- Patent Number:
9,376,741
- Appl. No:
13/873270
- Application Filed:
April 30, 2013
- نبذة مختصرة :
An article of manufacture comprises a ferritic stainless steel that includes a near-surface region depleted of silicon relative to a remainder of the ferritic stainless steel. The article has a reduced tendency to form an electrically resistive silica layer including silicon derived from the steel when the article is subjected to high temperature oxidizing conditions. The ferritic stainless steel is selected from the group comprising AISI Type 430 stainless steel, AISI Type 439 stainless steel, AISI Type 441 stainless steel, AISI Type 444 stainless steel, and E-BRITE® alloy, also known as UNS 44627 stainless steel. In certain embodiments, the article of manufacture is a fuel cell interconnect for a solid oxide fuel cell.
- Inventors:
ATI Properties, Inc (Albany, OR, US)
- Assignees:
ATI PROPERTIES, INC. (Albany, OR, US)
- Claim:
1. A fuel cell interconnect comprising a ferritic stainless steel including a near-surface region selectively depleted of silicon relative to a remainder of the ferritic stainless steel; wherein the ferritic stainless steel comprises, in percent by weight of total alloy weight: 15 to 30 chromium, up to 6 molybdenum, up to 2 manganese, up to 1 nickel, up to 1 silicon, up to 1 aluminum, up to 0.1 carbon, up to 0.1 nitrogen, up to 1 titanium, up to 1 niobium, up to 1 zirconium, up to 1 vanadium, iron, and incidental impurities; and wherein alloying elements other than silicon are not depleted from the near-surface region of the ferritic stainless steel relative to the remainder of the ferritic stainless steel.
- Claim:
2. The fuel cell interconnect of claim 1 , wherein the fuel cell interconnect has a reduced tendency to form an electrically resistive silica layer including silicon derived from the steel when the article is subjected to high temperature oxidizing conditions.
- Claim:
3. The fuel cell interconnect of claim 1 , wherein the ferritic stainless steel is selected from the group comprising AISI Type 430 stainless steel, AISI Type 439 stainless steel, AISI Type 441 stainless steel, AISI Type 444 stainless steel, and UNS 44627 stainless steel alloy.
- Claim:
4. The fuel cell interconnect of claim 1 , further comprising a surface oxide layer consisting essentially of silicon oxide.
- Claim:
5. The fuel cell interconnect of claim 1 , wherein a concentration of chromium in the near surface region is substantially the same as a concentration of chromium in the remainder of the ferritic stainless steel.
- Claim:
6. The fuel cell interconnect of claim 1 , wherein a concentration of manganese in the near surface region is substantially the same as a concentration of manganese in the remainder of the ferritic stainless steel.
- Claim:
7. The fuel cell interconnect of claim 1 , wherein, with the exception of silicon, the near surface region comprises concentrations of alloying elements substantially the same as in the remainder of the ferritic stainless steel.
- Claim:
8. The fuel cell interconnect of claim 1 or claim 4 , wherein the ferritic stainless steel exhibits an area specific resistivity at a temperature in a range of 700° F. to 800° F. that is less than an area specific resistivity of the same ferritic stainless steel in a range of 700° F. to 800° F. comprising a near-surface region that is not depleted of silicon.
- Claim:
9. A fuel cell interconnect for a solid oxide fuel cell, the interconnect comprising a ferritic stainless steel including a near-surface region selectively depleted of silicon relative to a remainder of the ferritic stainless steel, wherein: the ferritic stainless steel comprises, in percent by weight based on total alloy weight, 15 to 30 chromium, up to 6 molybdenum, up to 2 manganese, up to 1 nickel, up to 1 silicon, up to 1 aluminum, up to 0.1 carbon, up to 0.1 nitrogen, up to 1 titanium, up to 1 niobium, up to 1 zirconium, up to 1 vanadium, iron, and incidental impurities; the near surface region comprises a concentration of chromium that is substantially the same as the remainder of ferritic stainless steel; alloying elements other than silicon are not depleted from the near-surface region of the ferritic stainless steel relative to the remainder of the ferritic stainless steel; and the fuel cell interconnect has a reduced tendency to form an electrically resistive silica layer including silicon derived from the steel when the article is subjected to a temperature within a normal operating temperature of a solid oxide fuel cell.
- Claim:
10. The fuel cell interconnect of claim 9 , wherein the ferritic stainless steel is selected from the group comprising AISI Type 430 stainless steel, AISI Type 439 stainless steel, AISI Type 441 stainless steel, AISI Type 444 stainless steel, and UNS 44627 stainless steel alloy.
- Claim:
11. The fuel cell interconnect of claim 9 , wherein a concentration of chromium in the near surface region is substantially the same as a concentration of chromium in the remainder of the ferritic stainless steel.
- Claim:
12. The fuel cell interconnect of claim 9 , wherein a concentration of manganese in the near surface region is substantially the same as a concentration of manganese in the remainder of the ferritic stainless steel.
- Claim:
13. The fuel cell interconnect of claim 9 , wherein, with the exception of silicon, the near surface region comprises concentrations of alloying elements substantially the same as in the remainder of the ferritic stainless steel.
- Claim:
14. The fuel cell interconnect of claim 9 , wherein the ferritic stainless steel exhibits an area specific resistivity at a temperature in a range of 700° F. to 800° F. that is less than an area specific resistivity of the same ferritic stainless steel in a range of 700° F. to 800° F. comprising a near-surface region that is not depleted of silicon.
- Patent References Cited:
3650848 March 1972 Schneider et al.
5830291 November 1998 McGuire et al.
5944917 August 1999 Takeda
6290790 September 2001 Wind et al.
2005/0045250 March 2005 Rakowski
2008/0236710 October 2008 Rakowski
1630243 March 2006
62-156254 July 1987
1-168811 July 1989
2000-265248 September 2000
2004-232074 August 2004
WO 2005/073423 August 2005
WO 2006/138070 December 2006
- Other References:
E-BRITE® Stainless Steel: Superferritic (UNS 44627, ASTM Type XM-27), ATI Technical Data Sheet, Version 1, Sep. 28, 2012, 7 pages. cited by applicant
“IV.A.1 Evaluation of a Functional Interconnect System for SOFCs”, Office of Fossil Energy Fuel Cell Program, FY 2007 Annual Report, pp. 43-46. cited by applicant
Alman, D.E. et al. “Effect of minor elements and a Ce surface treatment on the oxidation behavior of an Fe-22Cr-0.5Mn (Crofer 22 APU) ferritic stainless steel”, International Journal of Hydrogen Energy 32 (2007), Elsevier Ltd., pp. 3743-3753. cited by applicant
Hammer et al., “The Oxidation of Ferritic Stainless Steels in Simulated Solid-Oxide Fuel-Cell Atmospheres”, Oxidation of Metals, vol. 67, Nos. 1/2, Feb. 2007, pp. 1-38. cited by applicant
Chen et al., “Protective Coating on Stainless Steel Interconnect for SOFCs: Oxidation Kinetics and Electrical Properties”, Solid State Ionics, 176 (2005), Elsevier, pp. 425-433. cited by applicant
“III.A.2 Metal Interconnect for SOFC Power Systems”, Office of Fossil Energy Fuel Cell Program, FY 2004 Annual Report, pp. 44-46. cited by applicant
Simner et al., “Long-Term SOFC Stability with Coated Ferritic Stainless Steel Interconnect”, Ceramic Engineering and Science Proceedings, vol. 26, No. 4, 2005, pp. 83-90. cited by applicant
“III.A.1 Evaluation of a Functional Interconnect System for SOFCs”, 2006 Office of Fossil Energy Fuel Cell Program Annual Report, Sep. 2006, pp. 33-38. cited by applicant
U.S. Appl. No. 13/873,272, filed Apr. 30, 2013. cited by applicant
E-BRITE® Superferritic UNS S44627 accessed Aug. 24, 2015 at http://www.atimetals.com/products/pages/e-brite.aspx, 3 pages. cited by applicant
- Primary Examiner:
Zheng, Lois
- Attorney, Agent or Firm:
K&L Gates LLP
- الرقم المعرف:
edspgr.09376741
No Comments.