Claims
- 1. A method of cooling a dust-laden raw gas from the gasification of a solid carbon-containing fuel in a pressurized reactor that is disposed in a pressure vessel, said method including the steps of:
- introducing said gas from said reactor into a quench pipe that is disposed in said pressure vessel and has a cross-sectional area that is smaller than a cross-sectional area of said reactor;
- supplying a quenching medium to said quench pipe for direct cooling of said gas;
- deflecting gas that issues from a discharge end of said quench pipe by essentially 180.degree.;
- subsequently guiding said deflected gas into a first end of an annular chamber formed within said pressure vessel between said quench pipe and a wall of said pressure vessel, said annular chamber containing an elongated cooling heat transfer surface means that surrounds said quench pipe and is incorporated in a water-steam circuit, said gas being guided in said annular chamber and about said cooling heat transfer surface means in a direction of flow countercurrent to the direction of flow of gas in said quench pipe; and
- withdrawing said gas from a second end of said annular chamber that is remote from said first end thereof.
- 2. A method according to claim 1, wherein said step of withdrawing said gas from said cooling section is accompanied by deflection thereof.
- 3. A method according to claim 2, which includes the step of withdrawing additional heat from said gas, via thermal radiation, during said step of deflecting gas that issues from a discharge end of said quench pipe.
- 4. A hot gas cooling system in a unit for the gasification of a solid carbon-containing fuel in a pressurized reactor, said system comprising:
- a pressure vessel in which said reactor is disposed;
- a quenching chamber within said pressure vessel that communicates with an output side of said reactor for receiving gas therefrom, said quenching chamber being provided with conduit means for being supplied with a quenching medium for direct cooling of said gas, said quenching chamber being in the form of a quench pipe that has a smaller cross-sectional area than does said reactor;
- a deflection chamber disposed at a discharge end of said quench pipe for deflecting a stream of gas issuing from said quench pipe by 180.degree.;
- an annular chamber formed within said pressure vessel between said quench pipe and wall means of said pressure vessel;
- at least one discrete heat transfer surface means disposed in said annular chamber and annularly surrounding a given length of said quench pipe for receiving said deflected stream of gas at an entrance end of said annular chamber and passing said gas stream to a discharge end of said annular chamber, about said heat transfer surface means, in a direction countercurrent to a direction of flow of said gas stream through said quench pipe;
- a gas collection chamber provided in said pressure vessel at said discharge end of said annular chamber; and
- and at least one gas withdrawal conduit that communicates with said gas collection chamber and extends outwardly through said wall means of said pressure vessel.
- 5. A hot gas cooling system according to claim 4, wherein an outwardly disposed boundary surface of said heat transfer surface means is freely exposed relative to an inner wall of said pressure vessel, and wherein said inner wall of said pressure vessel is provided with lining means at least in the region of said heat transfer surface means.
- 6. A hot gas cooling system according to claim 4, which includes an outer cooling wall that is spaced inwardly from an inner wall of said pressure vessel, with said annular chamber being formed between said quench pipe toward the inside and said cooling wall toward the outside.
- 7. A hot gas cooling system according to claim 6, wherein said quench pipe is a cooling wall comprising cooling means.
- 8. A hot gas cooling system according to claim 6, wherein one of said cooling wall or said heat transfer surface means has an outer diameter that corresponds to the outer diameter of said reactor and is less than the inner diameter of said pressure vessel, whereby a passable space remains relative to said inner wall of said pressure vessel.
- 9. A hot gas cooling system according to claim 8, wherein said deflection chamber is a radiation chamber having means for withdrawing heat from said gas stream during deflection thereof.
- 10. A hot gas cooling system according to claim 6, wherein said gas collection chamber is provided with a base that is inclined relative to a longitudinal axis of said quench pipe.
- 11. A hot gas cooling system according to claim 10, wherein said base of said gas collection chamber is provided with a portion that surrounds and is spaced from said quench pipe, with said portion of said base having an end that is sealed in an airtight manner against an outer wall of said quench pipe.
- 12. A hot gas cooling system according to claim 11, wherein said gas withdrawal conduit that communicates with said gas collection chamber extends through said wall means of said pressure vessel at an inclined angle relative to said longitudinal axis of said quench pipe.
- 13. A hot gas cooling system according to claim 10, wherein said pressure vessel is positioned vertically, said gasification reactor is disposed in a lower portion of said pressure vessel, said quench pipe and said heat transfer surface means are disposed above said reactor, and said base of said gas collection chamber and said gas withdrawal conduit are inclined in the same direction.
- 14. A hot gas cooling system according to claim 10, wherein said pressure vessel is positioned vertically, said reactor is disposed in an upper portion of said pressure vessel, gas is withdrawn from a lower end of a downwardly projecting quench pipe, and said deflection chamber is disposed at a lower end of said pressure vessel.
- 15. A hot gas cooling system according to claim 14, wherein said base of said gas collection chamber and said gas withdrawal conduit are inclined in opposite directions.
- 16. A hot gas cooling system according to claim 4, wherein said at least one heat transfer surface means disposed in said annular chamber is a group of heat transfer surface means comprised of a plurality of cylinders that are disposed coaxially relative to one another.
- 17. A hot gas cooling system according to claim 16, wherein said cylinders respectively have a tube/fin/tube construction.
- 18. A hot gas cooling system according to claim 16, wherein said cylinders are each formed by coiled tubes.
- 19. A hot gas cooling system according to claim 4, wherein at least one of said base of said collection chamber and said gas withdrawal conduit are insulated.
- 20. A method of cooling a dust-laden raw gas from the gasification of a solid carbon-containing fuel in a pressurized reactor that is disposed in a pressure vessel, said method including the steps of:
- a) providing a gasification reactor having means for gasifying said fuel under pressure to form a crude gas laden with fluid and solid particles, a quench pipe positioned concentrically to the gasification reactor and having a cross-sectional area that is smaller than a cross-sectional area of said reactor, a convection-heated heat transfer surface means concentrically surrounding the quench pipe, the convection-heated heat transfer surface means having a gas outlet device, and a gas flow deflection device spaced from the quench pipe, the gas flow deflection device being rotationally symmetric with respect to a longitudinal axis of the quench pipe and connecting the quench pipe and the convection-heated heat transfer surface means;
- b) conducting the crude gas and the particles produced during the gasifying from the gasification reactor into the quench pipe;
- c) feeding a quenching medium into the quench pipe during the gasifying to form a mixed flow, said mixed flow comprising said crude gas, said particles and said quenching medium;
- d) guiding said mixed flow about a 180.degree. turn by said gas flow deflection device;
- e) conducting the mixed flow into the convection-heated heat transfer surface means from the gas flow deflection device;
- f) feeding said mixed flow from said heat transfer surface means with the help of the gas outlet device; and
- g) adjusting a gas flow speed of said mixed flow so that said particles travelling in said mixed flow in said heat transfer surface means experience a cooling in said heat transfer surface means so that said particles lose adherence ability and are conducted through said gas outlet device from said convection-heated heat transfer surface means.
Priority Claims (1)
Number |
Date |
Country |
Kind |
43 00 776.7 |
Jan 1993 |
DEX |
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Parent Case Info
This application is a continuation-in-part, of application Ser. No. 08/302,849, filed as PCT/EP94/00088 Jan. 13, 1994 published as WO94/16039 Jul. 21, 1994, now abandoned.
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Continuation in Parts (1)
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Number |
Date |
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Parent |
302849 |
Oct 1994 |
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