Claims
- 1. The process for the preparation of a hydrocracking catalyst comprising treating a zeolitic aluminosilicate which has a mole ratio of oxides in the anhydrous state of
- (0.85-1.1) M.sub.2/n O:Al.sub.2 O.sub.3 ; xSiO.sub.2
- wherein M is a cation having a valence of "n"; "x" has a value greater than 6.0 and equal to or less than 9.0, has an x-ray powder diffraction pattern having at least the d-spacings of Table A and has extraneous silicon atoms in the crystal lattice in the form of framework SiO.sub.4 tetrahedra comprising:
- (a) treating the aluminosilicate by at least one of the following steps: (i) thermally treating the aluminosilicate at an effective temperature for an effective time; and (ii) treating the aluminosilicate with a solution containing at least one rare earth cation selected from the group consisting of Groups IIA and IIIA, cerium, lanthanum, praseodymium, neodymium, promethium, samarium, europium, gadolinium, terbium, dysprosium, holmium, erbium, thulium, ytterbium, lutetium and mixtures thereof; with the proviso that each of the above steps may be carried out in any order for one or more times; and
- (b) providing an effective amount of at least one metal selected from the class consisting of Pt, Pd, Rh, Ru, Ni, W, Mo, Co, Ti, Cr and mixtures thereof.
- 2. The process of claim 1 for the preparation of a hydrocracking catalyst comprising the treatment of a zeolitic aluminosilicate which has a mole ratio of oxides in the dehydrated state of
- (0.85-1.1) M.sub.2/n O:Al.sub.2 O.sub.3 ; xSiO.sub.2
- wherein M is a cation having a valence of "n"; "x" has a value greater than 6.0 and equal to or less than 9.0, has an x-ray powder diffraction pattern having at least the d-spacings of Table A and having extraneous silicon atoms in the crystal lattice in the form of framework SiO.sub.4 tetrahedra by the steps of:
- (i) thermally treating the aluminosilicate at an effective temperature for an effective time;
- (ii) providing an effective amount of at least one metal selected from the class consisting of Pt, Pd, Rh, Ru, Ni, W, Mo, Co, Ti and Cr to the product of step (i) and
- (ii) to provide a hydrocracking catalyst; with the proviso that each of steps (i)
- (ii) and (iii) may be carried out in any order for one or more times.
- 3. The process of claim 1 wherein the steps comprise in any order:
- (i) thermally treating the aluminosilicate at an effective temperature for an effective time;
- (ii) treating the aluminosilicate with a solution of an ammonium salt;
- (iii) treating the aluminosilicate with a solution containing at least one multi-valent cation selected from the group consisting of Groups IIA and IIIA, cerium, lanthanum, praseodymium, neodymium, promethium, samarium, europium, gadolinium, terbium, dysprosium, holmium, erbium, thulium, ytterbium, lutetium and mixtures thereof;
- (iv) providing an effective amount of at least one metal selected from the class consisting of Pt, Pd, Rh, Ru, Ni, W, Mo, Co, Ti and Cr; with the proviso that each of steps (i), (ii), (iii) and (iv) may be carried out in any order for one or more times.
- 4. The process of claim 2 wherein "x" has a value greater than 6.0 and less than 8.0.
- 5. The process of claim 3 wherein "x" has a value greater than 6.0 and less than 8.0.
- 6. The process of claim 2 wherein the process is carried out by carrying out the steps in the order of (i), (ii) and then (iii).
- 7. The process of claim 2 wherein the process is carried out by carrying out the steps in the order (ii), (i) and then (iii).
- 8. The process of claim 2 wherein the process is carried out by carrying out the steps in the order (i), (ii), (iii) and then (iv).
- 9. The process of claim 3 wherein the process is carried out by carrying out the steps in the order (ii), (i), (iii) and then (iv).
- 10. The process of claim 3 wherein the process is carried out by carrying out the steps in the order (ii), (i), (ii) and then (iv).
- 11. The process of claim 3 wherein the process is carried out by carrying out the steps in the order (iii), (i), (ii) and then (iv).
- 12. The process of claim 2 wherein the effective temperature is greater than 300.degree. C.
- 13. The process of claim 12 wherein the effective temperature is greater than 500.degree. C.
- 14. The process of claim 3 wherein the effective temperature is greater than 300.degree. C.
- 15. The process of claim 14 wherein the effective temperature is greater than 500.degree. C.
- 16. The process of claim 2 wherein step (i) is carried out in the presence of steam.
- 17. The process of claim 16 wherein said steam is present in air in an amount of at least 20 percent by volume.
- 18. The process of claim 17 wherein said steam is present in air in an amount of at least 50 percent by volume.
- 19. The process of claim 3 wherein step (i) is carried out in the presence of steam.
- 20. The process of claim 19 wherein said steam is present in air in an amount of at least 20 percent by volume.
- 21. The process of claim 20 wherein said steam is present in air at least 50 percent.
- 22. The process of claim 2 wherein the effective time in step (i) is greater than 0.1 hour.
- 23. The process of claim 22 wherein the effective time in step (i) is between 0.1 hour and about 10 hours.
- 24. The process of claim 3 wherein the effective time in step (i) is greater than 0.1 hour.
- 25. The process of claim 24 wherein the effective time in step (i) is between 0.1 hour and about 10 hours.
- 26. The process of claim 2 wherein step (i) is carried out in the presence of at least 50 percent by volume steam in air at a temperature above 400.degree. C. for a period of at least 0.25 hour.
- 27. The process of claim 3 wherein step (i) is carried out in the presence of at least 50 percent by volume steam in air at a temperature above 400.degree. C. for a period of at least 0.25 hour.
- 28. The process of claim 2 wherein the zeolitic aluminosilicate is defined as having a chemical composition expressed in terms of mole fractions of framework tetrahedra as:
- [Al.sub.(a-N) Si.sub.b+(N-.DELTA.z) .quadrature.z]O.sub.2
- wherein; ##EQU7## has a value greater than 3 and equal to or less than 4.5; the change in defect structure factor .DELTA.z is less than 0.08; an increased silicon content in the framework, ##EQU8## of at least 0.5; and a cation equivalent expressed as a monovalent cation species, M.sup.+ /Al, from 0.85 to 1.1 and the characteristic crystal structure of zeolite Y as indicated by an X-ray powder diffraction pattern having at least the d-spacings set forth broadly in Table A.
- 29. The process of claim 28 wherein the change in defect structure .DELTA.z is less than 0.05.
- 30. The process of claim 28 wherein ##EQU9## has a value greater than 3.0 and less than 4.0.
- 31. The process of claim 3 wherein the zeolitic aluminosilicate is defined as having a chemical composition expressed in terms of mole fractions of framework tetrahedra as:
- [Al.sub.(a-N) Si.sub.b+(N-z) .quadrature..sub.z ]O.sub.2
- wherein ##EQU10## has a value greater than 3 and equal to or less than 4.5; the change in defect structure factor .DELTA.z is less than 0.08; an increased silicon content in the framework, ##EQU11## of at least 0.5; and a cation equivalent expressed as a monovalent cation species, M.sup.+/Al, from 0.85 to 1.1 and the characteristic crystal structure of zeolite Y as indicated by an X-ray powder diffraction pattern having at least the d-spacings set forth broadly in Table A.
- 32. The process of claim 31 wherein the change in defect structure .DELTA.z is less than 0.05.
- 33. The process of claim 31 wherein ##EQU12## has a value greater than 3.0 and less than 4.0.
- 34. The hydrocracking catalyst prepared by the process of claim 2.
- 35. The hydrocracking catalyst prepared by the process of claim 3.
- 36. The hydrocracking catalyst prepared by the process of claim 6.
- 37. The hydrocracking catalyst prepared by the process of claim 6.
- 38. The hydrocracking catalyst prepared by the process of claim 7.
- 39. The hydrocracking catalyst prepared by the process of claim 9.
- 40. The hydrocracking catalyst prepared by the process of claim 10.
- 41. The hydrocracking catalyst prepared by the process of claim 11.
- 42. The hydrocracking catalyst comprising a zeolitic aluminosilicate having a mole ratio of oxides in the dehydrated state of
- (0.85-1.1)M.sub.2/n O:Al.sub.2 O.sub.3 :xSiO.sub.2
- wherein M is a cation having a valence of "n"; "x" has a value greater than 6.0 and equal to or less than 9.0; has an x-ray powder diffraction pattern having at least the d-spacings of Table A; has extraneous silicon atoms in the crystal lattice in the form of framework SiO.sub.4 tetrahedra; wherein said zeolitic aluminosilicate has between about 5 ion-exchange percent and about 80 ion-exchange percent of the cations selected from the group consisting of Groups IIA, IIIA, cerium, lanthanum, praseodymium, neodymium, promethium, samarium, europium, gadolinium, terbium, dysprosium, holmium, erbium, thulium, ytterbium, lutetium and mixtures thereof, and between 0.05 and 30 percent by weight of at least one metal selected from the group consisting of Pt, Pd, Rh, Ru, Ni, W, Mo, Co, Ti, Cr and mixtures thereof.
- 43. The hydrocracking catalyst of claim 40 wherein the value of "x" is greater than 6.0 and less than 8.0.
- 44. The hydrocracking catalyst of claim 42 wherein the zeolitic aluminosilicate is defined as having a chemical composition expressed in terms of mole fractions of framework tetrahedra as:
- [Al.sub.(a-N) Si.sub.b+(N-.DELTA.z) .quadrature..sub.z ]O.sub.2
- wherein; ##EQU13## has a value greater than 3.0 and equal to or less than 9.0; the change in defect structure factor .DELTA.z is less than 0.08; an increased silicon content in the framework, ##EQU14## of at least 0.5; and a cation equivalent expressed as a monovalent cation species, M.sup.+ /Al, from 0.85 to 1.1 and the characteristic crystal structure of zeolite Y as indicated by an X-ray powder diffraction pattern having at least the d-spacings set forth broadly in Table A.
- 45. The hydrocracking catalyst of claim 43 wherein the change in defect structure .DELTA.z is less than 0.05.
- 46. The hydrocracking catalyst of claim 43 wherein ##EQU15## has a value greater than 3.0 and less than 4.0.
- 47. The hydrocracking catalyst of claim 42 wherein the metal is selected from the group consisting of Pt, Pd, Rh, Ru and mixtures thereof and is present in an amount between 0.05 and 1.5 percent by weight.
- 48. The hydrocracking catalyst of claim 42 wherein the metal is selected from the group consisting of Ni, W, Mo, Co, Ti, Cr and mixtures thereof and is present in an amount between 0.5 and 30 percent by weight.
- 49. A process for preparing a hydrocarbon conversion catalyst for conversion of a hydrocarbon feedstock under effective hydrocracking conditions in the presence of hydrogen to produce lower boiling hydrocarbons wherein the process comprises:
- (a) treating with an effective amount of at least one rare earth cation, a zeolitic aluminosilicate which has a mole ratio of oxides in the anhydrous state of
- (0.85-1.1)M.sub.2/n O:Al.sub.2 O.sub.3 :xSiO.sub.2
- wherein M is a cation having a valence of "n"; "x" has a value greater than 6.0 and equal to or less than 9.0, has an X-ray powder diffraction pattern having at least the d-spacings of Table A and has extraneous silicon atoms in the crystal lattice in the form of framework SiO.sub.4 tetrahedra;
- (b) thermally treating the product of step (a) at an effective temperature in the presence of an effective amount of steam;
- (c) ammonium-exchanging the product of step (b); and
- (d) providing the product of step (c) with an effective amount of at least one hydrogenation component selected from the group consisting of Pt, Pd, Rh, and Ru.
- 50. The process of claim 49 wherein the aluminosilicate of step (a) is prepared by inserting silicon atoms as SiO.sub.4 tetrahedra into the crystal lattice of said aluminosilicate zeolite by contacting a crystalline Y zeolite aluminosilicate having a SiO.sub.2 /Al.sub.2 O.sub.3 molar ratio of at least 3 and pore diameters of at least 3 Angstroms with a fluorosilicate salt in an amount of at least 0.0075 moles per 100 grams of the zeolite aluminosilicate on an anhydrous basis, said fluorosilicate salt being in the form of an aqueous solution having a pH value within the range of 3 to 7 and brought into contact with the Y zeolite aluminosilicate at a rate sufficiently slow to preserve at least 80 percent of the crystallinity of the starting Y zeolite aluminosilicate.
- 51. Process according to claim 50 wherein the starting crystalline Y zeolite aluminosilicate is at least partially in the ammonium cationic form.
- 52. Process according to claim 51 wherein the fluorosilicate salt is ammonium fluorosilicate.
- 53. Process according to claim 49 for preparing a hydrocarbon conversion catalyst for conversion of a hydrocarbon feedstock under effective hydrocracking conditions in the presence of hydrogen to produce lower boiling hydrocarbons wherein the process comprises:
- (a) treating with an effective amount of at least one rare earth cation in an amount between about 5 ion-exchange percent and about 80 ion-exchange percent, a zeolitic aluminosilicate which has a mole ratio of oxides in the anhydrous state of
- (0.85-1.1)M.sub.2/n O:Al.sub.2 O.sub.3 :xSiO.sub.2
- wherein M is a cation having a valence of "n"; "x" has a value greater than 6.0 and equal to or less than 9.0, has an X-ray powder diffraction pattern having at least the d-spacings of Table A and has extraneous silicon atoms in the crystal lattice in the form of framework SiO.sub.4 tetrahedra;
- (b) thermally treating the product of step (a) at an effective temperature greater than 300.degree. C. in the presence of an effective amount of steam in an amount of at least 20 percent by volume;
- (c) ammonium-exchanging the product of step (b); and
- (d) providing the product of step (c) with an effective amount between about 0.05 and about 30 percent by weight of at least one hydrogenation component selected from the group consisting of Pt, Pd, Rh, and Ru.
- 54. A hydrocracking catalyst for the conversion of a hydrocarbon feedstock under effective hydrocracking conditions in the presence of hydrogen to produce lower boiling hydrocarbons which is prepared by the following steps:
- (a) treating with an effective amount of at least one rare earth cation, a zeolitic aluminosilicate which has a mole ratio of oxides in the anhydrous state of
- (0.85-1.1)M.sub.2/n O:Al.sub.2 O.sub.3 :xSiO.sub.2
- wherein M is a cation having a valence of "n"; "x" has a value greater than 6.0 and equal to or less than 9.0, has an X-ray powder diffraction pattern having at least the d-spacings of Table A and has extraneous silicon atoms in the crystal lattice in the form of framework SiO.sub.4 tetrahedra;
- (b) thermally treating the product of step (a) at an effective temperature in the presence of an effective amount of steam;
- (c) ammonium-exchanging the product of step (b); and
- (d) providing the product of step (c) with an effective amount of at least one hydrogenation component selected from the group consisting of Pt, Pd, Rh and Ru.
- 55. The hydrocracking catalyst of claim 53 wherein the aluminosilicate of step (a) is prepared by inserting silicon atoms as SiO.sub.4 tetrahedra into the crystal lattice of said aluminosilicate zeolite by contacting a crystalline Y zeolite aluminosilicate having a SiO.sub.2 /Al.sub.2 O.sub.3 molar ratio of at least 3 and pore diameters of at least 3 Angstroms with a fluorosilicate salt in an amount of at least 0.0075 moles per 100 grams of the zeolitic aluminosilicate on an anhydrous basis, said fluorosilicate salt being in the form of an aqueous solution having a pH value within the range of 3 to 7 and brought into contact with the Y zeolite aluminosilicate at a rate sufficiently slow to preserve at least 80 percent of the crystallinity of the starting Y zeolite aluminosilicate.
- 56. The hydrocracking catalyst of claim 55 wherein the starting crystalline Y zeolite aluminosilicate is at least partially in the ammonium cationic form.
- 57. The hydrocracking catalyst of claim 56 wherein the fluorosilicate salt is ammonium fluorosilicate.
- 58. A hydrocracking catalyst according to claim 54 for the conversion of a hydrocarbon feedstock under effective hydrocracking conditions in the presence of hydrogen to produce lower boiling hydrocarbons wherein said catalyst is prepared by the process comprising:
- (a) treating with an effective amount of at least one rare earth cation in an amount between about 5 ion-exchange percent and about 80 ion-exchange percent, a zeolitic aluminosilicate which has a mole ratio of oxides in the anhydrous state of
- (0.85-1.1)M.sub.2/n O:Al.sub.2 O.sub.3 :xSiO.sub.2
- wherein M is a cation having a valence of "n"; "x" has a value greater than 6.0 and equal to or less than 9.0, has an X-ray powder diffraction pattern having at least the d-spacings of Table A and has extraneous silicon atoms in the crystal lattice in the form of framework SiO.sub.4 tetrahedra;
- (b) thermally treating the product of step (a) at an effective temperature greater than 300.degree. C. in the presence of an effective amount of steam in an amount of at least 20 percent by volume;
- (c) ammonium-exchanging the product of step (b); and
- (d) providing the product of step (c) with an effective amount between about 0.05 and about 30 percent by weight of at least one hydrogenation component selected from the group consisting of Pt, Pd, Rh, and Ru.
Parent Case Info
This application is a continuation of application Ser. No. 490,951 filed May 2, 1983, now abandoned.
US Referenced Citations (10)
Foreign Referenced Citations (1)
Number |
Date |
Country |
172578 |
Feb 1986 |
EPX |
Continuations (1)
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Number |
Date |
Country |
Parent |
490951 |
May 1983 |
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