Heating elements and cabin purification systems

The heater element with a honeycomb structure and PTC properties addresses the challenge of underutilized functional material by expanding the effective heating area, enhancing the efficiency and cost-effectiveness of vehicle interior purification systems.

JP7754938B2Active Publication Date: 2025-10-15NGK CORP

Patent Information

Application Number
JP2023556202
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-10-29
Filing Date
2022-09-21
Publication Date
2025-10-15
Estimated Expiration
2042-09-21

AI Technical Summary

Technical Problem

Existing vehicle interior purification systems face challenges in effectively heating the functional material to ensure complete regeneration, leading to reduced efficiency and increased cost due to underutilized functional material and insufficient temperature rise.

Method used

A heater element with a honeycomb structure and PTC properties, featuring electrodes on both ends and along the partition walls, expands the effective heating area for the functional material, ensuring uniform temperature distribution and efficient regeneration.

Benefits of technology

The solution enhances the utilization rate of the functional material, improving the cost performance and efficiency of the vehicle interior purification system by effectively heating a wider area within the flow path.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

Provided is a heater element with which it is possible to widen the area in the direction in which a flow path, which can be effectively heated, extends. The heater element has a honeycomb structure and satisfies either condition (i) or (ii) below: (i) a first electrode is provided on one end face, and a second electrode has an electrode portion A provided on another end face of the honeycomb structure and an electrode portion B that is connected to the electrode portion A and provided on the surface of a partition over a predetermined length in the direction in which a flow path extends from the other end face; and (ii) a first electrode has an electrode portion A provided on one end face and an electrode portion B that is connected to the electrode portion A and provided on the surface of a partition over a predetermined length in the direction in which a flow path extends from the one end face, and a second electrode has an electrode portion A provided on another end face and an electrode portion B that is connected to the electrode portion A and provided on the surface of the partition over a predetermined length in the direction in which the flow path extends from the other end face.
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Description

[Technical Field]

[0001] The present invention relates to a heating element and a vehicle interior purification system. [Background technology]

[0002] There is a growing demand for improved cabin environments in automobiles and other vehicles. Specific requirements include reducing CO2 emissions in the cabin to suppress driver drowsiness, controlling humidity in the cabin, and removing harmful volatile components such as odorous components and allergy-inducing substances from the cabin. Ventilation is an effective solution to these requirements, but it can significantly reduce heating energy in winter, resulting in poor energy efficiency. This energy loss, particularly in battery electric vehicles (BEVs), poses a significant problem: the driving range is significantly reduced.

[0003] As a method for solving the above problems, Patent Documents 1 and 2 disclose a vehicle interior purification system that captures target components, such as water vapor and CO2, in the vehicle interior air using a functional material such as an adsorbent, and then heats the target components to react or desorb, releasing them outside the vehicle, thereby regenerating the functional material. Such vehicle interior purification systems require as much contact between the air and the functional material as possible to ensure the target components are captured, and also require the functional material to be heated to a predetermined temperature to promote regeneration. Regeneration can be achieved, for example, by removing substances adsorbed on the functional material through an oxidation reaction, or by desorbing and discharging substances adsorbed on the functional material. In either case, the functional material must be heated to an appropriate temperature depending on the adsorbed substances.

[0004] On the other hand, Patent Document 3 discloses a heater element including a columnar honeycomb structure having an outer peripheral side wall and partition walls disposed inside the outer peripheral side wall and defining a plurality of cells that form flow paths from a first end face to a second end face, the partition walls having PTC characteristics, an average thickness of 0.13 mm or less, and an opening ratio at the first and second end faces of 0.81 or more. This heater element is used as a heater for heating a vehicle interior. [Prior art documents] [Patent documents]

[0005] [Patent Document 1] Japanese Patent Application Publication No. 2020-104774 [Patent Document 2] Japanese Patent Application Publication No. 2020-111282 [Patent Document 3] International Publication No. 2020 / 036067 Summary of the Invention [Problem to be solved by the invention]

[0006] The heater element described in Patent Document 3 is used to heat the vehicle interior, and its honeycomb structure allows for a large heating area, making it an efficient heating means. Therefore, using such a heater element as a carrier for a functional material is thought to contribute to shortening the regeneration time of the functional material. In particular, the heater element described in Patent Document 3 can be heated by passing current and has PTC properties, so it is thought that it can easily heat functional materials while suppressing excessive heat generation and thermal degradation of the functional materials. Furthermore, because the risk of excessive temperature buildup is avoided, safety can be ensured even if the initial resistance is set low and the heating rate is increased, and temperature can be raised in a short period of time.

[0007] However, the inventors' investigations revealed that when a functional material-containing layer is provided on the surface of the partition walls that divide the cells of the heater element described in Patent Document 3, the temperature near the inlet side of the heater element is difficult to increase, and the area in the direction of the flow path in which the functional material can be effectively heated within the cell is narrowed. In other words, some of the functional material supported on the heater element has low regeneration efficiency and cannot be effectively utilized. Furthermore, when the functional material is a catalyst, heating may be required to activate the catalyst. However, if the temperature of the supported catalyst is insufficient, the catalyst cannot be effectively utilized. Providing a functional material-containing layer that cannot be effectively utilized reduces the cost performance of the heater element.

[0008] The present invention has been made in consideration of the above circumstances, and an object of the present invention is to provide, in one embodiment, a heater element that can widen the area in the direction in which the flow path extends in which the functional material can be effectively heated. In another embodiment, the present invention is to provide a vehicle interior purification system including such a heater element. In yet another embodiment, the present invention is to provide a vehicle interior purification system that helps increase the rate at which the functional material can be effectively utilized. [Means for solving the problem]

[0009] [Aspect 1] A honeycomb structure having an outer peripheral wall and partition walls disposed inside the outer peripheral wall to define a plurality of cells that form flow paths extending from one end face to the other end face, wherein at least the partition walls are made of a material having PTC properties; and a pair of electrodes consisting of a first electrode and a second electrode; Equipped with A heater element in which the first electrode and the second electrode satisfy either of the following conditions (i) or (ii): (i) the first electrode is provided on the one end surface; the second electrode has an electrode portion A provided on the other end face, and an electrode portion B connected to the electrode portion A and provided on the surface of the partition wall over a predetermined length from the other end face in the direction in which the flow channel extends; (ii) the first electrode has an electrode portion A provided on the one end face and an electrode portion B connected to the electrode portion A and provided on the surface of the partition wall over a predetermined length from the one end face in the direction in which the flow channel extends, The second electrode has an electrode portion A provided on the other end face, and an electrode portion B connected to electrode portion A and provided on the surface of the partition wall over a predetermined length from the other end face in the direction in which the flow path extends. [Aspect 2] 2. The heater element according to aspect 1, wherein the predetermined length of the electrode portion B is an average length that is 1 / 200 or more and less than 1 / 2 of the length of the honeycomb structure in the direction in which the flow channels extend. [Aspect 3] A heater element according to aspect 1 or 2, wherein the electrode portion B is provided continuously over the predetermined length on the entire surface of all of the partition walls that define the plurality of cells. [Aspect 4] A heater element according to aspect 1 or 2, wherein the electrode portion B is provided continuously over the predetermined length on a surface of a part of a partition wall that defines the plurality of cells. [Aspect 5] 5. The heating element according to any one of aspects 1 to 4, wherein the material having PTC properties is composed of a material containing barium titanate as a main component and substantially no lead. [Aspect 6] A heating element according to any one of aspects 1 to 5, wherein the material having PTC properties has a volume resistivity at 25° C. of 0.5 Ω·cm or more and 20 Ω·cm or less. [Aspect 7] 7. The heater element according to any one of aspects 1 to 6, wherein the average thickness of the electrode portion B is 1 / 10,000 or more and 1 / 10 or less of the hydraulic diameter of the cell. [Aspect 8] The honeycomb structure has a partition wall thickness of 0.125 mm or less and a cell density of 100 cells / cm. 2 A heater element according to any one of Aspects 1 to 7 below, wherein the cell pitch is 1.0 mm or more. [Aspect 9] The honeycomb structure has a partition wall thickness of 0.08 mm or more and 0.36 mm or less and a cell density of 2.54 cells / cm 2 Over 140 cells / cm 2 Hereinafter, the heater element according to any one of Aspects 1 to 7, wherein the opening ratio of the cells is 0.70 or more. [Aspect 10] 10. The heater element according to any one of aspects 1 to 9, wherein the first electrode and the second electrode are made of the same material. [Aspect 11] 11. The heater element according to any one of Aspects 1 to 10, further comprising a functional material-containing layer on the surface of the partition wall. [Aspect 12] 12. The heater element according to claim 11, wherein the functional material-containing layer contains a functional material having a function of adsorbing one or more substances selected from the group consisting of water vapor, carbon dioxide, and odor components. [Aspect 13] 13. The heater element according to claim 11, wherein the functional material-containing layer contains a catalyst. [Aspect 14] At least one heater element according to any one of aspects 1 to 13; a power source for applying a voltage to the heater element; an inlet pipe communicating the casing with an inlet end face of the heater element; an outlet pipe having a first passage communicating an outlet end face of the heater element with the casing; a fan for introducing air from the vehicle compartment into the inlet end surface of the heater element through the inlet pipe; Equipped with The heater element is arranged such that the inlet end surface is the one end surface and the outlet end surface is the other end surface, or such that the inlet end surface is the other end surface and the outlet end surface is the one end surface. Vehicle cabin purification system. [Aspect 15] A vehicle interior purification system as described in aspect 14, wherein the heater element is positioned so that the inlet end face is the one end face and the outlet end face is the other end face. [Aspect 16] the outlet pipe has, in addition to the first path, a second path that connects the outlet end surface of the heater element with the outside of the vehicle, the outflow pipe has a switching valve that can switch the flow of air passing through the outflow pipe between the first path and the second path, a first mode in which the applied voltage from the power supply is turned off, the switching valve is switched so that the air flowing through the outflow pipe passes through the first path, and the ventilator is turned on; a second mode in which the applied voltage from the power supply is turned on, the switching valve is switched so that the air flowing through the outflow pipe passes through the second path, and the ventilator is turned on; 16. The vehicle interior purification system according to claim 14 or 15, further comprising a control unit capable of switching between: [Aspect 17] A honeycomb structure having an outer peripheral wall and partition walls disposed inside the outer peripheral wall and defining a plurality of cells that form flow paths extending from an inlet end face to an outlet end face; and a functional material-containing layer provided on a surface of the partition wall; 17. The vehicle interior purification system according to any one of Aspects 14 to 16, wherein a function-added body comprising the above-mentioned is disposed adjacent to the downstream side of the heater element. [Aspect 18] A vehicle interior purification system according to embodiment 17, wherein at least the partition wall of the functionally-added body is made of cordierite. [Aspect 19] A honeycomb structure having an outer peripheral wall and partition walls disposed inside the outer peripheral wall and defining a plurality of cells that form flow paths extending from an inlet end face to an outlet end face; a first electrode disposed on the entrance end; and a second electrode disposed on the outlet end surface; a heater element comprising: A honeycomb structure having an outer peripheral wall and partition walls disposed inside the outer peripheral wall to define a plurality of cells that form flow paths extending from an inlet end face to an outlet end face; and a functional material-containing layer provided on a surface of the partition wall; a functional addition body disposed adjacent to the downstream side of the heater element; a power source for applying a voltage to the heater element; an inlet pipe communicating the casing with the inlet end face of the heater element; an outflow pipe having a first path connecting the outlet end face of the function-added body and the casing; a ventilator for introducing air from the vehicle compartment into the inlet end surface of the heater element through the inlet pipe; A vehicle interior purification system. [Effects of the Invention]

[0010] According to one embodiment of the present invention, a heater element is provided that can widen the area in the direction of extension of the flow path where the functional material can be effectively heated. According to another embodiment of the present invention, a vehicle interior purification system equipped with the heater element is provided. By providing a functional material-containing layer on the partition wall surface of the heater element, the proportion of functional material that is difficult to regenerate and therefore not effectively utilized and / or that is not effectively utilized because its function is not exerted due to insufficient temperature rise can be reduced. In other words, the area of ​​the functional material-containing layer that can be effectively utilized is expanded. This makes it possible to improve the cost performance of the heater element.

[0011] Furthermore, in a vehicle interior purification system according to yet another embodiment of the present invention, in which the heater element is arranged upstream and the functional additive is arranged downstream, it is also possible to increase the rate at which the functional material can be effectively utilized. [Brief explanation of the drawings]

[0012] [Figure 1A] FIG. 1 is a schematic perspective view of a heater element according to a first embodiment of the present invention, viewed from one end face. [Figure 1B] FIG. 2 is a schematic perspective view of the heater element according to the first embodiment of the present invention as viewed from the other end face. [Figure 1C] 1 is a schematic diagram of a cross section parallel to the flow path direction and passing through a central axis O extending in the flow path direction of a heater element according to a first embodiment of the present invention. [Figure 1D] 2 is a schematic diagram of a cross section of the heater element according to the first embodiment of the present invention taken along line XX in FIG. 1C, the cross section being perpendicular to the flow path direction. FIG. [Figure 2A] FIG. 10 is a schematic perspective view of a heater element according to a second embodiment of the present invention, as viewed from one end face. [Figure 2B] FIG. 10 is a schematic perspective view of the heater element according to the second embodiment of the present invention as viewed from the other end face. [Figure 2C] 10 is a schematic diagram of a cross section parallel to the flow path direction and passing through a central axis O extending in the flow path direction of a heater element according to a second embodiment of the present invention. FIG. [Figure 2D] 2D is a schematic diagram of a cross section of a heater element according to a second embodiment of the present invention, taken along line XX in FIG. 2C, perpendicular to the flow path direction. [Figure 3A] FIG. 10 is a schematic diagram of a cross section perpendicular to the flow path direction of a heater element according to another embodiment of the present invention. [Figure 3B] FIG. 10 is a schematic diagram of a cross section perpendicular to the flow path direction of a heater element according to another embodiment of the present invention. [Figure 3C] FIG. 10 is a schematic diagram of a cross section perpendicular to the flow path direction of a heater element according to another embodiment of the present invention. [Figure 3D]FIG. 10 is a schematic diagram of a cross section perpendicular to the flow path direction of a heater element according to another embodiment of the present invention. [Figure 4] 1 is a schematic diagram showing the configuration of a vehicle compartment purification system according to one embodiment of the present invention; [Figure 5] FIG. 4 is a schematic diagram showing the configuration of a vehicle interior purification system according to another embodiment of the present invention. [Figure 6A] FIG. 2 is a schematic perspective view of an example of a function-added body as viewed from one end face. [Figure 6B] 6B is a schematic diagram of a cross section of the function-added body shown in FIG. 6A, the cross section passing through a central axis O extending in the flow path direction and parallel to the flow path direction. [Figure 6C] 6C is a schematic diagram of a cross section of the function-added body taken along line XX in FIG. 6B, which is perpendicular to the flow path direction. [Figure 7A] FIG. 10 is a schematic perspective view of an example of a heater element that can be used in a vehicle interior purification system according to yet another embodiment of the present invention, as viewed from one end face. [Figure 7B] 7B is a schematic diagram of a cross section of the heater element shown in FIG. 7A that passes through a central axis O extending in the flow path direction and is parallel to the flow path direction. [Figure 7C] 7C is a schematic diagram of a cross section perpendicular to the flow path direction of the heater element when cut along line XX in FIG. 7B. [Figure 8] FIG. 10 is a schematic diagram showing the configuration of a vehicle interior purification system according to yet another embodiment of the present invention. [Figure 9] FIG. 10 is a contour diagram showing the temperature distribution inside the heater element by simulation. DETAILED DESCRIPTION OF THE INVENTION

[0013] Hereinafter, embodiments of the present invention will be described in detail with reference to the drawings. The present invention is not limited to the following embodiments, and it should be understood that modifications and improvements made to the following embodiments based on the ordinary knowledge of those skilled in the art without departing from the spirit of the present invention are also within the scope of the present invention.

[0014] (1. Heater element) A heater element according to one embodiment of the present invention can be suitably used as a heater element for use in passenger compartment purification systems in various vehicles, such as automobiles. Examples of vehicles include, but are not limited to, automobiles and trains. Examples of automobiles include, but are not limited to, gasoline-powered vehicles, diesel-powered vehicles, gas-fueled vehicles using CNG (compressed natural gas) or LNG (liquefied natural gas), fuel cell vehicles, electric vehicles, and plug-in hybrid vehicles. The heater element according to an embodiment of the present invention can be suitably used in vehicles without internal combustion engines, such as electric vehicles and trains.

[0015] 1A to 1D show a schematic perspective view and cross-sectional view of a heater element 1 according to a first embodiment of the present invention. FIGS. 2A to 2D show a schematic perspective view and cross-sectional view of a heater element 2 according to a second embodiment of the present invention. As shown in FIGS. 1A to 1D and 2A to 2D, the heater elements 1 and 2 include a honeycomb structure 10 having an outer peripheral wall 11 and partition walls 14 disposed inside the outer peripheral wall 11 to define a plurality of cells 13 that form flow paths extending from one end face 12a to the other end face 12b. The heater elements 1 and 2 include a pair of electrodes composed of a first electrode 30a and a second electrode 30b. The heater elements 1 and 2 may further include a functional material-containing layer 20 provided on the surface of the partition wall 14. The components of the heater elements 1 and 2 are described in detail below.

[0016] (1-1. Honeycomb structure) The shape of the honeycomb structure 10 is not particularly limited. For example, the outer shape of a cross section perpendicular to the flow path direction (the direction in which the cells 13 extend) of the honeycomb structure 10 can be a polygon (quadrilateral (rectangle, square), pentagon, hexagon, heptagon, octagon, etc.), circle, oval shape (egg, ellipse, oval, rounded rectangle, etc.), etc. The end faces (one end face 12a and the other end face 12b) have the same shape as the cross section. Furthermore, when the cross section and the end faces are polygonal, the corners may be chamfered.

[0017] The shape of the cells 13 is not particularly limited, but can be polygonal (such as a square, pentagon, hexagon, heptagon, or octagon), circular, or oval in a cross section perpendicular to the flow path direction of the honeycomb structure 10. These shapes may be a single shape or a combination of two or more shapes. Among these shapes, a square or hexagon is preferable. By providing cells 13 of such a shape, it is possible to reduce pressure loss during air flow. Note that FIGS. 1 and 2 show an example of a honeycomb structure 10 in which the cross-sectional outer shape and the shape of the cells 13 are square in a cross section perpendicular to the flow path direction.

[0018] The honeycomb structure 10 may be a honeycomb bonded body having a plurality of honeycomb segments and a bonding layer bonding the outer peripheral side surfaces of the plurality of honeycomb segments together. By using the honeycomb bonded body, it is possible to increase the total cross-sectional area of ​​the cells 13, which is important for ensuring the air flow rate, while suppressing the occurrence of cracks. The bonding layer can be formed using a bonding material. The bonding material is not particularly limited, but a ceramic material with a solvent such as water added to form a paste can be used. The bonding material may contain a material having PTC properties, or may contain the same material as the outer peripheral wall 11 and the partition walls 14. In addition to the role of bonding the honeycomb segments together, the bonding material can also be used as an outer peripheral coating material after bonding the honeycomb segments.

[0019] From the viewpoints of ensuring the strength of the honeycomb structure 10, reducing pressure loss when air passes through the cells 13, ensuring the amount of functional material carried, and ensuring the contact area with the air flowing within the cells 13, it is desirable to suitably combine the thickness of the partition walls 14, the cell density, and the cell pitch (or the cell opening rate). In this specification, the thickness of the partition walls 14 refers to the length of a line segment that connects the centers of gravity of adjacent cells 13 in a cross section perpendicular to the flow path direction and that line segment crosses the partition walls 14. The thickness of the partition walls 14 refers to the average value of the thicknesses of all the partition walls 14. In this specification, the cell density is a value obtained by dividing the number of cells by the area of ​​one end face of the honeycomb structure 10 (the total area of ​​the partition walls 14 and the cells 13 excluding the outer peripheral wall 11). In this specification, the cell pitch refers to a value calculated by the following calculation: First, the area per cell is calculated by dividing the area of ​​one end face of the honeycomb structure 10 (the total area of ​​the partition walls 14 and the cells 13 excluding the outer peripheral wall 11) by the number of cells. Next, the square root of the area per cell is calculated, and this is defined as the cell pitch. In this specification, the opening ratio of the cells 13 is a value obtained by dividing the total area of ​​the cells 13 partitioned by the partition walls 14 in a cross section perpendicular to the flow direction of the honeycomb structure 10 by the area of ​​one end face (the total area of ​​the partition walls 14 and the cells 13 excluding the outer wall 11). Note that when calculating the opening ratio of the cells 13, the first electrode 30a, the second electrode 30b, and the functional material-containing layer 20 are not taken into consideration.

[0020] In an embodiment advantageous from the viewpoint of carrying a sufficient amount of functional material, the thickness of the partition wall is 0.125 mm or less, and the cell density is 100 cells / cm 2 In a preferred embodiment, the thickness of the partition wall is 0.100 mm or less, and the cell density is 70 cells / cm. 2 In a more preferred embodiment, the partition wall thickness is 0.080 mm or less and the cell density is 65 cells / cm. 2 or less, and the cell pitch is 1.3 mm or more.

[0021] In each of the above embodiments, from the viewpoint of ensuring the strength of the honeycomb structure and maintaining low electrical resistance, the lower limit of the thickness of the partition walls is preferably 0.010 mm or more, more preferably 0.020 mm or more, and even more preferably 0.030 mm or more. In each of the above embodiments, from the viewpoint of ensuring the strength of the honeycomb structure, keeping the electrical resistance low, and increasing the surface area to promote reaction, adsorption, and desorption, the lower limit of the cell density is 30 cells / cm. 2 Preferably, 35 cells / cm or more.2 More preferably, 40 cells / cm or more. 2 It is even more preferable that the above is true. In each of the above embodiments, from the viewpoints of ensuring the strength of the honeycomb structure, maintaining low electrical resistance, and increasing the surface area to promote reaction, adsorption, and desorption, the upper limit of the cell pitch is preferably 2.0 mm or less, more preferably 1.8 mm or less, and even more preferably 1.6 mm or less.

[0022] In an embodiment that is advantageous from the viewpoint of achieving both a reduction in pressure loss and maintaining strength, the thickness of the partition wall is 0.08 mm or more and 0.36 mm or less, and the cell density is 2.54 cells / cm 2 Over 140 cells / cm 2 In a preferred embodiment, the thickness of the partition wall is 0.09 mm or more and 0.35 mm or less, and the cell density is 15 cells / cm. 2 More than 100 cells / cm 2 In a more preferred embodiment, the thickness of the partition walls is 0.14 mm or more and 0.30 mm or less, and the cell density is 20 cells / cm. 2 Over 90 cells / cm 2 Hereinafter, the cell aperture ratio is 0.85 or more.

[0023] In each of the above embodiments, from the viewpoint of ensuring the strength of the honeycomb structure, the upper limit of the cell opening ratio is preferably 0.94 or less, more preferably 0.92 or less, and even more preferably 0.90 or less.

[0024] The thickness of the peripheral wall 11 is not particularly limited, but is preferably determined based on the following viewpoints. First, from the viewpoint of reinforcing the honeycomb structure 10, the thickness of the peripheral wall 11 is preferably 0.05 mm or more, more preferably 0.06 mm or more, and even more preferably 0.08 mm or more. On the other hand, from the viewpoint of increasing the electrical resistance to suppress the initial current and reducing the pressure loss when air flows through, the thickness of the peripheral wall 11 is preferably 1.0 mm or less, more preferably 0.5 mm or less, even more preferably 0.4 mm or less, and even more preferably 0.3 mm or less. In this specification, the thickness of the outer wall 11 refers to the length in the normal direction of the side surface from the boundary between the outer wall 11 and the outermost cell 13 or partition wall 14 to the side surface of the honeycomb structure 10 in a cross section perpendicular to the flow path direction.

[0025] The length of the honeycomb structure 10 in the flow path direction and the cross-sectional area perpendicular to the flow path direction are not particularly limited and may be adjusted according to the required size of the heater elements 1 and 2. For example, when used in compact heater elements 1 and 2 while ensuring a predetermined function, the honeycomb structure 10 has a length in the flow path direction of 2 to 20 mm and a cross-sectional area perpendicular to the flow path direction of 10 cm. 2 The upper limit of the cross-sectional area perpendicular to the flow path direction is not particularly limited, but may be, for example, 300 cm 2 The following is the result.

[0026] The partition walls 14 constituting the honeycomb structure 10 are made of a material that can generate heat when electricity is applied, specifically, a material having a PTC (Positive Temperature Coefficient) characteristic. If necessary, the outer peripheral wall 11 may also be made of a material having a PTC characteristic like the partition walls 14.

[0027] The functional material-containing layer 20 can be heated by heat transfer from the heat-generating partition walls 14 (and the outer peripheral wall 11, if necessary). Furthermore, materials with PTC properties have the property that, when the temperature rises and exceeds the Curie point, the resistance value rises sharply, making it difficult for electricity to flow. Therefore, the partition walls 14 (and the outer peripheral wall 11, if necessary) limit the current flowing through the heater elements 1 and 2 when they reach high temperatures, thereby suppressing excessive heat generation in the heater elements 1 and 2. Therefore, it is also possible to suppress thermal degradation of the functional material-containing layer 20 due to excessive heat generation.

[0028] From the viewpoint of obtaining appropriate heat generation, the lower limit of the volume resistivity at 25°C of a material having PTC characteristics is preferably 0.5 Ω·cm or more, more preferably 1 Ω·cm or more, and even more preferably 5 Ω·cm or more. From the viewpoint of generating heat at a low driving voltage, the upper limit of the volume resistivity at 25°C of a material having PTC characteristics is preferably 20 Ω·cm or less, more preferably 18 Ω·cm or less, and even more preferably 16 Ω·cm or less. In this specification, the volume resistivity at 25°C of a material having PTC characteristics is measured in accordance with JIS K6271:2008.

[0029] From the viewpoint of being able to generate heat when electrically applied and having PTC characteristics, the outer peripheral wall 11 and the partition walls 14 are preferably made of a material mainly composed of barium titanate (BaTiO3), and more preferably made of ceramics composed of a material mainly composed of barium titanate (BaTiO3)-based crystal particles in which part of the Ba is substituted with a rare earth element. In this specification, the term "main component" refers to a component that accounts for more than 50 mass% of the total components. The content of BaTiO3-based crystal particles can be determined by fluorescent X-ray analysis. Other crystal particles can also be measured using the same method.

[0030] The composition formula of BaTiO3-based crystal particles in which part of Ba is replaced by rare earth elements is (Ba 1-x A x)TiO3, where A represents one or more rare earth elements and x is 0.0001≦x≦0.010. A is not particularly limited as long as it is a rare earth element, but is preferably one or more selected from the group consisting of La, Ce, Pr, Nd, Eu, Gd, Dy, Ho, Er, Y, and Yb, and more preferably La. x is preferably 0.001 or more, more preferably 0.0015 or more, from the viewpoint of preventing the electrical resistance at room temperature from becoming too high. On the other hand, x is preferably 0.009 or less, from the viewpoint of preventing the electrical resistance at room temperature from becoming too high due to insufficient sintering. The content of BaTiO3-based crystal particles in the ceramic, in which Ba is partially substituted with a rare earth element, is not particularly limited as long as it is an amount that serves as the main component, but is preferably 90 mass% or more, more preferably 92 mass% or more, and even more preferably 94 mass% or more. The upper limit of the content of BaTiO3-based crystal particles is not particularly limited, but is generally 99 mass%, preferably 98 mass%. The content of these BaTiO3-based crystal particles can be measured by fluorescent X-ray analysis. Other crystal particles can also be measured in the same manner.

[0031] From the viewpoint of reducing the environmental load, it is desirable that the materials used for the outer peripheral wall 11 and the partition walls 14 are substantially free of lead (Pb). Specifically, the Pb content of the outer peripheral wall 11 and the partition walls 14 is preferably 0.01% by mass or less, more preferably 0.001% by mass or less, and even more preferably 0% by mass. A low Pb content allows, for example, air heated by contact with the partition walls 14 during heat generation to be safely applied to living organisms such as humans. The Pb content of the outer peripheral wall 11 and the partition walls 14, calculated as PbO, is preferably less than 0.03% by mass, more preferably less than 0.01% by mass, and even more preferably 0% by mass. The lead content can be determined by ICP-MS (inductively coupled plasma mass spectrometry).

[0032] The lower limit of the Curie point of the material constituting the outer peripheral wall 11 and the partition wall 14 is preferably 100° C. or higher, more preferably 110° C. or higher, and even more preferably 125° C. or higher, from the viewpoint of efficient heating of air. The upper limit of the Curie point is preferably 250° C. or lower, more preferably 225° C. or lower, even more preferably 200° C. or lower, and even more preferably 150° C. or lower, from the viewpoint of safety as a part placed in or near the vehicle interior.

[0033] The Curie point of the material forming the outer peripheral wall 11 and the partition walls 14 can be adjusted by the type and amount of the shifter added. For example, the Curie point of barium titanate (BaTiO) is approximately 120°C, but by substituting part of the Ba and Ti with one or more of Sr, Sn, and Zr, the Curie point can be shifted to a lower temperature.

[0034] In this specification, the Curie point is measured by the following method: A sample is attached to a sample holder for measurement and placed in a measurement tank (e.g., MINI-SUBZERO MC-810P, manufactured by ESPEC Corporation), and the change in the sample's electrical resistance with respect to temperature change when the temperature is raised from 10°C is measured using a DC resistance meter (e.g., multimeter 3478A, manufactured by YOKOGAWA HEWLETT PACKARD, LTD.). The Curie point is determined as the temperature at which the resistance value is twice the resistance value at room temperature (20°C) based on the electrical resistance-temperature plot obtained by the measurement.

[0035] (1-2. Electrode) In the heater element 1 according to the first embodiment of the present invention, the first electrode 30a is provided on one end face 12a. The second electrode 30b has an electrode portion A provided on the other end face 12b, and an electrode portion B connected to electrode portion A and provided on the surface of the partition wall 14 over a predetermined length D1 from the other end face 12b in the direction in which the flow path extends.

[0036] In the heater element 1 according to the first embodiment, by arranging the first electrode 30a and the second electrode 30b in this manner, the distance between the first electrode 30a and the second electrode 30b in the direction in which the flow path extends can be shortened compared to when the first electrode 30a and the second electrode 30b are provided only on one end face 12a and the other end face 12b, respectively. Since the shorter inter-electrode distance reduces electrical resistance, it becomes possible to widen the area in the direction in which the flow path extends that can be effectively heated.

[0037] In the first embodiment, air may be circulated through the cells 13 of the heater element 1 so that one end face 12a is upstream and the other end face 12b is downstream, or so that one end face 12a is downstream and the other end face 12b is upstream. However, the upstream portion of the heater element 1 is cooled by the cold inflow air, while the downstream portion is not cooled because the inflow air is heated. Therefore, the downstream portion is sufficiently heated by thermal conduction, so that no current flows through the honeycomb structure 10 in the downstream portion, and even if electricity flows through the electrodes arranged in the direction of the flow path, the downstream portion can be sufficiently heated. For this reason, circulating air through the cells 13 of the heater element 1 so that one end face 12a is upstream and the other end face 12b is downstream is preferable because it can further expand the area in the direction of the flow path in which the functional material-containing layer 20 can be effectively heated.

[0038] In the heater element 2 according to the second embodiment of the present invention, the first electrode 30a has an electrode portion A provided on one end face 12a and an electrode portion B connected to the electrode portion A and provided on the surface of the partition wall 14 over a predetermined length D2a from the one end face 12a in the direction in which the flow path extends. The second electrode 30b has an electrode portion A provided on the other end face 12b and an electrode portion B connected to the electrode portion A and provided on the surface of the partition wall 14 over a predetermined length D2b from the other end face 12b in the direction in which the flow path extends.

[0039] In the heater element 2 according to the second embodiment, by arranging the first electrode 30a and the second electrode 30b in this manner, the distance between the first electrode 30a and the second electrode 30b in the direction in which the flow path extends can be shortened compared to when the first electrode 30a and the second electrode 30b are provided only on one end face 12a and the other end face 12b, respectively. Since the shorter distance between the electrodes reduces electrical resistance, it is possible to widen the area in the direction in which the flow path extends that can be effectively heated.

[0040] In the second embodiment, air may be circulated inside the cells 13 of the heater element 2 so that one end face 12a is on the upstream side and the other end face 12b is on the downstream side, or so that one end face 12a is on the downstream side and the other end face 12b is on the upstream side. However, as described above, the downstream portion of the heater element 2 can be heated even if no current flows through the honeycomb structure 10 and electricity flows through the electrodes provided in the direction of the flow path. For this reason, it is preferable to circulate air inside the cells 13 of the heater element 2 so that the end face having the electrode with the shorter average length of D2a and D2b is on the upstream side and the end face having the electrode with the longer average length is on the downstream side, since this further widens the region in the direction of the flow path in which the functional material-containing layer 20 can be effectively heated.

[0041] In both the first and second embodiments, the longer the predetermined lengths (D1, D2a, D2b) of the electrode portions B, the shorter the inter-electrode distance can be. Therefore, the predetermined lengths (D1, D2a, D2b) of the electrode portions B are preferably 1 / 200 or more of the length of the honeycomb structure 10 in the direction in which the flow channels extend, more preferably 1 / 100 or more, and even more preferably 1 / 50 or more. However, the predetermined lengths (D1, D2a, D2b) of the electrode portions B are preferably less than 1 / 2 of the average length, more preferably 1 / 3 or less, and even more preferably 1 / 4 or less, because the distance that can be heated by thermal conduction is limited and there is a risk of short-circuiting due to contact between the electrode portions B of the first electrode 30a and the second electrode 30b.

[0042] The average length of the electrode portions B in the direction of the flow channels of the honeycomb structure 10 is measured by the following procedure. First, a cross-sectional image of the heater element is obtained at a magnification of approximately 50x using a scanning electron microscope or the like. The cross section is a cross section passing through a central axis O extending in the flow channel direction of the honeycomb structure 10 and parallel to the flow channel direction, as exemplified in FIGS. 1C and 2C. The position of the central axis O is the position of the center of gravity in the cross section perpendicular to the flow channels of the honeycomb structure 10 (see FIGS. 1A and 2A). Next, to determine the average lengths D1 and D2b of the second electrode 30b, the lengths of all electrode portions B of the second electrode 30b in the cross-sectional image in the direction of the flow channels from the other end face 12b of the honeycomb structure 10 are determined, and the average is calculated. To determine the average length D2a of the first electrode 30a, the lengths of all electrode portions B of the first electrode 30a in the cross-sectional image in the direction of the flow channels from one end face 12a of the honeycomb structure 10 are determined, and the average is calculated.

[0043] By applying a voltage between the first electrode 30a and the second electrode 30b, it becomes possible to generate heat in the honeycomb structure 10 by Joule heat. The first electrode 30a and the second electrode 30b may have extensions extending toward the outside of the honeycomb structure 10. The provision of the extensions makes it easier to connect to a connector that serves as a connection to the outside.

[0044] The first electrode 30a and the second electrode 30b are not particularly limited, and may be, for example, a metal or alloy containing at least one selected from Cu, Ag, Al, Ni, and Si. Alternatively, an ohmic electrode capable of making ohmic contact with the outer peripheral wall 11 and / or the partition wall 14 having PTC characteristics may be used. The ohmic electrode may contain, for example, at least one selected from Al, Au, Ag, and In as a base metal and at least one selected from Ni, Si, Zn, Ge, Sn, Se, and Te as a dopant for n-type semiconductors. The first electrode 30a and the second electrode 30b may have a single-layer structure or a stacked structure of two or more layers. When the first electrode 30a and the second electrode 30b have a stacked structure of two or more layers, the materials of the layers may be the same or different.

[0045] The thickness of the first electrode 30a and the second electrode 30b is not particularly limited and can be appropriately set depending on the method for forming the first electrode 30a and the second electrode 30b. Examples of methods for forming the first electrode 30a and the second electrode 30b include metal deposition methods such as sputtering, vapor deposition, electrolytic deposition, and chemical deposition. The electrodes 30a, 30b can also be formed by applying an electrode paste and then baking it, or by thermal spraying. Furthermore, the electrodes 30a, 30b may be formed by joining metal or alloy plates.

[0046] In both the first electrode 30a and the second electrode 30b, the thickness of the electrode portion A is preferably about 5 to 30 μm in baking of an electrode paste, about 100 to 1000 nm in dry plating such as sputtering and vapor deposition, about 10 to 100 μm in thermal spraying, and about 5 to 30 μm in wet plating such as electrolytic deposition and chemical deposition. In addition, when joining metal or alloy plates, the thickness of the first electrode 30a and the second electrode 30b is preferably about 5 to 100 μm.

[0047] In both the first electrode 30a and the second electrode 30b, a larger average thickness of the electrode portion B is desirable in terms of ensuring electrical continuity, but a smaller average thickness is advantageous in terms of reducing the airflow resistance of the inflowing air. Therefore, the average thickness of the electrode portion B is preferably 1 / 10,000 or more and 1 / 10 or less, and more preferably 1 / 1,000 or more and 1 / 20 or less, of the hydraulic diameter of the cells 13. The hydraulic diameter of the cells 13 is a value (Pt) calculated by subtracting the partition wall thickness t (mm) from the cell pitch P (mm) described above.

[0048] The average thickness of each electrode portion B of the first electrode 30a and the second electrode 30b is measured by the following procedure. First, a cross-sectional image of the heater element is obtained at approximately 50x magnification using a scanning electron microscope or the like. The cross-section is a cross-section that passes through a central axis O extending in the flow path direction of the honeycomb structure 10 and is parallel to the flow path direction, as exemplified in FIGS. 1C and 2C. The position of the central axis O is the position of the center of gravity of the cross-section perpendicular to the flow path direction of the honeycomb structure 10 (see FIGS. 1D and 2D). For each electrode portion B visible in the cross-sectional image, the average thickness is calculated by dividing the cross-sectional area by the length of the cell 13 in the flow path extension direction. This calculation is performed for all electrode portions B of the first electrode 30a and the second electrode 30b visible in the cross-sectional image, and the overall average value is used as the average thickness of each electrode portion B of the first electrode 30a and the second electrode 30b.

[0049] In both the heater element 1 according to the first embodiment and the heater element 2 according to the second embodiment, the electrode portion B is provided continuously over the predetermined length on the entire surface of all of the partition walls 14 that define the multiple cells 13. In other words, when the heater elements 1 and 2 are observed in a cross section perpendicular to the flow path direction in the region of the predetermined length, all of the partition walls 14 that define the cells 13 (the partition walls 14 and the outer peripheral wall 11 that define the outermost cells 13) are covered over the entire periphery with the electrode portion B of the first electrode 30a or the second electrode 30b (see FIGS. 1D and 2D). This configuration makes it possible to uniformly shorten the inter-electrode distance in all of the cells 13. This makes it easier for the heater elements 1 and 2 to generate heat uniformly.

[0050] However, when the heater elements 1 and 2 are observed in a cross section perpendicular to the flow path direction within the predetermined length, the electrode portions B of the first electrode 30a and the second electrode 30b may have portions that do not cover the partition walls 14. That is, in another embodiment, the electrode portions B can be provided continuously over the predetermined length on a portion of the surface of the partition walls 14 that define the plurality of cells 13. Such an embodiment includes (1) an embodiment in which the electrode portions B are provided continuously over the predetermined length on a portion of the surface of all of the partition walls 14 that define the plurality of cells 13, and (2) an embodiment in which the electrode portions B are provided continuously over the predetermined length on a portion of the surface or the entire surface of some of the partition walls 14 that define the plurality of cells 13. FIGS. 3A to 3D are schematic diagrams of cross sections perpendicular to the flow path direction before the functional material-containing layer 20 is formed for heater elements according to several other embodiments in which the electrode portions B of the first electrode 30a or the second electrode 30b have different structures.

[0051] In the embodiment of FIG. 3A, electrode portions B are provided in all cells 13. Furthermore, the partition walls 14 that define each cell 13 (in the case of the outermost cells 13, the partition walls 14 and outer peripheral wall 11 that define the outermost cells 13) have a rectangular cross section, and all corners 13b are covered with electrode portions B. On the other hand, none of the side portions 13a other than the corners 13b are covered with electrode portions B.

[0052] In the embodiment of FIG. 3B , electrode portions B are provided in some of the cells 13. Furthermore, the partition walls 14 that define each cell 13 in which the electrode portions B are provided (in the case of the outermost cell 13 in which the electrode portions B are provided, the partition walls 14 and the outer peripheral wall 11 that define the outermost cell 13) have a rectangular cross section, and all corners 13 b are covered by the electrode portions B. On the other hand, none of the side portions 13 a other than the corners 13 b are covered by the electrode portions B. Note that when electrode portions B are provided in some of the cells 13, it is preferable from the viewpoint of heat generation uniformity to provide the electrode portions B in point symmetry with respect to the central axis O as the center of symmetry in a cross section perpendicular to the flow path direction, or to provide the electrode portions B in line symmetry with respect to any line segment passing through the central axis O as the center of symmetry.

[0053] In the embodiment of FIG. 3C , electrode portions B are provided in all cells 13. Furthermore, the partition walls 14 that define each cell 13 (in the case of the outermost cell 13, the partition walls 14 and outer peripheral wall 11 that define the outermost cell 13) have a rectangular cross section, and only one corner 13b is covered with the electrode portion B. On the other hand, all portions other than the one corner 13b are not covered with the electrode portion B.

[0054] In the embodiment of FIG. 3D , electrode portions B are provided in all cells 13. Furthermore, the partition walls 14 that define each cell 13 (in the case of the outermost cells 13, the partition walls 14 and outer peripheral wall 11 that define the outermost cells 13) have a rectangular cross section, and only a pair of opposing corners 13b are covered with the electrode portions B. On the other hand, any portions other than the pair of opposing corners 13b are not covered with the electrode portions B.

[0055] (1-3.Functional material containing layer) The functional material-containing layer 20 can be provided on the surfaces of the partition walls 14 of the honeycomb structure 10 (in the case of the outermost cells 13, on the partition walls 14 and the outer wall 11 that define the outermost cells 13). The functional material-containing layer 20 may be provided on the surfaces of at least one of the electrode portion B of the first electrode 30a and the electrode portion B of the second electrode 30b, in addition to the partition walls 14. It is more preferable that the functional material-containing layer 20 is provided at least on the surfaces of the partition walls 14 of the honeycomb structure 10 and the electrode portion B of the second electrode 30b. When the electrode portion B of the first electrode 30a is present, it is more preferable that the functional material-containing layer 20 is provided at least on the surfaces of the partition walls 14 of the honeycomb structure 10, the electrode portion B of the first electrode 30a, and the electrode portion B of the second electrode 30b.

[0056] The functional material contained in the functional material-containing layer 20 is not particularly limited as long as it can exhibit the desired function, and examples thereof include adsorbents and catalysts. The adsorbent preferably has the function of adsorbing one or more components selected from the group consisting of water vapor, carbon dioxide, and odor components, which are to be removed from the air. It is also preferable that the adsorbent has the function of adsorbing harmful volatile components. The components to be removed can be purified by using a catalyst. Furthermore, an adsorbent and a catalyst may be used in combination to enhance the adsorbent's ability to capture the components to be removed.

[0057] The adsorbent preferably has the function of being able to adsorb components to be removed, such as water vapor, carbon dioxide, and harmful volatile components (e.g., aldehydes, odor components, etc.), at -20 to 40°C and desorb them at a high temperature of 60°C or higher. Examples of adsorbents having such a function include zeolite, silica gel, activated carbon, alumina, silica, low-crystalline clay, and amorphous aluminum silicate complexes. The type of adsorbent may be appropriately selected depending on the type of components to be removed. One type of adsorbent may be used alone, or two or more types may be used in combination.

[0058] The catalyst preferably has a function capable of promoting the oxidation-reduction reaction. Examples of catalysts having such a function include metal catalysts such as Pt, Pd, and Ag, and oxide catalysts such as CeO2 and ZrO2. One type of catalyst may be used alone, or two or more types may be used in combination.

[0059] Harmful volatile components contained in the air inside a vehicle include, for example, volatile organic compounds (VOCs), odor components, etc. Specific examples of harmful volatile components include ammonia, acetic acid, isovaleric acid, nonenal, formaldehyde, toluene, xylene, paradichlorobenzene, ethylbenzene, styrene, chlorpyrifos, di-n-butyl phthalate, tetradecane, di-2-ethylhexyl phthalate, diazinon, acetaldehyde, and N-methylcarbamate-2-(1-methylpropyl)phenyl.

[0060] The average thickness of the functional material-containing layer 20 is not particularly limited and may be determined depending on the size of the cells 13. For example, from the viewpoint of ensuring sufficient contact with air, the average thickness of the functional material-containing layer 20 is preferably 20 μm or more, more preferably 25 μm or more, and even more preferably 30 μm or more. On the other hand, from the viewpoint of preventing peeling of the functional material-containing layer 20 from the partition walls 14 and the outer peripheral wall 11, the average thickness of the functional material-containing layer 20 is preferably 400 μm or less, more preferably 380 μm or less, and even more preferably 350 μm or less.

[0061] The average thickness of the functional material-containing layer 20 is measured by the following procedure. As shown in FIGS. 1C and 2C, an arbitrary cross section passing through the central axis O extending in the flow direction of the honeycomb structure 10 and parallel to the flow direction is cut out, and a cross-sectional image at approximately 50x magnification is obtained using a scanning electron microscope or the like. The position of the central axis O is the position of the center of gravity of the cross section perpendicular to the flow direction of the honeycomb structure 10 (see FIGS. 1D and 2D). For each functional material-containing layer 20 visible in the cross-sectional image, the average thickness is calculated by dividing the cross-sectional area by the length of the cell 13 in the flow direction. This calculation is performed for all functional material-containing layers 20 visible in the cross-sectional image, and the overall average value is taken as the average thickness of the functional material-containing layers 20.

[0062] From the viewpoint of the functional material exerting the desired function in the heater elements 1 and 2, the amount of the functional material-containing layer 20 is preferably 50 g / L or more and 500 g / L or less, more preferably 100 g / L or more and 400 g / L or less, and even more preferably 150 g / L or more and 350 g / L or less, relative to the volume of the honeycomb structure 10. The volume of the honeycomb structure 10 is a value determined by the external dimensions of the honeycomb structure 10.

[0063] (2. Heater element manufacturing method) Next, a method for manufacturing the heater element according to the present invention will be described by way of example. The method for manufacturing the honeycomb structure constituting the heater element includes a molding step and a firing step. In the molding step, a clay containing ceramic raw materials including BaCO3 powder, TiO2 powder, and powder of a rare earth nitrate or hydroxide is molded to produce a honeycomb molded body with a relative density of 60% or more. The ceramic raw material can be obtained by dry mixing each powder to obtain a desired composition. The clay can be obtained by adding a dispersion medium, a binder, a plasticizer, and a dispersant to a ceramic raw material and kneading the mixture. The clay may contain additives such as a sifter, a metal oxide, a property improver, and a conductive powder, as needed. The blending amount of components other than the ceramic raw materials is not particularly limited as long as the amount is such that the relative density of the honeycomb formed body is 60% or more.

[0064] Here, in this specification, the "relative density of the honeycomb formed body" means the ratio of the density of the honeycomb formed body to the true density of the entire ceramic raw material. Specifically, it can be calculated by the following formula. Relative density (%) of honeycomb formed body = Density of honeycomb formed body (g / cm 3 ) / true density of the entire ceramic raw material (g / cm 3 ) x 100 The density of the honeycomb formed body can be measured by the Archimedes method using pure water as a medium. The true density of the entire ceramic raw material is calculated by multiplying the total mass (g) of each raw material by the total actual volume (cm) of each raw material. 3 ) can be calculated by dividing by

[0065] Examples of the dispersion medium include water and a mixed solvent of water and an organic solvent such as alcohol, with water being particularly preferred.

[0066] Examples of binders include organic binders such as methyl cellulose, hydroxypropyl methyl cellulose, hydroxyethyl cellulose, carboxymethyl cellulose, and polyvinyl alcohol. It is particularly preferable to use a combination of methyl cellulose and hydroxypropyl methyl cellulose. While one type of binder may be used alone or two or more types may be used in combination, it is preferable that the binder does not contain an alkali metal element.

[0067] Examples of the plasticizer include polyoxyalkylene alkyl ether, polycarboxylic acid polymer, and alkyl phosphate ester.

[0068] The dispersant may be a surfactant such as polyoxyalkylene alkyl ether, ethylene glycol, dextrin, fatty acid soap, polyalcohol, etc. The dispersant may be used alone or in combination of two or more.

[0069] The honeycomb formed body can be produced by extrusion molding of a clay. In extrusion molding, a die having a desired overall shape, cell shape, partition wall thickness, cell density, etc. can be used.

[0070] The relative density of the honeycomb formed body obtained by extrusion molding is 60% or more, preferably 65% ​​or more. By controlling the relative density of the honeycomb formed body within this range, it is possible to densify the honeycomb formed body and reduce its electrical resistance at room temperature. The upper limit of the relative density of the honeycomb formed body is not particularly limited, but is generally 80%, preferably 75%.

[0071] The honeycomb molded body can be dried before the firing step. The drying method is not particularly limited, and for example, a conventionally known drying method such as hot air drying, microwave drying, dielectric drying, reduced pressure drying, vacuum drying, freeze drying, etc. Among these, a drying method that combines hot air drying with microwave drying or dielectric drying is preferred because it can dry the entire molded body quickly and uniformly.

[0072] The firing step involves holding the temperature at 1150 to 1250°C, then raising the temperature to a maximum temperature of 1360 to 1430°C at a rate of 20 to 600°C / hour, and holding the temperature for 0.5 to 10 hours. By holding the honeycomb formed body at a maximum temperature of 1360 to 1430°C for 0.5 to 10 hours, a honeycomb structure 10 containing, as a main component, BaTiO3-based crystal particles in which part of Ba has been substituted with a rare earth element can be obtained. Furthermore, by maintaining the temperature at 1150 to 1250°C, Ba2TiO4 crystal particles generated during the firing process can be easily removed, and the honeycomb structure 10 can be made dense. Furthermore, by setting the heating rate from 1150 to 1250°C to the maximum temperature of 1360 to 1430°C at 20 to 600°C / hour, 1.0 to 10.0 mass% of Ba6Ti 17 O 40 Crystal grains can be generated in the honeycomb structure 10 .

[0073] The holding time at 1150 to 1250°C is not particularly limited, but is preferably 0.5 to 10 hours. By holding for such a time, Ba2TiO4 crystal particles formed during the firing process can be stably and easily removed.

[0074] The firing step preferably includes holding the mixture at 900 to 950°C for 0.5 to 5 hours during temperature increase. Holding the mixture at 900 to 950°C for 0.5 to 5 hours allows BaCO3 to efficiently decompose, making it easier to obtain a honeycomb structure 10 having a predetermined composition.

[0075] Before the firing step, a degreasing step may be carried out to remove the binder. The degreasing step is preferably carried out in an air atmosphere to completely decompose the organic components. Furthermore, the firing step is preferably carried out in an air atmosphere from the viewpoint of controlling electrical properties and reducing manufacturing costs. The firing furnace used in the firing step and degreasing step is not particularly limited, but an electric furnace, a gas furnace, or the like can be used.

[0076] A pair of electrodes (first electrode 30a and second electrode 30b) can be bonded to the honeycomb structure thus obtained to manufacture a heater element. The electrode portions A of the first electrode 30a and second electrode 30b can be formed on one end face 12a and the other end face 12b of the honeycomb structure 10 by a metal deposition method such as sputtering, vapor deposition, electrolytic deposition, or chemical deposition. Alternatively, the electrode portions A can be formed by applying an electrode paste to one end face 12a and the other end face 12b of the honeycomb structure 10 and then baking the paste. Furthermore, they can also be formed by thermal spraying. The electrode portions A may be composed of a single layer, or may be composed of multiple electrode layers with different compositions. When forming the electrode portions A on the end faces by the above method, blocking of the cells can be avoided by ensuring that the thickness of the electrode layers is not excessively large. For example, the thickness of the electrode is preferably about 5 to 30 μm in baking of a paste, about 100 to 1000 nm in dry plating such as sputtering and vapor deposition, about 10 to 100 μm in thermal spraying, and about 5 to 30 μm in wet plating such as electrolytic deposition and chemical deposition.

[0077] When the first electrode 30a and the second electrode 30b have both the electrode portion A and the electrode portion B, they can be formed, for example, by the following procedure. First, an electrode slurry containing an electrode material, an organic binder, and a dispersion medium is prepared, and the honeycomb structure 10 is immersed in the slurry from one end face 12a or the other end face 12b to a desired depth in the flow direction of the honeycomb structure 10. The dispersion medium can be water, an organic solvent (e.g., toluene, xylene, ethanol, isopropanol, n-butanol, ethyl acetate, butyl acetate, terpineol, dihydroterpineol, Texanol, ethylene glycol monobutyl ether acetate, diethylene glycol monoethyl ether acetate, diethylene glycol monoethyl ether, diethylene glycol monobutyl ether acetate, diethylene glycol monobutyl ether, propylene glycol monomethyl ether acetate, propylene glycol monomethyl ether), or a mixture thereof. Excess slurry on the periphery of the honeycomb structure 10 is removed by blowing and wiping. Thereafter, the slurry is dried to form electrode portions B on the surfaces of the partition walls 14, etc., and electrode portions A on one end face 12a or the other end face 12b of the honeycomb structure 10. The electrode portions A may be formed separately by the method described above. Drying can be performed while heating the heater element to a temperature of, for example, about 120 to 600°C. The series of steps of immersion, slurry removal, and drying may be performed only once, but by repeating the steps multiple times, electrode portions A and electrode portions B of the desired thickness can be provided.

[0078] The surface tension changes depending on the viscosity of the slurry, and the state of coverage by the electrode portion B of the side portions 13a and corner portions 13b of the partition walls 14 (the partition walls 14 and the outer peripheral wall 11 that define the outermost cells 13) that define the cells 13 can be changed. For example, when the entire surface of the partition walls 14 is to be covered as shown in FIGS. 1D and 2D, the viscosity of the electrode slurry can be set to be relatively low. When only the corner portions 13b of the partition walls 14 are to be covered as shown in FIGS. 3A to 3D, the viscosity of the electrode slurry can be set to be relatively high. The difference between FIGS. 3A to 3D can be achieved, for example, by masking one end face 12a or the other end face 12b of the honeycomb structure 10 when the honeycomb structure 10 is immersed in the electrode slurry. As a masking method, for example, a resin sheet is attached to one end face 12a or the other end face 12b of the honeycomb structure 10, and holes are drilled in the resin sheet with a laser at locations corresponding to the cells 13 where the electrode portions B are to be formed.

[0079] Next, a functional material-containing layer 20 is formed on the surfaces of the partition walls 14 etc. of the heater element obtained in this manner, thereby obtaining a heater element with a functional material-containing layer. The method for forming the functional material-containing layer 20 is not particularly limited, but can be, for example, the following process. A heater element is immersed in a slurry containing a functional material, an organic binder, and a dispersion medium for a predetermined period of time, and excess slurry is removed from the end faces and outer periphery of the honeycomb structure 10 by blowing and wiping. The dispersion medium can be water, an organic solvent (e.g., toluene, xylene, ethanol, isopropanol, n-butanol, ethyl acetate, butyl acetate, terpineol, dihydroterpineol, Texanol, ethylene glycol monobutyl ether acetate, diethylene glycol monoethyl ether acetate, diethylene glycol monoethyl ether, diethylene glycol monobutyl ether acetate, diethylene glycol monobutyl ether, propylene glycol monomethyl ether acetate, propylene glycol monomethyl ether), or a mixture thereof. The slurry is then dried to form the functional material-containing layer 20 on the surfaces of the partition walls 14, etc. Drying can be performed while heating the heater element to a temperature of, for example, about 120 to 600°C. The series of steps of immersion, slurry removal, and drying may be carried out only once, but by repeating the steps multiple times, a functional material-containing layer 20 of a desired thickness can be provided on the surfaces of the partition walls 14 and the like.

[0080] (3. Vehicle compartment purification system) According to one embodiment of the present invention, there is provided a vehicle interior purification system including the above-described heater element with a functional material-containing layer. The vehicle interior purification system can be suitably used in various vehicles such as automobiles.

[0081] FIG. 4 is a schematic diagram showing the configuration of a vehicle interior purification system according to one embodiment of the present invention. The vehicle compartment purification system 1000 is At least one heating element 1, 2; a power source 200 such as a battery for applying voltage to the heater elements 1 and 2; an inlet pipe 400 communicating the casing with the inlet end faces of the heater elements 1 and 2; an outflow pipe (500) having a first path (500a) connecting the outlet end faces of the heater elements (1, 2) with the casing; a ventilator (600) for introducing air from the vehicle compartment into the inlet end faces of the heater elements (1, 2) via an inlet pipe (400); Equipped with.

[0082] In the vehicle interior purification system shown in Figure 4, the heater elements 1 and 2 are arranged so that the inlet end face is one end face 12a and the outlet end face is the other end face 12b. However, the heater elements 1 and 2 can also be arranged so that the inlet end face is the other end face 12b and the outlet end face is one end face 12a.

[0083] In addition to the first path 500a, the outflow pipe 500 may have a second path 500b that connects the outlet end faces of the heater elements 1 and 2 to the outside of the vehicle. The outflow pipe 500 may also have a switching valve 300 that can switch the flow of air passing through the outflow pipe 500 between the first path 500a and the second path 500b.

[0084] The vehicle compartment purification system 1000 is a first mode in which the applied voltage from the power supply 200 is turned off, the switching valve 300 is switched so that the air flowing through the outflow pipe 500 passes through the first path 500a, and the ventilator 600 is turned on; a second mode in which the applied voltage from the power supply 200 is turned on, the switching valve 300 is switched so that the air flowing through the outflow pipe 500 passes through the second path 500b, and the ventilator 600 is turned on; The driving mode may be:

[0085] The vehicle interior purification system 1000 may include a control unit 900 that can switch between the first mode and the second mode. The control unit 900 may be configured to alternately execute the first mode and the second mode, for example. By repeatedly switching between the first mode and the second mode in a fixed cycle, it becomes possible to stably discharge the components to be removed from the vehicle interior to the outside of the vehicle.

[0086] In the first mode, the air in the vehicle cabin is purified. Specifically, air from the vehicle cabin flows into the inlet end faces of the heater elements 1 and 2 through the inlet piping 400, passes through the heater elements 1 and 2, and then flows out from the outlet end faces of the heater elements 1 and 2. Components to be removed from the air from the vehicle cabin are removed by being captured by the functional material while passing through the heater elements 1 and 2. The clean air flowing out from the outlet end faces of the heater elements 1 and 2 is returned to the vehicle cabin through the first path 500a of the outlet piping 500.

[0087] In the second mode, the functional material is regenerated. Specifically, air from the vehicle cabin flows into the inlet end faces of the heater elements 1 and 2 through the inlet pipe 400, passes through the heater elements 1 and 2, and then flows out from the outlet end faces of the heater elements 1 and 2. The heater elements 1 and 2 generate heat when energized, which heats the functional material carried by the heater elements 1 and 2, causing the components to be removed that have been captured by the functional material to desorb from the functional material or react.

[0088] To promote the desorption of the target components captured by the functional material, it is preferable to heat the functional material to a temperature above the desorption temperature depending on the type of functional material. For example, when an adsorbent is used as the functional material, it is preferable to heat at least a portion of the functional material, preferably the entire functional material, to 70 to 150°C, more preferably to 80 to 140°C, and even more preferably to 90 to 130°C. Furthermore, it is desirable to perform the second mode for a time period until the functional material is sufficiently regenerated. Although this depends on the type of functional material, when an adsorbent is used as the functional material, it is preferable to heat the functional material to the above temperature range in the second mode for 1 to 10 minutes, more preferably to 2 to 8 minutes, and even more preferably to 3 to 6 minutes.

[0089] The air from the vehicle compartment flows out from the outlet end faces of the heater elements 1 and 2, carrying with it the components to be removed that have separated from the functional material while passing through the heater elements 1 and 2. The air containing the components to be removed that has flowed out from the outlet end faces of the heater elements 1 and 2 passes through the second path 500b of the outlet piping 500 and is discharged outside the vehicle.

[0090] The voltage applied to the heater elements 1 and 2 can be switched on and off by, for example, electrically connecting the power source 200 and the pair of electrodes 30a and 30b of the heater elements 1 and 2 with an electric wire 810 and operating a power switch 910 provided midway between the electric wires. The power switch 910 can be operated by the control unit 900.

[0091] The ventilator 600 can be switched on and off by, for example, electrically connecting the control unit 900 and the ventilator 600 via an electric wire 820 or wirelessly and operating a switch (not shown) of the ventilator 600 with the control unit 900. The ventilator 600 can also be configured so that the ventilation volume can be changed by the control unit 900.

[0092] The switching of the switching valve 300 can be performed, for example, by electrically connecting the control unit 900 and the switching valve 300 via an electric wire 830 or wirelessly, and operating a switch (not shown) of the switching valve 300 by the control unit 900.

[0093] The switching valve 300 is not particularly limited as long as it is an electrically driven valve having the function of switching flow paths, and examples thereof include a solenoid valve and an electric valve. In one embodiment, the switching valve 300 includes an opening / closing door 312 supported on a rotating shaft 310, and an actuator 314 such as a motor that rotates the rotating shaft 310. The actuator 314 is configured to be controllable by the control unit 900.

[0094] In order to stably ensure the above-mentioned functions, it is desirable that the heater elements 1 and 2 of the vehicle interior purification system 1000 be positioned close to the vehicle interior. Therefore, from the viewpoint of preventing electric shock, etc., it is preferable that the driving voltage be 60 V or less. The honeycomb structure 10 used in the heater elements 1 and 2 has low electrical resistance at room temperature, so that the honeycomb structure 10 can be heated at this low driving voltage. The lower limit of the driving voltage is not particularly limited, but is preferably 10 V or more. If the driving voltage is less than 10 V, the current when heating the honeycomb structure 10 will be large, and therefore the electric wire 810 needs to be thicker.

[0095] In the embodiment shown in Figure 4, the fan 600 is installed upstream of the heater elements 1 and 2. More specifically, the fan 600 is installed midway through the inlet pipe 400 that connects the heater elements 1 and 2 to the vehicle interior, and the air that has passed through the fan 600 flows into the heater elements 1 and 2 in a forced manner. Alternatively, the fan 600 may be installed downstream of the heater elements 1 and 2. In this case, the fan 600 can be installed midway through the outlet pipe 500, for example, and the air that has passed through the inlet pipe 400 flows into the heater elements 1 and 2 in a drawn manner.

[0096] In another embodiment of the vehicle interior purification system 1000, a function-added body 3 may be disposed adjacent to the downstream side of the heater elements 1, 2 (see FIG. 5). Referring to FIGS. 6A to 6C, in one embodiment, the function-added body 3 includes a honeycomb structure 10 having an outer peripheral wall 11 and partition walls 14 disposed inside the outer peripheral wall 11 and defining a plurality of cells 13 that form flow paths extending from one end face 12a, which serves as an inlet end face, to the other end face 12b, which serves as an outlet end face.

[0097] The honeycomb structure 10 of the function-added body 3 may have the same configuration as that described for the heater elements 1 and 2, including the shape and size of the honeycomb structure 10, the shape of the cells 13, the bonding layer, the thickness of the partition walls 14, the cell density, the cell pitch (or the cell opening ratio), and the material. However, since air heated by the upstream heater elements 1 and 2 can be introduced into the function-added body 3, the function-added body 3 itself does not need to generate heat. Therefore, the function-added body 3 does not need to be provided with a pair of electrodes, and the honeycomb structure 10 of the function-added body 3 does not need to be made of a material having PTC properties. Therefore, the honeycomb structure 10 of the function-added body 3 can be manufactured using various ceramic materials. Among these, it is preferable that at least the partition walls 14 of the function-added body 3 be made of cordierite for reasons of heat transfer, ease of manufacture, etc.

[0098] In one embodiment, the function-added body 3 may include a functional material-containing layer 20 provided on the surfaces of the partition walls 14 (in the case of the outermost cell 13, the partition walls 14 and the outer peripheral wall 11 that define the outermost cell 13). While not limitative, the functional material-containing layer 20 provided on the surfaces of the partition walls 14 of the honeycomb structure 10 in the function-added body 3 may have the same configuration as that described for the heater elements 1 and 2, including the type, average thickness, and amount of functional material. When the function-added body 3 is disposed adjacent to the downstream side of the heater elements 1 and 2, the upstream heater elements 1 and 2 may not be provided with a functional material-containing layer 20. Furthermore, when the upstream heater elements 1 and 2 are provided with a functional material-containing layer 20, the downstream function-added body 3 may be provided with a functional material-containing layer 20 that can exhibit a different function from the functional material-containing layer 20 of the heater elements 1 and 2. Of course, the downstream function-added body 3 may be provided with a functional material-containing layer that can exhibit the same function as the functional material-containing layer 20 of the upstream heater elements 1 and 2.

[0099] 5, the vehicle interior purification system 1000 according to the embodiment can heat the air using the upstream heater elements 1 and 2, eliminating the need for a pair of electrodes in the downstream function-added body 3. Therefore, it is only necessary to consider optimizing the functional material-containing layer 20 of the function-added body 3, allowing the honeycomb structure 10 to be configured simply.

[0100] Expanding on this concept, it can be seen that even if the heater element installed upstream cannot widen the area in the direction of the flow path in which the functional material can be effectively heated, the proportion of the functional material that can be effectively utilized as a whole can be increased by arranging the function-added body 3 adjacent to the heater element on the downstream side. In other words, since air that has already been heated by the upstream heater element can be introduced into the downstream function-added body 3, there is no need to worry about the temperature near the inlet side of the function-added body 3 becoming low. This allows the entire functional material contained in the function-added body 3 to be effectively utilized.

[0101] In this case, a functional material-containing layer may also be provided on the upstream heater element, but it is preferable not to provide one in order to increase the overall proportion of functional material that can be effectively utilized. Furthermore, the upstream heater element that can be used in this case can adopt a simple electrode arrangement. Figures 7A to 7C show schematic perspective and cross-sectional views of an example of a heater element 4 having such a simple electrode arrangement. The heater element 4 includes a honeycomb structure 10 having an outer peripheral wall 11 and partition walls 14 disposed inside the outer peripheral wall 11. The partition walls 14 define a plurality of cells 13 that form flow paths extending from one end face 12a, which serves as the inlet end face, to the other end face 12b, which serves as the outlet end face. Furthermore, the heater element 4 includes a first electrode 30a provided on one end face 12a, which serves as the inlet end face, and a second electrode 30b provided on the other end face 12b, which serves as the outlet end face.

[0102] The honeycomb structure 10 of the heater element 4 can have the same configuration as that described for the heater elements 1 and 2, including, but not limited to, the shape and size of the honeycomb structure 10, the shape of the cells 13, the bonding layer, the thickness of the partition walls 14, the cell density, the cell pitch (or the cell opening ratio), and the material. The first electrode 30a and the second electrode 30b of the heater element 4 can have the same configuration as that of the electrode portion A described for the heater elements 1 and 2, including, but not limited to, the material and thickness. The heater element 4 does not require the provision of an electrode or a functional material-containing layer inside the cell 13. Therefore, the simple structure of the heater element 4 is advantageous in reducing pressure loss when air is circulated through the cell 13.

[0103] FIG. 8 is a schematic diagram showing the configuration of a vehicle interior purification system 2000 according to yet another embodiment of the present invention based on the above concept. The Vehicle Room Purification System 2000 is A heater element 4; a functional addition body 3 disposed adjacent to the downstream side of the heater element 4; a power supply 200 for applying a voltage to the heater element 4; an inlet pipe 400 that communicates the casing with one end surface 12a that serves as an inlet end surface of the heater element 4; an outflow pipe (500) having a first path (500a) that connects the other end face (12b) serving as the outlet end face of the function-added body (3) with the casing; a ventilator (600) for introducing air from the vehicle compartment through an inlet pipe (400) into one end face (12a) of the heater element (4) which serves as an inlet end face; Equipped with.

[0104] Other configurations and operation modes of the vehicle compartment purification system 2000 are the same as those described for the vehicle compartment purification system 1000, and therefore, description thereof will be omitted.

[0105] (4. Simulation) 1 shows the results of a simulation of the temperature distribution inside a honeycomb structure when heat is generated while air is flowing from one end face of the honeycomb structure to the other end face.

[0106] [Honeycomb structure specifications] The specifications of the honeycomb structure used in the simulation were as follows: Cross section and end face shape of honeycomb structure perpendicular to the flow direction: square Cell shape perpendicular to the flow path direction: square Partition wall thickness: 0.1016mm Cell density: 62 cells / cm 2 Cell pitch: 1.270mm Cell aperture ratio: 0.85 - Cross-sectional size of honeycomb structure perpendicular to the flow direction: 10mm x 0.635mm Length of honeycomb structure in the flow direction: 10 mm Volume resistivity of the material composing the outer wall and partition wall at 25°C: 14 Ω·cm (almost no change up to 120°C) Curie point of the material that makes up the outer wall and partition wall: 120°C (assuming barium titanate) Density of materials constituting the outer wall and bulkhead: 4500 kg / m 3 Specific heat of the material that makes up the outer wall and partition: 590J / kg / K

[0107] [Heating test] A heating test was simulated to investigate the steady-state temperature distribution inside the honeycomb structure when a constant voltage of 12 V was applied between one end face and the other end face of the honeycomb structure and air (initial temperature = 20°C) was circulated through the cells of the honeycomb structure from one end face to the other end face at 0.13 m / sec. Fluent Ver2021-R1 (manufactured by Ansys, Inc.) was used for the simulation. The results are shown in Figure 9. From these results, it can be seen that in the region from the inlet side (one end face) to about 1 / 4 of the length of the honeycomb structure, even if functional materials are loaded, it is difficult to heat them to 60°C or higher, which is advantageous for regeneration, and they cannot be effectively utilized. On the other hand, it can be seen that in the region from the outlet side (the other end face) to about 1 / 4 of the length of the honeycomb structure, it is heated to a temperature of 100°C or higher, and in the region about 1 / 2 of the length, it is heated to a temperature of 80°C or higher.

[0108] Therefore, it can be seen that shortening the distance between the electrodes is advantageous in reducing the electrical resistance between the electrodes and widening the area in the direction of extension of the flow path that can be effectively heated. Furthermore, when shortening the distance between the electrodes, it can be seen that providing electrode part B only on the outlet side, which is more easily heated, or, when providing electrode part B on both the inlet and outlet sides, making electrode part B on the outlet side longer, can effectively heat the inlet side, which is less easily heated. [Explanation of symbols]

[0109] 1: Heater element 2: Heater element 3: Functionalized 4: Heater element 10: Honeycomb structure 11:Outer wall 12a: One end face 12b: other end face 13: Cell 13a: Edge 13b: Corner 14: Bulkhead 20: Functional material containing layer 30a: First electrode 30b: Second electrode 200: Power supply 300: Switching valve 310: Rotation axis 312: Opening and closing door 314: Actuator 400: Inlet pipe 500: Outlet pipe 500a: First route 500b: Secondary route 600: Ventilator 810:Electric wire 820:Electric wire 830:Electric wire 900: Control unit 910: Power switch 1000: Vehicle compartment purification system 2000: Vehicle cabin purification system

Claims

1. A honeycomb structure having an outer peripheral wall and partition walls disposed inside the outer peripheral wall to define a plurality of cells forming flow paths extending from one end face to the other end face, wherein at least the partition walls are made of a material having PTC characteristics, and a functional material-containing layer is provided on the surface of the partition walls; and a pair of electrodes composed of a first electrode and a second electrode; Equipped with A heater element in which the first electrode and the second electrode satisfy either of the following conditions (i) or (ii): (i) the first electrode is provided on the one end surface; the second electrode has an electrode portion A provided on the other end face and an electrode portion B connected to the electrode portion A and provided on the surface of the partition wall over a predetermined length from the other end face in the direction in which the flow path extends, and the functional material-containing layer is also provided on the surface of the electrode portion B; (ii) the first electrode has an electrode portion A provided on the one end face and an electrode portion B connected to the electrode portion A and provided on the surface of the partition wall over a predetermined length from the one end face in the direction in which the flow path extends, and the functional material-containing layer is also provided on the surface of the electrode portion B; The second electrode has an electrode portion A provided on the other end face and an electrode portion B connected to the electrode portion A and provided on the surface of the partition wall over a predetermined length from the other end face in the direction in which the flow path extends, and the functional material-containing layer is also provided on the surface of the electrode portion B.

2. 2. The heater element according to claim 1, wherein the predetermined length of the electrode portion B is an average length that is 1 / 200 or more and less than 1 / 2 of the length of the honeycomb structure in the direction in which the flow channels extend.

3. 3. The heater element according to claim 1, wherein the electrode portion B is provided continuously over the predetermined length on the entire surface of all the partition walls that define the plurality of cells.

4. 3. The heater element according to claim 1, wherein the electrode portion B is provided continuously over the predetermined length on a surface of a part of a partition wall that defines the plurality of cells.

5. 3. The heater element according to claim 1, wherein the material having PTC characteristics is composed of a material containing barium titanate as a main component and substantially free of lead.

6. 3. The heater element according to claim 1, wherein the material having PTC characteristics has a volume resistivity at 25°C of 0.5 Ω·cm or more and 20 Ω·cm or less.

7. 3. The heater element according to claim 1, wherein the average thickness of the electrode portion B is 1 / 10,000 or more and 1 / 10 or less of the hydraulic diameter of the cell.

8. The honeycomb structure has a partition wall thickness of 0.125 mm or less and a cell density of 100 cells / cm 2 3. The heater element according to claim 1, wherein the cell pitch is 1.0 mm or more.

9. The honeycomb structure has a partition wall thickness of 0.08 mm or more and 0.36 mm or less and a cell density of 2.54 cells / cm 2 More than 140 cells / cm 2 3. The heater element according to claim 1, wherein the opening ratio of the cells is 0.70 or more.

10. 3. The heater element according to claim 1, wherein the first electrode and the second electrode are made of the same material.

11. 3. The heater element according to claim 1, wherein the functional material-containing layer contains a functional material having a function of adsorbing one or more substances selected from the group consisting of water vapor, carbon dioxide, and odor components.

12. The heater element according to claim 1 or 2, wherein the functional material-containing layer contains a catalyst.

13. At least one heating element according to claim 1 or 2; a power source for applying a voltage to the heater element; an inlet pipe communicating the casing with an inlet end face of the heater element; an outlet pipe having a first passage communicating an outlet end face of the heater element with the casing; a fan for introducing air from the vehicle compartment into the inlet end surface of the heater element through the inlet pipe; Equipped with The heater element is arranged such that the inlet end surface is the one end surface and the outlet end surface is the other end surface, or such that the inlet end surface is the other end surface and the outlet end surface is the one end surface. Vehicle cabin purification system.

14. The vehicle interior purification system according to claim 13, wherein the heater element is positioned such that the inlet end face is the one end face and the outlet end face is the other end face.

15. the outlet pipe has, in addition to the first path, a second path that connects the outlet end surface of the heater element with the outside of the vehicle, the outflow pipe has a switching valve that can switch the flow of air passing through the outflow pipe between the first path and the second path, a first mode in which the applied voltage from the power supply is turned off, the switching valve is switched so that the air flowing through the outflow pipe passes through the first path, and the ventilator is turned on; a second mode in which the applied voltage from the power supply is turned on, the switching valve is switched so that the air flowing through the outflow pipe passes through the second path, and the ventilator is turned on; The vehicle interior purification system of claim 13, further comprising a control unit capable of switching between:

16. A honeycomb structure having an outer peripheral wall and partition walls disposed inside the outer peripheral wall and defining a plurality of cells that form flow paths extending from an inlet end face to an outlet end face; and a functional material-containing layer provided on the surface of the partition wall; The vehicle interior purification system according to claim 13, wherein a functional addition comprising: a heater element is disposed adjacent to the heater element on a downstream side thereof.

17. The vehicle interior purification system according to claim 16, wherein at least the partition wall of the functional attachment is made of cordierite.

18. - a heater element according to claim 1 or 2; A honeycomb structure having an outer peripheral wall and partition walls disposed inside the outer peripheral wall and defining a plurality of cells that form flow paths extending from an inlet end face to an outlet end face; and a functional material-containing layer provided on the surface of the partition wall; a functional addition body disposed adjacent to the downstream side of the heater element; a power source for applying a voltage to the heater element; an inlet pipe communicating the casing with the inlet end face of the heater element; an outflow pipe having a first path connecting the outlet end face of the function-added body and the casing; a ventilator for directing air from the vehicle compartment through the inlet pipe to the inlet end face of the heater element; A vehicle interior purification system.

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