Claims
- 1. A chromium-based composition active for catalyzing the conversion of a C1-C5 hydrocarbon under catalytic partial oxidation promoting conditions in the presence of O2 to a product gas mixture comprising CO and H2, the composition comprising:
about 0.1-100 mole % of chromium or chromium-containing compound per total moles of metal or metal ion in said composition; and at least one other elemental metal or metal-containing compound, the metal of which is chosen from the group consisting of Li, Na, K, Rb, Cs, Mg, Ca, Sr, Ba, Cu, Ag, Au, Zn, Cd, La, Ce, Pr, Nd, Sm, Eu, Gd, Tb, Dy, Ho, Er, Tm, Yb, Lu, Co, Ni, Ru and Rh, said composition comprising a structure other than a perovskite structure.
- 2. The composition of claim 1 wherein said chromium or chromium-containing compound comprises about 10-100 mole % of the total moles of metal or metal ion in said composition.
- 3. The composition of claim 1 wherein said composition initially comprises a catalyst precursor comprising a metal/metal oxide, and after operation in a short contact time syngas reactor for the production of syngas, finally comprises a reduced metal and a metal oxide.
- 4. The composition of claim 3 wherein said catalyst precursor comprises CoCr2O4 and said reduced metal is zero valent cobalt metal and said metal oxide is Cr2O3.
- 5. The composition of claim 4 wherein said composition finally comprises reduced metal and/or metal oxide and substantially no deposited carbon after reaction in a syngas reactor for at least 6 hrs.
- 6. The composition of claim 1 wherein said composition comprises a matrix structure chosen from the group consisting of xerogels and aerogels.
- 7. The composition of claim 6 wherein said matrix structure comprises said at least one oxide or oxyhydroxide of a metal chosen from the group consisting of magnesium, silicon, titanium, tantalum, zirconium and aluminum.
- 8. The composition of claim 1 wherein said matrix structure comprises at least 30 wt % of the total weight of said composition.
- 9. The composition of claim 1 wherein said matrix structure comprises about 30-99.9 mole % of the total moles (of metal) of said composition.
- 10. The composition of claim 1 wherein said matrix structure comprises about 50-97.5 mole % of the total moles (of metal) of said composition.
- 11. The composition of claim 1 wherein said matrix structure comprises titanium oxide/oxyhydroxide.
- 12. The composition of claim 1 wherein said matrix structure comprises magnesium oxide/oxyhydroxide and silicon oxide/oxyhydroxide.
- 13. The composition of claim 1 wherein the metal or metal ion of said at least one other elemental metal or metal-containing compound is cobalt.
- 14. The composition of claim 1 wherein the metal or metal ion of said at least one other elemental metal or metal-containing compound is lanthanum.
- 15. The composition of claim 1 wherein the metal or metal-containing compound of said at least one other elemental metal or metal-containing compound is magnesium and silicon oxide/oxyhydroxide.
- 16. The composition of claim 1 wherein the metal or metal-containing compound of said at least one other elemental metal or metal-containing compound is cerium.
- 17. The composition of claim 1 wherein the metal or metal-containing compound of said at least one other elemental metal or metal-containing compound is samarium.
- 18. The composition of claim 1 wherein the metal or metal-containing compound of said at least one other elemental metal or metal-containing compound is gold and aluminum oxide/oxyhydroxide.
- 19. The composition of claim 1 wherein the metal or metal-containing compound of said at least one other elemental metal or metal-containing compound is gold, and magnesium oxide/oxyhydroxide.
- 20. The composition of claim 1 wherein the metal or metal-containing compound of said at least one other elemental metal or metal-containing compound is chosen from the group consisting of lanthanum, lithium and α-Al2O3.
- 21. A supported syngas catalyst comprising the composition of claim 1 disposed on an oxidatively and thermally stable porous support.
- 22. The supported syngas catalyst of claim 21 wherein said porous support comprises at least one oxide or oxyhydroxide of a metal chosen from the group consisting of magnesium, silicon, titanium, tantalum, zirconium and aluminum.
- 23. The composition of claim 22 wherein said support is a porous three-dimensional monolith.
- 24. The composition of claim 23 wherein said support is a reticulated ceramic or ceramic foam.
- 25. The composition of claim 1 comprising nickel and/or nickel oxide in an atomic ratio of 0.01-0.2; and chromium and/or chromium oxide in an atomic ratio of 0.8-0.99.
- 26. The composition of claim 1 comprising the general formula: A0.1Cr0.7Ni0.2, wherein A is a rare earth element chosen from the group consisting of Y, La and Ce.
- 27. The composition of claim 1 comprising the general formula: Ax Cry Oxide wherein
A is a rare earth element chosen from the group consisting of La, Sm and Ce; x is an atomic ratio of 0.9-0.1; y is an atomic ratio of 0.1-0.9; and x+y=1.
- 28. The composition of claim 1 comprising the general formula: A0.2Cr0.8Co0.1 Oxide wherein A is a rare earth element.
- 29. The composition of claim 1 comprising the general formula: A0.2Cr0.8 Oxide wherein A is a transition metal chosen from the group consisting of V, Cr, Mn, Fe, Co, Ni, Cu and Zn.
- 30. A process for preparing a chromium-based composition active for catalyzing the conversion of a C1-C5 hydrocarbon in the presence of O2 to a product gas mixture comprising CO and H2, the process comprising combining
about 0.1-100 mole % elemental chromium or chromium-containing compound per total moles of metal in said composition, optionally, at least one other metal or metal oxide the metal component of which is chosen from the group consisting of Li, Na, K, Rb, Cs, Mg, Ca, Sr, Ba, Cu, Ag, Au, Zn, Cd, La, Ce, Pr, Nd, Sm, Eu, Gd, Tb, Dy, Ho, Er, Tm, Yb, Lu, Co, Ni, Ru and Rh, and optionally, at least one matrix-forming material chosen from the group consisting of the alkoxides of magnesium, silicon, titanium, tantalum, zirconium and aluminum; and forming said combination into a porous solid.
- 31. The process of claim 30 wherein said combining step includes combining a matrix-forming material comprising at least 30 wt % of the total weight of said composition with said chromium compound and said at least one other metal compound.
- 32. The process of claim 30 wherein said matrix-forming material comprises titanium or titanium oxide.
- 33. The process of claim 30 wherein said matrix-forming material comprises a combination of oxides or alkoxides of magnesium and silicon.
- 34. The process of claim 30 further comprising:
preparing an intermediate composition comprising said chromium or chromium-containing compound and said at least one other metal or metal-containing compound; and applying said intermediate composition to a porous matrix material comprising at least 30 wt % of the total weight of said composition.
- 35. The process of claim 34 wherein said step of applying comprises applying said intermediate composition to a porous monolith support.
- 36. The process of claim 35 wherein said intermediate composition is in the form of a liquid and said step of applying said intermediate composition to said porous matrix material comprises impregnating said porous matrix with said liquid.
- 37. The process of claim 30 wherein said forming comprises drying said composition.
- 38. The process of claim 37 further comprising thermally treating said composition.
- 39. The process of claim 38 wherein said step of thermally treating comprises thermally treating said composition in situ under reaction conditions.
- 40. The process of claim 37 wherein said step of forming comprises freeze-drying said intermediate composition.
- 41. The process of claim 37 wherein said step of forming comprises spray drying said intermediate composition.
- 42. The process of claim 37 wherein said step of forming comprises spray roasting said intermediate composition.
- 43. The process of claim 30 wherein said step of forming comprises forming a powder.
- 44. The process of claim 43 wherein said step of forming further comprises forming a pellet.
- 45. The process of claim 30 wherein said step of forming comprises forming an extrudate.
- 46. The process of claim 30 wherein said step of forming comprises forming a gel chosen from the group consisting of xerogels and aerogels.
- 47. The process of claim 30 wherein said matrix-forming material comprises at least one metal alkoxide.
- 48. The process of claim 47 wherein each said at least one metal alkoxide is chosen from the group consisting of metal alkoxides containing 1 to 20 carbon atoms.
- 49. The process of claim 48 wherein each said at least one metal alkoxide is chosen from the group consisting of metal alkoxides containing 1 to 5 carbon atoms.
- 50. The process of claim 49 wherein each said at least one metal alkoxide is a C1-C4 alkoxide chosen from the group consisting of tantalum n-butoxide, titanium isopropoxide and zirconium isopropoxide.
- 51. The process of claim 50 further comprising dissolving at least one said metal alkoxide in a non-aqueous medium to form an metal alkoxide solution.
- 52. The process of claim 51 further comprising mixing said metal alkoxide solution with a protic solvent whereby said at least one alkoxide reacts with said protic solvent to form a gel.
- 53. The process of claim 52 further comprising dissolving said chromium or chromium-containing compound in said protic solvent to form a protic catalytic metal solution.
- 54. The process of claim 53 wherein said protic solvent is water.
- 55. The process of claim 47 further comprising dissolving or suspending said matrix material in said non-aqueous liquid medium to form a non-aqueous matrix solution or colloidal suspension.
- 56. The process of claim 47 further comprising dissolving said at least one other elemental metal or metal-containing compound and said at least one matrix-forming component in a non-aqueous medium.
- 57. The process of claim 52 wherein said mixing comprises combining said protic solvent and said alkoxide in a molar ratio of about 5:1 to 53.1.
- 58. The process of claim 57 wherein said mixing comprises combining said protic solvent and said alkoxide in a molar ratio of at least about 26.5:1.
- 59. The process of claim 52 wherein said mixing comprises the gradual addition of sufficient protic solution to induce hydrolysis and condensation of said at least one metal alkoxide.
- 60. The process of claim 59 wherein said mixing comprises combining said water and said alkoxide in a molar ratio of about 0.1:1 to 10:1 water:alkoxide.
- 61. The process of claim 60 wherein said alkoxide is chosen from the group consisting of alkoxides of zirconium and titanium, and said mixing comprises combining said water and said alkoxide in a molar ratio of about 4:1.
- 62. A process for converting a C1-C5 hydrocarbon in the presence of O2 to a product gas mixture containing CO and H2, the process comprising
mixing a C1-C5 hydrocarbon-containing feedstock and an O2-containing feedstock to provide a reactant gas mixture; in the reaction zone of a short contact time reactor, contacting said reactant gas mixture with a catalytically effective amount of the catalyst composition of claim 1; during said contacting, maintaining catalytic partial oxidation reaction promoting conditions of temperature, pressure, space velocity and feed composition.
- 63. The process of claim 62 wherein said step of maintaining catalytic partial oxidation reaction promoting conditions comprises maintaining said reaction zone at a temperature of about 600-1,100° C.
- 64. The process of claim 63 wherein said step of maintaining catalytic partial oxidation reaction promoting conditions comprises maintaining said reaction zone at a temperature of about 700-1,000° C.
- 65. The process of claim 62 wherein said step of maintaining catalytic partial oxidation reaction promoting conditions comprises maintaining said reactant gas mixture at a pressure of about 100-12,500 kPa.
- 66. The process of claim 65 wherein said step of maintaining catalytic partial oxidation reaction promoting conditions comprises maintaining said reactant gas mixture at a pressure of about 130-10,000 kPa.
- 67. The process of claim 62 wherein said step of maintaining catalytic partial oxidation reaction promoting conditions comprises passing said reactant gas mixture over said composition at a continuous space velocity of about 20,000 to at least about 100,000,000 NL/kg/h.
- 68. The process of claim 67 wherein said step of passing said reactant gas mixture over said composition comprises passing said mixture at a space velocity of about 50,000 to about 50,000,000 NL/kg/h.
- 69. The process of claim 62 wherein said step of maintaining catalytic partial oxidation reaction promoting conditions comprises ensuring a reactant gas mixture/catalyst composition contact time of no more than about 10 milliseconds.
- 70. The process of claim 62 wherein said step of maintaining catalytic partial oxidation reaction promoting conditions further comprising mixing a methane-containing gas feedstock and an oxygen-containing gas feedstock to provide a reactant gas mixture having a carbon:oxygen ratio of about 1.25:1 to about 3.3:1.
- 71. The process of claim 70 wherein said mixing provides a reactant gas mixture having a carbon:oxygen ratio of about 1.3:1 to about 2.2:1.
- 72. The process of claim 71 wherein said mixing provides a reactant gas mixture having a carbon:oxygen ratio of about 1.5:1 to about 2.2:1.
- 73. The process of claim 72 wherein said mixing provides a reactant gas mixture having a carbon:oxygen ratio of about 2:1.
- 74. The process of claim 62 wherein said O2-containing gas further comprises steam and/or CO2.
- 75. The process of claim 62 further comprising mixing a hydrocarbon feedstock with an O2-containing gas comprising steam and/or CO2 to provide said reactant gas mixture.
- 76. The process of claim 62 wherein said C1-C5 hydrocarbon comprises at least about 50% methane by volume.
- 77. The process of claim 76 wherein said C1-C5 hydrocarbon comprises at least about 75% methane by volume.
- 78. The process of claim 77 wherein said C1-C5 hydrocarbon comprises at least about 80% methane by volume.
- 79. The process of claim 62 further comprising preheating at least one of said hydrocarbon feedstock and said O2-containing feedstock before contacting said catalyst.
- 80. The process of claim 62 further comprising retaining said composition in a fixed bed reaction zone.
- 81. The process of claim 62 wherein said composition is nominally 0.8 mole % in elemental chromium or chromium ion and 0.2 mole % in elemental cobalt or cobalt ion.
- 82. The process of claim 62 wherein said composition is nominally 0.2 mole % in elemental chromium or chromium ion and 0.8 mole % in elemental cobalt or cobalt ion.
- 83. The process of claim 62 wherein said composition is nominally 0.5 mole % in elemental chromium or chromium ion and 0.5 mole % in elemental cobalt or cobalt ion.
- 84. The process of claim 82 wherein said composition is nominally 2-10 mole % chromium or chromium ion, 1 mole % in lithium or lithium ion and 27 mole % lanthanum or lanthanum ion and comprises an α-AλO3συππoρτ.
- 85. A process for converting a C1-C5 hydrocarbon in the presence of O2 to a product gas mixture containing CO and H2, the process comprising:
mixing a C1-C5 hydrocarbon-containing feedstock and an oxygen-containing feedstock to provide a reactant gas mixture; in a short contact time reactor, contacting said reactant gas mixture with a catalytically effective amount of a catalyst precursor comprising CoCr2O4 cubic spinel dispersed in a chromium oxide matrix; during said contacting, maintaining said composition and said reactant gas mixture at a temperature of about 600-1,100° C.; during said contacting, maintaining said composition and said reactant gas mixture at a pressure of about 100-12,500 kPa; passing said reactant gas mixture over said composition at a continuous flow rate of about 20,000 to at least about 100,000,000 NL/kg/h, such that at least a portion of said catalyst precursor is reduced to cobalt metal dispersed in a chromium oxide matrix during said contacting.
- 86. A process for converting a C1-C5 hydrocarbon comprising at least about 80 vol % methane to a product gas mixture comprising CO and H2, the process comprising:
mixing a methane-containing gaseous feedstock and an O2-containing gaseous feedstock to provide a reactant gas mixture having a carbon:oxygen ratio of about 1.25:1 to about 3.3:1; preheating at least one of said gaseous feedstocks to a temperature up to about 700° C.; contacting said reactant gas mixture with a catalytically effective amount of a chromium-based composition containing 10-100 mole % (as the metal) of chromium or chromium-containing compound per total moles of metal or metal ion in said composition, 0-90% cobalt or cobalt-containing compound, said composition comprising a structure other than a perovskite structure, and optionally, an oxidatively and thermally stable porous support supporting said chromium or chromium-containing compound and said cobalt or cobalt-containing compound; during said contacting, maintaining said composition and said reactant gas mixture at a temperature of about 600-1,100° C.; during said contacting, maintaining said composition and said reactant gas mixture at a pressure of about 100-12,500 kPa; and passing said reactant gas mixture over said composition at a continuous flow rate of about 20,000 to 100,000,000 NL/kg/h, such that the contact time of said reactant gas mixture/catalyst composition is no more than about 10 milliseconds.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the benefit under 35 U.S.C. § 119(e) of U.S. Provisional Application No. 60/183,423 filed Feb. 18, 2000 and is a continuation-in-part of co-pending U.S. application Ser. No. 09/703,701 filed Nov. 1, 2000. This application is also related to U.S. Provisional Application No. 60/183,575 filed Feb. 18, 2000, which corresponds to co-pending U.S. Non-Provisional Patent Application No. ______ filed______.
Provisional Applications (2)
|
Number |
Date |
Country |
|
60183423 |
Feb 2000 |
US |
|
60163843 |
Nov 1999 |
US |
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
09703701 |
Nov 2000 |
US |
Child |
09785384 |
Feb 2001 |
US |