Upwardly directed microchannel device or mesochannel device, and additive manufacturing method therefor
Additive manufacturing of a dome-shaped chemical reactor integrated with a solar heat concentrator addresses the inefficiencies of conventional methods by reducing mass and assembly complexity, improving heat transfer, and enhancing durability and reaction efficiency.
Patent Information
- Application Number
- JP2024067732
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2018-06-21
- Filing Date
- 2024-04-18
- Publication Date
- 2025-07-24
- Estimated Expiration
- 2039-06-21
AI Technical Summary
Conventional manufacturing methods for chemical reactors, such as subtractive machining, result in high material waste and increased costs due to the mass and number of parts, assembly complexity, and inefficient heat transfer, which affects the performance and service life of solar thermal concentrators.
The use of additive manufacturing (AM) to create a chemical reactor with a dome-shaped processor integrated into a solar heat concentrator, featuring radial fluid flow channels, porous catalyst inserts, and a non-porous thermally conductive divider, allowing for reduced mass, simplified assembly, and improved heat transfer.
This design reduces manufacturing costs, enhances heat transfer efficiency, improves durability, and extends the service life of the reactor by allowing the catalyst to reach higher temperatures, thereby increasing reaction efficiency and reducing material costs.
Smart Images

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Abstract
Description
Technical Field
[0001] Declaration of Government Support This invention was made with government support under Contract DE-AC0576RL01830 awarded by the U.S. Department of Energy and under Cooperative Research and Development Agreement (CRADA No. 387) operated for the United States Department of Energy by STARS Technology Corporation, Southern California Gas Company, Oregon State University, and Pacific Northwest National Laboratory. The government has certain rights in this invention.
[0002] Cross - Reference to Related Applications This application claims the benefit of priority of U.S. Provisional Patent Application No. 62 / 688,217, filed on June 21, 2018.
[0003] In a broader aspect of the present invention, the disclosure relates to improved chemical processors, preferably microchannel devices or mesochannel devices, and additive manufacturing methods thereof. In a more detailed aspect, the present invention relates to chemical processors associated with solar thermal concentrators.
Background Art
[0004] Additive manufacturing (AM) is a novel method of "printing" devices by locally solidifying powder materials into solids. The flexibility in the design of the structure of this device provides new tools for constructing complex structures, although within certain process limitations. Originally developed for plastics, AM has been adapted for metals. Also, the list of metals that can be "printed" continues to grow and now includes high-temperature alloys such as Inconel and Haynes alloys. Metal additive manufacturing is referred to as selective laser melting (SLM) or direct metal laser sintering (DMLS). The present invention is directed to a type of device, a chemical reactor, and more particularly to a chemical reactor disposed at the focus of a solar thermal concentrator that converts solar heat into chemical energy through an endothermic chemical reaction. Of particular interest is the steam reforming of methane. This chemical reaction reacts water H2O and methane CH4 to generate hydrogen H2, carbon monoxide CO, and carbon dioxide CO2. Alternative endothermic reactions include the reverse water gas shift reaction that converts H2 and CO2 to H2O and CO, and the cracking (dehydrogenation reaction) of alkanes.
[0005] Reactors for exothermic reactions can also be manufactured using AM for reactions such as the water gas shift reaction, ammonia synthesis from H2 and N2, the Sabatier process reaction, methanol synthesis, and combustion reactions, such that a hybrid reactor body capable of handling both endothermic and exothermic reactions is possible.
[0006] An important difference between AM and most conventional fabrication processes is the utilization of materials, which differs significantly between "additive" and "subtractive" methods. In the "subtractive" method, a solid piece of material is machined to remove material to provide the structure of the final part. Methods such as machining or processing by photochemical reactions result in a significant portion of the initial material being wasted, in contrast to methods such as extrusion, punching, and stamping that can increase material utilization. The cost of materials for AM parts is proportional to the total mass of the part.
[0007] Figure 1 shows a comparison of the manufacturing costs estimated at 1000 units per year for the design of a TRL 6 Haynes 230 STARS reactor using conventional "subtractive" machining and DMLS. These costs are obtained from a bottom-up model that is not evaluated as a whole and is derived over time as the cost components change. For this reason, these costs are more useful than actual ones. The lower cost of DMLS is largely due to lower material costs, despite the high cost per pound of DMLS powder. Conventional machining costs are also high for superalloys. Figure 1 shows the motivation for the present invention, which is to reduce the cost of DMLS chemical reactors. The first cost-increasing factor to be addressed is the mass of the reactor. Reducing the mass of the reactor has the advantages of both reducing the cost of the powder (material cost) and shortening the manufacturing time. Shortening the manufacturing time increases the throughput and reduces the cost of the tool per part (the amortized capital cost of the DMLS machine). Together, the material cost and the tool cost account for 63% of the cost of the DMLS manufactured in Figure 1.
[0008] The second cost-increasing factor is the number of parts and the number of assembly steps associated with inserting a catalyst structure into the reactor. One of our conventional reactor designs consists of three plates that are individually machined and then assembled together in a high-temperature diffusion brazing step after the catalyst foam structure is inserted into the channels. The laser cutting and diffusion brazing steps in Figure 1 further account for 28% of the manufacturing cost. The present invention includes approaches for reducing the number of manufacturing steps, reducing the number of parts, and / or simplifying the assembly process.
[0009] There are other potential advantages of the new reactor design related to performance and service life. The outer wall of the reactor must be thick enough to withstand the internal pressure, and a thicker wall requires a greater temperature difference across the wall for the same heat flux. For endothermic reactions that receive heat through the reactor wall, such as heat from a solar concentrator, a greater temperature difference means a lower catalyst bed temperature to keep the reactor surface temperature below the metallurgical limits of the reactor. For endothermic reactions such as steam reforming of methane, a higher reaction temperature leads to a higher equilibrium conversion and faster kinetics. Making the reactor wall thinner not only saves on the structural materials and construction time for DMLS, but also allows the catalyst to reach a higher temperature and thus be more active. This results in cost savings for the catalyst and a reduction in the size of the reactor. A thicker wall is also disadvantageous for the service life of the reactor. This is because the thermal stress increases due to both an increase in temperature difference and structural rigidity. Additionally, DMLS allows for a more flexible design of 3D structures that can better accommodate thermal expansion, thereby reducing the internal stresses and low-cycle fatigue failure associated with daily or more frequent heating and cooling cycles of the structure during the operation of the solar cell. Summary of the Invention
[0010] In a first aspect, the present invention relates to a solar power device comprising a solar heat concentrator having a concave shape and a dome-shaped chemical processor adapted to perform unit operations, the dome-shaped chemical processor being arranged in relation to the solar heat concentrator such that the convex surface of the dome-shaped chemical processor faces the concave surface of the solar heat concentrator, and the convex surface of the chemical processor comprising a tube or tubes for passage of fluid to or from a central area of the dome to a peripheral area of the dome. In some preferred embodiments, the device may include one or any combination of the following features. The convex surface of the dome-shaped chemical processor comprises a tube or tubes exposed on the surface of the dome. The convex surface of the dome-shaped chemical processor comprises a tube or tubes containing a methane reforming catalyst or a water gas shift catalyst. The convex surface of the dome-shaped chemical processor comprises a tube or tubes having a plurality of channels providing a radial fluid flow from a source inlet or source manifold near the central region of the dome to the outer edge of the dome and a radial fluid flow from the outer edge to a receiving manifold, the receiving manifold being located near the central region of the dome. The tube or tubes comprise a porous catalyst insert, preferably a methane reforming catalyst. The tube or tubes comprise two portions, a first portion and a second portion, separated by a non-porous heat conductive divider. The first portion comprises a catalyst and the outer side of the device comprises an opening in the divider such that flow from the first portion can pass to the second portion.
[0011] In another aspect, the present invention provides a chemical processor comprising a first portion that provides a radial fluid flow from a source manifold to an outer portion of the device, a second portion that provides a radial fluid flow from the outer portion to a receiving manifold, wherein the source manifold and the receiving manifold are located near a central region of the device, and the device is configured for a unit process, the chemical processor comprising a channel or channels, wherein a first portion and a second portion of each channel are separated by a non-porous thermally conductive divider, the first portion comprising a catalyst, and the outer portion of the device comprising an opening in the divider near the outer portion of the device, whereby flow from the first portion can pass to the second portion. The chemical processor can have any of the features described throughout the detailed description and drawings of this specification.
[0012] In a further aspect, the present invention provides a microchannel or mesochannel device comprising a first plurality of microchannels or mesochannels that provide a radial fluid flow from a source manifold to an outer portion of the device, and a second plurality of channels that provide a radial fluid flow from the outer portion to a receiving manifold, wherein the source manifold and the receiving manifold are located near a central region of the device, and the device is configured for a unit process, the microchannel or mesochannel device further comprising a catalyst insert or a plurality of catalyst inserts disposed around an outer portion of the device, wherein the direction of flow within the channels switches from a direction towards the outer portion to a direction away from the outer portion, and a ring disposed around an outer periphery of the device that surrounds the catalyst insert or the plurality of catalyst inserts, and a flow path wherein the direction of flow within the channels switches from a direction towards the outer portion to a direction away from the outer portion. In some preferred embodiments, the catalyst insert is wedge-shaped. The device can have any of the features described throughout the description and drawings of this specification.
[0013] In another aspect, the present invention provides a chemical processor having a circular shape, the processor comprising a tube or a plurality of tubes that provide a radial fluid flow from a source inlet or a source manifold near a central region of the processor to an outer edge of the processor, the tube or the first plurality of tubes being exposed on a surface of the device, thereby making the surface non-smooth, the tube or the plurality of tubes having a circular, oval, or elliptical cross-section, and the processor being configured for a unit process. The present invention also includes a reverse configuration in which the source inlet or the source manifold and the receiving manifold are disposed near an outer periphery of the device. In some preferred embodiments, the apparatus may include one or any combination of the following features. The apparatus includes a plurality of channels that provide a radial fluid flow from the outer edge to the receiving manifold, and the receiving manifold is located near a central region of the device. The tubes and the channels have an internal dimension of 1 cm or less. The tube or the plurality of tubes, the plurality of channels, or both include branched channels that divide into two or more channels as they extend radially. The tube or the plurality of tubes, the plurality of channels, or both include straight radial channels. The tube or the plurality of tubes, the plurality of channels, or both include curved channels that extend from the central region to the outer edge. The tube or the plurality of tubes include a porous insert incorporated within the tube or the plurality of tubes. The porous insert includes a catalytic material, an adsorbent material, or both. The porous insert includes a porous metal support having a hole-free metal film welded to a surface of the porous metal support. The porous insert includes a metal, a polymer, or a metal oxide. The process has a dome-shaped structure. The apparatus further includes a solar thermal concentrator disposed to be a focus of solar energy converged at an exposed surface. The tube or the plurality of tubes has a gradient of thermal expansion coefficient, and the thermal expansion coefficient is low on an exposed surface of the tube or the plurality of tubes.
[0014] The present invention also includes a method corresponding to performing one or more unit operations, including each use of the present device. Preferably, the unit process is selected from the group consisting of exothermic chemical reactions, endothermic chemical reactions (preferably methane reforming), heat exchangers, chemical separation methods, and pyrolysis.
[0015] In a further aspect, the present invention provides a method for manufacturing a microchannel or mesochannel device, including forming a first portion of the channel layer by layer via an additive manufacturing process, embedding a porous insert within the first portion of the channel, covering the porous insert with a protective layer, and forming a second portion of the channel layer by layer over the first portion. In some preferred embodiments, the present invention includes one or more of the following features. The microchannel or mesochannel device is a differential temperature microchannel or mesochannel device. The protective layer comprises a sacrificial material that is removed after the step of forming the second portion of the channel layer by layer over the first portion. (The sacrificial material can be a material that melts at a temperature at least 100 °C (or at least 300 °C) below the melting point of the second portion.) The method includes laser welding the protective layer onto the porous insert. The additive manufacturing process includes directly sintering a metal with a laser. The porous insert comprises a catalyst material, an adsorbent material, or both. The porous insert is a metal, a polymer, or a metal oxide. The porous insert is formed by bonding a protective layer onto a porous metal support, then coating the porous metal support with a metal oxide and nickel or a noble metal to form a methane reforming catalyst, and then calcining prior to placing the insert within the channel.
[0016] The present invention also includes a method for manufacturing or modifying a chemical processor, including inserting a porous insert (preferably a catalyst) into the device and welding a plug or a welding ring to seal the flow path at the outer periphery of the device.
[0017] Aspects of the present invention may also include arranging a structure within a fluid channel to improve convective heat transfer and / or to improve the distribution of flow between channels. Generally, any of the aspects of the present invention can be varied depending on any feature or combination of features provided in the detailed description of the invention.
[0018] In various embodiments, the advantages of the present invention can include reducing the mass of the device, improving heat transfer, improving durability and service life, promoting a more uniform heat profile, or otherwise varying and / or controlling the temperature of the reaction to achieve efficient operation.
[0019] The term As standard patent terminology, "comprising" means "including", and neither of these terms excludes the presence of additional elements or a plurality of elements. In alternative embodiments, the term "comprising" can be replaced with the more restrictive phrases "consisting essentially of" or "consisting of".
[0020] A "microchannel" is a channel that can have at least one inner diameter (dimension from wall to wall, not including the catalyst) that is less than 1 mm, greater than 1 μm (preferably, 10 μm), and in some embodiments, from 50 μm to 500 μm. Preferably, the microchannel is within these dimensions with respect to a length of at least 1 cm, preferably at least 20 cm. In some embodiments, it is in the range of 5 cm to 100 cm in length, and in some embodiments, in the range of 10 cm to 60 cm. A microchannel can also be defined by the presence of at least one inlet separate from at least one outlet. A microchannel is not just a channel through a zeolite or porous material. The length of the microchannel corresponds to the direction of flow through the microchannel. The height and width of the microchannel are substantially perpendicular to the direction of flow through the channel. A mesochannel is defined similarly, except that it has an inner diameter from 1 mm to 1 cm. Usually, the device comprises a plurality of microchannels or mesochannels that share a common header and a common footer. However, some devices have a single header and a single footer. A microchannel device can have a plurality of headers and a plurality of footers. The volume of a channel or manifold depends on the internal space. The walls of the channel are not included in the calculation of the volume.
[0021] The microparticles relate to particles such as catalyst particles that fit within the microchannel or mesochannel. Preferably, the particles (if present) have a size of 2 mm or less (in maximum dimension), and in some embodiments, 1 mm or less. The size of the particles can be measured by a sieve or microscope or other suitable technique. For relatively large particles, sieving is used. The microparticles can be a catalyst, adsorbent, or inert material.
[0022] The present invention also includes a method of performing unit operations within the apparatus described herein. "Unit operations" means chemical reactions, evaporation, compression, chemical separation methods, distillation, condensation, mixing, heating, or cooling. "Unit operations" do not simply mean the transfer of fluids, although transfer is frequently carried out along with unit operations. In some preferred embodiments, the unit operation is not merely mixing.
[0023] The channel containing the catalyst is the reaction channel. More generally, the reaction channel is the channel in which the reaction occurs. The walls of the reaction channel are preferably formed of an iron-based alloy such as steel, or a Ni-, Co-, or Fe-based superalloy such as Haynes. The choice of material for the walls of the reaction channel may depend on the reaction for which the reactor is intended. In some embodiments, the walls of the reaction chamber are composed of stainless steel or Inconel® which are durable and have good heat conductivity. Usually, the walls of the reaction channel (usually a tube) are formed of a material that provides the main structural support for the microchannel device.
[0024] The heat exchange fluid may flow through heat transfer channels (preferably microchannels or mesochannels) adjacent to the processing channels (preferably reaction microchannels or reaction mesochannels), and can be a gas, or a liquid, or a two-phase material. Also, in preferred embodiments, the heat exchange fluid is the product stream used to recover the heat generated within the reaction channel.
[0025] "Tube" has the conventional meaning of an elongated member having a circular, rectangular with a pair of semi - circles at both ends (which is an example of an ellipse as shown in Figure 8), or an oval cross - section. There are no corners either inside or outside, and thus no regions where stress concentrations occur. The wall thickness of the tube is preferably uniform and varies in the range of 10% or less, but may include internal separating walls (barriers) with different thicknesses that separate the interior of the tube into two or more channels. As shown in the illustration, there may be corners between the separating wall and the tube wall, but usually there is no large pressure difference on both sides of the internal separating wall.
[0026] An "exposed" tube has a surface that is exposed to the atmosphere. This tube is not covered by a plate, and the surface of the exposed tube is curved.
Brief Description of the Drawings
[0027]
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DETAILED DESCRIPTION OF THE INVENTION
[0028] The present invention includes devices, manufacturing methods, and processes involving devices formed using additive manufacturing processes. The manufacturing methods may include methods of incorporating a catalyst or other structure as an external object into the device as being formed using an additive manufacturing method. Alternatively, a porous or other high-surface-area structure can be constructed by an AM process during manufacturing and then activated after construction through a coating, impregnation, or removal process. Various structures that can be formed by additive manufacturing suitable as receivers for parabolic dish solar thermal concentrators are described.
[0029] There are several articles in the literature that describe devices formed by AM. For example, Gutmann et al., React. Chem. Eng., 2017, 2, 919-927, “Design and 3D printing of a stainless steel reactor for continuous difluoromethylations using fluoroform.”, Stark, AIChE Journal, (2018) 64(4): 1162-1173, “Manufactured Chemistry: Rethinking Unit Operation Design in the Age of Additive Manufacturing.”, Capel et al., Lab Chip, 2013, 13, 4583, “Design and additive manufacture for flow chemistry Article in Lab on a Chip.” Schalansky in US Patent Application No. 2015 / 0137412, entitled “Method of using additive materials for production of fluid flow channels”, describes several AM methods for forming fluid channels. The content of this published patent application is incorporated herein as if fully reproduced below. Several graded metal structures that can be manufactured by AM are described by Khodabakhshi et al. in “Dissimilar metals deposition by directed energy based on powder-fed laser manufacturing,” J. Manufacturing Processes 43 (2019) 83-97. In the present invention, the walls of the tube can be formed with graded properties such as thermal expansion. In a preferred embodiment, the side of the tube facing the solar light source has a lower coefficient of thermal expansion than the side of the tube facing away from the solar light source.The gradient may be continuous from the highest expansion coefficient at the bottom (away from the solar light source) to the lowest expansion coefficient at the top, or it may be in two, three, or any selected number of regions. In some embodiments, the graded coefficient of thermal expansion may be only on the sides of the tubes that receive heat from the solar concentrator.
[0030] The present invention also includes a device adapted to receive incident solar radiation and use the energy absorbed for an endothermic process, including an endothermic chemical reaction, heating of a fluid, and a separation process. The general arrangement is a radial flow outward from a central manifold toward the outer edges of the plates and then back through a second set of channels to a second receiving manifold near the center before the flow exits the device.
[0031] The structure includes branched tubes. These branched tubes divide into two or more (preferably two) tubes as they extend radially to encourage covering all or most of the circular profile. The tubes can be straight or curved along the radius of the circle. The limit of the curved channel structure is a single coiled channel starting at the center and extending out toward the outer edge. The return channel can mimic the outward flow channel and allow the fluid to return along the same flow path through adjacent channels. Many alternative structures with various structures for the outward and return flows are expected to promote heat dissipation for a more uniform temperature and improved fluid mixing. The present invention includes a flat structure where the basic flow axis of the channels is in a plane, or a three-dimensional structure with channels curved out of the plane in the "z-axis" direction.
[0032] Some aspects of the present invention also include placing structures within fluid channels to improve convective heat transfer and / or to improve the distribution of flow between channels. Improved heat transfer structures include fins, fins with louvers, pins for increased heat transfer area, and structures for convective mixing of fluids.
[0033] Two-part assembly: Figure 2 shows an embodiment for reducing the assembly to two parts and eliminating the high-temperature diffusion brazing step that requires a long cycle time in a furnace equipped with a ram press. Gradually heating and cooling the furnace, as well as the time at a temperature that enables bonding of the parts, can take days, leading to relatively low production capacity. By constructing the reactor-receiver body as a single part using additive manufacturing, substantial material savings can be achieved. Figure 2B shows an assembly of two parts of a chemical processor. In a first step, a chemical processor part 35 that includes channels can be formed by AM. Next, the catalyst piece (which may be other shapes such as rectangular or the pie-shaped piece shown in the figure) 35 is then inserted into the opening around the outer edge as shown in Figure 2B before closing the reactor by welding the sealing ring 34 in place. In another embodiment, most of the reactor-receiver body is constructed by additive manufacturing as shown in Figure 2B, but the channel openings are in the form of circular holes, thereby enabling these channel openings to be sealed individually, for example, with individual wedge-shaped plugs instead of a single welding ring for all channels. The channel ends can be sealed by welding with a welding ring as shown in Figure 2B after insertion of the catalyst. In some preferred embodiments, the welding ring is welded in place by rotary friction welding. In an alternative embodiment, the plug can be welded in place by the welding effect resulting from rotating the wedge-shaped plug, for example, when inserting the wedge-shaped plug into a similarly wedge-shaped hole. The welding ring can be welded in place by conventional welding or friction stir welding, such as in other examples of joining processes, namely laser welding or electron beam welding. In the completed device, thermal energy (such as photon collisions) enters the system through the walls 22 of the exposed channels or tubes. Figure 2A is a cross-sectional view showing the exposed wall 22, the catalyst insert 28, the channel plug 24 fixed in place by the joint 26, and the return channel 32. The chemical product flowing out of the catalyst insert 28 flows through the opening 30 into the return channel 32.In an alternative embodiment, a porous insert 28 (such as an absorbent) is used at the location of the catalyst insert 28.
[0034] One significant advantage of this design is the possibility to retrofit the reactor by removing the ring or individual channel end caps to access and replace the catalyst pieces. This saves replacement costs over time, extends the service life of the reactor hardware, and facilitates recycling of the materials of the catalyst structure. The present invention includes a method of forming a processor, a method of retrofitting a processor, a method of a chemical device, and a method of performing unit operations within the device.
[0035] Cylindrical design: In some embodiments of the present invention, a tubular structure is utilized to take advantage of the inherent strength of a round tube against a flat wall. When a high pressure is applied to one side of a flat wall, a bending force is applied. This force typically has to be resisted by making the wall thicker or by adding supports or reinforcements. On the other hand, as shown in FIG. 3, a tensile stress called hoop stress is basically applied to the wall 82 (see FIG. 8) of a pressurized round tube. As a result, a round tube can have a much thinner wall than a flat wall when formed of the same strength material. Therefore, an AM design consisting of a tubular channel instead of a rectangular channel with a flat wall has the potential for significant weight savings due to the thin walls. The inner diameter (or the largest internal dimension) of the tube is preferably in the range of 0.1 mm to 3 cm, preferably in the range of 1 mm to 1.0 cm. For example, a 0.4-inch-wide rectangular plate (Haynes 230 at 982 °C) with a yield stress of 450 psi requires a thickness of 0.165 inches to withstand a pressure of 10 bar. Alternatively, the wall thickness of a tube with the same yield stress is only 0.065 inches to withstand a pressure of 10 bar. The AM method for branched tubes also enables smaller tubes. Starting with 10 tubes in the central header, the required wall thickness varies from 0.025 inches at the start of the tube length to 0.049 inches at the end of the tube length and continues to increase. Another advantage of AM is the ability to locally vary the wall thickness to optimize the weight. An extruded tube will have a constant diameter and wall thickness. An AM tube can have various diameters and wall thicknesses implemented in a branched tube design.
[0036] The advantages of a tubular geometry are pronounced when the outer wall of the tube is also the outer wall of the reactor and are reduced when the wall of the tube is not the outer wall. The outer wall of the reactor must be thick enough to withstand the internal pressure for reactors that are heated from the outside and / or endothermic reaction channels, and a thicker wall requires a greater temperature difference across the wall for the same heat flux. A greater temperature difference means a lower catalyst bed temperature to keep the surface temperature of the reactor below the metallurgical limits of the reactor. For endothermic reactions such as steam reforming of methane, a higher reaction temperature leads to a higher equilibrium conversion and faster kinetics. Making the reactor wall thinner not only saves on the structural materials and build time for AM, but also allows the catalyst to become hotter and thus more active, thereby saving on catalyst costs. A thicker wall is also detrimental to the service life of the reactor, due to higher thermal stresses resulting from both the increased temperature difference and structural rigidity. Additionally, DMLS enables a more flexible design of 3D structures that can better accommodate thermal expansion, thereby reducing internal stresses and low-cycle fatigue failure associated with daily or more frequent heating and cooling cycles of the structure during solar operation. These potential benefits of solar operation related to performance and service life are considered.
[0037] Another new innovation related to the cylindrical embodiment is the insertion of the catalyst structure into the reactor during additive construction. This not only provides additional design flexibility in that the design does not need to accommodate the insertion of the catalyst after the parts are constructed, but also reduces the number of manufacturing steps. The sequence of steps is: 1) the reactor is partially manufactured by AM (preferably DMLS); 2) construction is stopped, the platen is raised, and powder is suctioned from the catalyst channels; 3) catalyst pieces are inserted into the catalyst channels; and 4) the AM process is restarted to complete the construction. Preferably, the top edge of the catalyst piece is smooth in one plane to accommodate the continuation of the AM build. By the steps of stopping construction, removing powder from the catalyst channels, and inserting the catalyst pieces, the cycle time of construction is increased instead of the post-construction steps required for inserting the catalyst and closing the reactor.
[0038] Some embodiments of the novel innovations in the cylindrical design are described below.
[0039] Catalyst Structure: Multiple types of catalyst structures can be incorporated into the devices of the present invention. In some examples, a catalyst structure such as a porous foam or felt is inserted into the channels in one of the concepts described above. A powdered or particulate catalyst medium can also be added as a dry medium or a slurry. The active catalyst can be embedded in the structure when attaching the reinforcement using various methods including calcination, vapor deposition, and wash coating, or can be added after assembly is complete. Alternatively, a porous catalyst structure can be printed during construction by changing the process parameters. This partially solidifies the powder exiting the sintered high surface area porous medium. Alternatively, it can be added by constructing additional internal structures such as fins or pillars inside the channels that will be coated with the catalyst on the surface area. This also serves as an enlarged area for improving heat transfer.
[0040] The catalytic steam reforming of methane was prepared by first placing the protective layer 1202 on the catalyst insert structure 1204 (a form sheet of FeCrAlY). The protective sheet can be tack welded or laser welded to the porous structure 1204 to form a protected porous structure 1206. The porous structure can be changed into a methane reforming catalyst, for example, by washcoating the structure with a Rh catalyst on MgAl2O4 and then calcining at 500 °C to form a porous catalyst insert 1208. This process is shown in FIG. 12. The catalyst was placed in the channels and the channels were completed by AM. The testing of the device showed excellent methane reforming and hydrogen production without loss of operation after two cycles of use at a temperature of at least 750 °C.
[0041] It has been found that overheating the cover after the DMLS process resumes causes the cover to twist out of plane, making the cover an obstacle to the powder diffusion bar and thus failing the process. The laser also makes holes through the cover, damaging the cover and the insert below the cover and allowing powder to enter the cavity.
[0042] The solutions to these problems included using a laser (a DMLS laser in our tests) to tack weld the cover to the built-up structure. This was done after the structure and cover were inserted and before the powder was spread rearward over the part. Tests showed that the tack welding had to be controlled so that the cover was held in place or the entire outer edge was stitch welded just enough to effectively seal the outer edge from the powder. Improved results were obtained by forming several passages around the outer edge to allow spot welding and cooling sufficiently before welding again in the same vicinity. Another solution was to vary the laser output and the powder layer thickness after the DMLS build process was resumed. This allowed the AM structure to be built and resumed at the top of the insert and cover without damaging these parts.
[0043] When a complete reactor is formed by AM with the catalyst embedded, the catalyst cavities must be protected from the intrusion of AM powder through the ends and the "tops". The ends must allow flow so that the catalyst chamber can be closed using a porous wall that allows flow. One of the porous walls is placed at the inlet end leading to the central inlet manifold. The powder on its side may exit through the manifold. The second porous wall is located just at the end of the catalyst channels before the openings leading to the return layer. A significant amount of powder in the outer header and return channels must exit outside the central header of the return channel. A further advantage of the porous walls is that they cause a pressure drop with respect to good flow distribution within a multi-channel device, thus eliminating the need for orifices or other features to control (usually equalize) the flow through the multiple channels.
[0044] Another method of inserting the catalyst structure and preventing substantial intrusion of the AM powder into the catalyst structure may be made possible by using a sacrificial material. By impregnating the catalyst structure with a solid material that can be removed after heating or reacting (to form a fluid), the use of a porous wall and the "top" piece becomes unnecessary. For example, a high molecular weight oil (such as paraffin) can fill the voids within the catalyst structure, and then the reactor after the construction process is completed is heated so that the molten or gaseous material is removed.
[0045] Tubing of constant radius that branches: Figure 4 shows a first embodiment of a cylindrical design where a set of tubes extends radially outward from a central manifold. To completely cover the circular area, the tubes branch as this tube extends radially. In this particular embodiment, the diameter of the tubes is constant, such that the thickness of the reactor is constant across the area. The process of splitting the tubes is shown in Figure 5. The tubes start with a round cross-section, immediately begin to branch, and as the branching is completed, they are gradually deployed into the cross-section of Figure 8. From this cross-section of Figure 8, as both tubes extend further out, both of these tubes begin to repeat the branching process.
[0046] Mathematically, the tubes branch every time the distance from the center of the circle doubles. Figure 6 further shows how the tubes branch periodically.
[0047] In one embodiment of this concept, the inner wall is within the tube and divides the channel into two halves. These are not shown in Figures 4 through 6. The catalyst structure will be inserted into one of the channel halves during the construction of DMLS before the separation wall is built. The opposite side of the tube can be used for heat exchange, such as preheating the incoming reactants or recovering heat from the product stream with respect to the heat of the reaction within the catalyst structure.
[0048] In other embodiments, the catalyst structure is constructed within the tube, such as a sintered porous medium, wall, or pillar, that is coated with the catalyst after the construction of the DMLS is completed.
[0049] Branching, increasing radius tubes: Another embodiment of the tubular design is a tube with an increasing radius. Instead of gradually branching as the tube extends radially outward, the tube remains as is, its diameter increases, and then it is split into two tubes of half the diameter at some radius from the center. Each of the two tubes increases in diameter as it extends radially until these two tubes are similarly split into two tubes. The minimum amount of wall material is used when the stress in the inner wall is kept constant at an acceptable stress for that material. For the tube, the maximum stress, assuming a thin wall, is the following hoop stress. JPEG0007713059000001.jpg1737
[0050] Here, p is the design pressure, r is the radius of the tube, and t is the thickness of the tube wall. To maintain a constant wall stress while increasing the diameter of the tube, it is necessary to increase the wall thickness. Integrating Equation 1 over the length l of the tube increasing from diameter D1 to D2 gives the minimum wall volume for a given allowable stress σ. JPEG0007713059000002.jpg1461
[0051] The parameters incorporated into the branched tube structure are the radius of the central hole, the number of the first tubes extending from the central hole, and the length of the first segment. Figure 7 shows the mass of the tube wall with respect to the number of tubes extending from the central hole for a 1 / 2-inch central hole and a 1 / 2-inch first length. The mass of the TRL6 reactor built on the DOE EERE Solar project was 4.58 kg. There is room to significantly reduce the mass of the reactor and the cost after the additively manufactured reactor. However, other design considerations are the total amount of catalyst and the heat transfer from the reactor wall to the catalyst. The TRL6 reactor has a catalyst structure of 243.25 cm3. If only half of the tube volume contains the catalyst, the amount of that catalyst volume will not fit inside the tubes of this reactor as shown in Figure 7. Furthermore, the diameter of the tube becomes larger than 0.5 inches if the array starts with less than 10 tubes. This is significantly larger than the 5 mm (1 / 5 inch) thickness of the catalyst of TRL6. As a result, the increase in the heat transfer distance is a problem. Both problems of catalyst volume and heat transfer distance are overcome by changing the cross-section of the tube from circular to the capsule shape shown in Figure 8. The wall dividing the capsule-shaped tubes is twice the thickness of the round wall to maintain the same maximum wall stress. The height of the straight wall becomes a parameter that can be varied to provide sufficient internal volume to accommodate the desired catalyst volume. Figure 9 shows the wall mass for a reactor with capsule-shaped branched tubes of a constant internal volume of 487.5 cm3. The calculation of the wall mass shows the possibility of saving the wall mass up to 2 / 3 from the 4.58 kg TRL6 reactor. The mass savings allows for reducing the number of tubes extending from the central hole by more than about 30. When the first tube is 20, the maximum catalyst thickness in the direction of the incident sunlight is 6 - 7 mm. This is close to the 5 mm catalyst thickness of TRL6. The round "hills" on the outer surface and the thin wall are more than compensatory for the nominally thicker catalyst.For 20 tubes extending from a 1 / 2 - inch central hole with a length of the first tube of 1 / 4 inch, the mass of the tube wall is 1.83 kg, the minimum diameter is 0.101 inch, the maximum diameter is 0.202 inch, the height of the inner wall is 0.333 inch, and the thickness of the catalyst is 6.8 mm.
[0052] An alternative approach is to maintain a constant reactor thickness by varying the height of the separation wall as the diameter changes. This may be easier to manufacture since the catalyst thickness is uniform.
[0053] Helical tubes: The structures shown in FIGS. 4 - 6 have straight tubes extending radially from a central hole. In other embodiments, the tubes are curved and helical from the center towards the outer edge. See FIG. 10. The helical structure is pre - adapted to the solar reactor - receiver to account for non - uniform incident solar flux on the reactor surface. At the limit, a single coiled helical tube as in FIG. 11 covers the entire area receiving the incident solar flux. The coil shape can also be formed in the capsule - like cross - section shown in FIG. 8, except that adjacent channels represent adjacent coils of the same tube instead of separate tubes as described above. Similar mass savings of the reactor are expected by having thin walls as described for other structures. The difficulty with a single coiled tube or capsule - like tube is that a fairly long channel length increases the pressure drop. This can be mitigated by having two or more coils that are coiled outwards from the center towards the outer edge. In yet another embodiment, the coil can branch at one or more points of the helix. Thus, there are numerous combinations of structures from straight branched tubes to curved branched tubes to single coiled tubes. The choice of structure depends on performance, pressure drop, manufacturing cost, as well as the reliability and lifespan of the reactor.
[0054] Return channels: The design of a reactor with radial fluid channels typically has a process fluid that flows outward from a central manifold (hole) to an outer peripheral manifold and then radially back to a second central manifold before exiting the reactor. Embodiments include options for placing the same or different catalysts in both the outward-flowing channels and the return channels, catalysts only in the outward-flowing channels, or catalysts only in the return channels. FIG. 8 shows the inner wall 86 of a tube or capsule tube for dividing the outward-flowing channels and the return channels with catalyst 88 placed anywhere. FIG. 8 shows symmetric channels that equally divide the volume between the outward-flowing channels 88 and the return channels 84. Other embodiments have walls shifted downward or upward to increase the volume of the outward channels or the return channels, respectively. Still other embodiments have an asymmetric structure where one profile is for the outward-flowing channels and a different profile is for the return channels. For example, the return channels can have a different pitch. For example, by doubling the pitch, two return channels are provided for each outward-flowing channel to improve heat transfer in the return channels.
[0055] Figures 4 through 6, and 8 show return channels that follow the same path as the outward flow channels, such as the split tube shown in FIG. 8. In other embodiments, the design of the return channel structure can be decoupled from the outward flow channel. One example is the counter spiral structure of the previously used IDR, Solar Thermochemical Reactor with Reaction and Thermal Recuperation Channels Arranged in Counter Spirals. Intersecting the return flow channels and thermally contacting them with a plurality of outward flow channels has the advantage of heat diffusion and more uniform temperature within the reactor. Various ways are envisioned for constructing two fluid channel structures for the mechanical support of the pressurized reactor. The outer manifold can be designed to simply return the fluid within a given outward flow channel through an adjacent return channel when the structure is symmetric. Alternatively, the manifold can return the fluid through the return channel of another outward flow channel. One reason is to provide heat transfer and heat diffusion between areas of the reactor. Other embodiments will have an open manifold, allowing the mixing of fluids from a plurality of outward flow channels before entering the return channel. The outer manifold can mix the fluid from two or more outward flow channels across the entire outward flow channel.
[0056] Improved heat exchange: Heat transfer of the incident solar flux from the surface of the reactor, through the outer wall and the catalyst structure, to support endothermic heterogeneous reactions and other processes is important with respect to the performance of the reactor. An important aspect of the present invention is to make the outer wall thinner to reduce the heat transfer resistance through the outer wall. Heat transfer in the open return channels can also be important. For example, by transferring heat from the hot fluid in the return channels to the catalyst structure in the outward flow channels, the conversion of solar energy to chemical energy can be improved and the overall energy efficiency of the system can be improved. Various techniques are expected for improving heat transfer in either the outward flow channels or the return channels. Structures with a large area, such as straight fins, louvered fins, pins or other structures, can be formed during the manufacture of the reactor and extend from the separation wall, which is the main heat transfer surface between the outward flow channels and the return channels, into the fluid channels or the catalyst structure. Such structures with an extended area can also be formed during the manufacture of the reactor and extend from the wall receiving the solar flux to the catalyst structure to improve heat transfer. The structure can also improve heat transfer by mixing the fluid, such as by means of a static mixer structure.
[0057] Non-smooth structure: The reactor structures shown in FIGS. 2 to 6 are smooth, meaning that all of the major axes of the channels are within a two-dimensional plane. The flexibility of additive manufacturing allows for 3-D structures, so-called Z-direction curvatures, where the fluid channels are curved out of the main plane of the reactor. The advantages of 3-D structures include a larger outer surface area for receiving incident solar energy, thereby reducing the average local heat flux into the reactor. Another advantage is reducing the thermal stresses associated with the thermal expansion of the structure. One embodiment of a 3-D structure is a dome-shaped or hemispherical structure. An example of this type of structure is shown in FIG. 10. This convex structure allows the hottest outer surface that receives incident sunlight to expand more than the cooler underside, thereby reducing the stress within the structure. A hemisphere with a circular cross-section is just one of the possible 3-D structures. Other structures include parabolic and S-shaped. The alternative shapes create opportunities to locally adjust the angle of incidence of the flux on the outer surface of the reactor, better match the characteristics of the paired solar concentrator, and mitigate hot spots due to optical imperfections.
[0058] Pressure drop structure: A uniform flow distribution between channels is desired for a constant residence time and exposure to the catalyst, as well as for heat transfer. To create a pressure drop that aids in uniformly distributing the flow, features are often added at the inlet or outlet (or anywhere within the flow path). Features can include orifices or other flow restrictors, extended flow path lengths such as serpentine small channels, or porous walls. These features can be added during the additive manufacturing fabrication process.
[0059] Other processes: The main use of the present invention is a solar thermochemical reactor that uses the radiation of incident sunlight to provide heat for heterogeneous catalysts for the endothermic steam reforming reaction of methane. Other endothermic processes are envisioned, including other endothermic chemical reactions such as the dry reforming of methane by CO2 or the reverse water gas shift reaction. Examples of reactor designs, including differential temperature reactors for endothermic and exothermic reactions, and corresponding reactions that can be manufactured using the techniques described herein, are described in U.S. Patent No. 7,297,324. This document is incorporated herein as if fully copied below. Differential temperature reactors achieve improved chemical conversion compared to adiabatic reactors for reactions with limited equilibrium that exhibit substantial temperature dependence. Differential temperature microchannel or mesochannel reactors include adding heat (for endothermic reactions) or removing heat (for exothermic reactions), such as by using adjacent channels through which a heat exchange fluid flows or another reaction occurs. Preferably, the function of heat exchange achieves a temperature profile along the length of the reaction channel that promotes greater chemical conversion.
[0060] Aspects of the present invention can also be used in solar receivers. In a solar receiver, solar energy is converted into sensible or latent heat in a heat transfer fluid. Other examples are sorption processes for heat pumps or chemical separation methods. For example, a solar heat pump transfers heat from a lower temperature to a higher temperature using an absorption (liquid solvent) or adsorption (solid solvent) heat pump cycle. An example is to exchange the catalyst of the above-described invention with a solid adsorbent that adsorbs a refrigerant at low temperature and pressure and desorbs it at high temperature and pressure using solar energy. Uses include building heating, ventilation, and air conditioning (HVAC), as well as cooling. Similarly, the adsorbent can be used for chemical separation methods in a temperature swing adsorption (TSA) process or a thermally enhanced pressure swing adsorption (PSA) process. One use is to capture carbon dioxide from the air, power plant effluents, or other potential sources.
[0061] Catalytic chemical reactions are very well known, and suitable conditions and catalysts are very well known and need not be described herein. As modified catalysts, or as Sabatier catalysts (usually Ni or Ru / Al2O3), ammonia synthesis (usually Ru, or iron oxide, or Co-Mo-N), or as reverse water gas shift reactions (common catalysts include iron, chromium, and optionally magnesium oxides) it is sufficient to identify the catalyst.
[0062] In some preferred embodiments, the present invention converts methane or other alkanes or mixtures of hydrocarbons to hydrogen by steam reforming or dry reforming. The steam reforming process requires hydrocarbons (or a plurality of hydrocarbons) and steam (H2O). The mixture of reactants may include other components such as CO, or non-reactive diluents such as nitrogen or other inert gases. In some preferred processes, the reactant stream consists essentially of hydrocarbons and steam. In some preferred embodiments, the steam to carbon ratio in the reactant stream is from 3 to 1 to 1 to 1, and in some embodiments is 1.5 to 1 or less. Hydrocarbons include alkanes, alkenes, alcohols, aromatic compounds, and combinations thereof. The hydrocarbon can be natural gas. Preferred alkanes are C1 to C such as methane, ethane, propane, butane, and isooctane 10It is an alkane. The steam reforming catalyst preferably contains one or more of ruthenium, rhodium, iridium, nickel, palladium, platinum, and combinations thereof as catalytically active materials. Rhodium is particularly preferred. In some preferred embodiments, the catalyst (including all support materials) contains 0.5 wt% to 10 wt% Rh, more preferably 1 wt% to 3 wt% Rh. The catalyst may also contain an alumina support with respect to the catalytically active material. The "alumina support" contains aluminum atoms attached to oxygen atoms and may have additional elements. Preferably, the alumina support contains one or more stabilizing elements that improve the stability of the catalyst under hydrothermal conditions. Examples of stabilizing elements are Mg, Ba, La, and Y, and combinations thereof. Preferably, the catalytically active material (such as Rh) is present in the form of small particles on the surface of the alumina support. The steam reforming reaction is preferably carried out at a temperature higher than 400 °C, more preferably from 500 °C to 1000 °C, even more preferably from 650 °C to 900 °C. The reaction can be carried out at a wide range of pressures, from below atmospheric pressure to very high pressures. In some embodiments, the process is carried out at a pressure of 10 atm to 30 atm, more preferably 12 atm to 25 atm. The partial pressure of H2O is preferably at least 0.2 atm, in some embodiments at least 2 atm, and in some embodiments in the range of 5 atm to 20 atm.
[0063] In some preferred configurations, the catalyst (for steam reforming or other chemical reactions) includes a large-pore substrate thereunder. Examples of preferred large-pore substrates include commercially available metallic foam materials, more preferably metallic felts. Prior to depositing any coating, the large-pore substrate has a porosity of at least 5%, more preferably from 30% to 99%, even more preferably from 70% to 98%. In some preferred embodiments, the large-pore substrate has an average pore size by volume measurement, as measured by BET, of 0.1 μm or greater, more preferably between 1 μm and 500 μm. Preferred forms of the porous substrate are foam materials or felts, which are preferably formed of a thermally stable electrically conductive material, preferably a metal such as stainless steel or FeCrAlY alloy. These porous substrates can be made thin, such as between 0.1 cm and 1 cm. The foam material is a continuous structure having continuous walls with pores defined throughout the structure. Alternatively, the catalyst may take any conventional form, such as powder or pellets.
[0064] Catalysts with large pores preferably have a pore volume that is 5% to 98%, more preferably 30% to 95%, of the total volume of the porous material. Preferably, at least 20% (more preferably at least 50%) of the pore volume of the material consists of pores with a size (diameter) in the range of 0.1 micron to 300 microns, more preferably 0.3 micron to 200 microns, and even more preferably 1 micron to 100 microns. The pore volume and the pore size distribution are measured by mercury porosimetry (assuming a cylindrical pore geometry) and nitrogen adsorption. As is known, mercury porosimetry and nitrogen adsorption are complementary techniques, with mercury porosimetry being more accurate for measuring large pore sizes (greater than 30 nm) and nitrogen adsorption being more accurate for small pores (less than 50 nm). A pore size in the range of about 0.1 micron to 300 microns allows molecules to diffusively diverge through the material, mostly under gas-phase catalyst conditions. The catalyst insert preferably has a height of 1 cm or less, and in some embodiments, the height and width are 0.1 cm to 1.0 cm. In some embodiments, the porous insert occupies at least 60%, and in some embodiments, at least 90%, of the cross-sectional area of the microchannel. In an alternative preferred embodiment, the catalyst is a coating (washcoat) of the material within the reaction channel or channels. In one aspect, the present disclosure encompasses the following inventions. (Invention 1) A solar thermal concentrator having a concave shape, and a dome-shaped chemical processor adapted to perform unit operations, the convex surface of the dome-shaped chemical processor being arranged in relation to the solar thermal concentrator such that it faces the concave surface of the solar thermal concentrator, the dome-shaped chemical processor comprising a tube or a plurality of tubes for a fluid passage from the center area of the dome or from the center area to the peripheral area of the dome. A solar power device. (Invention 2) The solar power device according to Invention 1, wherein the convex surface of the dome-shaped chemical processor comprises a tube or a plurality of tubes exposed on the surface of the dome. (Invention 3) The solar power device according to any one of Inventions 1 to 2, wherein the convex surface of the dome-shaped chemical processor comprises a tube or a plurality of tubes containing a methane reforming catalyst or a water gas shift catalyst. (Invention 4) The solar power device according to any one of Inventions 1 to 3, wherein the convex surface of the dome-shaped chemical processor comprises a tube or a plurality of tubes having a plurality of channels that provide a radial fluid flow from a source inlet or a source manifold near the central region of the dome to the outer edge of the dome and a radial fluid flow from the outer edge to a receiving manifold, the receiving manifold being located near the central region of the dome. (Invention 5) The solar power device according to any one of Inventions 1 to 4, wherein the tube or the plurality of tubes comprises a porous catalyst insert, preferably a methane reforming catalyst. (Invention 6) The solar power device according to any one of Inventions 1 to 5, wherein the tube or the plurality of tubes comprises two portions, a first portion and a second portion, separated by a non-porous heat conductive divider, the first portion comprising a catalyst, and the outer edge of the device comprising an opening of the divider such that the flow from the first portion can pass to the second portion. (Invention 7) A chemical processor with a channel or channels for a unit process, having a first part that provides a radial fluid flow from a supply source manifold to the outer edge of the device, and a second part that provides a radial fluid flow from the outer edge to a receiving manifold, wherein the supply source manifold and the receiving manifold are located near the central region of the device, and the device is configured for a unit process. The chemical processor, wherein the first part and the second part of each channel are separated by a non-porous thermally conductive divider, the first part is provided with a catalyst, and the outer edge of the device is provided with an opening of the divider near the outer edge of the device, whereby the flow from the first part can pass to the second part. (Invention 8) A microchannel or mesochannel device having a first plurality of microchannels or mesochannels that provide a radial fluid flow from a supply source manifold to the outer edge of the device, and a second plurality of channels that provide a radial fluid flow from the outer edge to a receiving manifold, wherein the supply source manifold and the receiving manifold are located near the central region of the device, and the device is configured for a unit process. The microchannel or mesochannel device further comprising a catalyst insert or a plurality of catalyst inserts disposed around the outer edge of the device, wherein the direction of the flow in the channel switches from a direction towards the outer edge to a direction away from the outer edge, and further comprising a ring disposed around the outer periphery of the device surrounding the catalyst insert or the plurality of catalyst inserts, and a flow path in which the direction of the flow in the channel switches from a direction towards the outer edge to a direction away from the outer edge. (Invention 9) The microchannel or mesochannel device according to Invention 8, wherein the catalyst insert is wedge-shaped. (Invention 10) A chemical processor having a circular shape, comprising a tube or a plurality of tubes that provide a radial fluid flow from a source inlet or a source manifold near the central region of the processor to the outer edge of the processor, wherein the tube or the first plurality of tubes are exposed on the surface of the device, thereby making the surface not smooth, the tube or the plurality of tubes having a circular, oval, or elliptical cross-section, and the processor being configured for a unit process, said chemical processor. (Invention 11) The chemical processor according to Invention 10, further comprising a plurality of channels that provide a radial fluid flow from the outer edge to a receiving manifold, wherein the receiving manifold is located near the central region of the device. (Invention 12) The chemical processor according to Invention 10 or Invention 11, wherein the tube and the channels have an internal dimension of 1 cm or less. (Invention 13) The processor according to any one of Inventions 10 to 12, wherein the tube or the plurality of tubes, the plurality of channels, or both of them comprise branched channels that are divided into two or more channels as they extend radially. (Invention 14) The processor according to any one of Inventions 10 to 13, wherein the tube or the plurality of tubes, the plurality of channels, or both of them comprise straight radial channels. (Invention 15) The processor according to any one of Inventions 10 to 13, wherein the tube or the plurality of tubes, the plurality of channels, or both of them comprise curved channels that extend from the central region to the outer edge. (Invention 16) The processor according to any one of Inventions 10 to 15, wherein the tube or the plurality of tubes comprise a porous insert incorporated within the tube or the plurality of tubes. (Invention 17) The processor according to Invention 16, wherein the porous insert comprises a catalyst material, an adsorbent material, or both. (Invention 18) The processor according to Invention 16, wherein the porous insert is a porous metal support having a hole-free metal film welded to the surface of the porous metal support. (Invention 19) The processor according to any one of inventions 16 to 18, wherein the porous insert comprises a metal, a polymer, or a metal oxide. (Invention 20) The processor according to any one of inventions 10 to 20, having a dome-shaped structure. (Invention 21) The processor according to any one of inventions 10 to 21, further comprising a solar thermal concentrator arranged to be a focus of solar energy converged on the exposed surface. (Invention 22) The processor according to any one of inventions 10 to 22, wherein the tube or plurality of tubes has a gradient of thermal expansion coefficient, and the thermal expansion coefficient is low on the exposed surface of the tube or plurality of tubes. (Invention 23) A method for manufacturing a microchannel or mesochannel device, comprising: forming a first portion of a channel layer by layer through an additive manufacturing process; embedding a porous insert into the first portion of the channel; covering the porous insert with a protective layer; and forming a second portion of the channel layer by layer on the first portion. (Invention 24) The method according to invention 23, wherein the microchannel or mesochannel device is a differential temperature microchannel or mesochannel device. (Invention 25) The method according to invention 23, wherein the protective layer comprises a sacrificial material that is removed after the step of forming the second portion of the channel layer by layer on the first portion. (Invention 26) The method according to invention 25, comprising laser welding the protective layer onto the porous insert. (Invention 27) The method according to invention 23, wherein the additive manufacturing process includes directly sintering a metal with a laser. (Invention 28) The method according to invention 23, wherein the porous insert comprises a catalyst material, an adsorbent material, or both. (Invention 29) The method according to invention 23, wherein the porous insert is a metal, a polymer, or a metal oxide. (Invention 30) The method according to any one of inventions 23 to 27, wherein the porous insert is formed by bonding a protective layer onto a porous metal support, then coating the porous metal support with a metal oxide and nickel or a noble metal to form a methane reforming catalyst, and then calcining the insert before placing it in the channel. (Invention 31) Inserting a catalyst insert into the device and welding a plug or a welding ring to seal the flow path at the outer periphery of the device, a method for manufacturing or modifying the chemical processor according to Invention 8.
Claims
1. A chemical processor having a circular shape, comprising a tube or a plurality of tubes that provide a radial fluid flow from a source inlet or a source manifold near the central region of the processor to the outer edge of the processor, wherein the tube or the plurality of tubes are exposed on the exposed surface of the chemical processor, whereby the surface is not smooth, the tube or the plurality of tubes having a circular, oval, or elliptical cross-section, and the processor being configured for a unit process, wherein the tube or the plurality of tubes have a surface exposed to the atmosphere, and the tube or the plurality of tubes are not covered by a plate, and the surface of the exposed tube or the plurality of tubes is curved, said chemical processor.
2. The chemical processor according to claim 1, further comprising a plurality of channels that provide a radial fluid flow from the outer edge to a receiving manifold, the receiving manifold being located near the central region of the chemical processor.
3. The chemical processor according to claim 1, wherein the tube or the plurality of tubes and the channels have an internal dimension of 1 cm or less.
4. The processor according to claim 1, wherein the tube or the plurality of tubes comprise straight radial channels.
5. The processor according to claim 1, wherein the tube or the plurality of tubes comprise curved channels extending from the central region to the outer edge.
6. The processor according to claim 1, wherein the tube or the plurality of tubes comprise a porous insert incorporated within the tube or the plurality of tubes.
7. The processor according to claim 6, wherein the porous insert comprises a catalytic material, an adsorbent material, or both.
8. The processor according to claim 6, wherein the porous insert comprises a porous metal support having a hole-free metal film welded to the surface of the porous metal support.
9. The processor according to claim 1, wherein the exposed surface comprises a domed surface.
10. The processor according to claim 9, further comprising a solar heat concentrator arranged to be a focus of the solar energy converged on the exposed surface.
11. The processor according to claim 1, wherein the exposed surface comprises a tube or a plurality of tubes, the tube or the plurality of tubes having a gradient of thermal expansion coefficient and the thermal expansion coefficient being low on the exposed surface.
12. A chemical processor having a circular shape, comprising a tube or a plurality of tubes that provide a radial fluid flow from a source inlet or a source manifold near the central region of the processor to the outer edge of the processor, the tube or the plurality of tubes being exposed on the exposed surface of the chemical processor, whereby the surface is not smooth, the tube or the plurality of tubes having a circular, oval, or elliptical cross-section, and the processor being configured for a unit process, The chemical processor, wherein the tube or the plurality of tubes comprises branched channels that are divided into two or more channels as they extend radially. Here, the tube or the plurality of tubes has a surface exposed to the atmosphere, and the tube or the plurality of tubes is not covered by a plate, and the surface of the exposed tube or the plurality of tubes is curved. The chemical processor.
13. A microchannel or mesochannel device comprising a first plurality of microchannels or mesochannels that provide a radial fluid flow from a source manifold to the outer edge of the device, and a second plurality of channels that provide a radial fluid flow from the outer edge to a receiving manifold, the source manifold and the receiving manifold being located near the central region of the device, and the device being configured for a unit process. The device further comprises a catalyst insert or a plurality of catalyst inserts disposed around the outer edge portion of the device, wherein the direction of the flow in the channel switches from a direction toward the outer edge portion to a direction away from the outer edge portion, and a ring disposed around the outer periphery of the device surrounding the catalyst insert or the plurality of catalyst inserts, and a flow path in which the direction of the flow in the channel switches from a direction toward the outer edge portion to a direction away from the outer edge portion, the microchannel or mesochannel device, wherein the channel has an exposed surface of the device, whereby the surface is not smooth, the channel has a circular, oval, or elliptical cross-section, and the device is configured for a unit process, the microchannel or mesochannel device, wherein the channel has a surface exposed to the atmosphere, and the channel is not covered by a plate, and the exposed surface of the channel is curved, the microchannel or mesochannel device.
14. The microchannel or mesochannel device according to claim 13, wherein the catalyst insert is wedge-shaped.
15. The microchannel or mesochannel device according to claim 13, wherein the first plurality of microchannels or mesochannels, the second plurality of channels, or both have an internal dimension of 1 cm or less.
16. The microchannel or mesochannel device according to claim 13, wherein the first plurality of microchannels or mesochannels, the second plurality of channels, or both comprise straight radial channels.
17. The microchannel or mesochannel device according to claim 13, wherein the first plurality of microchannels or mesochannels, the second plurality of channels, or both comprise curved channels extending from the central region to the outer edge portion.
18. The microchannel or mesochannel device according to claim 13, further comprising a solar heat concentrator disposed so as to be a focus of the solar energy concentrated in the device.
19. The microchannel or mesochannel device according to claim 13, wherein the catalyst insert or inserts are disposed inside both the first plurality of microchannels or mesochannels and the second plurality of channels.
20. The microchannel or mesochannel device according to claim 13, wherein the catalyst insert or inserts comprise a catalyst for steam reforming or reverse water gas shift reaction.
Citation Information
Patent Citations
Banmennikantaiojusuru kinzokuitataino seizohohoto konohohonojitsushinishosuru denkaiboban
JP1976105937A
Small reactor with heat exchanger
JP2003520672A
Catalytic reactor and reacting method
JP2007160227A
Method for producing dichroic micro liquid droplet
JP2012020217A
Microchip and method of manufacturing microchip
JP2014199206A