US 12,272,848 B2
Fuel cell, fuel cell stack, manufacturing method of fuel cell and manufacturing method of fuel cell stack
Xinyu Li, Takasaki (JP); Chie Kawamura, Takasaki (JP); and Yukihiro Konishi, Takasaki (JP)
Assigned to TAIYO YUDEN CO., LTD., Tokyo (JP)
Filed by TAIYO YUDEN CO., LTD., Tokyo (JP)
Filed on Oct. 18, 2019, as Appl. No. 16/657,760.
Claims priority of application No. 2018-206798 (JP), filed on Nov. 1, 2018.
Prior Publication US 2020/0144645 A1, May 7, 2020
Int. Cl. H01M 8/1004 (2016.01); H01M 4/86 (2006.01); H01M 8/0226 (2016.01); H01M 8/0232 (2016.01); H01M 8/0247 (2016.01); H01M 8/12 (2016.01); H01M 8/1253 (2016.01); H01M 8/2404 (2016.01); H01M 8/2428 (2016.01); H01M 8/2485 (2016.01); H01M 4/88 (2006.01); H01M 8/0258 (2016.01); H01M 8/0273 (2016.01); H01M 8/2425 (2016.01)
CPC H01M 8/1004 (2013.01) [H01M 4/86 (2013.01); H01M 4/8605 (2013.01); H01M 8/0226 (2013.01); H01M 8/0232 (2013.01); H01M 8/0247 (2013.01); H01M 8/12 (2013.01); H01M 8/1253 (2013.01); H01M 8/2404 (2016.02); H01M 8/2428 (2016.02); H01M 8/2485 (2013.01); H01M 4/8889 (2013.01); H01M 8/0258 (2013.01); H01M 8/0273 (2013.01); H01M 2008/1293 (2013.01); H01M 8/2425 (2013.01); H01M 2250/20 (2013.01)] 8 Claims
OG exemplary drawing
 
1. A fuel cell comprising:
a solid oxide electrolyte layer having oxygen ion conductivity;
a first electrode layer that is provided on a first face of the solid oxide electrolyte layer;
a second electrode layer that is provided on a second face of the solid oxide electrolyte layer;
a first metal porous layer that is provided on a face of the first electrode layer which is opposite to the solid oxide electrolyte layer; and
a second metal porous layer that is provided on a face of the second electrode layer which is opposite to the solid oxide electrolyte layer,
wherein the first electrode layer has a first material having both electron conductivity and oxygen ion conductivity and
wherein the second electrode layer has a second material having both electron conductivity and oxygen ion conductivity and
wherein the first material and the second material are a LaCoO3-based material or a CeO2-based material in which Gd is doped,
wherein the first material and the second material have an identical composition,
wherein the solid electrolyte layer, the first electrode layer, and the second electrode layer constitute a multilayer structure which has a rectangular parallelepiped shape which has an upper face and a lower face in a stacking direction of the multilayer structure, and four side faces other than the upper face and the lower face,
wherein the four side faces consists of a first side face, a second side face opposite the first side face, a third side face, and a fourth side face opposite the third side face, and
wherein frames are provided at the first side face, the second side face, the third side face, and the fourth side face, respectively, on planes on which the first electrode layer and the second electrode layer are provided, respectively,
among the frames,
first frames are provided at the first side face and the second side face, respectively,
second frames are provided on the third side face and the fourth side face, respectively, and
the first frames and the second frames are alternately provided in the stacking direction in a manner that
the first frames and the first electrode layer are provided on a first plane on a same side thereof where the first electrode layer is provided,
the second frames and the second electrode layer are provided on a second plane on a same side thereof where the second electrode layer is provided,
wherein the first frames extend continuously from the third side face to the fourth side face along a first direction in which the third side face and the fourth side face are opposite to each other, and have a constant width perpendicular to the first direction from the third side face to the fourth side face,
wherein the second frames extend continuously from the first side face to the second side face along a second direction in which the first side face and the second side face are opposite to each other, and have a constant width perpendicular to the second direction from the first side face to the second side face,
wherein the first metal porous layer has a structure including a plurality of metal porous parts and a plurality of groove-shaped gas passages which are alternately arranged, respectively, in the second direction in a manner that adjacent two of the plurality of groove-shaped gas passages are separated from each other by one of the plurality of metal porous parts, and adjacent two of the plurality of metal porous parts are separated from each other by one of the plurality of groove-shaped gas passages, wherein the plurality of metal porous parts and the plurality of groove-shaped gas passages each extend continuously from the third side face to the fourth side face, and
wherein the second metal porous layer has a structure including a plurality of metal porous parts and a plurality of groove-shaped gas passages which are alternately arranged, respectively, in the first direction in a manner that adjacent two of the plurality of groove-shaped gas passages are separated from each other by one of the plurality of metal porous parts, and adjacent two of the plurality of metal porous parts are separated from each other by one of the plurality of groove-shaped gas passages, wherein the plurality of metal porous parts and the plurality of gas passages each extend continuously from the first side face to the second side face.