Membrane electrode assembly, fuel cell, fuel cell stack, and method for manufacturing membrane electrode assembly
US-2015072262-A1 · Mar 12, 2015 · US
US9837676B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-9837676-B2 |
| Application number | US-201414903632-A |
| Country | US |
| Kind code | B2 |
| Filing date | Apr 22, 2014 |
| Priority date | Jul 10, 2013 |
| Publication date | Dec 5, 2017 |
| Grant date | Dec 5, 2017 |
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A single cell C includes a membrane electrode assembly M in which an electrolyte membrane 1 is interposed between a pair of electrode layers 2, 3 , and a pair of separators 4 that form gas channels C between the pair of separators 4 and the membrane electrode assembly M, wherein the electrode layers 2, 3 include first gas diffusion layers 2 B, 3 B of a porous material disposed at the side facing the electrolyte membrane 1 and second gas diffusion layers 2 C, 3 C that are composed of a metal porous body having arrayed many holes K, and a part of the first gas diffusion layers 2 B, 3 B penetrates the holes K of the second gas diffusion layers 2 C, 3 C to form protrusions T. Accordingly, the surface of the electrode layers 2, 3 has a fine uneven structure. As a result, an improvement in liquid water discharging function and an improvement in power generating function were achieved at the same time.
Opening claim text (preview).
The invention claimed is: 1. A fuel cell single cell, comprising: a membrane electrode assembly in which an electrolyte membrane is interposed between a pair of electrode layers; and a pair of separators that form gas channels between the pair of separators and the membrane electrode assembly, wherein an electrode layer of the membrane electrode assembly comprises a first gas diffusion layer of a porous material disposed on a side facing the electrolyte membrane and a second gas diffusion layer comprising a metal porous body with arrayed many holes, and a part of the first gas diffusion layer penetrates the second gas diffusion layer entirely through and beyond each hole to form a protrusion for each hole. 2. The fuel cell single cell according to claim 1 , wherein a surface of the first gas diffusion layer is water repellent. 3. The fuel cell single cell according to claim 2 , wherein each of the protrusions of the first gas diffusion layer and each of the respective holes of the second gas diffusion layer that corresponds to each other in a thickness direction satisfy a relation in which a height of each of the protrusions protruding from the holes is equal to or greater than a half of a width of a solid phase portion around each of the holes. 4. The fuel cell single cell according to claim 3 , wherein each of the protrusions of the first gas diffusion layer and each of the respective holes of the second gas diffusion layer that corresponds to each other in a thickness direction satisfy a relation in which a sum of an actual volume of the first gas diffusion layer in each of the protrusions and an actual volume of the first gas diffusion layer in each of the holes is equal to or less than a volume of each of the holes. 5. The fuel cell single cell according to claim 2 , wherein each of the protrusions of the first gas diffusion layer and each of the respective holes of the second gas diffusion layer that corresponds to each other in a thickness direction satisfy a relation in which a sum of an actual volume of the first gas diffusion layer in each of the protrusions and an actual volume of the first gas diffusion layer in each of the holes is equal to or less than a volume of each of the holes. 6. The fuel cell single cell according to claim 1 , wherein each of the protrusions of the first gas diffusion layer and each of the respective holes of the second gas diffusion layer that corresponds to each other in a thickness direction satisfy a relation in which a height of each of the protrusions is equal to or greater than a half of a width of a solid phase portion around each of the holes. 7. The fuel cell single cell according to claim 6 , wherein each of the protrusions of the first gas diffusion layer and each of the respective holes of the second gas diffusion layer that corresponds to each other in a thickness direction satisfy a relation in which a sum of an actual volume of the first gas diffusion layer in each of the protrusions and an actual volume of the first gas diffusion layer in each of the holes is equal to or less than a volume of each of the holes. 8. The fuel cell single cell according to claim 1 , wherein each of the protrusions of the first gas diffusion layer and each of the respective holes of the second gas diffusion layer that corresponds to each other in a thickness direction satisfy a relation in which a sum of an actual volume of the first gas diffusion layer in each of the protrusions and an actual volume of the first gas diffusion layer in each of the holes is equal to or less than a volume of each of the holes. 9. The fuel cell single cell according to claim 8 , wherein the sum of the actual volume of the first gas diffusion layer in each of the protrusions and the actual volume of the first gas diffusion layer in each of the holes are selected according to a porosity of the first gas diffusion layer after each of the protrusions is compressed into each of the holes. 10. The fuel cell single cell according to claim 1 , wherein the first gas diffusion layer comprises an inner diffusion layer on a side facing the electrolyte membrane and an outer diffusion layer on a side facing the second gas diffusion layer, and a part of the outer diffusion layer penetrates the second gas diffusion layer through the holes to protrude outward.
Metals or alloys · CPC title
Pressing, rolling, calendering (membrane electrode assemblies H01M8/1004) · CPC title
with sealing or supporting means in the form of a frame · CPC title
with both reactants being gaseous or vaporised (H01M8/12 takes precedence) · CPC title
Metals or alloys · CPC title
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