Bipolar plate having a variable width of the reaction gas channels in the inlet region of the active region, fuel-cell stack and fuel-cell system having bipolar plates of this type, as well as a vehicle
11108059 ยท 2021-08-31
Assignee
Inventors
Cpc classification
H01M8/0265
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
H01M8/0267
ELECTRICITY
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
H01M8/0265
ELECTRICITY
H01M8/0267
ELECTRICITY
Abstract
A bipolar plate for a fuel cell having two profiled separator plates with channels for reaction gases and coolant, wherein the channels for a reaction gas or both reaction gases have a smaller width in an inlet region of the active region than in the remaining sub-region of the active region, wherein the width thereof continuously increases from the beginning to the end of the inlet region. Supports between the channels have a greater width than in the remaining sub-region of the active region, wherein the sum of the width of the channels and the width of the supports is constant, and the width of the channels and the supports is constant in the entire remaining sub-region.
Claims
1. A bipolar plate for a fuel cell, comprising: a first separator plate; a second separator plate coupled to the first separator plate; a plurality of reaction gas channels in each of the first and second separator plates; and a plurality of coolant channels defined by the plurality of reaction gas channels in each of the first and second separator plates, wherein the first and second separator plates include an active region comprised of a first region and a second region, a first width of the plurality of reaction gas channels in the first region of each separator plate being less than a second width of the plurality of reaction gas channels in the second region of each separator plate, the first width continuously increasing across the first region, the second width constant across the second region, wherein a length of the first region comprises between 5 and 30% of a length of the active region.
2. The bipolar plate of claim 1 wherein the plurality of coolant channels include a first width in the first region that is greater than a second width in the second region.
3. The bipolar plate of claim 2 wherein a first sum of the first width of the plurality of reaction gas channels and the first width of the plurality of coolant channels is equal to a second sum of the second width of the plurality of reaction gas channels and the plurality of coolant channels across each separator plate.
4. The bipolar plate of claim 2 wherein the second width of the plurality of coolant channels continuously decreases across the first region.
5. The bipolar plate of claim 1 wherein the length of the first region is between 10 and 25% of the length of the active region.
6. The bipolar plate of claim 1 wherein the length of the first region is 20% of the length of the active region.
7. A system, comprising: a first gas diffusion layer including a first membrane; a second gas diffusion layer including a second membrane; and a bipolar plate coupled between the first gas diffusion layer and the second gas diffusion layer, the bipolar plate including: a separator plate including a plurality of reaction gas channels and a plurality of coolant gas channels, the separator plate further including an active region comprised of an intake region and a remaining region, wherein a first width of the plurality of reaction gas channels in the intake region is different than a second width of the plurality of reaction gas channels in the remaining region, the first width continuously changing across the intake region, the second width constant across the remaining region, wherein the intake region comprises between 5 and 30% of a length of the active region.
8. The system of claim 7 wherein the first width is less than the second width.
9. The system of claim 8 wherein the first width increases continuously across the intake region.
10. The system of claim 7 wherein the first width is greater than the second width.
11. The system of claim 10 wherein the first width decreases continuously across the intake region.
12. The system of claim 7 wherein the plurality of coolant channels include a first width in the intake region and a second, different width in the remaining region.
13. The system of claim 12 wherein the first width of the plurality of coolant channels is greater than the second width of the plurality of coolant channels.
14. A method comprising: providing reaction gases to a gas diffusion layer through a plurality of reaction gas channels in a bipolar plate having an active region including an intake region in fluid communication with a remaining region, a width of the plurality of reaction gas channels in the intake region being less than a width of the plurality of reaction gas channels in the remaining region, wherein the width of the plurality of reaction gas channels in the intake region continuously increases across the active region, the width of the plurality of reaction gas channels is constant across the remaining region, and the active region comprises between 5 and 30% of a total length of the active region; hydrating the gas diffusion layer with coolant passing through a plurality of coolant channels in the bipolar plate; and maintaining humidity of a membrane in the gas diffusion layer above an allowed minimum humidity for a reaction in the active region.
15. The method of claim 14 wherein maintaining humidity of the membrane further includes decreasing the humidity of the membrane at a termination of the intake region.
16. The method of claim 15 wherein maintaining humidity of the membrane includes increasing humidity of the reaction gas from the intake region to the remaining region, the humidity of the reaction gas maintaining humidity of the membrane above the allowed minimum humidity after the termination of the intake region.
17. The method of claim 14 wherein hydrating the gas diffusion layer with coolant includes a width of the plurality of coolant channels in the intake region being greater than a width of the plurality of coolant channels in the remaining region.
Description
(1) The invention is explained below in exemplary embodiments with reference to the respective drawings. Shown are:
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(14) The bipolar plate 10 has two, profiled, separator plates 12, 14, only one separator plate 12, 14 being visible in the plan view. The separator plates 12, 14 together form an active region 16, to which, on both sides, distribution regions 18, 20 are adjacent, each of which has two ports 22, 24 for reaction gases and one port 26 for a coolant, by means of which the reaction gases and the coolant are supplied to the active region 16 and discharged therefrom. Separate channels 28, 30, 32 for the reaction gases and the coolant run in the bipolar plate 10 and are open, gutter-like structures, of which only the channels 28 for a reaction gas, by a boldface line, are symbolized.
(15) Moreover,
(16) The proportion of water (curve 48a) in the reaction gas and the proportion of water (curve 48b) in the membrane of a fuel-cell are juxtaposed in a diagram in
(17) From this diagram, it is evident that, for fuel-cells having bipolar plates 10 according to the prior art, the reaction gas enters the active region 16 with too low a proportion of water, i.e., the water content is lower than the required minimum humidification of the membrane. Accordingly, the actual water content of the membrane at the start of the active region 16 is too low for an optimum conversion of the reaction gases. The reaction gas, as it flows through the active region 16, continuously absorbs product water 46, so that the water content of reaction gas and membrane rises above the required minimum humidification.
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(19) The intake region 34 is optically delimited by a vertical line from the partial region 36, which otherwise has no technical significance. This applies likewise for the vertical line in
(20) The ratio of the width B1 of the web 54 to the width B2 of the reaction gas channel 28 is represented in a curve 49 in the diagram according to
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(25) The ratio of the width B1 of the web 54 to the width B2 of the reaction gas channel 28 is represented in a curve 49 in the diagram according to
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LIST OF REFERENCE SYMBOLS
(27) 10 Bipolar plate 12, 14 Separator plates 16 Active region 18, 20 Distribution regions 22, 24 Port for reaction gases 26 Port for coolant 28, 30, 32 Channels for operating media 34 Intake region 36 Partial region 42 Direction of flow 44 Side 46 Product water 48, 48a, 48b Curve 49 Channel-to-web ratio 49a, 49b Channel-to-web ratio in the intake region and in the partial region 50, 52 Region 54 Web 56a Curve wide webs 100% 58a Curve narrow webs 100% 56b Curve wide webs 60% 58b Curve narrow webs 60% I Length B1 Web width B2 Channel width B3 Channel width plus web width