Claims
- 1. A riser-reactor fluid catalytic cracking process comprising the steps of:
- (a) mixing a hydrocarbon feed with hot regenerated cracking catalyst in the bottom section of a substantially vertical reactor riser to form a vapor-liquid suspension in said bottom section of said reactor riser at a temperature of about 525.degree. to 650.degree. C.;
- (b) passing the mixture of step (a) upwardly through the reactor riser under selected temperature and residence time conditions to catalytically crack at least a portion of said hydrocarbon feed whereby said cracking catalyst is deactivated;
- (c) flowing said mixture of step (b) through separation means to effect separation of catalyst particles from hydrocarbon conversion products;
- (d) stripping hydrocarbon from said separated deactivated catalyst particles of step (c) by countercurrently contacting said catalyst particles with a stripping gas in an annular stripping zone, said annular stripping zone being concentric with a lower section of said reactor riser;
- (e) withdrawing stripped deactivated catalyst from said annular stripping zone of step (d);
- (f) regenerating said withdrawn deactivated catalyst of step (e) in a regeneration zone remote from and in valved communication with said reactor riser at a temperature above that of said stripping zone whereby a hot flue gas is generated;
- (g) withdrawing a controlled volume of hot regenerated cracking catalyst from a lower section of said regeneration zone;
- (h) fluidizing said hot regenerated cracking catalyst of step (g) in a stream of hot flue gas withdrawn from said regeneration zone of step (f); and
- (i) indirectly transferring at least a portion of the thermal energy of said fluidized mixture of step (h) to said stripping zone of step (d) to heat said stripping zone of step (d) and to cool said fluidized mixture of regenerated cracking catalyst and regenerator flue gas.
- 2. The process of claim 1 wherein said step (i) further comprises positioning conduit means within said stripping zone of step (d) and flowing said fluidized mixture of step (h) through said conduit means.
- 3. The process of claim 2 further comprising controlling the flow of said mixture of hot flue gas and regenerated catalyst through said conduit means at a flow rate such that said stripping zone of step (d) is heated to a temperature sufficient to enhance separation of catalyst and hydrocarbon product.
- 4. The process of claim 3 wherein said flow of said mixture of hot flue gas and regenerated catalyst is controlled to increase the temperature of said stripping zone by at least 28.degree. C. (50.degree. F.).
- 5. The process of claim 1 further comprising flowing said cooled fluidized mixture of regenerated cracking catalyst and regenerator flue gas to said reactor riser of step (a).
- 6. A method for improving product yield in a fluidized catalytic cracking process for upgrading a hydrocarbon feed mixture containing gas oil and heavier fractions by improving separation between coked cracking catalyst and hydrocarbon liquid entrained with said coked cracking catalyst, said method comprising the steps of:
- (a) providing a longitudinally extensive reaction zone having means located in a lower portion thereof for admitting said hydrocarbon feed mixture and a cracking catalyst;
- (b) flowing hot regenerated cracking cracking catalyst to said lower portion of said longitudinally extensive reaction zone of step (a);
- (c) contacting said hydrocarbon feed mixture containing gas oil and heavier fractions with said hot regenerated cracking catalyst of step (b) in said lower portion of said longitudinally extensive reaction zone to at least partially vaporize said hydrocarbon feed mixture and to form a fluidized suspension of cracking catalyst in said hydrocarbon feed mixture;
- (d) catalytically cracking said hydrocarbon feed mixture contained in said fluidized suspension of step (c) whereby said cracking catalyst is deactivated by coke accumulation and whereby liquid hydrocarbons are entrained with said cracking catalyst;
- (e) countercurrently contacting said deactivated cracking catalyst containing of step (d) with a substantially inert stripping gas in an annular stripping zone to remove entrained liquid hydrocarbons from said deactivated cracking catalyst, said annular stripping zone being concentric with a lower section of said reactor riser;
- (f) withdrawing stripped deactivated catalyst from said annular stripping zone of step (e);
- (g) regenerating said withdrawn deactivated catalyst of step (f) in a regeneration zone remote from and in valved communication with said reactor riser at a temperature above that of said stripping zone whereby a hot flue gas is generated;
- (h) withdrawing a controlled volume of hot regenerated cracking catalyst from a lower section of said regeneration zone;
- (i) withdrawing a controlled stream of flue gas from said regeneration zone of step (g);
- (j) fluidizing said hot regenerated cracking catalyst of step (h) in a stream of hot flue gas withdrawn from said regeneration zone of step (g);
- (k) imparting to said hot flue gas sufficient pressure to convey said fluidized hot regenerated cracking catalyst of step (j) to said annular stripping zone of step (e); and
- (l) indirectly transferring at least a portion of the thermal energy of said fluidized mixture of step (i) to said stripping zone of step (e) to heat said stripping zone of step (e) and to cool said fluidized mixture of regenerated cracking catalyst and regenerator flue gas.
- 7. The process of claim 6 wherein said step (1) further comprises positioning conduit means within said stripping zone of step (e) and flowing said fluidized mixture of step (i) through said conduit means.
- 8. The process of claim 7 further comprising controlling the flow of said mixture of hot flue gas and regenerated catalyst through said conduit means at a flow rate such that said stripping zone of step (e) is heated to a temperature sufficient to enhance separation of catalyst and hydrocarbon product.
- 9. The process of claim 8 wherein said flow of said mixture of hot flue gas and regenerated catalyst is controlled to increase the temperature of said stripping zone by at least 28.degree. C. (50.degree. F.).
- 10. The process of claim 6 further comprising flowing said cooled fluidized mixture of regenerated cracking catalyst and regenerator flue gas to said longitudinally extensive reaction zone of step (a).
CROSS-REFENCE TO RELATED APPLICATION
This is a continuation of copending application Ser. No. 248,058, filed on Sept. 23, 1988 now abandoned, which is related to commonly-assigned application Ser. No. 198,263, filed May 25, 1988.
US Referenced Citations (16)
Continuations (1)
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Number |
Date |
Country |
Parent |
248058 |
Sep 1988 |
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