Electrical heating device and cylindrical laminate manufacturing system

By employing electrodes with grooves and a thin metal tip, along with nickel plating and heat sinks, the method addresses spark and scratch issues in resistance heating, enhancing the production of cylindrical laminates by ensuring stable current flow and temperature management.

JP7780368B2Active Publication Date: 2025-12-04UBE NITTO KASEI CO LTD
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Patent Information

Application Number
JP2022043292
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-03-18
Publication Date
2025-12-04
Estimated Expiration
2042-03-18

AI Technical Summary

Technical Problem

Conventional resistance heating methods for cylindrical laminates face issues with spark generation and surface irregularities, leading to scratches and defects, especially when large currents are applied repeatedly, which are not adequately addressed by existing methods that either require discarding damaged parts or take too long to heat up.

Method used

The solution involves using a pair of electrodes with grooves and a thin metal plate tip to connect the metal body and electrodes, ensuring a stable current path and minimizing spark generation, along with nickel plating to prevent oxidation and heat sinks to manage electrode temperature.

Benefits of technology

This approach effectively suppresses spark generation and reduces surface scratches on the metal body, improving the reliability and yield of cylindrical laminate production by maintaining a stable current flow and temperature control.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide an electrification heating device which is capable of suppressing spark generation and in which a metal body, etc., is hardly damaged even if electrification is repeated, and a manufacturing system for a cylindrical laminate.SOLUTION: An electrification heating device 1 for heating a rod-shaped or a cylinder-shaped metal body 2 comprises: a pair of electrodes 11 disposed in the metal body 2 while being spaced apart from each other; a power supply section 12 for supplying power to each electrode 11; and an electrification chip 13 disposed between the electrodes 11 and the metal body 2 and consisting of a metal plate of which the thickness ranges from 0.05 to 1 mm. In each electrode 11, metal plating is applied to a front face, and a linear groove 11a extending from one end to the other end is formed on a face at a side where the metal body 2 is disposed. The electrification chip 13 is disposed on the groove 11a. In the case of electrification heating, the metal body 2 is disposed along the groove 11a on the electrification chip 13, and the metal body 2 and the electrodes 11 are electrically connected via the electrification chip 13.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present invention relates to an electric heating device that heats a metal body by directly passing an electric current through it, and a manufacturing system for a cylindrical laminate that includes this electric heating device. [Background technology]

[0002] Cylindrical laminates such as cartridge filters are produced by heating a heat-sealable sheet such as a nonwoven fabric sheet while winding it around a core and heat-sealing each layer of the heat-sealable sheet (see, for example, Patent Document 1). In the method for producing a cylindrical laminate described in Patent Document 1, the metal core is preheated to a temperature higher than that of a drive roller using a heating medium or electric heater to improve the adhesion of the heat-sealable sheet and prevent wrinkles from occurring.

[0003] On the other hand, methods for heating rod-shaped or cylindrical metal bodies such as winding cores include a resistance heating method in which a current is passed directly through the metal body to heat it. However, in the production of cylindrical laminates, the winding core needs to be heated to about 150°C in a short period of time. Therefore, when the resistance heating method is applied, a large current of about 500 A is passed from the electrode to the metal winding core, which short-circuits the winding core and the electrode, making it easy for sparks (arc discharge) to occur.

[0004] Conventionally, methods proposed for preventing the generation of sparks during resistance heating include, for example, a method of providing a control unit in a resistance heating device to gradually control the value of the current supplied to the electrodes (see Patent Document 2), and a method of providing a coated portion on the surface of a metal body to be heated, where an antioxidant is applied, and an exposed portion on which the antioxidant is not applied, and bringing an electrode into contact with the exposed portion (see Patent Document 3). [Prior art documents] [Patent documents]

[0005] [Patent Document 1] Japanese Patent Application Laid-Open No. 2012-245771 [Patent Document 2] Japanese Patent Application Laid-Open No. 2018-195539 [Patent Document 3] Japanese Patent Application Publication No. 2018-167284 Summary of the Invention [Problem to be solved by the invention]

[0006] When sparks occur during resistance heating, the spark marks form irregularities on the surface of the metal body to be heated, creating gaps between the electrodes and the metal body, narrowing the current path and making sparks even more likely to occur. Thus, conventional resistance heating devices have the problem that once a spark occurs, it becomes even more likely to occur. Particularly in the production of cylindrical laminates, even if the irregularities formed by the spark marks are only about 0.1 to 0.2 mm, scratches due to the irregularities can occur on the inside of the cylindrical laminate when it is removed from the core, resulting in product defects. Therefore, it is necessary to reliably suppress sparks.

[0007] Meanwhile, Patent Documents 2 and 3 propose methods for suppressing spark generation during resistance heating, but neither method is suitable for applications in which electricity is repeatedly passed through a metal body. Specifically, the method described in Patent Document 2 assumes that if a spark occurs, the exposed portion will be cut off and discarded. However, in the case of a metal body that is used repeatedly, such as a winding core for a cylindrical laminate, it is not possible to cut off and discard a portion of it midway through use. Furthermore, the method described in Patent Document 2 applies an antioxidant to areas other than those that come into contact with electrodes, but applying an antioxidant to the winding core for a cylindrical laminate can transfer the antioxidant to the manufactured cylindrical laminate and cause foreign matter.

[0008] Furthermore, the method described in Patent Document 3 involves first passing a small current to intentionally short-circuit the electrodes and metal body in a state where damage to the electrodes and metal body is minimal, and then increasing the current value to raise the temperature of the metal body, so it takes time to heat the metal body to the target temperature. Furthermore, in the case of metal bodies that are used repeatedly, such as the winding core of a cylindrical laminate, even if the damage from a single short circuit is small, repeated short circuits can result in major defects, so it is desirable to minimize the generation of sparks.

[0009] Therefore, an object of the present invention is to provide an electric heating device and a cylindrical laminate manufacturing system that can suppress spark generation and that is less likely to cause scratches on the metal body to be heated even when electricity is repeatedly passed through. [Means for solving the problem]

[0010] As a result of extensive research into solving the above-mentioned problems, the inventors discovered that by forming a groove in an electrode and placing an electrically conductive tip made of a thin metal plate on this groove, so that the metal body and the electrode are electrically connected via the electrically conductive tip, it is possible to suppress the generation of sparks even when a rod-shaped or cylindrical metal body is heated by passing a large current through it, and this led to the present invention.

[0011] In other words, the electric heating device of the present invention is an electric heating device for heating a rod-shaped or cylindrical metal body, and comprises a pair of electrodes arranged spaced apart on the metal body, a power supply unit that supplies power to the pair of electrodes, and an electric tip made of a metal plate with a thickness of 0.05 to 1 mm that is arranged between the electrodes and the metal body, the pair of electrodes having metal plating on their surfaces and having linear grooves extending from one end to the other end formed on the surface on which the metal body is arranged, the electric tip is arranged on each groove of the pair of electrodes, the metal body is arranged on the electric tip along the groove, and the metal body and the electrodes are electrically connected via the electric tip. A heat sink may be attached to the pair of electrodes. In this case, the heat sink may have, for example, a plurality of fins arranged in a comb-like pattern, with the fins having a thickness of 1 to 10 mm and the spacing between the fins being 2 to 6 times the thickness. The grooves formed in the pair of electrodes may be V-grooves having a V-shaped cross section, for example, and in this case the inner angle of the V may be 150 to 170°. The metal plating of the electrodes is, for example, nickel plating.

[0012] The cylindrical laminate manufacturing system of the present invention comprises the above-mentioned electric heating device, a rod-shaped or cylindrical metal body around which a heat-sealable sheet is wound, and a winding device that winds the heat-sealable sheet around the metal body, and the metal body is electrically heated by the electric heating device. [Effects of the Invention]

[0013] According to the present invention, the rod-shaped or cylindrical metal body and the electrode are electrically connected via an electric tip, which makes it possible to suppress the generation of sparks during electric heating, and makes it less likely that scratches will occur on the metal body being heated even when electric current is passed repeatedly. [Brief explanation of the drawings]

[0014] [Figure 1] 1 is a conceptual diagram showing the configuration of a resistance heating device according to a first embodiment of the present invention. [Figure 2] 1A and 1B are cross-sectional views showing the relationship between the electrode 11 and the current-carrying tip 13 of the resistance heating device 1 shown in FIG. 1 and the metal body 2, where A shows the state before use and B shows the state during resistance heating. [Figure 3] 2 is a diagram showing a state in which a heat sink 14 is attached to an electrode 11 in the resistance heating device 1 shown in FIG. [Figure 4] FIG. 10 is a conceptual diagram showing an example of the configuration of a manufacturing system for a cylindrical laminate according to a second embodiment of the present invention. DETAILED DESCRIPTION OF THE INVENTION

[0015] DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS Preferred embodiments of the present invention will now be described in detail with reference to the accompanying drawings. However, the present invention is not limited to the following embodiments.

[0016] (First embodiment) First, a first embodiment of the resistance heating device of the present invention will be described. Fig. 1 is a conceptual diagram showing the configuration of the resistance heating device of this embodiment. Also, Figs. 2A and 2B are cross-sectional views showing the relationship between the electrode 11 and the current-carrying tip 13 of the resistance heating device 1 shown in Fig. 1 and the metal body 2, with Fig. 2A showing the state before use and Fig. 2B showing the state during resistance heating.

[0017] 1, the electric resistance heating device 1 of this embodiment is a device that heats a rod-shaped or cylindrical metal body 2 by directly passing an electric current through it, and includes at least a pair of electrodes 11, a power supply unit 12 that supplies power to each electrode 11, and an electric tip 13 that is disposed between each electrode 11 and the metal body 2. In this electric resistance heating device 1, a heat sink 14 is attached to each electrode 11 as necessary.

[0018] [Metal body 2] The metal body 2 to be heated is, for example, a solid or hollow material having a circular, elliptical, or polygonal cross section. The metal body 2 may be made of any metallic material that can be heated by electrical current, and its material, shape, and size are not particularly limited. For example, when the metal body 2 is a winding core used in the manufacture of a cylindrical laminate, a relatively thick cylindrical body made of iron or stainless steel is used.

[0019] [Electrode 11] The pair of electrodes 11 may be, for example, block-shaped electrodes, and the electrodes 11 are disposed at opposite ends of the metal body 2 at a distance from each other. Note that the "ends" referred to here do not necessarily have to be the ends of the metal body 2 in the strict sense, but may be the ends of the portion that needs to be heated. Also, while FIGS. 1 and 2 show a configuration in which the electrode 11 is disposed below the metal body 2 and the metal body 2 is placed on the electrode 11, the present invention is not limited to this. The electrode 11 may be composed of two members, an upper electrode and a lower electrode, and the metal body 2 may be sandwiched between the upper electrode and the lower electrode, or a ring-shaped electrode may be used as the electrode 11.

[0020] Generally, copper is used as an electrode material because it is economical and has high conductivity. However, when the metal body 2 of a copper electrode is heated by electrical heating, it is oxidized by the heat and copper oxide is generated on the surface. Since copper oxide has high electrical resistance, the generation of copper oxide creates areas of high and low electrical resistance on the electrode. Specifically, the electrical resistivity of copper (Cu) is 1.7 x 10 -8 Ω m, while the electrical resistivity of copper(I) oxide (CuO) is 10 6 ~10 7 Ω m, approximately 10 12 There is a two-fold difference.

[0021] As described above, because there is a large difference in electrical resistivity between copper and copper oxide, if an electrode has both oxidized and non-oxidized portions, the difference between the maximum and minimum values ​​of electrical resistivity becomes large, resulting in portions where electricity does not flow, and large currents flow into portions where electricity does flow, causing sparks. Therefore, in the resistance heating device 1 of this embodiment, the entire surface of each electrode 11 is metal-plated to prevent the copper electrode material from coming into contact with oxygen. This prevents the formation of copper oxide on the electrode 11.

[0022] The material for the metal plating film formed on the surface of the electrode 11 may be any metallic material that is conductive and resistant to oxidation, such as nickel, cobalt, gold, and silver. Among various metal plating films, nickel plating films are preferred from the viewpoint of heat resistance. Nickel plating films have high heat resistance and can prevent an increase in electrical resistance due to oxidation of the electrode surface, thereby suppressing spark generation.

[0023] The thickness of the metal plating film formed on the surface of the electrode 11 is preferably 5 to 15 μm, more preferably 5 to 10 μm, from the viewpoints of preventing oxidation and improving heat resistance. If the thickness of the metal plating film is less than 5 μm, sufficient heat resistance may not be obtained, and forming a plating film with a thickness exceeding 15 μm will not change the effect and will only increase costs. Furthermore, from the viewpoint of suppressing spark generation, the electrical resistivity of the metal plating layer should be 1.6×10 -8 ~2.2×10 -7 It is preferable that the resistance is about Ω·m.

[0024] Furthermore, a groove 11a is formed linearly from one end to the other end on the surface of the electrode 11 on which the metal body 2 is disposed, and the metal body 2 is disposed along this groove 11a. The shape of the groove 11a may be, for example, a V-groove with a V-shaped cross section, a U-groove with a U-shaped cross section, or a rectangular cross section, but is not limited thereto, and may be any shape as long as the cross section perpendicular to the longitudinal direction has a symmetrical shape. For example, when the groove 11a is a V-groove, the inner angle of the V-shape is preferably 150 to 170°. By setting the inner angle of the V-groove within this range, the contact area between the electrode 11 and the conductive tip 13 and the contact area between the conductive tip 13 and the metal body 2 can be secured, thereby improving the electrical conductivity from the electrode 11 to the metal body 2.

[0025] The size of the groove 11a is not particularly limited, and it need only be large enough to provide a contact area between the conductive tip 13 and the metal body 2 to ensure a sufficient amount of current flow, and can be set appropriately depending on the thickness of the conductive tip 13 and the diameter of the metal body 2.

[0026] [Power supply section 12] The power supply unit 12 supplies power to the pair of electrodes 11 to cause a current to flow between the electrodes 11. The power supply unit 12 in the resistance heating device 1 of this embodiment is preferably a power supply capable of passing a large current of about 500 A, and from the viewpoint of temperature control, it is preferable that it is capable of PID control (Proportional-Integral-Differential Controller). For example, by using a transformer capable of stepping down a voltage of 200 V to about 15 V, it is possible to realize a power supply unit 12 capable of passing a large current of about 500 A (maximum 800 A).

[0027] [Electrifying Chip 13] The current-carrying tip 13 is a thin metal plate having a thickness of 0.05 to 1 mm, and is disposed between each electrode 11 and the metal body 2, electrically connecting the electrodes 11 and the metal body 2 via the current-carrying tip 13. If the thickness of the current-carrying tip 13 is less than 0.05 mm, it may be damaged during repeated current application. If the thickness of the current-carrying tip 13 exceeds 1 mm, the current-carrying tip 13 will not be able to conform to the curved surface of the metal body 2, reducing the contact area and making it impossible to ensure a sufficient amount of current. The thickness of the current-carrying tip 13 can be set appropriately depending on the material, but when using a brass plate, it is preferably 0.2 to 0.4 mm.

[0028] The material of the conductive tip 13 has an electrical resistivity of 1.6×10 -8 ~2.2×10 -7 Any metal with a resistance of about Ω·m can be used, such as brass, silver, copper, aluminum, nickel, or lead. However, if the rigidity of the current-carrying tip 13 is high, the current-carrying tip 13 may not be able to follow the curved surface of the metal body 2, reducing the contact area and potentially preventing a sufficient amount of current from being passed. Furthermore, if the rigidity of the current-carrying tip 13 is low, it may be damaged during repeated current application. Therefore, the rigidity of the current-carrying tip 13 should be such that the modulus of elasticity (Young's modulus) is 75×10 9 ~120×10 9 N / m 2 It is preferable that the degree of

[0029] By placing the aforementioned current-carrying tip 13 between the electrode 11 and the metal body 2, the current-carrying state can be improved and the occurrence of sparks can be suppressed. If the metal body 2 is placed on the block electrode without using the current-carrying tip 13, the contact between the electrode and the metal body 2 will be a line contact with a width of about 1 mm, and it will be impossible to achieve a current flow sufficient to heat the metal body 2. Furthermore, even if an electrode 11 having a groove 11a is used and the metal body 2 is placed along the groove 11a, unless the shape and size of the groove 11a are set to match the shape and diameter of the metal body 2, a sufficient contact area will not be obtained and the current flow will be reduced.

[0030] In the resistance heating device 1 of this embodiment, as shown in Fig. 2A, the current-carrying tip 13 is placed on the groove 11a of the electrode 11, and the metal body 2 is placed on top of it along the groove 11a, and pressure is applied to the metal body 2 from above. As a result, as shown in Fig. 2B, the current-carrying tip 13 curves to fit the outer surface of the metal body 2, and the concave current-carrying tip 13 and part of the metal body 2 are pressed into the groove 11a. As a result, the contact area between the current-carrying tip 13 and the metal body 2 increases, improving the conductivity from the electrode 11 to the metal body 2 via the current-carrying tip 13.

[0031] Here, the contact rate between the conductive tip 13 and the metal body 2 is preferably such that the conductive tip 13 is in contact with 10% or more of the circumference at any cross section in the longitudinal direction of the metal body 2. This reduces the resistance R at the contact point between the conductive tip 13 and the metal body 2, making it possible to reduce the resistance R to approximately 1 / 15 or less of the state shown in FIG. 2A.

[0032] [Heat sink 14] When the electric current heating device 1 repeatedly applies electric current heating from the electrodes 11 to the metal body 2, the temperature of the electrodes 11 increases, which can lead to an increase in their resistance. For example, if the electrodes 11 are made of copper, their resistance at 160°C is approximately 1.6 times their resistance at 20°C. Since an increase in the resistance of the electrodes 11 can cause sparks to occur, the electric current heating device 1 of this embodiment has heat sinks 14 attached to each electrode 11 as needed. By attaching the heat sinks 14 integrally to the electrodes 11 in this way, it is possible to prevent the temperature of the electrodes 11 from increasing due to the application of current and suppress the occurrence of sparks due to increased electrical resistance.

[0033] Fig. 3 is a diagram showing a state in which a heat sink 14 is attached to an electrode 11 of an electric heating device 1. The type of heat sink 14 is not particularly limited, but from the viewpoint of heat dissipation, a heat sink having a plurality of fins 14a arranged in a comb-like pattern as shown in Figs. 1 and 3 is preferred. Here, the material of the heat sink 14 is not particularly limited, and a material with low electrical resistance is preferred in consideration of the effect of Joule heat. However, from the viewpoints of workability into fins, hardness, and economy, aluminum or an aluminum alloy is preferred, which has a relatively low electrical resistance and excellent workability.

[0034] For example, if electrode 11 is made of copper and heat sink 14 is made of aluminum, the electrical resistance of aluminum is higher than that of copper, so the current from electrode 11 flows toward metal body 2 rather than discharge plate 14. On the other hand, the heat of electrode 11 is also transmitted to discharge plate 14 and dissipated from fins 14a, so the temperature rise of electrode 11 can be suppressed.

[0035] From the viewpoint of the surface area and mechanical strength of the heat sink 14, the thickness of each fin 14a is preferably 1 to 10 mm, and more preferably 1 to 3 mm. If the fins 14a are too thick, the number of fins 14a that can be installed will be reduced, resulting in an insufficient surface area for the entire heat sink 14 and reduced heat dissipation efficiency. On the other hand, if the thickness of the fins 14a is too thin, the strength will be insufficient. Furthermore, the spacing d between the fins 14a is preferably 2 to 6 times the thickness of the fins 14a, and more preferably 3 to 5 times the thickness of the fins 14a. If the spacing between the fins 14a is too narrow, heat will be trapped, and if the spacing between the fins 14a is too wide, the number of fins 14a that can be installed will be reduced, resulting in an insufficient surface area for the entire heat sink 14 and reduced heat dissipation efficiency.

[0036] The height of each fin 14a provided on the heat sink 14 may all be the same as shown in Fig. 1, or several fins 14a on the electrode 11 side may be lower than the other fins 14a as shown in Fig. 3, or the height of the fins 14a may increase with increasing distance from the electrode 11. Furthermore, the fins 14a may be arranged at equal intervals, or the intervals between each fin 14a may vary.

[0037] As described above in detail, the electric resistance heating device of this embodiment has a linear groove formed in the electrode extending from one end to the other, a thin metal plate current-carrying tip disposed in this groove, and the metal object to be heated and the electrode are electrically connected in the electrode groove via the current-carrying tip. This improves the electrical conductivity and makes it possible to suppress sparks even when a large current is applied during electrical heating. Therefore, the electric resistance heating device of this embodiment is less likely to cause scratches on the metal object to be heated or the electrode even when current is applied repeatedly.

[0038] Furthermore, in the electric heating device of this embodiment, by integrally attaching the discharge plate to the electrode, it is possible to suppress the temperature rise of the electrode and further enhance the effect of suppressing the occurrence of sparks.

[0039] (Second embodiment) Next, a cylindrical laminate manufacturing system according to a second embodiment of the present invention will be described. Fig. 4 is a conceptual diagram showing an example of the configuration of the cylindrical laminate manufacturing system of this embodiment. As shown in Fig. 4, the cylindrical laminate manufacturing system of this embodiment includes the electric heating device 1 of the first embodiment described above, a rod-shaped or tubular metal body (winding core 21) around which the heat-sealable sheet 3 is wound, and a winding device 4 that winds the heat-sealable sheet 3 around the winding core 21. In this manufacturing system, for example, the winding core 21 is electrically heated by the electric heating device 1, and then the heat-sealable sheet 3 is wound around the winding core 21 by the winding device 4, while heat-sealing each layer of the heat-sealable sheet 3.

[0040] [Heat-sealing sheet 3] The thermal adhesive sheet 3 constituting the cylindrical laminate can be, for example, a nonwoven fabric sheet, which is a fiber assembly. The raw material fibers of the nonwoven fabric sheet may be any fibers containing thermal adhesive fibers, and can be appropriately selected depending on the required heat resistance, chemical resistance, etc. The thermal adhesive fibers used in the thermal adhesive sheet can be formed from thermoplastic resins such as olefin resins, polyester resins, polyamide resins, styrene resins, cellulose resins, vinyl resins, fluorine resins, polyphenylene sulfide, polyether ether ketone, polyether ketone, and thermoplastic polyimide.

[0041] Examples of olefin-based resins include polyethylene and polypropylene. Examples of polyester-based resins include polyethylene terephthalate, polybutylene terephthalate, and aromatic polyester. Examples of polyamide-based resins include polyamide 6 and polyamide 66. Examples of styrene-based resins include polystyrene, styrene-acrylonitrile copolymer, styrene-butadiene copolymer, and acrylonitrile-butadiene-styrene copolymer.

[0042] Examples of cellulose-based resins include cellulose acetate, cellulose propionate, and cellulose butyrate. Examples of vinyl-based resins include polyvinyl chloride, polyvinylidene chloride, vinyl chloride-vinyl acetate copolymer, polyvinyl acetate, polyvinyl alcohol, and ethylene-vinyl acetate copolymer. Examples of fluorine-based resins include tetrafluoroethylene-perfluoroalkoxyvinyl ether copolymer (PFA) and polytetrafluoroethylene (PTFE).

[0043] The heat-fusible fibers used in the nonwoven fabric sheet may be single fibers made of a single thermoplastic resin, or may be composite fibers made of two or more thermoplastic resins with different melting points. Examples of composite fibers made of two or more thermoplastic resins include core-sheath composite fibers, eccentric sheath-core composite fibers, and side-by-side composite fibers. When a nonwoven fabric is made of two or more single fibers with different melting points or composite fibers made of two or more thermoplastic resins with different melting points, from the perspective of maintaining the structure of the nonwoven fabric, it is preferable to heat the fibers at a temperature that melts the low-melting-point thermoplastic resin but not the high-melting-point thermoplastic resin, so that the fibers are heat-fused only by the low-melting-point thermoplastic resin.

[0044] The nonwoven fabric sheet used in the cylindrical laminate may contain one or more types of non-thermal adhesive fibers in addition to thermal adhesive fibers. The non-thermal adhesive fibers used in the thermal adhesive sheet may include inorganic fibers, thermosetting resin fibers, natural fibers, and high-strength fibers. Examples of inorganic fibers include glass fibers, carbon fibers, ceramic fibers, and metal fibers. Examples of thermosetting resin fibers include epoxy resin fibers, phenolic resin fibers, unsaturated polyester fibers, polyimide fibers, and polyurethane fibers. Examples of natural fibers include cellulose fibers and silk fibers. Examples of high-strength fibers include aramid fibers, polyarylate fibers, and polyparaphenylene benzoxazole fibers.

[0045] The fibers constituting the nonwoven fabric sheet may contain antioxidants, ultraviolet absorbers, light stabilizers, antistatic agents, antislip agents, antiblocking agents, lubricants, colorants, flame retardants, antibacterial agents, plasticizers, fillers, etc., as needed. The type of nonwoven fabric sheet is not particularly limited, and examples that can be used include thermal bonded nonwoven fabrics, needle-punched nonwoven fabrics, water-punched nonwoven fabrics, and melt-blown nonwoven fabrics. The nonwoven fabric sheet may be a wet-laid or dry-laid nonwoven fabric, and may be a short-fiber or long-fiber nonwoven fabric. The basis weight of the nonwoven fabric sheet is also not particularly limited, and may be, for example, 10 to 100 g / m. 2 The range can be:

[0046] [Core 21] The winding core 21 is a rod-shaped or cylindrical metal body. The material of the winding core 21 is not particularly limited, but in the case of a cylindrical metal body, it is preferably formed of a steel material such as iron or stainless steel to prevent deformation due to heating. The diameter of the winding core 21 used in the cylindrical laminate manufacturing system of this embodiment is, for example, 6 to 95 mm.

[0047] When a cylindrical metal body is used for the winding core 21, it is desirable to make it thick to prevent warping, but if the wall thickness is too thick, the volume increases, and it takes time to reach the specified temperature by electrical heating, reducing productivity. Therefore, when the winding core 21 is a cylindrical metal body, it is preferable to make the wall thickness about 2.5 to 4.5 mm. Note that when the diameter of the winding core 21 is 14 mm or less, the volume is small and there is little effect on electrical heating time and ease of handling, so from the perspective of preventing warping, it is preferable to use a rod-shaped metal body for the winding core 21.

[0048] [Take-up device 4] The winding device 4 winds the heat-fusible sheet 3 onto the winding core 21 and includes a drive roller 41 that is driven to rotate around an axis parallel to the axis of the winding core 21. The drive roller 41 is made up of, for example, two rollers 41a and 41b of the same diameter, and each of the rollers 41a and 41b is driven to rotate independently. When the winding device 4 heat-fusibles the layers of the heat-fusible sheet 3, the rollers 41a and 41b of the drive roller 41 are heated by an electric heater or a heat medium, and are independently controlled so that their surfaces reach a predetermined temperature.

[0049] The winding device 4 may be provided with a pressure unit 42 that presses the winding core 21 downward, i.e., toward rollers 41a and 41b, and a guide roller 43 that presses the heat-sealable sheet 3 toward roller 41a of the drive roller 41 by its own weight, thereby suppressing the occurrence of wrinkles in the heat-sealable sheet 3 wound around the winding core 21. The winding device 4 may further include a sheet cutting device (not shown) that cuts the heat-sealable sheet 3 and a sheet unwinding machine (not shown) that unwinds the heat-sealable sheet 3.

[0050] [Other configurations] In addition to the above-mentioned electrical heating device 1, winding core 2, and winding device 4, the cylindrical laminate manufacturing system of this embodiment may also be provided with a cooling device (not shown) for cooling the cylindrical laminate, a drawing machine (not shown) for pulling out the winding core 21 from the cylindrical laminate, and a laminate cutting device (not shown) for cutting the cylindrical laminate to a predetermined length.

[0051] [Operation] Next, we will explain the operation of the cylindrical laminate manufacturing system of this embodiment, that is, a method of manufacturing a cylindrical laminate using the cylindrical laminate manufacturing system shown in Fig. 4. When manufacturing a cylindrical laminate using the manufacturing system of this embodiment, first, the winding core 21 is heated to a predetermined temperature by the electrical heating device 1, and the heated winding core 21 is placed between the two rollers 41a, 41b of the drive roller 41 of the winding device 4.

[0052] When the drive roller 41 is rotated in this state, the core 21 also rotates, and the heat-sealable sheet 3, for example, fed from a sheet feeder (not shown), is wound onto the core 21. At this time, each layer of the heat-sealable sheet 3 wound onto the core 21 is thermally fused by the heat of the core 21 and the drive roller 41. Then, when a predetermined winding diameter is reached, the heat-sealable sheet 3 is cut by a sheet cutting device (not shown) or the like, and winding is completed when the remaining sheet has been wound.

[0053] Next, the outer diameter of the cylindrical laminate is adjusted by applying pressure in pressure unit 42 as needed, and then the cylindrical laminate is discharged while still wound around core 21 and cooled to approximately room temperature by air cooling or the like. Thereafter, core 21 is pulled out of the cylindrical laminate using a drawing machine (not shown) or the like, and if needed, the laminate is cut to a predetermined length by a laminate cutting device (not shown) or the like to produce a product such as a cartridge filter.

[0054] In the manufacturing system for a cylindrical laminate shown in FIG. 4, an electric heating device 1 is provided separately from the winding device 4, and the winding core 21 heated by the electric heating device 1 is placed on the winding device 4, but the present invention is not limited to this, and the winding core 21 may be heated by the electric heating device 1 while the heat-sealable sheet 3 is being wound by the winding device 4.

[0055] As described above in detail, the cylindrical laminate manufacturing system of this embodiment heats the winding core using the electric heating device of the first embodiment described above, thereby suppressing the generation of sparks during electric heating and preventing the occurrence of irregularities on the surface of the winding core. If the surface of the winding core is irregular, scratches will be made on the inside of the cylindrical laminate when the winding core is pulled out of the cylindrical laminate. However, the manufacturing system of this embodiment can heat the winding core without causing irregularities, so scratches caused by the irregularities on the winding core do not occur on the cylindrical laminate. As a result, the occurrence of product defects is reduced in the manufacturing of cylindrical laminates, thereby improving yield. [Example]

[0056] The effects of the present invention will be specifically described below with reference to examples of the present invention. In these examples, electrical heating was carried out in the following manner and under the following conditions, and it was confirmed whether or not sparks occurred.

[0057] Example 1 A pair of copper block electrodes with a linear V-groove extending from one end to the other was prepared, and a nickel plating film with a total thickness of approximately 10 μm was formed on the surface of each electrode. A heat sink with multiple fins arranged in a comb-like pattern was then attached to each electrode. The pair of electrodes were then arranged spaced apart so that the V-groove was aligned linearly, and a 0.3 mm thick brass conductive tip was placed on the V-groove of each electrode.

[0058] The stainless steel cylindrical core to be heated was then placed on the current-carrying tip along the V-groove of a pair of electrodes arranged at a predetermined distance, and the current-carrying tip was pressed from above with a cylinder to deform along the outer circumferential surface of the core, giving the current-carrying tip a curve similar to that of the core. The current-carrying tip, electrode, and core were then brought into close contact with the cylinder, and while maintaining this state, current was applied at a current value of 500 A, and stopped when the core reached 150°C. This procedure was repeated 200 times, and the appearance of the electrodes and core was observed visually and by touch.

[0059] <Example 2> Except for removing the discharge plate attached to the electrode, electrical heating was carried out in the same manner and under the same conditions as in Example 1 described above, and the appearance of the electrode and the core was checked visually and by touch.

[0060] Example 3 Heating by applying current was performed in the same manner and under the same conditions as in Example 1, except that the shape of the groove formed in the electrode was changed to a U-shaped groove with a U-shaped cross section, and the appearance of the electrode and the winding core was observed visually and by touch.

[0061] Example 4 Resistance heating was performed in the same manner and under the same conditions as in Example 1, except that the shape of the grooves formed in the electrodes was changed to grooves with a rectangular cross section, and the appearances of the electrodes and winding cores were inspected visually and by touch.

[0062] <Comparative Example 1> A pair of copper block electrodes without grooves was prepared, and a nickel plating film with a total thickness of approximately 10 μm was formed on the surface of each electrode. This pair of electrodes was arranged with a predetermined distance between them, and a stainless steel cylindrical winding core to be heated was placed directly on top of them (without an electric tip), and pressed from above with a cylinder to bring the electrodes and winding core into close contact. While maintaining this state, current was increased to 500 A and current was applied, and was stopped when the winding core reached 150°C. In this comparative example, this procedure was repeated 100 times, and the appearance of the electrodes and winding core was observed visually and by touch.

[0063] <Comparative Example 2> Resistance heating was carried out in the same manner and under the same conditions as in Comparative Example 1, except that a pair of copper block electrodes without grooves or nickel plating films was used, and the appearances of the electrodes and winding core were inspected visually and by touch.

[0064] [Evaluation of spark generation] The electric heating devices of Examples 1 to 4 and Comparative Examples 1 and 2 were evaluated according to the following criteria. The results are shown in Table 1 below. ⊚: No damage to either the electrode or the core even after 200 cycles of current application. ◯: After 200 cycles of current application, slight scratches were observed on the electrode or core. Δ: After 100 cycles of energization, uneven defects occurred on the electrode or winding core. ×: After 100 cycles of current application, large irregular flaws were generated on the electrode or the winding core, and the electrode temperature also rose significantly.

[0065] [Table 1]

[0066] As shown in Table 1 above, in the resistance heating devices of Examples 1, 3, and 4, even after 200 cycles of power on / off, there were no scratches on either the electrodes or the core, and the electrode temperature was 60 to 80° C. Furthermore, in the resistance heating device of Example 2, after 200 cycles of power on / off, slight scratches were found on the surface of the core, and the electrode temperature was 120 to 140° C., which was higher than in Example 1, but was still at a level that did not pose a problem.

[0067] In contrast, with the electric heating device of Comparative Example 1, large scratches were observed on the surface of the winding core after 100 cycles of current application, and large scratches also occurred on the electrodes, causing unevenness. Furthermore, when the temperature of the electrodes in the electric heating device of Comparative Example 1 was measured, it was found to have risen to 140 to 160°C, even higher than that of the device of Example 2. Furthermore, when the area where the electrode winding core was placed was observed, it was found that the plating film had peeled off, exposing the copper, and that part of it had turned black, suggesting the formation of copper oxide.

[0068] Similarly, in the case of the electric heating device of Comparative Example 2, large scratches were observed on the surface of the winding core after 100 cycles of electric current application, and many blackened irregularities thought to be copper oxide had appeared on the electrodes. Furthermore, when the temperature of the electrodes of the electric heating device of Comparative Example 2 was measured, it had risen to 150 to 170°C.

[0069] From the above results, it was confirmed that the present invention can realize an electric resistance heating device that can suppress the generation of sparks even when a metal body is repeatedly heated by electric resistance with a large current. [Explanation of symbols]

[0070] 1 Electrical heating device 2 Metal body 3. Heat-sealable sheet 4 Winding device 11 electrodes 11a Groove 12 Power supply section 13 Electrical Tip 14 Heat sink 14a Fins 21 Core 41 Drive roller 41a, 41b rollers 42 Pressure section 43 Guide roller

Claims

1. An electric heating device for heating a rod-shaped or cylindrical metal body, a pair of electrodes spaced apart from each other and disposed on the metal body; a power supply unit that supplies power to the pair of electrodes; a conductive tip arranged between the electrode and the metal body and made of a metal plate having a thickness of 0.05 to 1 mm; and The pair of electrodes has a surface that is metal-plated, and a linear groove extending from one end to the other end is formed on the surface on which the metal body is disposed, the conductive tip is disposed on each groove of the pair of electrodes; The metal body is disposed on the conductive tip along the groove, and the metal body and the electrode are electrically connected via the conductive tip.

2. 2. The electric heating device according to claim 1, wherein a heat sink is attached to the pair of electrodes.

3. 3. The electric heating device according to claim 2, wherein the heat sink has a plurality of fins arranged in a comb-like pattern, the thickness of the fins is 1 to 10 mm, and the spacing between each fin is 2 to 6 times the thickness.

4. 4. The electric heating device according to claim 1, wherein the grooves formed in the pair of electrodes have a V-shaped cross section, and the inner angle of the V is 150 to 170 degrees.

5. 5. The electric heating device according to claim 1, wherein the metal plating of the electrodes is nickel plating.

6. The electric heating device according to any one of claims 1 to 5, a rod-shaped or cylindrical metal body around which a heat-sealable sheet is wound; a winding device that winds the heat-sealing sheet around the metal body, The system for manufacturing a cylindrical laminate, wherein the metal body is electrically heated by the electric heating device.

Citation Information

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