Structure of thermoelectric conversion module and thermoelectric conversion element
The thermoelectric conversion module uses a carbon nanotube yarn with alternating P-type and N-type sections connected in series and insulated by an insulating wire to enhance electrical conductivity while maintaining a temperature difference for efficient power generation.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-06-30
- Publication Date
- 2026-03-26
AI Technical Summary
Existing thermoelectric conversion elements face a trade-off between high electrical conductivity and maintaining a large temperature difference, as increasing electrical conductivity often leads to increased thermal conductivity, reducing efficiency.
A thermoelectric conversion module with a carbon nanotube yarn spirally wound around a thermally insulating substrate, where P-type and N-type semiconductor portions are alternately arranged and connected in series, with one end in the heat receiving section and the other in the heat dissipation section, and insulated by an insulating wire.
The module maintains a significant temperature difference between the heat receiving and dissipation sections while enhancing electrical conductivity, allowing for efficient power generation.
Smart Images

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Abstract
Description
Technical Field
[0001] The present invention relates to the structure of a thermoelectric conversion module and a thermoelectric conversion element.
Background Art
[0002] Conventionally, thermoelectric conversion elements and thermoelectric conversion modules that obtain an electromotive force by the Seebeck effect by connecting a P-type semiconductor and an N-type semiconductor and applying a temperature difference to both ends have been widely used. In this regard, a thermoelectric conversion element configured in a fibrous form by carbon nanotubes is known (for example, Patent Document 1).
Prior Art Documents
Patent Documents
[0003]
Patent Document 1
Patent Document 2
Summary of the Invention
Problems to be Solved by the Invention
[0004] In order to obtain a large power generation amount in a thermoelectric conversion element, it is preferable to ensure a large temperature difference between the heat receiving side and the heat radiating side in the thermoelectric conversion element. On the other hand, a high electrical conductivity is required as a characteristic contributing to the high functionality of the thermoelectric conversion element. Generally, the thermal conductivity and the electrical conductivity have a positive relationship. Therefore, when the electrical conductivity of the material of the thermoelectric conversion element is increased, the thermal conductivity also increases, making it difficult to ensure the temperature difference necessary to obtain a large power generation amount, and there is a problem that the thermoelectric conversion efficiency (energy conversion efficiency) decreases.
[0005] The present invention has been made in view of the above problems, and its object is to In a thermoelectric conversion module, the temperature difference between the heat receiving side and the heat dissipating side is increased. provide a technology capable of
Means for Solving the Problems
[0006] To solve the above problems, the present invention employs the following means. That is, one aspect of the present invention is a thermoelectric conversion module having a heat receiving section and a heat dissipation section, which generates electricity by utilizing the temperature difference between the heat receiving section and the heat dissipation section. The thermoelectric conversion module according to the present invention comprises a thermally insulating substrate and a carbon nanotube yarn formed in a fibrous manner from carbon nanotubes and wound spirally around the substrate, wherein the carbon nanotube yarn includes a plurality of P-type portions formed as P-type semiconductors and a plurality of N-type portions formed as N-type semiconductors, wherein in the stretching direction of the carbon nanotube yarn, the P-type portions and the N-type portions are arranged alternately and connected in series, one side of the spiral body formed by the carbon nanotube yarn is formed as the heat receiving portion, and the other side opposite to the one side with respect to the substrate is formed as the heat dissipation portion, wherein in the stretching direction of the carbon nanotube yarn, the lengths of the P-type portions and the N-type portions are shorter than the length of one turn of the spiral body, and the P-type portions and the N-type portions are arranged such that one end of each is included in the heat receiving portion and the other end of each is included in the heat dissipation portion.
[0007] According to the thermoelectric conversion module of the present invention, by interposing a heat-insulating substrate between the heat-receiving section and the heat-dissipating section, a temperature difference between the heat-receiving section and the heat-dissipating section, that is, a temperature difference between the ends of the P-type section and the N-type section, can be ensured. 。
[0008] Furthermore, the thermoelectric conversion module according to the present invention further comprises insulating wire material having insulating properties, The base material is insulating, and the insulating wire may be wound spirally around the base material so as to be interposed between adjacent single-turn portions of the carbon nanotube yarn in the helical body.
[0009] Furthermore, in the thermoelectric conversion module according to the present invention, the carbon nanotube yarn may be formed as an untwisted yarn in which a plurality of carbon nanotubes are oriented in one direction and assembled.
[0010] Furthermore, in the thermoelectric conversion module according to the present invention, the carbon nanotube yarn may be formed of a plurality of carbon nanotubes oriented parallel to the direction in which the electric current flows through the carbon nanotube yarn and perpendicular to the direction in which heat moves from the heat receiving section to the heat dissipating section.
[0011] Furthermore, in the thermoelectric conversion module according to the present invention, the carbon nanotube yarn may be formed as a twisted yarn in which a bundle of multiple carbon nanotubes is twisted at a twist angle of 4° or less.
[0012] Furthermore, the present invention can also be specified as the structure of a thermoelectric conversion element provided in the thermoelectric conversion module described above. That is, the present invention is a structure of a thermoelectric conversion element having a heat receiving part and a heat dissipation part, which generates electricity using the temperature difference between the heat receiving part and the heat dissipation part, comprising a carbon nanotube yarn formed in a fibrous form from carbon nanotubes and spirally wound around a thermally insulating substrate, wherein the carbon nanotube yarn includes a plurality of P-type parts formed as a P-type semiconductor and a plurality of N-type parts formed as an N-type semiconductor, and in the stretching direction of the carbon nanotube yarn, the P-type parts and the N-type parts are arranged alternately and these The structure of the thermoelectric conversion element may be such that the carbon nanotube yarns are connected in series, one side of the helical body formed from the carbon nanotube yarn is formed as the heat receiving portion, the other side opposite to the one side with the substrate in between is formed as the heat dissipation portion, the length of the P-type portion and the length of the N-type portion are shorter than the length of one turn of the helical body in the stretching direction of the carbon nanotube yarn, and the P-type portion and the N-type portion are arranged such that one end of each is included in the heat receiving portion and the other end of each is included in the heat dissipation portion. [Effects of the Invention]
[0013] According to the present invention, in a thermoelectric conversion module, Increase the temperature difference between the heat receiving side and the heat dissipating side. this becomes possible.
Brief Description of the Drawings
[0014] [Figure 1] It is a cross-sectional view schematically showing the usage state of the thermoelectric conversion module according to the embodiment. [Figure 2] It is a right side view of the thermoelectric conversion module according to the embodiment. [Figure 3] It is a top view of the thermoelectric conversion module according to the embodiment. [Figure 4] It is a diagram for explaining the configuration of the carbon nanotube yarn according to the embodiment. [Figure 5] It is a schematic diagram for explaining the relationship between the base material and the carbon nanotube yarn in the thermoelectric conversion module according to the embodiment. [Figure 6] It is a cross-sectional view schematically showing the usage state of the thermoelectric conversion module according to Modification 1 of the embodiment. [Figure 7] It is an enlarged view of a part of the carbon nanotube yarn according to Modification 2 of the embodiment.
Modes for Carrying Out the Invention
[0015] Hereinafter, embodiments of the present invention will be described with reference to the drawings. The configurations described in the following embodiments are not intended to limit the technical scope of the invention only to those, unless otherwise specified. In this specification, "insulating property" refers to electrical insulating property unless otherwise explained.
[0016] FIG. 1 is a cross-sectional view schematically showing the usage state of the thermoelectric conversion module 100 according to the embodiment. The arrows shown in FIG. 1 represent the front and rear, top and bottom, and left and right of the thermoelectric conversion module 100. However, these directions are defined for convenience of explanation and are not intended to limit the orientation of the thermoelectric conversion module according to the present invention. In FIG. 1, a cross-section orthogonal to the front and rear directions is shown. FIG. 2 is a right side view of the thermoelectric conversion module 100 according to the embodiment. FIG. 3 is a top view of the thermoelectric conversion module 100 according to the embodiment.
[0017] [Overall Configuration] As shown in FIGS. 1 to 3, the thermoelectric conversion module 100 has a generally cylindrical outer shape extending in the front and rear directions. The thermoelectric conversion module 100 is used while being disposed between a warm heat source 200 and a cold heat source 300 arranged vertically. The warm heat source 200 and the cold heat source 300 are heat sources for applying a temperature difference to the thermoelectric conversion module 100, and the warm heat source 200 is at a higher temperature than the cold heat source 300. The thermoelectric conversion module 100 has a heat receiving portion 201 that receives heat from the outside and a heat radiating portion 202 that radiates heat to the outside. The heat receiving portion 201 is formed at the upper part of the thermoelectric conversion module 100 so as to contact the warm heat source 200, and the heat radiating portion 202 is formed at the lower part of the thermoelectric conversion module 100 so as to contact the cold heat source 300. By the heat receiving portion 201 receiving heat from the warm heat source 200 and the heat radiating portion 202 radiating heat to the cold heat source 300, a temperature difference is generated between the heat receiving portion 201 and the heat radiating portion 202. Although details will be described later, the thermoelectric conversion module 100 generates electricity by utilizing the temperature difference between the heat receiving portion 201 and the heat radiating portion 202.
[0018] As shown in FIGS. 1 to 3, the thermoelectric conversion module 100 includes a base material 1, a carbon nanotube yarn 2, and an insulating wire 3. Hereinafter, each component of the thermoelectric conversion module 100 will be described.
[0019] [Base Material 1] The base material 1 is formed in a cylindrical shape with a substantially circular cross-section, extending in the front-to-back direction. The base material 1 also possesses thermal insulation and electrical insulation properties. For example, the base material 1 can be made of a material with low thermal conductivity and electrical conductivity. Examples of materials for the base material 1 include, but are not limited to, rubber, urethane, and ceramic materials. In this example, the base material 1 is made of rubber and is flexible. It is not necessary for the entire base material 1 to be composed of a material with thermal insulation and electrical insulation properties. For example, the base material 1 may be constructed by covering the surface of a core material with the aforementioned thermal insulation and electrical insulation material. In this case, the configuration including the core material and the covering material corresponds to "base material 1". Furthermore, the shape and material of the base material according to the present invention are not limited to those described above.
[0020] [Carbon nanotube yarn] Carbon nanotube yarn 2 is a flexible and conductive wire material formed in a fibrous manner, mainly composed of carbon nanotubes. Figure 4 is a diagram illustrating the structure of carbon nanotube yarn 2 according to an embodiment. As shown in enlarged view A3 of Figure 4, carbon nanotube yarn 2 contains multiple fibrous carbon nanotubes (also called CNTs) 211, and these multiple carbon nanotubes 211 are bonded together by intermolecular attractive forces to form a single fibrous material. The carbon nanotubes constituting carbon nanotube yarn 2 may be multi-walled carbon nanotubes (MW carbon nanotubes), single-walled carbon nanotubes (SW carbon nanotubes), or a composite material in which these are mixed. Furthermore, carbon nanotube yarn 2 may be graphitized. Carbon nanotube yarn 2 is graphitized by electrically heating carbon nanotube yarn 2 placed in a graphitization furnace together with coke powder. Graphitizing carbon nanotube yarn 2 can reduce its electrical resistance. The ends of the carbon nanotube yarn 2 are electrically connected via an external load (not shown). The current flows along the extension direction (length direction) D1 of the carbon nanotube yarn 2. In other words, the direction in which the current flows through the carbon nanotube yarn 2 is the extension direction D1.
[0021] In the carbon nanotube yarn 2, multiple carbon nanotubes 211 are oriented in a predetermined direction, forming electron transport paths (i.e., paths through which electric current flows). As shown in the enlarged view A3 of Figure 4, in the carbon nanotube yarn 2 according to this example, multiple carbon nanotubes 211 are bundled together without twisting and oriented in the stretching direction D1. More specifically, as shown in the enlarged view A3 of Figure 4, the orientation direction D2 of the multiple carbon nanotubes 211 and the stretching direction D1 of the carbon nanotube yarn 2 are parallel. In other words, the carbon nanotube yarn 2 according to this example is formed as an untwisted yarn in which multiple carbon nanotubes 211 are oriented and assembled in one direction. As a result, since multiple carbon nanotubes 211 are oriented in one direction, the electrical resistance can be reduced compared to the case where they are not oriented in one direction. However, the present invention is not limited thereto, and the carbon nanotube yarn may be formed as a twisted yarn as in the modified example 2 described later.
[0022] Furthermore, the carbon nanotube yarn 2 is configured such that P-type and N-type properties alternate in its stretching direction D1. Specifically, as shown in Figure 4, the carbon nanotube yarn 2 includes a plurality of P-type portions 21P formed as P-type semiconductors and a plurality of N-type portions 21N formed as N-type semiconductors, which are arranged alternately in the stretching direction D1 and connected in series. The P-type portions 21P and N-type portions 21N are formed over a predetermined range in the stretching direction D1 of the carbon nanotube yarn 2 by injecting a dopant into the carbon nanotubes 211 that constitute the carbon nanotube yarn 2. Note that since carbon nanotubes originally have the properties of a P-type semiconductor, doping of the P-type portions 21P is not essential. In the carbon nanotube yarn 2 according to this example, the length of the P-type portions 21P and the length of the N-type portions 21N are equal in the stretching direction D1 of the carbon nanotube yarn 2. However, the present invention is not limited thereto, and the lengths of the P-type portions and N-type portions may differ.
[0023] In Figure 4, the symbol C1 indicates the connection between the end of the P-type portion 21P and the end of the N-type portion 21N. In this example, since the P-type portion 21P and the N-type portion 21N are directly connected (PN junction), the P-type portion 21P and the N-type portion 21N are adjacent to each other in the stretching direction of the carbon nanotube yarn 2, and the connection portion C1 is formed as the boundary where the P-type portion 21P and the N-type portion 21N switch. The P-type portion 21P and the N-type portion 21N may also be connected via another conductor, in which case the other conductor constitutes the connection portion C1.
[0024] Figure 5 is a schematic diagram illustrating the relationship between the substrate 1 and the carbon nanotube yarn 2 in the thermoelectric conversion module 100 according to the embodiment. As shown in Figure 5, the carbon nanotube yarn 2 is wound spirally around the substrate 1. More specifically, the carbon nanotube yarn 2 is wound spirally around the side surface of the substrate 1. The spirally wound carbon nanotube yarn 2 forms a helical body 20 surrounding the substrate 1. The central axis of the helical body, indicated by the symbol CA1, extends along the direction of extension of the substrate 1 (in this example, the front-to-back direction). Hereinafter, the direction in which the central axis CA1 extends may also be referred to as the axial direction. Here, the portion corresponding to one turn of the helical body 20, indicated by the symbol 20a in Figure 5, is referred to as a single turn portion. At this time, as shown in Figure 5, in the helical body 20, P-type portions 21P and N-type portions 21N are alternately arranged, each for half a turn (half a circumference of the single turn portion 20a). That is, In the stretching direction of the carbon nanotube yarn 2, the lengths of the P-type portion 21P and the N-type portion 21N are equal to the length of half a turn of the helical body 20. Therefore, the helical body 20 is configured such that each turn portion 20a contains one P-type portion 21P and one N-type portion 21N. In other words, one turn portion 20a of the helical body 20 is formed by one P-type portion 21P and one N-type portion 21N. In this invention, the lengths of the P-type portion and the N-type portion in the stretching direction of the carbon nanotube yarn are not necessarily equal to half a turn of the helical body. In this invention, the lengths of the P-type portion and the N-type portion in the stretching direction of the carbon nanotube yarn are only required to be shorter than the length of one turn of the helical body in that stretching direction.
[0025] As shown in Figure 5, the P-shaped portion 21P forms the left half of the spiral body 20, and the N-shaped portion 21N forms the right half of the spiral body 20. Therefore, each of the multiple connection portions C1 is located either on the upper or lower part of the spiral body 20. More specifically, of two adjacent connection portions C1 in the axial direction (front-to-back direction in this example) of the spiral body 20, one is located on the upper part of the spiral body 20, and the other is located on the lower part of the spiral body 20. By arranging the connection portions C1 alternately on the upper and lower sides in this way, the upper part of the spiral body 20 is formed as the heat receiving portion 201, and the lower part of the spiral body 20 is formed as the heat dissipation portion 202. As shown in Figure 5, the heat receiving portion 201 and the heat dissipation portion 202 are formed on opposite sides of the base material 1 (the upper and lower sides of the base material 1 in this example) as a region including multiple connection portions C1 aligned in the axial direction.
[0026] Each of the multiple connection points C1 contained in the carbon nanotube yarn 2 is located in either the heat receiving section 201 or the heat dissipation section 202. Therefore, as shown in Figure 5, each of the multiple P-type sections 21P has one end included in the heat receiving section 201 and the other end included in the heat dissipation section 202. Similarly, each of the multiple N-type sections 21N has one end included in the heat receiving section 201 and the other end included in the heat dissipation section 202. As shown in Figure 1, the heat receiving section 201 is in contact with the heat source 200 located above the thermoelectric conversion module 100, and the heat dissipation section 202 is in contact with the cooling source 300 located below the thermoelectric conversion module 100.
[0027] Doping to impart semiconductor properties to the carbon nanotube yarn 2 is performed with the carbon nanotube wire spirally wound around the substrate 1. In doping, with the carbon nanotube wire wound around the substrate 1, the left half is immersed in a solution containing a P-type doping agent, and the right half is immersed in a solution containing an N-type doping agent. This yields a spiral body 20 in which the P-type portion 21P and the N-type portion 21N are arranged alternately on the left and right sides, each accounting for half a turn. Doping may be performed by various methods such as vapor deposition, sputtering, or printing.
[0028] [Insulating wire] The insulating wire 3 is an insulating wire and, as shown in Figures 2 and 3, is wound around the side surface of the base material 1 together with the carbon nanotube yarn 2. Examples of insulating materials for the insulating wire 3 include, but are not limited to, insulating synthetic fibers such as nylon. The insulating wire 3 is wound spirally around the base material 1 so as to be interposed between adjacent single-turn portions 20a, 20a in the helical body 20 of the carbon nanotube yarn 2. In this way, the thermoelectric conversion module 100 has a double helix structure in which the carbon nanotube yarn 2 and the insulating wire 3 are alternately arranged along the axial direction of the helical body 20.
[0029] [Power generation using thermoelectric conversion modules] The following describes the power generation by the thermoelectric conversion module 100 using Figure 1. As shown in Figure 1, the thermoelectric conversion module 100 is used in a state where it is positioned between the heat source 200 and the cold source 300, which are arranged vertically. The heat receiving section 201 of the thermoelectric conversion module 100 is in contact with the heat source 200 and is therefore heated by receiving heat from the heat source 200. On the other hand, the heat dissipating section 202 of the thermoelectric conversion module 100 is in contact with the cold source 300 and is therefore cooled by dissipating heat to the cold source 300. As a result, the heat receiving section 201 becomes hotter than the heat dissipating section 202, creating a temperature difference between the heat receiving section 201 and the heat dissipating section 202. Here, as described above, the P-type section 21P and N-type section 21N that constitute the carbon nanotube yarn 2 are arranged such that one end of each is included in the heat receiving section 201 and the other end of each is included in the heat dissipating section 202. Therefore, as the heat receiving section 201 becomes hotter than the heat dissipating section 202, one end of the P-type section 21P (the end included in the heat receiving section 201) becomes hotter than the other end (the end included in the heat dissipating section 202), resulting in a temperature difference between the two ends of the P-type section 21P. As a result, positive charge transport occurs in the P-type section 21P from the heat receiving section 201 to the heat dissipating section 202, causing the heat dissipating section 202 to become positively charged and the heat receiving section 201 to become negatively charged. Similarly, one end of the N-type section 21N (the end included in the heat receiving section 201) becomes hotter than the other end (the end included in the heat dissipating section 202), resulting in a temperature difference between the two ends of the N-type section 21N. As a result, negative charge transport occurs in the N-type section 21N from the heat receiving section 201 to the heat dissipating section 202, causing the heat dissipating section 202 to become negatively charged and the heat receiving section 201 to become positively charged. In this way, thermoelectric power due to the Seebeck effect is generated in the P-type section 21P and the N-type section 21N. Then, by connecting an external load to both ends of the carbon nanotube yarn 2, current flows through the carbon nanotube yarn 2, and power can be extracted. As shown in Figure 1, in the P-type section 21P, current flows from the heat receiving section 201 to the heat dissipation section 202, and in the N-type section 21N, current flows from the heat dissipation section 202 to the heat receiving section 201.
[0030] In this case, as shown in Figure 1, in the thermoelectric conversion module 100, one side (upper part) of the helical body 20 formed from carbon nanotube yarn 2 is formed as a heat receiving section 201, and the other side (lower part) opposite the heat receiving section 201, with the base material 1 in between, is formed as a heat dissipation section 202. In other words, the heat receiving section 201 and the heat dissipation section 202 are formed on opposite sides (upper and lower sides) of the heat insulating base material 1. The heat insulating base material 1 is interposed between the heat receiving section 201 and the heat dissipation section 202, which suppresses heat transfer from the heat receiving section 201 to the heat dissipation section 202. As a result, a temperature difference between the heat receiving section 201 and the heat dissipation section 202, that is, a temperature difference between both ends of the P-type section 21P and the N-type section 21N, is ensured. be .
[0031] Furthermore, as described above, since the base material 1 is insulating, it is prevented that the P-type portion 21P and the N-type portion 21N contained in the carbon nanotube yarn 2 are electrically connected via the base material 1. In addition, since insulating wire 3 with insulating properties is interposed between adjacent single-turn portions 20a, 20a in the helical body 20, it is prevented that the P-type portion 21P and the N-type portion 21N are electrically connected at locations other than the connection portion C1. As a result, the state in which the P-type portion 21P and the N-type portion 21N are electrically connected in series is maintained.
[0032] As described above, the carbon nanotube yarn 2 in this example is formed as an untwisted yarn in which multiple carbon nanotubes 211 are bundled together without twisting, and the orientation direction D2 of the multiple carbon nanotubes 211 is parallel to the stretching direction D1 of the carbon nanotube yarn 2, which is the direction in which the electric current flows. For this reason, the electrical conductivity of the thermoelectric conversion module 100 can be increased. Here, when comparing heat transfer in the orientation direction D2 with heat transfer in the direction perpendicular to the orientation direction D2 (the direction indicated by the symbol D3 in the enlarged view A3 of Figure 4) in the carbon nanotube yarn 2, there is a tendency for heat to be less easily transferred in the direction perpendicular to the orientation direction D2, D3.
[0033] Here, in Figure 1, the direction from the heat receiving section 201 to the heat dissipation section 202 (downward in this example) is defined as the first direction D. The first direction D is the direction of heat transfer when heat moves from the heat receiving section 201 to the heat dissipation section 202 over the shortest distance. At this time, as shown in the enlarged view A1 of the heat receiving section 201 in Figure 1, the orientation direction D2 and the first direction D are orthogonal in the heat receiving section 201. Similarly, as shown in the enlarged view A2 of the heat dissipation section 202 in Figure 1, the orientation direction D2 and the first direction D are also orthogonal in the heat dissipation section 202. This is because the carbon nanotube yarn 2 is formed as an untwisted yarn. Because the orientation direction D2 and the first direction D are orthogonal in the heat receiving section 201 and the heat dissipation section 202, heat transfer from the heat receiving section 201 to the heat dissipation section 202 is further suppressed. As a result, a more favorable temperature difference between the heat receiving section 201 and the heat dissipation section 202 is secured.
[0034] [Effects / Effects] As described above, the thermoelectric conversion module 100 according to this embodiment comprises a thermally insulating substrate 1 and a carbon nanotube yarn 2 formed in a fibrous manner from carbon nanotubes 211 and wound spirally around the substrate 1. The carbon nanotube yarn 2 includes a plurality of P-type portions 21P formed as P-type semiconductors and a plurality of N-type portions 21N formed as N-type semiconductors, and in the stretching direction of the carbon nanotube yarn 2, the P-type portions 21P and N-type portions 21N are arranged alternately and connected in series. Furthermore, one side of the helical body 20 formed from the carbon nanotube yarn 2 is formed as a heat receiving portion 201, and the other side opposite to this side, with the substrate 1 in between, is formed as a heat dissipation portion 202. In addition, in the stretching direction of the carbon nanotube yarn 2, the lengths of the P-type portions 21P and the N-type portions 21N are shorter than the length of one winding portion 20a of the helical body 20. Furthermore, the P-type section 21P and the N-type section 21N are arranged such that one end of each is included in the heat receiving section 201 and the other end of each is included in the heat dissipation section 202.
[0035] With such a thermoelectric conversion module 100, by interposing a heat-insulating substrate 1 between the heat-receiving section 201 and the heat-dissipating section 202, it is possible to secure a temperature difference between the heat-receiving section 201 and the heat-dissipating section 202, that is, a temperature difference between the ends of the P-type section 21P and the N-type section 21N. .Ma Furthermore, even if the thermal conductivity of the carbon nanotube yarn 2 increases due to the increased electrical conductivity of the carbon nanotube yarn 2, the thermoelectric conversion module 100 can maintain a temperature difference between the heat receiving section 201 and the heat dissipation section 202 due to the heat insulation properties of the base material 1. Therefore, the thermoelectric conversion module 100 makes it possible to maintain a temperature difference between the heat receiving section 201 and the heat dissipation section 202 while increasing the electrical conductivity of the carbon nanotube yarn 2. .Ma Furthermore, according to the present invention, it is possible to contribute to Goal 7 "Affordable and Clean Energy," Goal 9 "Industry, Innovation and Infrastructure," and Goal 12 "Responsible Consumption and Production," among the 17 Sustainable Development Goals (SDGs) led by the United Nations.
[0036] Furthermore, since the thermoelectric conversion module 100 employs a structure in which carbon nanotube yarn 2 is wound around the base material 1, the number of series connections between the P-type section 21P and the N-type section 21N can be easily increased simply by increasing the number of turns of the carbon nanotube yarn 2. This makes it possible to obtain a large current with a compact module. In addition, by using a flexible material such as rubber for the base material 1, the thermoelectric conversion module 100 can be flexibly deformed. This improves the convenience of the thermoelectric conversion module 100.
[0037] Here, if a strip-shaped carbon nanotube nonwoven fabric were to be used instead of the filamentous carbon nanotube yarn 2, the width of each winding would increase, limiting the number of windings and potentially preventing the acquisition of a high current. Furthermore, because the carbon nanotubes in the carbon nanotube nonwoven fabric are not oriented, it tends to have higher electrical resistance. However, increasing the film thickness or width of the carbon nanotube nonwoven fabric to obtain a high current would result in a decrease in flexibility (ease of twisting) and elasticity. In contrast, the thermoelectric conversion module 100 uses filamentous carbon nanotube yarn 2, allowing for a higher number of windings and thus enabling the acquisition of a high current. Additionally, carbon nanotube yarn 2 has advantages over carbon nanotube nonwoven fabric in terms of flexibility and elasticity.
[0038] Furthermore, the thermoelectric conversion module 100 according to this embodiment further comprises insulating wire 3, the base material 1 is insulating, and the insulating wire 3 is wound spirally around the base material 1 so as to be interposed between adjacent single-turn portions 20a, 20a in the helical body 20 of the carbon nanotube yarn 2. This makes it possible to maintain a state in which the P-type portion 21P and the N-type portion 21N are electrically connected in series, and a high voltage can be obtained.
[0039] It should be noted that the thermoelectric conversion module does not necessarily have insulating wires, nor is it essential for the base material to be insulating. For example, if the P-type and N-type parts are electrically connected in series by covering the carbon nanotube yarn with an insulating material, the thermoelectric conversion module does not need to have insulating wires, nor does the base material need to be insulating.
[0040] Furthermore, the carbon nanotube yarn 2 of the thermoelectric conversion module 100 according to this embodiment is formed as an untwisted yarn in which a plurality of carbon nanotubes 211 are oriented in one direction and assembled. As a result, by using an untwisted yarn in which a plurality of carbon nanotubes 211 are oriented in the stretching direction D1 of the carbon nanotube yarn 2 as the carbon nanotube yarn 2, the electrical conductivity of the carbon nanotube yarn 2 can be improved. In addition, by making the carbon nanotube yarn 2 an untwisted yarn, in the heat receiving section 201 and the heat dissipation section 202, the first direction D, which is the direction from the heat receiving section 201 to the heat dissipation section 202, is perpendicular to the orientation direction D2 of the carbon nanotubes 211, so that a more suitable temperature difference can be secured between the heat receiving section 201 and the heat dissipation section 202. However, the carbon nanotube yarn according to the present invention does not have to have a plurality of carbon nanotubes oriented in one direction, nor does it have to be an untwisted yarn.
[0041] Here, a structure in which carbon nanotube yarn is wound around a substrate, as in the thermoelectric conversion module 100 described above, is referred to as the "thermoelectric conversion element structure." The thermoelectric conversion element structure may utilize existing materials as the substrate around which the carbon nanotube yarn is wound. For example, a cylindrical furnace body used in high-temperature furnaces has an outer layer formed of insulating material, and such a furnace body may be used as the substrate. Furthermore, the substrate used in the thermoelectric conversion element structure does not have to be a fixed-shape object. Since air has insulating properties, air may be used as the substrate for the thermoelectric conversion element structure.
[0042] [Example 1] Figure 6 is a schematic cross-sectional view showing the usage state of the thermoelectric conversion module 100A according to the first modified embodiment. In Figure 6, a cross-section perpendicular to the front-rear direction is shown. The thermoelectric conversion module 100A according to the first modified embodiment mainly differs from the thermoelectric conversion module 100 described in Figure 1, etc., in that the base material 1A is formed in the shape of a rectangular prism with a substantially rectangular cross-section, but other points are generally the same as the thermoelectric conversion module 100. The base material 1A according to the first modified embodiment has a rectangular cross-sectional shape including a pair of opposing long sides 1a, 1b and a pair of opposing short sides 1c, 1d. The base material 1A is arranged so that the long sides 1a, 1b are parallel to the vertical direction. In other words, the cross-sectional shape of the base material 1A is a rectangle with its length in the direction from the heat receiving section 201 to the heat dissipation section 202 (first direction D). The short side 1c of the base material 1A is in contact with the heat source 200, and the short side 1d is in contact with the cold source 300.
[0043] As shown in Figure 6, in the thermoelectric conversion module 100A, the heat receiving section 201 and the heat dissipation section 202 are formed on opposite sides (upper and lower sides) of a heat insulating base material 1A, and the P-type section 21P and N-type section 21N are arranged such that one end of each is included in the heat receiving section 201 and the other end of each is included in the heat dissipation section 202.
[0044] Even with such a thermoelectric conversion module 100A, the same effects as the thermoelectric conversion module 100 can be obtained. That is, by interposing a heat-insulating base material 1A between the heat receiving section 201 and the heat dissipation section 202, a temperature difference between the heat receiving section 201 and the heat dissipation section 202, i.e., a temperature difference between the ends of the P-type section 21P and the N-type section 21N can be secured. .Ma Furthermore, the thermal insulation effect can be enhanced by making the cross-sectional shape of the base material 1A a rectangle with its longer side in the direction from the heat receiving section 201 to the heat dissipation section 202 (first direction D). The cross-sectional shape of the base material according to the present invention may also be square.
[0045] [Differentiation 2] Figure 7 is an enlarged view of a part of the carbon nanotube yarn 2B according to Modification 2 of the embodiment. As shown in Figure 7, the carbon nanotube yarn 2B according to Modification 2 is formed as a twisted yarn by twisting together bundles of multiple carbon nanotubes 211. Although the multiple carbon nanotubes 211 are oriented in one direction, they are not parallel to the stretching direction D1 of the carbon nanotube yarn 2B. Here, as shown in Figure 7, the twisting angle θ1 is defined as the angle between the stretching direction D1 of the carbon nanotube yarn 2B and the orientation direction D2 of the carbon nanotubes 211 in the carbon nanotube yarn 2B. In Modification 2, θ1 ≤ 4°. This allows for a suitable temperature difference between the heat receiving section 201 and the heat dissipation section 202. From the viewpoint of ensuring a temperature difference, it is more preferable to have θ1 ≤ 3°, and even more preferable to have θ1 ≤ 2°.
[0046] <Other> Although preferred embodiments of the present invention have been described above, the various forms described above can be combined as much as possible. [Explanation of symbols]
[0047] 1,1A: Base material 2,2B: Carbon nanotube yarn 21P:P type part 21N:N type part 211: Carbon nanotubes 3: Insulating wire 20: Spiral 20a: 1st turn 201:Heat receiving part 202: Heat dissipation part 100, 100A: Thermoelectric conversion module
Claims
1. A thermoelectric conversion module having a heat receiving section and a heat dissipation section, which generates electricity by utilizing the temperature difference between the heat receiving section and the heat dissipation section, A base material having heat insulation properties, The invention comprises a carbon nanotube yarn formed in a fibrous manner from carbon nanotubes and wound spirally around the substrate, The carbon nanotube yarn includes a plurality of P-type portions formed as a P-type semiconductor and a plurality of N-type portions formed as an N-type semiconductor. In the stretching direction of the carbon nanotube yarn, the P-type portion and the N-type portion are arranged alternately and connected in series. One side of the helical body formed from the carbon nanotube yarn is formed as the heat receiving portion, and the other side opposite to the one side, with the substrate in between, is formed as the heat dissipation portion. In the stretching direction of the carbon nanotube yarn, the length of the P-type portion and the length of the N-type portion are shorter than the length of one turn of the helical body. The P-type portion and the N-type portion are arranged such that one end of each is included in the heat receiving portion and the other end of each is included in the heat dissipation portion. In the carbon nanotube yarn, the angle between the stretching direction of the carbon nanotube yarn and the orientation direction of the carbon nanotubes is 4° or less. Thermoelectric conversion module.
2. It further includes insulating wire material having insulating properties, The aforementioned substrate has insulating properties. The insulating wire is wound spirally around the base material so as to be interposed between adjacent single-turn portions of the carbon nanotube yarn in the helical body. The thermoelectric conversion module according to claim 1.
3. The carbon nanotube yarn is formed as an untwisted yarn in which multiple carbon nanotubes are oriented in one direction and assembled. A thermoelectric conversion module according to claim 1 or 2.
4. The carbon nanotube yarn is formed of a plurality of carbon nanotubes in the heat receiving section and the heat dissipation section, oriented in a direction parallel to the direction in which the current flows and perpendicular to the direction in which heat moves from the heat receiving section to the heat dissipation section over the shortest distance. A thermoelectric conversion module according to claim 1 or 2.
5. The carbon nanotube yarn is formed as a twisted yarn in which bundles of multiple carbon nanotubes are twisted at a twist angle of 4° or less. A thermoelectric conversion module according to claim 1 or 2.
6. A thermoelectric conversion element having a heat receiving section and a heat dissipation section, which generates electricity by utilizing the temperature difference between the heat receiving section and the heat dissipation section, The material comprises a carbon nanotube yarn formed in a fibrous structure from carbon nanotubes and spirally wound around a heat-insulating substrate. The carbon nanotube yarn includes a plurality of P-type portions formed as a P-type semiconductor and a plurality of N-type portions formed as an N-type semiconductor. In the stretching direction of the carbon nanotube yarn, the P-type portion and the N-type portion are arranged alternately and connected in series. One side of the helical body formed from the carbon nanotube yarn is formed as the heat receiving portion, and the other side opposite to the one side, with the substrate in between, is formed as the heat dissipation portion. In the stretching direction of the carbon nanotube yarn, the length of the P-type portion and the length of the N-type portion are shorter than the length of one turn of the helical body. The P-type portion and the N-type portion are arranged such that one end of each is included in the heat receiving portion and the other end of each is included in the heat dissipation portion. In the carbon nanotube yarn, the angle between the stretching direction of the carbon nanotube yarn and the orientation direction of the carbon nanotubes is 4° or less. Structure of a thermoelectric conversion element.
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