Claims
- 1. A hydrocracking process which comprises contacting a hydrocarbon feedstock with a hydrocracking catalyst under hydrocracking conditions in the presence of added hydrogen, wherein said catalyst contains a zeolite having a unit cell size between 24.20 and 24.40 angstroms and is prepared by the process comprising:
- (a) extruding a mixture of at least one inorganic refractory oxide component and a crystalline aluminosilicate zeolite having cracking activity to form extrudates, wherein said crystalline aluminosilicate zeolite has a unit cell size between 24.40 and 24.95 angstroms and is selected from the group consisting of Y zeolites, modified Y zeolites, X zeolites and modified X zeolites; and
- (b) calcining said extrudates in the presence of steam at a water vapor partial pressure greater than about 5.0 psia under conditions such that the unit cell size of said crystalline aluminosilicate zeolite is reduced to a value between about 24.20 and 24.40 angstroms.
- 2. A process as defined by claim 1 wherein said extrudates are calcined under conditions such that the unit cell size of said crystalline aluminosilicate zeolite is reduced to a value between about 24.20 and 24.39 angstroms.
- 3. A process as defined by claim 2 wherein said extrudates are formed by extruding a mixture of said inorganic refractory oxide component, said crystalline aluminosilicate zeolite having cracking activity and at lease one hydrogenation component.
- 4. A process as defined by claim 2 wherein said crystalline aluminosilicate zeolite is a modified Y zeolite selected from the group consisting of ultrastable Y zeolites, steam-stabilized Y zeolites and dealuminated Y zeolites.
- 5. A process as defined by claim 1 wherein said extrudates are calcined under conditions such that the unit cell size of said crystalline aluminosilicate zeolite is reduced to a value between about 24.20 and 24.35 angstroms.
- 6. A process as defined by claim 5 wherein said crystalline aluminosilicate zeolite used in step (a) has a silica-to-alumina mole ratio between about 3 and 20.
- 7. A process as defined by claim 5 wherein the water vapor partial pressure of said steam and the temperature and time of said calcination are such that, if said aluminosilicate zeolite is calcined in steam alone without first being mixed and extruded with said refractory oxide component, the water vapor sorptive capacity of said aluminosilicate zeolite will be less than about 5 weight percent of said zeolite at 25.degree. C. and a p/p.degree. value of 0.10.
- 8. A process as defined by claim 2 which further comprises impregnating said calcined extrudates with at least one hydrogenation component.
- 9. A process as defined by claim 2 wherein said inorganic refractory oxide component comprises a pillared clay.
- 10. A process as defined by claim 9 wherein the pillars of said pillared clay comprise a rare earth metal.
- 11. A process as defined by claim 2 wherein said water vapor partial pressure is between about 5 and about 35 psia.
- 12. A process as defined by claim 1 wherein said inorganic refractory oxide component comprises a dispersion of silica-alumina in an alumina matrix.
- 13. A process as defined by claim 1 wherein said hydrocarbon feedstock is contacted with said hydrocracking catalyst at a temperature between about 450.degree. F. and about 850.degree. F. and at a pressure between about 750 psig and about 3,500 psig.
- 14. A hydrocracking process for producing middle distillate products which comprises contacting a hydrocarbon feedstock with a hydrocracking catalyst in the presence of added hydrogen under hydrocracking conditions, wherein said catalyst comprises a support containing a zeolite having a unit cell size between 24.20 and 24.35 angstroms and a dispersion of silica-alumina in an alumina matrix and said catalyst is prepared by the process comprising:
- (a) extruding a mixture of a dispersion of silica-alumina in an alumina matrix and a crystalline aluminosilicate zeolite having cracking activity to form extrudates, wherein said crystalline aluminosilicate zeolite has a unit cell size between 24.40 and 24.95 angstroms and is selected from the group consisting of Y zeolites, modified Y zeolites, X zeolites and modified X zeolites;
- (b) calcining said extrudates in the presence of steam at a water vapor partial pressure greater than about 5.0 psia under conditions such that the unit cell size of said crystalline aluminosilicate zeolite is reduced to a value between about 24.20 and 24.35 angstroms; and
- (c) impregnating said calcined extrudates with at least one hydrogenation component.
- 15. A process as defined by claim 14 wherein said calcined extrudates are impregnated with a Group VIII metal hydrogenation component and a Group VIA metal hydrogenation component.
- 16. A process as defined by claim 15 wherein said Group VIA metal hydrogenation component comprises tungsten or molybdenum and said Group VIII metal hydrogenation component comprises nickel or cobalt.
- 17. A process as defined by claim 14 wherein said crystalline aluminosilicate zeolite is a steam-stabilized Y zeolite.
- 18. A process as defined by claim 14 wherein said hydrocarbon feedstock is contacted with said hydrocracking catalyst at a temperature between about 450.degree. F. and about 850.degree. F. and at a pressure between about 750 psig and about 3,500 psig.
- 19. A process as defined by claim 14 wherein said water vapor partial pressure is between about 5.0 and about 35 psig.
- 20. A process as defined by claim 14 wherein said crystalline aluminosilicate is a modified Y zeolite selected from the group consisting of ultrastable Y zeolites, steam-stabilized Y zeolites and dealuminated Y zeolites.
CROSS-REFERENCES TO RELATED APPLICATIONS
This application is a division of U.S. Ser. No. 573,735, filed in the United States Patent and Trademark Office on Aug. 28, 1990 now U.S. Pat. No. 5,116,792, which is a continuation of U.S. Ser. No. 332,517, filed in the United States Patent and Trademark Office on Mar. 31, 1989, and now U.S. Pat. No. 4,990,476, which is a continuation-in-part of U.S. Ser. No. 196,942, filed in the United States Patent and Trademark Office on Apr. 4,1988 and now U.S. Pat. No. 4,879,019, which is a division of U.S. Ser. No. 28,654, filed in the United States Patent and Trademark Office on Mar. 20, 1987 and now U.S. Pat. No. 4,762,813, which is a continuation of U.S. Patent Application Ser. No. 793,567, filed in the United States Patent and, Trademark Office on Oct. 31, 1988 and now abandoned, which is a continuation-in-part of U.S. Patent Application Serial No. 699,919, filed in the United States Patent and Trademark Office on Feb. 8, 1985 and now U.S. Pat. No. 4,610,973, which is a continuation of U.S. Patent Application Ser. No. 531,924, filed in the United States Patent and Trademark Office on Sep. 13, 1983 and now U.S. Pat. No. 4,517,074, which is a division of U.S. Patent Application Ser. No. 84,761, filed in the United States Patent and Trademark Office on Oct. 15, 1979 and now U.S. Pat. No. 4,419,271. The disclosure of U.S. Pat. No. 4,762,813 is hereby incorporated by reference in its entirety.
US Referenced Citations (38)
Foreign Referenced Citations (1)
Number |
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WO8806488 |
Sep 1988 |
WOX |
Divisions (3)
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573735 |
Aug 1990 |
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28654 |
Mar 1987 |
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84761 |
Oct 1979 |
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Continuations (3)
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332517 |
Mar 1989 |
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793567 |
Oct 1985 |
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531924 |
Sep 1983 |
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Continuation in Parts (2)
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196942 |
Apr 1988 |
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699919 |
Feb 1985 |
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