Reaction tube, catalytic reactor equipped with said reaction tube, and method for obtaining a fluid product in said catalytic reactor

The multilayer structure tube with non-porous and porous layers, along with plate fins, addresses the challenge of heat removal in catalytic reactors, ensuring uniform temperature distribution and stable chemical reactions.

JP7766397B2Active Publication Date: 2025-11-10MITSUBISHI HEAVY IND LTD
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Patent Information

Application Number
JP2020208656
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2020-12-16
Publication Date
2025-11-10
Estimated Expiration
2040-12-16

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Patent Text Reader

Abstract

To provide a reaction tube that prevents excessive temperature difference from occurring in a longitudinal direction and that is excellent in removal of reaction heat and a production method thereof, and a catalyst reaction device and a catalyst reaction method for making fluid raw materials react in the presence of a catalyst to acquire a fluid product.SOLUTION: A reaction tube includes: a multilayer structure tube which is formed of a cylindrical non-porous layer 2 and a porous layer 1 laminated on the inside thereof, has a fluid inlet and a fluid outlet, and has a reaction tube lumen 3 that provides communication between the fluid inlet and the fluid outlet; and a catalyst carried on the porous layer. A catalyst reaction device includes: a reaction tube; and a heat transfer medium tube having a heat transfer medium tube lumen which has a heat transfer medium inlet and a heat transfer medium outlet and provides communication between the heat transfer medium inlet and the heat transfer medium outlet. Through the fluid inlet, a fluid state raw material flows into the reaction tube lumen. In the reaction tube lumen, the fluid raw material is brought into contact with the catalyst for chemical reaction, and through the fluid outlet, a fluid mixture flows therefrom, the fluid mixture including a fluid product which results from the chemical reaction. A catalyst reaction method is also provided.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present invention provides a reaction tube, a reactor equipped with the reaction tube, Catalytic Reactor and a method for obtaining a fluid product in this catalytic reactor. Regarding. [Background technology]

[0002] Various proposals have been made for catalytic reactors for producing fluid products. For example, Patent Document 1 discloses a catalytic gas phase reaction method in which a catalyst for catalytic gas phase reaction is used by being packed in a reaction tube, the catalyst having a columnar shape, a longitudinal length longer than the inner diameter of the reaction tube, and at least one through-hole in the longitudinal direction is installed at the inlet end of a catalyst layer in the reaction tube, and then a granular catalyst having a shape different from that of the catalyst is packed around and / or behind the catalyst to carry out a reaction.

[0003] Patent Document 2 discloses a catalytic reactor for gas phase reactions that contains a cylindrically shaped catalytic reaction tube, and that is characterized in that the cylindrically shaped catalytic reaction tube has a gradient of catalytic activity in the direction from the inlet to the outlet of the raw material gas of the catalytic reactor.

[0004] Patent Document 3 discloses a hybrid porous pipe having a porous alloy sprayed film on the inside and a porous ceramic sprayed film laminated on top of the porous alloy sprayed film.

[0005] Non-Patent Documents 1 and 2 disclose the application of 3D printing technology to fabricate a metal catalyst reactor. [Prior art documents] [Patent documents]

[0006] [Patent Document 1] Japanese Patent Application Publication No. 2017-209632 [Patent Document 2] Japanese Patent Publication No. 2020-124665 [Patent Document 3] Japanese Patent Application Laid-Open No. 2007-329132 [Non-patent literature]

[0007] [Non-Patent Document 1] Quinhong Wei et al. "Metal 3D printing technology for functional integration of catlytic system" NATURE COMMUNICATIONS | (2020) 11:4098 | https: / / doi.org / 10.1038 / s41467-020-17941-8 | www.nature.com / naturecommunications [Non-patent document 2] "World's first self-catalytic metal catalyst reactor created using 3D printing technology - High-temperature and high-pressure reactions possible, dramatically miniaturizing the plant" JST News Release, August 14, 2020 Summary of the Invention [Problem to be solved by the invention]

[0008] The object of the present invention is to provide a reaction tube and a method for removing reaction heat in a longitudinal direction of the reaction tube, which are excellent in removing reaction heat so as not to cause an excessive temperature difference in the longitudinal direction of the reaction tube and a method for removing reaction heat in a longitudinal direction of the reaction tube. Catalytic Reactor , and In catalytic reactors To obtain a fluid product by chemically reacting a fluid raw material in the presence of a catalyst For those The purpose is to provide the law. [Means for solving the problem]

[0009] In order to solve the above problems, the present invention has been completed, including the following aspects.

[0011] [ 1 a multilayer structure tube comprising a cylindrical non-porous layer and a cylindrical porous layer laminated on the inner surface of the non-porous layer, the multilayer structure tube having a fluid inlet and a fluid outlet and a reaction tube lumen communicating from the fluid inlet to the fluid outlet; a catalyst supported on a porous layer; a plate-shaped porous layer provided convexly from the inner surface of the cylindrical porous layer toward the inner cavity of the reaction tube; With death, The fluid raw material in the reaction tube bore and the heat transfer medium outside the reaction tube exchange heat through the reaction tube wall. A reaction tube. [ 2 ] The plate-shaped porous layer is in a cross shape, [ 1

[0023] The reaction tube according to [Claim 1]. [ 3 ] The plate-shaped porous layer is spirally shaped. 1

[0023] The reaction tube according to [Claim 1]. [ 4 ] the catalyst is supported on the plate-like porous layer, [ 1 〕~〔 3 ] The reaction tube according to any one of the preceding items. [ 5 ] The multilayer structure pipe further has plate fins provided so as to protrude outward from the outer surface thereof, [1] to [ 4 ] The reaction tube according to any one of the preceding items.

[0012] [ 6 ) 〔1〕~〔 5 a reaction tube according to any one of the preceding items. a heat transfer medium pipe having a heat transfer medium inlet and a heat transfer medium outlet, the heat transfer medium pipe having a heat transfer medium pipe lumen communicating from the heat transfer medium inlet to the heat transfer medium outlet, a mechanism in which a fluid raw material flows into the inner lumen of the reaction tube at a fluid inlet, the fluid raw material is brought into contact with a catalyst in the inner lumen of the reaction tube to cause a chemical reaction, and a fluid mixture containing a fluid product obtained by the chemical reaction flows out from the inner lumen of the reaction tube at a fluid outlet; a mechanism for allowing the heat transfer medium to flow into the heat transfer medium tube lumen at a heat transfer medium inlet and exit the first heat transfer medium tube lumen at a heat transfer medium outlet; and a mechanism in which the reaction tubes are inserted into the heat transfer medium tube bores, and the heat transfer medium in the heat transfer medium tube bores exchanges heat with the heat transfer medium in the reaction tube bores via the reaction tube wall; A reactor is provided. Catalytic reactor.

[0013] [ 7a plurality of reaction tubes each having a plate fin provided so as to protrude outward from the outer surface of the multi-layer structure tube, each reaction tube being arranged parallel to the longitudinal direction of the heat transfer medium tube and being connected to an adjacent reaction tube via the plate fin, 6 The catalytic reaction device according to any one of the preceding claims. [ 8 a multilayer structure tube comprising a cylindrical non-porous layer and a cylindrical porous layer laminated on the inner surface of the non-porous layer, the multilayer structure tube having a fluid inlet and a fluid outlet and a reaction tube lumen communicating from the fluid inlet to the fluid outlet, and a catalyst supported on the porous layer; a heat transfer medium pipe having a heat transfer medium inlet and a heat transfer medium outlet, the heat transfer medium pipe having a heat transfer medium pipe lumen communicating from the heat transfer medium inlet to the heat transfer medium outlet, a mechanism in which a fluid raw material flows into the inner lumen of the reaction tube at a fluid inlet, the fluid raw material is brought into contact with a catalyst in the inner lumen of the reaction tube to cause a chemical reaction, and a fluid mixture containing a fluid product obtained by the chemical reaction flows out from the inner lumen of the reaction tube at a fluid outlet; a mechanism for allowing the heat transfer medium to flow into the heat transfer medium tube lumen at a heat transfer medium inlet and exit the first heat transfer medium tube lumen at a heat transfer medium outlet; and a mechanism in which the reaction tubes are inserted into the heat transfer medium tube bores, and the heat transfer medium in the heat transfer medium tube bores exchanges heat with the heat transfer medium in the reaction tube bores via the reaction tube wall; reactor Equipped with A catalytic reaction device comprising a plurality of reaction tubes each having plate fins provided so as to protrude outward from the outer surface of the multi-layer structure tube, each reaction tube being arranged parallel to the longitudinal direction of a heat transfer medium tube and being connected to an adjacent reaction tube via the plate fins.

[0014] [ 9 〕 〔 6 〕~〔 8 In the catalytic reaction apparatus according to any one of supplying a fluid feedstock into the reactor tube lumen at a fluid inlet; a heat transfer medium is supplied to the heat transfer medium tube lumen at the heat transfer medium inlet, flows through the heat transfer medium tube lumen, and is discharged from the heat transfer medium tube lumen at the heat transfer medium outlet, thereby controlling the temperature of the contents in the reaction tube lumen and carrying out a chemical reaction; Discharging a fluid mixture containing a fluid product obtained by the chemical reaction from the reaction tube lumen at a fluid outlet. Including, A method for obtaining a fluid product.

[0015] [ 10 ] The fluid raw material contains hydrogen and carbon dioxide, and the fluid product contains carbon monoxide, methanol, or methane, [ 9 ] The method described in [Effects of the Invention]

[0017] In a reactor tube packed with a granular catalyst, the granular catalyst has a lower thermal conductivity than the tube wall, so the efficiency of heat transfer from the granular catalyst located far from the tube wall is low. Also, it is not easy to pack the granular catalyst into a tube with a small inner diameter. On the other hand, the reaction tube of the present invention can directly transfer the reaction heat to the non-porous layer laminated on the catalyst-loaded porous layer, and therefore has excellent heat removal properties, and excessive temperature differences (hot spots) are unlikely to occur in the longitudinal direction. As a result, problems such as catalyst deterioration at hot spots can be prevented. 。 The catalytic reaction apparatus and catalytic reaction method of the present invention can uniformly control the temperature distribution within a reaction tube within a predetermined range, and can stably perform a chemical reaction of a fluid raw material in the presence of a catalyst under a desired pressure over a long period of time to obtain a fluid product. The present invention is preferably used in chemical reactions that utilize CO2 to produce methane gas and water. [Brief explanation of the drawings]

[0018] [Figure 1] FIG. 1 is a cross-sectional view showing an example of a reaction tube of the present invention. [Figure 2]FIG. 2 is a cross-sectional view showing another example of the reaction tube of the present invention. [Figure 3] FIG. 2 is a cross-sectional view showing another example of the reaction tube of the present invention. [Figure 4] FIG. 2 is a cross-sectional view showing another example of the reaction tube of the present invention. [Figure 5] FIG. 5 is a longitudinal cross-sectional view of the reactor shown in FIG. [Figure 6] FIG. 1 is a vertical cross-sectional view showing an example of a reactor of the present invention. [Figure 7] FIG. 1 is a perspective view showing an example of the appearance of the inside of a reactor of the present invention (with the end plate removed). [Figure 8] FIG. 8 is a cross-sectional view of the reactor shown in FIG. 7. [Figure 9] FIG. 1 is a diagram showing an example of a reaction tube and plate fins provided thereon in a reactor of the present invention. [Figure 10] 1 is a diagram showing an example of a catalytic reaction device of the present invention. DETAILED DESCRIPTION OF THE INVENTION

[0019] The present invention will be described with reference to the drawings, but the present invention is not limited to the embodiments shown in the drawings.

[0020] The reaction tube of the present invention comprises a multi-layer structure tube and a catalyst.

[0021] The multilayer tube comprises a cylindrical non-porous layer 2 and a cylindrical porous layer 1 laminated on the inner surface thereof. The multilayer tube has a fluid inlet and a fluid outlet, and a reaction tube lumen 3 that communicates from the fluid inlet to the fluid outlet. The cross section of the multilayer tube cut perpendicular to the longitudinal direction can be, for example, circular, oval, elliptical, oval, rounded rectangle, or rectangle. From the viewpoints of pressure resistance and weight reduction, a circular shape is preferable (see, for example, Figure 1). The inner and outer diameters of the multilayer tube can be appropriately designed depending on the reaction scale, strength, pressure resistance, etc. The inner and outer diameters are values ​​(equivalent diameters) defined by 4A / L, where A is the area of ​​the part where the fluid flows in the cross section perpendicular to the longitudinal direction, and L is the circumferential length (wetted perimeter) of the fluid in contact with the pipe. The fluid is a liquid, gas, or gas-liquid mixture, preferably a gas.

[0022] The porous layer is a layer with a structure having a large number of pores. The porous layer preferably has pores (communicating pores) through which a fluid can pass from one side to another. The porous layer does not need to have all communicating pores; as long as it has a pore volume large enough to accommodate a fluid, it may have dead-end pores. The porous layer serves as a catalyst carrier, and can be made of a metal, a ceramic, or other suitable material depending on the chemical reaction to be carried out in the reaction tube. From the viewpoint of thermal conductivity, the porous layer is preferably made of a metal. The thickness of the porous layer is not particularly limited, but is, for example, 0.1 to 2.0 mm. The relative density, porosity, open porosity, effective porosity, pore size distribution, and the like of the porous layer can be appropriately set depending on the chemical reaction to be carried out in the reaction tube. For example, the relative density of the porous layer is preferably 20% to 80%. The relative density (density index) is defined by the following formula: Relative density [%] = apparent density / true density × 100 The true density is the density when only the volume occupied by the solid itself is used as the volume for density calculation, and can be calculated by using the density of the metal bulk as the true density or by using the pycnometer method. The apparent density is the density when the volume of the solid itself and internal voids is used as the volume, and can be calculated by the Archimedes method. The bulk density is the density when the volume of the solid itself, pores, and internal voids is used as the volume, and can be calculated by a dimensional method using a vernier caliper or micrometer.

[0023] The non-porous layer is a layer with a dense or dense structure that does not substantially have any interconnecting pores. The non-porous layer substantially blocks fluids, preventing leakage of the fluid. The non-porous layer may have voids (internal voids) enclosed within the layer, as long as the effects of the present invention are achieved. For example, the relative density of the non-porous layer is preferably 99% or more, and most preferably 100%. The non-porous layer can be appropriately selected from those made of metal, ceramics, etc. From the viewpoint of thermal conductivity, the non-porous layer is preferably made of metal. The thickness of the non-porous layer is not particularly limited, but is, for example, 0.1 to 2.0 mm. Furthermore, from the viewpoint of thermal expansion, the porous layer and the non-porous layer are preferably made of the same material.

[0024] The transition of the pore ratio from the porous layer to the non-porous layer may be stepwise or gradational, and the ratio of the thickness of the porous layer to the thickness of the non-porous layer is preferably 1 / 50 to 50 / 1, more preferably 1 / 30 to 10 / 1, and even more preferably 1 / 10 to 2 / 1.

[0025] The catalyst is supported on the porous layer. The catalyst can be appropriately selected depending on the chemical reaction to be carried out in the reaction tube. For example, in the methanation reaction of carbon dioxide or carbon monoxide, Ni-based catalysts, platinum group metal-based catalysts, other noble metal-based catalysts, etc. can be used. Specific examples of methanation catalysts include nickel aluminate (NiAl x O y ), Ru / NiAl x O y, Ru / Al2O3, Ru / TiO2, Ni / TiO2, Ru-Ni / TiO2, etc. Specific examples of CO selective oxidation catalysts include Ru / Al2O3, Ru / C, Rh porphyrin / C, Co x Examples include Fe2O, Co3O4, Cu / CeO2-ZrO2, Ni / CeO2-ZrO2, Co / CeO2-ZrO2, Fe / CeO2-ZrO2, Pt / Al2O3, CuMn2O4, CuZnO, Pt / SiO2, Pd / Al2O3, Pt / SnO2, Pd / CeO2, Pt / TiO2, PdCl2-CuCl2 / C, Au / TiO2, and Au / Fe2O3.

[0026] The method for supporting the catalyst on the porous layer is not particularly limited. For example, the catalyst can be supported by contacting an aqueous solution or dispersion of the components constituting the catalyst (catalyst components) with the porous layer. The contact of the aqueous solution or dispersion of the catalyst components with the porous layer can be carried out by, for example, immersing a reaction tube equipped with a porous layer in the aqueous solution or dispersion of the catalyst components, or by flowing the aqueous solution or dispersion of the catalyst components through a reaction tube equipped with a porous layer. After contact, heat treatment (e.g., drying, calcination, etc.) can be carried out as necessary.

[0027] Another embodiment of the reaction tube of the present invention further comprises a plate-shaped porous layer 4 provided in a convex shape from the inner surface of the cylindrical porous layer toward the lumen of the reaction tube (e.g., Fig. 2). The shape of the plate-shaped porous layer is not particularly limited. For example, in another embodiment of the reaction tube of the present invention, the plate-shaped porous layer 5 has a cross shape (e.g., Fig. 3). In another embodiment of the reaction tube of the present invention, the plate-shaped porous layer 6 has a spiral shape (e.g., Figs. 4 and 5). The plate-shaped porous layer contributes to controlling the flow of fluid, increasing the amount of catalyst supported, increasing the contact area between the fluid and the porous layer, etc.

[0028] Another embodiment of the reaction tube of the present invention further comprises plate fins 11 provided so as to protrude outward from the outer surface of the multilayer structure tube. The plate fins may be provided so that the plate surfaces are parallel to the longitudinal direction of the multilayer structure tube, or so that the plate surfaces are spiral, or so that the plate surfaces are non-parallel (for example, perpendicular) to the longitudinal direction of the multilayer structure tube.

[0029] In another embodiment of the reaction tube of the present invention, plate fins provided so as to protrude outward from the outer surface of the multilayer structure tube have ends connected to the outer surface of another adjacent multilayer structure tube. For example, as shown in Fig. 8, plate fins 11 are provided so that the plate surfaces are parallel to the longitudinal direction of the multilayer structure tube (reaction tube 10), and the ends of the plate fins 11 are connected to the outer surface of another adjacent multilayer structure tube (reaction tube 10). This makes it possible to suppress vibration of the reaction tube, control the flow of the heat transfer medium, and promote the release of reaction heat. When the reaction tube 10 is adjacent to the inner surface of the heat transfer medium tube 12, the ends of the plate fins provided so as to protrude outward from the outer surface of the multilayer structure tube (reaction tube 10) may be connected to the inner surface of the heat transfer medium tube. From the viewpoint of thermal expansion, the plate fins are preferably made of the same material as the reaction tube.

[0030] The plate fins may be plate-shaped with or without holes. Plate fins with holes can contribute to controlling the flow of the heat transfer medium, reducing dead space, and increasing the contact area with the heat transfer medium through the holes. The holes are not limited to an oval shape as shown in FIG. 8, and can be of various shapes, and can be provided in appropriate locations depending on the purpose. Furthermore, the plate fins may be made of either a non-porous material or a porous material.

[0031] The catalytic reaction apparatus or gas-phase catalytic reaction apparatus of the present invention comprises a reactor containing the reaction tube of the present invention and a heat transfer medium tube.

[0032] One embodiment of the reactor used in the present invention preferably has a plurality of reaction tubes. Each reaction tube is preferably arranged such that its longitudinal direction is parallel to the longitudinal direction of the heat transfer medium tube. In addition, each reaction tube may be mutually connected to an adjacent reaction tube via a plate fin. All or some of the plurality of reaction tubes may be the reaction tube of the present invention, but it is preferred that all of the reaction tubes are the reaction tube of the present invention.

[0033] The heat transfer medium pipe 12 has a heat transfer medium inlet 16 and a heat transfer medium outlet 17, and a heat transfer medium pipe lumen 13 that communicates from the heat transfer medium inlet to the heat transfer medium outlet. The cross section of the heat transfer medium pipe cut perpendicular to the longitudinal direction can be, for example, circular, oval, elliptical, oval, rounded rectangle, or rectangle. From the viewpoints of pressure resistance and weight reduction, a circular shape is preferred.

[0034] The reactor used in the present invention has a mechanism in which fluid raw materials flow into the reaction tube lumen at a fluid inlet, the fluid raw materials are brought into contact with a catalyst in the reaction tube lumen to cause a chemical reaction, and a fluid mixture containing a fluid product obtained by the chemical reaction flows out from the reaction tube lumen at a fluid outlet, and a mechanism in which a heat transfer medium flows into the heat transfer medium tube lumen at a heat transfer medium inlet and flows out from the first heat transfer medium tube lumen at a heat transfer medium outlet, and the reaction tube is inserted into the heat transfer medium tube lumen, and the heat transfer medium in the heat transfer medium tube lumen exchanges heat with the heat transfer medium in the reaction tube lumen via the reaction tube wall.

[0035] The fluid inlet 10a is distinguished from a heat transfer medium inlet 16 or a heat transfer medium outlet 17, and a fluid raw material flows into the inner cavity of the reaction tube at the fluid inlet. The distinction between the fluid inlet and the heat transfer medium inlet or the heat transfer medium outlet can be made, for example, by a plate 25 that holds the end of the reaction tube on the fluid inlet side.

[0036] Upstream of the reactor, devices for preparing the fluid raw material, such as a mixing mechanism for mixing the components of the fluid raw material in a predetermined ratio, tanks for storing the components of the fluid raw material, a compressor 31, a heat exchanger 32, etc., can be installed. When the raw material is in a liquid state, such as liquefied carbon dioxide, a vaporizer 34 or the like can be provided to safely vaporize it. The components constituting the fluid raw material can be appropriately selected depending on the chemical reaction to be performed in the reactor; for example, the fluid raw material used in the methanation reaction of carbon dioxide contains at least hydrogen gas and carbon dioxide gas. The inflow rate of the fluid raw material into the reaction tube lumen can be appropriately set depending on the chemical reaction to be performed in the reactor.

[0037] The heat transfer medium flows into the heat transfer medium tube lumen 13 through the heat transfer medium inlet. The heat transfer medium is not particularly limited as long as it maintains its fluidity and does not change in quality within the temperature range required for the desired chemical reaction. Specific examples of heat transfer media include polyhydric alcohols such as glycerin and polyglycol; phenols and phenolic ethers such as anisole, diphenyl ether, and phenol; polyphenyls such as terphenyls, and chlorinated benzenes and polyphenyls such as o-dichlorobenzene and polychloropolyphenyls; silicate esters such as tetraallyl silicate; fractionated tar and petroleum products such as naphthalene derivatives and mineral oil; nitrates and nitrites (heat transfer salts) such as sodium nitrate, sodium nitrite, and potassium nitrate; silicones; fluorine compounds; glycols; molten metals and alloys such as sodium metal, potassium metal, lead metal, a Pb-bismuth eutectic mixture, and a sodium-potassium alloy. The pressure of the heat transfer medium flowing through the heat transfer medium tube lumen 13 and the pressure of the heat transfer medium flowing through the reaction tube lumen 3 are not particularly limited, but in order to reduce the thickness of the non-porous layer from the viewpoint of heat transfer, it is preferable that the difference between the two pressures is less than the pressure resistance strength of the non-porous layer.

[0038] The arrangement of the heat transfer medium inlet and the heat transfer medium outlet is not particularly limited, but they are preferably arranged so that the heat transfer medium can easily flow in a direction perpendicular to the longitudinal direction of the reaction tube. By providing partition plates alternately on the left and right sides of the inner surface of the heat transfer medium tube, the flow of the heat transfer medium can be made to meander. Furthermore, by providing partition plates spirally along the inner surface of the heat transfer medium tube, the flow of the heat transfer medium can be made to swirl. The partition plates may have holes through which the reaction tubes can pass so as to hold the middle parts of the reaction tubes.

[0039] The fluid outlet 10b is distinguished from the heat transfer medium inlet 16 or the heat transfer medium outlet 17, and the fluid mixture containing the fluid product flows out of the reaction tube lumen 3 at the fluid outlet. The distinction between the fluid outlet and the heat transfer medium inlet or the heat transfer medium outlet can be made, for example, by a plate 26 that holds the end of the reaction tube on the fluid outlet side. The heat transfer medium flows out of the heat transfer medium tube lumen at the heat transfer medium outlet. The flowed-out heat transfer medium can be recycled.

[0040] The fluid mixture flowing out from the fluid outlet may contain, in addition to the fluid product, unreacted fluid raw material, fluid by-products, etc. For example, the fluid product obtained in the methanation reaction of carbon dioxide is methane, and the fluid by-product is water.

[0041] The reaction tube 10 is inserted into the heat transfer medium tube lumen 13, and the heat transfer medium in the heat transfer medium tube lumen can exchange heat with the fluid in the reaction tube lumen 3 through the non-porous layer and porous layer of the reaction tube. From the viewpoint of heat exchange efficiency, the reaction tube preferably has a plate-shaped porous layer protruding inward from the inner surface of the reaction tube wall. Also, the reaction tube preferably has plate fins protruding outward from the outer surface of the reaction tube wall.

[0042] Generally, in a tubular reactor, the temperature distribution in the flow direction of the reaction tube is likely to be non-uniform. In a chemical reaction that generates a large amount of heat, hot spots may occur. It is desirable to suppress the occurrence of hot spots and to make the temperature distribution in the flow direction of the reaction tube uniform. The heat transfer medium inlet can be located near a portion where hot spots may occur, or the heat transfer medium tube lumen can be divided by a partition plate and a heat transfer medium inlet and a heat transfer medium outlet can be provided in each division, so that the temperature of each heat transfer medium flowing through the divided heat transfer medium tube lumen can be relatively lower on the side closer to the portion where hot spots may occur. Furthermore, by providing more plate fins near the portion where hot spots may occur and increasing the amount of heat transfer in that portion, the temperature distribution in the flow direction of the reaction tube can be made uniform. The plate fins may be provided only in a portion of the catalyst area closer to the fluid inlet, only in a portion of the catalyst area closer to the fluid outlet, or throughout the entire catalyst area.

[0043] The catalytic reactor or gas-phase catalytic reactor of the present invention is not particularly limited by its manufacturing method. For example, it can be manufactured by preparing a reaction tube, a heat transfer medium tube, and accessories, and assembling them by welding, screwing, or the like.

[0044] A reaction tube, a heat transfer medium tube, an attachment, or a reactor having a complex shape can be manufactured by a method including forming a three-dimensional object by stacking cross-sectional shapes based on 3D data thereof.

[0045] The 3D data may be 3D shape data of the target part. The 3D shape data can be designed using 3D CAD. The 3D data may be, for example, STL (Stereolithography) data obtained by converting the 3D shape data. STL data represents a three-dimensional shape as a collection of small triangles (polygons).

[0046] The formation (shaping) of three-dimensional objects by laminating cross-sectional shapes can be performed using powder bed fusion (PBF), metal deposition, fluid extrusion deposition (FDM), liquid metal inkjet printing, binder jet printing, and hybrid methods that perform cutting during additive manufacturing by PBF. Of these, powder bed fusion (PBF) and metal deposition are preferred.

[0047] The powder bed fusion method involves spreading a layer of material powder and melting and solidifying the area to be shaped using a laser or electron beam as a heat source. The material powder is spread over the surface and then repeatedly melted and solidified to create the shape. After the shaping is complete, the unsolidified powder is removed to extract the shaped object.

[0048] The powder bed fusion method includes a laser beam heat source method and an electron beam heat source method.

[0049] The powder bed laser beam heat source method uses a laser beam to irradiate a spread-out material powder, melting and solidifying it or sintering it to create layered manufacturing. With the laser beam heat source method, melting and solidifying is usually done in an inert atmosphere such as nitrogen. With the laser beam heat source method, positioning when irradiating the laser is done by changing the angle of a mirror.

[0050] The powder bed / electron beam heat source method uses an electron beam to irradiate and collide a spread of material powder in a high vacuum, converting kinetic energy into heat and melting the powder. The electron beam heat source method typically melts and solidifies in a vacuum. The electron beam heat source method uses a magnetic field lens to change the direction of the electron beam. As a result, the electron beam heat source method allows for high-speed positioning.

[0051] The metal deposition method is a molding method in which molten metal material is layered and solidified in a predetermined location. The metal deposition method does not require the removal of powder after molding is complete.

[0052] Metal deposition methods include a laser beam heat source method using metal powder as the material, and an arc discharge method using alloy wire as the material.

[0053] The metal deposition laser beam heat source method sprays metal powder from a nozzle and simultaneously irradiates it with laser light, supplying the metal powder to a molten pool where it solidifies and forms a shape. Three-dimensional shapes are drawn by moving the melting nozzle or stage. By switching the metal powder supply path, dissimilar metals can be formed. The high laser output makes it suitable for high-speed forming.

[0054] The metal deposition arc discharge method melts metal wire using arc discharge at the tip of the wire and then layers it to create a shape. The equipment and material costs are relatively low, and high-speed modeling is possible.

[0055] After shaping, the product can be heat-treated to relieve stress, improve strength, etc. The conditions for the heat treatment, such as temperature, time, and atmosphere, can be appropriately set depending on the metal material used, etc.

[0056] In one specific embodiment of the method for producing a reaction tube of the present invention, a spread material powder is irradiated with a laser or electron beam so that the irradiation of the portion corresponding to the non-porous layer is stronger than the irradiation of the portion corresponding to the porous layer, thereby forming a multilayer structure plate consisting of an annular non-porous layer and an annular porous layer laminated therein, and this is repeated to obtain a multilayer structure tube consisting of a cylindrical non-porous layer and a cylindrical porous layer laminated therein, having a fluid inlet and a fluid outlet, and having a reaction tube lumen communicating from the fluid inlet to the fluid outlet, and having a catalyst supported on the porous layer. The material powder can be a metal powder or a powder of an inorganic compound such as an oxide, carbide, nitride, or boride.

[0057] The method for obtaining a fluid product of the present invention includes, in the catalytic reaction apparatus of the present invention, supplying a fluid raw material into the reaction tube lumen at a fluid inlet, supplying a heat transfer medium into the heat transfer medium tube lumen at the heat transfer medium inlet, causing the heat transfer medium to flow through the heat transfer medium tube lumen and discharging it from the heat transfer medium tube lumen at a heat transfer medium outlet, thereby performing a chemical reaction while controlling the temperature of the contents in the reaction tube lumen, and discharging a fluid mixture containing the fluid product obtained by the chemical reaction from the reaction tube lumen at a fluid outlet.

[0058] In a method for producing CO (carbon monoxide), methanol, or methane, a gas containing CO2 (carbon dioxide) and H2 (hydrogen) is used as a fluid raw material, and a reduction reaction of CO2 is carried out. The amount of gas containing CO2 and H2 to be introduced can be appropriately set depending on the reaction rate, the volume of the reaction tube lumen, etc. Depending on the ratio of CO2 to H2, the reduction reaction of CO2 proceeds as follows: CO2 + H2 → CO + H2O CO2 + 3H2 → CH3OH + H2O CO2 + 4H2 → CH4 + 2H2O

[0059] The catalytic reactor and method for obtaining a fluid product of the present invention can be preferably used for C1 chemical synthesis methods other than the method for producing CO (carbon monoxide), methanol, or methane from a gas containing CO2 (carbon dioxide) and H2 (hydrogen). Examples of C1 chemical synthesis methods include a method for producing carbon monoxide and hydrogen by reacting methane with water (water vapor), a method for producing carbon monoxide and hydrogen by reacting methane with carbon dioxide, a method for producing carbon dioxide and hydrogen by reacting carbon monoxide with water, a method for producing carbon dioxide and hydrogen by reacting methane with water, a method for producing methane and carbon dioxide by reacting carbon monoxide with hydrogen, a method for producing methanol by reacting carbon monoxide with hydrogen, a method for producing acetone and water by reacting carbon monoxide with hydrogen, and a method for producing carbon monoxide and hydrogen, ethylene and water, or methanol by reacting methane with oxygen.

[0060] In the present invention, the products (CO (carbon monoxide), methanol, or methane) and unreacted materials (mainly CO) obtained by the reduction reaction of CO can be separated and purified. Examples of separation and purification methods include membrane separation, adsorption separation, absorption separation, distillation separation, and cryogenic separation. For the separation and purification of methane, membrane separation is preferred from the viewpoints of separation selectivity, separation speed, and inexpensive, compact equipment. The unreacted materials (mainly CO) and low-concentration methane obtained in the separation and purification of methane can be used as fluid raw materials in the above-mentioned methane production method. Because carbon monoxide is toxic to humans, it is preferable to treat the methane so that the carbon monoxide concentration is 30 ppm or less. Methods for reducing the carbon monoxide concentration include, for example, converting carbon monoxide to methane by a CO methanation reaction, converting carbon monoxide to carbon dioxide by a CO selective oxidation reaction, and adsorbing or absorbing carbon dioxide using an adsorbent or absorbent.

[0061] Furthermore, the methane obtained by the separation and purification can be supplied as fuel to a gas turbine, which can then generate electricity. The combustion exhaust gas from a gas turbine usually contains carbon dioxide, and can be used as a fluid raw material in the above-mentioned methane production method.

[0062] The present invention can be used in various chemical reactions. The present invention is useful for utilizing hydrogen produced by water electrolysis, utilizing carbon dioxide produced by human or animal respiration or by fuel combustion, producing water, or producing methane as a fuel. The present invention can also be used in space stations, spacecraft, rockets, etc.

[0063] Example 324 multilayer structure tubes (reaction tubes 10) each having a length of 300 mm, an outer diameter of 3.9 mm, and an inner diameter of 3.0 mm, each consisting of a cylindrical metallic non-porous layer and a cylindrical metallic porous layer laminated on the inside of the non-porous layer, were inserted into the bore of a SUS316 circular tube (heat transfer medium tube 12) having a length of 300 mm, an outer diameter of 114.3 mm, and a thickness of 2.1 mm. Plate fins were installed between adjacent multilayer structure tubes to connect them and arrange them parallel to the longitudinal direction of the heat transfer medium tubes, as shown in Figure 8, and fixed with holding plates 25 and 26. CO2 methanation catalyst was impregnated into the porous layer at 300 g / m. 2 The porous layer was loaded with 0.85 g of the catalyst (0.85 g per reactor tube). The holding plates 25 and 26 were sealed with end plates each having a reactor fluid inlet 9a and a reactor fluid outlet 9b. A heat transfer medium inlet 16 and a heat transfer medium outlet 17 were provided on the side of the heat transfer medium tube 12. Thermocouples were installed at predetermined intervals in the porous layer.

[0064] A heat transfer medium (product name: Barreltherm 400, boiling point: 390°C) was supplied from the heat transfer medium inlet 16 to the inner lumen of the heat transfer medium tube at a pressure of less than 0.1 MPa and discharged from the inner lumen of the heat transfer medium tube through the heat transfer medium outlet 17, and the temperature at the reaction tube fluid inlet 10a was adjusted to 330°C. The supply flow rate of the heat transfer medium was 50 L / min on average. A fluid feedstock of 20 parts by volume of carbon dioxide and 80 parts by volume of hydrogen was added to 5.0 Nm 3 / h was supplied from the reactor fluid inlet 9a through the reactor tube fluid inlet 10a to the reactor tube lumen 3. The fluid mixture passed through the reactor tube fluid outlet 10b and was discharged from the reactor fluid outlet 9b. The methanation conversion rate of carbon dioxide was 82%. The maximum temperature of the porous layer of the reactor tube was 333°C. The temperature difference in the longitudinal direction of the reactor tube was within 3°C.

[0065] Comparative Example A SUS316 circular tube with an inner diameter of 3 mm and a length of 300 mm was filled with a uniform mixture of granular CO2 methanation catalyst with a particle size of 1 to 2 mm and granular alumina with a particle size of 1 to 2 mm at a volume ratio of 1:1 to obtain a reaction tube. The amount of CO2 methanation catalyst was 0.85 g per reaction tube. A carbon dioxide methanation reaction was carried out under the same conditions as in Example 1, except for using this reaction tube. The carbon dioxide methanation reaction rate was 80%. The maximum temperature of the porous layer of the reaction tube was 380°C. The temperature difference along the longitudinal direction of the reaction tube was within 50°C.

[0066] (Other embodiments) The present invention can be applied to various chemical engineering devices such as instrumentation, pipes, tanks, columns, etc., as long as they have the above-described characteristics. Furthermore, it will be understood by those skilled in the art that modifications, substitutions, additions, and omissions are also included within the scope of the present invention, provided that they do not deviate from the gist of the present invention. [Explanation of symbols]

[0067] 1: Cylindrical porous layer 2: Cylindrical non-porous layer 3: Reaction tube lumen 4, 5, 6: Plate-shaped porous layer 10: Reaction tube 10a: Reactor tube fluid inlet 10b: Reaction tube fluid outlet 11: Plate fin 12: Heat transfer medium tube 16: Heat transfer medium inlet 17: Heat transfer medium outlet 13: Heat transfer medium tube bore 20: Reactor 9a: Reactor fluid inlet 9b: Reactor fluid outlet 25:Fluid inlet side retaining plate 26:Fluid outlet side retaining plate 30: Catalytic reactor 31: Compressor 32: Heat exchanger 34: Vaporizer 35: Heat exchanger 38: Gas-liquid separator 21:Liquid outflow pipe 39: Gas outflow pipe

Claims

1. a multilayer structure tube comprising a cylindrical non-porous layer and a cylindrical porous layer laminated on the inner surface of the non-porous layer, the multilayer structure tube having a fluid inlet and a fluid outlet and a reaction tube lumen communicating from the fluid inlet to the fluid outlet; a catalyst supported on a porous layer; a plate-shaped porous layer provided convexly from the inner surface of the cylindrical porous layer toward the inner cavity of the reaction tube; and A reaction tube in which heat is exchanged between a fluid raw material in the inner cavity of the reaction tube and a heat transfer medium outside the reaction tube through the reaction tube wall.

2. 2. The reaction tube according to claim 1, wherein the plate-like porous layer has a cross shape.

3. 2. The reaction tube according to claim 1, wherein the plate-shaped porous layer has a spiral shape.

4. 4. The reaction tube according to claim 1, wherein the catalyst is supported on the plate-like porous layer.

5. 5. The reaction tube according to claim 1, further comprising plate fins provided so as to protrude outward from the outer surface of the multi-layer structure tube.

6. The reaction tube according to any one of claims 1 to 5, a heat transfer medium pipe having a heat transfer medium inlet and a heat transfer medium outlet, the heat transfer medium pipe having a heat transfer medium pipe lumen communicating from the heat transfer medium inlet to the heat transfer medium outlet, a mechanism in which a fluid raw material flows into the inner lumen of the reaction tube at a fluid inlet, the fluid raw material is brought into contact with a catalyst in the inner lumen of the reaction tube to cause a chemical reaction, and a fluid mixture containing a fluid product obtained by the chemical reaction flows out from the inner lumen of the reaction tube at a fluid outlet; a mechanism for allowing the heat transfer medium to flow into the heat transfer medium tube lumen at a heat transfer medium inlet and exit the first heat transfer medium tube lumen at a heat transfer medium outlet; and a mechanism in which the reaction tubes are inserted into the heat transfer medium tube bores, and the heat transfer medium in the heat transfer medium tube bores exchanges heat with the heat transfer medium in the reaction tube bores via the reaction tube wall; A reactor is provided. Catalytic reactor.

7. 7. The catalytic reaction apparatus according to claim 6, wherein a plurality of reaction tubes are provided with plate fins protruding outward from the outer surface of the multi-layer structure tube, and each reaction tube is arranged parallel to a longitudinal direction of the heat transfer medium tube and is connected to an adjacent reaction tube via the plate fins.

8. a reaction tube comprising: a multilayer structure tube consisting of a cylindrical non-porous layer and a cylindrical porous layer laminated on the inner surface of the non-porous layer, the multilayer structure tube having a fluid inlet and a fluid outlet and a reaction tube lumen communicating from the fluid inlet to the fluid outlet; and a catalyst supported on the porous layer; a heat transfer medium pipe having a heat transfer medium inlet and a heat transfer medium outlet, the heat transfer medium pipe having a heat transfer medium pipe lumen communicating from the heat transfer medium inlet to the heat transfer medium outlet, a mechanism in which a fluid raw material flows into the inner lumen of the reaction tube at a fluid inlet, the fluid raw material is brought into contact with a catalyst in the inner lumen of the reaction tube to cause a chemical reaction, and a fluid mixture containing a fluid product obtained by the chemical reaction flows out from the inner lumen of the reaction tube at a fluid outlet; a mechanism for allowing the heat transfer medium to flow into the heat transfer medium tube lumen at a heat transfer medium inlet and exit the first heat transfer medium tube lumen at a heat transfer medium outlet; and a mechanism in which the reaction tubes are inserted into the heat transfer medium tube bores, and the heat transfer medium in the heat transfer medium tube bores exchanges heat with the heat transfer medium in the reaction tube bores via the reaction tube wall; reactor Equipped with A catalytic reaction device comprising a plurality of reaction tubes each having plate fins provided so as to protrude outward from the outer surface of the multi-layer structure tube, each reaction tube being arranged parallel to the longitudinal direction of a heat transfer medium tube and being connected to an adjacent reaction tube via the plate fins.

9. The catalytic reaction device according to any one of claims 6 to 8, supplying a fluid feedstock into the reactor tube lumen at a fluid inlet; a heat transfer medium is supplied to the heat transfer medium tube lumen at the heat transfer medium inlet, flows through the heat transfer medium tube lumen, and is discharged from the heat transfer medium tube lumen at the heat transfer medium outlet, thereby controlling the temperature of the contents in the reaction tube lumen and carrying out a chemical reaction; Discharging a fluid mixture containing a fluid product obtained by the chemical reaction from the reaction tube lumen at a fluid outlet. Including, A method for obtaining a fluid product.

10. 10. The method of claim 9, wherein the fluid feed comprises hydrogen and carbon dioxide and the fluid product comprises carbon monoxide, methanol, or methane.

Citation Information

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