This application is a national phase application based on PCT/US2013/023553 filed Jan. 29, 2013, which claims priority from European Application No. 12000810.7, filed Feb. 8, 2012, the content of all of which is incorporated herein by reference in their entirety.
The invention relates to a fluid friction clutch.
A fluid friction clutch of said type is known from EP 1 731 787 B1, the content of disclosure of which is hereby incorporated by explicit reference to the content of disclosure of the present application.
DE 197 49 342 A1 discloses a viscous clutch for driving motor vehicle air-conditioning compressors, in which, to control the filling level of fluid in a working chamber, the throughput of fluid through the pipe section adjoining an inlet section of a scoop pipe is controlled by means of a valve. Tests carried out within the context of the invention have, however, revealed that such a valve causes problems in that it is extremely difficult to achieve acceptable performance results.
It is therefore an object of the present invention to provide a fluid friction clutch, by means of which it is possible in a simple manner, without using a valve, to achieve a variable clutch fluid flow.
By means of the provision of a pump element which defines a shear gap with an annular wall in the storage chamber, it is made possible in a simple manner, by utilizing a rotational speed difference between the pump element and the annular wall or the primary side of the fluid friction clutch, to generate a variable volume flow from the storage chamber into the working chamber, without it being necessary for this purpose to additionally integrate a controllable valve into the flow path.
The particular advantages of the fluid friction clutch according to the invention include firstly that only a small quantity of clutch fluid is required, because on account of the above-explained arrangement, an active feed pump is formed in the oil reservoir, which with regard to the clutch fluid quantity is advantageous over the known utilization of centrifugal forces for filling the working chamber.
Furthermore, the response behavior of the fluid friction clutch according to the invention is faster on account of the smaller clutch fluid component.
An extremely compact design is also obtained because the outer diameter of the storage chamber or of the reservoir can be made larger than the inner diameter of the working chamber.
The compact design is improved further in that, as already explained above, a variability of the clutch fluid flow is made possible without the use of a valve arrangement.
The pump element, which builds up a pressure, with a volume flow being generated as a result of friction of the clutch fluid in the shear gap which is preferably kept small, can be connected either to the electric motor or the clutch disk. If the pump element is connected to the electric motor, for which purpose a control shaft is preferably provided, the annular wall arranged in the storage chamber is connected to the clutch disk.
Alternatively, it is possible to couple the annular wall, preferably via a control shaft, to the electric motor and accordingly to connect the pump element to the clutch disk.
The active element (for example pump wheel, impeller, air compressor etc.) is fastened to the housing.
Further details, advantages and features of the present invention will emerge from the following description of exemplary embodiments with reference to the drawing, in which:
In
Arranged in the housing 2, 3 is a clutch disk 4 which is rotatable relative to the housing 2, 3. Here, the clutch disk 4 is rotationally fixedly arranged on an end 5 of a shaft 6 which is mounted centrally within the housing 2, 3. Fixed to the housing body 3 is a drivable active element 7 which is illustrated in schematically simplified form and which may be designed for example as a pump wheel or as an impeller.
A working chamber 9 is arranged between the housing body 2 and the clutch disk 4, which working chamber has working gaps which make a transmission of torque possible on account of a shear action on the clutch fluid supplied to the working chamber 9.
Furthermore, a storage chamber 10 for said clutch fluid is provided, with a supply duct 11 leading from the storage chamber 10 to the working chamber 9.
A drive element 21, such as for example a belt pulley, is arranged at the other end 8 of the shaft 6. The fluid friction clutch 1 further has a stationary clutch part 13 which is mounted on the shaft 6 by a bearing 16 and which forms the stator of an electric motor 20 which further comprises a rotor 15.
As is further shown by a juxtaposition of
As the embodiments according to
In order to mount the control shaft 22, there is provided a bearing 17 which guides the control shaft 22 relative to the shaft 6.
The stator 13 is mounted on the shaft 6 by a bearing 16.
A juxtaposition of
By contrast with the embodiment according to
What both embodiments have in common is that the shear rate in the shear gap 12 can be regulated by means of the electric motor 20. This results in the initially explained particular advantages of the two embodiments according to
In addition to the written disclosure of the invention, reference is hereby explicitly made, in order to complete the disclosure, to the diagrammatic representation in
While preferred embodiments of the present invention have been shown and described herein, numerous variations and alternative embodiments will occur to those skilled in the art. Accordingly, it is intended that the invention is not limited to the preferred embodiments described herein but instead limited to the terms of the appended claims.
Number | Date | Country | Kind |
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12000810 | Feb 2012 | EP | regional |
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/US2013/023553 | 1/29/2013 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2013/119413 | 8/15/2013 | WO | A |
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