POWER SUPPLY DEVICE HAVING A FUEL CELL DEVICE AND A BATTERY, FUEL CELL VEHICLE, AND METHOD FOR STARTING A POWER SUPPLY DEVICE
20210257633 · 2021-08-19
Inventors
Cpc classification
H02J7/34
ELECTRICITY
H01M8/04634
ELECTRICITY
B60R16/033
PERFORMING OPERATIONS; TRANSPORTING
H01M2250/402
ELECTRICITY
H01M2250/20
ELECTRICITY
Y02T10/70
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
Y02E60/10
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
H01M2220/20
ELECTRICITY
Y02E60/50
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
Y02T90/40
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
Abstract
A power supply device for the electrical power supply of at least one consumer has a primary power grid, in which a fuel cell device is present, having a secondary power grid, in which a battery is present, having an operating voltage range bounded at the top by a maximum voltage and at the bottom by a minimum voltage, and having an operating current strength range for powering the at least one consumer. An open circuit voltage of the fuel cell device corresponds at most to the maximum voltage of the battery, while there is present in the primary power grid an impedance spectroscopy device, which is designed to perform an impedance spectroscopy measurement on the fuel cell device or on individual fuel cells of the fuel cell device. A fuel cell vehicle has such a power supply device and a method for starting a power supply device.
Claims
1. A power supply device for the electrical power supply of at least one consumer, comprising: a primary power grid, in which a fuel cell device is present, the primary power grid having a first primary power grid connection and a second primary power grid connection; and a secondary power grid, in which a battery is present, the secondary power grid having a first secondary power grid connection and a second secondary power grid connection, the battery having an operating voltage range bounded at the top by a maximum voltage and at the bottom by a minimum voltage, and the battery having an operating current strength range for powering the at least one consumer, wherein the first primary power grid connection and the first secondary power grid connection are connected to each other across a blocking diode and the second primary power grid connection and the second secondary power grid connection are directly connected to each other so that the primary power grid is connected to the secondary power grid free of voltage converters and an open circuit voltage of the fuel cell device corresponds at most to the maximum voltage of the battery, and; wherein there is present in the primary power grid an impedance spectroscopy device, which is designed to perform an impedance spectroscopy measurement to check for the presence of frost conditions on the fuel cell device or on individual fuel cells of the fuel cell device, and wherein the impedance spectroscopy device is connected at one end to the first primary power grid connection and at the other end to the second primary power grid connection.
2. The power supply device according to claim 1, wherein the impedance spectroscopy device is designed to impose an alternating current of different frequencies on power consumers of the fuel cell device.
3. The power supply device according to claim 1, wherein the impedance spectroscopy device is designed to measure the current and/or the voltage of the fuel cell device.
4-5. (canceled)
6. The power supply device according to claim 1, wherein the battery comprises a certain number of battery cells and/or the fuel cell device comprises a certain number of fuel cells, the number of the battery cells and/or the number of the fuel cells being chosen such that the open circuit voltage of the fuel cell device corresponds to the maximum voltage of the battery.
7. The power supply device according to claim 1, wherein the impedance spectroscopy device is formed as a clocked power semiconductor switch.
8. The power supply device according to claim 7, wherein the clocked power semiconductor switch is a MOSFET.
9. A fuel cell vehicle having a power supply device for the electrical power supply of the fuel cell vehicle, the power supply device comprising: a primary power grid, in which a fuel cell device is present, the primary power grid having a first primary power grid connection and a second primary power grid connection; and a secondary power grid, in which a battery is present, the secondary power grid having a first secondary power grid connection and a second secondary power grid connection, the battery having an operating voltage range bounded at the top by a maximum voltage and at the bottom by a minimum voltage, and the battery having an operating current strength range for powering the at least one consumer, wherein the first primary power grid connection and the first secondary power grid connection are connected to each other across a blocking diode and the second primary power grid connection and the second secondary power grid connection are directly connected to each other so that the primary power grid is connected to the secondary power grid free of voltage converters and an open circuit voltage of the fuel cell device corresponds at most to the maximum voltage of the battery, wherein there is present in the primary power grid an impedance spectroscopy device, which is designed to perform an impedance spectroscopy measurement to check for the presence of frost conditions on the fuel cell device or on individual fuel cells of the fuel cell device, and wherein the impedance spectroscopy device is connected at one end to the first primary power grid connection and at the other end to the second primary power grid connection.
10. A method for starting a power supply device for the electrical power supply of at least one consumer, the power supply device including: a primary power grid, in which a fuel cell device is present, the primary power grid having a first primary power grid connection and a second primary power grid connection; and a secondary power grid, in which a battery is present, the secondary power grid having a first secondary power grid connection and a second secondary power grid connection, the battery having an operating voltage range bounded at the top by a maximum voltage and at the bottom by a minimum voltage, and the battery having an operating current strength range for powering the at least one consumer, wherein the first primary power grid connection and the first secondary power grid connection are connected to each other across a blocking diode and the second primary power grid connection and the second secondary power grid connection are directly connected to each other so that the primary power grid is connected to the secondary power grid free of voltage converters and an open circuit voltage of the fuel cell device corresponds at most to the maximum voltage of the battery, wherein there is present in the primary power grid an impedance spectroscopy device, which is designed to perform an impedance spectroscopy measurement to check for the presence of frost conditions on the fuel cell device or on individual fuel cells of the fuel cell device, and wherein the impedance spectroscopy device is connected at one end to the first primary power grid connection and at the other end to the second primary power grid connection; the method comprising: imposing an alternating current on power consumers of a fuel cell device by means of an impedance spectroscopy device; detecting a response signal and comparing the response signal with a given signal value; if a difference is determined between the response signal and the given signal value in an amount of at least a predefined amount, then starting of the power supply device in a frost start operation, in which the fuel cell device is warmed up or in which a mass flow of reactants is increased; and if a difference is determined between the response signal and the given signal value in an amount of less than the predefined amount, then starting of the power supply device in a normal operation.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWINGS
[0029] Further benefits, features and details will emerge from the claims, the following description, and the drawings.
[0030]
DETAILED DESCRIPTION
[0031]
[0032] The power supply device 1 comprises a primary power grid 4, in which a fuel cell device 5 is present. Furthermore, the power supply device 1 comprises a secondary power grid 6, in which a battery 7 is present, having an operating voltage range which is bounded at the top by a maximum voltage and bounded at the bottom by a minimum voltage. Moreover, the battery 7 has an operating current strength range which is bounded at the bottom by a minimum current strength and bounded at the top by a maximum current strength. The battery 7 is designed to energize the consumers 2, 3.
[0033] The consumer 2 comprises a drive unit 8, which is in the form of an electrical machine. This electrical machine can typically operate by means of a three-phase alternating current and may be formed as the traction engine for a fuel cell vehicle. Since the primary power grid 4 and also the secondary power grid 6 supply a high voltage and a direct current, the consumer 2 is additionally associated with the inverter 9, which converts the direct current into the three-phase alternating current. In one modification of the consumer 2, the drive unit 8 may also be used as a generator, so that, for example during the braking process, the energy generated by the drive unit 8 can be fed back to the battery 7 via the inverter 9.
[0034] The consumer 3 may likewise be connected to the onboard network formed from the primary power grid 4 and secondary power grid 6. Ancillary units of the fuel cell device 5 may be the consumer 3, such as a charger, a 12V DC/DC converter, a high-voltage heater, an electrical air conditioning compressor, or the like.
[0035] As can be seen from
[0036] Moreover, in the primary power grid 4 there is an impedance spectroscopy device 15, which is designed to perform an impedance spectroscopy measurement on the fuel cell device 5. In the present instance, the impedance spectroscopy device 15 is switched in parallel with the fuel cell device 5 and is designed to impose an alternating current of different frequencies on current consumers of the fuel cell device 5. Alternatively or additionally, the impedance spectroscopy device 15 is also designed to measure the current and/or the voltage of the fuel cell device 5 and may plot its variation over time. The impedance spectroscopy device 15 may be electrically connected at one end to the first primary power grid connection 10 and at the other end to the second primary power grid connection 11. Both connections here are direct, so that in particular the blocking diode 14 has no influence on the impedance spectroscopy device 15. The impedance spectroscopy device 15 may be formed as a clocked power semiconductor switch, especially a MOSFET.
[0037] For the detection of frost start conditions, the MOSFET is operated in clocked mode such that the impedance spectroscopy device 15 so formed imposes an alternating current on the current consumers of the fuel cell device. A response signal is then detected and compared to a given signal value. If the response signal differs from the given signal value, this may be an indication of a frost situation being present. However, minor deviations can be acceptable, so that a deviation range is dictated. Thus, deviations by a given amount still result in a starting of the power supply device 1 in a normal operation. But if a deviation is found which lies outside the given deviation range and which is thus larger than the predefined deviation amount, the power supply device 1 will be started or operated in a frost start operation.
[0038] With such a configuration, a very efficient operation of the power supply device 1 can be assured. Hence, the same is true of a drive mechanism which is powered with electrical energy from such a power supply device 1. Furthermore, the power supply device 1 can also be designed very simple, so that design space and cost benefits result when it is used in a fuel cell vehicle.
[0039] In general, in the following claims, the terms used should not be construed to limit the claims to the specific embodiments disclosed in the specification and the claims, but should be construed to include all possible embodiments along with the full scope of equivalents to which such claims are entitled.