Immobilization system

The immobilization system addresses catalyst deactivation and oxygen limitations in carbon dioxide fixation by integrating electrolysis, carbon production, and catalyst regeneration, ensuring sustained high-efficiency carbon production without external gas recovery.

JP2026016689APending Publication Date: 2026-02-03KK TOSHIBA
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Patent Information

Application Number
JP2025184359
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2025-10-31
Publication Date
2026-02-03

AI Technical Summary

Technical Problem

Conventional carbon dioxide fixation systems face limitations such as restricted oxygen use for spacecraft applications and catalyst deactivation issues, leading to inefficiencies in carbon growth.

Method used

An immobilization system comprising an electrolysis section, carbon production section, and catalyst regeneration section, which effectively utilizes oxygen generated by the electrolytic cell and regenerates deactivated catalysts using anode gases, enabling sustained high-efficiency carbon production.

Benefits of technology

The system achieves sustained high-efficiency carbon production by regenerating catalysts within the system, eliminating the need for separate oxygen and water sources, and maintaining long-term operational efficiency without releasing gases into the atmosphere.

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Abstract

To provide a fixing system having continuously high efficiency.SOLUTION: The immobilization system includes an electrolysis unit including an electrolysis cell having an anode, a cathode, an anode flow path facing the anode, and a cathode flow path facing the cathode, a carbon production unit connected to an outlet of the cathode flow path and including a first reactor that produces solid carbon from a raw material containing a first fluid introduced from the cathode flow path by using a catalyst, and a control unit connected to the outlet of the anode flow path. And a catalyst regeneration unit including a second reactor that is connected to the carbon generation unit and removes at least a part of the solid carbon attached to the catalyst from the catalyst by a reaction between at least one substance contained in the second fluid introduced from the anode flow path and the solid carbon attached to the catalyst introduced from the carbon generation unit.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] SUMMARY OF THE INVENTION Embodiments of the present invention relate to an immobilization system. [Background technology]

[0002] In recent years, in order to combat global warming, the development of technologies to fix carbon dioxide (CO2), a major greenhouse gas, has been progressing. Among these carbon dioxide fixation technologies, efforts are being made to convert carbon dioxide derived from fossil resources or the atmosphere into solid carbon, which can then be used effectively as a material, or stored and permanently fixed. In particular, attempts to store atmospheric CO2 as solid carbon are attracting attention as a negative emission technology that absorbs CO2 from the Earth. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] U.S. Patent No. 10,479,739 [Non-patent literature]

[0004] [Non-Patent Document 1] RDGreen et. al, AIAA 2016-5454, Internet<URL:https: / / arc.aiaa.org / doi / 10.2514 / 6.2016-5454> Summary of the Invention [Problem to be solved by the invention]

[0005] The problem to be solved by the present invention is to provide an immobilization system that has sustained high efficiency. [Means for solving the problem]

[0006] An immobilization system according to an embodiment comprises: an electrolysis section including an electrolysis cell having an anode, a cathode, an anode flow channel facing the anode, and a cathode flow channel facing the cathode; a carbon production section connected to an outlet of the cathode flow channel and including a first reactor for producing solid carbon from a feedstock comprising a first fluid introduced from the cathode flow channel using a catalyst; and a catalyst regeneration section connected to the outlet of the anode flow channel and including a second reactor for removing at least a portion of the solid carbon attached to the catalyst introduced from the carbon production section by reaction between at least one substance contained in a second fluid introduced from the anode flow channel and the solid carbon attached to the catalyst introduced from the carbon production section. [Brief explanation of the drawings]

[0007] [Figure 1] FIG. 1 is a schematic diagram illustrating a configuration example of an immobilization system according to a first embodiment. [Figure 2] FIG. 2 is a schematic diagram showing a configuration example of the immobilization system 1 shown in FIG. [Figure 3] FIG. 2 is a schematic diagram showing an example of the configuration of a carbon production reactor 122. [Figure 4] FIG. 2 is a schematic diagram showing an example of the configuration of a catalyst regeneration reactor 131. [Figure 5] FIG. 10 is a schematic diagram illustrating a configuration example of an immobilization system according to a second embodiment. [Figure 6] FIG. 10 is a schematic diagram showing a configuration example of an immobilization system according to a third embodiment. [Figure 7] FIG. 4 is a schematic diagram showing an example of the configuration of a reactor 400. [Figure 8] FIG. 10 is a schematic diagram showing a configuration example of an immobilization system according to a fourth embodiment. [Figure 9] FIG. 10 is a schematic diagram showing a configuration example of an immobilization system according to a fifth embodiment. [Figure 10] FIG. 13 is a schematic diagram showing a configuration example of an immobilization system according to a sixth embodiment. [Figure 11] FIG. 12 is a schematic diagram showing a configuration example of an immobilization system according to a seventh embodiment. [Figure 12] FIG. 13 is a schematic diagram showing a configuration example of an immobilization system according to an eighth embodiment. [Figure 13] FIG. 5 is a schematic diagram showing an example of the configuration of a reactor 500. [Figure 14] FIG. 13 is a schematic diagram showing another configuration example of the immobilization system according to the eighth embodiment. [Figure 15] FIG. 13 is a schematic diagram showing another configuration example of the immobilization system according to the eighth embodiment. [Figure 16] FIG. 13 is a schematic diagram showing a configuration example of an immobilization system according to a ninth embodiment. [Figure 17] FIG. 22 is a schematic diagram showing a configuration example of an immobilization system according to a tenth embodiment. [Figure 18] FIG. 22 is a schematic diagram showing a configuration example of an immobilization system according to an eleventh embodiment. [Figure 19] FIG. 22 is a schematic diagram showing a configuration example of an immobilization system according to a twelfth embodiment. DETAILED DESCRIPTION OF THE INVENTION

[0008] Hereinafter, embodiments will be described with reference to the drawings. In each embodiment shown below, substantially identical components are denoted by the same reference numerals, and some of their descriptions may be omitted. The drawings are schematic, and the relationship between thickness and planar dimensions, the thickness ratio of each part, etc. may differ from the actual ones.

[0009] In this specification, unless otherwise specified, "connect" includes not only direct connection but also indirect connection.

[0010] Technology to convert CO2 into solid carbon is being developed as a CO2 fixation technology on spacecraft, and a system that combines electrolysis and thermochemical reactions to convert CO2 into carbon (C) is known.

[0011] For example, hydrogen and oxygen are produced by electrolysis of water (H2O), and the resulting H2 and CO2 are then subjected to a thermochemical reaction to produce methane. Furthermore, a method is known in which the produced methane is decomposed to produce solid carbon.

[0012] Also known is a method of producing CO, H2, and O2 from water and CO2 in a solid oxide co-electrolysis cell, and then producing solid carbon from CO and H2.

[0013] However, conventional carbon dioxide fixation systems have issues such as the limited use of oxygen for spacecraft applications and the restriction of carbon growth due to the deactivation of carbon-forming catalysts.

[0014] Therefore, the immobilization system of the embodiment achieves sustained high efficiency by effectively utilizing products such as oxygen generated by the electrolytic cell. Specific examples of the immobilization system of the embodiment are described below.

[0015] (First embodiment) Fig. 1 is a schematic diagram showing a configuration example of an immobilization system according to the first embodiment. The immobilization system 1 shown in Fig. 1 includes an electrolysis section 11, a carbon generation section 12, and a catalyst regeneration section 13. Furthermore, Fig. 2 is a schematic diagram showing a configuration example of the immobilization system 1 shown in Fig. 1.

[0016] [Electrolytic section 11] As shown in FIG. 2 , the electrolysis unit 11 includes an electrolytic cell 101, a mass flow controller 127, a humidifier 128, a back pressure valve 129a, a back pressure valve 129b, a gas-liquid separator 130a, a gas-liquid separator 130b, a pump 133, a gas inlet 134, and a gas inlet 135.

[0017] The electrolysis cell 101 includes an anode 111, a cathode 112, an anode flow path plate 114 that forms an anode flow path 113 facing the anode 111, a cathode flow path plate 116 that forms a cathode flow path 115 facing the cathode 112, a diaphragm 117 between the anode 111 and the cathode 112, a current collector plate 118, a current collector plate 119, a clamping plate 120, and a clamping plate 121.

[0018] The anode flow channel 113 allows the electrolyte solution containing water to flow through the anode while being in contact with the anode so as to supply the electrolyte solution to the anode. The anode flow channel plate 114 has an inlet for introducing the electrolyte solution and an outlet for discharging the anode solution, products, etc., but these are not shown in the figure. The inlet of the anode flow channel 113 is connected to an anode supply flow channel 123 that supplies the anode solution. The outlet of the anode flow channel 113 is connected to an anode discharge flow channel 124 that discharges products such as O2 generated by the oxidation reaction and the electrolyte solution.

[0019] The cathode flow channel 115 allows a cathode gas, such as a gas containing CO2, to flow through the cathode 112 while being in contact with the cathode 112 so as to supply the cathode gas to the cathode. The cathode flow channel plate 116 has an inlet for introducing the cathode gas and an outlet for discharging the produced gas, etc., but these are not shown in the figure. The inlet of the cathode flow channel 115 is connected to a cathode supply flow channel 125 that supplies the cathode gas. The outlet of the cathode flow channel 115 is connected to a cathode discharge flow channel 126 that discharges gas containing products produced by the reduction reaction.

[0020] The anode flow path plate 114 and the cathode flow path plate 116 have screw holes for fastening, etc. Furthermore, packings (not shown) are inserted in front and behind each flow path plate as needed.

[0021] Current collector 118 is electrically connected to anode 111. Current collector 119 is electrically connected to cathode 112. Current collector 118 and current collector 119 are electrically connected to a power source.

[0022] Clamping plate 120 and clamping plate 121 sandwich and fix anode 111, cathode 112, anode flow path plate 114, cathode flow path plate 116, diaphragm 117, current collector plate 118, and current collector plate 119. Note that insulating plates (not shown) may be sandwiched between current collector plate 118 and clamping plate 120 and between current collector plate 119 and clamping plate 121, as needed.

[0023] The mass flow controller 127 is connected to the cathode supply flow path 125. The mass flow controller 127 controls the flow rate of the cathode gas to a predetermined flow rate.

[0024] The humidifier 128 is provided in the cathode supply flow path 125, between the mass flow controller 127 and the electrolytic cell 101. The humidifier 128 humidifies the cathode gas. The humidified cathode gas is supplied to the cathode flow path 115 as a raw material for the reduction reaction. This makes it possible to prevent the diaphragm 117 from drying out and salt from depositing in the cathode flow path 115.

[0025] Back pressure valve 129a is connected to the anode exhaust flow path 124 and controls the pressure in the anode flow path 113. Back pressure valve 129b is connected to the cathode exhaust flow path 126 and controls the pressure in the cathode flow path 115. Back pressure valves 129a and 129b can prevent damage to diaphragm 117 due to a pressure difference (differential pressure) between the anode flow path 113 and the cathode flow path 115, for example.

[0026] The pressures of the anode flow channel 113 and the cathode flow channel 115 are preferably adjusted to a value that does not liquefy the cathode gas, specifically within a range of 0.1 MPa to 6.4 MPa. If the pressures of the anode flow channel 113 and the cathode flow channel 115 are less than 0.1 MPa, the efficiency of the CO2 reduction reaction may decrease. If the pressures of the anode flow channel 113 and the cathode flow channel 115 exceed 6.4 MPa, CO2 may liquefy, resulting in a decrease in the efficiency of the CO2 reduction reaction. The pressure difference between the anode flow channel 113 and the cathode flow channel 115 is preferably 0.5 MPa or less. This can, for example, prevent damage to the diaphragm 117.

[0027] The gas-liquid separator 130a is provided midway through the anode discharge flow path 124. The gas-liquid separator 130a separates the fluid discharged from the anode flow path 113 into a liquid and a gas. The separated liquid contains an electrolytic solution. The separated gas contains oxidation products such as oxygen. The separated gas is sent to the catalyst regeneration unit 13. The separated liquid is sent from the gas-liquid separator 130a to the anode supply flow path 123 via a pump 133. The electrolytic solution is circulated via the anode supply flow path 123, the anode flow path 113, the anode discharge flow path 124, the gas-liquid separator 130a, and the pump 133. The gas-liquid separator 130a may have an inlet so that the electrolytic solution can be supplied from the outside.

[0028] The gas-liquid separator 130b is provided midway through the cathode discharge flow path 126. The gas-liquid separator 130b separates the fluid discharged from the cathode flow path 115 into a liquid and a gas. The liquid includes, for example, water. The gas includes, for example, gaseous reduction products such as carbon monoxide. The separated reduction products are sent to the carbon generation unit 12. The separated water may be sent to the gas-liquid separator 130a or the humidifier 128. This allows the separated water to be used effectively.

[0029] The gas inlet 134 is provided midway through the anode exhaust flow path 124. The gas inlet 134 makes it possible to additionally introduce a raw material gas such as oxygen from the outside into the anode exhaust flow path 124. The gas inlet 134 is not necessarily provided.

[0030] The gas inlet 135 is provided midway through the cathode exhaust flow path 126. The gas inlet 135 makes it possible to additionally introduce raw material gases such as carbon monoxide and carbon dioxide from the outside into the cathode exhaust flow path 126. The gas inlet 135 is not necessarily provided.

[0031] The compressor 136 is provided midway along the anode exhaust flow path 124. The compressor 136 can adjust the pressure in the anode exhaust flow path 124. By adjusting the pressure in the anode exhaust flow path 124, the reaction efficiency in each section can be improved. The compressor 136 is not necessarily provided.

[0032] The compressor 137 is provided midway through the cathode exhaust flow path 126. The compressor 137 can adjust the pressure in the cathode exhaust flow path 126. By adjusting the pressure in the cathode exhaust flow path 126, it is possible to improve the reaction efficiency in each section. The compressor 137 is not necessarily provided.

[0033] The temperature regulator 138 is provided midway along the anode exhaust flow path 124. The temperature regulator 138 can adjust the temperature of the fluid flowing through the anode exhaust flow path 124. By adjusting the temperature of the fluid flowing through the anode exhaust flow path 124, it is possible to improve the reaction efficiency in each section. The temperature regulator 138 is not necessarily provided.

[0034] The temperature regulator 139 is provided midway through the cathode exhaust flow path 126. The temperature regulator 139 can adjust the temperature of the fluid flowing through the cathode exhaust flow path 126. By adjusting the temperature of the fluid flowing through the cathode exhaust flow path 126, it is possible to improve the reaction efficiency in each part. The temperature regulator 139 is not necessarily provided.

[0035] In the electrolysis cell 101, when electric power is applied to the anode 111 and the cathode 112, carbon dioxide is converted at the cathode 112 into mainly carbon monoxide (CO) or hydrocarbons such as methane (CH4) and ethylene (C2H4). At the cathode 112, hydrogen may be produced as a side reaction simultaneously with the conversion of carbon dioxide. At the anode 111, a reaction occurs in which oxygen is produced from water or water vapor.

[0036] The electrolytic cell 101 may be, for example, an electrolytic cell using a diaphragm 117 having a porous membrane, a solid oxide electrolytic cell, or a solid polymer electrolytic cell. Regarding the operating temperature of the electrolytic cell 101, an electrolytic cell using a porous diaphragm or a solid polymer electrolytic cell is preferably operated in a temperature range of 20°C or higher and 90°C or lower. Furthermore, a solid oxide electrolytic cell is preferably operated in a temperature range of 700°C or higher and 900°C or lower.

[0037] A cathode gas such as a gas containing CO2 is supplied to the cathode 112. In this case, the cathode gas may contain water vapor. A solution containing water or water vapor is supplied to the anode 111. Alternatively, an aqueous solution containing an electrolyte may be used. The aqueous solution containing an electrolyte (electrolyte) may contain, for example, phosphate ions (PO4 2- ), borate ion (BO3 3- ), sodium ions (Na + ), potassium ions (K + ), calcium ions (Ca 2+ ), lithium ion (Li + ), cesium ions (Cs + ), magnesium ions (Mg 2+ ), chloride ions (Cl - ), bicarbonate ion (HCO3 - ), carbonate ions (CO3 2- ), hydroxide ion (OH - ) and other aqueous solutions.

[0038] The electrolysis cell 101 may be a cell stack in which a plurality of cells are stacked to increase the amount of gas produced, or may be composed of a plurality of cell stacks.

[0039] The substances produced at the cathode 112 and anode 111 in the electrolysis cell 101 and the unreacted raw materials are each discharged from the electrolysis section 11. Of these, the substance produced at the cathode 112 is supplied to the carbon production section 12 in the subsequent stage.

[0040] The immobilization system 1 may have a gas adjustment unit between the electrolysis section 11 and the carbon production section 12, for adjusting the components in the gas supplied from the electrolysis section 11 to a gas component ratio suitable for the synthesis conditions in the carbon production section 12. The immobilization system 1 may also have a temperature adjustment section and a pressure adjustment section, and may control the temperature and pressure to be suitable for the synthesis conditions in the carbon production section 12.

[0041] The O2-containing gas produced at the anode 111 is supplied to the catalyst regeneration unit 13. During the electrochemical reaction in the electrolysis cell using a porous membrane or the solid polymer electrolysis cell, which operates at a low temperature, a portion of the CO2 gas supplied to the cathode 112 may move to the anode 111, and the fluid (anode exhaust) discharged from the outlet of the anode flow path 113 may contain CO2. In this case, the CO2 in the anode exhaust component discharged from the electrolysis unit 11 can be separated and recovered and used as a CO2 raw material to be supplied again to the CO2 conversion unit. In this case, the device for separation and recovery may be a CO2 separation and recovery unit, or a separate CO2 separation and recovery unit may be provided downstream of the CO2 conversion unit.

[0042] The immobilization system 1 may have a gas adjustment unit between the electrolysis section 11 and the catalyst regeneration section 13 for adjusting the components in the gas supplied from the electrolysis section 11 to a gas component ratio suitable for the reaction conditions in the catalyst regeneration section 13. The immobilization system 1 may also be provided with a temperature adjustment section and a pressure adjustment section to control the temperature and pressure to be suitable for the catalyst regeneration reaction.

[0043] The power input to the electrolytic cell 101 from the power source may be power from a normal commercial power source or a battery, or may be power supplied by converting renewable energy into electrical energy. Examples of such power include power obtained by converting kinetic energy or potential energy such as wind power, hydraulic power, geothermal power, and tidal power into electrical energy, power generated from a solar cell having a photoelectric conversion element that converts light energy into electrical energy, power generated from a fuel cell or a storage battery that converts chemical energy into electrical energy, and power obtained from a device that converts vibrational energy such as sound into electrical energy.

[0044] The CO2 supplied to the cathode flow path 115 is not particularly limited, but examples include CO2 separated and captured from CO2 emission sources or the atmosphere. CO2 emission sources include power generation facilities such as thermal power plants and biomass power plants, and industrial facilities such as steel factories, cement factories, chemical plants, and waste incineration plants. Using biomass-derived and atmospheric CO2 as a raw material creates a system that fixes CO2 on Earth, achieving carbon negativity and achieving high environmental value. The CO2 concentration of the CO2-containing gas supplied to the cathode 112 is not particularly limited, but is preferably greater than 50% and less than 100%, more preferably greater than 90% and less than 100%. The higher the CO2 gas concentration, the more energy efficiency of the downstream units can be improved and the device size can be reduced.

[0045] [Carbon Generation Section 12] The carbon production unit 12 produces solid carbon from a raw material containing at least a part of the fluid supplied from the outlet of the cathode flow channel 115. The carbon production unit 12 has a carbon production reactor 122, as shown in FIG.

[0046] 3 is a schematic diagram showing a configuration example of the carbon production reactor 122. The carbon production reactor 122 has a processing chamber 201, an inlet 202, an inlet 203, an outlet 204, and an outlet 205.

[0047] The carbon production reactor 122 has a catalyst for promoting the carbon production reaction inside the treatment chamber 201. The catalyst is removable from the treatment chamber 201. Examples of catalysts include carbon particles and metal particles. The catalyst, such as metal particles, may be supported on, for example, an inorganic material or a carbon material and placed inside the treatment chamber 201. The metal particles may be, for example, transition metals such as iron, nickel, cobalt, palladium, or copper, or alloys thereof. The metal particles may also be metal compounds in which a transition metal forms a compound with carbon or nitrogen, or metal oxides in which a transition metal forms a compound with alumina, silica, or the like. The catalyst placed inside the treatment chamber 201 may be a powder. The catalyst may be formed into a molded product such as pellets and placed inside the treatment chamber 201. The catalyst may be supported on a substrate or the like and placed inside the treatment chamber 201. The shape of the substrate is not particularly limited, and may be, for example, a plate or mesh.

[0048] The inlet 202 is connected to the cathode exhaust flow path 126. The fluid flowing through the cathode exhaust flow path 126 is introduced into the processing chamber 201 through the inlet 202. The inlet 202 is formed by connecting a pipe to the processing chamber 201, for example.

[0049] The inlet 203 is connected to the catalyst regenerating unit 13. The inlet 203 is formed by connecting a pipe to the processing chamber 201, for example.

[0050] The outlet 204 is connected to the catalyst regeneration unit 13. The catalyst placed in the treatment chamber 201 is discharged from the carbon production reactor 122 through the outlet 204. The outlet 204 is formed by connecting a pipe to the treatment chamber 201, for example.

[0051] The outlet 205 is provided, for example, in the upper part of the processing chamber 201. The gas discharged from the carbon production reactor 122 is discharged from the carbon production reactor 122 through the outlet 205. The outlet 205 is formed, for example, by connecting a pipe to the processing chamber 201.

[0052] The outlet 206 is connected to the processing chamber 201. The solid carbon generated in the processing chamber 201 is discharged from the processing chamber 201 through the outlet 206. The outlet 206 is formed by connecting a pipe to the processing chamber 201, for example.

[0053] The fluid containing the cathode product is introduced into the carbon production reactor 122 through the inlet 202. The carbon production reactor 122 uses the introduced fluid as a raw material to produce solid carbon through at least one reaction represented by the following reaction formulas (1), (2), and (3): ΔH 0 298 is the heat of reaction under standard conditions. 2CO → C + CO2(ΔH 0 298 =-172 kJ / mol) (1) CO+H2→C+H2O(ΔH 0 298 =-131 kJ / mol) (2) CO2+2H2→C+2H2O(ΔH 0 298 =-90 kJ / mol (3)

[0054] When the fluid discharged from the outlet of the cathode flow channel 115 contains hydrocarbons such as methane or ethylene, the carbon production reactor 122 produces solid carbon by one of the reactions shown in the following reaction formulas (4) and (5). CH4 → C + 2H2 (4) C2H4 → 2C + 2H2 (5)

[0055] Examples of solid carbon produced include graphite, graphene, carbon black, fibrous carbon, buckminsterfullerene, single-walled carbon nanotubes, or multi-walled carbon nanotubes.

[0056] To achieve suitable operating conditions for the above reaction, the carbon production unit 12 can promote the reaction by adjusting the temperature and pressure of the carbon production reactor 122 or by irradiating plasma into the processing chamber 201 .

[0057] When a carbon production reaction is carried out using a catalyst, solid carbon grows on the surface of the catalyst. If the catalyst is covered with solid carbon during this growth process, the carbon production reaction slows down and the catalyst is deactivated.

[0058] Therefore, the immobilization system 1 of this embodiment regenerates the deactivated catalyst using the catalyst regeneration unit 13. The deactivated catalyst can be transported between the carbon generation unit 12 and the catalyst regeneration unit 13 using a transport device such as a transport robot (not shown).

[0059] The catalyst placed in the treatment chamber 201 is recovered by the catalyst regeneration unit 13 through an outlet 204 provided in the carbon production reactor 122 when the desired carbon production reaction has progressed. The carbon production reactor 122 may have an inlet through which the catalyst can be replenished. The regenerated catalyst is carried into the carbon production reactor 122 through an inlet 203.

[0060] The carbon production section 12 discharges off-gas generated by the carbon production reaction and unreacted raw material gas from an outlet 205 provided at the top of the carbon production reactor 122 to the outside of the system.

[0061] [Catalyst regeneration section 13] The catalyst regeneration unit 13 includes a catalyst regeneration reactor 131, as shown in FIG.

[0062] 4 is a schematic diagram showing an example of the configuration of the catalyst regeneration reactor 131. The catalyst regeneration reactor 131 has a treatment chamber 301, an inlet 302, an inlet 303, an outlet 304, and an outlet 305.

[0063] The catalyst regeneration reactor 131 can place a deactivated catalyst inside the treatment chamber 301. The deactivated catalyst can be removed from the treatment chamber 301.

[0064] The inlet 302 is connected to the anode exhaust flow path 124. The fluid flowing through the anode exhaust flow path 124 is introduced into the processing chamber 301 through the inlet 302. The inlet 302 is formed by connecting a pipe to the processing chamber 301, for example.

[0065] The inlet 303 is connected to the outlet 204 of the carbon production reactor 122. The deactivated catalyst is introduced from the carbon production reactor 122 into the processing chamber 301 through the inlet 303. The inlet 303 is formed by connecting a pipe to the processing chamber 301, for example.

[0066] The outlet 304 is connected to the inlet 203 of the carbon production reactor 122. The catalyst regenerated in the treatment chamber 301 is carried into the treatment chamber 201 of the carbon production reactor 122 through the outlet 304. The outlet 304 is formed, for example, by connecting a pipe to the treatment chamber 301.

[0067] The outlet 305 is provided at the top of the treatment chamber 301. The gas discharged from the catalyst regeneration reactor 131 is discharged from the catalyst regeneration reactor 131 through the outlet 305. The outlet 205 is formed by connecting a pipe to the treatment chamber 201, for example.

[0068] The immobilization system 1 has a path 141 that can transport the catalyst between the carbon production reactor 122 and the catalyst regeneration reactor 131. The catalyst is transported between the reactors via the path 141. There may be two paths 141 as shown in FIG. 2, or there may be only one path 141.

[0069] The fluid containing the anode product is introduced into the catalyst regeneration reactor 131 via the inlet 302. The catalyst regeneration reactor 131 accommodates the deactivated catalyst introduced from the carbon production reactor 122 and performs a catalyst regeneration reaction using the introduced fluid as a raw material. The catalyst regeneration reactor 131 uses at least a portion of the fluid introduced from the outlet of the anode flow path 113 via the inlet 302 to perform a regeneration process by thermochemical reaction of the deactivated catalyst transported from the carbon production section 12. The catalyst regeneration reactor 131 performs at least one reaction represented by the following reaction formulas (6), (7), (8), and (9) to remove at least a portion of the carbon coating the catalyst. ΔH 0 298 is the heat of reaction under standard conditions.

[0070] C+O2→CO2(ΔH 0 298=-393.78 kJ / mol) (6) 2C+O2→2CO(ΔH 0 298 =-221.0 kJ / mol) (7) C+CO2→2CO(ΔH 0 298 =+172.58 kJ / mol) (8) C+H2O→CO+H2(ΔH 0 298 =+131.39 kJ / mol) (9)

[0071] The catalyst regeneration unit 13 can adjust the temperature and pressure of the catalyst regeneration reactor 131 to achieve operating conditions suitable for the above reaction.

[0072] The catalyst regeneration unit 13 discharges the off-gas generated by the catalyst regeneration reaction to the outside of the system from an outlet 305 provided at the top of the catalyst regeneration reactor 131. The regenerated catalyst formed by regenerating the deactivated catalyst is sent to the carbon production reactor 122 via a path 141.

[0073] After the predetermined carbon production reaction has been carried out, the solid carbon containing the catalyst is discharged outside the system. The discharge route is not particularly limited, but may be provided in the route 141, or may be discharged from the carbon production reactor 122 or the catalyst regeneration reactor 131.

[0074] As described above, according to the first embodiment, the carbon-coated catalyst deactivated in the carbon production reaction is regenerated in the catalyst regenerator 13 using the anode gas from the electrolysis cell 101 or the water electrolysis cell, enabling sustained, highly efficient long-term operation of the carbon production reaction. Furthermore, efficient operation is possible because there is no need to separately prepare the O2, HO, and CO2 source gases used in the catalyst regenerator 13 by, for example, recovering them from the atmosphere, and the anode gas from the electrolysis cell can be effectively used within the system without being released into the atmosphere.

[0075] (Second embodiment) Fig. 5 is a schematic diagram showing a configuration example of an immobilization system according to the second embodiment. The immobilization system shown in Fig. 5 includes an electrolysis unit 11, a carbon generation unit 12, and a catalyst regeneration unit 13. Below, only the parts that differ from the first embodiment will be explained, and for the other parts, the explanation of the first embodiment can be used as appropriate.

[0076] [Electrolytic section 11] The electrolysis unit 11 includes a water electrolysis cell. Similar to the electrolysis cell 101, the water electrolysis cell includes an anode 111, a cathode 112, an anode flow path plate 114 forming an anode flow path 113 facing the anode 111, a cathode flow path plate 116 forming a cathode flow path 115 facing the cathode 112, a diaphragm 117 between the anode 111 and the cathode 112, a current collector plate 118, a current collector plate 119, a clamping plate 120, and a clamping plate 121.

[0077] In the water electrolysis cell, by supplying power to the anode 111 and the cathode 112, a reaction occurs in which hydrogen is produced at the cathode 112 and oxygen is produced at the anode 111 using water as a raw material. The water electrolysis cell may be based on alkaline water electrolysis, solid polymer water electrolysis, solid oxide water electrolysis, or the like. The water electrolysis cell may be a cell stack in which multiple cells are stacked to increase the amount of gas produced, or may be in a form including multiple cell stacks.

[0078] The gases generated by the cathode 112 and the anode 111 are each discharged from the electrolysis unit 11. Of these, the substance generated by the cathode 112 is supplied to the carbon production unit 12. A moisture removal unit for adjusting the amount of moisture in the gas supplied from the electrolysis unit 11 can be provided between the electrolysis unit 11 and the carbon production unit 12. A temperature adjustment unit or a pressure adjustment unit can be provided between the electrolysis unit 11 and the carbon production unit 12 to control the temperature and pressure to be suitable for the synthesis conditions in the carbon production unit 12. The oxygen-containing gas generated at the anode 111 is supplied to the catalyst regeneration unit 13. A moisture removal unit for adjusting the amount of moisture in the gas supplied from the electrolysis unit 11, or a temperature adjustment unit or a pressure adjustment unit for controlling the temperature and pressure to be suitable for the catalyst regeneration reaction can be provided between the electrolysis unit 11 and the catalyst regeneration unit 13.

[0079] [Carbon Generation Section 12] As shown in Fig. 3, the carbon production unit 12 has a carbon production reactor 122. The carbon production reactor 122 produces solid carbon by the reaction of the above formula (2) using at least a portion of the gas introduced from the outlet of the cathode flow channel 115 and a gas containing carbon dioxide. The temperature and pressure of the carbon production reactor can be adjusted to achieve operating conditions suitable for the reaction of the above formula (2).

[0080] [Catalyst regeneration section 13] The catalyst regeneration unit 13 has a catalyst regeneration reactor 131, as shown in FIG. 2, for example. The catalyst regeneration reactor 131 uses at least a portion of the gas introduced from the outlet of the anode flow path 113 to perform a regeneration process by thermochemical reaction of the deactivated catalyst transported from the carbon generation unit 12. At least one of the reactions represented by the above formulas (6), (7), and (9) occurs in the catalyst regeneration reactor 131, thereby removing at least a portion of the carbon covering the catalyst. The temperature and pressure of the catalyst regeneration reactor 131 can be adjusted to achieve operating conditions suitable for the reaction.

[0081] According to the second embodiment, the carbon-coated catalyst deactivated in the carbon production reaction is regenerated in the catalyst regeneration unit 13 using the fluid discharged from the water electrolysis cell, enabling sustained, highly efficient operation of the carbon production reaction over a long period of time. Furthermore, efficient operation is possible because there is no need to separately recover the O2 and HO source gases used in the catalyst regeneration unit 13 from the atmosphere and because the fluid discharged from the water electrolysis cell can be effectively utilized within the system without being released into the atmosphere.

[0082] (Third embodiment) Fig. 6 is a schematic diagram showing a configuration example of an immobilization system according to the third embodiment. The immobilization system shown in Fig. 6 includes an electrolysis unit 11, a gas conversion unit 100, a carbon generation unit 12, and a catalyst regeneration unit 13. The following describes the parts that differ from the first embodiment, and the description of the first embodiment can be used for the other parts as appropriate.

[0083] [Gas conversion section 100] The gas conversion section 100 includes a reactor in which gas conversion takes place.

[0084] 7 is a schematic diagram showing an example of the configuration of the reactor of the gas conversion section 100. The reactor 400 has a processing chamber 401, an inlet 402, and an outlet 403.

[0085] The reactor 400 can have a catalyst disposed inside the treatment chamber 401 .

[0086] The inlet 402 is connected to the cathode flow channel 115. The fluid discharged from the cathode flow channel 115 is introduced into the processing chamber 401 through the inlet 402. The inlet 402 is formed by connecting a pipe to the processing chamber 401, for example.

[0087] The outlet 403 is connected to the carbon production unit 12. A fluid discharged from the processing chamber 401 is introduced into the carbon production unit 12 through the outlet 403. The reactor 400 is connected to a carbon dioxide supply source. A gas containing carbon dioxide supplied from the carbon dioxide supply source is introduced into the processing chamber 401 through, for example, the inlet 401. The outlet 403 is formed, for example, by connecting a pipe to the processing chamber 401.

[0088] The reactor 400 uses the cathode gas introduced from the electrolysis unit 11 and the gas containing carbon dioxide supplied from a carbon dioxide supply source via an inlet 404 provided in the reactor 400, and performs a reverse shift reaction shown in the following formula (10) using the input thermal energy. CO2+H2→ CO+H2O (10)

[0089] The reactor 400 has a catalyst sealed in a processing chamber 401 that efficiently causes the reaction of formula (10), and the reaction of formula (10) occurs at a predetermined temperature and a predetermined pressure. The temperature of the processing chamber 401 is preferably 600°C or higher and 1000°C or lower, and the pressure of the processing chamber 401 is preferably 1 atmosphere or higher and 10 atmospheres or lower.

[0090] The produced gas and unreacted raw materials discharged from the reactor 400 are supplied to the carbon production section 12. Between the gas conversion section 100 and the carbon production section 12, devices capable of temperature adjustment, pressure control, moisture removal, etc. may be installed to ensure that the carbon production reaction proceeds efficiently.

[0091] According to the third embodiment, the carbon-coated catalyst deactivated in the carbon production reaction is regenerated in the catalyst regeneration unit 13 using the fluid discharged from the electrolysis unit 11, enabling a sustained, highly efficient long-term operation of the carbon production reaction. Furthermore, there is no need to separately prepare the raw material gases O2 and HO used in the catalyst regeneration unit 13 by recovering them from the atmosphere, and the fluid discharged from the electrolysis unit 11 can be effectively utilized within the system without being released into the atmosphere, allowing for efficient operation.

[0092] Hereinafter, as the first embodiment referred to in the description of the fourth to twelfth embodiments, an example in which CO conversion occurs in the electrolysis cell 101 will be described for convenience.

[0093] (Fourth embodiment) FIG. 8 is a schematic diagram showing a configuration example of an immobilization system according to the fourth embodiment. The immobilization system shown in FIG. 8 differs from the configuration example of the immobilization system according to the first embodiment in that substances discharged from the carbon production unit 12 are supplied to the electrolysis unit 11. The carbon production unit 12 is connected to the electrolysis unit 11 by, for example, connecting the outlet 205 shown in FIG. 3 to the anode flow path 113 or the cathode flow path 115 of the electrolysis unit 11 via piping. Alternatively, the carbon production reactor 122 may be provided with an outlet other than the outlet 205 and connected to the anode flow path 113 or the cathode flow path 115. The immobilization system shown in FIG. 8 may have a purge valve or equipment for separating and recovering specific substances between the carbon production unit 12 and the electrolysis unit 11. Below, differences from the first embodiment will be described, and the description of the first embodiment can be applied to other parts as appropriate.

[0094] Substances discharged from the carbon production unit 12 include CO2 and HO, which are by-products of the reactions shown in the above formulas (1) and (2), and unreacted raw materials (CO and H2). In the fourth embodiment, the exhaust substances, or CO2 and HO separated and recovered from the exhaust substances, can be supplied to the anode flow path 113 and the cathode flow path 115 of the electrolysis unit 11 and reused.

[0095] (Fifth embodiment) FIG. 9 is a schematic diagram showing a configuration example of an immobilization system according to the fifth embodiment. The immobilization system shown in FIG. 9 differs from the configuration example of the immobilization system according to the first embodiment in that substances discharged from the carbon generation unit 12 are supplied to the catalyst regeneration unit 13. The carbon generation unit 12 is connected to the catalyst regeneration unit 13, for example, by connecting the outlet 205 of the carbon generation reactor 122 shown in FIG. 3 to the inlet 302 of the catalyst regeneration reactor 131 shown in FIG. 4 via a pipe. Alternatively, the catalyst regeneration reactor 131 may be provided with an inlet other than the inlet 302 and connected to the outlet 205 of the carbon generation reactor 122. The immobilization system shown in FIG. 9 may have a purge valve or equipment for separating and recovering specific substances between the carbon generation unit 12 and the catalyst regeneration unit 13. Below, differences from the first embodiment will be described, and the description of the first embodiment can be applied to other parts as appropriate.

[0096] Substances discharged from the carbon production unit 12 include CO2 and HO, which are by-products of the reactions shown in the above formulas (1) and (2), and unreacted raw materials (CO and H2). In the fifth embodiment, the exhaust substances of the carbon production unit 12, or CO2 and HO separated and recovered from the exhaust substances, can be supplied to the catalyst regeneration unit 13 and reused.

[0097] (Sixth embodiment) FIG. 10 is a schematic diagram showing a configuration example of an immobilization system according to a sixth embodiment. The immobilization system shown in FIG. 10 differs from the configuration example of the immobilization system according to the first embodiment in that substances discharged from the catalyst regeneration unit 13 are supplied to the carbon generation unit 12. The catalyst regeneration unit 13 is connected to the carbon generation unit 12, for example, by connecting the outlet 305 of the catalyst regeneration reactor 131 shown in FIG. 4 to the inlet 202 of the carbon generation reactor 122 shown in FIG. 3. Alternatively, the catalyst regeneration reactor 131 may be provided with an outlet other than the outlet 305 and connected to the inlet 202 of the carbon generation reactor 122. The immobilization system shown in FIG. 10 may include equipment between the carbon generation unit 12 and the catalyst regeneration unit 13 for separating and recovering specific substances in the fluid discharged from the catalyst regeneration unit 13 and a purge valve for venting part of the fluid to the outside of the system. Below, differences from the first embodiment will be described, and the description of the first embodiment can be applied to other parts as appropriate.

[0098] The substances exhausted from the catalyst regeneration unit 13 include CO, H2, CO2, which are by-products of the reactions shown in formulas (6), (7), (8), and (9), and unreacted raw materials (O2, CO2, HO). In the sixth embodiment, the exhaust substances from the catalyst regeneration unit 13 or components separated and recovered from the exhaust substances can be supplied to the carbon production unit 12 and reused.

[0099] (Seventh embodiment) FIG. 11 is a schematic diagram showing a configuration example of an immobilization system according to the seventh embodiment. The immobilization system shown in FIG. 11 differs from the configuration example of the immobilization system according to the first embodiment in that substances discharged from the catalyst regeneration unit 13 are supplied to the electrolysis unit 11. For example, the outlet 303 shown in FIG. 4 is connected to the anode flow path 113 or the cathode flow path 115 of the electrolysis unit 11, thereby connecting to the electrolysis unit 11. The immobilization system shown in FIG. 11 may have, between the electrolysis unit 11 and the catalyst regeneration unit 13, equipment for separating and recovering specific substances in the fluid discharged from the catalyst regeneration unit 13 and a purge valve for discharging part of the fluid to the outside of the system. Below, differences from the first embodiment will be described, and the description of the first embodiment can be applied to other parts as appropriate.

[0100] The substances exhausted from the catalyst regeneration unit 13 include CO, H2, CO2, which are by-products of the reactions shown in formulas (6), (7), (8), and (9), and unreacted raw materials (O2, CO2, HO). In the seventh embodiment, the exhaust substances from the catalyst regeneration unit 13 or components separated and recovered from the exhaust substances can be supplied to the electrolysis unit 11 and reused.

[0101] The immobilization systems of the fourth to seventh embodiments can increase the utilization rate of raw materials by recycling within the system the substances discharged from the carbon production section 12 or the catalyst regeneration section 13. This makes it possible to reduce raw material costs, and provides an immobilization system with excellent economical efficiency.

[0102] (Eighth embodiment) Fig. 12 is a schematic diagram showing a configuration example of an immobilization system according to the eighth embodiment. The immobilization system shown in Fig. 12 includes an electrolysis section 11, an integrated reaction section 14 integrally having a carbon production section 12 and a catalyst regeneration section 13, a switching valve 151, and a switching valve 152. The following describes the parts that differ from the first embodiment, and the description of the first embodiment can be used for the other parts as appropriate.

[0103] The integrated reaction section 14 has a reactor that switches between a carbon production operation and a catalyst regeneration operation.

[0104] 13 is a schematic diagram showing an example of the configuration of a reactor. A reactor 500 shown in FIG. 13 has a processing chamber 501, an inlet 502, an inlet 503, an outlet 504, and an outlet 505.

[0105] The reactor 500 can have a catalyst disposed inside the treatment chamber 501 .

[0106] The inlet 502 is connected to the cathode exhaust flow path 126. The fluid flowing through the cathode exhaust flow path 126 is introduced into the processing chamber 501 through the inlet 502. The inlet 502 is formed by connecting a pipe to the processing chamber 501, for example.

[0107] The inlet 503 is connected to the anode exhaust flow path 124. The fluid flowing through the anode exhaust flow path 124 is introduced into the processing chamber 501 through the inlet 503. The inlet 503 is formed by connecting a pipe to the processing chamber 501, for example.

[0108] The outlet 504 is connected to the processing chamber 501. The solid carbon generated in the processing chamber 501 is discharged from the processing chamber 501 through the outlet 504. The outlet 504 is formed by connecting a pipe to the processing chamber 501, for example.

[0109] The outlet 505 is provided, for example, in the upper part of the processing chamber 501. The gas discharged from the reactor 500 is discharged from the reactor 500 through the outlet 505. The outlet 505 is formed, for example, by connecting a pipe to the processing chamber 501.

[0110] The switching valve 151 connects the cathode discharge flow path 126 of the electrolysis unit 11 to the outlet 502 of the reactor 500 .

[0111] The switching valve 152 connects the anode discharge flow path 124 of the electrolysis section 11 to the outlet 502 of the reactor 500 .

[0112] The operation of the immobilization system of the eighth embodiment will be described below.

[0113] First, the fluid flowing through the cathode discharge flow path 126 of the electrolysis unit 11 is introduced into the reactor 500 of the integrated reaction unit 14 through the switching valve 152. The reactor 500 is adjusted to predetermined operating conditions to carry out a carbon production reaction similar to that in the first embodiment. In this case, the fluid flowing through the anode discharge flow path 124 of the electrolysis unit 11 is discharged outside the system through the switching valve 151.

[0114] The carbon production reaction causes solid carbon to adhere to the catalyst in the reactor 500. As the reaction progresses, the solid carbon coats the catalyst, deactivating it and causing the carbon production reaction to stagnate. In this case, the switching valve 152 is operated to discharge the fluid flowing through the cathode exhaust flow path 126 out of the system, thereby terminating the carbon production reaction. Next, the switching valve 151 is operated to introduce the fluid flowing through the anode exhaust flow path 124 into the reactor 500. The reactor 500 is adjusted to predetermined operating conditions, allowing the catalyst regeneration reaction to occur in the same manner as in the first embodiment. This allows the deactivated catalyst to be regenerated and activated.

[0115] After the regeneration treatment has been performed for a predetermined time, the switching valve 151 is operated to discharge the fluid discharged from the anode exhaust flow path 124 outside the system, and the fluid discharged from the cathode exhaust flow path 126 is reintroduced into the reactor 500, where the carbon production reaction is carried out again. By repeatedly switching between the carbon production reaction operation and the catalyst regeneration reaction operation in this manner, carbon production and catalyst regeneration proceed alternately within the reactor 500, thereby achieving sustained carbon fixation. Finally, when the desired amount of fixed carbon is obtained, the solid carbon containing the catalyst is discharged from the reactor 500.

[0116] When operating the switching valves 151 and 152, it is necessary to understand the progress of the carbon production reaction and the catalyst regeneration reaction. In this case, it is possible to understand the progress by measuring the concentration of specific components in the fluid discharged from the integrated reaction unit 14. The fluid discharged from the integrated reaction unit 14 contains, for example, CO, H2, CO2, and HO, which are by-products of the carbon production reaction and the catalyst regeneration reaction, and unreacted raw materials (O2, CO2, and HO).

[0117] Fig. 14 is a schematic diagram showing another configuration example of the immobilization system of the eighth embodiment. The immobilization system shown in Fig. 14 differs from the immobilization system shown in Fig. 12 in that it includes a measurement unit 154.

[0118] The measurement unit 154 includes, for example, a gas concentration meter. When the carbon production reaction occurs, for example, as shown in the above formula (1), a gas concentration meter capable of measuring the concentration of the raw material CO or the by-product CO2 is connected to the outlet 505 of the reactor 500, and the gas concentration at the outlet 505 is continuously monitored. When the carbon production reaction stagnates, the CO2 concentration increases or the CO2 concentration decreases, so the time at which the carbon production reaction stagnates can be determined based on the change in gas concentration over time. Similarly, when the catalyst regeneration reaction occurs, for example, as shown in the above formula (6), the completion time of the catalyst regeneration reaction can be determined based on the change in gas concentration over time of the raw material O2 or the by-product CO2.

[0119] As a measuring instrument, in addition to a gas concentration meter, a weight scale can also be used to grasp the progress of the carbon generation reaction and the catalyst regeneration reaction. The weight scale is installed to measure the weight of the reactor 500, and by monitoring the degree of weight change of the reactor 500 due to the carbon generation reaction and the degree of weight change of the reactor 500 due to the catalyst regeneration reaction over time, it becomes possible to determine the end time of the carbon generation reaction and the catalyst regeneration reaction.

[0120] The above-described embodiment of using the gas concentration meter and weight meter to grasp the progress of the carbon production reaction and catalyst regeneration reaction is not limited to the eighth embodiment and can be applied to other embodiments.

[0121] Furthermore, by using the measuring unit 154 such as the gas concentration meter or weight meter as a reaction detection unit, determining the time when the reaction is completed based on a signal from the reaction detection unit, and using a control unit that instructs the operation of the switching valve 151, the switching valve 152, and the reactor 500, and adjustment units provided in the switching valve 151, the switching valve 152, and the reactor 500, respectively, it becomes possible to operate the switching valve 151 and the switching valve 152 and change the operating conditions, thereby enabling the system to be automated.

[0122] Fig. 15 is a schematic diagram showing another configuration example of the immobilization system of the eighth embodiment. The immobilization system shown in Fig. 15 differs from the immobilization system shown in Fig. 13 in that it includes a reaction detection unit 155 and a control unit 156.

[0123] The reaction detection unit 155 detects the gas concentration at the outlet 503 of the reactor 500 and the weight of the reactor 500, generates a data signal as a detection signal, and transmits the data signal to the control unit. The data signal may be transmitted by a wired method or a wireless method.

[0124] The control unit 156 is connected to the reaction detection unit 155 and adjustment units provided in the switching valves 151 and 152 and the reactor 500. The control unit 156 stores in advance required standards for data signals indicating the gas concentration at the outlet 503 and the weight of the reactor 500, and outputs a control signal to the adjustment unit when the required standards are met. The control unit 156 is configured with hardware such as a personal computer (PC) or microcomputer (micom) including programs and simulation software.

[0125] The switching valves 151 and 152 and the reactor 500 each receive a control signal from a control unit 156, and the adjustment unit adjusts the switching operations of the switching valves 151 and 152 and the operating conditions of the reactor 500. In the case of the reactor 500, the adjustment unit is composed of, for example, a temperature regulator such as a heater that adjusts the temperature and a pressure control device that adjusts the pressure inside the reactor 500.

[0126] According to the eighth embodiment, the need to transport the catalyst between the carbon generation section 12 and the catalyst regeneration section 13 shown in the first embodiment is eliminated, so that a fixation system with a simple configuration, small space, and low cost can be provided.

[0127] (Ninth embodiment) Fig. 16 is a schematic diagram showing a configuration example of an immobilization system according to the ninth embodiment. The immobilization system shown in Fig. 16 includes an electrolysis unit 11, an integrated reaction unit 14a, an integrated reaction unit 14b, a switching valve 161, and a switching valve 162. The following describes the parts that differ from the eighth embodiment, and the description of the eighth embodiment can be used for the other parts as appropriate.

[0128] The configurations of the integrating reaction units 14a and 14b are the same as those of the integrating reaction unit 14, and therefore the description of the integrating reaction unit 14 can be used as appropriate. Note that the number of integrating reaction units 14 is not limited to the number shown in FIG.

[0129] The switching valve 161 connects the anode discharge flow path 124 of the electrolysis unit 11 to the inlet 503 of each of the reactors 500 of the integrated reaction unit 14a and the integrated reaction unit 14b.

[0130] The switching valve 162 connects the cathode discharge flow path 126 of the electrolysis unit 11 to the inlet 502 of each of the reactors 500 of the integrated reaction unit 14a and the integrated reaction unit 14b.

[0131] The operation of the immobilization system of the ninth embodiment will be described below.

[0132] First, by operating the switching valves 161 and 162, the fluid flowing through the cathode discharge flow path 126 of the electrolysis unit 11 is introduced into the reactor 500 of the integrated reaction unit 14a, but not into the reactor 500 of the integrated reaction unit 14b. The reactor 500 of the integrated reaction unit 14a is adjusted to predetermined operating conditions, thereby performing a carbon production reaction in the reactor 500 of the integrated reaction unit 14a. In this case, the fluid flowing through the anode discharge flow path 124 of the electrolysis cell 101 is introduced into the reactor 500 of the integrated reaction unit 14b, but not into the reactor 500 of the integrated reaction unit 14a, by operating the switching valves 161 and 162. The reactor 500 of the integrated reaction unit 14b is adjusted to predetermined operating conditions, thereby performing a catalyst regeneration reaction.

[0133] When the carbon production reaction in the reactor 500 of the integrated reaction unit 14a and the catalyst regeneration reaction in the reactor 500 of the integrated reaction unit 14b have both been completed, the switching valves 161 and 162 are operated to introduce the fluid flowing through the cathode discharge flow path 126 into the reactor 500 of the integrated reaction unit 14b without introducing it into the reactor 500 of the integrated reaction unit 14a, and the fluid flowing through the anode discharge flow path 124 into the reactor 500 of the integrated reaction unit 14a without introducing it into the reactor 500 of the integrated reaction unit 14b. The reactor 500 of the integrated reaction unit 14a performs the catalyst regeneration reaction by adjusting the operating conditions, and the reactor 500 of the integrated reaction unit 14b performs the carbon production reaction by adjusting the operating conditions.

[0134] By repeating these operations, the carbon production reaction and the catalyst regeneration reaction proceed alternately within the reactor 500, thereby achieving continuous carbon fixation. When the desired amount of fixed carbon is finally obtained in the integrated reaction section 14a and the integrated reaction section 14b, the solid carbon containing the catalyst is discharged from the reactor 500.

[0135] According to the ninth embodiment, by providing a plurality of integrated reaction sections, it is possible to realize continuous operation with high raw material utilization efficiency without discharging the gas generated in the electrolysis section 11 to the outside of the system.

[0136] (Tenth and Eleventh Embodiments) Fig. 17 is a schematic diagram showing a configuration example of an immobilization system according to a tenth embodiment. Fig. 18 is a schematic diagram showing a configuration example of an immobilization system according to an eleventh embodiment. The following describes the parts that differ from the first embodiment, and the description of the first embodiment can be used as appropriate for the other parts.

[0137] The immobilization system of the tenth embodiment further includes at least one heat exchanger selected from the group consisting of a heat exchanger that performs heat exchange between the carbon production section 12 and the catalyst regeneration section 13, a heat exchanger that performs heat exchange between the electrolysis section 11 and the carbon production section 12, and a third heat exchanger that performs heat exchange between the electrolysis section 11 and the catalyst regeneration section 13.

[0138] The immobilization system 1 shown in FIG. 17 differs from the immobilization system of the first embodiment in that it includes a heat exchanger 171 that exchanges heat between the fluid discharged from the carbon production section 12 and the fluid discharged from the anode discharge flow path 124.

[0139] The immobilization system 1 shown in FIG. 18 differs from the immobilization system of the first embodiment in that it includes a heat exchanger 172 that exchanges heat between the fluid discharged from the carbon production section 12 and the water (e.g., water from the humidifier 128) supplied to the anode flow path 113 of the electrolysis section 11.

[0140] As expressed by the above formulas (1), (2), and (3), the carbon production reaction is an exothermic reaction, and the heat generated in the carbon production unit 12 can be effectively used within the system. For example, as shown in Figure 17, it can be used to heat the fluid discharged from the anode discharge flow path 124 and introduced into the catalyst regeneration unit 13, or as shown in Figure 18, it can be used to heat the water introduced into the electrolysis unit 11. This can increase the energy efficiency of the system, making it possible to provide a highly efficient immobilization system.

[0141] As represented by the above formulas (6), (7), (8), and (9), the reaction in the catalyst regeneration unit 13 changes to an exothermic reaction or an endothermic reaction depending on the type and composition of the raw material gas. Under conditions in which the reaction in the catalyst regeneration unit 13 is an exothermic reaction, the heat generated in the catalyst regeneration reactor 131 can be used by heat exchange to heat the carbon production reaction in the carbon production unit 12 or the raw material introduced into the electrolysis unit 11.

[0142] The ability to adjust the heat generation and endothermic reaction as desired by changing the type and composition of the raw materials in the catalyst regeneration unit 13 can be utilized to maximize the energy efficiency of the entire system. For example, if the catalyst regeneration reaction is made endothermic by selectively introducing CO2 or H2O from the fluid discharged from the anode discharge flow path 124 into the catalyst regeneration unit 13, a highly energy-efficient system can be constructed, as shown in Figure 17, since the carbon production reaction is an exothermic reaction. From this perspective, using a porous diaphragm electrolysis cell or a solid polymer electrolysis cell, which are likely to contain CO2 as the anode generated gas, as the electrolysis cell 101 is advantageous for increasing the efficiency of the entire system.

[0143] (Twelfth embodiment) Figure 19 is a schematic diagram showing a configuration example of an immobilization system according to the twelfth embodiment. The immobilization system shown in Figure 19 differs from the immobilization system according to the first embodiment in that it includes measurement units 181, 182, 183, 184, 185, 186, and 187. Note that the immobilization system according to the twelfth embodiment only needs to include at least one measuring device among measurement units 181, 182, 183, 184, 185, 186, and 187. The following describes the differences from the first embodiment, and the description of the first embodiment can be applied to the other parts as appropriate.

[0144] The measuring unit 181 can measure the inflow amount of cathode gas such as carbon dioxide introduced into the electrolysis unit 11. The measuring unit 181 is connected to the inlet of the cathode flow channel 115, for example.

[0145] The measuring unit 182 can measure the inflow amount of the anode solution such as water introduced into the electrolysis unit 11. The measuring unit 182 is connected to the inlet of the anode flow channel 113, for example.

[0146] The measuring unit 183 can measure the amount of energy source such as power, heat, fuel, etc. supplied to the electrolysis unit 11, for example.

[0147] The measuring unit 184 can measure the outflow amount of the fluid discharged from the carbon production unit 12. The measuring unit 184 is connected to, for example, the outlet 204 of the carbon production reactor 122 shown in FIG.

[0148] The measuring unit 185 can measure the amount of energy source such as power, heat, or fuel supplied to the carbon producing unit 12, for example.

[0149] The measuring unit 186 can measure the outflow amount of the fluid discharged from the catalyst regeneration unit 13. The measuring unit 186 is connected to the outlet 303 of the catalyst regeneration reactor 131 shown in FIG.

[0150] The measuring unit 187 can measure the outflow amount of solid carbon discharged from the carbon production unit 12. The measuring unit 187 is connected to, for example, the outlet 206 of the carbon production reactor 122 shown in FIG.

[0151] The substances and energy flowing out from the electrolysis unit 11 include the fluid discharged from the cathode flow path 115, the fluid discharged from the anode flow path 113, and the amount of heat generated in the electrolysis cell 101 by the electrolysis reaction. In addition, consumables such as cell components and electrolytes that require periodic replacement may also be included in the measurement targets.

[0152] The carbon production unit 12 and the catalyst regeneration unit 13 measure the amounts of materials and energy introduced and discharged, similar to the electrolysis unit 11. Examples of the introduced materials and energy amounts include raw material gas supplied from the electrolysis unit 11 or from the outside, catalysts delivered to the catalyst regeneration unit 13 or from the outside, and electricity, heat, and fuel for operation. Examples of the discharged materials include exhaust gas discharged by the reaction, catalysts discharged to the catalyst regeneration unit 13 or from the outside, and the amount of heat generated by the reaction.

[0153] Examples of measuring instruments that measure the amount of a substance include a concentration meter, a flow meter, a mass meter, etc. Examples of measuring instruments that measure the amount of energy include a wattmeter, an ammeter, a voltmeter, a thermometer, a flow meter, etc.

[0154] The measurement data of the substance amount and energy amount measured by each measuring unit is transmitted to a calculation device 2 such as a personal computer. The calculation device 2 may be included in the immobilization system 1. The calculation device 2 calculates the amount of CO2 emissions in the system. The calculation formula is not particularly limited, but is calculated using, for example, the following formula (11). CO2 emissions=ΣM OUT,i ×X i, CO2-ΣM IN,j ×X j, CO2···(11)

[0155] M OUT,i represents the amount of component i (amount of substance or energy) flowing out from each measuring section. X i, CO2 represents the CO2 emission intensity of component i (material or energy). M IN,i represents the amount of component j (material or energy) flowing in from each measuring section. X j, CO2 is the CO2 emission intensity of component j (material or energy).

[0156] According to the twelfth embodiment, the CO2 emissions of the system can be quantified by using a measuring instrument and a computing device, and this can be used for services such as CO2 emissions trading.

[0157] The embodiments can be combined as appropriate.

[0158] Although several embodiments of the present invention have been described, these embodiments are presented as examples and are not intended to limit the scope of the invention. These novel embodiments can be embodied in various other forms, and various omissions, substitutions, and modifications can be made without departing from the spirit of the invention. These embodiments and their modifications are included within the scope and spirit of the invention, and are also included in the scope of the invention and its equivalents as defined in the claims.

[0159] The above embodiments can be summarized in the following technical solutions. (Technical proposal 1) an electrolysis section including an electrolysis cell having an anode, a cathode, an anode flow path facing the anode, and a cathode flow path facing the cathode; a reaction section that selectively performs a first operation of producing solid carbon from a first raw material containing a first fluid introduced from the cathode flow channel using a catalyst, and a second operation of removing at least a part of the solid carbon attached to the catalyst by a reaction between a second raw material containing a second fluid introduced from the anode flow channel and the solid carbon attached to the catalyst; An immobilization system comprising: (Technical proposal 2) an electrolysis section including an electrolysis cell having an anode, a cathode, an anode flow path facing the anode, and a cathode flow path facing the cathode; a carbon production section connected to an outlet of the cathode flow channel and including a first reactor for producing solid carbon from a raw material including a first fluid introduced from the cathode flow channel using a catalyst; a catalyst regeneration unit connected to an outlet of the anode flow channel and to the carbon production unit, the second reactor configured to remove at least a portion of the carbon adhered to the catalyst by a reaction between at least one substance contained in a second fluid introduced from the anode flow channel and the carbon adhered to the catalyst introduced from the carbon production unit; An immobilization system comprising: (Technical proposal 3) an electrolysis section including an electrolysis cell having an anode, a cathode, an anode flow path facing the anode, and a cathode flow path facing the cathode; a reaction section including a third reactor that alternately performs a first operation of producing solid carbon from a raw material containing a first fluid introduced from the cathode flow channel using a catalyst, and a second operation of removing at least a portion of the carbon attached to the catalyst by a reaction between at least one substance contained in a second fluid introduced from the anode flow channel and the carbon attached to the catalyst; a first switching valve connecting an outlet of the cathode flow channel and the third reactor; a second switching valve connecting the outlet of the anode flow channel and the third reactor; An immobilization system comprising: (Technical proposal 4) The immobilization system according to Technical Scheme 1, 2, or 3, wherein the first fluid comprises carbon dioxide. (Technical proposal 5) the feedstock comprises carbon dioxide; The fixation system according to Technical Scheme 2 or 3, wherein at least a portion of the carbon dioxide is derived from the atmosphere or biomass. (Technical proposal 6) The immobilization system according to any one of Technical Schemes 1 to 5, wherein the first fluid includes a reduction product produced by reducing carbon dioxide flowing through the cathode flow path by the cathode. (Technical proposal 7) The immobilization system according to Technical Scheme 2 further comprises a carbon dioxide supply source for introducing a gas containing carbon dioxide into the carbon production unit. (Technical proposal 8) The fixation system according to any one of Technical Schemes 1 to 7, wherein the electrolytic cell is a carbon dioxide electrolytic cell. (Technical proposal 9) The immobilization system according to any one of Technical Schemes 1 to 7, wherein the electrolysis cell is a water electrolysis cell. (Technical proposal 10) The immobilization system according to Technical Solution 2 further comprises a gas conversion unit disposed between the electrolysis unit and the carbon production unit, which produces carbon monoxide and water by a reverse shift reaction of carbon dioxide and hydrogen. (Technical proposal 11) The immobilization system described in Technical Solution 2 further comprises a first flow path connecting the carbon production unit and the electrolysis unit, for introducing at least a portion of a third fluid discharged from the carbon production unit into the electrolysis unit. (Technical proposal 12) The immobilization system described in Technical Solution 2 further comprises a second flow path connecting the carbon generation unit and the catalyst regeneration unit, for introducing at least a portion of the third fluid discharged from the carbon generation unit into the catalyst regeneration unit. (Technical proposal 13) The immobilization system described in Technical Solution 2 further comprises a third flow path connecting the electrolysis section and the catalyst regeneration section, for introducing at least a portion of the fourth fluid discharged from the catalyst regeneration section into the electrolysis section. (Technical proposal 14) The immobilization system described in Technical Solution 2 further comprises a fourth flow path connecting the carbon generation unit and the catalyst regeneration unit, for introducing at least a portion of the fourth fluid discharged from the catalyst regeneration unit into the carbon generation unit. (Technical proposal 15) The immobilization system according to Technical Solution 3 comprises a plurality of the reaction zones. (Technical proposal 16) The immobilization system according to Technical Scheme 2 further comprises a gas concentration meter installed at the outlet of at least one reactor selected from the group consisting of the first reactor and the second reactor. (Technical proposal 17) The immobilization system according to Technical Solution 2, further comprising a weighing scale for measuring the weight of the first reactor or the second reactor. (Technical proposal 18) The immobilization system according to Technical Proposal 2 further comprises at least one heat exchanger selected from the group consisting of a first heat exchanger that performs heat exchange between the carbon production section and the catalyst regeneration section, a second heat exchanger that performs heat exchange between the electrolysis section and the carbon production section, and a third heat exchanger that performs heat exchange between the electrolysis section and the catalyst regeneration section. (Technical proposal 19) a measuring instrument for measuring the amount of substance and the amount of energy introduced into the immobilization system; The immobilization system according to Technical Solution 2 further comprises a calculation device that calculates the amount of carbon dioxide emitted by the entire immobilization system from the measurement values ​​of the measuring device. [Explanation of symbols]

[0160] 1...immobilization system, 2...processing device, 11...electrolysis section, 12...carbon production section, 13...catalyst regeneration section, 14...integrated reaction section, 14a...integrated reaction section, 14b...integrated reaction section, 100...gas conversion section, 101...electrolysis cell, 111...anode, 112...cathode, 113...anode flow path, 114...anode flow path plate, 115...cathode flow path, 116...cathode flow path plate, 117...diaphragm, 118...current collecting plate, 119...current collecting plate, 120...clamping plate, 121 ... clamping plate, 122... carbon production reactor, 123... anode supply flow path, 124... anode exhaust flow path, 125... cathode supply flow path, 126... cathode exhaust flow path, 127... mass flow controller, 128... humidifier, 129a... back pressure valve, 129b... back pressure valve, 130a... gas-liquid separator, 130b... gas-liquid separator, 131... catalyst regeneration reactor, 133... pump, 134... gas inlet, 135... gas inlet, 136... compressor, 13 7...Compressor, 138...Temperature controller, 139...Temperature controller, 141...Path, 151...Valve, 152...Valve, 154...Measuring unit, 155...Reaction detection unit, 156...Control unit, 157...Adjusting unit, 161...Valve, 162...Valve, 171...Heat exchanger, 172...Heat exchanger, 181...Measuring unit, 182...Measuring unit, 183...Measuring unit, 184...Measuring unit, 185...Measuring unit, 186...Measuring unit, 187...Measuring unit, 201...Processing chamber, 202 ...inlet, 203...inlet, 204...outlet, 205...outlet, 206...outlet, 301...treatment chamber, 302...inlet, 303...inlet, 303...outlet, 304...outlet, 305...outlet, 400...reactor, 401...treatment chamber, 402...inlet, 403...outlet, 404...inlet, 500...reactor, 501...treatment chamber, 502...inlet, 502...outlet, 503...inlet, 503...outlet, 504...outlet, 505...outlet.

Claims

1. an electrolysis section including an electrolysis cell having an anode, a cathode, an anode flow path facing the anode, and a cathode flow path facing the cathode; a carbon production section connected to an outlet of the cathode flow channel and including a first reactor for producing solid carbon from a raw material including a first fluid introduced from the cathode flow channel using a catalyst; a catalyst regeneration unit connected to an outlet of the anode flow channel and to the carbon production unit, the second reactor configured to remove at least a portion of the attached solid carbon from the catalyst by a reaction between at least one substance contained in a second fluid introduced from the anode flow channel and the solid carbon introduced from the carbon production unit; An immobilization system comprising:

2. The immobilization system of claim 1 , wherein the first fluid comprises carbon dioxide.

3. the feedstock comprises carbon dioxide; The immobilization system according to claim 1 , wherein at least a portion of the carbon dioxide is atmospherically derived or biomass-derived.

4. The immobilization system according to claim 1 , wherein the first fluid includes a reduction product produced by reducing carbon dioxide flowing through the cathode flow channel by the cathode.

5. The immobilization system according to claim 1 , further comprising a carbon dioxide supply source that introduces a gas containing carbon dioxide into the carbon production section.

6. 10. The immobilization system of claim 1, wherein the electrolytic cell is a carbon dioxide electrolytic cell.

7. The immobilization system of claim 1 , wherein the electrolysis cell is a water electrolysis cell.

8. 2. The immobilization system according to claim 1, further comprising a gas conversion unit provided between the electrolysis unit and the carbon production unit, for producing carbon monoxide and water by a reverse shift reaction of carbon dioxide and hydrogen.

9. 2. The immobilization system according to claim 1, further comprising a first flow path connecting the carbon production section and the electrolysis section, for introducing at least a portion of a third fluid discharged from the carbon production section into the electrolysis section.

10. 2. The immobilization system according to claim 1, further comprising a second flow path connecting the carbon production section and the catalyst regeneration section, for introducing at least a portion of a third fluid discharged from the carbon production section into the catalyst regeneration section.

11. 2. The immobilization system according to claim 1, further comprising a third flow path connecting the electrolysis section and the catalyst regeneration section, for introducing at least a portion of a fourth fluid discharged from the catalyst regeneration section into the electrolysis section.

12. 2. The immobilization system according to claim 1, further comprising a fourth flow path connecting the carbon production section and the catalyst regeneration section, for introducing at least a portion of a fourth fluid discharged from the catalyst regeneration section into the carbon production section.

13. 2. The immobilization system according to claim 1, further comprising a gas concentration meter provided at an outlet of at least one reactor selected from the group consisting of the first reactor and the second reactor.

14. 10. The immobilization system according to claim 1, further comprising a weighing scale for measuring the weight of the first reactor or the second reactor.

15. 2. The immobilization system according to claim 1, further comprising at least one heat exchanger selected from the group consisting of a first heat exchanger that performs heat exchange between the carbon production section and the catalyst regeneration section, a second heat exchanger that performs heat exchange between the electrolysis section and the carbon production section, and a third heat exchanger that performs heat exchange between the electrolysis section and the catalyst regeneration section.

16. a measuring instrument for measuring the amount of substance and the amount of energy introduced into the immobilization system; The immobilization system according to claim 1 , further comprising: a computing device that calculates the amount of carbon dioxide emitted by the entire immobilization system from the measured values ​​of the measuring device.

Citation Information

Patent Citations

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