Claims
- 1. A catalyst for catalytically converting a C1-C5 hydrocarbon to a product comprising CO and H2, said catalyst comprising:
a refractory fibrous structure comprising a plurality of ceramic oxide fibers; and at least one active catalyst material supported by said fibrous structure, said active catalyst material having catalytic activity for partially oxidizing methane to CO and H2 at conversion promoting conditions.
- 2. The catalyst of claim 1 wherein said fibers are disposed in said structure such that they are able to move relative to one another within said structure, whereby thermomechanical stress is relieved when said structure is exposed to temperatures greater than 1000° C.
- 3. The catalyst of claim 1 further comprising a refractory oxide coating on said fibrous structure disposed between said fibrous structure and said active catalyst material.
- 4. The catalyst of claim 3 wherein said refractory oxide coating comprises MgO.
- 5. The catalyst of claim 1 wherein said ceramic oxide fibers comprise a refractory metal oxide chosen from the group consisting of alumina, silica, boria, cordierite, magnesia, zirconia, and combinations thereof.
- 6. The catalyst of claim 1 wherein at least some of said ceramic oxide fibers comprise a ceramic oxide chosen from the group consisting of Al2O3, B2O3, SiO2, and combinations thereof.
- 7. The catalyst of claim 1 wherein said active catalyst material is chosen from the group consisting of Rh, Ni, Cr and combinations thereof.
- 8. The catalyst of claim 1 wherein said fibrous structure is a textile.
- 9. The catalyst of claim 1 wherein at least some of said fibers are woven together 2-dimensionally.
- 10. The catalyst of claim 1 wherein at least some of said fibers are woven together 3-dimensionally.
- 11. The catalyst of claim 1 wherein at least some of said fibers each have a diameter of 10-12 microns.
- 12. The catalyst of claim 1 wherein at least some of said fibers are polycrystalline metal oxide fibers.
- 13. The catalyst of claim 1 wherein said structure comprises a stack of at least two said fibrous pieces.
- 14. A ceramic composite catalyst for catalytically converting a C1-C5 hydrocarbon to a product comprising CO and H2, said catalyst comprising a refractory fibrous structure containing a plurality of fibers, said fibers containing a mixture of at least one active catalyst material and at least one ceramic oxide, and said active catalyst material having catalytic activity for partially oxidizing methane to CO and H2 at conversion promoting conditions.
- 15. A method of making a thermomechanical stress resistant catalyst for the production of synthesis gas comprising:
forming at least one fabric piece comprising a plurality of ceramic oxide fibers containing at least one refractory oxide chosen from the group consisting of alumina, silica, boria, cordierite, magnesia and zirconia; optionally, coating said at least one fabric piece with MgO; optionally drying and calcining each said MgO coated piece; applying a metal coating on each said piece, said metal chosen from the group consisting of rhodium, nickel, chromium and combinations thereof; and optionally, reducing said metal coating.
- 16. The method of claim 15 wherein said step of applying a metal coating on each said piece comprises applying a catalyst precursor coating to each said piece, optionally drying each said precursor coated piece, calcining each said precursor coated piece, and, optionally, reducing each said calcined piece.
- 17. A method of making a thermomechanical stress-resistant catalyst for the production of synthesis gas comprising:
combining at least one refractory oxide chosen from the group consisting of alumina, silica, boria, cordierite, magnesia and zirconia with at least one salt of an active catalyst metal chosen from the group consisting of Rh, Ni and Cr; forming said combination into a plurality of ceramic oxide fibers; forming said fibers into at least one fibrous piece; heating each said piece in a reducing atmosphere.
- 18. The method of claim 17 wherein said step of forming said fibers into at least one fibrous piece comprises weaving together two-dimensionally at least some of said fibers.
- 19. The method of claim 17 wherein said step of forming said fibers into at least one fibrous piece comprises weaving together three-dimensionally at least some of said fibers.
- 20. The method of claim 17 wherein said step of forming said fibers into at least one fibrous piece comprises braiding together at least some of said fibers.
- 21. A method of making a thermomechanically stress resistant ceramic composite catalyst for the production of synthesis gas comprising:
forming a fibrous support having a predetermined 3-dimensional structure and comprising a plurality of metal oxide fibers having an organic coating and containing at least one metal oxide chosen from the group consisting of alumina, silica, boria, cordierite, magnesia and zirconia; infiltrating said support with an active catalyst precursor comprising at least one salt of a metal chosen from the group consisting of Rh, Ni and Cr, and combinations thereof; heating and/or calcining said catalyst-infiltrated support.
- 22. The method of claim 21 wherein said heating and/or calcining comprises heating at a temperature of 100-1000° C.
- 23. A method of making a thermomechanically stress resistant ceramic composite catalyst for the production of synthesis gas comprising:
forming at least one fibrous support having a predetermined 3-dimensional structure and comprising a plurality of metal oxide fibers having an organic coating and containing at least one metal oxide chosen from the group consisting of alumina, silica, boria, cordierite, magnesia and zirconia; optionally, heating and/or calcining said at least one fibrous support; infiltrating each said support with an active catalyst precursor comprising at least one salt of a metal chosen from the group consisting of Rh, Ni and Cr, and combinations thereof; and heating and/or calcining each said catalyst-infiltrated support.
- 24. The method of claim 23 wherein said step of forming at least one fibrous support comprises two-dimensionally weaving or braiding together at least a portion of said metal oxide fibers.
- 25. The method of claim 23 wherein said step of forming at least one fibrous support comprises three-dimensionally weaving or braiding together at least a portion of said metal oxide fibers.
- 26. A method of converting a C1-C5 hydrocarbon to synthesis gas, the method comprising:
in a short contact time reactor, contacting a reactant gas mixture comprising said hydrocarbon and a source of oxygen with a catalytically effective amount of a refractory fibrous structure comprising a plurality of ceramic oxide fibers, and at least one active catalyst material supported by said fibrous structure, said active catalyst material having catalytic activity for partially oxidizing methane to CO and H2 at conversion promoting conditions, said fibers disposed in said structure such that they are able to move relative to one another within said structure, whereby thermomechanical stress is relieved when said structure is exposed to temperatures greater than 1000° C., said refractory fibrous structure having sufficiently porous structure to allow reactant and product gases to flow through said composite catalyst at a space velocity of at least 20,000 normal liters of gas per kilogram of catalyst per hour (NL/kg/h) when said catalyst bed is used in a syngas production reactor; maintaining said refractory fibrous structure and said reactant gas mixture at conversion promoting conditions of temperature and pressure during said contacting whereby a net partial oxidation reaction is catalyzed by said refractory fibrous structure.
- 27. A method of converting a C1-C5 hydrocarbon to synthesis gas, the method comprising:
in a short contact time reactor, contacting a reactant gas mixture comprising said hydrocarbon and a source of oxygen with a catalytically effective amount of a ceramic composite catalyst comprising: a refractory fibrous structure containing a plurality of ceramic oxide fibers; and at least one active catalyst material supported by said fibrous structure, said active catalyst material having catalytic activity for partially oxidizing methane to CO and H2 at conversion promoting conditions, said composite catalyst having sufficiently porous structure to allow reactant and product gases to flow through said composite catalyst at a space velocity of at least 20,000 normal liters of gas per kilogram of catalyst per hour (NL/kg/h) when said catalyst bed is used in a syngas production reactor; maintaining said composite catalyst and said reactant gas mixture at conversion promoting conditions of temperature and pressure during said contacting whereby a net partial oxidation reaction is catalyzed by said composite catalyst.
- 28. The method of claim 27 further comprising:
combining at least one refractory oxide chosen from the group consisting of alumina, silica, boria, cordierite, magnesia and zirconia with at least one salt of an active catalyst metal chosen from the group consisting of Rh, Ni and Cr; forming said combination into a plurality of metal oxide fibers; forming said fibers into at least one fibrous piece; heating each said piece in a reducing atmosphere, whereby said ceramic composite catalyst is produced.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the benefit under 35 U.S.C. § 119(e) of U.S. Provisional Patent Application No. 60/177,432 filed Jan. 21, 2000.
Provisional Applications (1)
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Number |
Date |
Country |
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60177432 |
Jan 2000 |
US |