IP Library Granted Patent US 10,181,608
Granted Patent B2
US 10,181,608 · App. 15/037,422 · Granted Jan 15, 2019

Fuel cell stack and fuel cell module

Inventors: Tetsuya Morikawa (Ichinomiya, JP); Nobuyuki Hotta (Konan, JP)
Assignee: NGK SPARK PLUG CO., LTD.
H01M8/04201H01M8/04014H01M8/04067H01M8/04074H01M8/04089H01M8/248H01M8/2425H01M8/2457H01M8/2483H01M2008/1293
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Quick Facts
Patent No.
US 10,181,608
App. No.
15/037,422
Granted
Jan 15, 2019
Kind
B2
Abstract

A fuel cell stack according to one aspect of the present invention has a plurality of fuel cells stacked together and a plurality of manifolds passing through the fuel cells in a stacking direction thereof so as to allow at least one of the fuel gas and the oxidant gas to flow therethrough. The manifolds include cold gas manifolds adapted to introduce the fuel gas or oxidant gas from the outside into the fuel cell stack, hot gas manifolds adapted to discharge the fuel gas or oxidant gas from the fuel cells, and a heat-exchanged gas manifold adapted to feed the fuel gas or oxidant gas that has been heat-exchanged in a heat exchange part. Every one of the cold gas manifolds is adjacent to any of the hot gas manifolds. One of the hot gas manifolds is non-adjacent to any other one of the hot gas manifolds.

Claims (15)

1. A fuel cell stack comprising a plurality of fuel cells stacked together in a stacking direction, each of the fuel cells having a solid electrolyte layer, a fuel electrode layer disposed on one side of the solid electrolyte layer and brought into contact with fuel gas and an air electrode layer disposed on the other side of the solid electrolyte layer and brought into contact with oxidant gas, the fuel cell stack having a structure that allows at least one of the fuel gas and the oxidant gas to flow into a part of the fuel cells in the staking direction and allows at least one of the fuel gas and the oxidant gas discharged from the part of the fuel cells to flow into the remaining part of the fuel cells,

wherein the fuel cell stack comprises:

a heat exchange part located inside the solid oxide fuel cell stack to perform heat exchange with any of the fuel cells adjacent to the heat exchange part; and

a plurality of manifolds passing through the fuel cells in the stacking direction so as to allow at least one of the fuel gas and the oxidant gas to flow therethrough;

wherein the manifolds include:

cold gas manifolds each adapted to introduce the fuel gas or the oxidant gas from the outside into the fuel cell stack;

hot gas manifolds each adapted to discharge the fuel gas or the oxidant gas from the fuel cells; and

a heat-exchanged gas manifold adapted to feed to the plurality of fuel cells at least one of the fuel gas and the oxidant gas that has been heat-exchanged in the heat exchange part; and

wherein, when the fuel cell stack is viewed in the stacking direction, the manifolds are arranged such that every one of the cold gas manifolds is adjacent to any of the hot gas manifolds and such that every one of the hot gas manifolds is non-adjacent to any other one of the hot gas manifolds.

2. The fuel cell stack according to claim 1 , wherein, when the fuel cell stack is viewed in the stacking direction, at least either of the heat-exchanged gas manifold and the cold gas manifolds is adjacent to each of the hot gas manifolds.

3. The fuel cell stack according to claim 2 , wherein, when the fuel cell stack is viewed in the stacking direction, at least any of the heat-exchanged gas manifold and the cold gas manifolds are adjacent to both sides of each of the hot gas manifolds.

4. The fuel cell stack according to claim 1 , wherein, when the fuel cell stack is viewed in the stacking direction, the cold-gas manifold for the oxidant gas is adjacent to the hot-gas manifold for the oxidant gas.

5. The fuel cell stack according to claim 1 , wherein, when the fuel cell stack is viewed in the stacking direction, the hot-gas manifolds are adjacent to both sides of the cold-gas manifold for the oxidant gas.

6. The fuel cell stack according to claim 1 , wherein the respective manifolds are arranged along a perimeter of the fuel cell stack, and when the fuel cell stack is viewed in the stacking direction, the manifolds in any given side of the fuel cell stack are arranged such that every one of the cold gas manifolds is adjacent to any of the hot gas manifolds and such that every one of the hot gas manifolds is non-adjacent to any other one of the hot gas manifolds.

7. A fuel cell module comprising the fuel cell stack according to claim 1 .

Assignments (2)
SPLIT & SUCCESSION Recorded Mar 12, 2020
From: NGK SPARK PLUG CO., LTD.
To: MORIMURA SOFC TECHNOLOGY CO., LTD.
Reel/Frame 052157/0908 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 18, 2016
From: MORIKAWA, TETSUYA; HOTTA, NOBUYUKI
To: NGK SPARK PLUG CO., LTD.
Reel/Frame 038635/0684 →
Priority Claims (1)
JP 2013-256388 · Dec 11, 2013 · national
Continuity (1)
Related Publication 20160293980A1 · Oct 6, 2016