The present disclosure relates to an actuator unit for a vehicle, comprising a first actuator having a control device within the actuator to actuate power electronics of the actuator, and a communications interface.
From DE 10 2011 010 512 A1 a smart actuator for operating a clutch is known, having a communications interface for connecting to a superordinate control device and a data line for connecting to the superordinate control device. In this case, the smart actuator comprises an internal control device, which is connected to the final stages of the clutch control system.
Due to the size of the control device, such an actuator system also requires in particular considerable construction space.
Thus there is a long-felt need for an actuator unit which is optimized with regard to construction space.
According to the present disclosure, the control device within the actuator includes control logic for a second actuator, the second actuator being connected with the first actuator through the communications interface. By storing the control logic in the second actuator, the construction space for this second actuator is optimized. By integrating the control logic into the control device of the first actuator, the power density of the control device is increased.
Advantageously, the communications interface is connected to an arithmetic-logic unit integrated into the second actuator, to convert the control signals emitted by the control device of the first actuator into triggering signals for the second actuator. This limits the electronics required in the second actuator, resulting in a cost-effective design of the second actuator.
Advantageously, the first and the second actuator have an independent power supply. This ensures that both actuators are able to operate self-sufficiently.
In a variant, the first actuator is designed as a clutch actuator and the second actuator as a transmission actuator, the clutch actuator being connected to an external data line and/or to a line carrying a rotation speed signal and/or to a line present at an accelerator pedal to provide input signals for the control device. Since these input signals only have to be provided once for the clutch actuator in order to also produce control signals for the transmission actuator, the design environment of the transmission actuator is simplified.
In one embodiment, the arithmetic-logic unit of the transmission actuator is connected via one final power stage each to a shifting motor and a selector motor of the transmission actuator. This has the advantage that it is also possible to actuate the selector motor and shifting motor of the transmission actuator using just one clutch actuator, since the control logic of the control device of the clutch actuator can be adapted accordingly. This further simplifies the construction of the transmission actuator.
In an example embodiment, the clutch actuator is connected directly to the selector motor through a first communications interface and directly to the shifting motor of the transmission actuator through a second communications interface. This makes a separate transmission unit possible, which is simplified overall in its construction and is optimized with regard to construction space.
In an alternative, the transmission actuator includes a shift intent detection unit to detect a shifting procedure performed manually on a separate gear set, where the clutch actuator provides a voltage supply for the shift intent detection unit. With more simply constructed transmission actuators also, which form what is known as an electronic clutch management system with the clutch actuator, a simplification of the clutch actuator can be achieved by locating the power supply for the sensors of the shift intent detection unit in the clutch actuator.
Alternatively, the actuator unit is designed as a dual-clutch transmission, in which a clutch actuator is provided for each sub-transmission actuator to trigger the arithmetic-logic unit of the sub-transmission actuator, where the arithmetic-logic unit actuates the selector motor and the shifting motor of the sub-transmission actuator through the respective final power stage. This permits the multiple use of a ready-made clutch actuator which includes an internal control device, for different transmission assemblies.
In a an example embodiment, each clutch actuator is connected to the shifting motor of the sub-transmission actuator through the first communications interface and to the selector motor of the same sub-transmission actuator through the second communications interface. In this case, it is possible to completely dispense with electronics in the sub-transmission actuator, since the clutch actuator operates the individual actuators of the transmission actuator in the form of the shifting and selector motor separately from one another. For this as well, only a single clutch actuator is needed.
In one embodiment, for a hydraulic actuation of the transmission actuator by the clutch actuator, an interface between clutch actuator and transmission actuator transmits two control signals from the clutch actuator to the transmission actuator, and two additional signals having position information from the transmission actuator to the clutch actuator. This results in an additional use for the preconditioned actuator, which includes an internal control device.
The present disclosure allows numerous embodiments. Several of these are explained in greater detail in the figures depicted in the drawing.
The figures show the following:
Like features are identified by the same reference labels.
The control device 4 is connected to the transmission actuator by means of an additional driver circuit 16 and a bidirectional communications interface 17. In this case, the transmission actuator 3 has a driver circuit 18 of its own, which leads to an arithmetic-logic unit 19, which actuates the two final stages 20, 21, which operate a shifting motor 22 and a selector motor 23 of the transmission actuator 3, respectively. The actual control logic for the transmission actuator 3 is integrated into the control device 4 of the clutch actuator 2, which provides the control signals for the transmission actuator 3 on the basis of the input signals it receives, for which reason the arithmetic-logic unit 19 within the transmission actuator 3 converts the control signals received from the clutch actuator 2 into direct triggering signals for the shifting and selector motors 22, 23. The transmission actuator 3 likewise has an independent power supply 24.
Another exemplary embodiment of the actuator unit 1 according to the present disclosure is depicted in
For each sub-transmission actuator 35, 37, a clutch actuator 2, 36 is needed, which actuates the shifting motor 22 or the selector motor 23 of the sub-transmission actuator 35, 37, since the control logic for these two motors 22, 23 is stored in the control device 4 of the clutch actuator 2, 36. In this case, the clutch actuator 2 is connected through a bidirectional communications interface 17 to the sub-transmission actuator 35, 37, which in turn has an arithmetic-logic unit 19 to convert the control signals of the control device 4 into actuating signals for the shifting motor 22 or the selector motor 23. In the interest of clarity,
According to
The possibility also exists, however, that the modularly constructed clutch actuator 2, 35 forms one actuator unit 1 with one transmission actuator, which has a control device of its own. In this case, no direct communication between both actuators is necessary.
The described design of the clutch actuator 2 according to the present disclosure can also be used with a hydraulic transmission actuating system, in particular in connection with
The described clutch actuator 2 may also be used as a parking lock actuator, or as the actuator for a disconnect clutch in hybrid vehicles.
On the basis of the described solution, it is possible to use a ready-made clutch actuator which includes an internal control device in many ways for different transmission assemblies, and to couple it with transmission actuators of different designs.
Number | Date | Country | Kind |
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10 2015 212 126.7 | Jun 2015 | DE | national |
This application is the United States National Phase of PCT Appln. No. PCT/DE2016/200258 filed May 31, 2016, which claims priority to German Application No. DE102015212126.7 filed Jun. 30, 2015, the entire disclosures of which are incorporated by reference herein.
Filing Document | Filing Date | Country | Kind |
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PCT/DE2016/200258 | 5/31/2016 | WO | 00 |