Photochemical Reactor
The photochemical reactor design with a porous carrier and dual flow paths enhances photocatalytic efficiency by eliminating separation and ensuring comprehensive contact between the raw solution and photocatalyst, addressing the limitations of existing reactors.
Patent Information
- Application Number
- JP2023550597
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2023-03-23
- Publication Date
- 2026-02-06
- Estimated Expiration
- 2043-03-23
AI Technical Summary
Existing photochemical reactors require a separation step between the raw material solution and the photocatalyst, and the catalyst layer and aqueous solution contact only at the reactor wall surface, leading to low reaction efficiency.
A photochemical reactor design with a photocatalyst immobilized on a porous carrier, featuring intake and opposite flow paths within the reactor, allowing the raw solution to interact with the photocatalyst from multiple sides, eliminating the need for separation and enhancing reaction efficiency.
The reactor achieves high photocatalytic reaction efficiency by eliminating the need for separation and ensuring comprehensive contact between the raw solution and photocatalyst, thereby increasing the reaction surface area and light utilization.
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Abstract
Description
[Technical Field]
[0001] The present disclosure relates to photochemical reactors for use in photocatalytic reactions. [Background technology]
[0002] In recent years, with the aim of realizing a carbon-neutral society, attention has been focused on "artificial photosynthesis," which reduces carbon dioxide using a photocatalyst and sunlight to extract energy in the form of formic acid or the like. Currently, photochemical reactors used for photocatalytic reactions employ a system in which a photocatalyst carrier is installed inside a tubular reactor and the liquid used in the reaction is circulated through it. Patent Document 1 discloses a water-repellent photocatalytic reaction device that increases the reaction surface area by suspending a granular photocatalyst carrier in an aqueous solution with carbon dioxide bubbles to improve reaction efficiency. Patent Document 2 also discloses a methanol synthesis device that installs a baffle plate inside a reactor with a photocatalyst film on the wall, thereby increasing the contact time between the photocatalyst and the aqueous solution. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Application Publication No. 4-59037 [Patent Document 2] Japanese Patent Application Publication No. 7-33697 Summary of the Invention [Problem to be solved by the invention]
[0004] However, in Patent Document 1, when suspending particles carrying a photocatalyst, it is necessary to separate the raw material solution containing the product from the photocatalyst.In addition, in Patent Document 2, the catalyst layer and the aqueous solution come into contact only at the wall surface of the reactor, resulting in low reaction efficiency.
[0005] The present disclosure has been made to solve the above-mentioned problems, and aims to provide a photochemical reactor that does not require a separation step between the raw material solution and the photocatalyst and achieves high reaction efficiency. [Means for solving the problem]
[0006] The photochemical reactor according to the present disclosure is a photochemical reactor that uses a photocatalytic reaction in which a photocatalyst is irradiated with light and discharges a photocatalytic reaction product, and is provided with an inlet through which a raw material solution dissolving a gas necessary for the photocatalytic reaction flows in, and an outlet through which the photocatalytic reaction product after the photocatalytic reaction is discharged, and the reactor has a light-intake surface that takes in light and an opposite surface opposite to the light-intake surface, and inside the reactor, an intake-side flow path through which the raw material solution that flows in from the inlet flows is formed between the light-intake surface and the opposite surface, and an opposite-side flow path through which the raw material solution that flows in from the inlet flows is also formed between the light-intake surface and the opposite surface. 、 photocatalyst but and a porous carrier on which the porous carrier is immobilized, the porous carrier being disposed so as to be sandwiched between the intake side flow path and the opposite side flow path. The raw solution flowing in the intake flow path and the raw solution flowing in the opposite flow path join together and are then discharged from the outlet. . [Effects of the Invention]
[0007] According to the present disclosure, a photocatalyst is immobilized on a porous carrier. Therefore, a separation process between the raw solution and the photocatalyst is not required. In addition, an intake-side flow path is formed between the porous carrier and the light-intake surface. In the intake-side flow path, a photocatalytic reaction occurs when light is irradiated onto the contact area between the raw solution and the photocatalyst. In addition, in the opposite flow path, a portion of the raw solution passes through the inside of the porous carrier and moves to the intake-side flow path, causing a photocatalytic reaction. In this way, the raw solution is supplied to the photocatalyst from other sides than the light-intake surface side of the porous carrier, thereby increasing the efficiency of the photocatalytic reaction. As described above, the photochemical reactor does not require a separation process between the raw solution and the photocatalyst and can achieve high reaction efficiency. [Brief explanation of the drawings]
[0008] [Figure 1] FIG. 1 is a perspective view showing a photochemical reactor according to a first embodiment. [Figure 2] FIG. 1 is a cross-sectional view showing a photochemical reactor according to a first embodiment. [Figure 3] FIG. 10 is a cross-sectional view showing a photochemical reactor according to a second embodiment. [Figure 4] FIG. 10 is a cross-sectional view showing a photochemical reactor according to a third embodiment. [Figure 5] FIG. 10 is a cross-sectional view showing a photochemical reactor according to a fourth embodiment. DETAILED DESCRIPTION OF THE INVENTION
[0009] Hereinafter, embodiments of the photochemical reactor of the present disclosure will be described with reference to the drawings. Note that the present disclosure is not limited to the embodiments described below. Furthermore, in the following drawings, including FIG. 1, the dimensional relationships between the components may differ from the actual ones. Furthermore, in the following description, terms indicating directions will be used as appropriate to facilitate understanding of the present disclosure, but these terms are for the purpose of explaining the present disclosure and do not limit the present disclosure. Examples of terms indicating directions include "up," "down," "right," "left," "front," and "rear."
[0010] Embodiment 1 FIG. 1 is a perspective view showing a photochemical reactor 10 according to a first embodiment. The photochemical reactor 10 is used for photocatalytic reactions. A photocatalyst carrier is placed inside the tubular reactor, and a liquid used in the reaction is circulated through the reactor. As shown in FIG. 1, the photochemical reactor 10 includes a reaction vessel 11 and a porous carrier 20. The reaction vessel 11 has a hexagonal shape that is elongated in one direction and has a hollow interior. The reaction vessel 11 is formed with an inlet 13 and an outlet 14. The inlet 13 is an opening through which a raw material solution containing dissolved gases necessary for the catalytic reaction flows. Since the gas is dissolved in the raw material solution before flowing into the reaction vessel 11, a gas generator is not required. This eliminates the need for a gas generator in the reaction vessel 11. This reduces the diffusion and reflection of incident light due to bubbles continuously generated in the reaction vessel 11. The raw material solution is, for example, water or triethanolamine. The outlet 14 is an opening through which the reaction product and the raw material solution are discharged. The photocatalytic reaction product 30 generated is a liquid, such as formic acid or ethanol.
[0011] The upper surface of the reaction vessel 11 is a light-intake surface 12. The light-intake surface 12 is a surface that takes in light 40 into the reaction vessel 11. The light-intake surface 12 is a member for introducing light 40 of a wavelength required for a photocatalytic reaction to a photocatalyst in the reaction vessel 11. The light-intake surface 12 is made of, for example, a material that has high transparency to visible light, such as glass, or a material that has high transparency to ultraviolet light, such as quartz. The opposite side of the light-intake surface 12 of the reaction vessel 11 is an opposite surface 16. The opposite surface 16 may be a surface through which the light 40 passes, or a surface through which the light 40 does not pass.
[0012] The porous carrier 20 is a plate-shaped substrate on which a photocatalyst is immobilized. Because the porous carrier 20 is porous, the surface area on which the photocatalyst is supported is large, and the solution can pass through the inside of the carrier. The porous carrier 20 is, for example, porous glass. The diameter of each pore in the porous carrier 20 is preferably 1 μm to 1000 μm. However, the diameter of the pores in the porous carrier 20 may be smaller than 1 μm to increase the surface area. The diameter of the pores in the porous carrier 20 may be larger than 1000 μm to increase the permeation rate of the raw solution. By immobilizing the photocatalyst on the porous carrier 20, it is not necessary to separate the photocatalyst from the reaction product at the outlet 14.
[0013] The porous carrier 20 is provided in a position inside the reaction vessel 11 where an intake-side flow path 12a is formed between the porous carrier 20 and the light-collecting surface 12. The porous carrier 20 is also provided in a position inside the reaction vessel 11 where an opposite-side flow path 16a is formed between the porous carrier 20 and the opposite surface 16. In this way, the porous carrier 20 is fixed to the side of the reaction vessel 11 in a state where it is floating above the light 40-collecting layer and the opposite surface 16.
[0014] Fig. 2 is a cross-sectional view showing the photochemical reactor 10 according to the first embodiment, taken along the line AA in Fig. 1. As shown in Fig. 2, the porous carrier 20 is arranged with the light-collecting surface 12 tilted from the horizontal plane. Specifically, the reaction vessel 11 is tilted so that the height increases from the inlet 13 toward the outlet 14.
[0015] (Photocatalytic reaction) Next, the mechanism of the photocatalytic reaction in the photochemical reactor 10 will be described. In an environment where the light collection surface 12 of the reaction vessel 11 is irradiated with light 40, a raw material solution in which gases such as carbon dioxide necessary for the photocatalytic reaction are dissolved is introduced into the reaction vessel 11 from the inlet 13. In the first embodiment, sunlight is used as the light 40, but light 40 from an artificial light source containing light 40 of a wavelength used for the photocatalytic reaction may also be used. Examples of artificial light sources include metal halide lamps, halogen lamps, fluorescent lamps, incandescent lamps, mercury lamps, and LEDs (Light Emitting Diodes).
[0016] The raw material solution flowing into the reaction tank 11 from the inlet 13 is branched by the plate-shaped porous carrier 20 into two paths: an inlet side flow path 12a that runs from the light-collecting surface 12 side to the outlet 14, and an opposite side flow path 16a that runs from the opposite side 16 of the light-collecting surface 12 to the outlet 14.
[0017] Along the way in the inlet flow path 12a, light 40 is irradiated onto the contact area between the raw solution and the photocatalyst immobilized on the porous carrier 20. This causes a photocatalytic reaction, and the generated photocatalytic reaction product 30 is discharged together with the raw solution from the outlet 14. Furthermore, the water flow sweeps away any air bubbles remaining on the light-intake surface 12 and the porous carrier 20.
[0018] In the opposite flow path 16a, a portion of the raw solution passes through the inside of the porous carrier 20 and flows toward the light-extracting surface 12. The raw solution that has flowed toward the light-extracting surface 12 reacts with the photocatalyst to produce a photocatalytic reaction product 30. The produced photocatalytic reaction product 30 passes through the inlet-side flow path 12a, which runs from the light-extracting surface 12 toward the outlet 14, and is discharged from the outlet 14 together with the raw solution. This allows the raw solution to be supplied to the photocatalyst from sources other than the surface of the opposing porous carrier, and the photocatalytic reaction occurs with high efficiency.
[0019] As described above, according to the first embodiment, the photocatalyst is immobilized on the porous carrier 20. Therefore, a separation process between the raw solution and the photocatalyst is not required. In addition, the porous carrier 20 has an inlet-side flow path 12a formed between it and the light-collecting surface 12. In the inlet-side flow path 12a, a photocatalytic reaction occurs when light 40 is irradiated onto the contact area between the raw solution and the photocatalyst. In the opposite flow path 16a, a portion of the raw solution passes through the inside of the porous carrier 20 and moves to the inlet-side flow path 12a, causing a photocatalytic reaction. In this way, the raw solution is supplied to the photocatalyst from other sides than the light-collecting surface 12 side of the porous carrier 20, thereby increasing the efficiency of the photocatalytic reaction. As described above, the photochemical reactor 10 does not require a separation process between the raw solution and the photocatalyst and can achieve high reaction efficiency.
[0020] Conventionally, water-repellent photocatalytic reaction devices have been known that enlarge the reaction surface area by suspending granular photocatalyst carriers in aqueous solution with carbon dioxide bubbles. However, in practice, the particle size must be very small to suspend the particles with bubbles, which inevitably requires the pore size of the filter that separates the particles to be very small. This reduces the filtration rate, making this difficult to achieve. In contrast, the present embodiment 1 is easy to achieve because it does not require suspension with bubbles.
[0021] Furthermore, the water temperature in the reaction vessel 11 is raised by the light 40, causing the gas dissolved in the raw material solution to turn into bubbles. The bubbles move upward in the reaction vessel 11. In the first embodiment, after the bubbles reach the light-incorporating surface 12 on the upper side of the reaction vessel 11, they move along the inclined light-incorporating surface 12 and remain at the end of the light-incorporating surface 12 on the outlet 14 side. This prevents the light-incorporating surface 12 from being covered with bubbles. This suppresses the reflection or diffusion of incident light by the bubbles, improving the efficiency of irradiating the photocatalyst with light 40.
[0022] As described above, conventionally, water-repellent photocatalytic reaction devices have been known in which the reaction surface area is increased by suspending granular photocatalyst carriers in aqueous solution with carbon dioxide bubbles. However, the carbon dioxide bubbles that are constantly generated may reflect or diffuse incident light, reducing the efficiency of irradiation of the photocatalyst. In contrast, in the present embodiment 1, the light-collecting surface 12 is not covered with bubbles, so the reflection or diffusion of incident light by the bubbles is suppressed, improving the efficiency of irradiation of light 40 to the photocatalyst.
[0023] It is also possible that the amount of bubbles generated in the reaction vessel 11 increases, or that bubbles adhere to and remain on the light-collecting surface 12. In this case, if the bubbles are carbon dioxide, the bubbles can be removed by allowing a basic solution to flow in from the inlet 13.
[0024] Embodiment 2 3 is a cross-sectional view showing a photochemical reactor 10 according to embodiment 2. This embodiment 2 differs from embodiment 1 in that it includes a flow straightening member 50. In this embodiment 2, the same parts as in embodiment 1 are denoted by the same reference numerals and their description will be omitted, and the description will focus on the differences from embodiment 1.
[0025] The flow rectifying member 50 is provided between the opposite surface 16 and the porous carrier 20 and guides the water flow toward the porous carrier 20. As shown in FIG. 3 , the end of the flow rectifying member 50 on the inlet 13 side abuts against the opposite surface 16 of the reaction vessel 11, and the end of the flow rectifying member 50 on the outlet 14 side abuts against the end of the porous carrier 20 on the outlet 14 side. That is, the flow rectifying member 50 is inclined from the bottom to the top of the reaction vessel 11 as it moves from the inlet 13 side to the outlet 14 side. The flow rectifying member 50 reflects the water flow in the opposite flow path 16a toward the porous carrier 20 and introduces the raw solution into the porous carrier 20. This allows the photocatalyst and the raw solution to react with each other efficiently. Although the first embodiment illustrates a case in which the flow rectifying member 50 has a linear shape when viewed from the side, the flow rectifying member 50 may have a bent or curved shape.
[0026] Embodiment 3 4 is a cross-sectional view showing a photochemical reactor 10 according to embodiment 3. This embodiment 3 differs from embodiment 1 in that the reaction vessel 11 is equipped with a recovery section 15. In this embodiment 3, parts common to embodiments 1 and 2 are assigned the same reference numerals and description thereof will be omitted, and the following description will focus on the differences from embodiments 1 and 2.
[0027] The recovery unit 15 is provided on the light-intake surface 12 side of the reaction vessel 11 and recovers bubbles generated inside the reaction vessel 11. As shown in FIG. 4, the recovery unit 15 is provided at the end of the light-intake surface 12 on the outlet 14 side. As described in the first embodiment, the water temperature in the reaction vessel 11 is increased by the light 40, causing gas dissolved in the raw material solution to turn into bubbles. The bubbles move upward in the reaction vessel 11. After reaching the light-intake surface 12, which is the upper side of the reaction vessel 11, the bubbles move along the inclined light-intake surface 12 and reach the end of the light-intake surface 12 on the outlet 14 side. The recovery unit 15 recovers bubbles remaining at the end of the light-intake surface 12 on the outlet 14 side and discharges them to the outside of the reaction vessel 11. This prevents bubbles from accumulating inside the reaction vessel 11. Furthermore, separating the gas recovered by the recovery unit 15 allows the raw material solution to be reused.
[0028] Embodiment 4 5 is a cross-sectional view showing a photochemical reactor 10 according to embodiment 4. This embodiment 4 differs from embodiment 1 in that the porous carrier 20 is inclined. In this embodiment 4, the same parts as those in embodiments 1 to 3 are denoted by the same reference numerals and their explanations are omitted, and the following description will focus on the differences from embodiments 1 to 3.
[0029] As shown in Figure 5, the porous carrier 20 is inclined toward the opposite surface 16 from the inlet 13 toward the outlet 14. The end of the porous carrier 20 on the outlet 14 side abuts against the opposite surface 16 of the reaction vessel 11. That is, the opposite-side flow path 16a dead ends at the end of the porous carrier 20 on the outlet 14 side. Therefore, the raw material solution flowing in the opposite-side flow path 16a is introduced into the porous carrier 20 with high efficiency and reacts with the photocatalyst. Therefore, this fourth embodiment can further increase the efficiency of the photocatalytic reaction. [Explanation of symbols]
[0030] 10 photochemical reactor, 11 reaction vessel, 12 light intake surface, 12a intake side flow path, 13 inlet, 14 outlet, 15 recovery section, 16 opposite surface, 16a opposite side flow path, 20 porous carrier, 30 photocatalytic reaction product, 40 light, 50 straightening member.
Claims
1. In a photochemical reactor that uses a photocatalytic reaction in which a photocatalyst is irradiated with light and a photocatalytic reaction product is discharged, a reaction vessel having an inlet through which a raw material solution having dissolved therein a gas necessary for the photocatalytic reaction flows and an outlet through which the photocatalytic reaction product is discharged after the photocatalytic reaction, the reaction vessel having a light-introducing surface through which the light is taken in and an opposite surface opposite to the light-introducing surface; an intake-side flow path through which the raw material solution flowing in from the inlet flows is formed between the reaction vessel and the light-collecting surface, and an opposite-side flow path through which the raw material solution flowing in from the inlet flows is also formed between the reaction vessel and the opposite surface; and a porous carrier on which the photocatalyst is immobilized; Equipped with the porous carrier is disposed so as to be sandwiched between the intake-side flow path and the opposite-side flow path, A photochemical reactor in which the raw material solution flowing in the intake-side flow path and the raw material solution flowing in the opposite flow path join together and are then discharged to the discharge port.
2. The reaction vessel comprises: The light-collecting surface is disposed in a state inclined from the horizontal plane. The photochemical reactor of claim 1.
3. The water supply system further includes a flow regulating member provided between the opposite surface and the porous carrier, for guiding the water flow toward the porous carrier.
3. The photochemical reactor of claim 1 or 2.
4. The reaction vessel comprises: a recovery unit provided on the light-receiving surface side for recovering bubbles generated inside the reaction vessel; 3. The photochemical reactor of claim 1 or 2.
5. The porous carrier is The inlet is inclined toward the opposite surface from the outlet.
3. The photochemical reactor of claim 1 or 2.
Citation Information
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