Interconnect for fuel cell stack
US-9478812-B1 · Oct 25, 2016 · US
US11302933B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-11302933-B2 |
| Application number | US-201916249934-A |
| Country | US |
| Kind code | B2 |
| Filing date | Jan 17, 2019 |
| Priority date | Jan 17, 2018 |
| Publication date | Apr 12, 2022 |
| Grant date | Apr 12, 2022 |
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An electrochemical cell stack having a plurality of electrochemical cells stacked along a longitudinal axis. The electrochemical cells include a membrane electrode assembly comprising a cathode catalyst layer, an anode catalyst layer, and a polymer membrane interposed between the cathode catalyst layer and the anode catalyst layer. The electrochemical cells also include an anode plate and a cathode plate with the membrane electrode assembly interposed therebetween, and the anode plate defines a plurality of channels that form an anode flow field facing the anode catalyst layer. The electrochemical cells further include a cathode flow field positioned between the cathode plate and the cathode catalyst layer, wherein the cathode flow field comprises a porous structure.
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What is claimed is: 1. An electrochemical cell stack, comprising: a plurality of electrochemical cells stacked along a longitudinal axis, each electrochemical cell comprising: a membrane electrode assembly comprising a cathode catalyst layer, an anode catalyst layer, and a polymer membrane interposed between the cathode catalyst layer and the anode catalyst layer; an anode plate and a cathode plate with the membrane electrode assembly interposed therebetween, and the anode plate defines a plurality of channels that form an anode flow field facing the anode catalyst layer; a cathode flow field positioned between the cathode plate and the cathode catalyst layer, wherein the cathode flow field comprises a porous structure; a first manifold section that includes an anode feed manifold and a second manifold section that includes an anode discharge manifold; a first anode distribution channel positioned between the first manifold section and the anode flow field configured to distribute fuel supplied from the anode feed manifold to the anode flow field; and a second anode distribution channel positioned between the second manifold section and the anode flow field configured to collect fuel from the anode flow field and direct the fuel to the anode discharge manifold; and a plurality of orifice openings fluidly connecting the first anode distribution channel with the anode flow field, the number of the orifice openings corresponding to the number of channels in the anode flow field. 2. The electrochemical cell stack of claim 1 , wherein the first anode distribution channel and the second anode distribution channel are formed between and defined by the membrane electrode assembly and the anode plate along the longitudinal axis, the first anode distribution channel and the second anode distribution channel extend a width of the anode flow field, the first anode distribution channel and the second anode distribution channel have a plurality of support features positioned within. 3. The electrochemical cell stack of claim 2 , wherein the support features are evenly spaced throughout the first anode distribution channel and second anode distribution channel, the support features are dimple shaped, and the support features extend from the anode plate in opposite directions along the longitudinal axis. 4. The electrochemical cell stack of claim 2 , wherein a ratio of a distance D c between the support features over a thickness t p of the cathode plate ranges between about 3 and about 50. 5. The electrochemical cell stack of claim 2 , wherein the distance D c between the support features is about 1.5 mm and the thickness t p of the cathode plate is about 0.1 mm. 6. The electrochemical cell stack of claim 1 , wherein the orifice openings are configured to apply a back pressure on the fuel in the first anode distribution channel, which causes the fuel to fill the first anode distribution channel during operation of the electrochemical cell stack. 7. An electrochemical cell stack, comprising: a plurality of electrochemical cells stacked along a longitudinal axis, each electrochemical cell comprising: a membrane electrode assembly comprising a cathode catalyst layer, an anode catalyst layer, and a polymer membrane interposed between the cathode catalyst layer and the anode catalyst layer; an anode plate and a cathode plate with the membrane electrode assembly interposed therebetween, and the anode plate defines a plurality of channels that form an anode flow field facing the anode catalyst layer; and a cathode flow field positioned between the cathode plate and the cathode catalyst layer, wherein the cathode flow field comprises a porous structure; wherein the porous structure is a porous metallic foam structure that has a first cathode distribution channel and a second cathode distribution channel recessed into a surface of the porous metallic foam structure facing the cathode plate, the porous structure comprising a plurality of feed channels and discharge channels recessed into the surface of the porous metallic foam structure facing the cathode plate; wherein the feed channels start at and are in fluid communication with the first cathode distribution channel and extend toward the second cathode distribution channel, and the discharge channels end at and are in fluid communication with the second cathode distribution channel and extend toward the first cathode distribution channel; and wherein the cross-sectional area of the feed channels decreases extending away from the first cathode distribution channel toward the second cathode distribution channel at a rate about equal to the rate at which oxidant flows out of the feed channels and diffuses into the porous metallic foam structure. 8. The electrochemical cell stack of claim 7 , wherein the porous metallic foam structure includes support features formed throughout the first cathode distribution channel and the second cathode distribution channel, and the support features are dimple, semi-spherical, cone, or cylindrical shaped. 9. The electrochemical cell stack of claim 8 , wherein the first cathode distribution channel, the second cathode distribution channel, and the support features are formed by stamping of the porous metallic foam structure, and the first cathode distribution channel and the second cathode distribution channel are configured to promote uniform flow distribution of oxidant along a width of the cathode flow field. 10. The electrochemical cell stack of claim 8 , wherein the feed channels and discharge channels are interdigitated and stamped into the surface of the porous metallic foam structure facing the cathode plate. 11. The electrochemical cell stack of claim 10 , wherein the width and/or the depth of the feed channels and the discharge channels vary along the length of the porous metallic foam structure. 12. The electrochemical cell stack of claim 11 , wherein the width of the feed channels narrow extending away from the first cathode distribution channel toward the second cathode distribution channel while the width of the discharge channels widen extending away from the first cathode distribution channel toward the second cathode distribution channel. 13. The electrochemical cell stack of claim 11 , wherein the depth of the feed channels decreases extending away from the first cathode distribution channel toward the second cathode distribution channel while the depth of the discharge channels increases extending away from the first cathode distribution channel toward the second cathode distribution channel. 14. The electrochemical cell stack of claim 11 , wherein the cross-sectional area of the discharge channels increases extending away from the first cathode distribution channel toward the second cathode distribution channel. 15. The electrochemical cell stack of claim 14 , wherein the cross-sectional area of the discharge channels increases at a rate about equal to the rate at which oxidant flows out of the porous metallic foam structure into the discharge channels, thereby maintaining a velocity of oxidant about constant through the feed channels and the discharge channels. 16. The electrochemical cell stack of claim 10 , wherein the porous structure has a first set of channels that begin at the first cathode distribution channel and extend about halfway toward second cathode distribution channel. 17. An electrochemical cell stack, comprising: a plurality of electrochemical cells stacked along a longitudinal axis, each electrochemical cell comprising: a membrane electrode assembly comprising a cathode
Fuel cells · CPC title
characterised by membrane-electrode assemblies [MEA] (H01M8/12 takes precedence) · CPC title
with solid or matrix-supported electrolytes · CPC title
characterised by internal manifolds · CPC title
the reactant or coolant channels having varying cross sections · CPC title
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