Claims
- 1. Catalyst support materials comprising a mixed oxide consisting essentially of a divalent metal and a trivalent metal in a substantially homogeneous phase, which is a calcination product of a hydrotalcite-like phase calcinated at a temperature of about 700-1200° C., wherein the divalent metal/trivalent metal molar ratio is greater than or equal to 2.
- 2. The catalyst support materials of claim 1, wherein the divalent metal is Mg and the trivalent metal is Al.
- 3. The catalyst support material according to claim 2, wherein the Mg/Al molar ratio is in the range of about 2.5 to about 6.0.
- 4. The catalyst support materials of claim 2, which is a calcination product of a hydrotalcite(-like) phase calcinated at a temperature of about 750-950° C.
- 5. The catalyst support material of claim 1, wherein the hydrotalcite(-like) phase has been calcinated at a temperature of about 770-850° C.
- 6. The catalyst support material according to claim 5, wherein the Mg/Al molar ratio is in the range of about 3 to about 5.
- 7. The catalyst support material of claim 1, wherein the hydrotalcite(-like) phase has been calcinated at a temperature of about 800° C.
- 8. A method for preparing the catalyst support material according to claim 1, wherein a solution comprising a divalent metal salt and a trivalent metal salt is mixed with a basic aqueous solution, the reaction product recovered from said reaction mixture, said product being washed and dried, and the dried product calcinated at a temperature ranging from 700-1200° C.
- 9. The method of claim 8, wherein the hydrotalcite(-like) phase is calcinated at a temperature of about 750-950° C.
- 10. The method of claim 8, wherein the dried product is calcinated at a temperature ranging from about 770 to about 850° C.
- 11. The method of claim 8, wherein the dried product is calcinated at a temperature of about 800° C.
- 12. The method of the claim 8, wherein the basic aqueous solution is a composition of aqueous ammonium or alkali metal hydroxides and carbonates.
- 13. The method of the claim 12, wherein the basic aqueous solution is a composition of aqueous ammonium hydroxides and carbonates.
- 14. The method of claim 8, wherein the divalent metal is Mg and the trivalent metal is Al.
- 15. The method of claim 14, wherein the hydrotalcite(-like) phase is calcinated at a temperature of about 750-950° C.
- 16. The method of claim 14, wherein the dried product is calcinated at a temperature ranging from about 770 to about 850° C.
- 17. The method of claim 14, wherein the dried product is calcinated at a temperature of about 800° C.
- 18. The method of the claim 14, wherein the basic aqueous solution is a composition of aqueous ammonium or alkali metal hydroxides and carbonates.
- 19. A dehydrogenation catalyst comprising one of a transition metal selected from the first row of transition metals of the Periodic Table, or a Group VIII metal impregnated onto the catalyst support material according to claim 1.
- 20. The dehydrogenation catalyst of claim 19, wherein the first row transition metal is Cr.
- 21. The dehydrogenation catalyst according to claim 19, wherein a Group IVA metal and optionally a Group 1A metal have been impregnated together with the Group VIII metal onto the catalyst support material according to claim 1.
- 22. The dehydrogenation catalyst according to claim 21, wherein the Group VIII metal is Pt, the Group IVA metal is Sn, and the optional Group IA metal, when present, is Cs.
- 23. The dehydrogenation catalyst according to claim 21, wherein the amount of the Group VIII metal is 0.05-5.0% by weight, the amount of the Group IVA metal is 0.05-7.0% by weight, and the amount of the optional Group IA metal, when present, is 0.05-5.0% by weight.
- 24. The dehydrogenation catalyst according to claim 19, wherein the Group VIII metal is Pt.
- 25. A dehydrogenation catalyst comprising a transition metal selected from the first row of transition metals of the Periodic Table, and a Group VIII metal impregnated onto the catalyst support material according to claim 1.
- 26. The dehydrogenation catalyst of claim 25, wherein the first row transition metal is Cr.
- 27. The dehydrogenation catalyst according to claim 25, wherein the Group VIII metal is Pt.
- 28. The dehydrogenation catalyst according to claim 25, wherein a Group IVA metal and optionally a Group 1A metal have been impregnated together with the Group VIII metal onto the catalyst support material according to claim 1.
- 29. The dehydrogenation catalyst according to claim 28, wherein the Group VIII metal is Pt, the Group IVA metal is Sn, and the otional Group IA metal, when present, is Cs.
- 30. The dehydrogenation catalyst according to claim 28, wherein the amount of the Group VIII metal is 0.05-5.0% by weight, the amount of the Group IVA metal is 0.05-7.0% by weight, and the of the optional Group IA metal, when present, is 0.05-5.0% by weight.
- 31. A process for the catalytic dehydrogenation of light alkanes, wherein a stream of light alkanes are passed through a layer of the catalytically active compositions according to claim 19 in the presence or absence of steam.
- 32. The process for the catalytic dehydrogenation of light alkanes of claim 31, wherein the first row transition metal is Cr.
- 33. The process for the catalytic dehydrogenation of light alkanes of claim 31, wherein a Group IVA metal and optionally a Group 1A metal have been impregnated together with the Group VIII metal onto the catalyst support material according to claim 1.
- 34. The process for the catalytic dehydrogenation of light alkanes of claim 33, wherein the Group VIII metal is Pt, the Group IVA metal is Sn, and the Group IA metal, when present, is Cs.
- 35. The process for the catalytic dehydrogenation of light alkanes of claim 33, wherein the amount of the Group VIII metal is 0.05-5.0% by weight, the amount of the Group IVA metal is 0.05-7.0% by weight, and the amount of the optional Group IA metal, when present, is 0.05-5.0% by weight.
- 36. The process for the catalytic dehydrogenation of light alkanes of claim 31, wherein the Group VIII metal is Pt.
- 37. The process of claim 31, wherein the catalytic dehydrogenation is performed in a presence of steam.
- 38. The process of claim 31, wherein the catalytic dehydrogenation is performed in an absence of steam.
- 39. The use of catalytic composition according to claim 19 for the dehydrogenation of light alkanes.
- 40. The use of catalytic composition according to claim 39, wherein the first row transition metal is Cr.
- 41. The use of catalytic composition according to claim 39, wherein a Group IVA metal and optionally a Group 1A metal have been impregnated together with a Group VIII metal onto the catalyst support material according to claim 1.
- 42. The use of catalytic composition according to claim 41, wherein the Group VIII metal is Pt, the Group IVA metal is Sn, and the Group IA metal, when present, is Cs.
- 43. The use of catalytic composition according to claim 41, wherein the amount of the Group VIII metal is 0.05-5.0% by weight, the amount of the Group IVA metal is 0.05-7.0% by weight, and the amount of the optional Group IA metal, when present, is 0.05-5.0% by weight.
- 44. The use of catalytic composition according to claim 39, wherein the Group VIII metal is Pt.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This is a continuation in part of co-pending U.S. patent application Ser. No. 08/569,185, which is based on international application No. PCT/NO94/00102, filed Jun. 1, 1994.
Continuations (1)
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Number |
Date |
Country |
Parent |
09096988 |
Jun 1998 |
US |
Child |
09993334 |
Nov 2001 |
US |
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
08569185 |
Dec 1995 |
US |
Child |
09096988 |
Jun 1998 |
US |