Far-infrared heating device and far-infrared heating method

The far-infrared heating device with a rod-shaped lamp and ceramic material controls heat output based on surface temperature to form uniform coating films on complex shapes like direct PET containers, addressing thermal deformation issues in existing methods.

JP7842329B1Active Publication Date: 2026-04-08伏見 邦博
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2025-07-17
Publication Date
2026-04-08

AI Technical Summary

Technical Problem

Existing infrared heating methods struggle to form uniform and stable coating films on three-dimensional objects like direct PET containers without causing thermal deformation, as the intensity of far-infrared rays varies with distance from the heater, and require controlling internal temperatures, making them unsuitable for complex shapes.

Method used

A far-infrared heating device with a rod-shaped lamp and ceramic material, controlled by heat output based on temperature near the lamp surface, adjusts the distance to ensure precise temperature control and rapid film formation, using near-infrared and mid-infrared radiation.

Benefits of technology

Enables stable and uniform coating film formation on various materials, including direct PET containers, without thermal damage, by accurately controlling the temperature of the coated object using heat output adjustments.

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Abstract

The present invention provides a far-infrared heating device and a far-infrared heating method that can stably form a coating film on an object to be coated, even with extremely short heating times. [Solution] The far-infrared heating device comprises a housing, a rod-shaped far-infrared lamp including a non-glass hollow tube, the hollow tube filled with a heat source and ceramic material, and the surface of the hollow tube laminated with ceramic material, and a conveyor for transporting the object to be coated using the far-infrared lamp, and a heat output control means for controlling the amount of heat generated based on the temperature at a point within 5 mm in a straight line distance from the surface of the far-infrared lamp.
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Description

Technical Field

[0001] The present invention relates to a far-infrared heating device and a far-infrared heating method. In particular, based on the temperature near the surface of a far-infrared lamp, far-infrared rays are radiated, and even in an extremely short time, heat treatment can be accurately performed without damaging the coated object, and a coating film can be stably formed. The present invention relates to a far-infrared heating device and a far-infrared heating method.

Background Art

[0002] In recent years, after coating various coated objects (which may be referred to as workpieces, processed objects, etc.), such as glass bottles and plastic resin molded products, heat treatment is performed to stably form a uniform and high-quality coating film, and various coating technologies for imparting decorativeness, functionality, etc. using infrared rays and the like have been studied. In particular, although PET molded products (commonly known as direct PET) by the direct blow method have somewhat low mechanical strength, etc., they are extremely inexpensive and easy to handle various forms, so they are applied to various uses. However, when heat treatment is performed using infrared rays and the like, there is a problem that they are easily thermally deformed and it is difficult to stably form a uniform and high-quality coating film.

[0003] Therefore, a drying device for a high-concentration coating machine has been proposed that combines a far-infrared lamp and air drying to accelerate the start-up time and significantly shorten the drying time (see, for example, Patent Document 1). More specifically, it has a conveyor that moves the coated object at a predetermined speed, arranges a flat plate far-infrared heater so that the surface temperature becomes 300°C or lower, provides an inclined nozzle that forms an air flow boundary layer, and provides an exhaust duct so that the secondary flow caused by the collision of the ejected air does not become a disturbance to the far-infrared rays. And at an intermediate part of such a drying device, a rod-shaped far-infrared heater combined with a reflector is arranged to supply the heat quantity lost as latent heat of evaporation to the inside of the coating liquid, a nozzle for ejecting air is arranged, and further, a nozzle for ejecting only hot air is arranged on the outlet side of the drying device.

[0004] Furthermore, when drying large substrates with conductive patterns formed by thick-film printing, methods have been proposed that enable drying in a short time while maintaining a uniform temperature distribution across the surface (see, for example, Patent Document 2). More specifically, the process includes a moving step of intermittently moving a large substrate to a plurality of stopping positions provided along one direction, and a heating step of uniformly heating the large substrate by irradiating each of the plurality of stopping positions with far-infrared radiation of higher intensity in areas where the temperature is less likely to rise. Furthermore, the system is characterized by providing a blowing process at each of the multiple stopping positions, which simultaneously supplies air from the back side of the far-infrared heater towards the center of the large substrate through the far-infrared heater. [Prior art documents] [Patent Documents]

[0005] [Patent Document 1] Japanese Patent Publication No. 2018-142047 (Claims, etc.) [Patent Document 2] Japanese Patent Publication No. 10-825839 (Claims, etc.) [Overview of the Initiative] [Problems that the invention aims to solve]

[0006] However, although the drying apparatus described in Patent Document 1 uses both a far-infrared heater and hot air drying, it is basically necessary to control the internal temperature of the drying apparatus, and it is necessary to install a far-infrared heater at the inlet side of the drying apparatus and heat it for a considerable amount of time. Moreover, when applied to a three-dimensional object to be coated, there is a problem that the intensity of far-infrared rays tends to vary depending on the distance from the flat far-infrared heater to each part of the object to be coated. Therefore, for example, when used on direct PET containers with poor heat resistance and low mechanical strength, thermal damage occurs, resulting in the problem of not being able to form a uniform and stable coating film.

[0007] Furthermore, the drying method described in Patent Document 2 basically requires controlling the internal temperature of the drying apparatus, and it was necessary to provide a flat heater to heat-treat a large flat substrate and heat-treat it for a considerable amount of time. Therefore, it was intended only for far-infrared heating of large substrates, and there was a problem in that it was practically inapplicable to various other three-dimensional and complex-shaped objects to be coated, including direct PET containers, because they would undergo thermal deformation.

[0008] Therefore, in view of these problems, the inventors of this invention have made diligent efforts and have found that by controlling the amount of heat generated by the far-infrared lamp (W) based on the temperature (T1) at a predetermined distance from the surface of the far-infrared lamp, the temperature (T2) of the object to be coated can be controlled with high precision even in a very short time, thus completing the present invention. In other words, the present invention aims to provide a far-infrared heating apparatus and a far-infrared heating method that can stably form a predetermined coating film on various materials to be coated, including direct PET containers, by heating them using a far-infrared lamp without causing thermal damage. [Means for solving the problem]

[0009] The present invention is a far-infrared heating device comprising a housing, a rod-shaped far-infrared lamp including a non-glass hollow tube, the far-infrared lamp having a heat source and ceramic material filled inside the non-glass hollow tube, and the same or different ceramic material laminated on the surface of the non-glass hollow tube, and a conveyor for transporting a coated object to be heated under predetermined conditions by the far-infrared lamp. Furthermore, a far-infrared heating device is provided that has a heat output control means for controlling the amount of heat generated by the far-infrared lamp based on the temperature at a point within 5 mm in a straight line distance from the surface of the far-infrared lamp, thereby solving the above-mentioned problems.

[0010] In other words, by controlling the heat output (W) of the far-infrared lamp based on the temperature (T1) at a predetermined distance from the surface of the far-infrared lamp, the temperature (T2) of the object to be coated can be controlled with extremely high precision, and a coating film can be formed on the object to be coated in an extremely short time and stably. Far-infrared radiation typically includes near-infrared radiation with wavelengths of 0.78 to less than 1.5 μm, mid-infrared radiation with wavelengths of 1.5 to less than 3.0 μm, and far-infrared radiation with wavelengths of 3.0 μm to 1000 μm. Far-infrared radiation of these wavelengths can be utilized. However, in the case of the present invention, it is particularly preferable to use far-infrared radiation that contains a considerable amount of near-infrared and mid-infrared radiation with wavelengths of 0.78 to 10 μm, and whose maximum wavelength is 3 to 4 μm.

[0011] In constructing the present invention, it is preferable to provide an adjustment member that adjusts the shortest vertical distance between the far-infrared lamp and the object to be coated on the conveyor. By configuring it in this way, the location at a straight-line distance from the surface of the far-infrared lamp can be determined quickly and accurately, and consequently, the temperature at that location can be measured quickly and accurately. Furthermore, even if the straight-line distance changes due to the influence of ambient temperature or other factors, the adjustment member can quickly adjust the straight-line distance to a value within a predetermined range.

[0012] In constructing the present invention, it is preferable that the shortest vertical distance (L2) between the far-infrared lamp and the object to be coated on the conveyor be within the range of 150 to 250 mm. By configuring it in this way, the objects to be coated on the conveyor can be efficiently heat-treated to form a uniform and stable coating film.

[0013] In constructing this invention, it is preferable to arrange multiple far-infrared lamps in parallel on the inner ceiling of the housing, and to arrange them on the top, side, and bottom when the object to be coated is a molded product. By configuring the system in this way, the objects to be coated on the conveyor can be heated more efficiently, allowing for the rapid formation of a uniform and stable coating film.

[0014] In constructing this invention, the spectral emissivity of the far-infrared lamp is set to a value in the range of 0.7 to 1.0 for wavelengths less than 5 μm, to a value of 0.7 to 0.9 for wavelengths of 5 to 10 μm, and to a value of 0.7 to 0.9 for wavelengths greater than 10 μm. Values ​​greater than 0.9 It is preferable. By configuring the system in this way, it is possible to efficiently heat-treat the object to be coated on the conveyor using a predetermined far-infrared radiation (for example, wavelength 0.5 to 10 μm) to form a uniform and stable coating film.

[0015] In constructing the present invention, it is preferable to have an airflow blowing section that blows an airflow at a predetermined temperature (for example, 23 to 80°C) from one direction along a conveyor into the space between the far-infrared lamp and the object to be coated. By configuring it in this way, the effects of evaporated materials and other substances scattered from the paint on far-infrared radiation can be efficiently suppressed.

[0016] Another aspect of the present invention is a far-infrared heating method using a far-infrared heating apparatus comprising a housing, a rod-shaped far-infrared lamp including a non-glass hollow tube, wherein a heat source and a ceramic material are filled inside the non-glass hollow tube, and the same or different ceramic materials are laminated on the surface of the non-glass hollow tube, and a conveyor for transporting an object to be heated under predetermined conditions by the far-infrared lamp, characterized in that it includes the following steps (1) and (2). (1) A process of measuring the temperature of a point within 5 mm in a straight line from the surface of a far-infrared lamp using a thermocouple. (2) A process to control the amount of heat generated by the far-infrared lamp based on the measured temperature. That is, according to such a far-infrared heating method, by controlling the calorific value (W) of the far-infrared lamp based on the temperature (T1) of a location at a distance within a predetermined range from the surface of the far-infrared lamp, the temperature (T2) of the coated object can be controlled with extremely high precision, and a coating film can be formed on the coated object extremely quickly and stably.

[0017] When implementing the present invention, it is preferable to provide an adjustment member for adjusting the shortest vertical distance between the far-infrared lamp and the coated object on the conveyor, and to include the step of adjusting the shortest vertical distance. By implementing in this way, the location of the linear distance from the surface of the far-infrared lamp can be determined quickly and accurately, and thus, the temperature (T1) of such a location can be measured quickly and accurately. Also, even if the linear distance changes due to the influence of ambient temperature or the like, the adjustment member can quickly adjust such a linear distance to a value within a predetermined range.

Brief Description of the Drawings

[0018] [Figure 1] FIG. 1 is a diagram provided for explaining the flow of the heat treatment by the far-infrared heating device. [Figure 2] FIG. 2 is a diagram provided for explaining the outline of the far-infrared lamp. [Figure 3] FIGS. 3(a) to (b) are diagrams provided for explaining the spectral emissivity of the far-infrared lamp. [Figure 4] FIG. 4(a) is a diagram provided for explaining the adjustment member of the distance between the surface of the infrared lamp and the thermocouple, and FIG. 4(b) is a diagram provided for explaining the adjustment member of the distance between the surface of the infrared lamp and the coated object. [Figure 5] FIG. 5 is a diagram showing an example of the relationship between the linear distance (L1) between the surface of the far-infrared lamp and the thermocouple and the temperature (T1) of the far-infrared lamp. [Figure 6]Figure 6(a) shows an example of the relationship between the linear distance (L2) between the surface of the far-infrared lamp and the object to be coated, and the temperature (T2) of the object to be coated. Figure 6(b) shows an example of the relationship between the temperature (T1) of the far-infrared lamp and the temperature (T2) of the object to be coated. [Figure 7] Figure 7 is a diagram illustrating the flow of the heat treatment in a conventional hot air dryer. [Figure 8] Figure 8 illustrates the relationship between temperature control of the workpiece using a far-infrared lamp (T2-1 to T2-3) and temperature control of the workpiece using a conventional hot air dryer (T2'). [Modes for carrying out the invention]

[0019] [First Embodiment] The first embodiment is a far-infrared heating device comprising a housing, a rod-shaped far-infrared lamp including a non-glass hollow tube, wherein the inside of the non-glass hollow tube is filled with a heat source and a ceramic material, and the same or different ceramic material is laminated on the surface of the non-glass hollow tube, and a conveyor for transporting an object to be heated under predetermined conditions by the far-infrared lamp. Furthermore, the far-infrared heating device is characterized by having a heat output control means that controls the heat output (W) of the far-infrared lamp based on the temperature (T1) at a point within 5 mm in a straight line distance from the surface of the far-infrared lamp. Therefore, instead of using the temperature inside the enclosure as the reference, the heat treatment of the object to be coated 50 using the far-infrared heating device 10 can be performed according to a predetermined flow, as shown in Figure 1, based on the temperature near the far-infrared lamp. Hereinafter, a first embodiment of the far-infrared heating device of the present invention will be described in detail with reference to the drawings as appropriate.

[0020] 1. Enclosure / Substrate / Paint (1) Enclosure Regarding the housing of a far-infrared heating device, there are no particular limitations, but it is a shielding member for temperature control, exhaust control, noise control, etc., of the far-infrared lamp and the inside of the housing. Therefore, it is preferable to provide heat reflective materials, heat insulating materials, temperature sensors, etc., along the inner walls of the enclosure as appropriate, for purposes such as heat insulation within the enclosure. Furthermore, it is preferable that the interior of the enclosure (side walls, floor, ceiling, etc.) appropriately accommodates a predetermined far-infrared lamp, a conveyor for transporting the material to be coated, etc., and that an air outlet equipped with a rectifier plate such as perforated metal is provided for the efficient removal of solvents and other substances scattered from the paint. Furthermore, while far-infrared heating devices primarily use the temperature near the far-infrared lamp as a reference point, rather than the temperature inside the enclosure, they can also use the temperatures at several points inside the enclosure as a supplementary reference to control the heating state provided by the far-infrared lamp.

[0021] (2) Object to be coated There are no particular restrictions on the types of materials to which the far-infrared heating device can be applied; a wide range of materials are applicable as long as they are used to form a predetermined coating film. For example, in the case of molded resin products, at least one of the following types of products are covered: PET resin molded products, ABS resin molded products, acrylic resin molded products, PC resin molded products, polystyrene resin molded products, polyolefin resin molded products, epoxy resin molded products, and rubber-based resin molded products. In particular, even inexpensive direct-molded PET resin products with poor mechanical strength can be coated with a uniform coating in a short time without thermal damage, making it a suitable type of substrate. Furthermore, since it forms a predetermined coating film and significantly improves decorative properties, it is applicable to at least one of the following: various glass molded products, various metal molded products, various ceramic molded products, woodworking products, etc.

[0022] (3) Paint The types of paints to which the far-infrared heating device is applied are not particularly limited; a wide range of paints are applicable, as long as they are made of materials that can form the desired coating film. For example, at least one of the following can be mentioned: urethane acrylic one-component curing paint, urethane acrylic two-component curing paint, acrylic paint, urethane paint, polyester paint, epoxy paint, phenolic paint, silicone paint, fluorine paint, etc. Therefore, for at least one of the following types of glass molded products, metal molded products, ceramic molded products, etc., a wide range of coatings and paints are applicable depending on the application, as the coated material is less susceptible to thermal damage. On the other hand, direct-molded PET resin products have the problem of being susceptible to thermal damage during heat treatment. Therefore, urethane acrylic one-component curing paints and urethane acrylic two-component curing paints are suitable paints because they allow for the formation of a uniform coating at relatively low temperatures and in a shorter time.

[0023] (4) Additives in paints It is preferable to incorporate various additives into the paint, taking into consideration various applications and ease of use. In other words, it is preferable to blend at least one of the following in a predetermined amount: solvent, viscosity modifier, antioxidant, ultraviolet absorber, colorant, thixotropic agent, coupling agent, filler (metal filler, ceramic filler, resin filler, etc.).

[0024] 2. Far-infrared lamp (1) Diameter (outer diameter) The outer diameter (D) of the far-infrared lamp illustrated in Figure 2 can be appropriately changed considering the application, ease of use, and the type of material to be coated, but it is generally preferable to have a value within the range of 8 to 20 mm. The reason for this is that such a diameter (outer diameter) makes handling and mounting to an enclosure easier, and also allows it to heat up to a predetermined temperature and effectively emit the predetermined mid- and far-infrared rays. Therefore, it is more preferable to set the outer diameter of the far-infrared lamp to a value within the range of 10 to 18 mm, and even more preferable to set it to a value within the range of 12 to 16 mm.

[0025] On the other hand, the outer diameter of the cylindrical tube housed inside the far-infrared lamp is not particularly limited as long as it is smaller than the outer diameter of the far-infrared lamp, but it is generally preferable to have a value in the range of 6 to 18 mm. The reason for this is that such a cylindrical tube outer diameter not only facilitates the insertion of heating wires (as described later), but also makes it easier to adjust the outer diameter of the far-infrared lamp, allowing it to exhibit the required mechanical strength and corrosion resistance. Therefore, it is more preferable that the diameter of the cylindrical tube be within the range of 8 to 16 mm, and even more preferable that it be within the range of 10 to 14 mm.

[0026] (2) Length Furthermore, while there are no particular restrictions on the length (Lt) of the far-infrared lamp 12 illustrated in Figure 2, it is generally preferable to set it to a value within the range of 300 to 2500 mm. The reason for this is that such a length makes handling and mounting to the enclosure easier, and also allows it to heat up to a predetermined temperature and emit mid- and far-infrared rays. Therefore, it is more preferable to set the length of the far-infrared lamp to a value within the range of 400 to 1200 mm, and even more preferable to set it to a value within the range of 450 to 1000 mm.

[0027] Furthermore, in the far-infrared lamp 12 illustrated in Figure 2, the length indicated by the symbol La corresponds to the effective heating portion, and the length indicated by the symbol Lb corresponds to the non-heating portion. In this case, it is preferable to set La / Lb to a value within the range of 4 to 20. The reason for this is that by using this ratio, the heating state becomes more uniform throughout the far-infrared lamp, and consequently, it can emit the specified mid-to-far-infrared rays with greater precision. Therefore, it is more preferable to set La / Lb to a value in the range of 6 to 18, and even more preferable to set it to a value in the range of 8 to 16.

[0028] Furthermore, in the far-infrared lamp 12 illustrated in Figure 2, the length indicated by the symbol Lc corresponds to the length of the ceramic material coating on the non-glass exterior, and the length indicated by the symbol Ld corresponds to the length of the uncoated exterior on the non-glass exterior. In this case, it is preferable to set Lc / Ld to a value within the range of 8 to 30. The reason for this is that by using this ratio, the predetermined mid- and far-infrared rays can be emitted more uniformly along the length of the far-infrared lamp. Therefore, it is more preferable to set Lc / Ld to a value within the range of 10 to 28, and even more preferable to set it to a value within the range of 12 to 26.

[0029] (3) Structure Furthermore, the far-infrared lamp has electrodes at both ends, and a non-glass hollow tube between them is filled with a heat source and ceramic material, and the surface of the non-glass hollow tube is laminated with the same or different ceramic material. Specifically, it is preferable that the structure consists of a rod-shaped hollow tube (for example, made of stainless steel) with a heating element filled along its longitudinal direction along the inside, which generates heat when electricity is passed through the electrodes. The filling of the ceramic material allows for flexible lamp placement. Next, it is preferable that the heat generated is rapidly transferred through a rod-shaped hollow tube to an outer layer made of laminated identical or different ceramic materials, thereby emitting far-infrared rays of a predetermined wavelength.

[0030] In this context, examples of heating elements include nichrome wire, which readily generates heat to a predetermined temperature when an electric current is applied. With such nichrome wire, applying 50-60V per unit length can generate 20-80W of heat. Therefore, as a far-infrared lamp of a predetermined size, it can handle a heat output of 20 to 60 watts and effectively emit far-infrared rays of a predetermined wavelength.

[0031] Furthermore, the metal oxide ceramic material that is filled inside the rod-shaped hollow tube together with the heating element preferably contains at least one of the following: aluminum oxide, zirconium oxide, magnesium oxide, titanium oxide, silicon oxide, manganese oxide, chromium oxide, iron oxide, etc.

[0032] In other words, in order to facilitate the emission of infrared radiation of a predetermined wavelength and relatively short wavelength, it is preferable that the metal oxide ceramic material contains, for example, aluminum oxide at a content of 30% by weight or less, zirconium oxide at a content of 20% by weight or less, magnesium oxide at a content of 100% by weight or less, titanium oxide at a content of 20% by weight or less, silicon oxide at a content of 20% by weight or less, and the remaining components consisting of other ceramic materials, within their respective ranges.

[0033] Furthermore, in order to uniformly wire the heating element inside the hollow tube, it is preferable to use a phenolic resin, ester resin, or the like as a binder for the metal oxide ceramic material during filling, so that it exhibits some fluidity. In other words, it is preferable that the binder content be 30% by weight or less when the total amount of metal oxide ceramic material is 100% by weight. However, it can be inferred that when the far-infrared lamp is heated and fired, most of the binder is thermally decomposed inside the hollow tube, and almost none remains.

[0034] Furthermore, if the rod-shaped hollow tube is made of glass, it will absorb certain wavelengths (short wavelengths, especially 3-5 μm), so it is preferable that the hollow tube be made of a non-glass material. In other words, since the rod-shaped hollow tube has excellent corrosion resistance, heat transfer properties, and mechanical strength, it is preferable that it be made of stainless steel (SUS304, 430, etc.).

[0035] Furthermore, the outer surface of the rod-shaped hollow tube is covered with a ceramic layer made of metal oxide ceramic material (sometimes referred to as a second ceramic layer to distinguish it from the ceramic material filled inside). Therefore, at least one of the following is preferred: aluminum oxide, zirconium oxide, magnesium oxide, titanium oxide, silicon oxide, manganese oxide, chromium oxide, iron oxide, etc. Furthermore, since a ceramic layer that uniformly emits a predetermined wavelength can be laminated on the outside of the hollow tube, it is preferable to use a phenolic resin, an ester resin, or the like as a binder for the metal oxide ceramic material.

[0036] (4) Far infrared Furthermore, it is preferable that the far-infrared lamp emits far-infrared rays of a predetermined wavelength based on the temperature near the surface of the far-infrared lamp. In other words, it is preferable that the amount of radiation used is mainly in the near-infrared (including mid-infrared) wavelength range (0.78 to 3 μm) of far-infrared radiation, and that the amount used is usually within the range of 60 to 98% of the total amount of far-infrared radiation (100%). This is because if the amount of near-infrared radiation (including mid-infrared radiation) used is less than 60%, it may become difficult to heat and dry the coated material effectively and quickly. On the other hand, if the amount of near-infrared (including mid-infrared) used exceeds 98%, the types of ceramic materials that can be used to make up the far-infrared lamp may be excessively limited. Therefore, although far-infrared radiation is used, it is more preferable that the amount of near-infrared radiation (including mid-infrared radiation) used be within the range of 70-97%, and even more preferable that it be within the range of 80-96%. (Blackbody ratio)

[0037] (5) Spectral emissivity Furthermore, for far-infrared lamps, the spectral emissivity for wavelengths less than 5 μm is typically set to a value within the range of 0.7 to 1.0, the spectral emissivity for wavelengths of 5 to 10 μm is set to a value of 0.7 to 0.9, and the spectral emissivity for wavelengths greater than 10 μm is... Values ​​greater than 0.9 This is preferable. (Blackbody ratio) The reason for this configuration is that by utilizing predetermined far-infrared rays, the objects to be coated on the conveyor can be efficiently heated and treated, forming a uniform and stable coating film.

[0038] Here, it is known that objects emit electromagnetic waves of a predetermined wavelength as their temperature rises, and a hypothetical object that emits electromagnetic waves purely by temperature without external influence is defined as a blackbody. Furthermore, it is known that the wavelength and intensity of electromagnetic waves emitted from a black body at a predetermined temperature are as shown by characteristic curve A in Figure 3(a). On the other hand, as an example, when the wavelength and intensity of electromagnetic waves emitted from the far-infrared lamp of the present invention were measured, the characteristic curve B shown in Figure 3(a) was obtained. In this case, spectral emissivity can be calculated as the ratio of electromagnetic wave output for each wavelength (B / A).

[0039] Therefore, regarding the spectral emissivity of the far-infrared lamp, as shown in Figure 3(b), it is more preferable to set the spectral emissivity for wavelengths less than 5 μm to a value in the range of 0.75 to 0.95, the spectral emissivity for wavelengths of 5 to 10 μm to a value of 0.76 to 0.88, and the spectral emissivity for wavelengths greater than 10 μm to a value of 0.95 or higher. (Blackbody ratio) Furthermore, regarding the spectral emissivity of the far-infrared lamp, it is more preferable to set the spectral emissivity for wavelengths less than 5 μm to a value within the range of 0.78 to 0.93, the spectral emissivity for wavelengths of 5 to 10 μm to a value of 0.78 to 0.86, and the spectral emissivity for wavelengths greater than 10 μm to a value of 0.99 or higher. Furthermore, considering the spectral emissivity of the far-infrared lamp, the emitted far-infrared radiation will exhibit wavelength dependence, as shown in Figure 3(b).

[0040] (6)Reflector Furthermore, as shown in Figure 4(b), it is also preferable to provide a reflector 12a on the back of the far-infrared lamp 12 located inside the housing 10b. The reason for this is that such a reflector allows for more precise control of the surface temperature (T2) of the object to be coated, enabling efficient heat treatment and the formation of a uniform and stable coating film. When such a reflector is installed in a curved shape along the back of a cylindrical far-infrared lamp, the surface temperature (T2) of the object to be coated can be controlled to, for example, 180°C or higher, at more than three times the speed and with greater precision, compared to when such a reflector is not present. Furthermore, it is preferable to curve the reflector so that it follows the back of the cylindrical far-infrared lamp, and to provide guide sections on both sides along the heat dissipation direction of the far-infrared lamp. In this way, by curving the reflector and providing a guide section, the surface temperature (T2) of the coated object can be controlled quickly and accurately to 90°C or higher, compared to the case without such a reflector. Aluminum is preferred for the reflector due to its reflectivity.

[0041] 3. Conveyor (1) Width As shown in Figure 4(b), the width of the conveyor 14 that transports the object to be coated 50 (the width of the conveyor perpendicular to the length direction of movement) can be changed as appropriate considering the application, ease of use, and the type of object to be coated. However, assuming repeated rotational movement in the horizontal direction, it is generally preferable to set the value to a range of 100 to 1000 mm. The reason for this is that such a conveyor width makes handling and operation easier, and also makes it easier to handle various types of materials to be coated. Therefore, it is more preferable to set the width of such a conveyor to a value within the range of 200 to 800 mm, and even more preferable to set it to a value within the range of 300 to 600 mm.

[0042] (2) Length Furthermore, the length of the conveyor can be appropriately changed considering the application, ease of use, and the type of material to be coated and the type of paint used, but assuming rotational drive, it is generally preferable to set the length within the range of 100 to 2000 cm. The reason for this is that such a conveyor length makes handling and operation easier, and also makes it easier to handle various materials and paints to be coated. Therefore, it is more preferable to set the length of such a conveyor to a value within the range of 200 to 15,000 mm, and even more preferable to set it to a value within the range of 300 to 10,000 mm.

[0043] 4. Straight distance temperature (T1) (1) Definition The linear distance temperature of a far-infrared lamp (sometimes referred to as the surface temperature (T1) of the far-infrared lamp) refers to the temperature of the surface of the far-infrared lamp and its vicinity, and more specifically, to the temperature measured at a distance of 5 mm or less from the surface of the far-infrared lamp. In other words, based on the linear distance temperature (T1) as the reference temperature for the infrared lamp, thyristor control (current control based on thyristor elements) is performed, and the output control element (thyristor) is placed on the output side of the transformer. Furthermore, if there are multiple far-infrared lamps, it is also preferable to use the average value of the straight-line distance temperature (T1) of each lamp.

[0044] (2) Temperature range Furthermore, the linear distance temperature (T1) is preferably set to a value within the range of 160 to 630°C by appropriately changing the current control of the far-infrared lamp and the amount of heat generated by the far-infrared lamp. The reason for this is that, within the temperature range of the linear distance temperature (T1), it is possible to efficiently heat-treat typical objects on a conveyor (such as resin molded products) without using special far-infrared lamps, taking into consideration the type of object to be coated and the type of paint, thereby forming a uniform and stable coating film. Therefore, it is more preferable to set the linear distance temperature (T1) to a value within the range of 200 to 500°C, and even more preferable to set it to a value within the range of 300 to 400°C. Furthermore, this linear distance temperature (T1) can be measured using a thermocouple, and if there is a change in temperature, it can be controlled to reach the desired temperature very quickly and accurately by using thyristor control.

[0045] 5. Adjustment Member (1) Definition It is preferable to provide an adjustment member (predetermined mechanism) that adjusts the vertical and horizontal distance (shortest distance) between the far-infrared lamp and the object to be coated on the conveyor, and to control the temperature (T1) at a location near the far-infrared lamp or within 5 mm in a straight line, and the surface temperature (T2) of the object to be coated. In other words, as shown in Figure 5, it is preferable to control the surface temperature (T2) of the object to be coated by limiting the straight-line distance (L1) from the surface of the far-infrared lamp to the thermocouple to within 5 mm and controlling the surface temperature (T1) of the far-infrared lamp. Therefore, it is more preferable to set the straight-line distance from the surface of the far-infrared lamp to the thermocouple to a value of 4 mm or less, and even more preferable to set the straight-line distance to a value of 3 mm or less. However, while it is more preferable to set the straight-line distance from the surface of the far-infrared lamp to the thermocouple to 0 mm, this value tends to vary, so it is more preferable to set the straight-line distance from the surface of the far-infrared lamp to the thermocouple to a value of 0.1 mm or less, more preferably to a value of 0.3 mm or less, and even more preferably to a value of 0.1 mm or less.

[0046] Next, referring to Figure 6(a), the relationship between the linear distance from the surface (L2) in the far-infrared lamp and the temperature of the object to be coated (T2) will be explained. In other words, from the surface of the far-infrared lamp, The position of the object to be coated is restricted to a straight-line distance (L2), The temperature (T2) of the material being coated at that location can be controlled. Specifically, it is preferable that the straight-line distance (L2) from the surface of the far-infrared lamp to the position of the object to be coated be set to a value within the range described later.

[0047] Furthermore, with reference to Figure 6(b), the relationship between the surface temperature of the far-infrared lamp (T1) and the temperature of the object to be coated (T2) will be explained. In other words, as the surface temperature (T1) of the far-infrared lamp increases, the temperature of the coated material (T2) increases gradually, indicating a correlation. Therefore, it can be understood that the temperature of the coated material (T2) can be precisely controlled based on the surface temperature (T1) of the far-infrared lamp. In the case of Figure 6(b), as an example, the distance between the surface of the far-infrared lamp and the thermocouple (L1) was set to 2 mm, and the distance between the far-infrared lamp and the object to be coated was set to 15 cm. The surface temperature of the far-infrared lamp (T1) and the temperature of the object to be coated (T2) were then measured.

[0048] Furthermore, it is preferable to control the surface temperature (T1-1) of the far-infrared lamp and the surface temperature (T2-1) of the object to be coated by adjusting the position of the horizontal member to which the far-infrared lamp is attached and the vertical member along the wall of the housing, using an adjustment member (predetermined mechanism). Specifically, it is preferable to change the distance between the surface of the far-infrared lamp and the surface of the object to be coated, measure the surface temperature of the far-infrared lamp (T1-1, T1-2) and the surface temperature of the object to be coated (T2-1, T2-2) before and after the change in distance, and divide by the distance (S). The reason for this is that by calculating the value expressed as ((T1-1)-(T1-2)) / ((T2-1)-(T2-2)) / S, an index related to the amount of adjustment required for the surface temperature of the far-infrared lamp can be obtained. Furthermore, this allows for more precise determination of the surface temperature (T1) of the far-infrared lamp, thereby enabling more accurate control of the surface temperature (T2) of the object being coated.

[0049] (2) Configuration 1 Furthermore, as shown in Figure 4(a), it is preferable that the far-infrared lamp 12 is configured to include a curved portion 22c, wing portions 22f extending on both sides thereof, a ceramic cloth 22d which is a heat-resistant fabric, a thermocouple 22a, and a fixing device 22 equipped with a holder 22b for the thermocouple 22a, so that it can be detachably arranged at a predetermined location along the length of the far-infrared lamp 12. Furthermore, it is more preferable that the fixing device 22 includes a support plate 22g that holds the far-infrared lamp 12 between itself and the curved portion 22c, and a spacer 22h that maintains the support plate 22g at a predetermined height. Furthermore, it is preferable to provide, for example, an adjustment screw member 22e that penetrates the fixing device and adjusts the distance between the surface of the far-infrared lamp 12 and the thermocouple 22a and the object to be coated 50, and to adjust the distance between the surface of the far-infrared lamp 12 and the object to be coated 50 by adjusting the degree to which the adjustment screw member 22e is tightened and moved along the direction of the arrow. With this configuration, the distance between the surface of the far-infrared lamp and the thermocouple and the object to be coated 50 can be adjusted very easily and accurately by adjusting the thickness of the ceramic cloth and the pressing force of the adjustment screw member, and consequently, the surface temperature (T1) of the far-infrared lamp can be controlled to a desired range.

[0050] (3) Configuration 2 Furthermore, as shown in Figure 4(b), it is preferable to provide vertical and horizontal sliding mechanisms 32a, 32b, and 32c in a part of the housing 10b of the far-infrared heating device 10 as adjustment members, along the direction of gravity. It is preferable to adjust the position of these sliding mechanisms to independently vary the distance between the surface of the far-infrared lamp 12 and the thermocouple (not shown) and the object to be coated 50. With this configuration, the distance between the surface of the far-infrared lamp 12 and the object to be coated 50 can be easily and quickly adjusted in the vertical and horizontal directions with great precision by adjusting the positions of the sliding mechanisms 32a, 32b, and 32c. Therefore, even when the far-infrared lamp 12 is installed along the ceiling or side wall of the housing 10b, the distance between the surface of the far-infrared lamp 12 in the vertical and horizontal directions and the object to be coated 50 can be easily and quickly adjusted, and consequently, the surface temperature (T1) of the far-infrared lamp 12 and the temperature (T2) of the object to be coated 50 can be controlled to values ​​within a desired range. Figure 4(b) shows the object to be coated 50 mounted on a conveyor 14 with a spindle mechanism. However, it is also preferable to independently vary the distance between the surface of the far-infrared lamp 12 and the object to be coated 50 by adjusting the height of the spindle mechanism using a separate adjustment mechanism.

[0051] 6. Shortest distance in the vertical direction (1) Range The shortest vertical distance (L) between the far-infrared lamp and the object to be coated on the conveyor can be determined by considering the capacity of the far-infrared lamp, the size of the object to be coated on the conveyor, and the thickness and type of the coating film. Therefore, it is generally preferable to set the shortest vertical distance (L2) to a value within the range of 150 to 350 mm. The reason for this is that, at such a shortest vertical distance (L2), it is possible to efficiently heat-treat typical objects to be coated on a conveyor (such as resin molded products) without using far-infrared lamps with excessively different configurations, thereby forming a uniform and stable coating film. Therefore, it is more preferable to set the shortest vertical distance (L2) to a value within the range of 160 to 230 mm, and even more preferable to set it to a value within the range of 180 to 220 mm. Furthermore, if the object to be coated has a three-dimensional shape, the shortest vertical distance (L2) shall refer to the distance from the far-infrared lamp to the nearest surface or point on the object to be coated.

[0052] (2)Adjustment Furthermore, it is preferable to adjust the shortest vertical distance (L2) between the far-infrared lamp and the object to be coated on the conveyor to a predetermined range by appropriately changing the position of the far-infrared lamp in the vertical direction, and furthermore, the position of the object to be coated on the conveyor. The reason for this is that because far-infrared rays are emitted, if the device is too close, the heating area becomes smaller, and depending on the size of the object being coated, uneven heating is likely to occur. Therefore, it is preferable to provide means for changing the position of the far-infrared lamp, and furthermore, means for appropriately changing the position of the conveyor and the object to be coated on it toward the far-infrared lamp. More specifically, it is preferable to provide means for changing the position of the far-infrared lamp, as well as a stage mechanism or pressing member for vertically moving the position of the conveyor or the object to be coated on it, and a microscope or position sensor for detecting these.

[0053] (3) Arrangement of far-infrared lamps, etc. It is preferable that one or more far-infrared lamps be arranged in parallel on the inner ceiling and / or walls of the housing. For molded products, it is preferable to arrange them on the top, sides, and bottom. For example, in the case of the far-infrared lamp shown in Figure 4, one lamp is vertically arranged on the inner ceiling of the housing, and three lamps are vertically arranged on each of the side walls. The reason for this configuration is that it allows for more efficient heat treatment of the materials to be coated on the conveyor, enabling the rapid formation of a uniform and stable coating film. More specifically, it is preferable to determine the number of tubes by considering the size (capacity) of the housing, the heat output of the far-infrared lamp, the size of the object to be coated, and the manufacturing efficiency, but it is generally preferable to use 2 to 10 tubes, and more preferably 3 to 5 tubes.

[0054] 7. Airflow spraying section In constructing the present invention, it is preferable to have an airflow blowing section that blows an airflow at a predetermined temperature (for example, 23 to 60°C) from one direction along a conveyor into the space between the far-infrared lamp and the object to be coated. The reason for this configuration is that by configuring it in this way, evaporated materials scattered from the paint can be dispersed in a predetermined direction, and consequently, the reduction in the far-infrared absorption of the paint applied to the object to be coated can be effectively suppressed. Therefore, more specifically, the velocity of such airflow is usually preferably in the range of 0.1 to 10 m / s, more preferably in the range of 0.5 to 8 m / s, and even more preferably in the range of 0.8 to 5 m / s.

[0055] 8. Flowchart Next, referring to Figure 1, the heat treatment of the object to be coated using a far-infrared heating device will be explained according to a predetermined flow chart. In other words, it is preferable to first optionally perform a pretreatment / dust removal process (including washing, fixing, and inspection processes, etc.) on the object to be coated, such as a plastic container, as indicated by symbol S1.

[0056] Next, it is preferable to carry out the coating process of the object to be coated, as indicated by the symbol S2. In other words, in order to improve the decorative properties and surface characteristics of the object to be coated, it is preferable to apply a predetermined pattern, figure, symbol, etc., by spray coating (including electrostatic coating, etc.), dipping, powder coating, transfer method, inkjet coating, printing, etc., of a predetermined paint or the like. This painting process may be performed once, or it may be preferable to perform it two or more times.

[0057] Next, it is preferable to perform the setting process as indicated by the symbol S3. In other words, it is preferable to disperse solvents, low molecular weight substances, etc., in the paint applied to the object to be coated by performing a setting process. Therefore, for example, it is preferable to blow an airflow of 23°C (room temperature) to 80°C to suppress defects in the appearance and adhesion of the coated object in the subsequent drying process. Furthermore, while it is preferable to leave the setup process unattended in a warehouse or the like, it is also preferable to adapt the far-infrared heating device of the present invention and blow a precisely temperature-controlled airflow or the like based on the surface temperature of the far-infrared lamp. Furthermore, this setting process can be performed once, or it is preferable to perform it two or more times, in conjunction with the painting process.

[0058] Next, it is preferable to carry out a drying process as indicated by the symbol S4. In other words, it is preferable to remove solvents, low molecular weight substances, etc., from the paint applied to the object to be coated by performing a drying process. Therefore, it is preferable to adjust the surface lamp temperature of the far-infrared heating device to, for example, 160°C (room temperature) to 650°C to sufficiently cure the coated object and suppress defects in appearance and adhesion. Furthermore, this drying process may be carried out once, or it may be preferable to carry it out two or more times, in conjunction with the painting process, etc.

[0059] Finally, as indicated by symbol S5, it is preferable, although optional, to perform a cooling step. In other words, since the coated material has undergone a heating process, it is preferable to adjust the temperature to 23°C (room temperature) to 100°C to allow the coated material to harden sufficiently and suppress defects in appearance and adhesion. Furthermore, this cooling process may be performed once, or it is preferable to perform it two or more times, in conjunction with the painting process, etc.

[0060] [Second Embodiment] The second embodiment is a far-infrared heating method using a far-infrared heating apparatus comprising a housing, a rod-shaped far-infrared lamp including a non-glass hollow tube, wherein a heat source and a ceramic material are filled inside the non-glass hollow tube, and the same or different ceramic material is laminated on the surface of the non-glass hollow tube, and a conveyor for transporting an object to be heated under predetermined conditions by the far-infrared lamp, characterized in that it includes the following steps (1) and (2). (1) A step of measuring the temperature (T1) at a point within 5 mm in a straight line from the surface of the far-infrared lamp (sometimes referred to as the first step). (2) A process to control the heat output (W) of the far-infrared lamp based on the temperature (T1) (sometimes referred to as the first process).

[0061] 1. Far-infrared heating device Since the far-infrared heating device described in the first embodiment can be used as is, or modified as appropriate, a further explanation is omitted here.

[0062] 2. First process The first step is to measure the temperature (T1) at a predetermined distance (within 5 mm) from the surface of the far-infrared lamp. Therefore, it is preferable to measure the temperature (T1) using a thermometer (thermocouple) by changing a predetermined distance (within 5 mm) from the surface of the far-infrared lamp, for example, at 1 mm intervals.

[0063] 3. Second process The second step is to control the heat output (W) of the far-infrared lamp based on the measured temperature (T1). Therefore, it is preferable to calculate the heat output (W) of the far-infrared lamp by changing the values ​​of the current applied to the far-infrared lamp and control it to a value within a predetermined range (for example, 20 to 60 W).

[0064] 4. Temperature control step (T2) of the material to be coated (sometimes referred to as the third step). The third step is to control the temperature (T2) of the object to be coated based on the heat output (W) of the far-infrared lamp. Therefore, for example, if the object to be coated is an ABS resin plate, the paint is a two-component acrylic urethane paint, and the temperature (T2) of the object to be coated is expected to be in the range of 250 to 300°C, it is preferable to set the heat output of the far-infrared lamp to a value in the range of 60 to 80 kW. Furthermore, for example, if the object to be coated is an aluminum plate, the paint is a powder epoxy paint, and the temperature (T2) of the object to be coated is expected to be in the range of 550 to 600°C, it is preferable to set the heat output of the far-infrared lamp to a value in the range of 80 to 100 kW. Furthermore, for example, if the object to be coated is a direct PET molded product (cylindrical with a bottom), the paint is a two-component acrylic urethane paint, and the temperature (T2) of the object to be coated is expected to be 160 to 180°C, it is preferable to set the heat output of the far-infrared lamp to a value within the range of 40 to 70 kW.

[0065] 5. Other processes (1) Inspection of paint / substrate Other steps may include inspecting the substrate to which the coating film will be formed, and further, performing viscosity, component analysis, and crosslinking degree inspections of the paints constituting the coating film. Therefore, based on the inspection of the paint / coated object, it is preferable to determine and control the temperature (T1) at a point within 5 mm in a straight line from the surface of the far-infrared lamp, the temperature of the coated object (T2), and the heat output (W) of the far-infrared lamp.

[0066] (2) Inspection of the coating It is preferable to inspect the coating film by visual inspection, thickness, tackiness, and cross-sectional testing. Therefore, for visual inspection, it is preferable to adjust the irradiation conditions of the far-infrared lamp, etc., so that thermal deformation is hardly observed on the object to be coated and the surface of the formed coating film is generally uniform. Furthermore, it is preferable to adjust the irradiation conditions of the far-infrared lamp, etc., so that the thickness of the coating film has a small variation of ±5% or less of the predetermined thickness. Furthermore, if the material is tacky, it is preferable to adjust the irradiation conditions of the far-infrared lamp, etc., so that all samples have almost no sticky feeling. Furthermore, for adhesion, it is preferable to perform a grid test using a standard adhesive tape in accordance with JIS K 5600-5-6:1999 and adjust the irradiation conditions of the far-infrared lamp, etc., so that the number of peels is 1 to 2 or less in 100 1 mm square grids. [Examples]

[0067] The present invention will be described in detail below based on examples, but the present invention is not limited to the examples described without particular reason.

[0068] [Example 1] 1. Preparation of the coating film (1) As the paint, a one-component acrylic urethane paint (manufactured by Jujo Chemical Co., Ltd., MIG-N Ink 2500) was prepared. Next, the prepared paint was applied to one side of a rectangular ABS resin plate (10 cm long, 2.54 cm wide, 2 mm thick) using a bar coater No. 20. Next, the samples were left at room temperature for 10 minutes, then air-dried to set them up, and prepared as curing samples (n=5).

[0069] (2) The paint in the curing sample was cured using a far-infrared lamp. In other words, we prepared a far-infrared drying device (an improved version of the DRF type manufactured by Drying System Co., Ltd.). In addition, it was equipped with far-infrared lamps with standard reflectors on the back side (50 cm long, 12 mm in diameter, three of which are arranged in parallel on the top side of the housing, with standard reflectors). Specifically, the far-infrared lamp used was a rod-shaped lamp containing a non-glass hollow tube, in which a heating element and a fired ceramic material (a fired product of a material mainly composed of aluminum oxide, zirconium oxide, and a binder) were filled inside the non-glass hollow tube, and another fired ceramic material (a fired product of a material mainly composed of aluminum oxide, zirconium oxide, titanium oxide, and a binder) was laminated on the surface of the non-glass hollow tube (maximum radiation wavelength: 2.3~6 μm, spectral emissivity: 0.9).

[0070] Next, a conveyor for transporting the material to be coated was driven to rotate at 2 m / min, and the curing sample was placed on it and transported into the inside of a housing equipped with a far-infrared lamp. Next, the height of the far-infrared lamp was adjusted using an adjustment member so that the vertical distance from the surface of the far-infrared lamp to the sample to be cured was 12 mm.

[0071] Next, while measuring the temperature (T1) at a point 0 mm in a straight line from the surface of the far-infrared lamp using a thermocouple, the heat output of the far-infrared lamp was controlled to 80 kW (W) using a heat output control means, and far-infrared radiation was irradiated for 6 minutes to create cured samples (n=5). Next, as a setting process, a blower was used to blow a stream of air heated to 60°C at a speed of 1 m / s in one direction between the far-infrared lamp and the curing sample, and the air was released directly to the outside without recirculation. Finally, at the exit of the enclosure, the cured sample was removed from the conveyor belt and the resulting coating was evaluated.

[0072] 2. Evaluation of coatings, etc. (1) Visual inspection The appearance of the cured samples (n=5) was inspected and evaluated according to the following criteria. ◎: No thermal deformation was observed on the coated object, and the surface of the formed coating film was uniform. ○: No thermal deformation was observed in the coated object, and the surface of the formed coating film was nearly uniform. △: The coated object is slightly thermally deformed, or the surface of the formed coating is slightly uneven. ×: The coated object undergoes significant thermal deformation, or the surface of the formed coating film is not uniform.

[0073] (2) Thickness The thickness of the coating film in each cured sample (n=5) (assuming a plate thickness of 2 mm) was measured using calipers, the average value was calculated, and the results were evaluated according to the following criteria. ◎: 20±0.01mm ○: 20±0.2mm △: 20±1mm ×: 20±5mm

[0074] (3) Tuck The coating film on the cured samples (n=5) was subjected to a tactile test and evaluated according to the following criteria. ◎: None of the samples felt sticky at all. ○: All samples had almost no stickiness. △: Samples 1-2 have a sticky feeling. ×: Samples 3-5 have a sticky feeling.

[0075] (4) Adhesion For the coating film in the cured samples, a grid test (100 grids of 1 mm squares) was performed using a standard adhesive tape in accordance with JIS K 5600-5-6:1999 (equivalent to ISO 2409:1992), and the adhesion was evaluated according to the following criteria. ◎: Number of peels is 0 out of 100. ○: The number of peeling particles is 1-2 per 100 particles. △: 3-8 peels per 100 pieces. ×: The number of peeled pieces is 9 or more out of 100.

[0076] [Example 2] In Example 2, the temperature (T1) at a point 1 mm in a straight line from the surface of the far-infrared lamp was used as the reference, and the distance from the surface of the far-infrared lamp to the curing sample was set to 15 mm. A cured sample was then prepared and the coating film evaluated in the same manner as in Example 1.

[0077] [Example 3] In Example 3, the temperature (T1) at a point 2 mm in a straight line from the surface of the far-infrared lamp was used as the reference, and the distance from the surface of the far-infrared lamp to the curing sample was set to 18 mm. Otherwise, a cured sample was prepared and the coating film was evaluated in the same manner as in Example 1.

[0078] [Example 4] In Example 4, the temperature (T1) at a straight-line distance of 0 mm from the surface of the far-infrared lamp was used as the reference, and the distance from the surface of the far-infrared lamp to the curing sample was set to 18 mm. Otherwise, a cured sample was prepared and the coating film was evaluated in the same manner as in Example 1.

[0079] [Example 5] In Example 5, the object to be coated was changed to a direct PET container, and the temperature (T1) at a straight-line distance of 0 mm from the surface of the far-infrared lamp was used as the reference. The distance from the surface of the far-infrared lamp to the curing sample was set to 20 mm, the heat output of the far-infrared lamp was set to 40 kW, and the heating time was set to 6 minutes. Otherwise, a cured sample was prepared and the coating film was evaluated in the same manner as in Example 1.

[0080] [Comparative Example 1] In Comparative Example 1, the hollow tube of the far-infrared lamp was made of glass material, and the temperature (T1) at a straight-line distance of 5 mm from the surface of the far-infrared lamp was used as the reference, and the distance from the surface of the far-infrared lamp to the curing sample was set to 18 mm. Otherwise, a cured sample was prepared and the coating film was evaluated in the same manner as in Example 1.

[0081] [Comparative Example 2] In Comparative Example 2, the temperature (T1) at a point 6 mm in a straight line from the surface of the far-infrared lamp was used as the reference, and the distance from the surface of the far-infrared lamp to the curing sample was set to 20 cm. Otherwise, a cured sample was prepared and the coating film was evaluated in the same manner as in Example 1.

[0082] [Comparative Example 3] In Comparative Example 3, the object to be coated was changed to a direct PET container, and the temperature (T1) at a straight-line distance of 0 mm from the surface of the far-infrared lamp was used as the reference. The distance from the surface of the far-infrared lamp to the curing sample was set to 20 cm, the heat output of the far-infrared lamp was set to 40 kW, and the heating time was set to 30 minutes. Otherwise, a cured sample was prepared and the coating film was evaluated in the same manner as in Example 1.

[0083] [Table 1] [Industrial applicability]

[0084] As described above, the far-infrared heating device and far-infrared heating method of the present invention allow for extremely precise control of the temperature of the object to be coated by controlling the heat output (W) of the far-infrared lamp based on the temperature (T1) at a predetermined distance from the surface of the far-infrared lamp. Consequently, a coating film can be formed on the surface of the object to be coated in a short amount of time. In other words, with the far-infrared heating apparatus and far-infrared heating method of the present invention, even with a simple configuration and process, it is possible to stably and efficiently obtain a coated object with a uniform coating in an extremely short time. Therefore, even with direct PET, it is now possible to form a uniform coating in an extremely short time without causing thermal damage during the heat treatment.

[0085] Furthermore, for example, when the object to be coated is a glass container and the paint is a one-component acrylic urethane paint, a stable and efficient coating film (e.g., 20 μm thick) can be obtained by setting the surface temperature (T1) of the infrared lamp to 500-550°C for 5-6 minutes. On the other hand, it has been found that when using a conventional hot air dryer, in order to form a similar coating film derived from a one-component acrylic urethane paint on a glass container, the temperature of the hot air dryer's casing must be maintained at 180-200°C and the heat treatment must be performed for 20-30 minutes.

[0086] Furthermore, when the object to be coated is an acrylic styrene molded product or a direct PET molded product, and the coating is a two-component acrylic urethane coating, a stable and efficient coating film (for example, 20 μm thick) can be obtained by setting the surface temperature (T1) of the infrared lamp to 160-200°C for 5-6 minutes. On the other hand, it has been found that when using conventional hot air dryers, similar coatings derived from two-component acrylic urethane paints on acrylic styrene molded products or direct PET molded products must be heated for 20 to 30 minutes while maintaining the temperature of the hot air dryer's casing at 50 to 60°C.

[0087] In this regard, Figure 7 shows a flow chart of the heating process of a conventional hot air dryer, indicated by symbols S'1 to S'5. As shown in Figure 7, the number of steps and other parameters of a conventional hot air dryer are no different from those of the flow diagram using the far-infrared heating device of the present invention shown in Figure 1. However, conventional hot air dryers basically performed the setting process, indicated by symbol S'3, and the drying process (setting), indicated by symbol S'4, based on the furnace temperature.

[0088] Therefore, we will refer to Figure 8 and explain the relationship between the temperature profile of the workpiece coated under a far-infrared lamp (T2-1~3) and the temperature profile of the workpiece coated under a conventional hot air dryer (T2'). In other words, as shown in Figure 8, the temperature profile indicated by the symbol T2' shows that the furnace temperature (e.g., 300-500°C) fluctuates significantly compared to the temperature profiles T2-1 (high temperature: average 600°C ± 15°C), T2-2 (medium temperature: average 400°C ± 10°C), and T2-3 (low temperature: average 200°C ± 5°C) of the far-infrared heating device of the present invention.

[0089] Furthermore, it has been found that the far-infrared heating device and far-infrared heating method of the present invention can also be applied to setting processes that involve scattering solvents and moisture in paints. For example, when the object to be coated is a polypropylene resin molded product and the coating is a water-based UV coating, a coating film (e.g., 20 μm thick) in which almost all of the water in the water-based UV coating has been evaporated can be obtained by heating the infrared lamp at a surface temperature (T1) of 580 to 600°C for 1 to 1.5 minutes. On the other hand, it has been found that when using conventional hot air dryers, similarly, in order to apply water-based UV paint to polypropylene resin molded products and remove the moisture, the temperature of the hot air dryer's casing must be maintained at 80°C and a heat treatment must be performed for 5 to 10 minutes. [Explanation of symbols]

[0090] 10: Far-infrared heating device 10b: Enclosure 12: Far-infrared lamp 12a:Reflector 14: Conveyor 22: Fixtures 22a: Thermocouple 22b: Holder 22c: Curved section 22d: Ceramic cloth 22e: Adjustment screw component 22f: wing section 22g: Support plate 22h: Spacer 32a, 32b, 32c: Sliding mechanism 50: Object to be coated

Claims

1. The casing and A rod-shaped far-infrared lamp including a non-glass hollow tube, wherein the inside of the non-glass hollow tube is filled with a heat source and a ceramic material, and the surface of the non-glass hollow tube is laminated with the same or different ceramic material, A conveyor for transporting the object to be heated under predetermined conditions using the far-infrared lamp, A far-infrared heating device equipped with, The system includes a heat output control means that controls the heat output (W) of the far-infrared lamp and the surface temperature (T2) of the object to be coated, based on the temperature (T1) at a point within 5 mm in a straight line from the surface of the far-infrared lamp. A far-infrared heating device characterized by providing an adjustment member for adjusting the shortest vertical distance between the far-infrared lamp and the object to be coated on the conveyor, and an adjustment member for adjusting the shortest horizontal distance.

2. The far-infrared heating device according to claim 1, characterized in that the adjustment member for adjusting the shortest distance in the vertical direction and the adjustment member for adjusting the shortest distance in the horizontal direction are each slide mechanisms.

3. The far-infrared heating device according to claim 1, characterized in that the shortest vertical distance between the far-infrared lamp and the object to be coated on the conveyor is within the range of 150 to 250 mm.

4. The far-infrared heating device according to claim 1, characterized in that a plurality of the far-infrared lamps are arranged in parallel on the inner ceiling of the housing.

5. The far-infrared heating device according to claim 1, characterized in that the spectral emissivity of the far-infrared lamp is set to a value in the range of 0.7 to 1.0 for wavelengths less than 5 μm, to a value of 0.7 to 0.9 for wavelengths of 5 to 10 μm, and to a value greater than 0.9 for wavelengths greater than 10 μm.

6. The far-infrared heating device according to claim 1, characterized in that it has an airflow blowing section that blows an airflow of a predetermined temperature from one direction along the conveyor into the space between the far-infrared lamp and the object to be coated.

7. The casing and A rod-shaped far-infrared lamp including a non-glass hollow tube, wherein a heat source and ceramic material are filled inside the non-glass hollow tube, and the same or different ceramic material is laminated on the surface of the non-glass hollow tube, and the far-infrared lamp has a heat output control means, A conveyor for transporting the object to be heated under predetermined conditions using the far-infrared lamp, A far-infrared heating method using a far-infrared heating device comprising an adjustment member for adjusting the shortest vertical distance between the far-infrared lamp and the object to be coated on the conveyor, and an adjustment member for adjusting the shortest horizontal distance, characterized in that it includes the following steps (1) and (2). (1) A step of measuring the temperature (T1) at a point within 5 mm in a straight line from the surface of the far-infrared lamp using a thermocouple. (2) A step in which the heat generation control means controls the heat generation amount (W) of the far-infrared lamp so that the surface temperature (T2) of the object to be coated is within a predetermined temperature range, based on the temperature (T1).

8. The far-infrared heating method according to claim 7, characterized in that the adjustment member for adjusting the shortest distance in the vertical direction and the adjustment member for adjusting the shortest distance in the horizontal direction are each slide mechanisms.

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