The present invention relates to a fuel gasification system.
A fuel gasification system has been developed to produce gasification gas, using coal, biomass, waste plastic, various wet wastes or the like as fuel.
In the fuel gasification system, tar is contained in gasification gas produced in a gasification furnace. Especially heavy oil component of the tar is highly viscous and tends to attach to piping or the like, resulting disadvantageously in clogging of the piping or the like in a long-term operation.
In order to overcome such disadvantage, there has been, for example, a fuel gasification system as shown in
In the fuel gasification system shown in
The tar having been separated from the gasification gas by spraying water in the scrubber 102 is separated from the water in the tar/water separator 108. The tar having been separated from the water in the separator 108 is recovered in the tar tank 109 and is burned in the combustion furnace 110. The water having been separated from the tar in the tar/water separator 108 is turned into steam in the steam generator 101 and is fed to the gasification furnace 100 together with the air heated in the thermal energy recovery device 106.
In the conventional fuel gasification system, the gasification furnace 100 may be followed by a reforming furnace to which oxygen is fed to partly burn the gasification gas for decomposition of the tar.
State of the art technology of a fuel gasification system for partly oxidizing fuel such as coal through an oxidizing aunt into gasification gas is shown, for example, in Reference 1.
[Reference 1] JP 2000-355693A
However, recovery of tar by the scrubber 102 and tar/water separator 108 as mentioned above is costly in terms of wastewater treatment; moreover, feeding of the recovered tar to the combustion furnace 110 for burning the same makes it difficult to enhance gasification efficiency.
The fact that the gasification furnace 100 is followed by the reforming furnace to which oxygen is fed for partial combustion of the gasification gas increases concentration of carbon dioxide, so that enhancement of gasification efficiency is still unhopeful.
The invention was made in view of the above and has its object to provide a fuel gasification system which can efficiently decompose tar and the like in gasification gas without use of water and the like, which can prevent tar from attaching to piping or the like, which enables long-term operation and which can enhance gasification efficiency.
The invention is directed to a fuel gasification system comprising tar decomposer for heating gasification gas produced in a gasification furnace to decompose tar in said gasification gas.
In said fuel gasification system, it is effective that the tar decomposer is constituted by a double-pipe heat exchanger which comprises coaxially arranged inner and outer pipes, exhaust gas from a combustion furnace and separated in a material separator being introduced into an exhaust gas passage in the inner pipe while gasification gas is introduced into a gasification passage between the inner and outer pipes and is heated by the exhaust gas from the combustion furnace.
In said fuel gasification system, alternatively, the tar decomposer may be constituted by a double-pipe heat exchanger which comprises coaxially arranged inner and outer pipes, gasification gas being introduced into a gasification gas passage in the inner pipe while the exhaust gas from the combustion furnace and separated in a material separator is introduced in an exhaust gas passage between the inner and outer pipes, said gasification gas being heated by the exhaust gas from the combustion furnace.
In these cases, additional heater may be provided so as to elevate in temperature the exhaust gas introduced into the exhaust gas passage.
The invention is also directed to a fuel gasification system comprising a gasification furnace which has a fluidized bed formed by fluidizing reactant gas to gasify charged fuel into gasification gas and flammable solid content,
a combustion furnace into which the flammable solid content generated in the gasification furnace is introduced together with bed material and which has a fluidized bed formed by fluidizing reactant gas to burn the flammable solid content and a material separator for separating bed material from the exhaust gas introduced from the combustion furnace to feed the separated bed material to said gasification furnace,
said fuel gasification system comprising decomposer for heating the gasification gas produced in the gasification furnace to decompose tar contained in the gasification gas.
In the fuel gasification system, the tar decomposer may be constituted by a heat exchanger comprising an gasification gas passage formed on an inner surface of the combustion furnace, the gasification gas being introduced into the gasification gas passage and heated by heat of the combustion furnace.
In the fuel gasification system, the tar decomposer may be constituted by a heat exchanger comprising an gasification gas passage formed on an outer surface of the combustion furnace, the gasification gas being introduced into the gasification gas passage and heated by heat of the combustion furnace.
In the fuel gasification system, the tar decomposer may be constituted by a heat exchanger comprising a gasification gas passage formed on an outer surface of a downcomer for guiding bed material separated in a material separator to the gasification furnace, the gasification gas being introduced into the gasification gas passage and heated by heat of the downcomer.
On an outer surface of the heat exchanger comprising the gasification gas passage formed on the outer surface of the combustion furnace or downcomer, an exhaust gas passage may be formed into which introduced is the exhaust gas from the combustion furnace and elevated in temperature by additional heater
In the fuel gasification system, it is preferable that the gasification gas passage is a spiral passage.
To arrange the gasification gas passage vertically is effective in terms of arrangement space.
A fuel gasification system of the invention can exhibit excellent effects and advantages that tar contained in gasification gas can be efficiently decomposed without use of water and the like, that the tar can be prevented from attaching to piping or the like, that a long-term operation can be conducted and that gasification efficiency can be enhanced.
1 fluidized bed
2 gasification furnace
3 introduction pipe
4 fluidized bed
5 combustion furnace
6 exhaust gas pipe
7 downcomer
8 material separator
9 tar decomposer
10 inner pipe
11 outer pipe
12 exhaust gas passage
13 gasification gas passage
13
a spiral passage
14 double-pipe heat exchanger
16 additional heater
17 inspection window
23 heat exchanger
24 heat exchanger
25 heat exchanger
Embodiments of the invention will be described in conjunction with the attached drawings.
[Embodiment 1]
In this embodiment, the tar decomposer 9 is constituted by a double-pipe heat exchanger 14 comprising vertically extending and coaxially arranged inner and outer pipes 10 and 11, the exhaust gas from the combustion furnace 5 and separated in the separator 8 being introduced into an exhaust gas passage 12 in the inner pipe 10 while the gasification gas produced in the gasification furnace 2 and separated from bed material in the separator 15 is introduced into a gasification gas passage 13 between the inner and outer pipes 10 and 11 so as to he heated by said exhaust gas from the combustion furnace 5, the bed material separated from the gasification gas being returned to the gasification furnace 2. Alternatively, the gasification and exhaust gas passages may be formed in the pipe 10 and between the pipes 10 and 11, respectively, the exhaust gas from the combustion furnace 5 and separated in the separator 8 being introduced into the passage between the pipes 10 and 11 while the gasification gas is introduced into the passage in the pipe 10.
It has been generally known that, when tar is contained in gas, the tar will be decomposed providing that the gas is retained at about 800° C. (1073K) for 15 seconds or at about 1000° C. (1273K) for 5 seconds. in order to satisfy such provision, there may be provided, as needs demand, additional heater 16 such as combustor for elevating in temperature the exhaust gas to be introduced into the passage 12 so as to heat the gasification gas, the gasification gas passage 13 being in the form of a spiral passage 13a with heat storage material (not shown) so as to secure sufficient dwell time of the gasification gas in the double-pipe heat exchanger 14 while maintaining high temperature. The outer pipe 11 of the heat exchanger 14 is formed at its bottom with a inspection window 17 for ascertaining attaching status of the tar in the passage 13; depending upon the attaching status ascertained through the window 17, additional fuel may be fed to the additional heater 16 so as to elevate in temperature the exhaust gas. Of course, it is not necessary to provide the additional heater 16 when the exhaust gas discharged from the combustion furnace 5 has satisfactorily high temperature; of course, it is not necessary to make the gasification gas passage in the form of the spiral passage 13a when enough dwell time of the gasification gas can be secured in the heat exchanger 14.
In the fuel gasification system shown in
The exhaust gas having been passed through the passage 12 in the heat exchanger 14 is further heat-recovered in a thermal energy recovery device 22 comprising a heat exchanger or the like and is discharged via the flue 21 to atmosphere.
Next, mode of operation of the above embodiment will be described.
In the gasification furnace 2, when fuel such as coal, biomass, waste plastic or various wet wastes is charged into the fluidized bed 1 formed by the steam and the fluidizing reactant gas such as air or oxygen, the fuel is partly oxidized into gasification so that gasification gas and flammable solid content are produced. The flammable solid content produced in the furnace 2 is introduced through the pipe 3 together with the bed material into the combustion furnace 5 where the fluidized bed 4 is formed by the fluidizing reactant gas, so that the flammable solid content is burned. The exhaust gas from the combustion furnace 5 is introduced via the exhaust gas pipe 6 into the material separator 8 where the bed material is separated from the exhaust gas and is returned via the downcomer 7 to the gasification furnace 2 to be circulated. In the gasification furnace 2, high temperature is retained in the presence of the steam fed to the bottom of the furnace 2 and moisture evaporating from the fuel itself, so that water gasification reaction (C+H2O=H2+CO) and/or hydrogen transfer reaction (CO+H2O=H2+CO2) occurs, resulting in production of flammable gasification gas such as H2 or CO.
The gasification gas produced in the gasification furnace 2 is separated from the bed material in the material separator 15 and is introduced into the passage 13 between the inner and outer pipes 10 and 11 of the double-pipe heat exchanger 14 constituting the tar decomposer 9; the exhaust gas from the combustion furnace 5 and separated from the bed material in the material separator 8 is introduced into the passage 12 in the inner pipe 14 of the double-pipe heat exchanger 14. The gasification gas is heated by the exhaust gas flowing though the passage 12 while it is passed through the passage 13, so that tar contained in the gasification gas is decomposed. The attaching status of the tar in the passage 13 is ascertained through the inspection window 17; when the tar attaches, additional fuel is fed to the additional heater 16 so as to increase in temperature the exhaust gas, In a case where the gasification and exhaust gas passages are formed in the inner pipe 10 and between the pipes 10 and 11, respectively, the exhaust gas from the combustion furnace 5 and separated in the separator 8 is introduced into the passage between the pipes 10 and 11 while the gasification gas is introduced into the passage in the pipe 10.
The gasification gas having been passed through the passage 13 in the heat exchanger 14 with the tar contained being decomposed is heat-exchanged with water and air in the thermal energy recovery device 18 and is heat-recovered, and then is introduced into the internal-combustion engine 19 and is burned, so that the internal-combustion engine 19 is driven to produce electricity through the electric generator 20. The exhaust gas having driven the engine 19 is discharged through the flue 21 to atmosphere; the exhaust gas having been passed through the passage 12 in the heat exchanger 14 for heating of the gasification gas is further heat-recovered in the thermal energy recovery device 22 and is discharged through the flue 21 to atmosphere. The steam produced in the recovery device 18 is fed to the bottom of the gasification furnace while the fluidizing reactant gas produced in the recovery device 18 is fed to the bottoms of the furnaces 2 and 5 for formation of the fluidized beds 1 and 4, respectively,
As a result, in comparison with the conventional recovery of tar through the scrubber 102 and tar/water separator 108 and feeding and burning of the recovered tar to and in the combustion furnace 110, it is not costly in terms of wastewater treatment and gasification efficiency can be enhanced. Also in comparison with the conventional arrangement of the gasification furnace followed by the reforming furnace to which oxygen is fed to partially burn the gasification gas, the concentration of the carbon dioxide is not increased and enhancement of the gasification efficiency is hopeful. It is effective in terms of arrangement space that the gasification gas passage 13 of the tar decomposer is vertically arranged.
Thus, tar contained in the gasification gas can be effectively decomposed without use of water or the like; tar can be prevented from attaching to the piping or the like; a long-term operation can be conducted; and gasification efficiency can be enhanced.
[Embodiment 2]
In the embodiment shown in
[Embodiment 3]
In the embodiment shown in
[Embodiment 4]
In the embodiment shown in
As a result, in comparison with conventional recovery of tar by the scrubber 102 and tar/water separator 108 and feeding and burning of the recovered tar to and in the combustion furnace 110, in the embodiments shown in
Thus, just like the embodiment shown in
It is to be understood that a fuel gasification system of the invention is not limited to the above embodiments and that various changes and modifications may be made without departing from the scope of the invention.
This application is a division of U.S. application Ser. No. 13/683,265 filed Nov. 21, 2012, which is a division of U.S. application Ser. No. 12/527,432 filed Aug. 17, 2009, the entire contents of each of which are incorporated herein by reference, U.S. application Ser. No, 12/527,432 is a National Stage of PCT/JP07/000113 filed Feb. 22, 2007, International Application No. PCT/JP07/000113 is based on prior Japanese Patent Application No. 2005-304469 filed October 19, 2005.
Number | Name | Date | Kind |
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4519810 | Haas | May 1985 | A |
20070094929 | Kang | May 2007 | A1 |
20080244976 | Paisley | Oct 2008 | A1 |
20090126271 | Kyo | May 2009 | A1 |
Number | Date | Country |
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2006-132885 | May 2006 | JP |
Number | Date | Country | |
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20140215922 A1 | Aug 2014 | US |
Number | Date | Country | |
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Parent | 13683265 | Nov 2012 | US |
Child | 14247892 | US | |
Parent | 12527432 | US | |
Child | 13683265 | US |