Claims
- 1. A process for reforming a hydrocarbon feed comprising:
- (a) separating said hydrocarbon feed into a plurality of fractions comprising:
- (i) a first fraction comprising C.sub.5 -hydrocarbons and dimethylbutanes;
- ii) a light fraction more than about 10% by volume dimethylbutanes; said light fraction being selected from the group consisting of a C.sub.6 -fraction, a C.sub.6 -C.sub.7 fraction, a C.sub.7 fraction, a C.sub.8 fraction, a C.sub.7 -C.sub.8 fraction, and a C.sub.6 -C.sub.8 fraction; and
- a heavy fraction; and
- (b) reforming said light fraction under reforming conditions in the presence of a monofunctional, large pore zeolite catalyst.
- 2. The process as claimed in claim 1, further comprising:
- (c) reforming said heavy fraction under reforming conditions in the presence of a bifunctional catalyst.
- 3. The process as claimed in claim 2, wherein said large-pore zeolite is zeolite L.
- 4. The process as claimed in claim 1, wherein said amount of dimethylbutanes in said first fraction of said hydrocarbon feed is greater than about 75% of the initial amount of dimethylbutanes in said hydrocarbon feed.
- 5. The process as claimed in claim 4, wherein said amount of dimethylbutanes in said first fraction of said hydrocarbon feed is greater than about 90% of the initial amount of dimethylbutanes in said hydrocarbon feed.
- 6. The process as claimed in claim 5, wherein said amount of dimethylbutanes in said first fraction of said hydrocarbon feed is greater than about 95% of the initial amount of dimethylbutanes in said hydrocarbon feed.
- 7. The process as claimed in claim 1, wherein said hydrocarbon feed is a C.sub.6 to C.sub.11 fraction.
- 8. The process as claimed in claim 1, wherein said light fraction contains no more than about 3% by volume dimethylbutanes.
- 9. The process as claimed in claim 8, wherein said light fraction contains no more than about 1% by volume dimethylbutanes.
- 10. The process as claimed in claim 8, wherein said light fraction contains no more than about 0.1% by volume dimethylbutanes.
- 11. The process as claimed in claim 10, wherein said light fraction is substantially free of dimethylbutanes.
- 12. The process recited in claim 1, wherein said large pore zeolite comprises zeolite and platinum.
- 13. The process recited in claim 12, wherein said light fraction comprises a C.sub.7 + fraction.
- 14. A process for reforming a hydrocarbon feed comprising:
- (a) separating said hydrocarbon feed into a first fraction comprising C.sub.5 - hydrocarbons and dimethylbutanes and a second fraction comprising C.sub.6 + hydrocarbons.
- (b) separating said second fraction into
- (i) a light fraction comprising not more than about 10% by volume dimethylbutanes, said light fraction being selected from the group consisting of a C.sub.6 fraction, a C.sub.7 fraction, a C.sub.8 fraction, a C.sub.6 -C.sub.7 fraction, a C.sub.7 -C.sub.8 fraction, a C.sub.6 -C.sub.8 fraction, and a fraction consisting essentially of C.sub.6 and C.sub.8 hydrocarbons; and
- (ii) a heavy fraction; and
- (c) reforming said light fraction under reforming conditions in the presence of a monofunctional catalyst.
- 15. The process recited in claim 14, wherein said first fraction is a C.sub.6 - fraction, and said second fraction is a C.sub.7 + fraction, step (b) comprising: separating said second fraction into
- (i) a light fraction comprising not more than about 10% by volume dimethylbutanes, said light fraction being selected from a C.sub.7 fraction, a C.sub.8 fraction, and a C.sub.7 -C.sub.8 fraction, and
- (ii) a heavy fraction.
- 16. The process recited in claim 14, wherein said light fraction comprises not more than about 3% by volume dimethylbutanes.
- 17. The process recited in claim 14, wherein said light fraction is substantially free of dimethylbutanes.
- 18. A process recited in claim 14, in which the light fraction is a C.sub.6 fraction and contains no more than about 1% by volume dimethylbutanes.
- 19. The process recited in claim 14, wherein said monofunctional catalyst comprises a large pore zeolite and at least one Group VIII metal.
- 20. The process recited in claim 19, where said large pore zeolite is zeolite L, and said Group VIII metal is platinum.
- 21. The process recited in claim 20, wherein said zeolite L further comprises a metal selected from the group consisting of magnesium, cesium, calcium, barium, strontium, zinc, nickel, manganese, cobalt, copper, and lead.
- 22. The process recited in claim 14, wherein said hydrocarbon feed is a C.sub.6 -C.sub.11 fraction.
- 23. The process recited in claim 14, further comprising reforming said heavy fraction under reforming conditions in the presence of a bifunctional catalyst.
- 24. The process recited in claim 23, wherein said bifunctional catalyst comprises a Group VIII metal and a metal oxide support provided with acidic sites.
- 25. The process recited in claim 24, wherein said metal oxide support is alumina, and the Group VIII metal of said bifunctional catalyst is platinum.
- 26. The process recited in claim 25, wherein the bifunctional catalyst further comprises at least one promoter metal selected from rhenium, tin, germanium, iridium, tungsten, cobalt, rhodium, and nickel.
- 27. A process for reforming a hydrocarbon feedstock, comprising
- (a) separating said hydrocarbon feedstock into
- (i) a first fraction comprising C.sub.5- hydrocarbons and at least 75% of such dimethylbutanes as initially existed in said feedstock;
- (ii) a light fraction comprising not more than about 10% by volume dimethylbutanes and less than 10% of such C.sub.5- hydrocarbons as initially existed in said feedstock; said light fraction being selected from the group consisting of a C.sub.6, a C.sub.6-7, a C.sub.7, a C.sub.8, a C.sub.7-8, and a C.sub.6-8, fraction; and
- (iii) a heavy fraction; and
- (b) reforming said light fraction under reforming conditions with a monofunctional large pore zeolite catalyst.
- 28. The process of claim 27, wherein said first fraction, apart from its dimethylbutane content, contains less than 5% by volume of other C.sub.6 hydrocarbons.
Parent Case Info
This is a continuation of application Ser. No. 08/006,403 filed Jan. 21, 1993, now abandoned, which is a continuation of U.S. patent application Ser. No. 07/675,113, filed Mar. 25, 1991 now abandoned, which is a continuation of U.S. Ser. No. 07/430,908 filed Oct. 31, 1989, now abandoned, which is a continuation of U.S. Ser. No. 07/175,570 filed Mar. 31, 1988, now abandoned, the disclosures of which in their entireties are incorporated herein by reference.
US Referenced Citations (20)
Foreign Referenced Citations (7)
Number |
Date |
Country |
0895280 |
Mar 1972 |
CAX |
0 145 289 |
Jun 1985 |
EPX |
0303097 |
Feb 1989 |
EPX |
2115208 |
Jul 1972 |
FRX |
2323664 |
Apr 1977 |
FRX |
0981094 |
Jan 1965 |
GBX |
2 116 450 |
Sep 1983 |
GBX |
Non-Patent Literature Citations (4)
Entry |
"Slective Catalytic Process for Conversion of Light Naphtha to Aromatics", D. V. Law, et al., Energy Process, vol. 7, No. 4, pp. 215-222, Dec., 1987. |
"Octaine Enhancement by Selective Reforming of Light Paraffins", P. W. Tamm, et al., pp. 335-353, Catalysis, 1987. |
"Aromatization of Hydrocarbons over Platinum Alkaline Earth Zeolites", T. R. Hughes, et al., Proceedings of the 7th International Zeolite Conference, p. 725, Tokyo, Japan, (1986). |
Advances in Catalysis, vol. 25, 1976, pp. 150-155. |
Continuations (4)
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Number |
Date |
Country |
Parent |
06403 |
Jan 1993 |
|
Parent |
675113 |
Mar 1991 |
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Parent |
430908 |
Oct 1989 |
|
Parent |
175570 |
Mar 1988 |
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