carbonization furnace

The carbonization furnace with high-temperature steam radiation and controlled air supply, combined with a thermally efficient gasification furnace, addresses inefficiencies in existing systems, achieving enhanced carbonization and gasification efficiencies for cost-effective organic waste conversion.

JP7832701B2Active Publication Date: 2026-03-18STREET DESIGN CORP
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2024-06-28
Publication Date
2026-03-18

AI Technical Summary

Technical Problem

Existing carbonization and gasification furnaces face inefficiencies in carbonization efficiency, thermal energy utilization, and gasification reaction efficiency, leading to high costs and suboptimal conversion of organic waste into useful substances like hydrogen gas and ethanol.

Method used

A carbonization furnace that uses high-temperature steam radiation and controlled combustion air supply to enhance carbonization efficiency, combined with a gasification furnace that efficiently transfers thermal energy through a heating section with high thermal conductivity, improving the overall organic matter gasification process.

Benefits of technology

The system significantly enhances carbonization and gasification efficiencies, reducing costs and enabling efficient conversion of organic waste into useful gases and energy, facilitating small-scale, locally produced biomass power generation systems.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a vertical carbonization furnace capable of controlling a carbonization rate and being efficient.SOLUTION: A carbonization furnace which is a carbonization furnace 20 that produces carbide from an organic material by supplying the organic material includes: an organic material combustion region A1 where oxygen is supplied to an upper part of the organic material heaped up inside, part of the organic material is combusted, and a temperature of the carbonization furnace is maintained at a high temperature; a carbonization region A2 provided below the organic material combustion region and where the organic material is carbonized; and a steam supply section that causes high temperature steam to pass around an outer periphery of the organic material combustion region and / or causes, using a steam supply pipe, high temperature steam to pass from an upper part of the organic material combustion region throughout the organic material combustion region, further heats up by thermal energy of the organic material combustion region, produces superheated steam having a high temperature equal to or higher than a temperature enough to exert a high temperature carbonization facilitating effect with respect to an organic material, and supplies the superheated steam to the organic material in the organic material combustion region.SELECTED DRAWING: Figure 1
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Description

Technical Field

[0001] The present invention relates to a carbonization furnace for carbonizing organic substances such as biomass and plastics (especially organic waste) to produce carbides, a gasification furnace for efficiently producing hydrogen and other various gases from the carbides, and an organic matter gasification system for gasifying organic substances such as biomass using these carbonization furnaces and gasification furnaces to generate electricity or produce energy such as hydrogen gas and ethanol.

Background Art

[0002] In order to conserve the natural environment and maintain nature in perpetuity, the reuse of useful resources such as organic waste of animals and plants in nature and organic waste using petroleum as a raw material is being promoted in various fields. For example, a system for carbonizing biomass and extracting various gases from the carbide, and a biomass power generation system that generates electricity using the water gas extracted in this way are examples of such. In addition, organic waste such as plastics, chemical fibers, and films produced from crude oil also causes various environmental pollutions, and a system that can effectively utilize these organic waste such as plastics is also desired.

[0003] Organic substances such as biomass and plastics can be converted into useful substances such as hydrogen gas and ethanol that can be used as energy by gasification. In addition, effective utilization such as generating electricity using the gasified product gas as fuel becomes possible. Therefore, a system that extracts useful substances from such organic waste and converts them into gas, electric energy, etc. effectively utilizes organic waste that has been conventionally disposed of, and greatly contributes to the construction of a recycling society. As such a system, a biomass carbonization system (Patent Document 1), a biomass power generation system (Patent Document 2), etc. have been proposed, which carbonize organic matter to produce water gas and use the water gas to generate electricity.

Prior Art Documents

Patent Documents

[0004]

Patent Document 1

[0005] The technologies disclosed in Patent Documents 1 and 2 involve separating a carbonization furnace and a gasification furnace, carbonizing organic matter (biomass) such as wood in the carbonization furnace, and generating water gas from the carbonized material produced in the carbonization furnace in the gasification furnace. A cylindrical heat storage tank is installed inside the carbonization furnace, and the biomass used as raw material is fed in from the top of the furnace. In order to raise the temperature inside the carbonization furnace, a portion of the fed-in biomass is burned in the combustion zone. Below the combustion zone is the carbonization zone, where oxygen is not supplied and a state of high temperature and insufficient oxygen (hereinafter referred to as "oxygen-deficient state") is maintained. The remaining biomass is carbonized in the carbonization zone.

[0006] In biomass carbonization furnaces such as those described in Patent Documents 1 and 2, the temperature inside the carbonization furnace is maintained at a high temperature by burning a portion of the input biomass, and carbonized material is produced from the biomass by exposing it to a high temperature of about 800°C and an oxygen-deficient state. Therefore, it is desirable to reduce the amount of biomass consumed as fuel, improve the ratio of carbonized material produced to the input organic matter (hereinafter referred to as carbonization efficiency), improve the quality of the carbonized material, and increase the carbonization rate.

[0007] Furthermore, gasification furnaces that produce useful gases such as water gas from carbides require high thermal energy for the gasification reaction. Therefore, in order to promote the gasification reaction, it is necessary to efficiently supply thermal energy to the reactor inside the gasification furnace. In the pyrolysis furnace for carbides (corresponding to a gasification furnace) described in Patent Document 1 or 2, high-temperature exhaust gas is flowed through a cylindrical pipe that surrounds the entire reaction tube (reactor) from the outside, heating the internal reaction tube from the outside. As a result, the thermal energy of the high-temperature exhaust gas flowing through the outer part of the cylindrical pipe is not efficiently transferred to the internal reaction tube, and the thermal energy of the introduced high-temperature exhaust gas cannot be effectively utilized in the gasification reaction.

[0008] The present invention aims to provide a carbonization furnace that can improve the carbonization efficiency of input organic matter and discharge high-temperature exhaust gas, a gasifier that improves gasification efficiency by increasing the utilization efficiency of thermal energy, and an organic matter gasification system that uses these carbonization furnaces and gasifiers to gasify organic matter at high efficiency and low cost, or convert organic matter into energy by utilizing the generated gas. [Means for solving the problem]

[0009] To achieve the above-mentioned objective, an organic gasification system according to a first aspect of the present invention comprises a carbonization furnace that generates carbonized material by introducing organic material, a reaction furnace into which the carbonized material produced in the carbonization furnace and a gasifying agent are introduced, and a heating section for heating the reaction furnace, and a gasification furnace that gasifies the introduced carbonized material, The carbonization furnace comprises an organic matter combustion region that burns a portion of the organic matter to maintain the temperature of the carbonization furnace at a high temperature, and a carbonization region that carbonizes the organic matter, characterized in that high-temperature steam is radiated onto the organic matter in the combustion region.

[0010] The high-temperature steam is preferably superheated steam at 800°C or higher, but is not limited to this. By supplying high-temperature steam, organic matter can be directly carbonized by the high-temperature steam, improving carbonization efficiency.

[0011] Another embodiment of the present invention relates to an organic gasification system, wherein the carbonization furnace further comprises an exhaust gas combustion region for burning the organic gas combustion region and the combustible gas generated in the carbonization region, and an exhaust gas discharge section for discharging high-temperature exhaust gas generated by the combustion of the combustible gas, and the high-temperature exhaust gas discharged from the carbonization furnace is supplied to the heating section of the gasification furnace. In the organic matter combustion region, combustion of organic matter and rapid reaction between high-temperature steam and organic matter due to improved thermal conductivity generate combustion exhaust gas containing tar and combustible gases such as carbon monoxide. These combustible gases are burned in the exhaust gas combustion region, and by raising the temperature to a level higher than that of the organic matter combustion region, the above-mentioned combustible gases and tar are burned, generating high-temperature exhaust gas. This high-temperature exhaust gas is sent from the exhaust gas discharge section to the heating section of the gasification furnace.

[0012] A carbonization furnace according to a first aspect of the present invention is a carbonization furnace that carbonizes organic matter by burning a portion of the organic matter input in an organic matter combustion region within the carbonization furnace to maintain the temperature of the carbonization furnace at a high temperature, and is characterized in that it is equipped with a steam supply unit that radiates high-temperature steam onto the organic matter in the organic matter combustion region. By radiating steam heated by the steam supply unit into the combustion region, it is possible to directly carbonize or carbonize the carbonized material, thereby increasing the carbonization efficiency of the organic matter and further increasing the amount of combustible gas.

[0013] Another embodiment of the present invention provides a carbonization furnace comprising a first air supply mechanism for supplying combustion air to the organic matter combustion region, wherein the first air supply mechanism has a heating space formed by a first outer peripheral wall that surrounds at least a portion of the organic matter combustion region of the carbonization furnace from the outside, and a first frame portion constituting the inner wall of the carbonization furnace on the organic matter combustion region side of the heating space has at least one through hole, and is characterized in that it supplies combustion air to the heating space and supplies it to the organic matter combustion region through the through hole. The first frame portion preferably has heat resistance and thermal conductivity. The first frame portion is further preferably heat storage capacity.

[0014] This configuration allows the combustion air to be heated in the heating space and supplied to the organic matter combustion region, thus preventing the temperature in the organic matter combustion region from decreasing by introducing lower-temperature combustion air.

[0015] Another embodiment of the present invention provides a carbonization furnace characterized in that the steam supply unit supplies the high-temperature steam to the heating space of the first air supply mechanism and radiates the high-temperature steam to the organic matter combustion region through the through hole. Preferably, the steam supply unit is configured such that a tubular body with good thermal conductivity is installed in the heating space, and the steam supplied from the outside is superheated as it passes through the inside of the tubular body, and the superheated steam is radiated from the tip of the tubular body into the heating space. As a result, the first air supply mechanism also functions as a water vapor supply unit.

[0016] Another embodiment of the present invention provides a carbonization furnace further comprising: a second air supply mechanism for burning the combustible gas generated by the combustion and carbonization of the organic matter in the organic matter combustion region and by radiating the high-temperature steam onto the organic matter in an exhaust gas combustion region; and an exhaust gas discharge section for discharging the combustible gas in the exhaust gas combustion region as high-temperature exhaust gas. This second air supply mechanism can be configured similarly to the first air supply mechanism for supplying combustion air.

[0017] The second air supply mechanism has a heating space formed by a second outer peripheral wall that surrounds at least a portion of the organic matter combustion region of the carbonization furnace from the outside, and the second frame portion that constitutes the inner wall of the carbonization furnace on the exhaust gas combustion region side of the heating space is provided with at least one through hole, and can be configured to supply combustion air to the heating space and to the organic matter combustion region through the through hole.

[0018] This structure allows various combustible gases generated in the combustion region to be burned in the exhaust gas combustion region, enabling the combustion and decomposition of tar in the exhaust gas. Furthermore, it allows for the discharge of high-temperature exhaust gas, which can then be used as a more effective heat source to raise the temperature of the steam radiated into the gasification furnace or combustion region.

[0019] Furthermore, in a carbonization furnace according to another aspect of the present invention, the steam supply unit is characterized by comprising: a steam chamber provided above the exhaust gas combustion region to generate high-temperature steam; and a steam supply pipe section that is piped from the steam chamber through the exhaust gas combustion region to the organic matter combustion region, transferring the high-temperature steam from the steam chamber while further heating it, and radiating it to the organic matter combustion region. This allows for the radiation of even higher-temperature steam toward the organic matter combustion region. In addition, a temperature sensor can be provided near the exhaust gas combustion region, and the amount of combustion air can be increased when the temperature of the temperature sensor falls below a predetermined temperature to maintain the temperature of the exhaust gas combustion region above the predetermined temperature.

[0020] A gasification furnace according to a first aspect of the present invention is a gasification furnace for gasifying a carbide introduced into it, comprising: a cylindrical body portion having an internal space; a heating portion made of a material with high thermal conductivity and / or heat storage capacity, which penetrates the center of the internal space of the cylindrical body portion in the longitudinal direction and has a flow path for passing high-temperature gas; a reaction portion formed by the internal space surrounding the heating portion, which is heated by the heating portion and gasifies the organic matter introduced into it; a raw material supply portion provided upstream of the reaction portion for introducing the organic matter and a gasifying agent into the reaction portion; and a gas outlet provided downstream of the reaction portion for extracting various useful gases generated by the reaction portion.

[0021] In this embodiment, by providing the heating section so as to penetrate the center or near the center of the cylindrical main body which becomes a material reaction furnace with high thermal conductivity and / or heat storage, the thermal energy of the high-temperature gas can be transferred to the reaction furnace more efficiently, thereby improving the heating efficiency of the reaction furnace.

[0022] In addition, the raw material supply unit includes a carbide supply unit that supplies a predetermined amount of carbide finely pulverized by a pulverization unit from the carbonization furnace, and an injection input unit that mixes the pulverized carbide and a gasification agent and injects and inputs them into the reaction unit. By adopting such a configuration, the gasification efficiency in the reactor can be improved. It is preferable to supply high-temperature steam, for example, superheated steam at 800°C or higher, as the gasification agent. Furthermore, it is desirable that a negative pressure is applied to the reaction unit of the gasification furnace from the raw material input unit toward the gas extraction port. Thereby, the raw material can be moved from the upstream to the downstream in the reactor to promote the reaction, and the generated useful gas can be extracted on the downstream side. In addition, a plurality of concavities and convexities for increasing the contact area with the reaction unit are provided on the surface of the outer wall or the inner wall of the heating unit, so that the heat transfer efficiency to the reactor can be further improved.

[0023] Any one of the carbonization furnaces of the above aspects and any one of the gasification furnaces according to the above aspects can be combined to constitute a gasification system for organic substances that generates useful gas from organic substances. In addition, a biomass power generation system using various useful gases generated by these gasification systems for organic substances as fuel, and an energy conversion system such as ethanol production and hydrogen gas separation can be constructed.

Effects of the Invention

[0024] According to the gasification system for organic substances using the carbonization furnace and the gasification furnace according to the present invention, organic substances can be efficiently carbonized, and carbides can be efficiently gasified. Therefore, an efficient and inexpensive gasification system for organic substances can be provided. In particular, the carbonization furnace according to the present invention allows for a significant improvement in the carbonization rate and an increase in the carbonization speed compared to simply burning a portion of the organic matter by radiating high-temperature steam into the organic matter combustion region. Furthermore, it becomes possible to introduce organic matter with a lower degree of dryness compared to conventional methods. In addition, by providing a configuration in which the combustible gas generated by combustion and carbonization is burned in the exhaust gas combustion region, high-temperature exhaust gas can be provided. Moreover, it becomes possible to stably combust and decompose the tar component of the exhaust gas.

[0025] Furthermore, according to the gasification furnace of the present invention, a heating section is made to penetrate the center of the reaction furnace, and high-temperature gas is supplied to the inside of the superheating section and passed through, thereby providing a gasification furnace with high thermal efficiency. In addition, by introducing finely pulverized carbides and introducing gasifying agents heated to high temperatures, the efficiency of the reaction can be further promoted.

[0026] Furthermore, by combining various carbonization furnaces and gasification furnaces according to each embodiment of the present invention as described above, it becomes possible to provide an organic gasification system that can share the effects of each carbonization furnace and gasification furnace, as well as a biomass energy conversion system.

[0027] Thus, the gasification furnace according to the present invention dramatically improves the heat exchange efficiency of the high-temperature gas, which is the heat source of the heating section, enabling a smaller gasification furnace and a more efficient gasification reaction. By using such an efficient and compact carbonization furnace and gasification furnace according to the present invention, carbonization efficiency and gasification efficiency are greatly improved, and the size of the equipment can be flexibly constructed according to the amount of organic matter generated, resulting in a significant improvement in cost-effectiveness. This makes it easier than before to construct practical, locally-produced, small-scale biomass power generation systems and the like. [Brief explanation of the drawing]

[0028] [Figure 1] A diagram showing the schematic configuration of the organic gasification system according to the present invention. [Figure 2]A schematic cross-sectional view of the first air supply mechanism section, shown in Figure 1, of the carbonization furnace section as viewed from the direction of the DD line. [Figure 3] Figure 2 shows a schematic longitudinal cross-sectional view of the first air supply mechanism as seen from the direction of the EE line. [Figure 4] A schematic cross-sectional view showing the cross-section of the second air supply mechanism attached to the carbonization furnace section of Figure 1, as viewed from the direction of the FF line. [Figure 5] A schematic longitudinal sectional view showing another embodiment in which high-temperature steam is introduced into the organic matter combustion region. [Figure 6] A schematic longitudinal sectional view showing yet another embodiment in which superheated steam is introduced into the organic matter combustion region. [Figure 7] A functional block diagram showing an example of control for an organic gasification system according to the present invention (example of use in a biomass power generation system). [Figure 8] A flowchart illustrating an example of exhaust gas temperature control for a carbonization furnace according to the present invention. [Modes for carrying out the invention]

[0029] The carbonization furnace, gasification furnace, organic gasification system, organic carbonization method, and gasification method according to the present invention will be described below with reference to the drawings. The organic gasification system consists of a carbonization furnace that produces carbonized material from biomass and a gasification furnace that produces various useful gases from the carbonized material. By supplying the useful gases produced by this system to a generator or ethanol production device, a biomass power generation system and other systems that effectively utilize organic material as energy can be constructed.

[0030] Figure 1 shows a functional block diagram illustrating the schematic configuration of an organic gasification system according to one embodiment of the present invention. The organic gasification system 10 comprises a carbonizer 20 capable of efficiently producing carbonized material from organic material such as biomass by radiating high-temperature steam onto an organic combustion region where organic material is burned, and a gasifier 50 connected to the carbonizer, which efficiently utilizes the thermal energy of the exhaust gas in the gasification reaction by supplying high-temperature exhaust gas generated in the carbonizer through a heating section provided to penetrate the central part of the reactor.

[0031] Although Figure 1 illustrates an organic gasification system 10 that includes a carbonizer 20, the organic gasification system of the present invention can also be configured to supply carbonized material or organic material such as plastic directly to the gasifier 50 without passing it through the carbonizer 20. In that case, a separate heat source for the gasifier will need to be provided. As an example of utilizing the generated gas GS output from the gasifier 50, Figure 1 shows an example in which a gas tank 65 for containing the gas and a generator 67 are connected (an example of a biomass power generation system as a whole) (the block diagram is shown with dashed lines). However, the organic gasification system of the present invention is not limited to such a power generation system. For example, it can be used in various systems for generating various substances from organic waste, such as generating carbonized material from organic material such as biomass, feeding the generated carbonized material into a gasifier, and feeding the resulting gas into an ethanol generator to produce ethanol.

[0032] The carbonization furnace 20 according to one embodiment of the present invention shown in Figure 1 has a configuration that radiates high-temperature steam onto organic matter in the organic matter combustion region A1. Figure 1 also shows an example of a carbonization furnace 20 equipped with a rotatable heat storage body 30 having a screw-type projection 32 that can more precisely control the residence time of the organic matter combustion region A1 and the carbonization region A2, thereby more precisely controlling the biomass carbonization process in the carbonization furnace 20.

[0033] The raw material for the carbonized material fed into the carbonization furnace 20 is not limited to biomass; any organic material is acceptable. In particular, it is desirable to effectively utilize as raw materials thinned wood and other types of wood, straw and rice husks discharged from rice cultivation, vegetables and other plants, household waste such as vegetable scraps and leftovers, and organic waste from poultry farms or ranches. Furthermore, the gasification furnace 50 of the present invention can also generate combustible gas from plastics and other organic materials. In this specification, an example of generating carbonized material from biomass using wood (woody biomass) as a raw material will be used for explanation, but as stated above, it is not intended that the raw material for the carbonized material is limited to this. A biomass power generation system that utilizes wood discarded in mountainous areas, such as thinned wood, is particularly expected to be put into practical use as a small-scale power generation system that serves as a locally produced and consumed electrical energy source in small areas adjacent to mountainous areas, and therefore will be explained using this as an example.

[0034] The basic components of this system—carbonizing organic matter, generating various gases from the carbonized material through a gasification reaction, and feeding the generated carbonized material into a gasifier to produce useful gases such as water gas—are the same as those disclosed in conventional biomass power generation systems. However, in this present invention, the carbonizer and gasifier components of the organic matter gasification system have unique features, and by using these carbonizers and gasifiers, a more efficient organic matter gasification system can be provided. In Figure 1, in order to explain the configuration of the carbonizer 20 and gasifier 50 in an easy-to-understand manner, only the main components are shown in a simplified manner, and power supply lines that supply electrical energy, signal lines that acquire information from various sensors, control signal lines that control various drive units, various drive mechanisms, control valves, and filters are omitted.

[0035] As shown in Figure 1, the organic gasification system 10 according to one embodiment of the present invention comprises a drying chamber 11 for drying organic matter C1, an input device 12 for feeding the dried organic matter C1 into a carbonization furnace 20, a carbonization furnace 20 that produces carbonized material from organic matter C1, and a gasification furnace 50 that produces hydrogen gas and other gases (hereinafter referred to as "product gases") from the carbonized material C2. When the organic gasification system of the present invention is used in a biomass power generation system, the product gas GS produced by the organic gasification system 10 is stored in a gas tank 65 that stores product gases (hydrogen gas, etc.) produced by the gasification furnace 50, supplied to a generator 67 to generate electricity, and supplied to consumers as electrical energy ELC.

[0036] In the carbonization furnace 20 shown in Figure 1, organic material (woody biomass) is continuously fed in from the top of the furnace, and the carbonized material is continuously removed from the bottom of the furnace. The carbonization furnace 20 consists of an outer frame 21 made of refractory material that can withstand high temperatures of over 1,000 degrees Celsius, and a heat storage body 30 that is rotatably installed inside the furnace. The outer frame 21 is generally formed with a double-layer structure of highly heat-resistant refractory bricks that can withstand high temperatures of over 1,000 degrees Celsius and an insulating material.

[0037] Organic matter C1, such as woody biomass, is cut into small pieces and then dried in a drying chamber 11. An organic matter inlet 22 is provided at the top of the carbonization furnace 20 for introducing the dried organic matter C1. An appropriate amount of dried organic matter C1 is introduced into the carbonization furnace 20 from this organic matter inlet 22 by an input device 12 (the input device 12 and the organic matter inlet 22 constitute the "organic matter input section"). A carbonized material extraction section 23 is provided at the bottom of the carbonization furnace 20 for removing carbonized material C2 from the carbonization furnace 20 and sending it to the next process. Furthermore, a gas discharge section 24 is provided at a position higher than the organic matter inlet 22 of the carbonization furnace 20 for burning the combustible gas generated by the combustion and carbonization of organic matter C1 and the introduction of high-temperature steam, and for discharging it as high-temperature exhaust gas HEG.

[0038] A heat storage body 30 is rotatably mounted in the internal space of the carbonization furnace 20, below the organic matter input port 22, and is rotated by a motor 33 located at the bottom of the carbonization furnace 20. The outer peripheral portion (outer surface) 31 of the heat storage body 30 has a spiral (screw-like) projection 32 that protrudes toward the inner wall 21a of the outer frame 21. By rotating this heat storage body 30, the biomass and carbonized material accumulated between the inner wall 21a of the carbonization furnace 20 and the outer peripheral portion 31 of the heat storage body 30 is slowly moved downward. The heat storage body 30, including the projection 32, is manufactured from a material that has heat resistance and heat storage properties, and is controlled to rotate at a slow speed suitable for carbonizing organic matter C1, for example, about one rotation every 20 minutes to 1 hour. By controlling the rotation speed of this heat storage body 30, it is possible to control the vertical movement speed of the organic matter C1 within the carbonization furnace 20.

[0039] Furthermore, a portion of the upper region of the heat storage body 30 and the internal space region sandwiched between the upper part of the heat storage body 30 and the inner wall 21a of the outer frame become the organic matter combustion region A1. In order to maintain the carbonization furnace 20 at a high temperature of 800°C or higher, a portion of the organic matter C1 is partially combusted in this organic matter combustion region A1. That is, the temperature of the organic matter combustion region A1 in the carbonization furnace 20 is maintained at a high temperature of 800°C or higher by this partial combustion of organic matter C1. The internal space of the carbonization furnace 20 below the organic matter combustion region A1 becomes the carbonization region A2.

[0040] A first air supply mechanism 13 for controlling the combustion of organic matter C1 is provided in the portion of the outer frame 21 corresponding to the location of the organic matter combustion region A1 (first frame portion 21b: see Figures 2 and 3). Figure 2 shows a partial cross-sectional view of the first air supply mechanism 13 in the central lateral direction (DD direction shown in Figure 1), and Figure 3 shows a cross-sectional view of the portion of the first air adjustment mechanism 13 in the EE direction of Figure 2. Note that in Figures 2 and 3, the protrusions 32 of the heat storage body 30 and the configuration of the bottom of the carbonization furnace are omitted.

[0041] The first air supply mechanism 13 has a heating space 13b formed by surrounding the outer circumference of the first frame portion 21b, which corresponds to the location of the organic matter combustion region A1 of the outer frame 21, with a first outer peripheral wall 13a. Combustion air is supplied to this heating space 13b from the first air supply unit 25a. The first frame portion 21b has one or more through holes 25c that penetrate to the organic matter combustion region A1 inside the carbonization furnace. In Figures 2 and 3, an example is shown in which the first air supply mechanism 13 surrounds the entire organic matter combustion region A1. While it is preferable for the first air supply mechanism 13 to cover the entire organic matter combustion region A1 in this way, it may also be configured to partially surround only a part of it. The same applies to the second air supply mechanism described below; it is not necessarily required to cover the entire exhaust gas combustion region B1.

[0042] The outer periphery wall 13a of the first air supply mechanism 13 is formed of a material having heat resistance and heat insulation properties, and the first frame portion 21b that constitutes the inside of the heating space 13b is preferably formed of a material that has a good balance of thermal conductivity and heat storage properties. Since the organic matter combustion region A1 in the carbonization furnace 20 is at a high temperature of 800°C or higher, the heating space 13b also becomes hot via the first frame portion 21b, and the combustion air supplied into the heating space 13b is heated. The combustion air supplied from the first air supply unit 25a by a blower or the like is heated in the heating space 13b, and the high-temperature combustion air is supplied to the organic matter combustion region A1 through the through hole 25c. By adjusting the amount of this combustion air (oxygen) supplied, the combustion of organic matter C1 in the organic matter combustion region A1 is controlled. At that time, by supplying the combustion air at a high temperature, it is possible to suppress the rapid decrease in the temperature of the organic matter combustion region A1 in the carbonization furnace due to the combustion air, and stable combustion control and temperature control become possible.

[0043] Furthermore, the heating space 13b is provided with steam supply pipes 36a and 36b (corresponding to the steam supply section) for supplying steam. That is, high-temperature steam Wv is supplied to the heating space of the first air supply mechanism 13 through the steam supply pipes 36a and 36b. The steam supply pipes 36a and 36b are spirally wound inside the first air supply mechanism 13 and release steam from steam outlets 37a and 37b at their ends. It is desirable that the steam supply pipes 36a and 36b are supplied with high-temperature steam Wv heated to 160°C or higher by a boiler 45 or other heating device, which will be described later.

[0044] The steam supply pipes 36a and 36b wound within the first air supply mechanism 13 are made of a highly thermally conductive material and act as heat exchange pipes. The supplied steam is further heated within the high-temperature heating space 13b, and the steam in the steam supply pipes 36a and 36b becomes even hotter. The high-temperature steam released into the heating space 13b is supplied to the organic matter combustion region A1 along with high-temperature combustion air through the through-hole 25c and radiated onto the organic matter C1. The steam supplied to the steam supply pipes 36a and 36b can also be heated using, for example, high-temperature exhaust gas (HEG). This makes it possible to produce even hotter superheated steam within the heating space 13b. It is preferable that the first air supply mechanism 13 be equipped with a first temperature sensor TS1 for measuring the temperature of the organic matter combustion region A1.

[0045] When the amount of combustion air supplied to the carbonization furnace 20 from the first air supply mechanism 13 increases, the amount of organic matter burned increases, and the temperature of the organic matter combustion region A1 rises. It is desirable to maintain the organic matter combustion region A1 at the highest possible temperature, but increasing the combustion air and raising the temperature increases the amount of organic matter burned, so the amount of carbon produced relative to the input organic matter decreases, and the carbonization rate decreases. Therefore, taking the carbonization rate into consideration, it is preferable to appropriately control the amount of combustion air supplied and the rotation speed of the heat storage body 30 so as to maintain the temperature of the organic matter combustion region A1 at around 800°C. However, depending on the operating conditions, the system may be controlled to maintain a higher temperature. The amount of combustion air supplied can be controlled by adjusting the airflow rate of a blower or the like (not shown).

[0046] Furthermore, when high-temperature steam is radiated into the organic matter combustion region A1, the high-temperature superheated steam comes into direct contact with the uncarbonized organic matter C1, dramatically increasing the heat transfer efficiency of the high-temperature superheated steam. This promotes the carbonization of organic matter C1, significantly shortening the carbonization time and carbonization efficiency (high-temperature carbonization promotion effect). This high-temperature carbonization promotion effect makes it possible to carbonize organic matter C1 in the organic matter combustion region A1 more efficiently, improving the biomass carbonization rate by approximately 10-20% compared to conventional methods.

[0047] In addition to the conventional combustible gas generated by the combustion of biomass C1, carbon monoxide gas (CO) is produced when hydrogen gas (H2), which is a reaction gas between superheated steam (H2O) and carbide, reacts with carbide (C) and oxygen (O). This carbon monoxide gas (CO) and hydrogen gas (H2) contribute to the combustion of combustible exhaust gas in the exhaust gas combustion region B1 of the carbonization furnace 20, which will be described later, and the exhaust gas combustion region B1 can be made even hotter. This not only allows for the supply of a large amount of thermal energy from the exhaust gas to the gasifier by making the exhaust gas hotter, but also enables efficient feedback of surplus thermal energy to the carbonization furnace, such as preheating the steam to a higher temperature before introducing it into the carbonization furnace.

[0048] Furthermore, according to conventional technology, if the moisture content of the organic matter C1 introduced into the carbonization furnace 20 is high, combustion and carbonization of the organic matter C1 takes a long time. Therefore, the raw material organic matter C1 was dried until its moisture content was 20% or less before being introduced into the carbonization furnace. In contrast, the carbonization furnace of the present invention is configured to directly radiate high-temperature steam onto the organic matter C1 in the organic matter combustion region A1, thereby promoting combustion and carbonization. This makes it possible to introduce organic matter C1 into the carbonization furnace even if its moisture content is around 40% to 50%. This shortens the drying time, improves the total carbonization rate of the organic matter C1, and reduces the thermal energy required for drying, thus enabling a reduction in total costs.

[0049] In the organic matter combustion region A1, a portion of the organic matter C1 is burned, and the remaining portion is carbonized by high-temperature steam. The organic matter C1 that was not burned or carbonized in the organic matter combustion region A1, the carbonized charred material C2, and the combustion ash are transferred from the organic matter combustion region A1 to the carbonization region A2 below by the screw-shaped projection 32 as the heat storage body 30 rotates. The unburned organic matter C1 is carbonized by exposure to the high-temperature and oxygen-deficient environment of the heat storage body 30 under oxygen-deficient conditions, and is removed as charred material C2 from the charred material removal section 23.

[0050] As described above, by irradiating organic matter C1 with high-temperature steam, the carbonization rate, carbonization speed, and carbonization quality of the organic matter can be improved. Furthermore, by burning the combustion gas generated by steam irradiation in the exhaust gas combustion region B1, high-temperature exhaust gas can be discharged, and this combustion also enables more complete combustion of the tar component in the exhaust gas. Therefore, it becomes possible to provide a high-quality, low-cost carbonization furnace, and through the synergistic effect with the efficient utilization of the thermal energy of the exhaust gas in the gasification furnace in the subsequent process described later, it becomes possible to provide an organic gasification system that can gasify organic matter at a high quality and low cost.

[0051] In the organic matter combustion region A1 and carbonization region A2, when organic matter burns and carbonizes, high-temperature combustible exhaust gas containing tar is generated. Furthermore, by radiating high-temperature steam in the organic matter combustion region A1, combustible carbon monoxide gas (CO) is generated when hydrogen gas (H2), which is a decomposition gas of superheated steam (H2O), reacts with carbon (C) and oxygen (O). In this invention, these combustible exhaust gases are burned to an even higher temperature (preferably exceeding 1000°C) before being supplied to a gasification furnace to reuse the thermal energy of the high-temperature exhaust gas. To this end, the combustible exhaust gas is burned in the exhaust gas combustion region B1 at the top of the carbonization furnace 20 to burn and decompose the tar, and the exhaust gas is discharged from the gas discharge section 24 as a higher-temperature exhaust gas (HEG).

[0052] The discharged high-temperature exhaust gas (HEG) is delivered to the gasification furnace 50 via piping 17a and used as a heat source for the reactor. Since the high-temperature exhaust gas (HEG) reaches temperatures exceeding 1000°C, the piping 17a supplying the HEG is also made of heat-resistant material. Negative pressure is applied to piping 17a, and the high-temperature exhaust gas (HEG) is sent from the carbonization furnace 20 to the gasification furnace 50. One or more valves (not shown) may be provided near the gas discharge section 24 of piping 17a or at other locations, and the flow of exhaust gas may be controlled by controlling the operation of these valves.

[0053] In the carbonization furnace 20 shown in Figure 1, a second air supply mechanism 14 having a structure similar to the first air supply mechanism 13 is provided in the outer region of the exhaust gas combustion area B1 in order to control the combustion of combustible exhaust gas. Figure 4 shows a cross-sectional view in the direction of the FF line in Figure 1. In this figure as well, the screw-shaped projection 32 of the heat storage body 30 and the bottom shape inside the carbonization furnace are omitted. As can be seen from Figure 4, the second air supply mechanism 14 has a structure almost identical to that of the first air supply mechanism 13, except that it does not have a mechanism for supplying water vapor. That is, in the second air supply mechanism 14, the second outer peripheral wall 14a surrounds the outer periphery of the outer frame body 21c in the part corresponding to the location of the exhaust gas combustion area B1, and a heating space 14b is formed. Combustion air is supplied to this heating space 14b from the air supply port 25b. The second frame portion 21c, surrounded by the second outer peripheral wall 14a, has one or more through holes 25d that penetrate into the exhaust gas combustion region B1 inside the carbonization furnace.

[0054] Furthermore, Patent Document 1 also discloses a configuration in which combustion air is introduced to burn the exhaust gas in the upper part of the carbonization furnace and thermally decompose the tar. However, the technology in Patent Document 1 and the present invention perform exhaust gas combustion control in completely opposite ways. First, in Patent Document 1, when the temperature of the exhaust gas combustion region (exhaust gas temperature) drops below a certain temperature, the introduction of combustion air is stopped to prevent the temperature of the exhaust gas combustion region from dropping further due to the low-temperature combustion air. In other words, the combustion of the combustible gas is temporarily suspended and kept on standby until the temperature rises. Consequently, during the period when the supply of combustion air is stopped and combustion is stopped, the tar in the exhaust gas cannot be completely burned, and the exhaust gas is discharged with residual tar.

[0055] In contrast, in the carbonization furnace of the present invention shown in Figure 1, if the temperature of the exhaust gas combustion region B1 falls below a certain temperature (below the first temperature), the temperature is raised by increasing the amount of combustion air supplied, contrary to Patent Document 1. In other words, in the present invention, even if the temperature of the exhaust gas combustion region B1 drops, the second air supply mechanism 14 supplies heated combustion air to promote the combustion of the combustible gas, thereby raising the temperature through combustion. Therefore, the exhaust gas is not discharged with tar remaining in the combustible exhaust gas. Thus, in the present invention, even if the temperature of the exhaust gas combustion region B1 may temporarily drop due to the supply of combustion air, the temperature of the exhaust gas is raised by continuing to supply combustion air and promoting combustion.

[0056] In the embodiment of the second air supply mechanism 14 of the present invention illustrated in Figures 1 and 2, the supplied combustion air is heated to a high temperature by the outer frame 21 before being supplied to the exhaust gas combustion region B1 through a plurality of through holes 25c. Therefore, even if combustion air is supplied to the exhaust gas combustion region B1, the temperature of the exhaust gas does not easily decrease. In the carbonization furnace shown in Figures 1 to 4, the first and second air supply units 25a and 25b are connected to the first and second air supply mechanisms 13 and 14 to supply combustion air to the heating spaces 13b and 14b. However, it is also possible to configure the furnace so that one or more first and second air supply units 25a and 25b are directly connected to the outer frame 21 of the organic matter combustion area A1 and the exhaust gas combustion area B1, without providing the heating spaces 13b and 14b, to supply combustion air to the organic matter combustion area A1 and the exhaust gas combustion area B1. In that case, a heat exchanger similar to the heater 43 used in the gasification furnace 50 described later may be provided in the exhaust gas HEG piping 17a, and the combustion air may be heated to a high temperature by this heat exchanger before being supplied to the exhaust gas combustion area B1. Furthermore, while it is desirable to heat the combustion air and supply high-temperature combustion air, it is also acceptable to supply combustion air directly to combustion regions A1 and B1 without preheating the combustion air. <Operation of a carbonization furnace>

[0057] As described above, this specification shows an example of producing carbonized material using woody biomass as a raw material, and the woody biomass C1 used as the raw material is placed in a drying chamber 11 and dried. From the viewpoint of improving drying efficiency, improving carbonization efficiency, and stably controlling the degree and rate of carbonization in the carbonization furnace 20, it is preferable that the biomass C1 fed into the carbonization furnace 20 be supplied to the drying chamber 11 in the form of wood chips C1 cut to a relatively small size, for example, 10 cm or less, preferably 5 cm or less, using a cutting device or the like.

[0058] Biomass C1, such as wood chips, is dried in the drying chamber 11 before being fed into the carbonization furnace 20. Preferably, it is dried to a moisture content of 40% or less. Conventional carbonization furnaces required wood chips with a moisture content of about 20%, but as mentioned above, by radiating high-temperature steam, the carbonization furnace of the present invention can accept organic matter C1 with a moisture content of about 40%. As a drying method, for example, organic matter can be efficiently dried by using high-temperature exhaust gas (HEG) as a heat source for a gasification furnace or the like, and then sending it to the drying chamber 11. The dried biomass C1 is then fed into the carbonization furnace 20 using the input device 12.

[0059] When the carbonization furnace 20 starts up, a predetermined amount of organic matter C1 is first introduced and ignited in the organic matter combustion region A1. Until the temperature of the organic matter combustion region A1 and the heat storage body 30 reach approximately 800°C, a large amount of air and an appropriate amount of organic matter C1 for complete combustion are sequentially supplied to completely combust the organic matter C1 and raise the temperature of the organic matter combustion region A1. When the temperature of the organic matter combustion region A1 and the heat storage body 30 of the carbonization furnace reaches the desired temperature (preferably around 800°C) and stabilizes, the amount of air supplied is controlled so that a portion of the organic matter C1 is partially combusted and the organic matter combustion region A1 of the carbonization furnace is stably maintained at the desired temperature. At the same time, steam is supplied to the heating space 13b of the first air supply mechanism 13. As a result, a portion of the organic matter C1 is partially combusted in the organic matter combustion region A1, and the remaining organic matter C1 and carbonized material that has not been combusted in the organic matter combustion region A1 is transferred to the carbonization region A2 where it is carbonized.

[0060] The organic matter C1 dropped from the organic matter inlet 22 of the carbonization furnace falls onto the upper part of the heat storage body 30 and onto the protruding portion 32 of the heat storage body 30 and accumulates there. The organic matter C1 accumulated on the screw-shaped protruding portion 32 is transported to the lower side of the carbonization furnace 20 by the rotation of the heat storage body 30, between the outer circumference 31 of the heat storage body 30 and the inner wall 21a of the outer frame 21. In other words, by rotating the heat storage body 30, the screw-shaped protruding portion 32 can gradually move the organic matter C1 from the organic matter combustion region A1 to the lower carbonization region A2, and by controlling the rotation speed of the heat storage body 30, the residence time of the organic matter C1 in the organic matter combustion region A1 and the carbonization region A2 can be controlled by the rotation speed of the heat storage body 30.

[0061] In conventional carbonization furnaces with heat storage bodies that lack protrusions, the combustion and carbonization process was controlled by controlling the temperature of the organic matter combustion region A1 and the amount of organic matter C1 added, according to the combustion state of the organic matter C1 accumulated in the carbonization furnace and the movement state of the organic matter C1 due to natural fall when the carbonized material is removed. As a result, it was not possible to accurately control the residence time of the organic matter C1, leading to insecure control. In contrast, the present invention, with the above-described configuration, makes it possible to accurately control the vertical (height) movement speed of the organic matter C1 in the carbonization furnace. This makes it possible to adjust both the residence time of the organic matter combustion region A1 and the amount of air, enabling accurate control of the furnace temperature, the carbonization rate of the organic matter C1, and the carbonization quality.

[0062] In this way, the carbonized or carbonized carbide C2 and combustion ash are removed from the carbide removal section 23 located below the carbonization region A2 of the carbonization furnace 20. The carbide C2 removed from the carbide removal section 23 is then transported to the gasification furnace 50 via the transport path 15a.

[0063] Furthermore, when the amount of organic matter C1 in the organic matter combustion area A1 decreases due to combustion or the removal of carbide C2 from the carbide removal section 23, dried organic matter C1 is sequentially introduced and replenished from the organic matter inlet 22. The amount of dried organic matter C1 introduced can be controlled by the introduction device 12, and can be automatically controlled or manually controlled based on visual information according to the operating conditions.

[0064] Furthermore, as described above, the combustible gas generated by combustion, etc., is burned in the exhaust gas combustion region B1 and discharged from the gas discharge section 24 as high-temperature (preferably high temperature exceeding 1000°C) exhaust gas HEG.

[0065] In this invention, a second temperature sensor TS2 is provided near the through-hole 25c. When the temperature detected by the second temperature sensor TS2 drops below a desired constant temperature, the amount of air supplied from the second air supply unit 25b is increased, thereby increasing the amount of air introduced into the exhaust gas combustion region B1 from the through-hole 25c. This promotes the combustion of combustible exhaust gas in the exhaust gas combustion region B1, burning off tar and raising the temperature of the exhaust gas discharged from the carbonization furnace. As a result, the tar contained in the combustible gas is completely thermally decomposed at a high temperature in the exhaust gas combustion region B1 and discharged as high-temperature exhaust gas HEG that does not contain tar. It is preferable that the exhaust gas HEG be at a high temperature of 1000°C or higher. The high-temperature exhaust gas HEG discharged from the gas discharge unit 24 is delivered to the gasification furnace 50 via piping 17a. Since the high-temperature exhaust gas HEG is at a high temperature exceeding 1000°C, the piping 17a that supplies the exhaust gas HEG is also made of heat-resistant material.

[0066] The carbide C2 removed from the carbide removal section 23 of the carbonization furnace 20 is sent to the gasification furnace 50 via the transport path 15a. In Figure 1, the first and second air supply mechanisms 13 and 14 each show one first and one second air supply section 25a and 25b, and one first and one second temperature sensors TS1 and TS2, respectively, but as shown in Figure 2, multiple units may be provided for each.

[0067] <Gasifier> Returning to Figure 1, let's explain the gasification furnace 50. The carbide C2 removed from the carbonization furnace 20 is fed into the gasification furnace 50 along with the gasifying agent, and hydrogen and other gases (hereinafter referred to as product gases) are generated.

[0068] Figure 1 shows an example in which the gasifier 50 is equipped with two cylindrical gasification units 51a and 51b. If there is only one gasification unit, that single gasification unit becomes the gasifier itself. The number of gasification units constituting the gasifier may be one, two, or three or more. Each gasification unit 51a and 51b has a cylindrical body portion 52a and 52b, respectively, which has a cylindrical internal space 55a and 55b, and a heating portion 56a and 56b that penetrates the interior of the cylindrical internal space 55a and 55b in the longitudinal direction. The internal spaces 55a and 55b surrounding the heating portions 56a and 56b of the gasification units 51a and 51b become the reactor or reaction section (hereinafter referred to as "internal spaces 55a and 55b" or "reaction section 55a and 55b" as appropriate).

[0069] The heating sections 56a and 56b are equipped with gas passages 57a and 57b through which gas can pass. By flowing high-temperature exhaust gas (HEG) through these passages 57a and 57b, the reaction sections 55a and 55b are heated by radiant heat and contact heat. In the example shown in Figure 1, high-temperature exhaust gas (HEG) is supplied to the passages 57a and 57b of the heating sections 56a and 56b via piping 17a. However, the high-temperature gas supplied to the heating sections 56a and 56b is not limited to high-temperature exhaust gas (HEG); high-temperature gases or steam generated by other methods can also be used.

[0070] Since the heating sections 56a and 56b penetrate the inside of the cylindrical main bodies 52a and 52b of the gasification units 51a and 51b, the heating sections 56a and 56b are surrounded by the cylindrical reaction sections 55a and 55b. The gasification units 51a and 51b are equipped with a raw material supply section 40 on the upstream side (upper side in Figure 1) for introducing the carbide raw material and gasifying agent. In the example shown in Figure 1, the raw material supply section 40 consists of a carbide supply section 41, a crushing section 42, and an injection section. The carbide supply section 41 contains the carbide C2 and, based on the control of the control unit (see Figure 6), supplies the necessary amount of carbide C2 for the gasification reaction to the crushing section 42.

[0071] When carbide C2 is supplied from the carbide supply unit 41, the grinding unit 42 grinds the carbide C2 to 300 μm or less, preferably 100 μm or less, and more preferably 50 μm or less to promote the gasification reaction. The carbide C3 that has been ground and refined in the grinding unit 42 is introduced into the reaction units 55a and 55b from the injection input units 53a and 53b of each gasification unit 51a and 51b by injection together with high-temperature steam Hva and Hvb used as gasifying agents.

[0072] The high-temperature steam Hva,Hvb used as a gasifying agent is preferably mixed with finely atomized carbide C3 in the form of superheated steam, which is heated to a high temperature to prevent the reactor temperature from dropping too much. The steam Hva,Hvb can be made into high-temperature superheated steam Hva,Hvb by heating steam Wv at about 160°C, which is generated in the boiler 45 described later, with a heater 43 installed in the middle of the high-temperature exhaust gas HEG piping 17a. This high-temperature superheated steam Hva,Hvb is then introduced together with carbide C3 as a gasifying agent into the reaction sections 55a and 55b of separate gasification units 51a and 51b, respectively. To prevent the temperature of the reaction section from dropping, it is preferable to heat the high-temperature superheated steam Hva,Hvb to as high a temperature as possible, for example, in the range of 900°C to 1300°C.

[0073] The finely ground carbide C3 and the gasifying agents, superheated steam Hva and Hvb, are introduced into the respective reaction sections 55a and 55b by injection from injection ports 53a and 53b. In this process, it is preferable that the carbide C3 and the high-temperature gasifying agent are injected from injection ports 53a and 53b so that they rotate around the heating sections 56a and 56b within the reaction sections 55a and 55b and move slowly downstream within the reactor.

[0074] Although Figure 1 shows an example in which one injection port 53a and 53b are provided for each gasification unit 51a and 51b, it is also possible to configure each gasification unit to have multiple injection ports 53a and 53b. This allows raw materials to be introduced into each reaction section 55a and 55b from multiple positions, enabling the carbide C3 and gasifying agent to be injected into the heating section from multiple angles. This makes it possible to utilize the heat from the heating section more uniformly in the gasification reaction, resulting in a more efficient gasification reaction.

[0075] In the example shown in Figure 1, biomass is used as an example of a raw material, so the raw material supply unit 40 is shown with the above-described configuration. However, in the case of organic materials such as waste plastics, it is also possible to configure the system to vaporize the plastic at high temperature and then inject the vaporized high-temperature plastic from the raw material supply unit 40 into the reaction units 55a and 55b. The high-temperature exhaust gas (HEG) from the carbonization furnace can be used as the thermal energy to vaporize the plastics, etc.

[0076] When there are two or more gasification units 51a, 51b, a coupling section 58 is provided on the opposite side (lower side in Figure 1) of the raw material supply section 40, which is downstream of the gasification units. This coupling section 58 connects the reaction sections 55a, 55b of each gasification unit 51a, 51b to each other. The coupling section 58 is provided with an upward-extending generated gas extraction pipe 60, and the generated gas is extracted from a gas outlet 61 located at the top of the pipe. Below the coupling section 58, there is an outlet for discharging the residue D.

[0077] By providing such a generated gas extraction pipe 60, heavy residues such as ash cannot rise up the generated gas extraction pipe 60 and fall downwards, allowing the generated gas GS, excluding the distribution, to be extracted from the upper side. Even if there is only one gasification unit, it is preferable to configure the system to have a generated gas extraction pipe 60 extending upward from the downstream side of the reaction section of the gasification unit, as in Figure 1, and to have a gas outlet 61 at the top of the generated gas extraction pipe 60 to extract the generated gas from above the generated gas extraction pipe 60. However, such a generated gas pipe is not essential, and the system may be configured to extract the generated gas from the coupling section 58 downstream of the reaction sections 55a and 55b without providing a generated gas extraction pipe 60.

[0078] Negative pressure is applied to the generated gas extraction pipe 60 from the gas outlet 61, and the generated gas GS is drawn from within the reaction sections 55a and 55b through the generated gas extraction pipe 60 towards the gas outlet 61. Because impurities and ash are heavy, they fall below the reactor and the coupling section 58 and are discharged as residue D from below the coupling section 58. The generated gas GS is extracted from the gas outlet 61 and stored in the gas tank 65 after passing through various filters and cooling devices.

[0079] High-temperature exhaust gas (HEG) extracted from the carbonization furnace 20 is supplied as a heat source to the heating sections 56a and 56b of each gasification unit 51a and 51b of the gasification furnace 50 via heat-resistant piping 17a. Since the heating sections 56a and 56b penetrate the reaction sections 55a and 55b, radiant heat from the heating sections 56a and 56b is radiated in all directions to the reaction sections 55a and 55b.

[0080] Figure 1 shows an example where each heating section 56a and 56b of the gasifier 50 is composed of a single pipe. However, it is also possible to configure each heating section 56a and 56b as multiple pipes that penetrate through each reaction section 55a and 55b. This makes it possible to more efficiently transfer the thermal energy of the high-temperature exhaust gas (HEG) to the raw materials (finely ground carbide C3 and superheated steam) in the reaction sections 55a and 55b. Also, Figure 1 shows a configuration with one set of carbide supply section 41 and grinding section 42 for each of the two gasification units 51a and 51b. However, one set may be provided for each of the gasification units 51a and 51b (a total of two sets in Figure 1, or three sets if there are three gasification units).

[0081] The exhaust gas HEG that has passed through the heating sections 56a and 56b of the gasification furnace 50 is then sent to the boiler 45 and used as a heat source for the boiler, generating saturated steam Wv at approximately 160°C. In the carbonization furnaces according to the second to fourth embodiments shown in Figures 3 to 5, the saturated steam Wv generated by the boiler 45 is also sent to the steam supply pipes 35a to 35b or the steam chamber 35. The saturated steam Wv is further heated to a high temperature as it passes through the exhaust gas combustion region B1 of the carbonization furnace via the first air supply mechanism 13 or the steam chamber 35 and steam supply pipes 36c to 36f, becoming high-temperature superheated steam, which is then injected into the biomass (organic matter) C1 in the organic matter combustion region A1.

[0082] <Operation of a gasifier> The carbide C2 removed from the carbide removal section 23 of the carbonization furnace 20 is sent to the carbide supply section 41 via the transport path 15a. The carbide contained in the carbide supply section 41 is supplied to the crushing section 42 in an appropriate amount necessary for gasification, becoming finely pulverized carbide C3. The finely pulverized carbide C3 and high-temperature superheated steam Hva, Hvb, which are gasifying agents, are injected into the reaction sections 55a, 55b of each gasification unit 51a, 51b by the injection input sections 53a, 53b. High-temperature exhaust gas (HEG) at 1000°C to 1300°C flows through the flow paths 57a and 57b of the heating sections 56a and 56b. Since the heating sections 56a and 56b penetrate through the reaction sections 55a and 55b, a large amount of thermal energy is supplied to the reactor through radiant heat and contact from the heating sections 56a and 56b. This allows the thermal energy of the exhaust gas (HEG) to be efficiently incorporated into the reactor.

[0083] Biomass power generation systems typically produce and supply hydrogen gas and carbon monoxide gas as fuel. Therefore, while the example shown uses high-temperature steam as a gasifying agent, the gasifying agent can be appropriately selected depending on the type of gas being produced.

[0084] As mentioned above, when introducing the atmosphere of finely pulverized carbide C3 and high-temperature steam Hva and Hvb into each reaction section 55a and 55b, it is desirable to provide injection nozzles at the injection inlet sections 53a and 53b of each gasification unit 51a and 51b, and inject the mixture so that it circulates around the heating tubes 54a and 54b and moves as slowly as possible downstream within the reaction tube.

[0085] The product gas GS, generated from carbide C3 by the gasification reaction in the gasification furnace 50, passes through the gas recovery path 15b and is cooled by passing through multiple filters and cooling devices (none of which are shown) to remove impurities before being stored in the gas tank 65. Known heat recovery devices, cooling devices, and filters can be used to lower the temperature of the product gas. The generated gas (water gas, etc.) GS stored in the gas tank 65 can be used, for example, as energy to drive the generator 67, or it can be supplied to an ethanol production device to produce ethanol, separate hydrogen gas, or be used to generate electricity in a fuel cell, thus converting it into energy.

[0086] The high-temperature exhaust gas (HEG) that has passed through the flow paths 57a and 57b of the heating sections 56a and 56b of the gasification furnace 50 undergoes thermal energy recovery by a boiler 45 and a heat exchanger (not shown), resulting in relatively low-temperature exhaust gas (LEG). A portion of this LEG is sent to the drying chamber 11 via piping 18 and used for drying biomass. The remaining LEG is treated by passing through multiple filters and cooling devices 46, etc., to ensure that the temperature and amount of impurities meet predetermined emission standards before being released to the outside.

[0087] <Second embodiment of the carbonization furnace> Figure 5 shows a second embodiment of the carbonization furnace of the present invention. The carbonization furnace 20a according to the second embodiment differs from the carbonization furnaces shown in Figures 1 to 4 in that it has a structure that radiates superheated steam to the biomass C1 in the combustion region A1 via steam supply pipes 36c and 36d that extend downward from the top of the carbonization furnace 20a. In the carbonization furnace 20a according to the second embodiment, high-temperature superheated steam is generated in a steam chamber 35 located above the exhaust gas combustion region B1. Since the exhaust gas combustion region B1 is a heat source of high-temperature exhaust gas HEG, it is possible to generate superheated steam at a higher temperature than in the embodiments shown in Figures 1 to 4. Furthermore, when the steam is transported to the organic matter combustion region A1 via the steam supply pipes 36c and 36d, it is further heated to nearly 1000°C and radiated to the organic matter C1 in the organic matter combustion region A1.

[0088] Furthermore, as mentioned above, from the viewpoint of suppressing the temperature drop in the exhaust gas combustion region B1 of the carbonization furnace 20a, it is preferable to supply saturated steam Wv at a temperature of around 160°C from the boiler 45 (Figure 1) to the steam chamber 35, and to generate superheated steam by further heating this saturated steam Wv in the steam chamber 35. However, it is also possible to generate steam by directly supplying water to the steam chamber 35. It is preferable that the bottom surface of the steam chamber 35 be made of a material with high thermal conductivity. The high-temperature superheated steam is irradiated onto the organic matter C1 in the organic matter combustion region A1. By directly irradiating the organic matter C1 with high-temperature superheated steam at around 1000°C in this way, a high-temperature carbonization promotion effect can be obtained, and the carbonization efficiency can be increased.

[0089] <Third embodiment of the carbonization furnace> Figure 6 shows a third embodiment of the carbonization furnace. The difference between the carbonization furnace 20c according to the third embodiment of the present invention shown in Figure 6 and the carbonization furnace 20b according to the second embodiment shown in Figure 5 is that in the carbonization furnace 20c according to the third embodiment, the steam supply pipes 36e and 36f that supply high-temperature superheated steam from the steam chamber 35 to the organic matter combustion region A1 are piped in a spiral shape along the inner wall 21a inside the carbonization furnace. By configuring it in this way to increase the distance that passes through the exhaust gas combustion region B1, the heating efficiency of the steam passing through the steam supply pipes is increased, and it is possible to generate superheated steam at a higher temperature. With this configuration, the heating time in the steam chamber 35 can be shortened and the superheated steam released in the organic matter combustion region A1 can be heated to an even higher temperature, further enhancing the high-temperature carbonization promotion effect.

[0090] Figure 7 is a functional block diagram showing an example of the basic configuration of the control system for the carbonizers 20, 20a, 20b, gasifier 50, and organic gasification system 10 (biomass power generation system) shown in Figures 1 to 6. Referring to Figure 6, the general outline of the control of each part will be briefly explained. The parts specified in 71 to 77 are examples of passive devices such as sensors or active devices such as valves installed in the carbonizers or gasifiers shown in Figures 1 to 5. For example, the temperature sensors and pressure sensors, each of which are installed in multiple units, are passive devices, while valves, various motors, operating units, and transport paths are active devices. The control unit 80 acquires various information and control data from these devices and from sensors, operating units, etc., among the operating unit groups 71 to 77, and controls the movement of the carbonizers, gasifiers, transport paths, etc.

[0091] Figure 7 shows examples of devices that acquire control information and devices that are controlled, including the display / operation unit 71, various sensors 72, carbonization furnace operating unit 73, gasification furnace operating unit 74, transfer-related operating unit 75, power generation-related operating unit 76, and other operating units 77. The display / operation unit 71 includes a display unit that monitors the operating status of the carbonizer, gasifier, gas tank, generator, etc., and an operation unit for manual operation. Various sensors 72 include, for example, temperature sensors and pressure sensors. The carbonizer operating unit 73 includes an organic matter input unit, a motor that rotates the heat storage body, blowers that supply first and second air, and a carbonized material removal unit for removing carbonized material. The gasifier operating unit 74 includes nozzles that inject finely ground carbonized material and gasifying agents, etc. The transfer-related operating unit 75 includes screw conveyors that transport biomass, carbonized material, residuals, etc. The power generation-related operating unit 76 includes engines, generators, power control devices, etc., and other operating units 77 include valves and boilers that regulate the passage and pressure of exhaust gas, generated gas, air, steam, etc.

[0092] The control unit 80 consists of a CPU, memory, recording medium, and basic control software, and can use an existing server or computer. It is equipped with control software for each module that controls the basic components of the biomass power generation system, such as the carbonizer control unit 81, gasifier control unit 82, transport control unit 83, power generation control unit 84, and other control units 85, and controls each drive unit of the module it is responsible for based on information acquired from various sensors and instructions from the operation unit.

[0093] Instruction data from the display / operation unit 71 and data from various sensors 72 are transmitted as control data to the control unit 80 via the interface 78. The control unit 80 passes the acquired data to the corresponding control units 81-85, and each control unit 81-85 determines the need to control each operating unit based on the received control data. If control operation is required, the control unit 80 and interface 78 transmit control signals to the corresponding display / operation unit 71 and operating units 73-77 to control the operation of each unit. The corresponding display / operation unit 71 and operating units 73-77 then execute predetermined operations based on the received control signals.

[0094] The software modules and individual operating programs shown in Figure 7 are illustrative examples and are not limited to the software and programs shown herein. The carbonizer control unit 81 is a control program that controls each part of the carbonizer, and controls the operation of the carbonizer based on individual operating programs such as biomass supply management 86, temperature management 87, heat storage rotation drive control 88, and carbonized material / exhaust gas management 89. The gasifier control unit 82 is a control program that controls each part of the gasifier, and controls the operation of the gasifier based on individual programs such as raw material supply management 90, temperature management 91, and generated gas management 92. In addition, as shown as block 97 in Figure 7, a control program 97 for managing the supply of high-temperature steam (preferably superheated steam) is also provided, and the supply of high-temperature steam is controlled so that carbonization can be promoted with high efficiency in the organic matter combustion region A1.

[0095] The transport control unit 83 controls the supply, movement, and removal of raw materials, products, and waste within the biomass power generation system. For example, it controls the operation of motors and valves for each transport based on programs such as the motor and valve management unit 94, and manages the temperature of carbonized material, exhaust gas, gasifying agents (high-temperature steam, etc.), generated gas, waste, and various types of steam based on programs such as the temperature management unit 93. The power generation control unit 84 manages and controls the supply of gas for power generation and the output power based on the power management unit 95, and the other control units 85 provide warnings for abnormal conditions and perform other necessary management and control.

[0096] The control for the carbonizer 20, gasifier 50, and generator 67 differs significantly between startup and stable operation. At startup, the organic matter C1 dried in the drying oven is fed into the carbonizer 20 and burned in the organic matter combustion region A1 until the first temperature sensor TS1 reaches a predetermined temperature. Once the organic matter C1 is fed in, the temperature rises to the predetermined temperature and stabilizes, and the system is ready for normal operation, the carbonized material and combustion residue from the initial operation are removed from the carbonized material removal unit 23, and the system switches to normal operation control.

[0097] In normal operation, first, various basic data are set by the control unit, etc., based on the amount of carbon generated, which is set according to the amount of carbon generated, based on the operating target. These data include the amount of organic matter C1 input per unit time, the rotation speed of the heat storage body, the amount of combustion air supplied from the first and second air supply mechanisms 13 and 14, and the amount of high-temperature steam input supplied from the first air supply mechanism 13. Based on these basic data, the raw material organic matter C1 is input, the heat storage body is rotated at a predetermined rotation speed, a predetermined amount of combustion air is supplied to the organic matter combustion region A1 and the exhaust gas combustion region B1, and a predetermined amount of steam at a predetermined temperature is supplied to the organic matter combustion region A1, and normal operation begins.

[0098] In normal operation, the carbonization furnace control unit 81 and the carbonization furnace control unit adjust the amount of combustion air and steam supplied from the first air supply mechanism 13 based on the first temperature sensor TS1 to control the temperature and carbonization environment of the organic matter combustion region A1, as well as the amount of organic matter C1 to be introduced and the rotation speed of the heat storage body 30, so that the carbonization furnaces 20, 20a, and 20b can produce carbonized material at a set speed. In addition, the amount of combustion air supplied from the second air supply mechanism 14 is adjusted to control the combustion of the combustible gas and control the temperature of the exhaust gas HEG so that the temperature of the exhaust gas HEG is above a predetermined temperature.

[0099] Figure 8 shows a flowchart illustrating an example of the procedure for controlling the exhaust gas temperature according to the present invention. The control unit 80 and the carbonization furnace control unit 81 periodically acquire information from the second temperature sensor TS2 located in the exhaust gas combustion region B1 and monitor the exhaust gas temperature (step S1). Next, it is confirmed whether the temperature detected by the second temperature sensor TS2 is below the first exhaust gas temperature (step S2). The first exhaust gas temperature can be arbitrarily set to a temperature such as 800°C or 1000°C, but it is set as the minimum temperature required for the high-temperature exhaust gas HEG provided to the gasification furnace 50.

[0100] If the temperature detected by the second temperature sensor TS2 is lower than the preset first exhaust gas temperature (step S2; Yes), the amount of air supplied from the second air supply unit is increased (step S3). This promotes combustion of the exhaust gas and raises the temperature of the exhaust gas.

[0101] If the temperature detected by the second temperature sensor TS2 is higher than the preset first exhaust gas temperature (step S2: No), it is checked whether the temperature detected by the second temperature sensor TS2 is higher than the preset second exhaust gas temperature (step S4). If it is lower than the second exhaust gas temperature (step S4: No), the temperature check by the second temperature sensor is repeated without changing the amount of air supplied. If the detected temperature is higher than the second exhaust gas temperature (step S4: Yes), the air supply from the second air supply mechanism 14 is reduced (step S5). This suppresses the combustion of flammable exhaust gas and slightly lowers the temperature of the exhaust gas HEG.

[0102] Furthermore, temperature sensors may be provided in the gasification units 51a and 51b to adjust the combustion in the exhaust gas combustion region B1 of the carbonization furnace based on the internal temperature of the reaction sections 55a and 55b of the gasification units, thereby controlling the temperature of the exhaust gas HEG discharged from the carbonization furnace. Control of the gasification furnace, such as the amount and timing of input of the finely pulverized carbide C3 and gasifying agent (superheated steam) into the gasification furnace, is performed by the gasification furnace control unit 82, and the supply of carbide and other components are controlled according to the set production volume of the generated gas.

[0103] Furthermore, regarding waste plastics and other industrial products, or organic matter generated from their manufacturing processes, the high heat of the high-temperature exhaust gas (HEG) discharged from the carbonization furnace, etc., of the present invention is used to vaporize these organic materials, which are then injected into the gasification unit. It is desirable that the inlet to the gasification unit be provided separately from the injection inlet sections 53a and 53b for the finely pulverized carbon C3. This makes it possible to efficiently gasify waste plastics and the like.

[0104] As is clear from the above explanation, the carbonization furnace of the present invention makes it possible to stably produce carbonized material by controlling the movement of organic matter (biomass C1, etc.) within the carbonization furnace using protrusions provided on the heat storage body within the carbonization furnace. Furthermore, even if the exhaust gas temperature temporarily drops, by supplying combustion air to promote the combustion of the combustible exhaust gas, the tar component of the exhaust gas can be burned at a temperature of 900°C or higher within the carbonization furnace, resulting in gaseous components that do not recombine and can be utilized as thermal energy. Moreover, by heating and supplying the air for exhaust gas combustion, it becomes possible to output the exhaust gas discharged from the carbonization furnace at a more stable and higher temperature.

[0105] Furthermore, by using a gas flow path that penetrates the inside of the gasification unit as a heating section, and arranging the reaction section to surround the heating section, it becomes possible to efficiently utilize the thermal energy of high-temperature exhaust gas to carry out the gasification reaction more efficiently. By combining multiple such small gasification units with high gasification efficiency, it is possible to provide various gasification furnaces of a scale corresponding to the amount of biomass generated.

[0106] By combining a carbonizer with high carbonization efficiency and precise control of the carbonization rate, with a small gasifier that can be flexibly combined to match the desired output, it becomes possible to construct an efficient organic gasification system tailored to regional characteristics. This makes it possible to convert hydrogen gas and carbon monoxide gas produced from organic matter into combustible gases or energy fuels such as ethanol, enabling the construction of efficient biomass power generation systems.

[0107] In the carbonization furnaces shown in Figures 1, 4, and 5, a screw-shaped projection 32 is exemplified as a projection extending from the outer surface of the heat storage body 30. However, the shape of the projection is not limited to this. Furthermore, in order to improve heat resistance, it is desirable to construct the projection 32 using a heat-resistant material and to further improve heat resistance and heat storage by performing processing such as plasma welding of ceramics.

[0108] The embodiments disclosed in the specification and drawings are illustrative and can be modified as appropriate in accordance with the spirit of the present invention. For example, the shape and size of the protrusions of the heat storage body, the shape and positional relationship of the heating section and reaction section of the gasification furnace, etc., are not limited to the disclosed embodiments and can be modified as appropriate in accordance with the technical concept of the present invention, and such embodiments are also included within the technical scope of the present invention. [Explanation of Symbols]

[0109] 10. Organic Gasification System 11 Drying room 12 Feeding device 13. First air supply mechanism 13a First outer wall 13b, 14b heating space 14. Second air supply mechanism 14a Second outer wall 20,20b,20c carbonization furnace 21 Outer frame (main body) 21b 1st frame body part 21c 2nd frame body part 22 Organic matter inlet 23 Carbide outlet 24 Gas discharge section 25a, First air supply port 25b, Second air supply port 25c, 25d air vents 30 Heat storage element 32 Protrusion 36a~36f Water vapor supply 37a~37f Water vapor outlet 40. Supply Department for Carbonized Materials, etc. 41. Carbide containment section 42. Crusher 43 Heater 45 Boiler 50 Gasifier 51a, 51b Gasification Unit 52a, 52b Cylindrical main body 53a,53b Injection injection part 55a, 55b Reaction section 56a,56b Heating part 57a, 57b channel 60. Gas extraction pipe 61 Gas outlet 65 gas tanks 67 Generators A1 Organic Combustion Area A2 Carbonized area B1 Exhaust gas combustion region C1 Biomass C2 carbide C3 Finely ground carbide HEG (High-Temperature Exhaust Gas) Wv saturated water vapor Hva, Hvb Superheated Steam ELC Electric

Claims

1. A carbonization furnace that produces carbonized material from organic material by introducing organic material, An organic matter combustion region is provided, in which oxygen is supplied from a first air supply mechanism to the upper part of the organic matter accumulated inside, thereby burning a portion of the organic matter and maintaining the temperature of the carbonization furnace at a high temperature. A carbonization region is provided below the organic matter combustion region for carbonizing the organic matter, A steam supply unit supplies high-temperature steam to the organic matter in the organic matter combustion region by passing it through the outer periphery of the organic matter combustion region and / or through a steam supply pipe from the upper part of the organic matter combustion region to the organic matter combustion region, further heating it with the thermal energy of the organic matter combustion region to produce superheated steam at a temperature above which the effect of promoting high-temperature carbonization of organic matter is achieved, and supplying the superheated steam to the organic matter in the organic matter combustion region. A carbonization furnace characterized by being equipped with the following features.

2. The carbonization furnace is The carbonization furnace comprises a first frame body having at least one through-hole surrounding the outside of the organic matter combustion region which constitutes a part of the outer frame of the furnace, and a first outer peripheral wall surrounding the outer periphery of the first frame body with a small gap, thereby forming a heating space in contact with the outer periphery of the first frame body, and a first air supply mechanism that supplies air to the heating space and supplies combustion air to the organic matter combustion region through the through-hole, The first frame portion is formed of a material having heat resistance and thermal conductivity, and heats the combustion air introduced into the heating space and supplies it to the organic matter combustion region as high-temperature combustion air through the through hole. The carbonization furnace according to claim 1, characterized in that the steam supply unit introduces high-temperature steam into the heating space of the first air supply mechanism, further heats the high-temperature steam by passing it through the outer periphery of the organic matter combustion region, and supplies the heated high-temperature superheated steam to the organic matter by introducing the heated high-temperature superheated steam into the organic matter combustion region through the through hole together with the combustion air.

3. The carbonization furnace according to claim 2, characterized in that the steam supply unit comprises a tubular body with good thermal conductivity placed in the heating space, and the supplied steam is heated as it passes through the inside of the tubular body and then introduced into the heating space.

4. The carbonization furnace is Furthermore, the carbonization furnace according to any one of claims 1 to 3 is characterized by comprising: an exhaust gas combustion region provided above the organic matter combustion region for burning the combustible gas generated in the organic matter combustion region; a second air supply mechanism for supplying combustion air to the exhaust gas combustion region; and an exhaust gas discharge section for discharging high-temperature exhaust gas after the combustible gas has been burned in the exhaust gas combustion region.

5. Furthermore, it is equipped with a control unit, and this control unit is The carbonization furnace according to claim 4, characterized in that when the temperature of the exhaust gas combustion region is lower than a predetermined first temperature, the supply amount of combustion air is increased by the second air supply mechanism, and when the temperature of the exhaust gas combustion region is higher than a predetermined second temperature, the supply amount of combustion air is controlled to decrease by the second air supply mechanism.

6. The carbonization furnace further, An exhaust gas combustion region is provided above the organic matter combustion region for burning the combustible gas generated in the organic matter combustion region, A second air supply mechanism that supplies combustion air to the exhaust gas combustion region, An exhaust gas discharge unit that discharges high-temperature exhaust gas after the combustible gas has been burned in the exhaust gas combustion region, The steam supply unit includes a steam chamber provided above the exhaust gas combustion region to generate steam, and a steam supply pipe that heats and transports the steam from the steam chamber to the organic matter combustion region via the exhaust gas combustion region, The carbonization furnace according to claim 1, characterized by comprising the above.

7. A carbonization furnace according to any one of claims 1 to 6, characterized in that the high-temperature superheated steam of 800°C or higher is supplied to the organic matter to cause a reaction.

Citation Information

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