Claims
- 1. A process for producing xylenes from reformate, which process comprises:
(a) providing a reformate containing hydrogen, C1-C5 hydrocarbons, C6-C7 hydrocarbons comprising benzene, toluene or mixtures thereof, and C8+ hydrocarbons; (b) removing at least a portion of said hydrogen from said reformate to produce a product having less hydrogen content than said reformate; (c) methylating at least a portion of the benzene, toluene, or mixtures thereof present in said product in a methylation reaction zone with a methylating agent under vapor phase conditions effective for the methylation and in the presence of a catalyst effective for the methylation to produce a resulting product having a higher xylenes content than said reformate.
- 2. A process recited in claim 1, further comprising the step of removing at least a portion of said C1-C5 hydrocarbons from said product prior to step (c).
- 3. The process recited in claim 2, further comprising the step of removing at least a portion of said C8+ hydrocarbons from said product prior to step (c).
- 4. The process recited in claim 1, further comprising the step of removing at least a portion of said C8+ hydrocarbons from said product prior to step (c).
- 5. The process recited in claim 1, wherein a hydrocarbon stream comprising benzene, toluene, or mixtures thereof is added to said product, reformate, or both.
- 6. The process recited in claim 1, wherein hydrogen is supplied to said methylation reaction zone.
- 7. The process recited in claim 1, wherein said conditions include a temperature from about 300° C. to about 700° C., a pressure from about 1 to 1000 psig, a weight hourly space velocity of between about 0.1 and about 200, a molar ratio of methylating agent to toluene and benzene between about 0.1:1 to about 20:1 and a weight hourly space velocity of between about 0.1 and about 200.
- 8. The process recited in claim 1, wherein said catalyst comprises an intermediate pore size molecular sieve.
- 9. The process recited in claim 8, wherein said intermediate pore size molecular sieve is selected from the group consisting of AEL, AFI, MWW, MFI, MEL, MFS, MEI, MTW, EUO, MTT, HEU, FER, and TON.
- 10. The process recited in claim 8, wherein said intermediate pore size molecular sieve is selected from the group consisting of ZSM-5, ZSM-11, ZSM-12, ZSM-22, ZSM-23, ZSM-34, ZSM-35, ZSM-38, ZSM-48, ZSM-50, ZSM-57, MCM-22, MCM-49, MCM-56, and SAPO-11.
- 11. The process recited in claim 10, wherein said catalyst further comprises at least one hydrogenation/dehydrogenation metal.
- 12. The process recited in claim 11, wherein said at least one hydrogenation/dehydrogenation metal is a Group VIII metal.
- 13. The process recited in claim 8, wherein said molecular sieve is MFI or MEL.
- 14. The process recited in claim 8, wherein said molecular sieve further comprises a selectivating agent.
- 15. The process recited in claim 14, wherein said a selectivating agent is selected from the group consisting of silica, coke, phosphorus, alkaline earth metal oxides, rare earth metal oxides, lanthanum oxide, boron oxide, titania, antimony oxide, manganese oxide, and mixtures thereof.
- 16. The process recited in claim 15, wherein said molecular sieve is ZSM-5.
- 17. The process recited in claim 1, further comprising the step of recovering the xylenes from said resulting product.
- 18. The process recited in claim 8, wherein said methylating agent is selected from the group consisting of methanol, dimethylether, methylchloride, methylbromide, methylcarbonate, acetaldehyde, dimethoxyethane, acetone, and dimethylsulfide.
- 19. The process recited in claim 18, wherein said methylating agent is injected into said methylation reaction zone through more than one feed point.
- 20. The process recited in claim 8, wherein said methylating agent is formed from synthesis gas.
- 21. The process recited in claim 1, wherein said reformate is formed by the catalytic reforming of naphtha.
- 22. The process recited in claim 21, wherein said reforming is carried out a temperature in the range of from about 427° C. to about 565° C., a pressure in the range of from about 50 psig (446 kPa) to about 500 psig (3,549 kPa), a mole ratio of hydrogen to hydrocarbons from 1:1 to 10:1 and a liquid hour space velocity of between 0.3 and 5 and in the presence of a catalyst suitable for the catalytic reforming of naphtha.
- 23. The process recited in claim 22, wherein the catalyst used in said reforming is a bifunctional catalyst.
- 24. The process recited in claim 23, wherein said bifunctional catalyst is an acidic reforming catalyst comprising a metallic oxide support and a Group VIII metal.
- 25. The process recited in claim 24, wherein said metallic oxide support of said bifunctional catalyst is silica or alumina and said Group VIII metal is platinum.
- 26. The process recited in claim 24, wherein said bifunctional catalyst further comprises a metal promoter.
- 27. The process recited in claim 26, wherein said metal promoter is tin, rhenium, or mixtures thereof.
- 28. The process recited in claim 22, wherein the catalyst used in said reforming is a monofunctional catalyst.
- 29. The process recited in claim 24, wherein said monofunctional catalyst comprises a molecular sieve selected from the group consisting of zeolite L, zeolite X, zeolite Beta, zeolite Y, and ETS-10.
- 30. The process recited in claim 29, wherein said monofunctional catalyst further comprises from about 0.1 to about 5% of at least one hydrogenation/dehydrogenation metal selected from the group consisting of a Group VIII metal, a Group VIIB metal, and mixtures thereof, based on the weight of the catalyst.
- 31. The process recited in claim 30, wherein said monofunctional catalyst further comprises a metal promoter and said Group VIII metal is platinum.
- 32. The process recited in claim 1, wherein said reformate is formed by the dehydrocyclo-oligomerization of C2-C5 aliphatics.
- 33. The process recited in claim 32, wherein a catalyst comprising an intermediate pore size molecular sieve is used in the dehydrocyclo-oligomerization of C2-C5 aliphatics.
- 34. The process recited in claim 33, wherein said intermediate pore size molecular sieve is selected from the group consisting of AEL, AFI, MWW, MFI, MEL, MFS, MEI, MTW, EUO, MTT, HEU, FER, and TON.
- 35. The process recited in claim 33, wherein said intermediate pore size molecular sieve is selected from the group consisting of ZSM-5, ZSM-11, ZSM-12, ZSM-22, ZSM-23, ZSM-34, ZSM-35, ZSM-38, ZSM-48, ZSM-50, ZSM-57, MCM-22, MCM-49, MCM-56, and SAPO-11.
- 36. The process recited in claim 33, wherein said molecular sieve further comprises a selectivating agent.
- 37. The process recited in claim 36, wherein said a selectivating agent is selected from the group consisting of silica, coke, phosphorus, alkaline earth metal oxides, rare earth metal oxides, lanthanum oxide, boron oxide, titania, antimony oxide, manganese oxide, and mixtures thereof.
- 38. The process recited in claim 37, wherein said molecular sieve is MFI.
- 39. The process recited in claim 1, wherein said reformate is formed by the cracking of hydrocarbons.
- 40. The process recited in claim 39, wherein said cracking of hydrocarbons is accomplished in a catalytic cracking process.
- 41. The process recited in claim 39, wherein said cracking of hydrocarbons is accomplished in a steam cracking process.
- 42. The process recited in claim 1, wherein at least 7 weight percent of the benzene and/or toluene present in said reformate is converted to xylenes.
- 43. The process recited in claim 36, wherein the resulting product contains greater than equilibrium amounts para-xylene.
- 44. The process recited in claim 43, wherein the resulting product contains more than 60 weight percent of para-xylene based on the total weight of the xylenes produced by said process.
- 45. The process recited in claim 43, wherein the resulting product contains more than 80 weight percent of para-xylene based on the total weight of the xylenes produced by said process.
- 46. An process for producing xylenes from naphtha, which process comprises the steps of:
(a) aromatizing naphtha in an aromatization zone under aromatization conditions and the presence of a catalyst effective for the aromatization of the naphtha to produce a reformate containing hydrogen, C1-C5 hydrocarbons, C6-C7 hydrocarbons comprising benzene, toluene or mixtures thereof, and C8+ hydrocarbons; (b) removing at least a portion of said hydrogen from said reformate to produce a first product having less hydrogen content than said reformate; (c) removing at least a portion of said C1-C5 hydrocarbons from said first product in a C1-C5 hydrocarbon separation zone to produce a second product having less C1-C5 hydrocarbon content than said first product; (d) removing at least a portion of said C8+ hydrocarbons from said second product in a C8+ hydrocarbon separation zone to produce a third product having less C8+ hydrocarbon content than said second product; (e) transferring at least a portion of said third product to a methylation reaction zone; and, (f) methylating in said methylation reaction zone at least a portion of the benzene, toluene, or mixtures thereof present in said third product with a methylating agent under vapor phase conditions effective for the methylation and in the presence of a catalyst effective for the methylation to produce a fourth product having a higher xylenes content than said reformate.
- 47. The process recited in claim 46, further comprising the steps of:
transferring at least a portion of said fourth product to said C1-C5 hydrocarbon separation zone and removing C1-C5 hydrocarbons from said fourth product to produce a fifth product having a lower C1-C5 content than said fourth product; transferring at least a portion of said fifth product to said C8+ hydrocarbon separation zone and removing C8+ hydrocarbons from said fifth product to produce a sixth product; and recovering xylenes from said sixth product.
- 48. The process recited in claim 46, wherein said conditions include a temperature from about 300° C. to about 700° C., a pressure from about 1 to 1000 psig, a weight hourly space velocity of between about 0.1 and about 200, a molar ratio of methylating agent to toluene and benzene between about 0.1:1 to about 20:1 and a weight hourly space velocity of between about 0.1 and about 200.
- 49. The process recited in claim 46, wherein said catalyst comprises an intermediate pore size molecular sieve.
- 50. The process recited in claim 49, wherein said intermediate pore size molecular sieve is selected from the group consisting of ZSM-5, ZSM-11, ZSM-12, ZSM-22, ZSM-23, ZSM-34, ZSM-35, ZSM-38, ZSM-48, ZSM-50, ZSM-57, MCM-22, MCM-49, MCM-56, and SAPO-11.
- 51. The process recited in claim 50, wherein said catalyst further comprises at least one hydrogenation/dehydrogenation metal.
- 52. The process recited in claim 51, wherein said at least one hydrogenation/dehydrogenation metal is a Group VIII metal.
- 53. The process recited in claim 50, wherein said molecular sieve further comprises a selectivating agent.
- 54. The process recited in claim 53, wherein said a selectivating agent is selected from the group consisting of silica, coke, phosphorus, alkaline earth metal oxides, rare earth metal oxides, lanthanum oxide, boron oxide, titania, antimony oxide, manganese oxide, and mixtures thereof.
- 55. The process recited in claim 49, wherein said methylating agent is selected from the group consisting of methanol, dimethylether, methylchloride, methylbromide, methylcarbonate, acetaldehyde, dimethoxyethane, acetone, and dimethylsulfide.
- 56. The process recited in claim 46, wherein the catalyst effective for said aromatization is a bifunctional catalyst.
- 57. The process recited in claim 46, wherein the catalyst effective for said aromatization is a monofunctional catalyst.
- 58. The process recited in claim 46, wherein at least 7 weight percent of the benzene and/or toluene present in said reformate is converted to xylenes.
- 59. The process recited in claim 46, wherein said fourth product contains greater than equilibrium amounts para-xylene.
- 60. The process recited in claim 54, wherein said fourth product contains greater than 60 weight percent of para-xylene based on the total weight of the xylenes produced in said methylation reaction zone by the methylation said benzene, toluene, or mixtures thereof.
- 61. An integrated process for producing xylenes from naphtha which process comprises the steps of:
(a) aromatizing naphtha in an aromatization zone under aromatization conditions and the presence of a catalyst effective for the aromatization of the naphtha to produce a reformate containing hydrogen, C1-C5 hydrocarbons, C6-C7 hydrocarbons comprising benzene, toluene or mixtures thereof, and C8+ hydrocarbons; (b) removing at least a portion of said hydrogen from said reformate to produce a first product having less hydrogen content than said reformate; (c) removing at least a portion of said C8+ hydrocarbons from said first product in a C8+ hydrocarbon separation zone to produce a second product having less C8+ hydrocarbon content than said first product; (d) transferring at least a portion of said second product to a methylation reaction zone; and, (e) methylating in said methylation reaction zone at least a portion of the benzene, toluene, or mixtures thereof present in said second with a methylating agent under conditions effective for the methylation and in the presence of a catalyst effective for the methylation to produce a third product having a higher xylenes content than said reformate.
- 62. The process recited in claim 61, further comprising the steps of:
transferring at least a portion of said third product to a C1-C5 hydrocarbon separation zone and removing at least a portion of the C1-C5 hydrocarbons from said third product to produce a fourth product having a lower C1-C5 content than said third product; transferring at least a portion of said fourth product to a C8+ hydrocarbon separation zone and removing C8+ hydrocarbons from said fourth product to produce a fifth product; and recovering xylenes from said fifth product.
- 63. The process recited in claim 61, wherein the conditions include a temperature from about 300° C. to about 700° C., a pressure from about 1 to 1000 psig, a weight hourly space velocity of between about 0.1 and about 200, a molar ratio of methylating agent to toluene and benzene between about 0.1:1 to about 20:1 and a weight hourly space velocity of between about 0.1 and about 200.
- 64. The process recited in claim 61, wherein said methylation is carried out in the vapor phase.
- 65. The process recited in claim 61, wherein said catalyst in said methylation reaction zone comprises an intermediate pore size molecular sieve.
- 66. The process recited in claim 65, wherein said intermediate pore size molecular sieve is selected from the group consisting of ZSM-5, ZSM-11, ZSM-12, ZSM-22, ZSM-23, ZSM-34, ZSM-35, ZSM-38, ZSM-48, ZSM-50, ZSM-57, MCM-22, MCM-49, MCM-56, and SAPO-11.
- 67. The process recited in claim 66, wherein said catalyst further comprises at least one hydrogenation/dehydrogenation metal.
- 68. The process recited in claim 67, wherein said at least one hydrogenation/dehydrogenation metal is a Group VIII metal.
- 69. The process recited in claim 66, wherein said molecular sieve further comprises a selectivating agent.
- 70. The process recited in claim 69, wherein said a selectivating agent is selected from the group consisting of silica, coke, phosphorus, alkaline earth metal oxides, rare earth metal oxides, lanthanum oxide, boron oxide, titania, antimony oxide, manganese oxide, and mixtures thereof.
- 71. The process recited in claim 61, wherein the catalyst effective for said aromatization is a bifunctional catalyst.
- 72. The process recited in claim 61, wherein the catalyst effective for said aromatization is a monofunctional catalyst.
- 73. The process recited in claim 61, wherein at least 7 weight percent of the benzene and/or toluene present in said reformate is converted to xylenes.
- 74. The process recited in claim 69, wherein said third product contains greater than 30 weight percent of para-xylene based on the total weight of the xylenes produced in said methylation reaction zone by the methylation of said benzene, toluene, or mixtures thereof.
- 75. The process recited in claim 69, wherein the third product contains greater than 60 weight percent of para-xylene based on the total weight of the xylenes produced in said methylation reaction zone by the methylation of said benzene, toluene, or mixtures thereof.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims priority to U.S. Provisional Patent Application No. 60/389,977, filed Jun. 19, 2002, which is hereby incorporated by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60389977 |
Jun 2002 |
US |