Decorative sheet
The decorative sheet with varying foam and image layers addresses the challenge of producing diverse products in small lots by creating textured surfaces through foaming, enhancing design flexibility and production variety.
Patent Information
- Application Number
- JP2025146770
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2025-09-04
- Publication Date
- 2025-11-14
AI Technical Summary
Existing methods for creating decorative sheets with an elastic feel, such as out-molding and inkjet printing, are not suitable for producing a wide variety of products in small lots, as they either require uniform foam thickness or are limited to mass production.
A decorative sheet comprising a substrate with varying numbers of foam layers and image layers, combined with an adhesive layer, which is transferred and bonded to a molded product, and then foamed to create irregularities, allowing for diverse product designs.
Enables the production of a wide range of products with varying surface textures and heights, suitable for small-lot production, by utilizing a decorative sheet with multiple foam layers and image layers.
Smart Images

Figure 2025170058000001_ABST
Abstract
Description
[Technical Field]
[0001] The present disclosure relates to a decorative sheet. [Background technology]
[0002] Out-molding is known as one method of decorating three-dimensional molded products. Out-molding allows patterns to be added later, making it possible to produce a wide variety of products in small lots to meet diversifying consumer needs. In addition, out-molding has a lower environmental impact than printing, so it has been increasingly adopted in recent years.
[0003] Out-molding is a molding method that uses stretchable film, but gravure printing is mainly used for printing patterns. As mentioned above, out-molding is a molding method suited to small-lot, high-mix production, while gravure printing is a method suited to mass production, so depending on the quantity, it may not be profitable. Digital printing such as inkjet printing is considered a printing method suited to small-lot, high-mix production. Some inkjet printers use UV to harden the ink, and while it is possible to create textures such as unevenness, it is not suitable for creating an elastic feel like leather.
[0004] A known method for achieving an elastic feel is to use foam particles. For example, Patent Document 1 discloses a method in which a thermally foamable ink is applied to a vacuum-formable thermoplastic sheet, a transfer film is then laminated on the applied surface so that the patterned ink side of the transfer film overlaps the applied surface, and the thermally foamable ink is foamed by heating, while the thermoplastic sheet is vacuum-formed at the same time.
[0005] However, in the method described in Patent Document 1, since the thermally foamable ink is applied to a thermoplastic sheet, only a foamable ink layer of uniform thickness can be formed, and it is not suitable for developing a wide variety of products in small lots. [Prior art documents] [Patent documents]
[0006] [Patent Document 1] Japanese Patent Application Publication No. 5-254238 Summary of the Invention [Problem to be solved by the invention]
[0007] An object of the present disclosure is to provide a decorative sheet having a foam layer and suitable for developing a wide variety of products in small lots, and a method for manufacturing a decorated molded article. [Means for solving the problem]
[0008] The method for manufacturing a decorated molded product of the present disclosure includes the steps of heating a foam layer transfer sheet having a foam layer containing foamed particles provided thereon and transferring the foam layer to at least a portion of a substrate, forming an image layer on the substrate to produce a decorated sheet, bonding the decorated sheet and the molded product together via an adhesive layer to perform out-molding, and foaming the foam layer.
[0009] The decorative sheet of the present disclosure comprises a substrate, a first panel having at least one first foam layer provided on a first region of one surface of the substrate and a first image layer provided on the first foam layer, a second panel having at least one second foam layer provided on a second region of the one surface of the substrate and a second image layer provided on the second foam layer, and an adhesive layer provided on the other surface of the substrate, wherein the number of first foam layers in the first panel is different from the number of second foam layers in the second panel. [Effects of the Invention]
[0010] According to the present disclosure, it is possible to provide a decorative sheet having a foam layer and suitable for developing a wide variety of products in small lots. [Brief explanation of the drawings]
[0011] [Figure 1] FIG. 2 is a cross-sectional view of a foam layer transfer sheet. [Figure 2]10A to 10C are cross-sectional views illustrating a method for manufacturing a decorative sheet. [Figure 3] 10A to 10C are cross-sectional views illustrating a method for manufacturing a decorative sheet. [Figure 4] 10A to 10C are cross-sectional views illustrating a method for manufacturing a decorative sheet. [Figure 5] FIG. 2 is a cross-sectional view of a decorated molded product. [Figure 6] FIG. 2 is a cross-sectional view of a decorated molded product. [Figure 7] 7A and 7B are cross-sectional views illustrating a method for manufacturing a decorative sheet. [Figure 8] FIG. 2 is a cross-sectional view of a decorative sheet. [Figure 9] 9A to 9D are cross-sectional views of the decorated molded product. [Figure 10] 10A to 10C are cross-sectional views illustrating a method for manufacturing a decorative sheet. [Figure 11] FIG. 2 is a cross-sectional view of a decorated molded product. [Figure 12] FIG. 2 is a cross-sectional view of a decorated molded product. DETAILED DESCRIPTION OF THE INVENTION
[0012] Hereinafter, embodiments of the present disclosure will be described with reference to the drawings. To clarify the description, the drawings may show the width, thickness, etc. of each part more schematically than in the actual embodiment. However, these are merely examples and are not intended to limit the interpretation of the present disclosure. In the present specification and drawings, elements similar to those previously described with reference to the preceding drawings are designated by the same reference numerals, and detailed descriptions may be omitted as appropriate.
[0013] A method for manufacturing a decorated molded product according to an embodiment of the present disclosure involves preparing a decorative sheet having a foam layer, attaching this decorative sheet to a molded product using a technique such as out-mold molding, in-mold molding, or insert molding, and foaming the foam layer.
[0014] A method for manufacturing a decorative sheet will now be described. Fig. 1 is a cross-sectional view of a foam layer transfer sheet 10 for transferring a foam layer onto the substrate of a decorative sheet. The foam layer transfer sheet 10 has a substrate 11 and a foam layer 12 provided on one surface of the substrate 11.
[0015] The foam layer 12 includes foam particles. The foam particles have an outer shell made of a thermoplastic resin and a foaming agent encapsulated in the outer shell that vaporizes when heated. Therefore, the foam particles expand when heated.
[0016] A back layer (not shown) may be provided on the other surface of the substrate 11. A release layer (not shown) may be provided between the foam layer 12 and the substrate 11. An adhesive layer (not shown) may be provided on the foam layer 12.
[0017] Using a known thermal transfer printer, the foam layer 12 is transferred onto one surface of the base material 1 of the decorative sheet, as shown in Fig. 2. For example, a thermal head of the thermal transfer printer heats the foam layer transfer sheet 10 in a predetermined pattern, thereby partially transferring the foam layer 12 onto the base material 1. The transfer pattern is not particularly limited, and may be, for example, letters or a design.
[0018] The heat energy applied to the foam layer transfer sheet 10 when transferring the foam layer 12 is set to a level that does not cause the foam particles to expand.
[0019] When the decorative molding process described below is out-mold molding, the material of the substrate 1 of the decorative sheet is preferably PVC (polyvinyl chloride), PETG (glycol-modified polyethylene terephthalate), PO (polyolefin), PU (polyurethane), TPU (polyurethane thermoplastic elastomer), etc. When the decorative molding process is in-mold molding, the material of the substrate 1 is preferably PET (polyethylene terephthalate), etc. When the decorative molding process is insert molding, the material of the substrate 1 is preferably acrylic, an acrylic / PC (polycarbonate) composite material, PC, etc. The thickness of the substrate 1 is approximately 25 μm or more and 1000 μm or less.
[0020] After the foam layer 12 is transferred, an image layer 2 is formed on the substrate 1 so as to cover the foam layer 12, as shown in FIG. 3 . For example, the image layer 2 is formed by a melt transfer method. The melt transfer method is an image formation method in which a thermal transfer sheet provided with a colorant layer containing melt ink is applied to the thermal transfer sheet in accordance with image information, and the colorant layer melted or softened by the application of heat energy is transferred layer by layer onto the substrate 1 to form an image layer. The melt ink is a colorant such as a black pigment, metallic pigment, pearl pigment, or fluorescent pigment. The melt ink may also be a decorative layer containing a hologram or the like. There are no particular limitations on the thickness of the image layer 2, but an example is 0.1 μm or more and 5.0 μm or less.
[0021] The image layer 2 may be formed by transferring a receptor layer onto the substrate 1 so as to cover the foam layer 12, and then printing an image on the receptor layer by a sublimation transfer method. The sublimation transfer method is an image formation method in which a thermal transfer sheet provided with a colorant layer containing a sublimation dye is used, and thermal energy according to image information is applied to the thermal transfer sheet to transfer the sublimation dye contained in the colorant layer to the receptor layer, thereby forming an image. The sublimation dye may be a yellow dye, a magenta dye, a cyan dye, a fluorescent dye, or the like.
[0022] After the image layer 2 is formed, the protective layer 3 is transferred onto the image layer 2. The protective layer 3 protects the image on the image layer 2 and can be made of a known transparent resin material. There are no particular limitations on the thickness of the protective layer 3, but an example is 0.1 μm or more and 10 μm or less.
[0023] As shown in Fig. 4, an adhesive layer 4 is formed on the other surface of the substrate 1 to obtain a decorative sheet. The resin for the adhesive layer 4 can be a general-purpose acrylic resin, urethane resin, polyester resin, silicone resin, vinyl chloride resin, vinyl acetate resin, or a mixture or copolymer of two or more of these. There are no particular limitations on the thickness of the adhesive layer 4, but an example is 1 µm or more and 3000 µm or less.
[0024] As shown in Fig. 5, the adhesive layer 4 of the decorative sheet is bonded to the molded product 5, integrating the decorative sheet and the molded product 5. There are no particular limitations on the shape or material of the molded product 5, and it may be made of resin or metal. This decorative molding process can be performed using out-mold molding, in-mold molding, insert molding, etc., but out-mold molding is preferred, and among these, vacuum molding is preferred.
[0025] In vacuum forming, the molded product 5 is placed on a table inside the chamber box of the vacuum forming machine, and a decorative sheet is placed above the molded product 5. The chamber box is evacuated, and the decorative sheet is heated by a heater. The heated decorative sheet softens and sags under its own weight. By raising the table and placing only the area above the decorative sheet in the chamber box at atmospheric pressure, the decorative sheet adheres tightly to the molded product 5, allowing it to be molded.
[0026] The decorative sheet is heated by a heater during molding to expand the foam particles of the foam layer 12, thereby producing a decorated molded product. This results in a decorated molded product with irregularities (protrusions) provided in desired areas on the surface.
[0027] In the above embodiment, an example has been described in which the foam layer 12 is transferred onto the substrate 1 in a predetermined pattern, i.e., the foam layer 12 is transferred partially onto the substrate 1. However, as shown in FIG. 6, the foam layer 12 may also be transferred onto the entire surface of the substrate 1.
[0028] The foam layer 12 may be transferred multiple times. For example, as shown in Fig. 7A, the foam layer 12 may be transferred onto the substrate 1, and then, as shown in Fig. 7B, the foam layer 12 may be transferred to the region R1 of the foam layer 12. The thickness of the foam layer 12 may be different between the region R1 and the other regions.
[0029] By changing the transfer area and number of transfers of the foam layer 12, it is possible to produce a decorative sheet in which a plurality of panels P1 to P4 with different numbers of foam layers 12 laminated thereon are arranged at intervals, as shown in FIG.
[0030] The panel P1 has one foam layer 12 on a substrate 1, and an image layer 2 and a protective layer 3 are laminated on the foam layer 12 in this order.
[0031] The panel P2 has two foam layers 12 on a substrate 1, and an image layer 2 and a protective layer 3 are laminated in this order on the foam layers 12.
[0032] The panel P3 has three foam layers 12 on a substrate 1, and an image layer 2 and a protective layer 3 are laminated in this order on the foam layers 12.
[0033] The panel P4 does not have the foam layer 12, and has an image layer 2 and a protective layer 3 laminated in this order on the substrate 1.
[0034] An adhesive layer 4 is provided on the other surface of the substrate 1, and the panel P1 portion of the decorative sheet is integrated with the molded product 5 by out-molding, and the foam layer 12 is foamed, thereby producing a decorated molded product as shown in Figure 9A.
[0035] By out-molding, the panel P2 portion of the decorative sheet is integrated with the molded product 5, and the foam layer 12 is foamed, thereby producing a decorated molded product as shown in FIG. 9B.
[0036] By out-molding, the panel P3 portion of the decorative sheet is integrated with the molded product 5, and the foam layer 12 is foamed, thereby producing a decorated molded product as shown in FIG. 9C.
[0037] By out-molding, the panel P4 portion of the decorative sheet is integrated with the molded product 5, thereby producing a decorated molded product as shown in FIG. 9D.
[0038] By using a decorative sheet such as that shown in Fig. 8, it is possible to obtain a plurality of decorated molded products with convex portions of different heights, as well as decorated molded products without any irregularities, as shown in Fig. 9A to Fig. 9D. This is suitable for developing a wide variety of products in small lots, such as producing sample products with convex portions of different heights.
[0039] In the above embodiment, a configuration in which a foam layer 12, an image layer 2, and a protective layer 3 are laminated on one surface of the substrate 1 has been described. However, as shown in FIG. 10, the foam layer 12 may be transferred to one surface of the substrate 1, and the image layer 2 and the protective layer 3 may be formed on the other surface of the substrate 1.
[0040] Thereafter, an adhesive layer 4 is formed on one side of the substrate 1 so as to cover the foam layer 12, and the adhesive layer 4 is adhered to the molded product 5 by out-molding while foaming the foam layer 12, thereby obtaining a decorated molded product as shown in Figure 11.
[0041] 10 and 11 show a configuration in which the foam layer 12 is provided on a part of one surface of the substrate 1, but as shown in FIG. 12, the foam layer 12 may be provided on the entire surface of one surface of the substrate 1.
[0042] After the foam layer 12 is transferred onto the entire surface of the substrate 1, the foamed particles in a partial region of the foam layer 12 may be shrunk. For example, the foamed particles are shrunk by applying heat or pressure until the upper limit of the expansion ratio is reached.
[0043] Thereafter, an image layer 2 and a protective layer 3 are formed on the foam layer 12, and an adhesive layer 4 is formed on the other surface of the substrate 1 to produce a decorative sheet. This decorative sheet is integrated with a molded article 5 by out-molding, and the foam layer 12 is expanded, whereby a decorated molded article is obtained in which expansion of the foam layer 12 is suppressed in some regions where the foam particles have been shrunk in advance, and the foam layer 12 is expanded in other regions.
[0044] In the above embodiment, an example has been described in which the foam layer 12 is foamed during the out-molding process, but the foam layer 12 may also be foamed by heating after the decorative sheet is adhered to the molded product 5 by out-molding.
[0045] Next, the material of the foam layer transfer sheet 10 will be described.
[0046] (base material) The substrate 11 of the foam layer transfer sheet 10 is not limited in any way, and any conventionally known material in the field of thermal transfer sheets can be appropriately selected and used. Examples include stretched or unstretched plastic films such as highly heat-resistant polyesters such as polyethylene terephthalate, polyethylene naphthalate, polybutylene terephthalate, polyphenylene sulfide, polyether ketone, or polyether sulfone, polypropylene, polycarbonate, cellulose acetate, polyethylene derivatives, polyvinyl chloride, polyvinylidene chloride, polystyrene, polyamide, polyimide, polymethylpentene, or ionomers. Composite films made by laminating two or more of these materials can also be used. The thickness of the substrate 11 is not particularly limited, but a thickness of 2 μm to 10 μm is preferred.
[0047] (peeling layer) A release layer can be provided on the substrate 11 to improve the transferability of the foam layer 12. Examples of binder resins constituting the release layer include thermoplastic resins exemplified by cellulose derivatives such as ethyl cellulose, nitrocellulose, and cellulose acetate; acrylic resins such as polymethyl methacrylate, polyethyl methacrylate, and polybutyl acrylate; vinyl resins such as polyvinyl chloride, vinyl chloride-vinyl acetate copolymer, and polyvinyl butyral; thermosetting resins exemplified by saturated or unsaturated polyester, polyurethane resin, thermosetting epoxy-amino copolymer, and thermosetting alkyd-amino copolymer (thermosetting aminoalkyd resin); silicone wax, silicone resin, silicone-modified resin, fluororesin, fluoro-modified resin, and polyvinyl alcohol.
[0048] (Foam layer) The foam layer 12 contains foam particles and a binder resin. The foam particles are heat-expandable microspheres composed of a thermoplastic resin shell and a foaming agent (core) encapsulated within the shell. The foam particles have a core-shell structure, and the microspheres as a whole exhibit heat expandability (the property of expanding the entire microsphere when heated). The thermoplastic resin is a polymer of a polymerizable component.
[0049] The polymerizable component refers to a monomer having at least one polymerizable group in its molecule, which polymerizes to form the thermoplastic resin that forms the shell of the expanded beads. Examples of polymerizable components include non-crosslinkable monomers having one reactive carbon-carbon double bond (hereinafter simply referred to as non-crosslinkable monomers) and crosslinkable monomers having two or more reactive carbon-carbon double bonds (hereinafter simply referred to as crosslinkable monomers). The crosslinkable monomers can introduce a crosslinked structure into the polymer. The reactive carbon-carbon double bond here refers to a carbon-carbon double bond that exhibits radical reactivity, and does not refer to carbon-carbon double bonds in aromatic rings such as benzene rings or naphthalene rings, but includes carbon-carbon double bonds contained in vinyl groups, (meth)acryloyl groups, allyl groups, vinylene groups, etc. Here, the (meth)acryloyl group refers to an acryloyl group or a methacryloyl group.
[0050] The blowing agent is a component that vaporizes when heated. The blowing agent is not particularly limited, but examples thereof include hydrocarbons having 3 to 13 carbon atoms such as methane, ethane, propane, (iso)butane, (iso)pentane, (iso)hexane, (iso)heptane, (iso)octane, (iso)nonane, (iso)decane, (iso)undecane, (iso)dodecane, and (iso)tridecane, hydrocarbons having more than 13 but 20 or less carbon atoms such as (iso)hexadecane and (iso)eicosane, pseudocumene, petroleum ether, normal paraffins and isoparaffins having an initial boiling point of 150°C to 260°C and / or a distillation range of 70°C to 360°C, Examples of suitable compounds include hydrocarbons such as petroleum distillates such as vinylene; halogenated hydrocarbons having 1 to 12 carbon atoms such as methyl chloride, methylene chloride, chloroform, and carbon tetrachloride; fluorine-containing compounds such as hydrofluoroether; silanes having an alkyl group having 1 to 5 carbon atoms such as tetramethylsilane, trimethylethylsilane, trimethylisopropylsilane, and trimethyl-n-propylsilane; and compounds that undergo thermal decomposition to generate gases when heated, such as azodicarbonamide, N,N'-dinitrosopentamethylenetetramine, and 4,4'-oxybis(benzenesulfonylhydrazide).
[0051] The blowing agent may be composed of one type of compound or a mixture of two or more types of compounds. The blowing agent may be linear, branched, or alicyclic, with aliphatic blowing agents being preferred.
[0052] The encapsulation rate of the blowing agent in the expanded beads is defined as the percentage of the weight of the encapsulated blowing agent relative to the weight of the expanded beads. The encapsulation rate of the blowing agent is not particularly limited, but is preferably 2% by weight or more and 50% by weight or less relative to the weight of the expanded beads.
[0053] The expansion starting temperature of the expanded beads is not particularly limited, but is preferably at least 70° C. The average particle diameter (D50) of the expanded beads is 5 μm or more and 30 μm or less.
[0054] The thickness of the foam layer before the expanded beads is preferably 5 μm to 50 μm, and the thickness of the foam layer after the expanded beads is preferably 50 μm to 600 μm, more preferably 250 μm or more.
[0055] The foam layer may contain an ultraviolet curable resin.
[0056] (adhesive layer) In order to improve adhesion between the foam layer 12 and the substrate 1, which is the transfer target, an adhesive layer may be provided on the foam layer 12. Examples of materials for the adhesive layer include cellulose derivatives such as ethyl cellulose and cellulose acetate butyrate, styrene copolymers such as polystyrene and poly-α-methylstyrene, acrylic resins such as polymethyl methacrylate, polyethyl methacrylate, and polyethyl acrylate, vinyl resins such as polyvinyl chloride, polyvinyl acetate, vinyl chloride-vinyl acetate copolymer, and polyvinyl butyral, polyester, nylon resin, epoxy resin, and polyurethane.
[0057] (back layer) There are no limitations on the material of the back layer provided on the other surface of the substrate 11, and examples thereof include cellulose resins such as cellulose acetate butyrate and cellulose acetate propionate, vinyl resins such as polyvinyl butyral and polyvinyl acetal, acrylic resins such as polymethyl methacrylate, polyethyl acrylate, polyacrylamide and acrylonitrile-styrene copolymer, natural or synthetic resins such as polyamide resin, polyamideimide, polyester, polyurethane, silicone-modified or fluorine-modified urethane, etc. The back layer may contain one type of these resins alone, or two or more types.
[0058] Although the present disclosure has been described in detail with reference to specific embodiments, it will be apparent to those skilled in the art that various modifications can be made without departing from the spirit and scope of the present disclosure. [Explanation of symbols]
[0059] 1 Base material 2 Image Layer 3 protective layer 4 Adhesive layer 5 Molded products 10 Foam layer transfer sheet 12 Foam layer
Claims
1. A substrate; a first panel having at least one first foam layer provided on a first region of one surface of the substrate, and a first image layer provided on the first foam layer; a second panel having at least one second foam layer provided on the second region of the one surface of the substrate, and a second image layer provided on the second foam layer; an adhesive layer provided on the other surface of the base material; Equipped with A decorative sheet, wherein the number of the first foam layers in the first panel is different from the number of the second foam layers in the second panel.
2. The decorative sheet according to claim 1 , further comprising a third panel having a third image layer provided on a third region of the one surface of the substrate, the third panel not including a foam layer.
Citation Information
Patent Citations
Manufacture of foamed sheet having uneven pattern
JP1988270127A
Decorative material
JP1989045628A
Manufacture of decorative material
JP1989275200A
Decorated furniture and its decoration forming method
JP1993050799A
Three-dimensional image forming sheet
JP1996224957A