Claims
- 1. A catalyst system active for catalyzing the net partial oxidation of a feed stream comprising a hydrocarbon and an oxygen containing gas to produce a product gas, under reaction promoting conditions when said catalyst system is employed in a fixed-bed, the catalyst system comprising:
first and second zones disposed in stacked serial flow arrangement, each zone comprising at least one active catalyst material disposed on a support, said first zone being upstream of said second zone; wherein said first zone has a greater resistance to flow of the feed stream than said second zone.
- 2. The catalyst system of claim 1 wherein the support in the first zone is a different type than the support in the second zone.
- 3. The catalyst system of claim 1 wherein the catalyst material in the first zone is a different type than the catalyst material in the second zone.
- 4. The catalyst system of claim 1 where the product gas comprises hydrogen and carbon monoxide.
- 5. The catalyst system of claim 1 wherein the support comprises a divided configuration chosen from the group consisting of granules, pills, pellets, spheres, particles, rings, and extrudates.
- 6. The catalyst system of claim 1 wherein the support comprises a manufactured shape or form.
- 7. The catalyst system of claim 1 wherein said support comprises a monolith.
- 8. The catalyst system of claim 1 wherein said zones comprise channels and the channels of said second zone have a lesser resistance to flow and have larger average channel diameters than the channels of said first zone.
- 9. The catalyst system of claim 8 wherein the average diameter of the channels of the second zone is at least about 20% larger than the average channel diameter of the first zone.
- 10. The catalyst system of claim 1 wherein said first and second zones comprise channeled catalyst beds and the channeled catalyst beds of said second zone have a lower channel density than the channeled catalyst beds of said first zone.
- 11. The catalyst system of claim 1 wherein the feed stream is fed through first and second reaction zones at a gas hourly space velocity of at least about 2000 hr−1.
- 12. The catalyst system of claim 1 wherein the feed stream has a contact time with the catalyst system and wherein the combined contact time with the catalyst system is less than about 100 ms.
- 13. The catalyst system of claim 1 wherein the feed stream has a contact time with the catalyst system and wherein the total contact time with the catalyst system is less than about 10 ms.
- 14. A catalyst system for catalyzing the net partial oxidation of a feed stream comprising hydrocarbons and an oxygen containing gas to produce a product gas comprising CO and H2, the catalyst system comprising:
a monolithic catalyst support having a first end and a second end and a length of at least about ⅛ inch, said monolith including a first zone adjacent to said first end and a second zone adjacent to said second end, said first zone having a first channel density and said second zone having a second channel density, wherein said first channel density is greater than said second channel density; a first catalyst supported on said support in said first zone; and a second catalyst supported on said support in said second zone.
- 15. The catalyst system of claim 14 wherein the first channel density is at least 5% greater than the second channel density.
- 16. The catalyst system of claim 14 wherein the first channel density is approximately 6400-14400 ppsi and the second channel density is approximately 400-6400 ppsi.
- 17. The catalyst system of claim 14 wherein at least one of the catalyst is Ni-based.
- 18. The catalyst system of claim 14 wherein at least one catalyst is a Group VIII metal.
- 19. The catalyst system of claim 14 wherein at least one of the catalysts comprises Rh.
- 20. The catalyst system of claim 14 wherein the catalyst support comprises a material selected from group consisting of magnesium stabilized zirconia, calcium stabilized zirconia, alumina, cordierite, zirconia, titania, silica, and silicon carbide.
- 21. The catalyst system of claim 14 wherein the length of the first zone is less than or equal to the length of the second zone.
- 22. The catalyst system of claim 14 wherein the first catalyst has a substantially different composition than the second catalyst.
- 23. The catalyst system of claim 14 wherein the first catalyst has substantially the same composition as the second catalyst.
- 24. The catalyst system of claim 14 wherein the first catalyst support has a substantially different composition than the second catalyst support.
- 25. The catalyst system of claim 14wherein the first catalyst support is substantially the same composition as the second catalyst support.
- 26. A method for catalyzing the net partial oxidation of a feed stream of hydrocarbons and an oxygen containing gas to produce a product gas, the method comprising:
providing a plurality of serially aligned stacked zones having at least a first zone and a final zone; providing a catalyst support within each zone; providing a catalyst on each catalyst support; and feeding the feed stream through the serially aligned stacked zones; wherein the first zone has a first flow resistance; wherein each subsequent zone has a flow resistance which is less than or equal to about the flow resistance of the previous zone; and wherein the final reaction zone has a flow resistance less than the first reaction zone.
- 27. The method of claim 26 wherein the hydrocarbon is primarily methane.
- 28. The method of claim 26 wherein the catalyst support is selected from the group consisting of pills, pellets, monoliths, particulates, spheres, beads, granules, rings, extrudates, ceramic honeycomb structures, and wire gauze.
- 29. The method of claim 26 wherein the catalyst support comprises a manufactured shape or form.
- 30. The method of claim 26 wherein the catalyst support comprises a material selected from the group consisting of magnesium stabilized zirconia, zirconia stabilized alumina, yttrium stabilized zirconia, calcium stabilized zirconia, alumina, cordierite, zirconia, titania, silica, and silicon carbide.
- 31. The method of claim 26 wherein the syngas catalyst is selected from the group consisting of Rh, Pt, Pd, Ru, Lr, Re, Ni, Co, Fe, Mn, Cr, Mg, Ca, Y, La, Ce, Sm, Yb, Pr, and combinations thereof.
- 32. The method of claim 26 wherein each catalyst support is a magnesium stabilized zirconia monolith.
- 33. The method of claim 26 wherein at least one catalyst is a Group VIII metal.
- 34. The method of claim 26 wherein at least one of the catalysts comprises Rh.
- 35. The method of claim 26 wherein at least one of the catalyst is Ni-based.
- 36. The method of claim 26 wherein the first flow resistance is at least 5% greater than the resistance of the final reaction zone.
- 37. The method of claim 26 wherein the feed stream is fed through the serially aligned stacked reaction zones at a gas hourly space velocity of at least about 2,000 hr−1.
- 38. The method of claim 26 wherein the feed stream has a contact time with the catalyst and wherein the combined contact time with the catalyst is less than about 100 ms.
- 39. The method of claim 26 wherein the feed stream has a contact time with the catalyst and wherein the combined contact time with the catalyst is less than about 10 ms.
- 40. A method for catalyzing the net partial oxidation of a feed stream comprising hydrocarbons and an oxygen containing gas to produce a product gas, such as syngas, the method comprising:
providing a first zone; providing a stacked second zone serially aligned with said first zone; providing a first catalyst support having a first flow resistance in the first zone and a second catalyst support having a second flow resistance in the second zone, wherein the first flow resistance is greater than the second flow resistance; supporting a first catalyst on the first catalyst support and a second catalyst on the second catalyst support; feeding the feed stream through the first reaction zone; and feeding the feed stream through the second reaction zone.
- 41. The method of claim 40 wherein the first flow resistance is at least 5% greater than the second flow resistance.
- 42. The method of claim 40 wherein the first and second supports are monoliths.
- 43. The method of claim 40 wherein one of the catalyst supports is a monolith.
- 44. The method of claim 40 wherein the first and second catalyst supports are both channeled monoliths.
- 45. The method of claim 40 wherein one of the catalyst supports is granular.
- 46. The method of claim 40 wherein the first and second catalyst supports are both granular.
- 47. The method of claim 40 wherein the first and second catalysts are substantially the same composition.
- 48. The method of claim 40 wherein the first and second catalysts have substantially different compositions.
- 49. A catalyst system for catalyzing the net partial oxidation of a feed stream comprising hydrocarbons and an oxygen containing gas to produce a product gas, such as syngas, the catalyst system comprising:
at least two stacked serially aligned zones within the reactor; a first catalyst support disposed at least partially within the first of the at least two serially aligned zones, wherein the first catalyst support has a first flow resistance; a second catalyst support disposed at least partially within the last of the at least two serially aligned zones, wherein the second catalyst support has a second flow resistance; a first catalyst on the first catalyst support; and a second catalyst on the second catalyst support; wherein the first flow resistance is greater than the second flow resistance.
- 50. The catalyst system of claim 49 wherein the first and second catalysts have substantially the same composition.
- 51. The catalyst system of claim 49 wherein the first and second catalysts have substantially different compositions.
- 52. The catalyst system of claim 49 wherein the first and second catalyst supports are granular.
- 53. The catalyst system of claim 49 wherein the first and second catalyst supports are monoliths.
- 54. The catalyst system of claim 49 wherein one of the catalyst supports is a monolith.
- 55. The catalyst system of claim 49 wherein the first and second catalyst supports are channeled monoliths.
- 56. The catalyst system of claim 49 wherein one of the catalyst supports is a channeled monolith
- 57. A means for catalyzing the net partial oxidation of a feed stream comprising hydrocarbons and an oxygen containing gas to produce a product stream, the means for converting comprising:
a reactor having first and second stacked serially aligned reaction zones; a first means for catalyzing the conversion of the hydrocarbons and oxygen containing gas to a product stream, such as syngas, in the first zone; a second means for catalyzing the conversion of the hydrocarbons and oxygen containing gas to a product stream, such as syngas, in the second zone; a first means for supporting the first means for catalyzing, wherein the first means for supporting has a first flow resistance; and a second means for supporting the second means for catalyzing, wherein the second means for supporting has a second flow resistance; wherein the second flow resistance is less than the first flow resistance.
- 58. The means of claim 57 further comprising a means for maintaining a reactant gas/catalyst contact time of no more than about 100 ms.
- 59. The means of claim 57 further comprising a means for maintaining a reactant gas/catalyst contact time of no more than about 10 ms.
- 60. The means of claim 57 further comprising a means for maintaining a gas hourly space velocity of at least about 2,000 hr−1.
- 61. The means for converting of claim 57 wherein the hydrocarbon comprises primarily methane.
- 62. The means for converting of claim 57 wherein the first means for catalyzing is substantially the same composition as the second means for catalyzing.
- 63. The means for converting of claim 57 wherein the first means for catalyzing is substantially a different composition as the second means for catalyzing.
- 64. The means for converting of claim 57 wherein the second flow resistance is at least 5% less than the first flow resistance.
- 65. The means for converting of claim 57 wherein at least one of the means for supporting is a monolith.
- 66. The means for converting of claim 57 wherein at least one of the means for supporting is a channeled monolith.
- 67. The means for converting of claim 57 wherein at least one of the means for supporting is a granular support.
- 68. The means for converting of claim 57 wherein both of the means for supporting are channeled monoliths.
- 69. The means for converting of claim 57 wherein the first means for supporting has a channel density of about 6400-14400 ppsi and the second means for supporting has a channel density of about 400-6400 ppsi.
- 70. A process for the production of synthesis gas, the method comprising:
contacting a hydrocarbon-containing gas and an oxygen-containing gas with a syngas catalyst system so as to partially oxidize at least a portion of the hydrocarbon, wherein the catalyst system comprises: providing a plurality of serially aligned stacked zones having at least a first zone and a final zone; providing a catalyst support within each zone; providing a catalyst on each catalyst support; and feeding the feed stream through the serially aligned stacked zones; wherein the first zone has a first flow resistance; wherein each subsequent zone has a flow resistance which is less than or equal to about the flow resistance of the previous zone; and wherein the final reaction zone has a flow resistance less than the first reaction zone.
- 71. The method of claim 70 wherein the hydrocarbon is primarily methane.
- 72. The method of claim 70 wherein the catalyst support is selected from the group consisting of pills, pellets, monoliths, particulates, spheres, beads, granules, rings, extrudates, ceramic honeycomb structures, and wire gauze.
- 73. The method of claim 70 wherein the catalyst support comprises a manufactured shape or form.
- 74. The method of claim 70 wherein the catalyst support comprises a material selected from the group consisting of magnesium stabilized zirconia, zirconia stabilized alumina, yttrium stabilized zirconia, calcium stabilized zirconia, alumina, cordierite, zirconia, titania, silica, and silicon carbide.
- 75. The method of claim 70 wherein the syngas catalyst is selected from the group consisting of Rh, Pt, Pd, Ru, Lr, Re, Ni, Co, Fe, Mn, Cr, Mg, Ca, Y, La, Ce, Sm, Yb, Pr, and combinations thereof.
- 76. The method of claim 70 wherein each catalyst support is a magnesium stablized zirconia monolith.
- 77. The method of claim 70 wherein at least one catalyst is a Group VIII metal.
- 78. The method of claim 70 wherein at least one of the catalysts comprises Rh.
- 79. The method of claim 70 wherein at least one of the catalyst is Ni-based.
- 80. The method of claim 70 wherein the first flow resistance is at least 5% greater than the resistance of the final reaction zone.
- 81. The method of claim 70 wherein the feed stream is fed through the serially aligned stacked reaction zones at a gas hourly space velocity of at least about 2000 hr−1.
- 82. The method of claim 70 wherein the feed stream has a contact time with the catalyst and wherein the combined contact time with the catalyst is less than about 100 ms.
- 83. The method of claim 70 wherein the feed stream has a contact time with the catalyst and wherein the combined contact time with the catalyst is less than about 10 ms.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] The present application claims priority to U.S. Provisional Application No. 60/327,479, incorporated herein by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60327479 |
Oct 2001 |
US |