Claims
- 1. A method of making metal or metal alloy plates comprising the steps of:
obtaining a powder of a predefined composition,
adding solvents, dispersants, a plasticizer and an organic binder to said powder to form a slip; forming said slip into a layer on a substrate; removing said layer from the substrate and burning out said binder; and sintering said layer in a reducing atmosphere at a set temperature for a predefined duration.
- 2. A method of making metal or metal alloy plates as recited in claim 1 wherein said substrate is a selected one of a flat substrate or a textured substrate.
- 3. A method of making metal or metal alloy plates as recited in claim 2 wherein said textured substrate is used to produce a structured layer.
- 4. A method of making metal or metal alloy plates as recited in claim 1 includes the steps of forming an additional layer directly on said layer and forming a plurality of additional layers directly on previous layers.
- 5. A method of making metal or metal alloy plates as recited in claim 1 includes the steps of stacking a plurality of separately formed green layers in a defined order.
- 6. A method of making metal or metal alloy plates as recited in claim 5 wherein each said plurality of separately formed green layers has a predefined composition to provide surface layers and interior bulk layers of different properties.
- 7. A method of making metal or metal alloy plates as recited in claim 4 further includes the steps of warm pressing the stack of multiple layers between dies, said dies arranged to provide a predefined shape, and heating to a plastic deformation range of a selected binder, heating and pressing to produce cross-linking with the binder to lock a desired shape.
- 8. A method of making metal or metal alloy plates as recited in claim 5 further includes the steps of warm pressing the stack of multiple layers between dies, said dies arranged to provide a predefined shape, and heating to a plastic deformation range of a selected binder, heating and pressing to produce cross-linking with the binders of the stack of multiple layers to lock a desired shape.
- 9. A method of making metal or metal alloy plates as recited in claim 1 includes the steps of impregnating a mesh or a foam with said slip, burning out said mesh or foam to produce a metallic foam; and sintered said metallic foam in a reducing atmosphere at a set temperature for a predefined duration.
- 10. A method of making metal or metal alloy plates as recited in claim 9 includes the step of placing said sintered metallic foam on one of a separately formed green layer, a stack of multiple separately formed green layers, or a separately formed laminated green layers to produce a stack in a desired order; and sintering said stack.
- 11. A method of making metal or metal alloy plates as recited in claim 1 includes the step of forming a stack of multiple separately formed layers in a desired order to produce a metallic, functionally graded bipolar plate for solid oxide fuel cell applications; said metallic, functionally graded bipolar plate being corrosion resistant to both fuel and air environments at set high temperatures and having high electrical conductivity.
- 12. A method of making metal or metal alloy plates as recited in claim 11 wherein the step of obtaining a powder of said predefined composition includes the step of obtaining a powder of a composition of selected materials of metals, oxides, borides, carbides, carbonitrides, silicides, sulfides, nitrides, and intermetallics.
- 13. A method of making metal or metal alloy plates as recited in claim 1 wherein the step of forming said stack of multiple separately formed layers in a desired order to produce a metallic, functionally graded bipolar plate for solid oxide fuel cell applications includes the steps of forming surface layers of said plate of an alloy composition including 25 wt % chromium, 1 wt % lanthanum, 0.63 wt % yttrium, 0.31 wt % strontium, and balance wt % iron and forming interior bulk layers of ferritic stainless steel; said ferritic stainless steel including type 434 stainless steel.
- 14. A metallic plate comprising:
a stack of a plurality of compositionally graded layers; said stack including first and second surface layers and interior bulk layers; each of said plurality of compositionally graded layers having a predefined composition, each said predefined composition including a metal or a metal alloy.
- 15. A metallic plate as recited in claim 14 wherein said first and second surface layers have an alloy composition including 25 wt % chromium, 1 wt % lanthanum, 0.63 wt % yttrium, 0.31 wt % strontium, and balance wt % iron.
- 16. A metallic plate as recited in claim 15 wherein said interior bulk layers are ferritic stainless steel; said ferritic stainless steel including type 434 stainless steel.
- 17. A metallic plate as recited in claim 16 wherein the stack of a plurality of compositionally graded layers forms a metallic, functionally graded bipolar plate for solid oxide fuel cell applications; said metallic, functionally graded bipolar plate being corrosion resistant to both fuel and air environments at set high temperatures and having high electrical conductivity.
RELATED APPLICATIONS
[0001] A related U.S. patent application Ser. No. ______, by John David Carter, Joong-Myeon Bae, Terry A. Cruse, James Michael Ralph, Romesh Kumar, and Michael Krumpelt and assigned to the present assignee is being filed on the same day as the present patent application entitled “SOLID OXIDE FUEL CELL WITH ENHANCED MECHANICAL AND ELECTRICAL PROPERTIES”.
CONTRACTUAL ORIGIN OF THE INVENTION
[0002] The United States Government has rights in this invention pursuant to Contract No. W-31-109-ENG-38 between the United States Government and Argonne National Laboratory.