IP Library Granted Patent US 10,079,393
Granted Patent B1
US 10,079,393 · App. 14/592,338 · Granted Sep 18, 2018

Method of fabricating an interconnect for a fuel cell stack

Inventors: Avinash Verma (Cupertino, CA); Ravi Oswal (Fremont, CA); Brandon Dawson (Sunnyvale, CA); Brian Bollinger (Winfield, IL); Harald Herchen (Los Altos, CA); Tad Armstrong (Burlingame, CA)
Assignee: BLOOM ENERGY CORPORATION
H01M8/0245B05D3/0254B22F3/12B22F3/24B22F3/26B22F5/00B22F7/008B22F7/02B22F7/04H01M8/0202B22F2003/248B22F2007/045
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Quick Facts
Patent No.
US 10,079,393
App. No.
14/592,338
Granted
Sep 18, 2018
Kind
B1
Abstract

Methods for fabricating an interconnect for a fuel cell stack that include providing a protective layer over at least one surface of an interconnect formed by powder pressing pre-alloyed particles containing two or more metal elements and annealing the interconnect and the protective layer at elevated temperature to bond the protective layer to the at least one surface of the interconnect.

Claims (13)

1. A method of fabricating an interconnect for a fuel cell stack, comprising:

providing pre-alloyed particles containing two or more metal elements and having at least one of a mean and a median size dimension that is between 5 and 30 μm;

agglomerating the pre-alloyed particles into clusters having at least one of a mean and a median size dimension that is between 110 and 160 μm;

powder pressing the clusters to form a pressed powder interconnect;

providing a protective layer over at least one surface of the pressed powder interconnect;

incorporating the interconnect into a fuel cell stack; and

annealing the pressed powder interconnect and the protective layer at elevated temperature in the fuel cell stack to bond the protective layer to the at least one surface of the interconnect,

wherein the protective layer is provided over the at least one surface of the pressed powder interconnect without first sintering the pressed powder interconnect.

2. The method of claim 1 , further comprising:

annealing the interconnect in the fuel cell stack at elevated temperature in an oxygen containing environment to reduce a porosity of the interconnect.

3. The method of claim 1 , wherein the protective layer is provided over the at least one surface of the interconnect without first performing a controlled pre-oxidation of the interconnect or removing surface oxides from the at least one surface of the interconnect.

4. The method of claim 1 , wherein the pre-alloyed particles comprise chromium and iron.

5. The method of claim 1 , wherein providing the protective layer comprises providing a protective material layer comprising both manganese cobalt oxide (MCO) and a perovskite material.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 23, 2018
From: VERMA, AVINASH; OSWAL, RAVI; DAWSON, BRANDON; BOLLINGER, BRIAN; HERCHEN, HARALD; ARMSTRONG, TAD
To: BLOOM ENERGY CORPORATION
Reel/Frame 046685/0295 →
Continuity (1)
Provisional Application 61925383 · Jan 9, 2014
Cited By (1)
US 12,580,205