Claims
- 1. A method for producing a hydrogen-rich gas which comprises:
contacting a CO-containing gas with a noble metal-free water gas shift catalyst in the presence of water at a temperature of not more than about 450° C., wherein the water gas shift catalyst comprises: a) Ni and b) at least one of Ge, Cd, In, Sn, Sb, Te, Pb, their oxides and mixtures thereof.
- 2. A method according to claim 1, wherein the water gas shift catalyst further comprises at least one of Cr, Mn, Cu, their oxides and mixtures thereof.
- 3. A method according to claim 1, wherein the Ni is in a unsupported bulk state.
- 4. A method according to claim 1, wherein the CO-containing gas is a syngas.
- 5. A method according to claim 3, wherein the water gas shift catalyst comprises:
a) unsupported bulk Ni and b) at least one of Ge, Cd, Sb, Te, Pb, their oxides and mixtures thereof.
- 6. A method according to claim 3, wherein the water gas shift catalyst comprises:
a) unsupported bulk Ni, b) In, its oxides or mixtures thereof; and c) Cd, its oxides or mixtures thereof.
- 7. A method according to claim 3, wherein the water gas shift catalyst comprises:
a) unsupported bulk Ni, b) Sn, its oxides or mixtures thereof; and c) Te, its oxides or mixtures thereof.
- 8. A method according to claim 3, wherein the water gas shift catalyst comprises:
a) unsupported bulk Ni, b) Sn, its oxides or mixtures thereof; and c) Cd, its oxides or mixtures thereof.
- 9. A method according to claim 3, wherein the water gas shift catalyst comprises:
a) unsupported bulk Ni, b) In, its oxides or mixtures thereof; and c) Sb, its oxides or mixtures thereof.
- 10. A method according to claim 3, wherein the water gas shift catalyst comprises:
a) unsupported bulk Ni, b) Sn, its oxides or mixtures thereof; and c) Sb, its oxides or mixtures thereof.
- 11. A method according to claim 1, wherein the Ni is supported on a carrier.
- 12. A method according to claim 2, wherein the Ni is supported on a carrier.
- 13. A method according to claim 11, wherein the water gas shift catalyst comprises:
a) Ni and b) at least one of In, Sn, Te, their oxides and mixtures thereof.
- 14. A method according to any one of claims 11, 12 or 13 wherein the water gas shift catalyst is supported on a carrier comprising at least one member selected from the group consisting of alumina, zirconia, titania, ceria, magnesia, lanthania, niobia, zeolite, perovskite, silica clay, yttria, cobalt oxide, iron oxide, and mixtures thereof.
- 15. A method according to claim 14, wherein the carrier comprises zirconia.
- 16. A method according to claim 14, wherein the carrier comprises cobalt oxide.
- 17. A method according claim 1, wherein the carbon monoxide containing gas is contacted with the water gas shift catalyst at a pressure of no more than about 50 bar.
- 18. A method according to claim 17, wherein the carbon monoxide containing gas is contacted with the water gas shift catalyst at a pressure of no more than about 1 bar.
- 19. A method according to claim 1, wherein the water gas shift catalyst comprises between about 0.05 wt. % to about 99 wt. %, with respect to the total weight of all catalyst components plus the support material, of Ni present in the water gas shift catalyst.
- 20. A method according to claim 17, wherein the water gas shift catalyst comprises between about 0.50 wt. % to about 99 wt. %, with respect to the total weight of all catalyst components plus the support material, of Ni present in the water gas shift catalyst.
- 21. A noble metal-free catalyst for catalyzing the water gas shift reaction comprising:
a) Ni; and b) at least one of Ge, Cd, In, Sn, Sb, Te, Pb, their oxides and mixtures thereof.
- 22. A catalyst according to claim 21, further comprising at least one of Cr, Mn, their oxides and mixtures thereof.
- 23. A catalyst according to claim 21, wherein the Ni is in a unsupported bulk state.
- 24. A catalyst according to claim 23 comprising:
a) unsupported bulk Ni and b) at least one of Ge, Cd, Sb, Te, Pb, their oxides and mixtures thereof.
- 25. A catalyst according to claim 23 comprising:
a) unsupported bulk Ni, b) In, its oxides or mixtures thereof, and c) Cd, its oxides or mixtures thereof.
- 26. A catalyst according to claim 23, wherein the water gas shift catalyst comprises:
a) unsupported bulk Ni, b) Sn, its oxides or mixtures thereof; and c) Te, its oxides or mixtures thereof.
- 27. A catalyst according to claim 23, wherein the water gas shift catalyst comprises:
a) unsupported bulk Ni, b) Sn, its oxides or mixtures thereof; and c) Cd, its oxides or mixtures thereof.
- 28. A catalyst according to claim 23, wherein the water gas shift catalyst comprises:
a) unsupported bulk Ni, b) In, its oxides or mixtures thereof; and c) Sb, its oxides or mixtures thereof.
- 29. A catalyst according to claim 23, wherein the water gas shift catalyst comprises:
a) unsupported bulk Ni, b) Sn, its oxides or mixtures thereof; and c) Sb, its oxides or mixtures thereof.
- 30. A catalyst according to claim 21, wherein the Ni is supported on a carrier.
- 31. A catalyst according to claim 30 comprising:
a) Ni and b) at least one of In, Sn, Te, their oxides, and mixtures thereof.
- 32. A catalyst as in claim 30 or claim 31, wherein the catalyst composition is supported on a carrier comprising at least one member selected from the group consisting of alumina, zirconia, titania, ceria, magnesia, lanthania, niobia, zeolite, perovskite, silica clay, yttria, iron oxide and mixtures thereof.
- 33. A catalyst according to claim 31, wherein the carrier comprises zirconia.
- 34. A catalyst according to claim 21, wherein the water gas shift catalyst comprises between about 0.05 wt. % to about 99 wt. %, with respect to the total weight of all catalyst components plus the support material, of Ni present in the water gas shift catalyst.
- 35. A catalyst according to claim 33, wherein the water gas shift catalyst comprises between about 0.50 wt. % to about 99 wt. %, with respect to the total weight of all catalyst components plus the support material, of Ni present in the water gas shift catalyst.
- 36. A fuel processing system for generation of a hydrogen-rich gas from a hydrocarbon or substituted hydrocarbon fuel, the fuel processing system comprising:
a fuel reformer for converting a fuel reactant stream comprising a hydrocarbon or a substituted hydrocarbon fuel to a reformed product stream comprising carbon monoxide and water, the fuel reformer having an inlet for receiving the reactant stream, a reaction chamber for converting the reactant stream to the product stream and an outlet for discharging the product stream; a water gas shift reactor for effecting a water gas shift reaction at a temperature of less than about 450° C., the water gas shift reactor comprising an inlet for receiving a water gas shift feed stream comprising carbon monoxide and water from the product stream of the fuel reformer, a reaction chamber comprising the water gas shift catalyst of claim 21, the water gas shift catalyst being effective for generating hydrogen and carbon dioxide from the water gas shift feed stream and an outlet for discharging the resulting hydrogen-rich gas; and a temperature controller adapted for maintaining the temperature of the reaction chamber of the water gas shift reactor at a temperature of less than about 450° C.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] The present application claims benefit from earlier filed U.S. Provisional Application No. 60/434,631, filed Dec. 20, 2002, which is incorporated herein in its entirety by reference for all purposes. The present application also incorporates by reference PCT International patent application Ser. No. ______, entitled “Noble Metal-Free Nickel Catalyst Formulations For Hydrogen Generation” naming as inventors Hagemeyer et al. (Attorney Docket No. 708001001PCT) filed on the same day as the present application.
Provisional Applications (1)
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Number |
Date |
Country |
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60434631 |
Dec 2002 |
US |