Claims
- 1. A catalyst composite consisting essentially of:
- (A) from 3 to 25 weight percent of tungsten in the form of metal oxide or metal sulfide, or any mixture thereof, calculated as the metal;
- (B) from 35 to 80 weight percent of a laminar 2:1 layer-lattice aluminosilicate mineral possessing layer-lattice unit cells, each cell having an inherent negative charge balanced by cations exterior to said unit cell, said mineral corresponding to the following overall formula prior to drying and calcining:
- [(Al3.sup.+.sub.4-ew Y.sup.2+.sub.3w).sup.VI (Q.sup.4+.sub.8-x Al.sup.3+.sub.x).sup.IV O.sub.20 (OH).sub.4-f F.sub.f ].multidot.[dC.sup.y ]
- where Al is aluminum;
- Y is selected from the class consisting of nickel, cobalt and mixtures thereof;
- Q is at least 0.95 mol fraction silicon ions, the remainder consisting of tetravalent ions having an ionic radius not to exceed 0.65 A; and
- F is fluorine;
- C is at least one charge-balancing cation; and where e has a numerical value from 2 to 3 inclusive;
- w has a numerical value from 0.01 to 2 inclusive, with the proviso that the quantity ew have a numerical value from 0.02 to 4 inclusive;
- f has a value of 4 or less;
- x has a numerical value from 0.05 to 2.0 inclusive;
- y is the valence of the cation C;
- d is the number of cations C where the product
- dy = x + 3(e-2)w
- and wherein said first bracket represents said layer-lattice unit cell formulation and said second bracket represents said charge-balancing cations; and
- (C) from 5 to 50 weight percent of a crystalline zeolite having an alpha value of at least 20;
- and wherein said composite is formed by:
- (i) initially coating or impregnating component (B) with component (A); and
- (ii) thereafter uniformly dispersing component (C) through the mixture of components (A) and (B) formed in step (i).
- 2. A composition according to claim 1 werein Y in said laminar 2:1 lattic-layer aluminosilicate mineral is nickel and Q is silicon.
- 3. A composition according to claim 2 wherein said zeolite is selected from the group consisting of X and Y zeolites or mixtures thereof.
- 4. A composition in accordance with claim 2 wherein said second bracket in said laminar 2:1 layer-lattic aluminosilicate formula has the composition:
- a M.sup.n + b Al(OH).sup.z.sub.3-z
- wherein
- an + bz = dy = x + 3(e-2)w
- and M is selected from the group consisting of hydrogen, ammonium, multivalent metal cations other than aluminum, and partial hydroxides of multivalent metal cations, and n is the unsatisfied valence of M.
- 5. A composition according to claim 4 wherein the amount of nickel in said mineral is from 0.1 to 35 weight percent of said mineral.
- 6. A composition according to claim 4 wherein said amount of tungsten is from 6 to 20 weight percent of the composite catalyst; said zeolite is from 10 to 35 weight percent of the composite catalyst; and said laminar 2:1 layer-lattice aluminosilicate mineral is from 40 to 70 weight percent of the composite catalyst.
- 7. A catalyst composition according to claim 1 wherein said tungsten component A is uniformly dispersed through said component B from an aqueous solution of a salt of tungsten which is capable of conversion to the oxide form and which salt is thereafter converted to said oxide form.
- 8. A composition according to claim 7 wherein Y in said laminar 2:1 layer-lattice aluminosilicate mineral is nickel and Q is silicon.
- 9. A composition according to claim 8 wherein said zeolite is selected from the group consisting of X and Y zeolites or mixtures thereof.
- 10. A composition according to claim 9 wherein said zeolite is in the hydrogen form.
- 11. A composition according to claim 9 wherein said zeolite has a hydrogenation metal at least partially replacing hydrogen ions.
- 12. A composition according to claim 11 wherein the hydrogenation metal is nickel.
- 13. A catalyst composite consisting essentially of:
- (A) from 3 to 25 weight percent of tungsten in the form of metal oxide or metal sulfide, or any mixture thereof, calculated as the metal;
- (B) from 35 to 80 weight percent of a laminar 2:1 layer-lattice aluminosilicate mineral possessing layer-lattice unit cells, each cell having an inherent negative charge balanced by cations exterior to said unit cell, said mineral corresponding to the following overall formula prior to drying and calcining:
- [(Al3.sup.+.sub.4-ew Y.sup.2+.sub.3w).sup.VI (Q.sup.4+.sub.8-x Al.sup.3+.sub.x).sup.IV O.sub.20 (OH).sub.4-f F.sub.f ].multidot.[dC.sup.y ]
- where Al is aluminum;
- Y is selected from the class consisting of nickel, cobalt and mixtures thereof;
- Q is at least 0.95 mol fraction silicon ions, the remainder consisting of tetravalent ions having an ionic radius not to exceed 0.65 A; and
- F is fluorine;
- C is at least one charge-balancing cation; and where e has a numerical value from 2 to 3 inclusive;
- w has a numerical value from 0.01 to 2 inclusive, with the proviso that the quantity ew have a numerical value from 0.02 to 4 inclusive;
- f has a value of 4 or less;
- x has a numerical value from 0.05 to 2.0 inclusive;
- y is the valence of the cation C;
- d is the number of cations C where the product
- dy = x + 3(e-2)w
- and wherein said first bracket represents said layer-lattice unit cell formulation and said second bracket represents said charge-balancing cations; and
- (C) from 5 to 50 weight percent of a crystalline zeolite having an alpha value of at least 20;
- and wherein said composite is formed by:
- (i) initially admixing component (B) and component (C); and
- (ii) thereafter coating or impregnating the admixture formed in step (1) of components (B) and (C) with component (A).
- 14. A composition according to claim 3 wherein Y in said laminar 2:1 layer-lattice aluminosilicate mineral is nickel, Q is silicon, and the second bracket in said laminar 2:1 layer-lattice aluminosilicate mineral formula has the composition:
- aM.sup.n + b Al(OH).sub.3-z.sup.z
- wherein
- an + bz = dy = x + 3(e-2)w
- and M is selected from the group consisting of hydrogen, ammonium, multivalent metal cations other than aluminum, and partial hydroxides or multivalent metal cations, and n is the unsatisfied valence of M.
- 15. A composition according to claim 14 wherein said zeolite is selected from the group consisting of X and Y zeolites or mixtures thereof.
- 16. A composition according to claim 15 wherein the amount of nickel in said mineral is from 0.1 to 35 weight percent of said mineral; the laminar 2:1 layer-lattice aluminosilicate mineral is from 40 to 70 weight percent of the catalyst composite; the amount of tungsten is from 6 to 20 weight percent of the catalyst composite; and the zeolite component is from 10 to 35 weight percent of the catalyst composite.
- 17. A catalyst composition according to claim 13 wherein said tungsten component A is uniformly dispersed through said admixture of components B and C from an aqueous solution of a salt of tungsten which is capable of conversion to the oxide form and which salt is thereafter converted to said oxide form.
- 18. A composition according to claim 17 wherein Y in said laminar 2:1 layer-lattice aluminosilicate mineral is nickel, and Q is silica.
- 19. A composition according to claim 18 wherein said zeolite is selected from the group consisting of X and Y zeolites or mixtures thereof.
- 20. A composition according to claim 19 wherein said zeolite is in a hydrogen form.
- 21. A composition according to claim 19 wherein said zeolite has a hydrogenation metal at least partially replacing hydrogen ions.
- 22. A composition according to claim 21 wherein the hydrogenation metal is nickel.
- 23. A hydrotreating process which comprises contacting a hydrocarbon feed containing substantial amounts of materials boiling above 200.degree. F. and selected from the group consisting of petroleum distillates, solvent deasphalted petroleum residua, shale oils and coal derived liquids or coal tar distillates in a reaction zone with hydrogen at hydrotreating conditions to obtain the conversion of at least 25 volume percent of said hydrocarbon feed with the catalyst of claim 1.
- 24. A process according to claim 23 wherein said hydrotreating conditions include a temperature in the range of 400.degree. to 950.degree. F., a pressure in the range of 800 to 3500 psig, and a liquid hourly space velocity in the range of 0.25 to 5.0 volumes of charge stock per volume of catalyst per hour, and a total hydrogen supply rate of 800 to 20,000 SCF of hydrogen per barrel of feedstock and recovering hydrotreated products from said reaction zone.
- 25. A process according to claim 24 wherein Y in said laminar 2:1 layer-lattice aluminosilicate mineral is nickel and Q is silicon.
- 26. A process according to claim 25 wherein said zeolite is a Y-zeolite.
- 27. A process according to claim 26 wherein said Y-zeolite is in the hydrogen form.
- 28. A process according to claim 26 wherein said Y-zeolite has a hydrogenation metal at least partially replacing the hydrogen ions.
- 29. A process according to claim 28 wherein said hydrogenation metal is nickel.
- 30. A process in accordance with claim 29 wherein said second bracket in said laminar 2:1 layer-lattice aluminosilicate mineral formula has the composition:
- a M.sup.n + b Al(OH).sup.z.sub.3-z
- wherein
- an + bz = dy = x + 3(e-2)w
- and M is selected from the group consisting of hydrogen, ammonium, multivalent metal cations other than aluminum, and partial hydroxides of multivalent metal cations, and n is the unsatisfied valence of M.
- 31. A process in accordance with claim 30 wherein said charge stock is a petroleum charge stock boiling from 400.degree. to 1100.degree. F. at atmospheric pressure.
- 32. A hydrotreating process which comprises contacting a hydrocarbon feed containing substantial amounts of materials boiling above 200.degree. F. and selected from the group consisting of petroleum distillates, solvent-deasphalted petroleum residua, shale oils and coal derived liquids or coal tar distillates in a reaction zone with hydrogen at hydrotreating conditions to obtain the conversion of at least 25 volume percent of said hydrocarbon feed with the catalyst of claim 13.
- 33. A process according to claim 32 wherein said hydrotreating conditions include a temperature in the range of 400.degree. to 950.degree. F., a pressure in the range of 800 to 3500 psig, and a liquid hourly space velocity in the range of 0.25 to 5.0 volumes of charge stock per volume of catalyst per hour, and a total hydrogen supply rate of 800 to 20,000 SCF of hydrogen per barrel of feedstock and recovering hydrotreated products from said reaction zone.
- 34. A process according to claim 33 wherein the conversion is from 50% to 75% of said hydrocarbon feed.
- 35. A process according to claim 33 wherein the hydrocarbon feed has a nitrogen content ranging from 350 to 4000 ppm.
- 36. A process according to claim 35 wherein the hydrocarbon feed has from 700 to 1800 ppm of nitrogen and a product is recovered having less than 10 ppm of nitrogen.
- 37. A process according to claim 33 wherein Y in said laminar 2:1 layer-lattice aluminosilicate mineral is nickel and Q is silicon.
- 38. A process according to claim 37 wherein said zeolite is a Y-zeolite.
- 39. A process according to claim 38 wherein said Y-zeolite is in the hydrogen form.
- 40. A process according to claim 38 wherein said Y-zeolite has a hydrogenation metal at least partially replacing the hydrogen ions.
- 41. A process according to claim 40 wherein said hydrogenation metal is nickel.
- 42. A process in accordance with claim 41 wherein said second bracket in said laminar 2:1 layer-lattice aluminosilicate mineral formula has the composition:
- a M.sup.n + b Al(OH).sup.z.sub.3-z
- wherein
- an + bz = dy = x + 3(e-2)w
- and M is selected from the group consisting of hydrogen, ammonium, multivalent metal cations other than aluminum, and partial hydroxides of multivalent metal cations, and n is the unsatisfied valence of M.
- 43. A process in accordance with claim 42 wherein said charge stock is a petroleum charge stock boiling from 400.degree. to 1100.degree. F. at atmospheric pressure.
Parent Case Info
This application is a continuation-in-part of U.S. application Ser. No. 623,374 of Harold E. Swift and Roger F. Vogel, now abandoned and assigned to the same assignee as the present invention.
US Referenced Citations (13)
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
623374 |
Aug 1977 |
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