Claims
- 1. A process for the demetallization and conversion of the 1050.degree.F.+ materials of a heavy metals containing hydrocarbon feed to 1050.degree.F.- material comprising
- contacting said feed in the presence of added hydrogen, with a catalyst characterized as comprising a composite of from about 5 to about 30 percent of a Group VIB metal, from about 1 to about 12 percent of a Group VIII metal, or admixture of said Group VIB and Group VIII metals, and a porous inorganic oxide support, said catalyst including a combination of properties comprising, when the catalyst is of size ranging up to 1/50 inch average particle size diameter, at least about 20 percent of its total pore volume of absolute diameter within the range of about 100A to about 200A; when the catalyst is of size ranging from about 1/50 inch up to 1/25 inch average particle size diameter, at least about 15 percent of its total pore volume of absolute diameter within the range of about 150A to about 250A; when the catalyst is of size ranging from about 1/25 inch to about 1/8 inch average particle size diameter, at least about 15 percent of its total pore volume of absolute diameter within the range of about 175A to about 275A; a surface area ranging at least about 200 m.sup.2 /g to about 600 m.sup.2 /g and a pore volume ranging from about 0.8 cc/g to about 3.0 cc/g,
- at severity sufficient to convert at least about 30 percent of the 1050.degree.F.+ material to 1050.degree.F.- material, while removing at least about 80 percent of the heavy metals from the feed.
- 2. The process of claim 1 wherein from about 40 percent to about 60 percent of the 1050.degree.F.+ material is converted to 1050.degree.F.-, and from about 85 percent to about 90 percent of the metals are removed from the bed.
- 3. The process of claim 1 wherein the feed is characterized as follows:
- ______________________________________Gravity, .degree.API -5 to 20Heavy Metals, ppm 5-10001050.degree.F.+, Wt.% 10-100Asphaltenes (C.sub.5 insoluble), Wt.% 5-50Con Carbon, Wt.% 5-50______________________________________
- 4. The process of claim 1 wherein the feed of the reaction is characterized as follows.
- ______________________________________Gravity, .degree.API 0 to 14Heavy Metals, ppm 200-6001050.degree.F.+, Wt.% 40-100Asphaltenes (C.sub.5 insoluble), Wt.% 15-30Con Carbon, Wt.% 10-30______________________________________
- 5. The process of claim 1 wherein the conditions of the reaction are characterized as follows:
- ______________________________________Temperature, .degree.F. (E.I.T.) Start-of-Run 700 End-of-Run 850Pressure, Psi 200-10,000Hydrogen Rate, SCF/B 3000-20,000Space Velocity, LHSV 0.25-5.0______________________________________
- 6. The process of claim 1 wherein the catalyst is comprised of particle size diameter ranging from about 1/500 to 1/50 inch particle size diameter, and further characterized as follows:
- Distribution of Pore Diameters______________________________________0-50A <20%100-200A >20%300A+ <30%Pore Volume, cc/g 0.8-1.4Surface Area, m.sup.2 /g 300-450______________________________________
- 7. The process of claim 1 wherein the catalyst is comprised of particle size diameter ranging from about 1/500 to 1/50 inch particle size diameter, and further characterized as follows:
- Distribution of Pore Diameters______________________________________0-50A <10%100-200A >25%300A+ <25%Pore Volume, cc/g 0.9-1.5Surface Area, m.sup.2 /g 310-500______________________________________
- 8. The process of claim 1 wherein the catalyst is comprised of particle size diameter ranging from about 1/500 to 1/50 inch particle size diameter, and further characterized as follows:
- Distribution of Pore Diameters______________________________________0-50A <2%100-200A >70%300A+ <1%Pore Volume, cc/g 1.1-1.7Surface Area, m.sup.2 /g 325-550______________________________________
- 9. The process of claim 1 wherein the catalyst is comprised of particle size diameter ranging from about 1/50 to 1/25 inch particle size diameter, and further characterized as follows:
- Distribution of Pore Diameters______________________________________0-50A <10%150-250A >15%350A+ <35%Pore Volume, cc/g 1.1-1.7Surface Area, m.sup.2 /g 320-475______________________________________
- 10. The process of claim 1 wherein the catalyst is comprised of particle size diameter ranging from about 1/50 to 1/25 inch particle size diameter, and further characterized as follows:
- Distribution of Pore Diameters______________________________________0-50A <5%150-250A >20%350A+ <30%Pore Volume, cc/g 1.3-1.9Surface Area, m.sup.2 /g 340-575______________________________________
- 11. The process of claim 1 wherein the catalyst is comprised of particle size diameter ranging from about 1/50 to 1/25 inch particle size diameter, and further characterized as follows:
- Distribution of Pore Diameters______________________________________0-50A <1%150-250A >45%350A+ <7%Pore Volume, cc/g 1.5-2.1Surface Area, m.sup.2 /g 360-600______________________________________
- 12. The process of claim 1 wherein the catalyst is comprised of particle size diameter ranging from about 1/25 to 1/8 inch particle size diameter, and further characterized as follows:
- Distribution of Pore Diameters______________________________________0-50A <5%175-275A >15%350A+ <40%Pore Volume, cc/g 1.3-1.9Surface Area, m.sup.2 /g 340-500______________________________________
- 13. The process of claim 1 wherein the catalyst is comprised of particle size diameter ranging from about 1/25 to 1/8 inch particle size diameter, and further characterized as follows:
- Distribution of Pore Diameters______________________________________0-50A <4%175-275A >20%350A+ <35%Pore Volume, cc/g 1.5-2.1Surface Area, m.sup.2 /g 350-600______________________________________
- 14. The process of claim 1 wherein the catalyst is comprised of particle size diameter ranging from about 1/25 to 1/8 inch particle size diameter, and further characterized as follows:
- Distribution of Pore Diameters______________________________________0-50A <3%175-275A >30%350A+ <25%Pore Volume, cc/g 1.8-2.3Surface Area, m.sup.2 /g 370-650______________________________________
- 15. The process of claim 1 wherein the Group VI metal of the catalyst is molybdenum, and the Group VIII metal of the catalyst is cobalt.
- 16. The process of claim 1 wherein said catalyst comprises from about 10 to about 20 percent of a Group VIB metal, or compound thereof, and from about 4 to about 8 percent of a Group VIII metal, or compound thereof, or admixture of said Group VIB and Group VIII metals, or compounds thereof.
- 17. The process of claim 16 wherein the product of the reaction is characterized as follows:
- ______________________________________Gravity, .degree.API 14 to 30Heavy Metals, ppm 10-1001050.degree.F.+, Wt.% 10-50Asphaltenes (C.sub.5 insoluble), Wt.% 3-20Con Carbon, Wt.% 3-20______________________________________
- 18. The process of claim 17 wherein the product of the reaction is characterized as follows:
- ______________________________________Gravity, .degree.API 15-25Heavy Metals, ppm 40-801050.degree.F.+, Wt.% 25-40Asphaltenes (C.sub.5 insoluble), Wt.% 5-15Con Carbon, Wt.% 5-10______________________________________
- 19. A process for the demetallization, conversion and reduction of the Con. carbon content of the 1050.degree.F.+ materials of a heavy metals containing heavy crude or residua feed to 1050.degree.F.- material comprising
- contacting said feed, in the presence of added hydrogen, with a catalyst characterized as comprising a composite of from about 5 to about 30 percent of a Group VIB metal, from about 1 to about 12 percent of a Group VIII metal, or admixture of said Group VIB and Group VIII metals, and a porous inorganic oxide support, said catalyst including a combination of properties at least about 55 percent of its total pore volume of absolute diameter within the range of about 100A to about 200A; less than 10 percent of the pore volume results from pores of diameters 50A-; less than about 25 percent of the total pore volume results from pores of diameters ranging 300A+; surface areas range from about 200 m.sup.2 /g to about 600 m.sup.2 /g, and pore volumes range from about 0.6 to about 1.5 cc/g,
- at severity sufficient to convert at least about 50 percent of the 1050.degree.F.+ material to 1050.degree.F.- material, remove at least about 90 percent of the heavy metals from the feed, and reduce Con. carbon from about 50 percent to about 100 percent.
- 20. The process of claim 19 wherein from about 60 percent to about 75 percent of the 1050.degree.F.+ material is converted to 1050.degree.F.-, from about 97 percent to about 100 percent of the metals are removed from the feed, and Con. carbon is reduced from about 75 percent to about 90 percent.
- 21. The process of claim 19 wherein the feed is characterized as follows:
- ______________________________________Gravity, .degree.API 14-30Heavy Metals, ppm 10-1001050.degree.F.+ 10-50Asphaltenes (C.sub.5 insoluble), Wt.% 3-20Con Carbon, Wt.% 3-20______________________________________
- 22. The process of claim 19 wherein the product of the reaction is characterized as follows:
- ______________________________________Gravity .degree.API 18-30Heavy Metals, ppm <501050.degree.F.+, Wt.% 5-30Asphaltenes (C.sub.5 insoluble), Wt.% <3Con Carbon, Wt.% <5______________________________________
- 23. The process of claim 19 wherein the conditions of the reaction are characterized as follows:
- ______________________________________Temperature, .degree.F. (E.I.T.) Start-of-Run 700 End-of-Run 850Pressure, Psi 2000-10,000Hydrogen Rate, SCF/B 3000-20,000Space Velocity, LHSV 0.25-5.0______________________________________
- 24. The process of claim 19 wherein the catalyst comprises a combination of properties wherein at least about 70 percent of the total pore volume of said catalyst is of pore diameter ranging from about 100A to about 200A, less than about 1 percent of its total pore volume is of absolute pore diameters ranging from 0 to about 50A, less than about 1 percent of its total pore volume is of absolute pore diameters ranging 300A+, and the catalyst has a surface area ranging at least about 250 m.sup.2 /g to about 350 m.sup.2 /g and a pore volume ranging from about 0.9 cc/g to about 1.3 cc/g.
- 25. The process of claim 19 wherein the Group VI metal of the catalyst is molybdenum, and the Group VIII metal of the catalyst is nickel.
- 26. The process of claim 19 wherein said catalyst comprises from about 10 to about 20 percent of a Group VIB metal, or compound thereof, and from about 4 to about 8 percent of a Group VIII metal, or compound thereof, or admixture of said Group VIB and Group VIII metals, or compounds thereof.
- 27. The process of claim 19 wherein the feed is characterized as follows:
- ______________________________________Gravity, .degree.API 15-25Heavy Metals, ppm 40-801050.degree.F.+, Wt.% 25-40Asphaltenes (C.sub.5 insoluble), Wt.% 5-15Con Carbon, Wt.% 5-10______________________________________
- 28. The process of claim 27 wherein the product of the reaction is characterized as follows:
- ______________________________________Gravity, .degree.API 20-28Heavy Metals, ppm <51050.degree.F.+, Wt.% 10-25Asphaltenes (C.sub.5 insoluble), Wt.% <1Con Carbon, Wt.% <3______________________________________
- 29. A process for the demetallization and conversion of the 1050.degree.F.+ materials of a heavy metals containing heavy crude or residua feed to 1050.degree.F.- material comprising
- contacting in the presence of added hydrogen, a feed characterized as follows:
- ______________________________________Gravity, .degree.API -5 to 20Heavy Metals, ppm 5-10001050.degree.F.+, Wt.% 10-100Asphaltenes (C.sub.5 insoluble), Wt.% 5-50Con Carbon, Wt.% 5-50______________________________________
- with a catalyst characterized as comprising a composite of from about 5 to about 30 percent of a Group VIB metal, from about 1 to about 12 percent of a Group VIII metal, or admixture of said Group VIB and Group VIII metals, and a porous inorganic oxide support, said catalyst including a combination of properties comprising, when the catalyst is of size ranging up to 1/50 inch average particle size diameter, at least about 20 percent of its total pore volume of absolute diameter within the range of about 100A to about 200A; when the catalyst is of size ranging from about 1/50 inch up to 1/25 inch average particle size diameter, at least about 15 percent of its total pore volume of absolute diameter within the range of about 150A to about 250A; when the catalyst is of size ranging from about 1/25 inch to about 1/8 inch average particle size diameter, at least about 15 percent of its total pore volume of absolute diameter within the range of about 175A to about 275A; a surface area ranging at least about 200 m.sup.2 /g to about 600 m.sup.2 /g and a pore volume ranging from about 0.8 cc/g to about 3.0 cc/g,
- at severity sufficient to convert at least about 30 percent of the 1050.degree.F. material to 1050.degree.F.- material, while removing at least about 80 percent of the heavy metals from the feed, and feeding such feed, characterized as follows:
- ______________________________________Gravity, .degree.API 14 to 30Heavy Metals, ppm 10-1001050.degree.F.+, Wt.% 10-50Asphaltenes (C.sub.5 insoluble), Wt.% 3-20Con Carbon, Wt.% 3-20______________________________________
- into contact with a catalyst characterized as comprising a composite of from about 5 to about 30 percent of a Group VIB metal, from about 1 to about 12 percent of a Group VIII metal, or admixture of said Group VIB and Group VIII metals, and a porous inorganic oxide support, said catalyst including a combination of properties comprising at least about 55 percent of its total pore volume of absolute diameter within the range of about 100A to about 200A; less than 10 percent of the pore volume results from pores of diameters 50A-; less than about 25 percent of the total pore volume results from pores of diameters ranging 300A+; surface areas range from about 200 m.sup.2 /g to about 600 m.sup.2 /g, and pore volumes range from about 0.6 to about 1.5 cc/g,
- at severity sufficient to convert at least about 50 percent of the 1050.degree.F.+ material to 1050.degree.F.- material, remove at least about 90 percent of the heavy metals from the feed, and reduce Con. carbon from about 50 percent to about 100 percent.
RELATED APPLICATION
This is a continuation-in-part of application Ser. No. 440,303 filed Feb. 7, 1974, (now abandoned) which application is herewith incorporated by reference.
US Referenced Citations (12)
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
440303 |
Feb 1974 |
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