Claims
- 1. In a circulating fluidized bed reactor having a discrete lower mixing chamber in a lower part of the reactor and a discrete cooling zone, with a smaller cross-sectional area than the mixing chamber, in said reactor spaced above said mixing chamber and the mixing chamber and the cooling zone thus together forming a reactor chamber in the circulating fluidized bed reactor, a method for cleaning hot gases containing substantially predetermined condensable components, comprising the steps of:
- (a) directing the hot gases containing the predetermined condensable components into the mixing chamber in said lower part of the circulating fluidized bed reactor, so as to fluidize the bed material in the fluidized bed reactor and transport particles through the mixing chamber and the cooling zone spaced above said mixing chamber;
- (b) reducing the temperature of the hot gases in the mixing chamber, substantially by direct heat transfer, by mixing into the hot gases in the mixing chamber solid particles in an amount having a heat capacity sufficient to cool the gases therein essentially to the condensation temperature of substantially the entirety of the predetermined condensable components of the hot gases in the mixing chamber;
- (c) directing the mixture of the solid particles and the gases concurrently as a gas-solid suspension having said reduced temperature upwards from the mixing chamber into the cooling zone and with increased velocity through the cooling zone for reducing the temperature of the solid particles and further reducing the temperature of the hot gases;
- (d) discharging a mixture of cooled solid particles and gases from the cooling zone of the reactor and separating cooled particles from the gases in a particle separator connected to the outlet of the cooling zone;
- (e) recirculating at least a part of the cooled separated particles into the mixing chamber, for cooling the hot gases therein;
- (f) feeding additional solid particles into the mixing chamber for increasing the amount of solid particles and thereby the heat capacity flow of the solid particles in the mixing chamber for cooling the hot gases; and
- (g) controlling the cooling of the hot gases in said mixing chamber by controlling at least the magnitude of one of the flow of the (1) cooled separated particles recirculated and (2) the additional solid particles fed into the mixing chamber thereby to enable the hot gases to be cooled in the mixing chamber to the condensation temperature of substantially the entirety of the predetermined condensable components thereof.
- 2. A method according to claim 1 including flowing the gases passing through the mixing chamber at a velocity substantially less than the flow velocity of the gases flowing in the cooling zone whereby the flow velocity of the gases in the mixing chamber provides a dwell time therein sufficient to cool the gases in the mixing chamber to the condensation temperature of the condensable components of the hot gases.
- 3. A method according to claim 2 including the step of contacting gases in the mixing chamber with the solids in the mixing chamber at a flow velocity no greater than one-half of the flow velocity of the gases in the cooling zone.
- 4. A method according to claim 2 including the step of providing a gas flow velocity in the cooling zone of 2-10 meters per second.
- 5. A method according to claim 1 including the step of providing the hot gases to be cleaned from a gasifier.
- 6. A method according to claim 1 wherein the step of controlling the cooling of the gases includes the step of controlling both of the flows of the cooled separated particles recirculated and the additional solid particles into the mixing chamber.
- 7. A method according to claim 1 wherein controlling the cooling of the gases in the mixing chamber includes controlling the grain size of the particles fed into the mixing chamber.
- 8. A method according to claim 1 wherein the solid particles fed into the mixing chamber comprise sand.
- 9. A method according to claim 1 wherein the solid particles fed into the mixing chamber are in part sulphur binding.
- 10. In a circulating fluidized bed reactor having a discrete lower mixing chamber in a lower part of the reactor and a discrete cooling zone, with a smaller cross-sectional area than the mixing chamber, in said reactor spaced above said mixing chamber and the mixing chamber and the cooling zone thus together forming a reactor chamber in the circulating fluidized bed reactor, a method for cleaning hot gases containing substantially predetermined condensable components, comprising the steps of:
- (a) directing the hot gases containing the predetermined condensable components into the mixing chamber in said lower part of the circulating fluidized bed reactor, so as to fluidize the bed material in the fluidized bed reactor and transport particles through the mixing chamber and the cooling zone spaced above said mixing chamber;
- (b) reducing the temperature of the hot gases in the mixing chamber, substantially by direct heat transfer, by mixing into the hot gases in the mixing chamber solid particles, in an amount having a heat capacity sufficient to cool the gases therein essentially to the condensation temperature of substantially the entirety of the predetermined condensable components of the hot gases in the mixing chamber;
- (c) directing the mixture of the solid particles and the gases concurrently as a gas-solid suspension having said reduced temperature upwards from the mixing chamber into the cooling zone and with increased velocity through the cooling zone for reducing the temperature of the solid particles and further reducing the temperature of the hot gases;
- (d) discharging a mixture of cooled solid particles and gases from the cooling zone of the reactor and separating cooled particles from the gases in a particle separator connected to the outlet of the cooling zone;
- (e) recirculating at least a part of the cooled separated particles into the mixing chamber, for cooling the hot gases therein;
- (f) feeding additional solid particles into the mixing chamber for increasing the amount of solid particles and thereby the heat capacity flow of the solid particles in the mixing chamber for cooling the hot gases; and
- (g) controlling the cooling of the hot gases in said mixing chamber by controlling the particle density of the solid particles in the mixing chamber thereby to enable the hot gases to be cooled in the mixing chamber to the condensation temperature of substantially the entirety of the predetermined condensable components thereof.
- 11. A method according to claim 10 including flowing the gases passing through the mixing chamber at a velocity substantially less than the flow velocity of the gases flowing in the cooling zone whereby the flow velocity of the gases in the mixing chamber provides a dwell time therein sufficient to cool the gases in the mixing chamber to the condensation temperature of the condensable components of the hot gases.
- 12. A method according to claim 10 wherein the step of controlling the cooling of the gases includes the step of controlling both of the flows of the (1) cooled separated particles recirculated and (2) the additional solid particles into the mixing chamber.
- 13. A method according to claim 10 wherein controlling the cooling of the gases in the mixing chamber includes controlling the grain size of the particles fed into the mixing chamber.
- 14. A method according to claim 10 including the steps of flowing the gases passing through the mixing chamber at a velocity substantially less than the flow velocity of the gases flowing in the cooling zone whereby the flow velocity of the gases in the mixing chamber provides a predetermined dwell time and mixing into the hot gases in the mixing chamber solid particles, in an amount having a heat capacity in said dwell time to cool the gases in the lower mixing chamber essentially to the condensation temperature of the predetermined condensable components of the hot gases such that substantially the entirety of the predetermined condensable components condense out of the hot gas in the mixing chamber.
- 15. In a circulating fluidized bed reactor having a discrete lower mixing chamber in a lower part of the reactor and a discrete cooling zone, with a smaller cross-sectional area than the mixing chamber, in said reactor spaced above said mixing chamber and the mixing chamber and the cooling zone thus together forming a reactor chamber in the circulating fluidized bed reactor, a method for cleaning hot gases containing substantially predetermined condensable components, a method comprising the steps of:
- (a) directing the hot gases containing the predetermined condensable components into the mixing chamber in said lower part of the circulating fluidized bed reactor, so as to fluidize the bed material in the fluidized bed reactor and transport particles through the mixing chamber and the cooling zone spaced above said mixing chamber;
- (b) reducing the temperature of the hot gases in the mixing chamber, substantially by direct heat transfer, by mixing into the hot gases in the mixing chamber solid particles, in an amount having a heat capacity sufficient to cool the gases therein essentially to the condensation temperature of substantially the entirety of the predetermined condensable components of the hot gases in the mixing chamber;
- (c) directing the mixture of the solid particles and the gases concurrently as a gas-solid suspension having said reduced temperature upwards from the mixing chamber into the cooling zone and with increased velocity through the cooling zone for reducing the temperature of the solid particles and further reducing the temperature of the hot gases;
- (d) discharging a mixture of cooled solid particles and gases from the cooling zone of the reactor and separating cooled particles from the gases in a particle separator connected to the outlet of the cooling zone;
- (e) recirculating at least a part of the cooled separated particles into the mixing chamber, for cooling the hot gases therein;
- (f) feeding additional solid particles into the mixing chamber for increasing the amount of solid particles and thereby the heat capacity flow of the solid particles in the mixing chamber for cooling the hot gases; and
- (g) controlling the cooling of the hot gases in said mixing chamber by controlling the grain size of the particles fed into the mixing chamber thereby to enable the hot gases to be cooled in the mixing chamber to the condensation temperature of substantially the entirety of the predetermined condensable components thereof.
- 16. A method according to claim 15 including flowing the gases passing through the mixing chamber at a velocity substantially less than the flow velocity of the gases flowing in the cooling zone whereby the flow velocity of the gases in the mixing chamber provides a dwell time therein sufficient to cool the gases in the mixing chamber to the condensation temperature of the condensable components of the hot gases.
- 17. A method according to claim 15 including the steps of flowing the gases passing through the mixing chamber at a velocity substantially less than the flow velocity of the gases flowing in the cooling zone whereby the flow velocity of the gases in the mixing chamber provides a predetermined dwell time and mixing into the hot gases in the mixing chamber solid particles, in an amount having a heat capacity in said dwell time to cool the gases in the lower mixing chamber essentially to the condensation temperature of the predetermined condensable components of the hot gases such that substantially the entirety of the predetermined condensable components condense out of the hot gas in the mixing chamber.
- 18. In a circulating fluidized bed reactor having a discrete lower mixing chamber in a lower part of the reactor and a discrete cooling zone, with a smaller cross-sectional area than the mixing chamber, in said reactor spaced above said mixing chamber and the mixing chamber and the cooling zone thus together forming a reactor chamber in the circulating fluidized bed reactor, a method for cleaning hot gases containing substantially predetermined condensable components, a method comprising the steps of:
- (a) directing the hot gases containing the predetermined condensable components into the mixing chamber in said lower part of the circulating fluidized bed reactor, so as to fluidize the bed material in the fluidized bed reactor and transport particles through the mixing chamber and the cooling zone spaced above said mixing chamber;
- (b) reducing the temperature of the hot gases in the mixing chamber, substantially by direct heat transfer, by mixing into the hot gases in the mixing chamber solid particles, in an amount having a heat capacity sufficient to cool the gases therein essentially to the condensation temperature of substantially the entirety of the predetermined condensable components of the hot gases in the mixing chamber;
- (c) directing the mixture of the solid particles and the gases concurrently as a gas-solid suspension having said reduced temperature upwards from the mixing chamber into the cooling zone and with increased velocity through the cooling zone for reducing the temperature of the solid particles and further reducing the temperature of the hot gases;
- (d) discharging a mixture of cooled solid particles and gases from the cooling zone of the reactor and separating cooled particles from the gases in a particle separator connected to the outlet of the cooling zone;
- (e) recirculating at least a part of the cooled separated particles into the mixing chamber, for cooling the hot gases therein;
- (f) feeding additional solid particles into the mixing chamber for increasing the amount of solid particles and thereby the heat capacity flow of the solid particles in the mixing chamber for cooling the hot gases; and
- (g) flowing the hot gases passing through the mixing chamber at a velocity substantially less than the flow velocity of the gases flowing in the cooling zone whereby the flow velocity of the gases in the mixing chamber provides a dwell time therein sufficient to cool the gases in the mixing chamber to the condensation temperature of substantially the entirety of the predetermined condensable components of the hot gases.
- 19. A method according to claim 18 including the step of contacting gases in the mixing chamber with the solids in the mixing chamber at a flow velocity no greater than one-half of the flow velocity of the gases in the cooling zone.
- 20. A circulating fluidized bed reactor for cleaning gases containing predetermined condensable components, said apparatus comprising:
- (a) means defining a mixing chamber having upstream and downstream portions;
- (b) means defining a cooling zone above said mixing chamber and in communication with said downstream portion of said mixing chamber for receiving gases from said mixing chamber through said downstream portion into said cooling zone;
- (c) conduit means communicating with said upstream portion of said mixing chamber for directing hot gases through said upstream portion into said mixing chamber into said cooling zone;
- (d) a particle separator for separating particles from the cooled gases in said cooling zone;
- (e) a return pipe in communication with said particle separator and having a discharge end for feeding at least part of the separated particles into the mixing chamber;
- (f) an inlet pipe for feeding additional solid particles into said mixing chamber for direct heat transfer with the gases, whereby the separated particles and the additional particles reduce the temperature of the hot gases in the mixing chamber essentially to or below the condensation temperature of the predetermined condensable components of the hot gases;
- (g) cooling surfaces in said cooling zone for reducing the temperature of the mixture of solid particles and pre-cooled hot gases flowing from the mixing chamber into the cooling zone; and
- (h) the cross-sectional area of said mixing chamber taken across the direction of flow of said hot gases being substantially larger than the cross-sectional area of the cooling zone, whereby the velocity of gas flow through said mixing chamber is substantially less than the velocity of gas flow through said cooling zone thereby enabling a dwell time for the solid particles and gases in said mixing chamber sufficient to cool the gases in said mixing chamber to the condensation temperature of the predetermined condensable components of the hot gases.
- 21. A reactor according to claim 20 wherein the mixing chamber is free of cooling surfaces other than the solid particles disposed therein.
Priority Claims (1)
Number |
Date |
Country |
Kind |
843606 |
Sep 1984 |
FIX |
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Parent Case Info
This is a continuation of application Ser. No. 06/852,950, filed Apr. 3, 1986, now abandoned.
US Referenced Citations (11)
Foreign Referenced Citations (5)
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0127878 |
Dec 1984 |
EPX |
3023480 |
Jan 1982 |
DEX |
384844 |
May 1976 |
SEX |
390892 |
Jan 1977 |
SEX |
2140144 |
Aug 1986 |
GBX |
Continuations (1)
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Number |
Date |
Country |
Parent |
852950 |
Apr 1986 |
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