The invention relates to a switching device for the switching of the power supply of a high-powered load of a motor vehicle.
Heating devices such as, e.g., carburetor-air heaters of motor vehicles have a power of typically 1 kW and higher. As customary vehicle electric systems provide voltages of about 11 volts, resulting currents are of an order of magnitude of 100 amps. Mechanical relays are usually used for the switching of the power supply for carburetor-air heaters. These relays are, however, quite costly because they must be able to withstand electric arcs that may be generated by switching such high currents.
Also known are carburetor-air heaters with an integrated electronics system provided with a power semiconductor for the switching of the power supply. Although in such a manner it is possible to forego the costly mechanical relays this does not entail a considerable savings since the heat-resistant electronics of such a carburetor-air heater is, in such a case, of comparable costs.
Thus, the invention has the object to show how it is possible to connect in a more cost-effective manner the power supply to high-powered loads of a motor vehicle.
In accordance with the invention, this object is attained by a switching device having the features set forth in claim 1. Other advantageous embodiments are the object of the dependent claims.
A switching device in accordance with the invention has considerable advantages:
A switching device in accordance with the invention can be provided with an interface for a connecting to the bus system of an automobile. In such a manner, a central control unit of the vehicle can receive diagnostic data from the switching device and control unit according to need for activation of the load. The electronic control unit of the switching device can assume all detailed tasks regarding the control of the power semiconductor and the regulating of the switching intervals for the pulse-width modulation. Thus the central vehicle control unit can be relieved from processing work.
A switching device in accordance with the invention can be integrated into a handy housing and it is therefore excellent for the retrofitting of automobiles and the replacement of defective relays.
Further details and advantages of the invention are explained by means of an embodiment making reference to the accompanying illustration. The therein described features can be made individually or in combination an object of claims.
The switching device 1 shown in
The switching device 1 is provided with a housing 3 that carries a connector 4 for the connecting to the electric system of a motor vehicle, a load connector 5 for the connecting to the load 2, and a control input 6 for actuation of the switching device 1 by an external control signal. The connectors 4, 5 and the input 6 are configured for a plug-in connection. The connectors 4, 5 and the input 6 may be a plug or a socket. In the example shown the connectors 4, 5 and the input 6 are provided as sockets. The housing 3 encloses a power semiconductor 7, preferably a MOSFET, as switch between the vehicle electric system connector 4 and the load connector 5. The power semiconductor 7 is controlled by an electronic control unit 8 arranged in the housing 3, which unit is mounted between the control input 6 of the switching device 1 and a control input of the power semiconductor 7. The control unit 8 comprises a driver circuit for the control of the power semiconductor 7 and it is connected with a control output 9 to the control input of the power semiconductor 7.
During operation, the control unit 8 controls by means of pulse-width modulation the power output in time average to the connected load 2 in that it places the power semiconductor 7, connected to the control output 9, for short periods of time into its conducting state, so that the voltage generated by the vehicle battery 10 via the vehicle electric system connection 4 is applied to the load 2.
In the embodiment shown, the control input 6 of the switching device 1 is configured as interface to the electronic bus systems of the vehicle. Because of the interfacing to the bus system of a motor vehicle it is possible to exchange power and control data with a central control unit (not illustrated) of the vehicle. In particular, a central control unit of the vehicle can activate, via the bus interface, the switching device 1 to connect or disconnect the load 2 from a power supply. Additionally, the central control unit can also receive data on the status of the switching device 1. The interface 6 of the switching device 1 can be configured, e.g., for a customary bidirectional bus system such as CAN Low Speed, CAN High Speed, LIN, or the like. It is also possible to configure the interface 6 for a pulse-width modulated input signal or a digital switching signal as external control signal.
The switching device 1 is provided with a temperature sensor 11 between the connector 4 to vehicle electric system and the load connector 5. During operation the temperature sensor 11, interrupts the current flowing through the power semiconductor 7 when the temperature exceeds a critical temperature threshold. This temperature sensor 11 can be configured either as a mechanical temperature sensor or as an electronic temperature sensor.
The switching device 1 comprises a current-measuring device 12 for the measuring of the strength of the current flowing through the power semiconductor 7. The current-measuring device 12 is connected to a signal input 13 of the control unit 8. During operation, the measured values provided by the current-measuring device 12 are processed by the control unit 8 and, in the case of exceeding a threshold value, the power semiconductor 7 is actuated by the control unit 8 in order to interrupt the current flowing through the power semiconductor 7 between the vehicle electric system connector 4 and the load connector 5. In such a manner, it is possible to prevent an overloading of the vehicle electric system by an excessively high load current.
The switching device 1 comprises a ground connection 14 which, pursuant to specifications, is connected to ground and internally connected to a ground input of the control unit 8. The control unit 8 measures the strength of an electric voltage that is generated by a vehicle battery 10 connected to the vehicle electric system connector 4 of the switching device 1. The control unit 8 has for this purpose one or several measuring inputs 15, 16, 17, 18 that are connected to a line 19 extending between the vehicle electric system connector 4 and the load connector 5.
In the represented embodiment, a first measuring input 15 for the measuring of the voltage level applied to the vehicle electric system connector 4 is connected directly to same. Other measuring inputs 16, 17 are connected to the line 19 between the temperature sensor 11 and the power semiconductor 7 as well as on the side of the power semiconductor facing the load connection 5. The control unit 8 is configured in such a manner that in the case the measured voltage drops below a threshold it actuates the power semiconductor 7 in order to interrupt the current flowing through the power semiconductor 7 between the vehicle electric system connector 4 and the load connector 5. In such a manner, the illustrated switching device 1 can effect a delimiting of the starting current of the connected load.
Should the control unit 8 of the switching device 1 determine by processing the current or voltage values that the load 2 overloads the vehicle electric system or if it is overloaded itself due to an excessively high vehicle electric system voltage, an appropriate electric power can be applied to the load in time average by means of pulse-width modulation thus avoiding any damages.
Number | Date | Country | Kind |
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102007032960.3 | Jul 2007 | DE | national |