Claims
- 1. A process for converting a feedstock comprising C.sub.2 + olefins, C.sub.2 -C.sub.7 paraffins or a mixture thereof to conversion product comprising C.sub.5 + hydrocarbon compounds which comprises contacting said feedstock at conversion conditions with a catalyst composition comprising a porous inorganic crystalline composition of enhanced cation exchange capacity prepared by a method for increasing the total amount of lattice metal in the framework of a porous inorganic crystalline composition comprising 98 mole percent or more SiO.sub.2 and 2 mole percent or less oxides of at least one initial lattice metal selected from those of Groups IIIB, IVB, VIB, VIIB and VIII of the Periodic Table of the Elements and having anhydrous anionic framework molar composition expressed by the formula
- (1-x)SiO.sub.2 :(x)MO.sub.n/2
- wherein x is less than or equal to 0.02, M is said initial lattice metal and n is the valance of M, which method comprises contacting in an anhydrous system said crystalline composition at a temperature of from about 100.degree. C. to about 850.degree. C. with a volatile compound comprising at least one metal to be coordinated in the framework of said crystalline composition for a time sufficient to increase the total amount of lattice metal in the framework of said crystalline composition wherein said total amount is greater than the amount of said initial lattice metal prior to said contacting, said volatile compound comprising said metal having a radius ratio of less than about 0.6 and a size and shape which permits said volatile compound to enter the pores of said crystalline composition at the contacting temperature,
- converting said volatile compound contacted inorganic crystalline composition to the hydrogen or hydronium form,
- and recovering said porous inorganic crystalline composition of enhanced cation exchange capacity.
- 2. The process of claim 1 wherein said radius ratio is greater than about 0.1.
- 3. The process of claim 1 wherein said conversion to hydrogen or hydronium form comprises calcining said volatile compound contacted crystalline composition at a temperature of from about 200.degree. C. to about 600.degree. C.
- 4. The process of claim 1 wherein said conversion to hydrogen or hydronium form comprises contacting said volatile compound contacted crystalline composition with an aqueous acid or ammonium salt solution thereafter calcining said material at a temperature of from about 200.degree. C. to about 600.degree. C.
- 5. The process of claim 4 wherein the ammonium salt is selected from the group consisting of ammonium nitrate, ammonium sulfate and ammonium chloride, and said acid is selected from the group consisting of acetic acid, hydrochloric acid and nitric acid.
- 6. The process of claim 1 wherein M is selected from the group consisting of iron, boron, aluminum and combinations thereof.
- 7. The process of claim 6 wherein the silica/initial lattice metal oxide mole ratio is greater than about 100.
- 8. The process of claim 6 wherein the silica/initial lattice metal oxide mole ratio is greater than about 500.
- 9. The process of claim 1 wherein said crystalline composition has the structure of ZSM-5, ZSM-11, ZSM-5/ZSM-11 intermediate, ZSM-20, ZSM-48, zeolite Y or zeolite Beta.
- 10. The process of claim 1 wherein said volatile compound having a radius ratio of less than about 0.6 has a central atom selected from the group consisting of Al.sup.+3, B.sup.+3, Co.sup.+2, Fe.sup.+3, Ga.sup.+3, and Sn.sup.+4.
- 11. The process of claim 1 wherein said catalyst composition further comprises a matrix material.
- 12. The process of claim 11 wherein said matrix material comprises alumina.
- 13. A process of claim 1 wherein said conversion conditions include a temperature of from about 100.degree. C. to about 700.degree. C., a pressure of from about 10 kPa to about 11000 kPa, a liquid hourly space velocity of from about 0.1 hr.sup.-1 to about 500 hr.sup.-1 and a hydrogen/hydrocarbon mole ratio of from 0 to about 20.
- 14. A process for converting feedstock comprising C.sub.2 + olefins, C.sub.2 -C.sub.7 paraffins or a mixture thereof to conversion product comprising C.sub.5 + hydrocarbon compounds which comprises contacting said feedstock at conversion conditions with a catalyst composition comprising a crystalline composition prepared by a method for enhancing the catalytic activity of a porous inorganic crystalline composition comprising 98 mole percent or more SiO.sub.2 and 2 mole percent or less oxides of at least one initial lattice metal selected from those of Groups IIIB, IVB, VIB, VIIB, and VIII of the Periodic Table of the Elements and having an anhydrous anionic framework molar composition expressed by the formula
- (1-x)SiO.sub.2 :(x)MO.sub.n/2
- wherein x is less than or equal to 0.02, M is said initial lattice metal and n is the valance of M, said crystalline composition having a total cation exchange capacity of less than about 0.7 meq/gram, which method comprises the steps of
- calcining said crystalline composition at a temperature of from about 200.degree. C. to about 600.degree. C.,
- contacting in an anhydrous system said calcined crystalline composition at a temperature of from about 100.degree. C. to about 850.degree. C. with a volatile compound comprising at least one metal to be tetrahedrally coordinated in the framework of said crystalline composition for a time sufficient to increase the total amount of tetrahedrally coordinated lattice metal in the framework of said crystalline composition whereby said total amount is greater than the amount of said initial lattice metal prior to said contacting, said volatile compound comprising said metal having a radius ratio of less than 0.6 and a size and shape which permits said volatile compound to enter the pores of said crystalline composition at the contacting temperature and
- converting said volatile compound contacted crystalline composition to the hydrogen or hydronium form.
- 15. The process of claim 14 wherein said conversion to hydrogen or hydronium form comprises calcining said volatile compound contacted crystalline composition at a temperature of from about 200.degree. C. to about 600.degree. C.
- 16. The process of claim 14 wherein said conversion to hydrogen or hydronium form comprises contacting said volatile compound contacted crystalline composition with an aqueous acid or ammonium salt solution and thereafter calcining said material at a temperature of from about 200.degree. C. to about 600.degree. C.
- 17. The process of claim 16 wherein said ammonium salt is selected from the group consisting of ammonium nitrate, ammonium sulfate and ammonium chloride, and said acid is selected from the group consisting of acetic acid, hydrochloric acid and nitric acid.
- 18. The process of claim 14 wherein M is selected from the group consisting of iron, boron, aluminum, and combinations thereof.
- 19. The process of claim 18 wherein the silica/initial lattice metal oxide mole ratio is greater than about 100.
- 20. The process of claim 14 wherein said crystalline composition has the structure of ZSM-5, ZSM-11, ZSM-5/ZSM-11 intermediate, ZSM-20, ZSM-48, zeolite Y or zeolite Beta.
- 21. The process of claim 14 wherein said volatile compound having a radius ratio of less than about 0.6 has a central atom selected from the group consisting of Al.sup.+3, B.sup.+3, Co.sup.+2, Fe.sup.+3, Ga.sup.+3, and Sn.sup.+4.
- 22. A process for converting feedstock comprising C.sub.2 -C.sub.7 olefins to conversion product comprising C.sub.5 + hydrocarbon compounds which comprises contacting said feedstock at conversion conditions with a catalyst composition comprising a crystalline composition prepared by a method for enhancing the catalytic activity of a porous inorganic crystalline composition comprising 98 mole percent or more SiO.sub.2 and 2 mole percent or less oxides of at least one initial lattice metal selected from those of Groups IIIB, IVB, VIB, VIIB, and VIII of the Periodic Table of the Elements and having an anhydrous anionic framework molar composition expressed by the formula
- (1-x)SiO.sub.2 :(x)MO.sub.n/2
- wherein x is less than or equal to 0.02, M is said initial lattice metal and n is the balance of M, said crystalline composition having a total cation exchange capacity of less than about 0.7 meq/gram, which method comprises the steps of
- calcining said crystalline composition at a temperature of from about 200.degree. C. to about 600.degree. C.,
- contacting in an anhydrous system said calcined crystalline composition at a temperature of from about 100.degree. C. to about 850.degree. C. with a volatile compound comprising at least one metal to be tetrahedrally coordinated in the framework of said crystalline composition for a time sufficient to increase the total amount of tetrahedrally coordinated lattice metal in the framework of said crystalline composition whereby said total amount is greater than the amount of said initial lattice metal prior to said contacting, said volatile compound comprising said metal having a radius ratio of less than 0.6 and a size and shape which permits said volatile compound to enter the pores of said crystalline composition at the contacting temperature and
- converting said volatile compound contacted crystalline composition to the hydrogen or hydronium form.
- 23. The process of claim 22 wherein said conversion conditions include a temperature of from about 190.degree. C. to about 375.degree. C., a pressure of from about 400 kPa to about 11000 kPa and a liquid hourly space velocity of from about 0.3 hr.sup.-1 to about 2 hr.sup.-1.
- 24. The process of claim 23 wherein said conversion conditions include a temperature of from about 190.degree. C. to about 315.degree. C., a pressure of from about 4200 kPa to about 11000 kPa and a liquid hourly space velocity of from about 0.3 hr.sup.-1 to about 1 hr.sup.-1.
- 25. The process of claim 23 wherein said conversion conditions include a temperature of from about 230.degree. C. to about 375.degree. C., a pressure of from about 400 kPa to about 4700 kPa and a liquid hourly space velocity of from about 0.3 hr.sup.-1 to about 2 hr.sup.-1.
CROSS-REFERENCE TO RELATED APPLICATION
This application is a continuation-in-part of application Ser. No. 493,192, filed May 10, 1983, now U.S. Pat. No. 4,576,805, which is a continuation-in-part of application Ser. No. 412,362, filed Aug. 27, 1982, which is a continuation-in-part of application Ser. No. 333,369, filed Dec. 22, 1981, both abandoned.
US Referenced Citations (20)
Continuation in Parts (3)
|
Number |
Date |
Country |
Parent |
493192 |
May 1983 |
|
Parent |
412362 |
Aug 1982 |
|
Parent |
333369 |
Dec 1981 |
|