FUEL CELL MOTOR VEHICLE AND METHOD
20220149402 ยท 2022-05-12
Assignee
Inventors
- Stefan KAIMER (Aachen, DE)
- Hans Guenter GROSCH (Vettweiss, DE)
- Julio Orozco Santos Coy (Aachen, DE)
- Rolf Lorenz Loeffler (Rommerskirchen, DE)
Cpc classification
H01M8/04201
ELECTRICITY
H01M8/0662
ELECTRICITY
H01M8/249
ELECTRICITY
B60L50/72
PERFORMING OPERATIONS; TRANSPORTING
H01M2250/20
ELECTRICITY
International classification
H01M8/04119
ELECTRICITY
Abstract
A fuel cell vehicle includes a fuel cell assembly with at least a first fuel cell stack and a second fuel cell stack. Waste gas extracted from the first fuel cell stack is routed to an input of the second fuel cell stack. The first and second fuel cell stacks may be of the same size or the second fuel cell stack may be sized smaller than the first fuel cell stack.
Claims
1. A method for operating a fuel cell vehicle having a fuel cell assembly with at least a first fuel cell stack and a second fuel cell stack, the method comprising: extracting waste gas from the first fuel cell stack; and routing the extracted waste gas to an input of the second fuel cell stack.
2. The method according to claim 1, wherein the first fuel cell stack and the second fuel cell stack are the same size.
3. The method according to claim 2, wherein a compressor upstream of the second fuel cell stack is of smaller dimensions than a compressor upstream of the first fuel cell stack.
4. The method according to claim 3. further comprising feeding the waste gas extracted from the first fuel cell stack to an inlet side of the compressor upstream of the second fuel cell stack.
5. The method according to claim 3, further comprising routing gas from an outlet of the compressor upstream of the first fuel cell stack through a pressure distribution valve.
6. The method according to claim 3, wherein the compressor upstream of the first fuel cell stack has two pressure outlets.
7. A fuel cell system comprising: a first fuel cell stack: a second fuel cell stack; a first compressor disposed upstream of the first fuel cell stack and having an outlet coupled to an inlet of the first fuel cell stack; and a throttle valve operable to route waste gas from the first fuel cell stack to an input of the second fuel cell stack.
8. The fuel cell system of claim 7 further comprising: a second compressor disposed upstream of the second fuel cell stack and having an outlet coupled to an inlet of the second fuel cell stack.
9. The fuel cell system of claim 8 wherein the throttle valve is operable to route waste gas from the first fuel cell stack to an input of the second compressor.
10. The fuel cell system of claim 8 wherein the throttle valve is operable to route waste gas from the first fuel cell stack to the output of the second compressor.
11. The fuel cell system of claim 7 wherein the outlet of the first compressor is coupled to the inlet of the second fuel cell stack.
12. The fuel cell system of claim 11 further comprising a pressure distribution valve having an inlet coupled to the outlet of the first compressor, a first outlet coupled to the inlet of the first fuel cell stack, and a second outlet coupled to the inlet of the second fuel cell stack.
13. The fuel cell system of claim 7 wherein the first compressor comprises a second outlet and wherein the second outlet is coupled to the inlet of the second fuel cell stack.
14. The fuel cell system of claim 7 further comprising a humidifier disposed between the compressor and the first fuel cell stack, the humidifier configured to transfer water vapor between the waste gas of the first fuel cell stack and the inlet of the first fuel cell stack.
15. The fuel cell system of claim 14 further comprising a second humidifier configured to transfer water vapor between the waste gas of the second fuel cell stack and the inlet of the second fuel cell stack.
16. The fuel cell system of claim 14 wherein an outlet of the second fuel cell stack is coupled to the humidifier and wherein the humidifier is configured to transfer water vapor between the waste gas of the second fuel cell stack and the inlet of the second fuel cell stack.
17. A fuel cell vehicle comprising: a first fuel cell stack; a second fuel cell stack; a compressor; a humidifier having an inlet coupled to an outlet of the compressor, the outlet of the humidifier coupled to an input of at least one of the first and second fuel cell stacks; and a throttle valve coupled to an outlet of the first fuel cell stack and the input of the second fuel cell stack and configured to direct waste gas from the first fuel cell stack to the input of the second fuel cell stack.
18. The fuel cell vehicle of claim 17 further comprising: a second compressor; and a second humidifier having an inlet coupled to an outlet of the second compressor, the outlet of the second humidifier coupled to the input of the second fuel cell stack.
19. The fuel cell vehicle of claim 17 further comprising: a second humidifier having an inlet coupled to a second outlet of the compressor and an outlet coupled to the input of the second fuel cell stack.
20. The fuel cell vehicle of claim 17 wherein the first and second fuel cell stacks are the same size.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0016]
[0017]
[0018]
[0019]
[0020]
[0021]
DETAILED DESCRIPTION
[0022] Detailed embodiments of the present invention are disclosed herein. However, it is to be understood that the disclosed embodiments are merely examples of the claimed subject matter and may be embodied in various and alternative forms. The figures are not necessarily to scale; some features may be exaggerated or minimized to show details of particular components. Therefore, specific structural and functional details disclosed herein are not to be interpreted as limiting, but merely as a representative basis for teaching one skilled in the art to variously employ the claimed subject matter.
[0023] As shown in the representative embodiment of
[0024] Further illustrated components in the balance of plant (BOP) of the fuel cell assembly 4 include two compressors 8a, 8b, two humidifiers 10a, 10b, two filters 20a, 20b, two coolers 22a, 22b, which are water-cooled in the embodiment illustrated, in each case two valves 24, 26 and 28, 30, two throttle valves 32a, 32b and two hydrogen purge valves 34a, 34b.
[0025] In addition or as an alternative to the throttle valves 32a, 32b, turbines can also be provided. In this arrangement, one of the components is assigned to each of the two fuel cell stacks 6a, 6b. In other words, the first fuel cell stack 6a. has a compressor 8a, humidifier 10a, etc., assigned to it. Likewise, the second fuel cell stack 6b has a compressor 8b, humidifier 10b, etc., assigned to it.
[0026] During operation, air or oxygen is fed to the first fuel cell stack 6a in its flow direction via the filter 20a, the compressor 8a and the water-cooled cooler 22a and the humidifier 10a. Air or oxygen which has flowed through the first fuel cell stack 6a is passed through the humidifier 10a, wherein a throttle valve 32a is arranged downstream of the humidifier 10a for control purposes. By means of a valve 24, it is possible to open a first bypass 36, with which the humidifier 10a, the first fuel cell stack 6a and the throttle valve 32a can be bypassed.
[0027] By means of a valve 26, which in the embodiment of
[0028] Similarly, air or oxygen is fed to the second fuel cell stack 6b in its flow direction via the filter 20b, the compressor 8b and the water-cooled cooler 22b and the humidifier lob. Here too, air or oxygen that has flowed through the second fuel cell stack 6b is passed through the humidifier 10b, wherein a throttle valve 32b is arranged downstream of the humidifier lob for control purposes.
[0029] By means of a further valve 28, air or oxygen which has flowed through the water-cooled cooler 22b, or the waste gas from the first fuel cell stack 6a, can be fed to the second fuel cell stack 6b or a connection to the outlet 16 can be established. By means of a further valve 30 arranged downstream of the valve 28, it is possible to open a third bypass 40, with which the humidifier 10b can be bypassed. To purge the second fuel cell stack, 6b, a hydrogen purge valve 34b is provided, by means of which a connection to the outlet 16 can be established.
[0030] The first bypass 36 extends from the valve 24 to the further valve 28, i.e. in the embodiment of
[0031] During operation, in a first step, waste gas from the first fuel cell stack 6a can be extracted, and in a second step, the extracted waste gas can be fed to the second fuel cell stack 6b. The extracted waste gas flows through the humidifier 10a, the throttle valve 32a, and the further valves 28, 30, and is then passed via the humidifier lob and/or directly into the second fuel cell stack 6b. The second fuel cell stack 6b is thus at least partially and/or temporarily supplied with waste gas from the first fuel cell stack 6a. This makes it possible to dimension the compressor 8b and the humidifier 10b which are assigned to the second fuel cell stack 6b to be smaller than the compressor 8a and the humidifier 10a which are assigned to the first fuel cell stack 6a. Furthermore, the arrangement illustrated in
[0032] The embodiment illustrated in
[0033] The embodiment illustrated in
[0034] The embodiment illustrated in
[0035] The embodiment illustrated in
[0036] The embodiment illustrated in
[0037] With arrangements according to representative embodiments as described above, it is possible to provide a fuel cell assembly 4 which requires approximately 20% less operating energy, for example.
[0038] While representative embodiments are described above, it is not intended that these embodiments describe all possible forms of the claimed subject matter. The words used in the specification are words of description rather than limitation, and it is understood that various changes may be made without departing from the teachings of the disclosure and the claimed subject matter. Additionally, the features of various implementing embodiments may be combined to form further embodiments of the invention.