MODULAR RANGE EXTENDER SYSTEM FOR AN ELECTRICALLY DRIVEN MOTOR VEHICLE, AND ELECTRICALLY DRIVEN MOTOR VEHICLE HAVING A RANGE EXTENDER
20220212549 · 2022-07-07
Assignee
Inventors
Cpc classification
H01M8/04201
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
B60L50/70
PERFORMING OPERATIONS; TRANSPORTING
H01M2220/20
ELECTRICITY
H01M8/249
ELECTRICITY
B60L50/72
PERFORMING OPERATIONS; TRANSPORTING
H01M2250/20
ELECTRICITY
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
B60L50/71
PERFORMING OPERATIONS; TRANSPORTING
B60L50/72
PERFORMING OPERATIONS; TRANSPORTING
H01M16/00
ELECTRICITY
H01M8/04082
ELECTRICITY
Abstract
The invention relates to a modular range extender system (20) for an electrically driven motor vehicle (52), comprising a plurality of fuel cell basic modules (10), which each have a plurality of fuel cells connected in series and interfaces for supplying hydrogen and air as well as for discharging water and residual gas; a media supply device, which is designed to supply air and hydrogen to the fuel cell basic modules (10) via the interfaces and to discharge water and residual gas from the fuel cell basic modules (10) via the interfaces, wherein, in order to provide different outputs and/or voltages, different numbers of the fuel cell basic modules (10) are electrically connectable to one another in different series and/or parallel circuits and are configurable with the media supply device to form different variants of the range extender (22). The invention also relates to a circuit arrangement (40) for a vehicle electrical system of an electrically driven motor vehicle (52) and to an electrically driven motor vehicle having a circuit arrangement (40) of this kind.
Claims
1. A modular range extender system (20) for an electrically driven motor vehicle (52), comprising a plurality of fuel cell basic modules (10), which each have a plurality of fuel cells connected in series and interfaces for supplying hydrogen and air as well as for discharging water and residual gas; a media supply device, which is designed to supply air and hydrogen to the fuel cell basic modules (10) via the interfaces and to discharge water and residual gas from the fuel cell basic modules (10) via the interfaces; wherein, in order to provide different outputs, different numbers of fuel cell basic modules (10) are electrically connectable to one another in different parallel circuits and/or in order to provide different voltages, different numbers of fuel cell basic modules (10) are electrically connectable to one another in different series circuits and are configurable with the media supply device to form respective variants of a range extender (22).
2. The modular range extender system (20) according to claim 1, wherein the fuel cell basic modules (10) all have the same structure with regard to their components.
3. The modular range extender system (20) according to claim 1, wherein the fuel cell basic modules (10) have their own control, wherein said control can be run on a common hardware of a respective variant of the range extender (22).
4. The modular range extender system (20) according to claim 1, wherein the fuel cell basic modules (10) are designed to provide an output in each case in the range of 2 to 8 kW.
5. The modular range extender system (20) according to claim 1, wherein the media supply device for each fuel cell basic module (10) has a separate air compressor (18) for providing air.
6. The modular range extender system (20) according to claim 1, wherein the media supply device has a central media supply channel (30) for supplying air and hydrogen as well as for discharging water and residual gas for the fuel cell basic modules (10), wherein the fuel cell basic modules (10) can be coupled to the media supply channel to the left and right of the media supply channel (30).
7. The modular range extender system (20) according to claim 1, wherein the fuel cell basic modules (10) each have a first end plate (14) and a second end plate (16), which are arranged at opposite ends of the fuel cell basic modules (10) and between which the respective fuel cells are arranged, wherein exclusively the first end plate (14) has the interfaces for supplying air and hydrogen as well as for discharging water.
8. The modular range extender system (20) according to claim 7, wherein within the fuel cell basic modules (10) the fuel cells are positioned in two cell stacks (32, 34) arranged next to one another and electrically connected to each other in series, which have a common U-shaped media guide (36) for air, hydrogen, water and residual gas, wherein the second end plate (16) for each basic module has a directional diversion (38) for the media guide (36) from one to the other cell stack (32, 34).
9. A circuit arrangement (40) for a vehicle electrical system of an electrically driven motor vehicle (52), comprising a predetermined variant of a range extender (22) based on a modular range extender system (20) according to any one of the preceding claims; a high-voltage battery (42) for supplying energy to an electrical drive machine (44) of the motor vehicle (52); wherein the high-voltage battery (42) and the range extender (22) are interconnected without a DC voltage converter in the form of a parallel circuit and the range extender (22) is designed to charge the high-voltage battery (42) a switching device (48) for establishing and disconnecting an electrically conductive connection between the range extender (22) and the high-voltage battery (42).
10. An electrically driven motor vehicle (2), comprising a circuit arrangement (40) according to claim 9.
11. The electrically driven motor vehicle (52) according to claim 10, wherein respective air compressors (18) of the range extender (22) for providing air for the fuel cell basic modules (10) are arranged at other points in the motor vehicle (52) than the associated fuel cell basic modules (10).
Description
[0024] The drawing shows in:
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
[0031] In the figures, identical or functionally identical elements have been provided with the same reference signs.
[0032] In
[0033] In addition, the fuel cell basic module 10 comprises a plurality of interfaces not shown here for supplying hydrogen and air as well as for discharging water and residual gas. It can thereby be provided that exclusively the first plate 14 forms a kind of plug-and-play front end, which has all interfaces. In addition, a compressor 18 is associated with the fuel cell basic module 10, which is used to convey air and thus oxygen to the individual fuel cells. Contrary to the present representation, however, it is not required that the compressor 18 is arranged directly on the fuel cell basic module 10. Instead, it can also be provided that the compressor 18 is arranged at a completely different point during installation in the relevant motor vehicle than the fuel cell basic module 10. It must merely be ensured by means of a corresponding line or piping, that the compressor 18 can convey air and thus oxygen to the fuel cell basic module 10.
[0034] In
[0035] In the present case, several groups 19 of fuel cell basic modules 10 connected to one another in series are shown schematically. For example, so many of the fuel cell basic modules 10 are connected to one another in series for each group 19, that these can provide a voltage of, for example, 480 V and an output of 24 kW. Another interconnection is of course also possible. By connecting the individual groups 19 in parallel, it is possible to increase the output that can be provided, while the voltage remains the same. In principle, any scaling of the output for each application case is possible by a corresponding interconnection of the individual fuel cell basic modules 10.
[0036] The individual fuel cell basic modules 10 can have, for example, a reactive surface of approx. 100 cm.sup.2 and 80 individual fuel cells. Other surfaces and numbers are also possible. Thus, for example, it is possible that the respective fuel cell basic modules 10 can provide an open circuit voltage of 80 V and a voltage of 48 V under full load, wherein the fuel cell basic modules 10 can be designed, for example, to provide an output in the range of 2 to 8 kW. Other voltages and outputs are also possible, in particular, depending on the selected or installed membrane electrode units in the individual fuel cell basic modules 10.
[0037] In particular, it can be provided that the fuel cell basic modules 10 all have the same structure with regard to their components. The fuel cell basic modules 10 therefore form highly standardised units, in which the same components are installed everywhere. This enables high economies of scale to be achieved with correspondingly low purchasing and production costs. The individual fuel cell basic modules 10 as well as the media supply device mentioned therefore jointly form a modular range extender system 20, wherein depending on the boundary condition or application case the standardised fuel cell basic modules 10 can be interconnected in a wide variety of configurations. In each case the fuel cell basic modules can have their own control, wherein said control can be run, for example, on a common hardware for a specific configured variant of a range extender.
[0038] In
[0039] In
[0040] This results in a particularly compact design of the fuel cell basic modules 10. In particular, a particularly flat design and short design can thus be achieved for the range extender 22 configured on the basis of the thus designed fuel cell basic modules 10.
[0041] In
[0042] A circuit arrangement 48 for establishing and disconnecting an electrically conductive connection between the range extender 22 and the high-voltage battery 42 is also part of the circuit arrangement 40. The switching device 48 can, for example, be a MOSFET, a transistor or also a mechanical relay. One or a plurality of freewheeling diodes 50 can also be provided as safety elements. Due to the fact that the circuit arrangement 40 does not have a DC voltage converter, installation space and corresponding costs can be saved. It can be ensured by a correspondingly suitable predictive regulation or control, that when the range extender 22 is switched on, it is nevertheless not damaged.
[0043] In
[0044] The individual fuel cell basic modules 10 can in turn be arranged with regard to a favourable vehicle centre of gravity and a favourable packaging at other points in the motor vehicle 52. The individual air compressors 18 can be combined, for example, in the form of a compressor module. Depending on the configuration of the range extender 22 and above all depending on the number of fuel cell basic modules 10 installed therein, the number of air compressors 18 to be used can vary. The number of air compressors 18 thereby corresponds precisely to the number of fuel cell basic modules 10.
LIST OF REFERENCE SIGNS
[0045] 10 fuel cell basic module [0046] 12 stack of fuel cells connected in series [0047] 14 first end plate [0048] 16 second end plate [0049] 18 air compressor [0050] 19 groups of fuel cell basic modules connected in series [0051] 20 modular range extender system [0052] 22 variant of a range extender [0053] 24 negative pole of the range extender [0054] 26 positive pole of the range extender [0055] 28 enclosure of the range extender [0056] 30 central media supply channel [0057] 32 cell stack [0058] 34 cell stack [0059] 36 U-shaped media guide [0060] 38 directional diversion for the media guide [0061] 40 circuit arrangement [0062] 42 high-voltage battery [0063] 44 electrical drive machine [0064] 46 frequency converter [0065] 48 switching device [0066] 50 free-wheeling diode [0067] 52 motor vehicle