMMARY OF THE DRAWINGS
[0021] The invention is explained in more detail below with the aid of figures in which various embodiments are represented, of which:
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
[0032]
[0033]
[0034]
[0035] The figures are only of a schematic nature and serve only for an understanding of the present disclosure. The same elements are provided with the same reference numerals.
DETAILED DESCRIPTION
[0036]
[0037] This clutch 1 further comprises a first hub 10 and a second hub 11, the second hub 11 also being referred to as a support flange 12.
[0038] In the exemplary embodiment shown here the second plate pack 8 comprises nine second friction elements 7, which take the form, for example, of steel plates 13. The two uppermost steel plates 13 are connected to a pressure plate 14 for the transmission of torque, whereas the remaining seven steel plates 13 are rotationally fixed to a plate carrier 15, which may also be referred to as an inner clutch basket 18. The first hub 10 and the plate carrier 15 therefore form a second torque transfer device 46.
[0039]
[0040] The first plate pack 6 comprises friction plates 16, for example, and is rotationally fixed to an outer clutch basket 17. The pressure plate 14 is fixed to a pressure disk 20 and one end of the leaf spring 9 by a rivet 19. The pressure plate 14, the pressure disk 20, the second hub 11 and/or the support flange 12 therefore form a first torque transfer device 45. The leaf spring 9 here takes the form of a leaf spring pack 21, comprising multiple leaf springs 9. The other end of the leaf spring pack 21 is fixed to the support flange 12 likewise by a rivet (not represented here). The support flange 12 is in turn connected to the transmission input shaft 4 via a conventional shaft-hub connection for the transmission of torque.
[0041] The torque transmitted by the two upper steel plates 13 is therefore transmitted to the pressure plate 14 as part of the total torque M. The pressure plate 14 in turn transmits this torque to the leaf spring pack 21 and therefore to the support flange 12 by means of the riveted connection 19. The torque is transmitted to the transmission input shaft 4 via the support flange 12. Due to the loading of the leaf spring pack 21 during the transmission of torque, this presses the pressure plate 14 (and the pressure disk 20) downwards, viewed in an axial direction A, thereby boosting the contact pressure F, which corresponds to an inherent boosting effect of the clutch 1.
[0042] This first torque path DW1 is represented schematically by the thicker arrows in
[0043] The clutch 1 furthermore has a clutch operating gear 22, comprising a clutch operator 23, a release collar 24 and a support ring 25. If the clutch operating gear 22 is actuated, the clutch operator 23 moves upwards, viewed in an axial direction A, and therefore likewise pulls the release collar 24 upwards. The release collar 24 is connected to the pressure disk 20 (not shown here), so that the upwards movement of the release collar 24 likewise pulls the pressure disk 20 upwards. Since the pressure disk 20 is in turn fixed to the pressure plate 14, the pressure plate is moved upwards in the opposite direction to the contact pressure F, thereby neutralizing the inherent boosting effect of the clutch 1, and the frictional contact between the first friction elements 5 and the second friction elements 7 is furthermore cancelled, so that in this state torque is no longer transmitted from the input side 2 to the output side 3.
[0044]
[0045] The other end (here situated higher) of the leaf spring 9 is fixed by a rivet 28 to the support flange 12 (not shown here) on the support ring 25. Likewise clearly shown here is the height offset H between the one end of the leaf spring 9 and the other end of the leaf spring 9. This height offset H is usually expressed by an angle to the horizontal, which is referred to as the setting angle of the leaf spring 9.
[0046]
[0047] The steel plates 13, which are connected to the plate carrier 15 for the transmission of torque, are formed so that in a circumferential direction they comprise lugs 31, which protrude inwards in a radial direction R. These lugs 31 are formed so that every two lugs 31 receive an embossing 30 of the plate basket 15, 18 in a positive interlock between them, or so that the embossing 30 interlocks positively in the area between two lugs 31. The plate carrier 15 is fixed to the hub 10 by a riveted connection 32.
[0048] It can be seen at the bottom edge in
[0049]
[0050]
[0051] The hub 10, as can be seen in
[0052]
[0053]
LIST OF REFERENCE NUMERALS
[0054] 1 clutch [0055] 2 input side [0056] 3 output side [0057] 4 transmission input shaft [0058] 5 first friction element [0059] 6 first plate pack [0060] 7 second friction element [0061] 8 second plate pack [0062] 9 leaf spring [0063] 10 first hub [0064] 11 second hub [0065] 12 support flange [0066] 13 steel plate [0067] 14 pressure plate [0068] 15 plate carrier [0069] 16 friction plate [0070] 17 outer clutch basket [0071] 18 inner clutch basket [0072] 19 rivet [0073] 20 pressure disk [0074] 21 leaf spring pack [0075] 22 clutch operating gear [0076] 23 clutch operator [0077] 24 release collar [0078] 25 support ring [0079] 26 interlocking element [0080] 27 recess [0081] 28 rivet [0082] 29 recess [0083] 30 embossing [0084] 31 lug [0085] 32 rivet [0086] 33 lug [0087] 34 embossing [0088] 35 bead [0089] 36 edge area [0090] 37 fastening flange [0091] 38 fastening flange [0092] 39 toothed geometry [0093] 40 central nut [0094] 41 fastening flange [0095] 42 main body [0096] 43 toothed geometry [0097] 44 fastening flange [0098] 45 first torque transfer device [0099] 46 second torque transfer device [0100] M torque [0101] F contact pressure [0102] A axial direction [0103] R radial direction [0104] DW1 torque path 1 [0105] DW2 torque path 2 [0106] H height offset [0107] setting angle