Duplex coating for SOFC interconnect
US-9634335-B2 · Apr 25, 2017 · US
US11417894B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-11417894-B2 |
| Application number | US-201816110310-A |
| Country | US |
| Kind code | B2 |
| Filing date | Aug 23, 2018 |
| Priority date | Jan 9, 2014 |
| Publication date | Aug 16, 2022 |
| Grant date | Aug 16, 2022 |
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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.
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What is claimed is: 1. A method of fabricating an interconnect for a fuel cell stack, comprising: incorporating an interconnect comprising chromium and formed by powder metallurgy into a fuel cell stack; and annealing the interconnect in the fuel cell stack at elevated temperature in an oxygen containing environment to oxidize both surfaces and an interior volume of the interconnect to reduce a porosity of the interconnect by forming chromium oxide within the pores of the interconnect to cause the pores to fill with the chromium oxide, and to flow and set seals in the fuel cell stack during the annealing. 2. A method of fabricating an interconnect for a fuel cell stack, comprising: providing a powder mixture comprising chromium, manganese and cobalt in a die cavity of a powder press apparatus; compressing the powder mixture in the powder press apparatus to form a pressed powder interconnect; and oxidizing the pressed powder interconnect in an oxygen-containing environment at an elevated temperature to oxidize the manganese and cobalt and form a metal oxide protective layer comprising manganese cobalt oxide over at least one surface of the pressed powder interconnect. 3. The method of claim 2 , wherein the powder mixture further comprises iron. 4. The method of claim 2 , wherein the powder mixture comprises 0-1 wt % iron, and a wt % of cobalt in the powder mixture is selected to provide an interconnect having a coefficient of thermal expansion (CTE) that is within about 1% of the CTE of a solid oxide fuel cell electrolyte. 5. The method of claim 2 , wherein the powder mixture comprises pre-alloyed particles containing chromium, manganese and cobalt. 6. The method of claim 2 , wherein the powder mixture comprises pre-alloyed particles containing chromium, iron, manganese and cobalt. 7. The method of claim 2 , wherein the powder mixture comprises elemental chromium particles and pre-alloyed particles containing manganese and cobalt. 8. The method of claim 2 , wherein the powder mixture comprises a first set of pre-alloyed particles containing chromium and iron and a second set of pre-alloyed particles containing manganese and cobalt. 9. The method of claim 2 , wherein the powder mixture comprises chromium, manganese and cobalt elemental particles; and wherein the powder mixture further comprises iron elemental particles. 10. The method of claim 2 , wherein the powder mixture has a variable composition within the die cavity such that the compressed powder interconnect is formed having a relatively higher concentration of manganese and cobalt proximate to the at least one outer surface of the interconnect than within an interior portion of the interconnect.
Nickel- or cobalt-based alloys · CPC title
Light metal alloys · CPC title
Using a mixture of pre-alloyed powders or a master alloy · CPC title
of composite layers {(B22F7/002 takes precedence)} · CPC title
of flat products, e.g. sheets (B22F3/1103 takes precedence; by using pressure rollers only see B22F3/18) · CPC title
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