Claims
- 1. A process for alkylating an isoparaffin with an olefin comprising contacting an isoparaffin having from 4 to 8 carbon atoms with an olefin having from 2 to 12 carbon atoms in an alkylation reaction zone at temperature from about -20.degree. C. to about 200.degree. C. in the presence of a Bronsted acid and an inorganic, porous crystalline phase material having, after calcination, a hexagonal arrangement of uniformly-sized pores having diameters of at least about 13 Angstrom Units and exhibiting a hexagonal electron diffraction pattern that can be indexed with a d.sub.100 value greater than about 18 Angstrom Units, wherein the molar ratio of said isoparaffin to said olefin is from about 1:1 to about 250:1 to evolve a product stream containing C.sub.5 + alkylate.
- 2. The process of claim 4 wherein said crystalline phase has an X-ray diffraction pattern following calcination with at least one peak whose d-spacing corresponds to the d.sub.100 value from the electron diffraction pattern.
- 3. The process of claim 1 wherein said crystalline phase exhibits a benzene adsorption capacity of greater than about 15 grams benzene per 100 grams at 50 torr and 25.degree. C.
- 4. The process of claim 1 wherein said crystalline phase has a composition expressed as follows:
- M.sub.n/q (W'.sub.a X.sub.b Y.sub.c Z.sub.d O.sub.h)
- wherein M is one or more ions; n is the charge of the composition excluding M expressed as oxides; q is the weighted molar average valence of M; n/q is the number of moles or mole fraction of M; W' is one or more divalent elements; X is one or more trivalent elements; Y is one or more tetravalent elements; Z is one or more pentavalent elements; a, b, c, and d are mole fractions of W', X, Y, and Z, respectively; h is a number of from 1 to 2.5; and (a+b+c+d)=1.
- 5. The process of claim 4 wherein the sum (a+b+c) is greater than d, and h=2.
- 6. The process of claim 4 wherein W' comprises a divalent first row transition metal or magnesium; X comprises aluminum, boron, gallium or iron; Y comprises silicon or germanium; and Z comprises phosphorus.
- 7. The process of claim 4 wherein W' comprises cobalt, X comprises aluminum, Y comprises silicon and Z comprises phosphorus.
- 8. The process of claim 5 wherein W' comprises a divalent first row transition metal or magnesium; X comprises aluminum, boron, gallium or iron; Y comprises silicon or germanium; and Z comprises phosphorus.
- 9. The process of claim 5 wherein W' comprises cobalt, X comprises aluminum, Y comprises silicon and Z comprises phosphorus.
- 10. The process of claim 4 wherein a and d are 0 and h=2.
- 11. The process of claim 10 wherein X comprises aluminum, boron, gallium or iron and Y comprises silicon or germanium.
- 12. The process of claim 10 herein X comprises aluminum and Y comprises silicon.
- 13. The process of claim 1 wherein said porous crystalline phase has an X-ray diffraction pattern substantially as shown in FIG. 1.
- 14. The process of claim 1 wherein said porous crystalline phase has an X-ray diffraction pattern substantially as shown in FIG. 2.
- 15. The process of claim 1 wherein said porous crystalline phase has an X-ray diffraction pattern substantially as shown in FIG. 3.
- 16. The process of claim 1 wherein said porous crystalline phase has an X-ray diffraction pattern substantially as shown in FIG. 4.
- 17. The process of claim 1 wherein said porous crystalline phase has an X-ray diffraction pattern substantially as shown in FIG. 5.
- 18. The process of claim 1 wherein said porous crystalline phase has an X-ray diffraction pattern substantially as shown in FIG. 6.
- 19. The process of claim 1 wherein said porous crystalline phase has an X-ray diffraction pattern substantially as shown in FIG. 7.
- 20. The process of claim 1 wherein said porous crystalline phase has an X-ray diffraction pattern substantially as shown in FIG. 8.
- 21. The process of claim 1 wherein said porous crystalline phase has an X-ray diffraction pattern substantially as shown in FIG. 9.
- 22. The process of claim 1 wherein said porous crystalline phase has an X-ray diffraction pattern substantially as shown in FIG. 10.
- 23. The process of claim 1 wherein said porous crystalline phase has an X-ray diffraction pattern substantially as shown in FIG. 11.
- 24. The process of claim 1 wherein said porous crystalline phase has an X-ray diffraction pattern substantially as shown in FIG. 12.
- 25. The process of claim 1 wherein said porous crystalline phase has an X-ray diffraction pattern substantially as shown in FIG. 13.
- 26. The process of claim 1 wherein said porous crystalline phase has an X-ray diffraction pattern substantially as shown in FIG. 14.
- 27. The process of claim 1 wherein said porous crystalline phase has an X-ray diffraction pattern substantially as shown in FIG 15.
- 28. A process for alkylating an isoparaffin with an olefin comprising contacting an isoparaffin having from 4 to 8 carbon atoms with an olefin having from 2 to 12 carbon atoms in an alkylation reaction zone at temperature from about -20.degree. C. to about 200.degree. C. in the presence of a Bronsted acid and a crystalline phase material having a hexagonal arrangement of uniformly-sized pores having diameters of at least about 13 Angstrom Units, and a composition, expressed on an anhydrous basis as follows:
- rRM.sub.n/q (W'.sub.a X.sub.b Y.sub.c Z.sub.d O.sub.h)
- wherein R is the total organic material not included in M; r is the number of moles or mole fraction of R; M is one or more ions; n is the charge of the composition excluding M expressed as oxides; q is the weighted molar average valence of M; n/q is the number of moles or mole fraction of M; W' is one or more divalent elements; X is one or more trivalent elements; Y is one or more tetravalent elements; Z is one or more pentavalent elements; a, b, c, and d are mole fractions of W', X, Y, and Z, respectively; h is a number of from 1 to 2.5; and (a+b+c+d)=1, said crystalline phase exhibiting a hexagonal electron diffraction pattern that can be indexed with a d.sub.100 value greater than about 18 Angstrom Units.
- 29. The process of claim 28 wherein said crystalline phase has an X-ray diffraction pattern following calcination with at least one peak whose d-spacing corresponds to the d.sub.100 value from the electron diffraction pattern.
- 30. The process of claim 28 wherein said crystalline phase exhibits a benzene adsorption capacity of greater than about 15 grams benzene per 100 grams at 50 torr and 25.degree. C.
- 31. The process of claim 28 having original ions replaced, at least in part, with an ion or a mixture of ions selected from the group consisting of hydrogen and hydrogen precursors, rare earth metals, and metals of Groups IA, IIA, VIIA, VIIIA, IB, IIB, IIIB, IVB and VIIB of the Periodic Table of the Elements.
- 32. The process of claim 28 further comprising thermally treating said crystalline phase material.
- 33. The process of claim 31 further comprising thermally treating said crystalline phase material.
- 34. The process of claim 31 wherein said replacing ions comprise hydrogen or a hydrogen precursor.
- 35. The process of claim 31 wherein said replacing ions comprise metals.
- 36. A process for alkylating an isoparaffin with an olefin comprising contacting an isoparaffin having from 4 to 8 carbon atoms with an olefin having from 2 to 12 carbon atoms in an alkylation reaction zone at temperature from about -20.degree. C. to about 200.degree. C. in the presence of a Bronsted acid and an an inorganic, porous crystalline phase giving an X-ray diffraction pattern following calcination with at least two peaks at positions greater than about 10 Angstrom Units d-spacing, at least one of which is at a position greater than about 18 Angstrom Units d-spacing, and no peaks at positions less than about 10 Angstrom Units d-spacing with relative intensity greater than about 20% of the strongest peak, and exhibiting a hexagonal electron diffraction pattern that can be indexed with a d.sub.100 value greater than about 18 Angstrom Units.
- 37. The process of claim 36 wherein said X-ray diffraction pattern following calcination has at least one peak whose d-spacing corresponds to the d.sub.100 value from the electron diffraction pattern.
- 38. The process of claim 36 wherein said crystalline phase exhibits a benzene adsorption capacity of greater than about 15 grams benzene per 100 grams at 50 torr and 25.degree. C..
- 39. A process for alkylating an isoparaffin with an olefin comprising contacting an isoparaffin having from 4 to 8 carbon atoms with an olefin having from 2 to 12 carbon atoms in an alkylation reaction zone at temperature from about -20.degree. C. to about 200.degree. C. in the presence of a Bronsted acid and a crystalline phase having a composition, expressed on an anhydrous basis, as follows:
- rRM.sub.n/q (W'.sub.a X.sub.b Y.sub.c Z.sub.d O.sub.h)
- wherein R is the total organic material not included in M; r is the number of moles or mole fraction of R; M is one or more ions; n is the charge of the composition excluding M expressed as oxides; q is the weighted molar average valence of M; n/q is the number of moles or mole fraction of M; W' is one or more divalent elements; X is one or more trivalent elements; Y is one or more tetravalent elements; Z is one or more pentavalent elements; a, b, c, and d are mole fractions of W', X, Y, and Z, respectively; h is a number of from 1 to 2.5; and (a+b +c+d)=1, said crystalline phase exhibiting an X-ray diffraction pattern following calcination with at least two peaks at positions greater than about 10 Angstrom Units d-spacing, at least one of which is at a position greater than about 18 Angstrom Units d-spacing, and no peaks at positions less than about 10 Angstrom Units d-spacing with relative intensity greater than about 20% of the strongest peak, and exhibiting a hexagonal electron diffraction pattern that can be indexed with a d.sub.100 value greater than about 18 Angstrom Units.
- 40. The process of claim 39 wherein said X-ray diffraction pattern following calcination has at least one peak whose d-spacing corresponds to the d.sub.100 value from the electron diffraction pattern.
- 41. The process of claim 39 wherein said crystalline phase exhibits a benzene adsorption capacity of greater than about 15 grams benzene per 100 grams at 50 torr and 25.degree. C.
- 42. The process of claim 39 wherein said crystalline phase has original ions replaced, at least in part, with an ion or a mixture of ions selected from the group consisting of hydrogen and hydrogen precursors, rare earth metals, and metals of Groups IA, IIA, VIIA, VIIIA, IB, IIB, IIIB, IVB and VIIB of the Periodic Table of the Elements.
- 43. The process of claim 39 further comprising thermally treating said crystalline phase material.
- 44. The process of claim 42 further comprising thermally treating said crystalline phase material.
- 45. The process of claim 42 wherein said replacing ions comprise hydrogen or a hydrogen precursor.
- 46. The process of claim 42 wherein said replacing ions comprise metals.
- 47. The process of claim 42 wherein said crystalline phase is composited with a matrix.
- 48. The process of claim 47 wherein said matrix comprises alumina, silica, silica-alumina, titania, zirconia, clay or combination thereof.
CROSS-REFERENCE TO RELATED APPLICATION
This application is a continuation-in-part of application Ser. No. 07/736,275, filed Jul. 25, 1991, now abandoned.
US Referenced Citations (4)
Continuation in Parts (1)
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Number |
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736275 |
Jul 1991 |
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