Carbon dioxide separation device, carbon dioxide separation method, fuel synthesis device, and fuel synthesis method
The carbon dioxide separation device addresses the challenge of separating carbon dioxide from air by controlling temperature and pressure to facilitate gravitational settling or centrifugation, achieving efficient carbon dioxide extraction for fuel synthesis and environmental mitigation.
Patent Information
- Application Number
- JP2024023548
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-02-20
- Publication Date
- 2025-09-01
- Estimated Expiration
- 2044-02-20
AI Technical Summary
Existing methods are inadequate for effectively separating carbon dioxide from air with its typical atmospheric composition, which is predominantly composed of nitrogen, oxygen, and trace amounts of carbon dioxide.
A carbon dioxide separation device that adjusts temperature and pressure to a zone where oxygen and nitrogen are in a gaseous or supercritical state and carbon dioxide is in a liquid state, utilizing gravitational settling or centrifugation to separate carbon dioxide from air.
Effectively separates carbon dioxide from air, enabling its subsequent use in fuel synthesis, reducing atmospheric carbon dioxide concentration and mitigating global warming.
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Figure 2025127059000001_ABST
Abstract
Description
[Technical Field]
[0001] The present invention relates to a carbon dioxide separator that separates carbon dioxide from the atmosphere. [Background technology]
[0002] The concentration of carbon dioxide in the atmosphere is on the rise. Specifically, according to a report by the Japan Meteorological Agency, the global average concentration of carbon dioxide in the atmosphere rose from 340 ppm in 1985 to 410 ppm in 2020.
[0003] Factors contributing to the long-term increase in atmospheric carbon dioxide concentration include human activities such as the consumption of fossil fuels, cement production, and changes in land use such as deforestation. Some of the emitted carbon dioxide is absorbed by plants and the oceans, but the rest accumulates in the atmosphere. Therefore, if human activities continue at their current rate, the concentration of carbon dioxide in the atmosphere is expected to rise further.
[0004] Meanwhile, the Earth is currently warmer than it has been in the past 1,400 years. Global warming not only causes average temperatures to rise, but also brings about various climate changes, such as abnormally high temperatures (heat waves) and an increase in heavy rainfall and droughts. Its effects are already being seen in natural ecosystems and human society, including changes in biological activity due to the earlier arrival of spring, and impacts on water resources and agricultural crops. Global temperatures are expected to rise further in the future, which is likely to have more serious effects on water, ecosystems, food, coastal areas, and more.
[0005] Although the causal relationship between the rise in atmospheric carbon dioxide concentration and global warming has not yet been clearly clarified, there is a clear correlation between the two. Therefore, it is expected that global warming can be curbed by suppressing the rise in atmospheric carbon dioxide concentration.
[0006] The following patent documents describe inventions for separating carbon dioxide from gas. [Prior art documents] [Patent documents]
[0007] [Patent Document 1] Patent No. 6086998 [Patent Document 2] Japanese Patent Application Laid-Open No. 2010-266154 [Patent Document 3] Japanese Patent Application Laid-Open No. 2009-262016 [Patent Document 4] Patent No. 3778674 Summary of the Invention [Problem to be solved by the invention]
[0008] However, various problems are expected to arise when attempting to reduce the concentration of carbon dioxide in the atmosphere on a global scale.
[0009] It is generally believed that the atmosphere is composed mostly of nitrogen (78.08%), oxygen (20.95%), argon (0.93%), and carbon dioxide (0.03%). However, a method for effectively separating carbon dioxide from air with this composition has not yet been established.
[0010] The present invention has been made in view of the above problems, and an object of the present invention is to provide a carbon dioxide separation device and the like that can effectively separate carbon dioxide from air such as the atmosphere. [Means for solving the problem]
[0011] The carbon dioxide separation device of the present invention is a device that separates carbon dioxide from air containing nitrogen, oxygen, and carbon dioxide, and is equipped with a temperature control section that controls the temperature of the air, a pressurization section that pressurizes the air, and a separation section that separates the carbon dioxide from the air, wherein the temperature control section and the pressurization section set the temperature and pressure of the air to a zone where the oxygen and nitrogen are in a gaseous or supercritical state and the carbon dioxide is in a liquid state, and the separation section separates the carbon dioxide in a liquid state from the air.
[0012] In addition, in the carbon dioxide separation device of the present invention, the temperature adjustment section and the pressurization section are characterized in that the temperature and pressure of the air are in a zone where the oxygen and nitrogen are in a gaseous state and the carbon dioxide is in a liquid state.
[0013] In the carbon dioxide separator of the present invention, the separation section separates the carbon dioxide from the air by gravitational settling or centrifugation.
[0014] Furthermore, the carbon dioxide separation method of the present invention is a method for separating carbon dioxide from air containing nitrogen, oxygen, and carbon dioxide, characterized in that the temperature and pressure of the air are set to a range in which the oxygen and the nitrogen are in a gaseous or supercritical state and the carbon dioxide is in a liquid state, and the carbon dioxide in a liquid state is separated from the air.
[0015] The fuel synthesis device of the present invention includes the carbon dioxide separation device and a fuel synthesis unit, and is characterized in that the fuel synthesis unit synthesizes fuel from the carbon dioxide separated from the air by the carbon dioxide separation device.
[0016] The fuel synthesis method of the present invention is characterized by including a carbon dioxide separation method, and synthesizing fuel from the carbon dioxide separated from the air. [Effects of the Invention]
[0017] According to the carbon dioxide separator of the present invention, it is possible to provide a carbon dioxide separator that can effectively separate carbon dioxide from air such as the atmosphere. [Brief explanation of the drawings]
[0018] [Figure 1] 1 is a block diagram showing a carbon dioxide separation device and a fuel synthesis device according to an embodiment of the present invention. [Figure 2A] Temperature-pressure diagram of nitrogen. [Figure 2B] Temperature-pressure diagram of oxygen. [Figure 2C] Temperature-pressure diagram of carbon dioxide. [Figure 3] Temperature-pressure diagrams for nitrogen, oxygen, and carbon dioxide. [Figure 4] Temperature-pressure diagrams for nitrogen, oxygen, and carbon dioxide. [Figure 5] 1 is a flowchart illustrating a carbon dioxide separation method and a fuel synthesis method according to an embodiment of the present invention. DETAILED DESCRIPTION OF THE INVENTION
[0019] DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS Hereinafter, embodiments of the present invention will be described in detail with reference to the accompanying drawings. In the following description, the same components are generally designated by the same reference numerals, and repeated description will be omitted.
[0020] FIG. 1 is a block diagram showing a carbon dioxide separator 10 and a fuel synthesizer 16 according to this embodiment.
[0021] The carbon dioxide separation device 10 is a device that separates carbon dioxide from air containing nitrogen, oxygen, and carbon dioxide. Specifically, the carbon dioxide separation device 10 mainly comprises a temperature adjustment unit 11, a pressurization unit 12, a separation unit 13, and an arithmetic and control unit 17. The carbon dioxide separation device 10 also has an air storage unit 14. The carbon dioxide separation device 10 may further comprise a carbon dioxide storage unit (not shown) for storing the liquid carbon dioxide separated by the separation unit 13.
[0022] The air storage unit 14 is a tank for storing air, such as atmospheric air. The air storage unit 14 has a configuration that allows the air stored therein to be sealed. Furthermore, the air storage unit 14 may have a heat-insulating structure to effectively liquefy the air inside the air storage unit 14. The air storage unit 14 may also be provided with a temperature sensor stored inside the air storage unit 14. Furthermore, the air storage unit 14 may also be provided with a pressure sensor that detects the pressure of the air stored inside the air storage unit 14. The temperature sensor and the pressure sensor transmit electrical signals indicating the measured values to the calculation control unit 17.
[0023] Temperature adjustment unit 11 is configured to adjust the temperature of air. Specifically, temperature adjustment unit 11 is configured to cool or heat the air stored inside air storage unit 14. When temperature adjustment unit 11 functions as a heating device, temperature adjustment unit 11 is composed of an electric heating wire, a heat pump, or the like configured to heat air storage unit 14 from the surroundings. On the other hand, when temperature adjustment unit 11 functions as a cooling device, it is composed of a refrigeration cycle, for example, a vapor compression refrigeration cycle or an air compression refrigeration cycle, configured to cool air storage unit 14 from the surroundings.
[0024] The pressurizing unit 12 is configured to pressurize the air. Specifically, the pressurizing unit 12 is, for example, a compressor that compresses the air stored inside the air storage unit 14.
[0025] The separation unit 13 is configured to separate carbon dioxide from air. Specifically, the separation unit 13 separates carbon dioxide in a liquid state from air. The separation unit 13 separates carbon dioxide from air by gravitational settling or centrifugation.
[0026] When liquid carbon dioxide is separated from air by gravitational settling, separation unit 13 is, for example, an outlet formed at the bottom end of air storage unit 14. Liquid carbon dioxide has a higher specific gravity than gaseous oxygen and nitrogen. Therefore, liquid carbon dioxide is discharged to the outside from separation unit 13, which is an outlet formed at the bottom end of air storage unit 14. This allows liquid carbon dioxide to be separated from air.
[0027] When separating liquid carbon dioxide from air by centrifugation, air containing liquid carbon dioxide is rotated by a centrifugal separator 13. As a result, liquid carbon dioxide, which has a high specific gravity, collects on the radially outer side and can then be separated from the air.
[0028] The temperature adjustment unit 11 and the pressurization unit 12 adjust the temperature of the air to a temperature range where oxygen and nitrogen are in a gaseous or supercritical state and carbon dioxide is in a liquid state. This will be described later with reference to FIG. 4 etc.
[0029] The arithmetic control unit 17 is composed of, for example, a semiconductor element such as a CPU (Central Processing Unit). The arithmetic control unit 17 may include a semiconductor storage device such as a RAM (Random Access Memory) or a ROM (Read Only Memory) as a storage unit. Such a storage unit stores programs, parameters, etc. The arithmetic control unit 17 executes the functions and methods described below based on the programs, parameters, etc. read from the storage unit.
[0030] The fuel synthesizer 16 has a fuel synthesis unit 15 in addition to the carbon dioxide separation device 10. Specifically, the fuel synthesizer 16 produces synthetic fuel from the liquid carbon dioxide obtained by the separation unit 13 of the carbon dioxide separation device 10. Such a synthesis method will be described later with reference to Fig. 4 etc.
[0031] Here, the physical properties of each component that makes up air will be described with reference to Figures 2A, 2B, and 2C. In Figures 2A, 2B, and 2C, the horizontal axis represents temperature, and the vertical axis represents pressure.
[0032] 2A is a temperature-pressure diagram of nitrogen. Referring to FIG. 2A, nitrogen can be in a solid, liquid, gas, or supercritical state depending on the temperature and pressure. In this embodiment, as will be described later, the temperature and pressure of air are controlled so that nitrogen is in a gas or supercritical state.
[0033] 2B is a temperature-pressure diagram of oxygen. Similar to the nitrogen described above, oxygen also changes its phase depending on the temperature and pressure. In this embodiment, the temperature and pressure of the air are controlled so that the oxygen is in a gaseous or supercritical state, as will be described later.
[0034] 2C is a temperature-pressure diagram of carbon dioxide. Similar to the nitrogen and oxygen described above, carbon dioxide also changes its phase state depending on the temperature and pressure. In this embodiment, as will be described later, the temperature and pressure of the air are controlled so that carbon dioxide is in a liquid state.
[0035] Figures 3 and 4 are temperature-pressure diagrams of nitrogen, oxygen, and carbon dioxide. In Figures 3 and 4, the phase changes of nitrogen are shown by solid lines, the phase changes of oxygen by dotted lines, and the phase changes of carbon dioxide by dashed lines. Furthermore, in Figures 3 and 4, the temperature and pressure ranges that make it possible to separate carbon dioxide from air are shown by hatching. In Figure 3, the hatching indicates the region where carbon dioxide is in a liquid phase and nitrogen and oxygen are in a gas phase or supercritical state. In Figure 4, the hatching indicates the region where carbon dioxide is in a liquid phase and nitrogen and oxygen are in a gas phase.
[0036] The temperature and pressure at which phase changes occur differ for nitrogen, oxygen, and carbon dioxide, and in this embodiment, as will be described later, this difference is used to separate carbon dioxide from air.
[0037] 5 is a flowchart showing a carbon dioxide separation method and a fuel synthesis method according to an embodiment. The carbon dioxide separation method and the fuel synthesis method according to this embodiment will be described with reference to FIG. 5 and the above-mentioned figures.
[0038] The carbon dioxide separation method according to this embodiment is a method for separating carbon dioxide from air containing nitrogen, oxygen, and carbon dioxide. In the carbon dioxide separation method according to this embodiment, the temperature and pressure of the air are set to a range in which oxygen and nitrogen are in a gas phase or a supercritical state and carbon dioxide is in a liquid state, and the liquid carbon dioxide is separated from the air. In addition to the carbon dioxide separation method, the fuel synthesis method according to this embodiment includes a step of synthesizing fuel from the carbon dioxide separated from the air.
[0039] In the following description, steps S10 to S12 constitute a carbon dioxide separation method, and these steps plus step S13 constitute a fuel synthesis method.
[0040] In step S10, the calculation control unit 17 adjusts the temperature of the air. Specifically, first, atmospheric air is introduced into the air storage unit 14 shown in Fig. 1, and the air storage unit 14 is sealed. Next, the calculation control unit 17 controls the temperature adjustment unit 11 to adjust the temperature of the air stored in the air storage unit 14 to a predetermined temperature range.
[0041] Furthermore, in step S11, the calculation control unit 17 adjusts the pressure of the air. Specifically, the pressure of the air stored in the air storage unit 14 is adjusted to a predetermined pressure-temperature band by the pressurizing unit 12, which is, for example, a compressor.
[0042] Here, step S10 and step S11 may be executed simultaneously, step S11 may be executed after step S10, or step S11 may be executed after step S10.
[0043] The temperature and pressure of the air in steps S10 and S11 vary depending on the state of nitrogen and oxygen.
[0044] In Figure 3, the hatched area in the temperature-pressure diagram indicates the area where carbon dioxide is in the liquid phase, nitrogen is in the gas phase or supercritical state, and oxygen is in the gas phase or supercritical state. The temperature range in this area is above the solubility line of carbon dioxide and below 31.1°C, which is the critical point of carbon dioxide. The pressure range in this area is also higher than the boiling line of carbon dioxide.
[0045] For example, when the pressure of the air stored in the air storage section 14 is 2 MPa and the temperature is -40°C (P1), carbon dioxide is in the liquid phase, and nitrogen and oxygen are in the gas phase. In this case, the density of nitrogen is 29.6 kg / m 3 and oxygen is 34.2 kg / m 3 and carbon dioxide is 1119 kg / m 3 In this case, the density of the liquid carbon dioxide is much greater than that of the gaseous nitrogen and oxygen, so in a later step this density difference can be used to separate the carbon dioxide from the air.
[0046] When the air pressure stored in the air storage section 14 is 10 MPa and the temperature is 20°C (P2), carbon dioxide is in a liquid phase, and nitrogen and oxygen are in a supercritical state. In this case, the density of nitrogen is 115.0 kg / m 3 and oxygen is 138.7 kg / m 3 and carbon dioxide is 856.3 kg / m 3 In this case, the density of carbon dioxide in the liquid phase is greater than that of nitrogen and oxygen in the supercritical state, so this density difference can be used to separate the carbon dioxide in a later step.
[0047] In Figure 4, the temperature-pressure diagram shows hatched regions where carbon dioxide is in the liquid phase and nitrogen and oxygen are in the gas phase. The temperature range of this region is above the solubility line of carbon dioxide and below -1°C. Here, the upper limit of the temperature range, -1°C, is the temperature of point P3 where the line indicating the critical pressure of nitrogen and the boiling line of carbon dioxide intersect. Furthermore, the pressure range of this region is above the boiling line of carbon dioxide and below 3.4 MPa. Here, the upper limit of the pressure range, 3.4 MPa, is the critical pressure of nitrogen.
[0048] As mentioned above, in such a region (for example, P1), the density of liquid carbon dioxide is much greater than that of gaseous nitrogen and oxygen. Therefore, in a later step, this density difference can be used to separate carbon dioxide.
[0049] In step S12, the calculation and control unit 17 separates the liquid carbon dioxide from the air. Specifically, the temperature and pressure of the air stored in the air storage unit 14 through steps S10 and S11 are in the hatched region in FIG.
[0050] In the hatched region of Fig. 3, nitrogen and oxygen are in the gas phase or supercritical state, and carbon dioxide is in the liquid phase. As mentioned above, when the pressure of the air stored in the air storage section 14 is 2 MPa and the temperature is -40°C, the density of nitrogen is 29.6 kg / m 3 and oxygen is 34.2 kg / m 3 and carbon dioxide is 1119 kg / m 3 Therefore, the density of carbon dioxide is much greater than that of nitrogen and oxygen.
[0051] Therefore, in this step, carbon dioxide can be easily separated from nitrogen and oxygen by utilizing this density difference. Gravitational settling or centrifugation can be used as the separation method. When gravitational settling is used, a discharge section is provided at the bottom of the air storage section 14, and liquid carbon dioxide is extracted from the discharge section and stored in a separate container. When centrifugation is used, the air is rotated using a centrifuge, and carbon dioxide that has moved radially outward is extracted from the air storage section 14 and stored in a separate container.
[0052] In step S13, the calculation and control unit 17 synthesizes fuel from the separated carbon dioxide. Specifically, synthetic fuel is produced from the carbon dioxide separated from the air in step S12. In this step, first, activated water is produced from carbon dioxide and water using a specific photocatalyst. Next, carbon dioxide and seed oil are reacted with the activated water to continuously produce synthetic fuel with the same composition as the seed oil. Here, for example, light oil, heavy oil, kerosene, gasoline, kerosene, etc. can be used as the seed oil.
[0053] The separation of carbon dioxide and fuel synthesis according to this embodiment requires energy. It is desirable to use natural energy (clean energy) obtained from wind power generation, solar power generation, etc. as this energy. In this way, carbon dioxide separation and fuel synthesis can be performed with a reduced burden on the global environment.
[0054] Although the embodiments of the present invention have been described above, the present invention is not limited to these and can be modified within the scope of the present invention. In addition, the above-described embodiments can be combined with each other. [Explanation of symbols]
[0055] 10 Carbon dioxide separator 11 Temperature control section 12 Pressure section 13 Separation part 14 Air reservoir 15 Fuel synthesis department 16 Fuel synthesis device 17 Calculation control unit
Claims
1. An apparatus for separating carbon dioxide from air containing nitrogen, oxygen, and carbon dioxide, a temperature adjustment unit that adjusts the temperature of the air; a pressurizing unit that pressurizes the air; a separation unit that separates the carbon dioxide from the air, the temperature adjustment unit and the pressurization unit set the temperature and pressure of the air to a zone in which the oxygen and the nitrogen are in a gaseous or supercritical state and the carbon dioxide is in a liquid state, The carbon dioxide separation device, wherein the separation section separates the carbon dioxide in a liquid state from the air.
2. 2. The carbon dioxide separation device according to claim 1, wherein the temperature adjustment unit and the pressurization unit adjust the temperature and pressure of the air to a range in which the oxygen and nitrogen are in a gaseous state and the carbon dioxide is in a liquid state.
3. 2. The carbon dioxide separator according to claim 1, wherein the separation section separates the carbon dioxide from the air by gravitational settling or centrifugation.
4. A method for separating carbon dioxide from air containing nitrogen, oxygen, and carbon dioxide, comprising: The temperature and pressure of the air are set to a zone in which the oxygen and the nitrogen are in a gaseous or supercritical state and the carbon dioxide is in a liquid state; A carbon dioxide separation method, comprising separating the carbon dioxide in a liquid state from the air.
5. A fuel cell system comprising the carbon dioxide separation device according to claim 1 and a fuel synthesis unit, The fuel synthesizing device is characterized in that the fuel synthesizing unit synthesizes fuel from the carbon dioxide separated from the air by the carbon dioxide separation device.
6. The carbon dioxide separation method according to claim 4, A method for synthesizing fuel, comprising synthesizing fuel from the carbon dioxide separated from the air.
Citation Information
Patent Citations
Multi-wall catalyst for preparing liquid fuel through carbon dioxide hydrogenation as well as preparation method and application of multi-wall catalyst
CN113351207A
Method for generating power and power plant facility
JP1998132201A
Method and system for supercritical underwater combustion type power generation
JP2000274214A
Oxidation reaction device
JP2000312818A
Operation system of distributed type power supply and its operation method
JP2009077457A