Claims
- 1. A method of enhancing light-off of a catalytic partial oxidation process for converting a light hydrocarbon and O2 to synthesis gas, the method comprising:
contacting a reactant gas mixture containing said light hydrocarbon and O2 with a particulate catalyst comprising a catalytic component and a porous support having an initial BET surface area larger than 1.0 m2 per gram of support, a pore volume larger than 0.003 cc per gram of support, an average pore size in the range of 10 to 150 nm in diameter, with at least a portion of the pores being less than 10 nm in diameter, whereupon initiation of said catalytic partial oxidation reaction occurs at a temperature less than 500° C., such that a gaseous mixture comprising CO and H2 is produced.
- 2. The method of claim 1 wherein no supplemental ignition agent is used to initiate light-off.
- 3. The method of claim 1 wherein at least 5% of said pores have diameters in the range of 0.5-10 nm diameter and the remainder of said pores are in the range of 10-150 nm diameter.
- 4. The method of claim 1 wherein said initiation occurs at a temperature of 300° C. or less.
- 5. The method of claim 1 wherein said initial support surface area is in the range of about 2 to 10 m2/g catalyst support.
- 6. The method of claim 1 wherein said initial support pore volume is in the range of about 0.01-0.6 cc/g catalyst support.
- 7. The method of claim 1 wherein said initial support average pore diameter is in the range of about 10 nm-150 nm.
- 8. The method of claim 1 wherein the initial metal surface area of said catalytic component is greater than 1 m2/g catalyst.
- 9. The method of claim 8 wherein the initial metal surface area of said catalytic component is at least 1.25 square meters per gram of catalyst.
- 10. The method of claim 1 wherein said catalytic component comprises at least one metal chosen from the group consisting of Rh, Pt, Ir, Ru, Ni, and Pd, and combinations thereof.
- 11. The method of claim 1 wherein said catalytic component comprises a promoter chosen from the group consisting of Mg, Ca, Ba, Sr, Li, Na and K.
- 12. The method of claim 1 wherein said catalytic component comprises a metal alloy containing two or more metals chosen from the group consisting of Rh, Pt, Ir, Ru, Pd, Co, Fe, Ni, Cu and Zn.
- 13. The method of claim 12 wherein said metal alloy contains Co or Ni.
- 14. The method of claim 1 wherein said catalytic component comprises Rh and Sm.
- 15. The method of claim 14 wherein said catalytic component comprises an amount of Rh in the range of about 0.5-10 wt % and an amount of Sm in the range of about 0.5-10 wt % (wt % based on total weight of the supported catalyst).
- 16. The method of claim 1 wherein said porous support comprises a refractory material chosen from the group consisting of zirconia, magnesium stabilized zirconia, yttrium stabilized zirconia, calcium stabilized zirconia, alumina, zirconia stabilized alumina, magnesium modified alumina, cordierite, titania, silica, magnesia, niobia, ceria, vanadia, and silicon carbide.
- 17. The method of claim 1 wherein at least a majority of the particles have a maximum characteristic length up to six millimeters.
- 18. The method of claim 17 wherein at least a majority of the particles are generally spherical with a diameter of up to about five millimeters.
- 19. The method of claim 18 wherein the diameter of said particles is in the range of about 0.5-3 mm.
- 20. A method of partially oxidizing a reactant gas mixture comprising a light hydrocarbon to form synthesis gas, the method comprising:
passing a reactant gas mixture comprising said light hydrocarbon and oxygen over a catalyst bed comprising a plurality of catalyst particles, each said particle comprising a catalytic component and a porous support, said support having
an initial BET surface area larger than 1.0 m2/g, a pore volume larger than 0.003 cc/g, an average pore size in the range of 10-150 nm in diameter, with at least a portion of the pores being no more than 10 nm in diameter, and said catalyst particles having a catalytic component initial metal surface area greater than 1.0 m2/g catalyst particles, such that a catalytic partial oxidation reaction ensues and a product stream containing CO and H2 is produced.
- 21. The method of claim 20 where the catalytic partial oxidation reaction is initiated at a temperature less than 500° C. in the absence of a supplemental ignition agent.
- 22. The method of claim 20 comprising enhancing light-off of said catalytic partial oxidation reaction according to the method of claim 1.
- 23. The method of claim 20 comprising passing said reactant gas mixture over said catalyst at a gas hourly space velocity of at least 20,000 h−1.
- 24. The method of claim 20 comprising passing said reactant gas mixture over said catalyst at a gas hourly space velocity up to 100,000,000 h−1.
- 25. The method of claim 20 comprising maintaining said reactant gas mixture at a pressure in excess of 100 kPa (about 1 atmosphere) while contacting said catalyst.
- 26. The method of claim 20 wherein said pressure is up to about 32,000 kPa (about 320 atmospheres).
- 27. The method of claim 26 wherein said pressure is in the range of 200-10,000 kPa (about 2-100 atmospheres).
- 28. The method of claim 20 further comprising preheating said reactant gas mixture to a temperature in the range of about 30° C.-750° C. before contacting said catalyst.
- 29. The method of claim 20 wherein said reactant gas mixture comprises a mixture of said methane or natural gas and said O2-containing gas at a carbon:oxygen molar ratio in the range of about 1.5:1 to about 3.3:1.
- 30. The method of claim 29 wherein said mixing comprises mixing said methane-containing feedstock and said O2-containing feedstock at a carbon:oxygen molar ratio in the range of about 2:1.
- 31. The method of claim 20 wherein said hydrocarbon comprises at least about 80% methane by volume.
- 32. The method of claim 20 wherein said step of maintaining catalytic partial oxidation reaction promoting conditions comprises:
regulating the relative amounts of hydrocarbon and O2 in said reactant gas mixture, regulating the preheating of said reactant gas mixture, regulating the operating pressure of said reactor, regulating the space velocity of said reactant gas mixture, and regulating the hydrocarbon composition of said hydrocarbon containing gas.
- 33. The method of claim 20 wherein said catalyst particles comprise the supported catalyst of claim 46.
- 34. The method of claim 20 wherein said catalyst particles comprise the supported catalyst of claim 47.
- 35. A supported catalyst for the production of synthesis gas comprising a plurality of particles, each said particle comprising a catalytic component and a porous refractory support, said support having:
an initial BET surface area larger than 1.0 m2/g, a pore volume larger than 0.003 cc/g, an average pore size in the range of 10 to 150 nm in diameter, at least 5% of said pores being in the range of 0.5-10 nm diameter, said catalyst having a catalytic component metal surface area greater than 1.0 m2/g and said catalyst having activity for catalyzing the partial oxidation of a light hydrocarbon to form CO and H2.
- 36. The supported catalyst of claim 35 wherein said catalytic component comprises at least one metal chosen from Rh, Pt, Ir, Ru, Ni, and Pd, and combinations thereof.
- 37. The supported catalyst of claim 35 wherein said catalytic component comprises a promoter chosen from Mg, Ca, Ba, Sr, Li, Na and K.
- 38. The supported catalyst of claim 35 wherein said catalytic component comprises a metal alloy containing at least two metals chosen from Rh, Pt, Ir, Ru, Pd, Co, Fe, Ni, Cu and Zn.
- 39. The supported catalyst of claim 35 wherein said porous support comprises a refractory material.
- 40. The supported catalyst of claim 39 wherein said refractory material comprises at least one metal oxide chosen from the group consisting of zirconia, alumina, titania, silica, magnesia, niobia, ceria, and vanadia.
- 41. The supported catalyst of claim 40 wherein said refractory material comprises cordierite.
- 42. The supported catalyst of claim 40 wherein said refractory material comprises at least one stabilized oxidic material chosen from the group magnesium stabilized zirconia, yttrium stabilized zirconia, calcium stabilized zirconia, zirconia stabilized alumina, and magnesium modified alumina.
- 43. The supported catalyst of claim 39 wherein said refractory material comprises silicon carbide.
- 44. The supported catalyst of claim 35 wherein at least a majority of the particles have a maximum characteristic length of up to six millimeters.
- 45. The supported catalyst of claim 44 wherein the diameter of said particles is in the range of about 0.5-3 mm.
- 46. The supported catalyst of claim 35 comprising Rh and Sm and an alumina or modified alumina support, said support having:
a BET surface area in the range of about 4-10 m2/g, a BJH desorption surface area (surface area of 1.7-300 nm diameter pores) in the range of about 4-10 m2/g, a BJH desorption pore volume (of pores having diameters in the range of 1.7-300 nm) in the range of about 0.01-0.1 cc/g, and a BJH desorption average pore diameter (4V/A) in the range of about 10-100 nm.
- 47. The catalyst of claim 46 wherein said supported catalyst has:
a BET surface area in the range of about 4-10 m2/g, a BJH desorption surface area (surface area of 1.7-300 nm diameter pores) in the range of about 4-10 m2/g, a BJH desorption pore volume (of pores having diameters in the range of 1.7-300 nm) in the range of about 0.01-0.1 cc/g, and a BJH desorption average pore diameter (4V/A) in the range of about 10-100 nm.
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. 60/364,204 filed Mar. 13, 2002, the disclosure of which is hereby incorporated herein by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60364204 |
Mar 2002 |
US |