The invention relates to a torsion damping device between an axially oriented coaxial drive shaft and driven shaft in an automotive temporary coupling system, comprising elastic members, and to a hydrodynamic converter equipped with such a damping device.
The invention relates more particularly to a torsion damping device between an axially oriented coaxial drive shaft and driven shaft in an automotive temporary coupling system, the device having:
Damping devices of this kind are installed, for example, in clutch arrangements such as hydrodynamic converters. A converter of this kind has, for example, a rotating housing that is capable of transmitting drive torque to the damping device by means of a friction locking clutch, sometimes called a “lock-up” clutch. The converter also has a turbine wheel mounted rotatably inside the housing.
A combustion engine exhibits irregularities due to the succession of combustion events in the engine cylinders. Torsion damping means allow these irregularities to be filtered before the drive torque is transmitted to a transmission. This is because the vibrations must be damped before they enter the transmission and produce unacceptably troublesome noise.
To accomplish this, it is known to interpose a torsion damping device between the drive shaft and the transmission shaft. The torsion damping device is generally arranged in a clutch system that allow temporary rotational connection of the drive shaft to the transmission shaft.
The torsion damping device generally has circumferentially acting elastic members that are interposed between a torque input element and a torque output element.
In so-called “long travel” damping devices, the elastic members are mounted, in groups of at least two elastic members, in series between the input element and output element.
In such a configuration, a phasing tab is interposed between the two elastic members of said group. This ensures that the elastic members work substantially in circumferential compression. The phasing tabs are, for example, carried by phase washers.
The adjacent elastic members of two successive groups are received in washer receptacles or windows that have a guidance function. Each window is delimited circumferentially by an abutment tab.
The receptacles are formed into washers that have a guidance function. These washers are constituted, for example, by the phase washers; in this case the abutment tabs that circumferentially delimit each window are phasing tabs.
The damping device is sometimes configured in such a way that the phase washer is rotationally connected to the converter turbine wheel.
In this case, when drive torque is inputted through the converter turbine wheel, certain elastic members (the upstream members) are not loaded. These elastic members are capable of sliding circumferentially in their window, thus causing parasitic noise to appear.
The invention proposes a damping device of the kind described previously, wherein each elastic member is received circumferentially between the associated phasing face and an oppositely located associated radial retention face of the phase washer, the circumferential distance between a phasing face and the oppositely located retention face being equal at most to the circumferential length of the elastic member at rest.
All the elastic members are thus retained in position even when only the downstream members are loaded by the passage of torque.
According to other characteristics of the invention:
According to a second aspect, the invention relates to a hydrodynamic converter having a turbine wheel, a locking clutch, and a damping device according to the first aspect of the invention, each phase washer being rotationally connected to the turbine wheel while the input element is rotationally connected to the locking clutch.
Other characteristics and advantages of the invention will become evident upon reading the detailed description that follows, an understanding of which may be gained by referring to the attached drawings in which:
The following orientations will be used for the description hereinafter:
The terms “upstream” and “downstream” will be used hereinafter based on a clockwise rotation around axis B as shown in
For the remainder of the description, elements having similar, identical, or analogous functions will be labeled with the same reference numbers.
Damping device 10 is more particularly intended to be arranged in a hydrodynamic torque converter (not depicted) in order to couple the torque converter housing, with torque damping, to an input shaft of an automatic transmission.
Damping device 10 also advantageously allows a turbine wheel of the converter to be coupled, with torque damping, to the input shaft of the automatic transmission.
Torque damping device 10 allows damping of the stress between a first, drive shaft (not depicted) and a second, driven shaft (not depicted) that are coaxial with axis B, with torsion damping.
As depicted in
Rear input washer 12B is rotationally connected to front input washer 12A by means of axial arms 14, as depicted in
The two input washers 12A, 12B are rotationally connected to the first, drive shaft by means of a splined drive hub 16, also called a “plate carrier hub,” intended to receive friction plates of the locking clutch mounted slidingly on said hub. Drive hub 16 is an element of a locking clutch that is capable of temporarily coupling the converter housing to the transmission input shaft by means of torsion damping device 10. A locking clutch of this kind, sometimes also called a “lock-up” clutch, is well known and will not be discussed in detail hereinafter.
Drive hub 16 is arranged behind damping device 10. Rear input washer 12B is fastened to drive hub 16 by means of rivets 17, one of which is depicted in
Damping device 10 also has a torque output element that is constituted here by a radial output web 18. Output web 18 is in the shape of a circular washer coaxial with axis B.
Output web 18 is intended to be rotationally connected to the second, driven shaft by means of a driven hub 20. Output web 18 is rotationally connected to driven hub 20 by means of rivets 21, one of which is depicted in
Output web 18 has three radial output tabs 22, one of which is visible in
Output web 18 is arranged axially between the two input washers 12A, 12B. When the two washers 12A, 12B are assembled, they are spaced apart by an axial distance sufficient to allow output web 18 to rotate between the two input washers 12A, 12B without abrasion.
Each input washer 12A, 12B has a radial flange that is provided with a central passage to allow the passage of the driven shaft and of driven hub 20.
Each input washer 12A, 12B furthermore has three outer input tabs 24 that are arranged in correspondence with output tabs 22 of output web 18. One of the input tabs 24 of each input washer 12A, 12B is depicted in
Front input washer 12A is rotationally guided by a first, outer cylindrical guidance surface 26 of a central bearing 28. Bearing 28 is in turn mounted rotatably on an outer cylindrical surface 30 of a front segment of driven hub 20. Axial displacements of bearing 28 are limited toward the rear by a shoulder surface 32 of driven hub 20, while they are limited axially toward the front by a snap ring 34 that is mounted on driven hub 20.
Damping device 10 furthermore has first circumferentially acting elastic members 36A and second circumferentially acting elastic members 36B. First and second elastic members 36A and 36B are here identical to one another.
In non-limiting fashion, damping device 10 here has six elastic members 36A, 36B, as visible in
Each elastic member 36A, 36B has a first, upstream end face 38A and an opposite second, downstream end face 38B.
As is visible in
Elastic members 36A, 36B are distributed into three pairs of elastic members 36A, 36B. Elastic members 36A, 36B of each pair are housed circumferentially in series, i.e. end to end, between two output tabs 22 of output web 18. Each pair thus has a first, upstream elastic member 36A and a second, downstream elastic member 36B. Each of said first, upstream elastic member 36A and second, downstream elastic member 36B has an upstream face 38A and a downstream face 38B.
Because the two elastic members 36A, 36B of each pair are mounted in series, downstream end face 38B of upstream elastic member 36A is capable of coming into abutment against upstream end face 38A of downstream elastic member 36B while a torque is being transmitted between input washers 12A, 12B and output web 18.
In order for elastic members 36A, 36B to be loaded substantially along their principal circumferential axis, it is known to equip damping device 10 with a phasing member.
A phasing member of this kind is constituted here by a first, front radial phase washer 40A and a second, rear phase washer 40B. Second radial phase washer 40B is arranged parallel to first phase washer 40A. Phase washers 40A, 40B are arranged axially on either side of input washers 12A, 12B and elastic members 36A, 36B.
As illustrated in
Spacers 41 allow the two phase washers 40A, 40B to be kept spaced axially a constant distance apart. When the two phase washers 40A, 40B are assembled, their flanges are spaced a sufficient distance apart to allow input washers 12A, 12B to rotate without abrasion.,
The axial spacing distance between the two phase washers 40A, 40B is less than the diameter of elastic members 36A, 36B.
Phase washers 40A, 40B are mounted freely rotatably with respect to output web 18 on the one hand, and with respect to input washers 12A, 12B on the other hand.
Front phase washer 40A is mounted to rotate freely on a second cylindrical guidance surface 42 of bearing 28. Second cylindrical guidance surface 42 is arranged axially in front of first cylindrical guidance surface 26. Second cylindrical guidance surface 42 has a diameter less than that of first cylindrical guidance surface 26 of bearing 28. A front-facing radial shoulder surface 44 separates the two cylindrical guidance surfaces 26, 42.
Front phase washer 40A abuts axially toward the rear against said shoulder surface 44 in order to axially position phase washers 40A, 40B with respect to input washers 12A, 12B.
Each phase washer 40A, 40B is furthermore penetrated by six windows 46, each of which is arranged in correspondence with an associated elastic member 36A, 36B, as depicted in
Windows 46 are separated circumferentially from one another alternately by radial phasing tabs 48 and by retention tabs 49. Each phase washer 40A, 40B thus has three phasing tabs 48 and three retention tabs 49, a phasing tab 48 alternating circumferentially with a retention tab 49.
Phasing tabs 48 of first phase washer 40A are arranged in axial correspondence with phasing tabs 48 of second phase washer 40B. The same is true of retention tabs 49.
Phasing tabs 48 are depicted in
As depicted in
Each phasing tab 48 is delimited circumferentially by a first, upstream radial phasing face 50A on the one hand, and by a second, downstream radial phasing face 50B on the other hand. Upstream and downstream phasing faces 50A, 50B that are interposed between elastic members 36A, 36B of a single pair are thus carried by one common radial phasing tab 48.
Downstream end face 38B of each first, upstream elastic member 36A is thus capable of loading or of being loaded by upstream radial phasing face 50A of the associated phasing tab 48, while upstream end face 38A of each second, downstream elastic member 36B is capable of being loaded by or of loading downstream radial phasing face 50B of the associated phasing tab 48, so that the two upstream 36A and downstream elastic members 36B of the pair are mounted in series by means of phase washers 40A, 40B.
Retention tabs 49 are depicted in
As depicted in
Each retention tab 49 is delimited circumferentially by a first, upstream radial retention face 52A on the one hand, and by a second, downstream radial retention face 52B on the other hand.
Downstream end face 38B of each second, downstream elastic member 36B is thus capable of interacting with upstream radial face 52A of the associated retention tab 49, while upstream end face 38A of each first, upstream elastic member 36A is capable of interacting with downstream radial retention face 52B of the associated retention tab 49.
Each elastic member 36A, 36B is thus retained individually in position, along the circumferential direction, between an associated phasing face 50A, 50B and an oppositely located associated retention face 52A, 52B.
The distance D separating a retention face 52A, 52B from the oppositely located phasing face 50B. 50A is equal to at most the circumferential length of elastic member 36A, 36B at rest.
Thus, when upstream elastic members 36A are not loaded by the passage of torque, downstream face 38B of each upstream elastic member 36A is retained in circumferential abutment against the associated upstream phasing face 50A by the associated oppositely located downstream radial retention face 52B, which is in contact with upstream face 38A of said upstream elastic member 36A received between said upstream phasing face 50A and said downstream retention face 52B.
Similarly, when downstream elastic members 36B are not loaded by the passage of torque, upstream face 38A of each downstream elastic member 36B is retained in circumferential abutment against the associated downstream phasing face 50B by the associated oppositely located upstream radial retention face 52A, which is in contact with downstream face 38B of said downstream elastic member 36B received between said downstream phasing face 50B and said upstream retention face 52A.
The circumferential distance between a phasing face and the oppositely located retention face is preferably less than the length of the elastic member at rest, so that the elastic member is received in circumferentially constrained fashion between retention tab 49 and phasing tab 48.
Phase washers 40A, 40B constitute guidance members for elastic members 36A, 36B. For this purpose, each window 46 is bounded
Lugs 54, 56 constitute an axial retainer for the associated elastic member 36A, 36B,
Each window 46 thus forms a receptacle for receiving an associated elastic member 36A, 36B, and for retaining them in position axially and radially, Lugs 54, 56 and the edges of windows 46 thus allow elastic members 36A, 36B to be captured in order to retain them in position.
Because phase washers 40A, 40B are rotationally connected to the turbine wheel of the torque converter, damping device 10 is capable of functioning in two modes:
The operation of damping device 10 in the first, “locked” mode is illustrated in
More specifically, each input tab 24 loads the associated upstream elastic member 36A. Upstream elastic member 36A conveys this force to second, downstream elastic member 36B via phasing tab 48. Lastly, second, downstream elastic member 36B transmits the force to the associated output tab 22.
Input washers 12A, 12B rotate through a defined angle around axis B with respect to output web 18, causing simultaneous compression of the two elastic members 36A, 36B of each pair. Phasing tabs 48 of phase washers 40A, 40B transmit the compressive force from one elastic member 36A, 36B to the other. Because of this compression, phase washers 40A, 40B rotate through half the defined angle with respect to input washers 12A, 12B.
The second, “transitional” operating mode is illustrated in
No torque is transmitted to torque input washers 12A, 12B. As a result, upstream elastic members 36A are not loaded.
Only downstream elastic members 36B are therefore compressed. Upstream elastic members 36A are immobilized circumferentially between downstream retention face 52B of retention tabs 49 and upstream phasing face 50B of phasing tabs 48. Upstream elastic members 36A are therefore not capable of sliding circumferentially. This ensures quiet operation of damping device 10 in this second operating mode.
Number | Date | Country | Kind |
---|---|---|---|
1153794 | May 2011 | FR | national |
1153795 | May 2011 | FR | national |
1162283 | Dec 2011 | FR | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
---|---|---|---|---|
PCT/FR2012/050894 | 4/24/2012 | WO | 00 | 11/4/2013 |