The present invention relates to a hydraulic system for actuating a transmission with a control hydraulics power source that includes a control hydraulic pump, a control pressure accumulator, and a low-pressure pump that provides low-pressure volumetric flow for a low-pressure hydraulic component.
It is an object of the present invention to optimize a hydraulic system with regard to the design space, weight, costs, and energy efficiency.
The object of the present invention is achieved by a hydraulic system for actuating a transmission with a control hydraulics power source that includes a control hydraulic pump, a control pressure accumulator, and a low-pressure pump that provides low-pressure volumetric flow for a low-pressure hydraulic component. The low-pressure pump can be connected with the control hydraulic pump in a driving manner, and the control hydraulic pump is connected in a charging manner with the control pressure accumulator. Connection in a driving manner means that the low-pressure pump is utilized to drive the control hydraulic pump. The connection in a driving manner can be carried out mechanically or hydraulically, for example. The control hydraulic pump is connected in a driven manner with the low-pressure pump only occasionally, in order to charge the control pressure accumulator, preferably depending upon demand. The connection in a charging manner means that the control pressure accumulator is charged by the control hydraulic pump.
The low-pressure pump is preferably driven mechanically by an internal combustion engine. The low-pressure volumetric flow preferably involves a cooling oil flow, particularly to supply a wet running clutch with cooling oil. The utilization of the low-pressure pump to drive the control hydraulic pump has the advantage that an electric motor that would otherwise be necessary for driving the control hydraulic pump can be omitted.
A preferred exemplary embodiment of the hydraulic system is characterized in that the control hydraulic pump is connected hydraulically with the low-pressure pump. In accordance with one aspect of the invention, the low-pressure volumetric flow generated for the low-pressure hydraulic component, partially or occasionally is used hydraulically to drive the control hydraulic pump.
A further preferred exemplary embodiment of the hydraulic system is characterized in that the low-pressure pump is hydraulically connected with a hydraulic motor that drives the control hydraulic pump. The hydraulic motor is driven by the low-pressure volumetric flow of the low-pressure pump and is connected in a driving manner with the control hydraulic pump, for example mechanically connected.
A further preferred exemplary embodiment of the hydraulic system is characterized in that an output of the hydraulic motor is or can be connected with the low-pressure hydraulic component. Therefore, the volumetric flow used to drive the control hydraulic pump can be fed to the low-pressure hydraulic component.
A further preferred exemplary embodiment of the hydraulic system is characterized in that the control hydraulic pump is or can be connected mechanically in a driven manner with the low-pressure pump and with an internal combustion engine. The control hydraulic pump can be driven directly via a corresponding mechanical coupling by the internal combustion engine. The control hydraulic pump can also be driven by a similar mechanical coupling via the low-pressure pump.
A further preferred exemplary embodiment of the hydraulic system is characterized in that a clutch is integrated between the control hydraulic pump and the low-pressure pump or the internal combustion engine. Thus, the control hydraulic pump can be driven occasionally, as required, when the clutch is engaged.
A further preferred exemplary embodiment of the hydraulic system is characterized in that the clutch includes an electric actuating device. The electric clutch actuating device can be activated by an engine control, for example, in order to engage the clutch occasionally, as required, so that the control hydraulic pump is driven.
A further preferred exemplary embodiment of the hydraulic system is characterized in that the clutch includes a hydraulic actuating device. The hydraulic clutch actuating device can preferably be connected hydraulically with the low-pressure pump.
The invention further relates to a transmission with a hydraulic system as described above. The transmission can be a stepped automatic transmission or a twin clutch transmission. The transmission is preferably executed as a stepless, adjustable pulley, chain driven transmission.
The invention further relates to a process for actuating the transmission described above, whereby the low-pressure pump is used for driving the control hydraulic pump. In accordance with an essential aspect of the invention, the low-pressure pump is used in order to drive the control hydraulic pump. The low-pressure volumetric flow of the low-pressure pump can be used in order to drive the control hydraulic pump hydraulically. In the process, a change occurs from a high volumetric flow at low-pressure to a low volumetric flow at high pressure. This energy change occurs preferably only briefly in order to charge the pressure accumulator via the control hydraulic pump. Another possibility is to conduct the energy of the low-pressure volumetric flow into a hydraulically switchable clutch by means of a valve. That clutch then briefly connects the control hydraulic pump with an engine of a vehicle in order to charge the pressure accumulator. A further possibility therein includes disposing a switchable clutch between the control hydraulic pump and the engine of the motor vehicle, a clutch that is actuated via any actuator, electrically, for example, in order to charge the pressure accumulator.
The structure, operation, and advantages of the present invention will become further apparent upon consideration of the following description, taken in conjunction with the accompanying drawings in which:
In
A low-pressure hydraulic component 2 is supplied with a cooling medium from a tank 4 by means of a low-pressure pump 5. The cooling medium is preferably cooling oil that is withdrawn from the tank 4 through a throttle 6 and a valve 8. The cooling medium that is withdrawn is fed from the low-pressure pump 5 via a further valve 10 to the hydraulic component 2. The hydraulic component 2 can be, for example, a wet running clutch that is connected upstream of a transmission. Low-pressure pump 5 is driven directly by the engine 1 through a mechanical coupling 11.
The hydraulic systems shown in
The transmission actuator 18 is controlled or actuated hydraulically through the control hydraulic pump 12 or through the pressure accumulator 16. In accordance with an essential aspect of the invention, the control hydraulic pump 12 is driven directly or indirectly by the low-pressure pump 5.
In the embodiment shown in
In
In the exemplary embodiment shown in
The coupling 44 can be actuated by a hydraulic actuating device 45 that can be activated via a hydraulic line 46 and the valve 10. Via the valve arrangement 10, the low-pressure volumetric flow provided by the low-pressure pump can be fed entirely or partially to the hydraulic actuating device 45 in order to close the coupling 44 so that the control hydraulic pump 12 is mechanically driven by the vehicle engine 1. In the closed state of the coupling 44, the pressure accumulator 16 is charged from the tank 14 by the control hydraulic pump 12 that is driven by the vehicle engine 1.
In
Although particular embodiments of the present invention have been illustrated and described, it will be apparent to those skilled in the art that various changes and modifications can be made without departing from the spirit of the present invention. It is therefore intended to encompass within the appended claims all such changes and modifications that fall within the scope of the present invention.
Number | Date | Country | Kind |
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10 2009 031 792 | Jul 2009 | DE | national |
Number | Name | Date | Kind |
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4215545 | Morello et al. | Aug 1980 | A |
20070107421 | Emmert et al. | May 2007 | A1 |
Number | Date | Country | |
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20110005214 A1 | Jan 2011 | US |