Manufacturing method of decorative sheet
The method addresses adhesion and thermal issues in decorative sheets by laminating transparent and colored film layers with a UV-curable resin, achieving deep embossing and improved design quality under high temperatures.
Patent Information
- Application Number
- JP2020209539
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2020-12-17
- Publication Date
- 2026-02-03
- Estimated Expiration
- 2040-12-17
AI Technical Summary
Existing decorative sheets face issues with adhesion weakening due to stress and thermal history during deep embossing, leading to delamination, and temperature-related wrinkles and color changes, especially when using polyolefin resins like PP and PE.
A method involving extrusion lamination of a transparent thermoplastic resin layer onto a colored film layer, followed by a UV-curable resin layer, with a controlled embossing temperature between 115°C and 145°C, ensuring a melting point difference of at least 55°C between layers to prevent thermal expansion and cracking.
The method enables deep embossing without wrinkles or color changes, improving design quality and thermal stability, while maintaining adhesion and weather resistance.
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Abstract
Description
[Technical Field]
[0001] The present invention , conversion The present invention relates to a method for manufacturing a decorative sheet. [Background technology]
[0002] Conventionally, decorative sheets that can be given a three-dimensional effect by applying an embossed pattern have used polyolefin resins (e.g., PP (polypropylene), PE (polyethylene), etc.) as the base layer in order to obtain a deep embossed design. When embossing to a large depth, there is a problem that adhesion between layers is weakened due to stress and thermal history, making it more likely for delamination to occur.
[0003] In response to this, a method has been proposed in which the process of laminating a surface sheet onto a base sheet and the process of embossing the surface sheet are carried out as separate processes, thereby suppressing misalignment between the base sheet and the surface sheet and enabling accurate embossing (see, for example, Patent Document 1).In addition, a decorative sheet has been proposed in which the adhesive layer of the decorative sheet is made of maleic acid-modified polypropylene resin and ethylene-propylene copolymer rubber with added compatibilizing rubber, thereby preventing weakening of interlayer adhesion even when deep embossing is carried out (see, for example, Patent Document 2). [Prior art documents] [Patent documents]
[0004] [Patent Document 1] Japanese Patent Application Laid-Open No. 2001-205702 [Patent Document 2] Japanese Patent Application Laid-Open No. 2008-179024 Summary of the Invention [Problem to be solved by the invention]
[0005] However, since the melting points of the raw fabric layer and the clear layer are close, if the surface temperature of the embossed surface is high during embossing, the raw fabric layer will expand and contract, causing wrinkles and color changes, and conversely, if the surface temperature is low, the embossing will be poor. Also, if the raw fabric layer is dark in color, its heat absorption rate is high, causing the paper to tear due to heat. The present invention has been made to solve such problems, and provides a method for embossing deep enough that wrinkles and color changes do not occur even when processed under relatively high temperature conditions. transformation The object of the present invention is to provide a method for producing a decorative sheet. [Means for solving the problem]
[0006] In order to achieve the above object, according to one aspect of the present invention, a method for manufacturing a colored film including extrusion laminating a transparent thermoplastic resin layer containing a polyolefin resin onto one surface of a colored film layer containing PBT or PET, and a method for manufacturing a colored film including extrusion laminating a transparent thermoplastic resin layer containing a polyolefin resin onto the transparent thermoplastic resin layer, the method comprising the steps of: extruding a transparent thermoplastic resin layer containing a polyolefin resin onto one surface of a colored film layer containing PBT or PET; and extruding a transparent thermoplastic resin layer containing a UV-curable resin layer or a UV-curable resin layer as a top coat layer onto the transparent thermoplastic resin layer. Two-component curing urethane The present invention provides a method for manufacturing a decorative sheet, which comprises the steps of forming a curable resin layer made of a resin layer, and embossing from the surface of the top coat layer to the transparent thermoplastic resin layer, wherein the melting point of the colored film layer is at least 55°C higher than the melting point of the transparent thermoplastic resin layer, and the embossing step involves setting the temperature of the top coat layer to between 115°C and 145°C. [Effects of the Invention]
[0007] According to the present invention, a decorative sheet can be easily produced that has been deeply embossed and that does not develop wrinkles or color changes even when processed under relatively high temperature conditions. [Brief explanation of the drawings]
[0008] [Figure 1] 1 is a cross-sectional view schematically illustrating an example of a decorative sheet according to one embodiment of the present invention. [Figure 2] 1A and 1B are diagrams for explaining the effects of a decorative sheet according to one embodiment of the present invention. DETAILED DESCRIPTION OF THE INVENTION
[0009] Hereinafter, an embodiment of the present invention will be described with reference to the drawings. The drawings are schematic, and the relationship between thickness and planar dimensions, the ratio of each thickness, etc., differ from the actual ones. Furthermore, the embodiments shown below are merely examples of configurations for embodying the technical idea of the present invention, and the technical idea of the present invention is not limited to the materials, shapes, etc. of the components described below. The technical idea of the present invention can be modified in various ways within the technical scope defined by the claims.
[0010] <Composition of decorative sheet> FIG. 1 is a cross-sectional view illustrating one example of the configuration of a decorative sheet 10 according to this embodiment. As shown in Figure 1, decorative sheet 10 is made up of a primer layer 15, a colored film layer 11, a pattern printed layer 12, a transparent thermoplastic resin layer 13, and a top coat layer 14 laminated in this order. In addition, an embossed portion 16 is formed from top coat layer 14, which is the outermost layer in the lamination direction of decorative sheet 10, to transparent thermoplastic resin layer 13. Each layer will be described in detail below.
[0011] <Colored film layer> The colored film layer 11 is a layer that serves as the base material of the decorative sheet 10. In this embodiment, a thermoplastic resin can be used for the colored film layer 11. There are no particular limitations on the thermoplastic resin, and examples thereof include polyolefin resins such as polyethylene, polypropylene, polymethylpentene, polybutene, ethylene-propylene copolymer, ethylene-α-olefin copolymer, and propylene-α-olefin copolymer; polyolefin-based resins such as olefin-based copolymer resins such as ethylene-vinyl acetate copolymer, ethylene-vinyl alcohol copolymer, ethylene-(meth)acrylic acid (ester) copolymer, and ethylene-unsaturated carboxylic acid copolymer metal neutralized product (ionomer); polyethylene terephthalate, polybutylene terephthalate, polytetramethylene terephthalate, polyethylene naphthalate, polyethylene terephthalate-isophthalate copolymer, 1,4-cyclohexanedimethanol copolymerized polyethylene terephthalate, and polyaris(ethylene terephthalate). Examples of the resin that can be used include polyester resins such as acrylate and polycarbonate, acrylic resins such as poly(meth)acrylonitrile, polymethyl(meth)acrylate, polyethyl(meth)acrylate, polybutyl(meth)acrylate, and polyacrylamide, polyamide resins such as 6-nylon, 6,6-nylon, and 6,10-nylon, styrene resins such as polystyrene, AS resin, and ABS resin, vinyl resins such as polyvinyl chloride, polyvinyl acetate, polyvinyl alcohol, polyvinyl acetal, and polyvinyl butyral, and fluorine-based resins such as polyvinyl fluoride, polyvinylidene fluoride, polytetrafluoroethylene, ethylene-tetrafluoroethylene copolymer, and ethylene-perfluoroalkyl vinyl ether copolymer, as well as mixtures, copolymers, composites, and laminates of two or more of these resins.
[0012] Furthermore, if necessary, the colored film layer 11 may contain one or more additives selected from various additives such as colorants, fillers, ultraviolet absorbers, light stabilizers, heat stabilizers, antioxidants, antistatic agents, lubricants, flame retardants, antibacterial agents, antifungal agents, antifriction agents, light scattering agents, and gloss adjusters. The thickness of the colored film layer 11 is preferably within the range of 50 μm or more and 90 μm or less. When the thickness of the colored film layer 11 is 50 μm or more, a decrease in hiding power and processability can be prevented. Furthermore, when the thickness of the colored film layer 11 is 90 μm or less, the colored film layer 11 is not formed thicker than necessary, and the manufacturing cost of the decorative sheet 10 can be reduced.
[0013] Furthermore, the melting point of the colored film layer 11 is at least 55°C higher than the melting point of the transparent thermoplastic resin layer 13, which will be described later. As a result, when the colored film layer 11 contains a polyolefin resin, the occurrence of thermal expansion / contraction and thermal wrinkles can be suppressed as long as the surface temperature of the top coat layer 14, which is the surface to be embossed (hereinafter referred to as the embossed surface) during embossing is within the range of approximately 115°C to 145°C, and embossing can be performed even when the temperature of the embossed surface is set to approximately 145°C. Furthermore, the higher the temperature applied during embossing, the deeper the embossing can be formed, resulting in improved design properties.
[0014] <Picture printing layer> The pattern-printed layer 12 is formed on the colored film layer 11 and is a layer for adding a pattern to impart design. This layer can be omitted if the coloring of the colored film layer 11 can serve as a substitute. The pattern-printed layer 12 is formed using a printing ink or paint prepared by dissolving or dispersing a colorant such as a dye or pigment together with a suitable binder resin in a suitable diluent. The printing ink or paint is applied by various printing methods, such as gravure printing, flexographic printing, silk screen printing, and offset printing, or various coating methods, such as gravure coating and roll coating. Examples of binder resins that can be used include, but are not limited to, urethane resins, acrylic resins, vinyl chloride acetate resins, polyimide resins, nitrocellulose, and mixtures thereof. Any pattern can be used as the pattern, including, for example, wood grain, stone grain, fabric grain, abstract patterns, geometric patterns, letters, symbols, solid colors, and combinations thereof. In addition, in order to improve the hiding power of the decorative sheet 10, a hiding layer made of opaque printing ink or paint containing a large amount of opaque pigments such as titanium dioxide or iron oxide may be provided between the pattern printed layer 12 and the colored film layer 11.
[0015] The thickness of the pattern-printed layer 12 is preferably within the range of 3 μm or more and 20 μm or less. When the thickness of the pattern-printed layer 12 is 3 μm or more, the printing can be made clear. When the thickness of the pattern-printed layer 12 is 20 μm or less, the printing workability when producing the decorative sheet 10 is improved and production costs can be reduced. In addition, functional additives such as extender pigments, plasticizers, dispersants, surfactants, tackifiers, adhesive aids, drying agents, curing agents, curing accelerators, and curing retarders may be added to the pattern printing layer 12 to impart various functions. In addition, the pattern printing layer 12 may have, for example, a solid colored layer to conceal the color and pattern of the base to which the decorative sheet 10 is attached, and a pattern layer to add a pattern to impart design features.
[0016] <Transparent thermoplastic resin layer> The transparent thermoplastic resin layer 13 is a layer formed on the picture-printed layer 12, and is a layer provided to impart functions such as impact resistance to the decorative sheet 10. The transparent thermoplastic resin layer 13 also serves as an adhesive layer that bonds the picture-printed layer 12 and the top coat layer 14 together. The thickness of the transparent thermoplastic resin layer 13 is preferably within the range of 38 μm to 90 μm. If the thickness of the transparent thermoplastic resin layer 13 is within the above numerical range, not only can the formation of embossed unevenness be easily achieved, but sufficient effects can also be obtained in terms of impact resistance and caster resistance. In terms of design, the presence of the transparent thermoplastic resin layer 13, in combination with the picture printed layer 12, has the effect of creating a sense of greater depth and dimension. Specifically, if the thickness of the transparent thermoplastic resin layer 13 is 38 μm or more, the performance of impact resistance and caster resistance can be achieved. On the other hand, if the thickness of the transparent thermoplastic resin layer 13 is 90 μm or less, productivity during manufacturing can be improved, which can be advantageous in terms of cost.
[0017] Examples of materials that can be used for the transparent thermoplastic resin layer 13 include vinyl chloride resin, acrylic resin, and polyolefin-based polypropylene resin or polyethylene resin, etc. Among these, polyolefin-based resins are preferred in terms of environmental compatibility, processability, and cost. The grade and composition of the resin can also be selected taking into consideration ease of sheeting, printability, and suitability for bending. In particular, it is important to select a resin that will prevent whitening or cracking at the bent portion.
[0018] The transparent thermoplastic resin layer 13 preferably has a tensile modulus of 1000 MPa or more, particularly 1500 MPa or more, of the transparent thermoplastic resin layer 13 alone. There is no upper limit to the tensile modulus, but it may be about 2000 MPa. The tensile modulus can be measured by preparing a transparent polypropylene-based resin sheet having the same thickness and material as the transparent thermoplastic resin layer 13. The tensile modulus in this specification is a value measured in accordance with the provisions of JIS K6734 "Plastics - Rigid polyvinyl chloride sheets - Dimensions and properties - Part 2: Sheets with a thickness of less than 1 mm."
[0019] The transparent thermoplastic resin layer 13 may be formed by laminating the above-mentioned transparent polypropylene-based resin onto the pattern printed layer 12 using, for example, a calendar method, an inflation method, a T-die extrusion method, etc., or a pre-made film may be used. The surface of the transparent thermoplastic resin layer 13, on which the topcoat layer 14 described below is formed, may be subjected to a surface treatment such as corona discharge treatment, ozone treatment, plasma treatment, ionizing radiation treatment, or dichromate treatment, as necessary. The surface treatment may be carried out according to a conventional method for each treatment.
[0020] <Top coat layer> The topcoat layer 14 is a layer formed on the transparent thermoplastic resin layer 13, and is a layer provided to impart functions such as weather resistance, scratch resistance, stain resistance, and designability to the decorative sheet 10. An ultraviolet curable resin or a urethane curable resin is used as the material for the top coat layer 14. As the ultraviolet curable resin, an oligomer or a monomer can be used, and for example, an acrylic resin, a silicone resin, a polyester resin, a urethane resin, an amide resin, or an epoxy resin can be used.
[0021] As the urethane curing resin, for example, a two-component curing urethane resin can be used, and it is more preferable to use an acrylic-urethane block copolymer as the polyol component. For the two-component curing urethane resin, it is preferable to use an aliphatic isocyanate or an alicyclic isocyanate as the isocyanate component in terms of weather resistance and adhesion. Furthermore, for the acrylic-urethane block copolymer, it is also preferable that the isocyanate component in the urethane portion is an aliphatic isocyanate or an alicyclic isocyanate in terms of weather resistance and adhesion. Furthermore, an alicyclic isocyanate and an aliphatic isocyanate may be used in combination.
[0022] The thickness of the top coat layer 14 is not particularly limited, but is preferably in the range of 0.1 μm to 15 μm. When the thickness of the top coat layer 14 is 0.1 μm or more, the weather resistance, scratch resistance, etc. of the decorative sheet 10 are improved. Furthermore, when the thickness of the top coat layer 14 is 15 μm or less, there is no need to use an unnecessarily large amount of resin material, which allows costs to be reduced.
[0023] When an ultraviolet-curable resin is used as the curable resin for the top coat layer 14, the method of forming the top coat layer 14 is as follows: first, the ultraviolet-curable resin for the top coat layer 14 is applied onto the transparent thermoplastic resin layer 13, and ultraviolet light is irradiated using a metal halide lamp or the like to cure the ultraviolet-curable resin, thereby forming the top coat layer 14. Then, a deep embossed portion 16, which will be described later, is formed. As the source of ultraviolet light for curing the ultraviolet-curable resin, for example, an ultra-high pressure mercury lamp, a high pressure mercury lamp, a low pressure mercury lamp, a carbon arc lamp, a black light, a metal halide lamp, etc. The wavelength of the ultraviolet light is usually preferably in the range of 190 nm or more and 380 nm or less.
[0024] When a urethane curable resin is used as the curable resin for the top coat layer 14, the urethane curable resin for the top coat layer is first applied to the transparent thermoplastic resin layer 13. For example, a coating liquid made of the urethane curable resin is applied by a known coating method such as gravure coating or roll coating. The urethane curable resin is then cured to form a cured product, thereby obtaining the top coat layer 14. Then, a deep embossed portion 16, which will be described later, is formed. The top coat layer 14 may contain various additives, such as weather resistance agents, plasticizers, stabilizers, fillers, dispersants, colorants such as dyes and pigments, solvents, ultraviolet absorbers, heat stabilizers, light stabilizers, antiblocking agents, catalyst scavengers, colorants, light scattering agents, and gloss adjusters, as needed.
[0025] <Embossed section> The surface of the ultraviolet-curable resin layer or urethane-curable resin layer that will become the top coat layer 14, the outermost layer of the decorative sheet 10, is embossed (roughening using an embossing plate) to form (impart) an embossed portion 16 on the surface of the decorative sheet 10. The embossed portion 16 formed on the surface of the top coat layer 14 allows the decorative sheet 10 to be configured to have a more three-dimensional feel when tactilely felt. The depth of the embossed portion 16 is preferably 60 μm or more and 160 μm or less. When the depth of the embossed portion 16 is 60 μm or more, a sufficient three-dimensional feel can be imparted to the decorative sheet 10. When the depth of the embossed portion 16 is 160 μm or less, the depth of the embossed portion 16 is smaller than the total thickness of the decorative sheet 10, and the embossed portion 16 does not penetrate through the decorative sheet 10.
[0026] The embossing method involves embossing the surface of the decorative sheet 10 in a heated state using a non-contact heater at a temperature of 100-200°C and a preheating roll at 70-100°C, followed by cooling. In the embossing process, for example, the surface may be coated to the depth of the conduits formed between the ultraviolet-curable resin layer or urethane-curable resin layer that forms the top coat layer 14 and the transparent thermoplastic resin layer 13, thereby creating an uneven shape on the decorative sheet 10. Examples of the embossed portions 16 include wood-grain conduit grooves, stone-plate surface irregularities, cloth surface texture, matte finish, sand grain, hairline, and linear grooves.
[0027] During embossing, the surface temperature of the top coat layer 14, i.e., the temperature of the embossing surface, is preferably 115° C. or higher and 145° C. or lower. If the embossing surface temperature is 115° C. or higher and 145° C. or lower, an embossed portion with a design can be formed. The embossing surface temperature can be adjusted, for example, by adjusting the temperature of the aforementioned non-contact heater or by adjusting the surface temperature of the embossing roll itself.
[0028] <Primer layer> The primer layer 15 is an anchor coat layer intended to improve the adhesiveness of the resin. In addition to improving adhesiveness, the functions of the primer layer 15 also include stabilizing the surface after surface treatment, preventing corrosion of the metal surface, imparting tackiness, and preventing deterioration of the adhesive. For example, a two-component urethane resin-based primer can be used as the primer (undercoat) used to form the primer layer 15. The type of primer varies depending on the adherend and application. Examples of adherends include metal or wood-based plate-shaped members. Examples of metal-based members include aluminum, steel, stainless steel, and composite panels. Examples of composite panels include those with a resin layer serving as a core material and metal plates (such as aluminum, galvalume, and stainless steel) attached to both sides of the resin layer. Examples of wood-based members include MDF (medium density fiberboard), plywood, and particle board.
[0029] <Decorative sheet manufacturing method> The decorative sheet 10 is formed in the following manner. First, a picture print layer 12 is formed on one surface of a colored film layer 11 made of a thermoplastic resin. Next, a primer layer is formed on the other surface of the colored film layer 11. The primer layer 15 is formed by coating, for example, a urethane resin as a primer. Next, a transparent thermoplastic resin layer 13 is formed on the surface of the pattern-printed layer 12. Specifically, a transparent polypropylene-based resin is laminated onto the pattern-printed layer 12 by, for example, a calendar method, an inflation method, a T-die extrusion method, or the like. At this time, materials are used for the colored film layer 11 and the transparent thermoplastic resin layer 13, such that the melting point of the colored film layer 11 is 55°C or more higher than the melting point of the transparent thermoplastic resin layer 13.
[0030] Next, an ultraviolet-curable resin is applied to the surface of the transparent thermoplastic resin layer 13 to form an ultraviolet-curable resin layer that will become the top coat layer 14, and the ultraviolet-curable resin layer is cured by irradiating it with ultraviolet light using a metallized lamp to form the top coat layer 14. Next, an embossing plate is used to form a textured surface of the topcoat layer 14, and the embossed portion 16 is formed by in-line deep embossing. Here, "in-line deep embossing" means that the laminating process for forming a transparent thermoplastic resin layer, the process for forming an ultraviolet-curable resin layer that will become the topcoat layer, and the embossing process are all carried out in a single line. In other words, with in-line deep embossing, the processes from the laminating process to the embossing process can be carried out in a single line.
[0031] When a urethane curing resin is used for the top coat layer 14, the urethane curing resin is applied to the surface of the transparent thermoplastic resin layer 13, and after the urethane curing resin has cured, deep embossing is performed. Through the above steps, the decorative sheet 10 is formed.
[0032] <Effects of this embodiment> In the decorative sheet 10 according to this embodiment, the difference in melting point between the colored film layer 11 and the transparent thermoplastic resin layer 13 is set to 55°C or more. Furthermore, during embossing, the embossing surface temperature is set to 115°C or more and 145°C or less. This makes it possible to suppress the occurrence of thermal expansion and shrinkage and heat wrinkles. Furthermore, even when the embossing surface is exposed to a high temperature of around 145°C, the occurrence of thermal expansion and shrinkage and heat wrinkles can be suppressed, allowing embossing to be performed at higher temperatures. This allows for deeper embossing, improving the design.
[0033] In other words, if a hard material such as a PP layer is used for the colored film layer 11 or the top coat layer 14, especially if the melting points of the colored film layer 11 and the top coat layer 14 are close, the top coat layer 14 and even the transparent thermoplastic resin layer 13 may crack during embossing, as shown in Figure 2(a), i.e., the surface of the decorative sheet 10 may crack. However, the decorative sheet 10 according to the present invention uses materials for the colored film layer 11 and the transparent thermoplastic resin layer 13, such that the melting point of the colored film layer 11 is at least 55°C higher than the melting point of the transparent thermoplastic resin layer 13. In other words, when heated, the transparent thermoplastic resin layer 13 is more likely to soften than the colored film layer 11. Therefore, as shown in Figure 2(b), during embossing, the surface of the decorative sheet 10 that will be embossed is softer, so the transparent thermoplastic resin layer 13 side is more likely to deform than the colored film layer 11, and the transparent thermoplastic resin layer 13 allows shape changes due to embossing while suppressing deformation of the colored film layer 11.
[0034] As a result, the colored film layer 11, which is the original layer, can be prevented from undergoing thermal expansion, thermal wrinkles, color changes, etc., and as a result, cracks can be prevented from occurring on the surface of the top coat layer 14 and the transparent thermoplastic resin layer 13, i.e., the decorative sheet 10. Furthermore, even if a material with relatively high heat resistance is used for the colored film layer 11, thermal expansion / contraction, heat wrinkles, color change, etc. can be suppressed as long as the difference in melting point between the colored film layer 11 and the transparent thermoplastic resin layer 13 is 55°C or more. Therefore, a material with relatively high heat resistance, such as PBT or PET, can be used for the colored film layer 11, and the heat resistance of the colored film layer 11 can be improved. As a result, embossing can be performed at a higher temperature, so that even a deeper embossing can be more reliably formed, improving the design. Furthermore, since thermal expansion / contraction and cracking can be suppressed in this way, even if a relatively deep embossing process is performed, the embossed duct portion is more likely to remain covered with the top coat layer 14, thereby improving weather resistance. [Example]
[0035] Examples conducted to confirm the effects of the decorative sheet 10 according to the present invention will be described in detail below. However, the present invention is not limited to the following examples. <Preparation of test specimens for examples and comparative examples> Example 1 Colored film layer, 60 μm thick fever A resin layer made of polyethylene terephthalate (PET) was used as the plastic resin. A pattern was printed on one side of the colored film layer using a gravure printer as a pattern printing layer, and a two-component urethane resin primer was applied to the other side with a basis weight of 1.2 g / m2 after drying. 2 A primer layer was formed by coating.
[0036] Next, a transparent polypropylene resin (PP) was extruded and laminated onto the pattern printed layer as a transparent thermoplastic resin layer. The thickness of the transparent thermoplastic resin layer was 70 μm. The difference in melting point between the colored film layer and the transparent thermoplastic resin layer (melting point of the colored film layer - melting point of the transparent thermoplastic resin layer) was 95°C. Next, an ultraviolet-curable resin layer was formed on the transparent thermoplastic resin layer, and the ultraviolet-curable resin layer was cured by ultraviolet irradiation using a metal halide lamp, thereby producing a top coat. Next, the surface of the top coat was embossed to a depth of 80 μm, and the temperature of the embossed surface during embossing was 140° C. In this way, the decorative sheet of Example 1 was produced.
[0037] Example 2 A resin layer made of polybutylene terephthalate (PBT) with a thickness of 60 μm was used as the colored film layer. A transparent polyethylene resin (PE) was used as the transparent thermoplastic resin layer, and the thickness of the transparent thermoplastic resin layer was 55 μm. The difference in melting point between the colored film layer and the transparent thermoplastic resin layer (melting point of the colored film layer - melting point of the transparent thermoplastic resin layer) was 90°C. The temperature of the embossing surface during embossing was 120°C, and the embossing depth was 80 μm. Apart from that, the decorative sheet of Example 2 was produced in the same manner as in Example 1.
[0038] Example 3 A resin layer made of polybutylene terephthalate (PBT) with a thickness of 50 μm was used as the colored film layer. Furthermore, a transparent polypropylene resin (PP) was used as the transparent thermoplastic resin layer, and the thickness of the transparent thermoplastic resin layer was set to 80 μm. The difference in melting point between the colored film layer and the transparent thermoplastic resin layer (melting point of the colored film layer - melting point of the transparent thermoplastic resin layer) was 55°C. Furthermore, the temperature of the embossing surface during embossing was set to 140°C, and the embossing depth was set to 80 μm. Apart from that, the decorative sheet of Example 3 was produced in the same manner as in Example 1.
[0039] Example 4 A resin layer made of polybutylene terephthalate (PBT) with a thickness of 50 μm was used as the colored film layer. Furthermore, a transparent polypropylene resin (PP) was used as the transparent thermoplastic resin layer, and the thickness of the transparent thermoplastic resin layer was 38 μm. The difference in melting point between the colored film layer and the transparent thermoplastic resin layer (melting point of the colored film layer - melting point of the transparent thermoplastic resin layer) was 55°C. Furthermore, the temperature of the embossing surface during embossing was 140°C, and the embossing depth was 80 μm. Otherwise, the decorative sheet of Example 4 was produced in the same manner as in Example 1.
[0040] Example 5 A resin layer made of polybutylene terephthalate (PBT) with a thickness of 50 μm was used as the colored film layer. Furthermore, a transparent polypropylene resin (PP) was used as the transparent thermoplastic resin layer, and the thickness of the transparent thermoplastic resin layer was 38 μm. The difference in melting point between the colored film layer and the transparent thermoplastic resin layer (melting point of the colored film layer - melting point of the transparent thermoplastic resin layer) was 55°C. Furthermore, the temperature of the embossing surface during embossing was 115°C, and the embossing depth was 55 μm. Otherwise, the decorative sheet of Example 5 was produced in the same manner as in Example 1.
[0041] Example 6 The temperature of the embossing surface during embossing was changed to 145° C. Except for this, the decorative sheet of Example 6 was produced in the same manner as in Example 5.
[0042] (Comparative Example 1) The temperature of the embossing surface during embossing was changed to 110° C. Except for this, a decorative sheet of Comparative Example 1 was produced in the same manner as in Example 6. (Comparative Example 2) The temperature of the embossing surface during embossing was changed to 150° C. Except for this, a decorative sheet of Comparative Example 2 was produced in the same manner as in Example 6.
[0043] (Comparative Example 3) A resin layer made of polyethylene terephthalate (PET) with a thickness of 50 μm was used as the colored film layer. Furthermore, transparent polybutylene terephthalate (PBT) was used as the transparent thermoplastic resin layer, and the thickness of the transparent thermoplastic resin layer was 38 μm. The difference in melting point between the colored film layer and the transparent thermoplastic resin layer (melting point of the colored film layer - melting point of the transparent thermoplastic resin layer) was 50°C. Furthermore, the temperature of the embossing surface during embossing was 145°C, and the embossing depth was 55 μm. Apart from that, the decorative sheet of Comparative Example 4 was produced in the same manner as in Example 6.
[0044] Comparative Example 4 The temperature of the embossing surface during embossing was changed to 150° C. Except for this, a decorative sheet of Comparative Example 4 was produced in the same manner as in Comparative Example 3. (Comparative Example 5) The temperature of the embossing surface during embossing was changed to 110° C. Aside from this, a decorative sheet of Comparative Example 5 was produced in the same manner as in Comparative Example 3. (Comparative Example 6) The temperature of the embossing surface during embossing was changed to 115° C. Except for this, a decorative sheet of Comparative Example 6 was produced in the same manner as in Comparative Example 3.
[0045] (Comparative Example 7) A resin layer made of polyethylene resin (PE) with a thickness of 55 μm was used as the colored film layer. Furthermore, a transparent polypropylene resin (PP) having transparency was used as the transparent thermoplastic resin layer, and the thickness of the transparent thermoplastic resin layer was set to 38 μm. The difference in melting point between the colored film layer and the transparent thermoplastic resin layer (melting point of the colored film layer - melting point of the transparent thermoplastic resin layer) was -35°C. Furthermore, the temperature of the embossing surface during embossing was set to 110°C, and the embossing depth was set to 70 μm. Apart from that, the decorative sheet of Comparative Example 7 was produced in the same manner as in Example 1.
[0046] (Comparative Example 8) The temperature of the embossing surface during embossing was set to 130° C. Except for this, the decorative sheet of Comparative Example 8 was produced in the same manner as in Comparative Example 7. (Comparative Example 9) A resin layer made of polypropylene resin (PP) with a thickness of 60 μm was used as the colored film layer. Furthermore, a transparent polypropylene resin (PP) was used as the transparent thermoplastic resin layer, and the thickness of the transparent thermoplastic resin layer was set to 70 μm. The difference in melting point between the colored film layer and the transparent thermoplastic resin layer (melting point of the colored film layer - melting point of the transparent thermoplastic resin layer) was 0°C. Furthermore, the temperature of the embossing surface during embossing was set to 130°C, and the embossing depth was set to 70 μm. Apart from that, the decorative sheet of Comparative Example 9 was produced in the same manner as in Comparative Example 7.
[0047] (Comparative Example 10) Colored film layer, 60 μm thick fever A resin layer made of polyethylene terephthalate (PET) was used as the plastic resin. A polyethylene polyethylene resin (PE) was used as the transparent thermoplastic resin layer, and the thickness of the transparent thermoplastic resin layer was 40 μm. The difference in melting point between the colored film layer and the transparent thermoplastic resin layer (melting point of the colored film layer - melting point of the transparent thermoplastic resin layer) was 130°C. The temperature of the embossing surface during embossing was 110°C, and the embossing depth was 70 μm. Aside from that, the decorative sheet of Comparative Example 10 was produced in the same manner as Comparative Example 7.
[0048] <Evaluation method and criteria> <Performance evaluation method> The decorative sheets obtained as test specimens in Examples 1 to 6 and Comparative Examples 1 to 10 were evaluated as follows. [Design evaluation] The surface of the decorative sheet used as the test specimen was visually inspected, and the design feeling due to the uneven pattern was evaluated. (Evaluation criteria) ⊚: The unevenness of the uneven pattern had a design effect. ◯: The unevenness of the uneven pattern had some effect on the design. ×: The unevenness of the uneven pattern was shallow and had no effect as a design. The results of the design evaluation are shown in Table 1.
[0049] [Evaluation of thermal stretchability] For the decorative sheet used as a test specimen, 100mm squares of decorative sheet were cut and 100mm lines drawn lengthwise and widthwise, and the lengths of the lines were measured after heating in an oven at 60°C for 15 minutes. Based on the measurement results, the thermal expansion and contraction rate was calculated using the following formula. (Measured value after heating - 100 [mm]) / 100 [mm] x 100 [%] (Evaluation criteria) ○: The thermal expansion rate is 5% or less. ×: Thermal expansion / contraction rate is greater than 5%. The results of the thermal stretchability evaluation are shown in Table 1.
[0050] [Deep embossed design evaluation] For each of the decorative sheets of Examples 1 to 4, decorative sheets were produced in the same manner, except for the temperature of the embossed surface, and design evaluation was carried out. The temperature of the embossed surface was changed between 110°C and 145°C. (Evaluation criteria) ⊚: The embossing was transferred well. ◯: The embossing was transferred satisfactorily. △: Some transfer of the embossing occurred. ×: The embossing was not transferred. The results of the deep embossing design evaluation are shown in Table 2.
[0051] [Weather resistance evaluation] Weather resistance tests were conducted using a sunshine weather meter. The decorative sheets described in Examples 1 to 4 were produced as in-line and offline products. The produced decorative sheets were subjected to a cycle of (20 hours of UV irradiation + 4 hours of condensation) for 500, 1000, 1500, and 2000 hours, respectively, and the appearance of the decorative sheets was then visually evaluated. Specifically, the decorative sheets were observed for changes in appearance, whitening, cracks, etc. The in-line product referred to here refers to a decorative sheet produced in the same line, from the process of laminating a transparent thermoplastic resin layer to the process of forming a curable resin layer that will become the top coat layer, and the process of embossing. The offline product refers to a decorative sheet produced in the same line, from the process of laminating a transparent thermoplastic resin layer and the process of forming a curable resin layer that will become the top coat layer, and the process of embossing. The results of the weather resistance evaluation are shown in Table 3.
[0052] <Evaluation results> As shown in Table 1, in Examples 1 to 6, in which the melting point of the colored film layer was 55°C or more higher than the melting point of the transparent thermoplastic resin layer and the embossing surface temperature was 115°C or higher and 145°C or lower, both the design and thermal stretchability were good. Furthermore, in Comparative Examples 1, 2, and 10, in which the difference in melting point between the colored film layer and the transparent thermoplastic resin layer was 55°C or more, but the embossed surface temperature was not 115°C or more and 145°C or less, the thermal stretchability was poor. Furthermore, in Comparative Examples 3 to 9, in which the difference in melting point between the colored film layer and the transparent thermoplastic resin layer was less than 55°C, at least one of the design and thermal stretchability was poor even when the embossing surface temperature was set to 115°C or higher and 145°C or lower (Comparative Examples 3, 4, 6, 8, and 9).
[0053] Furthermore, as shown in Table 2, the higher the embossed surface temperature, the better the deep embossed design, and it can be seen that some degree of design can be obtained if the embossed surface temperature is 115° C. or higher and 145° C. or lower. Table 2 also shows the evaluation results for each of the decorative sheets of Examples 1 to 4 when the embossed surface temperature was changed, and similar results were obtained for all of the decorative sheets of Examples 1 to 4.
[0054] Furthermore, as shown in Table 3, regardless of the UV irradiation time in the weather resistance test, no significant changes were observed in either the offline or inline formed decorative sheets. It was also confirmed that sufficient weather resistance was achieved even when PP or PE was used as the transparent thermoplastic resin layer and PBT or PET, which has higher heat resistance than PP or PE, was used as the colored film layer. Table 3 shows the evaluation results of the weather resistance test for each of the decorative sheets of Examples 1 to 4, and similar results were obtained for all of the decorative sheets of Examples 1 to 4.
[0055] [Table 1]
[0056] [Table 2]
[0057] [Table 3]
[0058] Although the embodiments and examples of the present invention have been described above, the decorative sheet of the present invention is not limited to the above embodiments and examples, and various modifications are possible within the scope that does not impair the characteristics of the invention. [Explanation of symbols]
[0059] 10 Decorative Sheet 11 Colored film layer 12 Picture printing layer 13 Transparent thermoplastic resin layer 14 Topcoat layer 15 Primer layer 16 Embossed section
Claims
[Claim 1] a step of extruding and laminating a transparent thermoplastic resin layer containing a polyolefin resin onto one surface of a colored film layer containing PBT or PET; forming a curable resin layer made of an ultraviolet curable resin layer or a two-component curable urethane resin layer as a top coat layer on the transparent thermoplastic resin layer; embossing the surface of the top coat layer to the transparent thermoplastic resin layer; Equipped with the melting point of the colored film layer is higher than the melting point of the transparent thermoplastic resin layer by 55° C. or more; A method for producing a decorative sheet, wherein the step of embossing is performed by setting the temperature of the top coat layer at 115°C or higher and 145°C or lower.
Citation Information
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