VEHICLE COMPRISING A STANDBY POWER SUPPLY DEVICE AND METHOD FOR OPERATING SAME
20220258611 · 2022-08-18
Inventors
Cpc classification
B60L3/0092
PERFORMING OPERATIONS; TRANSPORTING
B60L50/53
PERFORMING OPERATIONS; TRANSPORTING
B60L58/12
PERFORMING OPERATIONS; TRANSPORTING
B60L1/00
PERFORMING OPERATIONS; TRANSPORTING
International classification
B60L3/00
PERFORMING OPERATIONS; TRANSPORTING
B60L50/53
PERFORMING OPERATIONS; TRANSPORTING
B60L58/12
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A vehicle includes a converter with a connection on the input side for a vehicle-integrated or vehicle-external supply network and which can generate a DC voltage on the output side; and an internal DC network which can be operated using the DC voltage of the converter. A standby power supply device is connected between the converter and the internal DC network. The input voltage of the standby power supply device is formed directly or indirectly by the DC voltage of the converter and the standby power supply device feeds its input voltage or alternatively an auxiliary operating voltage supplied by a stored energy source into the internal DC network as output voltage. The vehicle has a monitoring device which is configured to process at least three control signals.
Claims
1-14. (canceled)
15. A vehicle, comprising: a converter having a connection on an input side for a vehicle-integrated or vehicle-external supply network and being configured to generate a DC voltage on an output side; an internal DC network to be operated using the DC voltage of said converter; a standby power supply device connected between said converter and said internal DC network, said standby power supply device receiving an input voltage formed directly or indirectly from the DC voltage of said converter, and an energy storage device for outputting an auxiliary operating voltage; said standby power supply device being configured for feeding the input voltage, or alternatively the auxiliary operating voltage supplied by said energy storage device, into said internal DC network as an output voltage; and a monitoring device configured: to process at least three control signals, namely, a first control signal which describes the DC voltage output by said converter, a second control signal which describes the output voltage fed by said standby power supply device into said internal DC network, and a third control signal which describes a state of charge of the energy storage device and forms a state of charge signal; and to generate, as a function of the three control signals, at least one state signal which specifies a state of an electrical assembly formed of said converter and said standby power supply device.
16. The vehicle according to claim 15, wherein said monitoring device is configured to generate an error signal indicating an error in a control unit of said standby power supply device if the first control signal lies within a tolerance range predefined for the first control signal and the second control signal lies outside a tolerance range predefined for the second control signal.
17. The vehicle according to claim 15, wherein said monitoring device is configured to generate a state signal being an error signal indicating an error in said energy storage device of said standby power supply device if the third control signal lies outside a tolerance range predefined for the third control signal.
18. The vehicle according to claim 15, wherein said monitoring device is configured to generate a state signal being an error signal indicating an error in said converter or in said supply network if the first control signal lies outside a tolerance range predefined for the first control signal.
19. The vehicle according to claim 15, wherein said monitoring device is configured to carry out a test operation, wherein said monitoring device switches off an input-side supply to said standby power supply device and subsequently evaluates a chronological sequence of the three control signals.
20. The vehicle according to claim 19, wherein said monitoring device, during the test operation, switches off the input voltage present at said standby power supply device by switching off said converter or by switching off a power supply from the vehicle-external supply network to said converter.
21. The vehicle according to claim 19, wherein said monitoring device is configured to generate a state signal being a test signal indicating a correct state of said standby power supply device if the second and third control signal remain within their tolerance ranges for a predefined minimum period of time after the input-side supply to said standby power supply device has been switched off.
22. The vehicle according to claim 19, wherein said monitoring device is configured to carry out the test operation autonomously at regular or irregular intervals.
23. The vehicle according to claim 19, wherein said monitoring device is configured to carry out the test operation in response to an external control command.
24. The vehicle according to claim 15, wherein: the supply network is a DC voltage network; and said converter is a DC/DC converter supplied by the DC voltage network.
25. The vehicle according to claim 24, wherein the supply network is an on-board DC voltage network of the vehicle.
26. The vehicle according to claim 15, which comprises a control device connected to the internal DC network fed by said standby power supply device, and wherein said control device is configured to receive the three control signals and to forward the three control signals to said monitoring device in processed or unprocessed form.
27. The vehicle according to claim 26, wherein said control device, said monitoring device, and a connection path between said control device and said monitoring device meet a predefined safety standard.
28. The vehicle according to claim 27, wherein the predefined safety standard is SAS1/SIL1 or a better safety standard.
29. A method of operating an electrical assembly of a vehicle, the method comprising: connecting an input of a converter to a vehicle-integrated or vehicle-external supply network and generating a DC voltage on an output side of the converter; operating an internal DC network with the DC voltage of the converter; connecting a standby power supply device between the converter and the internal DC network; forming an input voltage of the standby power supply device directly or indirectly by the DC voltage of the converter and feeding the input voltage of the standby power supply device, or alternatively an auxiliary operating voltage supplied by an energy storage device of the standby power supply device as an output voltage from the standby power supply device into the internal DC network; and processing at least three control signals by a monitoring device, the at least three control signals including a first control signal which describes the DC voltage output by the converter, a second control signal which describes the output voltage fed by the standby power supply device into the internal DC network, and a third control signal which describes a state of charge of the energy storage device and forms a state of charge signal, and generating a state signal by the monitoring device as a function of the at least three control signals, the state signal describing a state of an assembly with the converter and the standby power supply device.
30. The method according to claim 29, which comprises: generating an error signal indicating an error in a control unit of the standby power supply device if the first control signal lies within a tolerance range predefined for the first control signal and the second control signal lies outside a tolerance range predefined for the second control signal; and/or generating, as a state signal, an error signal indicating an error in the energy storage device of the standby power supply device if the third control signal lies outside a tolerance range predefined for the third control signal; and/or generating, as a state signal, an error signal indicating an error in the converter or the supply network if the first control signal lies outside a tolerance range predefined for the first control signal.
31. The method according to claim 29, which comprises carrying out a test operation by switching off an input-side supply to the standby power supply device and subsequently evaluating a chronological sequence of the three control signals.
32. The method according to claim 31, which comprises switching off the input voltage present at the standby power supply device by switching off the converter or by switching off the external supply to the converter from the supply network and subsequently evaluating the chronological sequence of the three control signals.
Description
[0029] The invention is explained in greater detail below using exemplary embodiments; by way of example
[0030]
[0031]
[0032]
[0033]
[0034] In the figures the same reference characters are always used for identical or comparable components for the sake of clarity.
[0035]
[0036] If the voltage U1 of the supply network 20 is a DC voltage, a DC/DC converter is used as a converter 10; if the voltage U1 of the supply network 20 is an AC voltage, an AC/DC converter is used as a converter 10.
[0037] The converter 10 is connected on the output side to an internal DC network 30 of the vehicle 1. The internal DC network 30 is however not connected to the converter 10 directly, but via a standby power supply device 40. The standby power supply device 40 comprises a stored energy source 41 (e.g. in the form of one or more batteries or capacitors) and a control unit 42 which isolates the converter 10 from the internal DC network 30.
[0038] The control unit 42 is designed such that it feeds the DC voltage U2 of the converter 10 as output voltage U3 or line voltage into the internal DC network 30 or alternatively an auxiliary operating voltage U4 supplied by the stored energy source 41.
[0039] The control unit 42 is preferably designed such that it feeds the DC voltage U2 of the converter 10 directly into the internal DC network 30 if the DC voltage U2 lies in a predefined voltage range. If the DC voltage U2 exceeds or falls below predefined limits, the control unit 42 will clear the connection between the converter 10 and the internal DC network 30 and alternatively feed the auxiliary operating voltage U4 of the stored energy source 41 into the internal DC network 30, such that the further energy supply of the internal DC network 30 is subsequently effected by the stored energy source 41.
[0040] To monitor the converter 10 and the standby power supply device 40, a monitoring device 50 is provided, which is connected to three sensors S1, S2 and S3 via sensor lines not shown in greater detail for reasons of clarity and from these receives three sensor signals in the form of control signals K1, K2 or K3:
[0041] A first control signal K1, which the sensor S1 generates, describes the DC voltage U2 output on the output side by the converter 10 and thus the functionality of the converter 10 and the correct supply to the converter 10 by the supply network 20, since the converter 10 can only work correctly if it receives a sufficient supply.
[0042] A second control signal K2, which the sensor S2 generates, describes the output voltage U3 fed by the standby power supply device 40 into the internal DC network 30 and thus the functionality of the standby power supply device 40 including the components 41 and 42 contained therein.
[0043] A third control signal K3, which the sensor S3 generates, describes the state of charge of the stored energy source 41 and thus the opportunity for the standby power supply device 40 to feed the output voltage U3 into the internal DC network 30 if the converter 10 or the external supply network 20 fails.
[0044] The monitoring device 50 has an arithmetic device 51 and a memory 52. Stored in the memory 52 is a control module KM which on execution by the arithmetic device 51 permits or ensures a control operation of the monitoring device 50 which preferably runs as follows:
[0045] If the monitoring device 50 or its control module KM establishes that the first control signal K1(U2) lies within a tolerance range predefined for the first control signal K1 and the second control signal K2(U3) lies outside a tolerance range predefined for the second control signal K2, it generates as a state signal Z an error signal F1 indicating an error in the control unit 42 of the standby power supply device 40.
[0046] If the monitoring device 50 or its control module KM establishes that the third control signal K3 lies outside a tolerance range which is characteristic of a sufficient state of charge of the stored energy source, it generates as a state signal Z an error signal F2 indicating an error in the stored energy source 41.
[0047] If the monitoring device 50 or the control module KM establishes that the first control signal K1(U2) lies outside the tolerance range predefined for the first control signal K1, it generates as a state signal Z on the output side an error signal F3 indicating an error in the converter 10 or an error in the supply network 20.
[0048]
[0049] In contrast to the exemplary embodiment in accordance with
[0050] In the further test operation the test module TM will observe the chronological sequence of the control signals K2 and K3. If the stored energy source 41 is working correctly the standby power supply device 40 will be able to maintain the supply to the internal DC network 30 for a predefined minimum period of time, such that the control signals K2 and K3 will continue to display the correct auxiliary operation of the standby power supply device 40 for this minimum period of time. In this case the test module TM can generate a positive test signal P+ as a state signal.
[0051] If the standby power supply device 40, in particular the stored energy source 41 thereof, is incorrectly or insufficiently charged, the result will be a drop in the output voltage U3 of the standby power supply device 40 or of the line voltage of the internal DC network 30 prior to the expiry of the predefined minimum period of time; the test module TM of the monitoring device 50 will establish this. In this case it will generate an error signal F4 as a state signal, which indicates the incorrect behavior of the standby power supply device 40, for example caused by a deterioration in the charging capacity of the stored energy source 41 due to ageing.
[0052] The test module TM and the control module KM are preferably designed such that the test module TM is executed at regular or irregular intervals autonomously or in response to an external control command.
[0053]
[0054] The control device 60, the connection path 70 and the monitoring device 50 are preferably designed such that they meet a predefined safety standard, preferably at least SAS1 or SIL1.
[0055] Furthermore, the above explanations in connection with
[0056]
[0057]
[0058]
[0059] Although the invention has been illustrated and described in greater detail by preferred exemplary embodiments, the invention is not restricted by the disclosed examples and other variations can be derived herefrom by the person skilled in the art, without departing from the scope of protection of the invention.
LIST OF REFERENCE CHARACTERS
[0060] 1 Vehicle [0061] 10 Converter [0062] 20 Vehicle-integrated supply network [0063] 21 Vehicle-external supply network [0064] 30 Internal DC network [0065] 40 Standby power supply device [0066] 41 Stored energy source [0067] 42 Control unit [0068] 50 Monitoring device [0069] 51 Arithmetic device [0070] 52 Memory [0071] 60 Control device [0072] 70 Connection path [0073] 80 Pantograph [0074] A10 Output [0075] E10 Connection [0076] F1 Error signal [0077] F2 Error signal [0078] F3 Error signal [0079] F4 Error signal [0080] K1 Control signal [0081] K2 Control signal [0082] K3 Control signal [0083] KM Control module [0084] P+ Positive test signal [0085] S Switch [0086] 51 Sensor [0087] 52 Sensor [0088] 53 Sensor [0089] TM Test module [0090] U1 DC voltage [0091] U2 DC voltage [0092] U3 Output voltage [0093] U4 Auxiliary operating voltage [0094] Z State signal