EP4592076A1 - Feuille décorative et panneau décoratif imprégné de résine - Google Patents
Feuille décorative et panneau décoratif imprégné de résineInfo
- Publication number
- EP4592076A1 EP4592076A1 EP23868204.1A EP23868204A EP4592076A1 EP 4592076 A1 EP4592076 A1 EP 4592076A1 EP 23868204 A EP23868204 A EP 23868204A EP 4592076 A1 EP4592076 A1 EP 4592076A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- decorative sheet
- resin
- layer
- white solid
- white
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Pending
Links
Classifications
-
- E—FIXED CONSTRUCTIONS
- E04—BUILDING
- E04F—FINISHING WORK ON BUILDINGS, e.g. STAIRS, FLOORS
- E04F13/00—Coverings or linings, e.g. for walls or ceilings
- E04F13/07—Coverings or linings, e.g. for walls or ceilings composed of covering or lining elements; Sub-structures therefor; Fastening means therefor
-
- D—TEXTILES; PAPER
- D21—PAPER-MAKING; PRODUCTION OF CELLULOSE
- D21H—PULP COMPOSITIONS; PREPARATION THEREOF NOT COVERED BY SUBCLASSES D21C OR D21D; IMPREGNATING OR COATING OF PAPER; TREATMENT OF FINISHED PAPER NOT COVERED BY CLASS B31 OR SUBCLASS D21G; PAPER NOT OTHERWISE PROVIDED FOR
- D21H19/00—Coated paper; Coating material
- D21H19/66—Coatings characterised by a special visual effect, e.g. patterned, textured
-
- D—TEXTILES; PAPER
- D21—PAPER-MAKING; PRODUCTION OF CELLULOSE
- D21H—PULP COMPOSITIONS; PREPARATION THEREOF NOT COVERED BY SUBCLASSES D21C OR D21D; IMPREGNATING OR COATING OF PAPER; TREATMENT OF FINISHED PAPER NOT COVERED BY CLASS B31 OR SUBCLASS D21G; PAPER NOT OTHERWISE PROVIDED FOR
- D21H19/00—Coated paper; Coating material
- D21H19/66—Coatings characterised by a special visual effect, e.g. patterned, textured
- D21H19/68—Coatings characterised by a special visual effect, e.g. patterned, textured uneven, broken, discontinuous
-
- D—TEXTILES; PAPER
- D21—PAPER-MAKING; PRODUCTION OF CELLULOSE
- D21H—PULP COMPOSITIONS; PREPARATION THEREOF NOT COVERED BY SUBCLASSES D21C OR D21D; IMPREGNATING OR COATING OF PAPER; TREATMENT OF FINISHED PAPER NOT COVERED BY CLASS B31 OR SUBCLASS D21G; PAPER NOT OTHERWISE PROVIDED FOR
- D21H19/00—Coated paper; Coating material
- D21H19/80—Paper comprising more than one coating
- D21H19/82—Paper comprising more than one coating superposed
-
- D—TEXTILES; PAPER
- D21—PAPER-MAKING; PRODUCTION OF CELLULOSE
- D21H—PULP COMPOSITIONS; PREPARATION THEREOF NOT COVERED BY SUBCLASSES D21C OR D21D; IMPREGNATING OR COATING OF PAPER; TREATMENT OF FINISHED PAPER NOT COVERED BY CLASS B31 OR SUBCLASS D21G; PAPER NOT OTHERWISE PROVIDED FOR
- D21H19/00—Coated paper; Coating material
- D21H19/80—Paper comprising more than one coating
- D21H19/82—Paper comprising more than one coating superposed
- D21H19/826—Paper comprising more than one coating superposed two superposed coatings, the first applied being pigmented and the second applied being non-pigmented
-
- D—TEXTILES; PAPER
- D21—PAPER-MAKING; PRODUCTION OF CELLULOSE
- D21H—PULP COMPOSITIONS; PREPARATION THEREOF NOT COVERED BY SUBCLASSES D21C OR D21D; IMPREGNATING OR COATING OF PAPER; TREATMENT OF FINISHED PAPER NOT COVERED BY CLASS B31 OR SUBCLASS D21G; PAPER NOT OTHERWISE PROVIDED FOR
- D21H27/00—Special paper not otherwise provided for, e.g. made by multi-step processes
- D21H27/10—Packing paper
-
- D—TEXTILES; PAPER
- D21—PAPER-MAKING; PRODUCTION OF CELLULOSE
- D21H—PULP COMPOSITIONS; PREPARATION THEREOF NOT COVERED BY SUBCLASSES D21C OR D21D; IMPREGNATING OR COATING OF PAPER; TREATMENT OF FINISHED PAPER NOT COVERED BY CLASS B31 OR SUBCLASS D21G; PAPER NOT OTHERWISE PROVIDED FOR
- D21H27/00—Special paper not otherwise provided for, e.g. made by multi-step processes
- D21H27/18—Paper- or board-based structures for surface covering
-
- D—TEXTILES; PAPER
- D21—PAPER-MAKING; PRODUCTION OF CELLULOSE
- D21H—PULP COMPOSITIONS; PREPARATION THEREOF NOT COVERED BY SUBCLASSES D21C OR D21D; IMPREGNATING OR COATING OF PAPER; TREATMENT OF FINISHED PAPER NOT COVERED BY CLASS B31 OR SUBCLASS D21G; PAPER NOT OTHERWISE PROVIDED FOR
- D21H27/00—Special paper not otherwise provided for, e.g. made by multi-step processes
- D21H27/18—Paper- or board-based structures for surface covering
- D21H27/20—Flexible structures being applied by the user, e.g. wallpaper
Definitions
- the present disclosure relates to a decorative sheet used for a production of a resin-impregnated decorative plate and a resin-impregnated decorative plate.
- Resin-impregnated decorative plates obtained by impregnating precursor (uncured resin) such as melamine resin into porous substrates, and then, curing the resin precursor, are conventionally known.
- the resin-impregnated decorative plates are used for, for example, walls, furniture, and floors of houses, shops, and public facilities.
- white basic tone designs such as marble have a high demand
- white substrates are generally used to express white designs.
- Patent Document 1 discloses a decorative plate comprising a releasing layer in a part of a surface of a porous substrate; in a remaining region of the surface of the porous substrate where no releasing layer is disposed, a thermosetting resin layer is included, and the thermosetting resin impregnated into the porous substrate is cured; the porous substrate is a fibrous substrate; and a height difference between the thermosetting resin layer and the releasing layer is 5 ⁇ m or more.
- Patent Document 1 Japanese Patent No. 6716877
- Patent Document 1 discloses that, according to the method described therein, the surface of the decorative plate can express a clear gloss matte tone design since the thermosetting resin layer expresses a gloss tone design and the releasing layer expresses a matte tone design; or the thermosetting resin layer expressed a matte tone design and the releasing layer expressed a gloss tone design.
- white porous substrates white resin-impregnated decorative plates having gloss matte designs, which cannot be conventionally expressed, are expected to be provided.
- white porous substrates such as titanium paper generally include white pigments such as titanium oxide, so there are many gaps between the paper, and the ink of the releasing layer, that is responsible for the expression of the gloss matte design, penetrates into the porous substrate, making it difficult to develop the gloss matte design.
- porous substrates that can fully exhibit the functions of the releasing layer the content of the white pigments is not sufficient so that white designs cannot be expressed. Therefore, with the conventional decorative sheet for a production of a resin-impregnated decorative plate, it has been difficult to obtain a resin-impregnated decorative plate that can exhibit a gloss matte design stably while expressing a white design.
- the present disclosure has been made in view of the above circumstances, and an object of the present disclosure is to provide a decorative sheet capable of obtaining a resin-impregnated decorative plate that can stably exhibit a gloss matte design while expressing a white design.
- the present disclosure provides a decorative sheet used for a production of a resin-impregnated decorative plate, the decorative sheet comprising: a porous substrate; a white solid layer disposed on an entire surface of one surface of the porous substrate, and including a white pigment; a pattern layer disposed partially on a surface of the white solid layer that is opposite side to the porous substrate; and a releasing layer disposed in a pattern on a surface of the pattern layer that is opposite side to the white solid layer, wherein the white solid layer includes a white blank region not covered with the pattern layer; an L* value of the white blank region is 93.0 or more; and an ash content included in the decorative sheet is 20.0% by mass or more and 40.0% by mass or less.
- the present disclosure provides a resin-impregnated decorative plate comprising: the decorative sheet described above; a core substrate disposed so as to face the porous substrate of the decorative sheet; and a cured resin layer disposed on the white blank region, and including a cured product of curable resin Y, wherein the core substrate and the porous substrate include the cured product of the curable resin Y; and the L* value of the white blank region is 88.0 or more, when measured via the cured resin layer.
- the present disclosure exhibits an effect that it is possible to provide a decorative sheet capable of obtaining a resin-impregnated decorative plate that can stably exhibit a gloss matte design while expressing a white design.
- FIG. 1 is a schematic cross-sectional view exemplifying the decorative sheet in the present disclosure.
- the decorative sheet 10 shown in FIG. 1 comprises: a porous substrate 1; a white solid layer 2 disposed on an entire surface of one surface of the porous substrate 1, and including a white pigment; a pattern layer 3 disposed partially on a surface of the white solid layer 2 that is opposite side to the porous substrate 1; and a releasing layer 4 disposed in a pattern on a surface of the pattern layer 3 that is opposite side to the white solid layer 2.
- the white solid layer 2 includes a white blank region X that is not covered with the pattern layer 3, and the L* value of the white blank region X is 93.0 or more. Also, an ash content included in the decorative sheet 10 is 20.0% by mass or more and 40.0% by mass or less.
- the decorative sheet in the present disclosure by including a white solid layer on the entire surface of one side of the porous substrate, to the extent that the resin impregnation property of the porous substrate can be obtained, and setting the ash content of the decorative sheet to the predetermined ratio or more, L* value of the white blank region X of the white solid layer 2 not covered with the pattern layer 3 can be the predetermined value or more. Therefore, by using the decorative sheet in the present disclosure, a resin-impregnated decorative plate exhibiting a white design can be obtained.
- the ink of the releasing layer that is responsible for the expression of the gloss matte design, can be suppressed from penetrating into the porous substrate, thereby enabling the stable expression of the gloss matte design.
- the white solid layer includes a white blank region that is not covered with the pattern layer, and the L* value, in the L*a*b* color system, of the white blank region is 93.0 or more.
- the L* value is more preferably 94.5 or more, and particularly preferably 95.0 or more.
- the L* value is, for example, 97.0 or less, and may be 96.0 or less.
- L*a*b* color system refers to the color system standardized by the CIE (International Commission on Illumination) which is adopted in JIS Z 8781-4:2013.
- CIE International Commission on Illumination
- chromaticity which indicates hue and saturation
- the L* value substantially represents the whiteness, and the closer to 100, the higher the whiteness, and the closer to 0, the lower the whiteness.
- the L* value in the L*a*b* color system of the white blank region is the average value of the values measured at five points on the surface of the white blank region, using CM-3700A from Konica Minolta Inc. Also, the colorimetric region is circular with a diameter of 25.4 mm (area: 506.71 mm 2 ).
- the white blank region X is the region of the white solid layer 2 that is not covered by the pattern layer 3 and more specifically, the region that is not covered by the pattern layer 3 and the releasing layer 4.
- the white blank region X when viewed from the thickness direction, a case wherein a part of the releasing layer 4 protrudes from the region where the pattern layer 3 is disposed, is also assumed.
- the region covered by colorless and transparent releasing layer 4 and not covered by the pattern layer 3 can referred to as a white blank region.
- the ash content included in the decorative sheet is 20.0% by mass or more, and preferably 22.0% by mass or more.
- the ratio of the ash content is similar to the content ratio of the decorative sheet, mainly to the inorganic materials, such as white pigments, in the porous substrates.
- the ash content is 40.0% by mass or less, and preferably 30.0% by mass or less.
- the gloss mat design cannot be stably expressed.
- the ash content in the present disclosure is the value measured by the following measurement method and conditions.
- a measurement sample of approximately 5 mg is cut out.
- the temperature is raised from room temperature to 30°C at a raising rate of 10°C/minute and held at 30°C for 15 minutes, under the following conditions. Then, the temperature is raised to 120°C at a raising rate of 10°C/minute and held at 120°C for 30 minutes. Then, the temperature is raised to 600°C at a raising rate of 10°C/minute and held at 600°C for 30 minutes. Thereby, an ashing of the measurement sample is carried out.
- the ash content in the present disclosure is a value expressed in a percentage of the mass of the sample after holding at 600°C for 30 minutes, with respect to the mass of the sample after holding at 120°C for 30 minutes, in the temperature raising program.
- Ash content % mass of sample mg after holding at 600 ° C for 30 minutes / mass of the sample mg after holding at 120 ° C for 30 minutes ⁇ 100
- the decorative sheet in the present disclosure includes at least a porous substrate, a white solid layer, a pattern layer, and a releasing layer.
- the releasing layer in the present disclosure is disposed in a pattern on a surface of the pattern layer that is opposite side to the white solid layer.
- the releasing layer has the ability to release with respect to the cured resin layer disposed between the releasing layer and the release film.
- the cured resin layer 32 gives a gloss tone design
- the releasing layer 4 gives a matte tone design, so that a clear gloss-matte tone design can be expressed.
- the releasing layer is preferably disposed so that it is aligned with the pattern of the pattern layer.
- aligned with means that the shape and position of the two patterns of interest roughly conform with each other. Specifically, the shape and position of the pattern of the releasing layer and at least a part of the pattern constituting the pattern of the pattern layer match to the extent that it does not impair the sense of realism and luxury.
- the releasing layer includes a resin component.
- the resin component is typically a cured product (cross-linked structure) of a curable resin.
- the curable resin in the releasing layer may be referred to as curable resin X.
- the resin component may be thermoplastic resin.
- the releasing layer preferably includes a cured product of a curable resin. This is because a releasing layer with good wear resistance can be obtained. Also, when the releasing layer includes the cured product of a curable resin, ability to release with respect to the cured resin layer is improved.
- Examples of the curable resin X may include ionizing radiation curable resins and thermosetting resins.
- Examples of the ionizing radiation curable resin may include electron beam curable resins, and ultraviolet ray curable resins.
- the ionizing radiation curable resin are not particularly limited as long as it is a material that generates cross-linking polymerization reaction by irradiation of ionizing radiation and changes to a three-dimensional polymer structure.
- the ionizing radiation curable resin may include prepolymers, oligomers and monomers, including polymerizable unsaturated bonds or epoxy groups in the molecule, capable of being cross-linked by irradiation of ionizing radiation.
- one type of the ionizing radiation curable resin may be used alone, and two types or more may be used in a combination.
- the ionizing radiation curable resin at least one of a multifunctional monomer and oligomer is preferably used.
- Examples of the ionizing radiation curable resin may include (meth)acrylate based resins, such as urethane(meth)acrylate, and ester(meth) acrylate, epoxy(meth)acrylate; silicon based resins such as siloxane; ester based resins; and epoxy based resins.
- the (meth)acrylate based resin refers to an acrylate based resin or a methacrylate based resin.
- the weight average molecular weight of the ionizing radiation curable resin is, for example, 500 or more and 80,000 or less, and may be 1,000 or more and 50,000 or less.
- the weight average molecular weight is a value measured by gel permeation chromatography (GPC) method, using polystyrene as the reference material.
- a multifunctional monomer or oligomer As the ionizing radiation curable resin, at least a multifunctional monomer or oligomer, with a weight average molecular weight of 500 or more, is preferably included.
- multifunctional monomer or oligomer may include (meth)acrylate based resins such as dipentaerythritol hexa(meth)acrylate, dipentaerythritol penta(meth)acrylate, urethane(meth)acrylate, ester(meth)acrylate, and epoxy(meth)acrylate.
- thermosetting resins may include unsaturated ester based resins, urethane based resins (including two-liquid curing type polyurethane), epoxy based resins, amino-alkyd based resins, phenolic based resins, urea based resins, diallylphthalate based resins, melamine based resins, guanamine based resins, melamine urea co-condensation based resins, silicon based resins and siloxane based resins.
- unsaturated ester based resins including urethane based resins (including two-liquid curing type polyurethane), epoxy based resins, amino-alkyd based resins, phenolic based resins, urea based resins, diallylphthalate based resins, melamine based resins, guanamine based resins, melamine urea co-condensation based resins, silicon based resins and siloxane based resins.
- the releasing layer may include a matting agent.
- the matting agent may include inorganic particles and synthetic resin particles.
- examples of such inorganic particles may include silica, alumina, calcium carbonate, magnesium carbonate, calcium sulfate, barium sulfate, and kaolin.
- Examples of the synthetic resin particles may include acrylic beads, urethane beads, nylon beads, silicone beads, silicone rubber beads, polycarbonate beads, and polyolefin wax (such as polypropylene wax and polyethylene wax).
- the average particle size of the matting agent is, for example, 0.3 ⁇ m or more and 10 ⁇ m or less, may be 0.5 ⁇ m or more and 7 ⁇ m or less, and may be 1 ⁇ m or more and 5 ⁇ m or less.
- the average particle size is D50 in the volume-based particle size distribution measured by a laser diffraction scattering method.
- the content of the matting agent is, for example, 5 parts by mass or more and 40 parts by mass or less, and may be 10 parts by mass or more and 35 parts by mass or less, with respect to 100 parts by mass of the resin components in the releasing layer.
- the releasing layer may include a releasing agent.
- the ability to release is improved by adding the releasing agent.
- the releasing agent may include silicone based releasing agents such as silicone oil; wax based releasing agents such as polyolefin wax; and fluorine based releasing agents.
- the silicone oils may include reactive silicone oil and non-reactive silicone oil.
- the reactive silicone oil refers to one that is reactive due to the properties of the introduced organic group.
- Specific examples of the reactive silicone oil may include, in, for example, side-chain-type modified silicone oil, both-terminal-type modified silicone oil, one-terminal-type modified silicone oil, and side-chain both-terminal-type modified silicone oil, ones wherein the introduced organic group is amino-modified, epoxy-modified, mercapto-modified, carboxyl-modified, carbinol-modified, phenol-modified, methacryl-modified, and dissimilar functional group-modified.
- These reactive silicone oils may be used alone, and two or more types may be used as a mixture.
- the non-reactive silicone oil is not particularly limited as long as it is a silicone oil not including a reactive functional group such as amino group, epoxy group, mercapto group, carboxy group, hydroxy group, (meth)acryloyl group, and allylic group.
- examples of the non-reactive silicone oil may include polyether modified silicone oil, aralkyl modified silicone oil, fluoroalkyl modified silicone oil, long-chain alkyl modified silicone oil, higher fatty acid ester modified silicone oil, higher fatty acid amide modified silicone oil, and phenyl modified silicone oil. These non-reactive silicone oils may be used alone, and two or more types may be used as a mixture.
- the content of the releasing agent is, for example, 0.1 parts by mass or more and 50 parts by mass or less, may be 0.5 part by mass or more and 20 parts by mass or less, may be 3 part by mass or more and 20 parts by mass or less, and may be 3 parts by mass or more and 10 parts by mass or less, with respect to 100 parts by mass of the resin components in the releasing layer.
- the releasing layer may be colorless, and may be colored. In the latter case, the releasing layer preferably includes a colorant. As for the colorant, those similar to the colorant used in the pattern layer, which will be described below, may be used.
- the releasing layer may include an additive such as ultraviolet ray absorbers, infrared ray absorbers, photostabilizers, polymerization inhibitors, crosslinkers, antistatic agents, antioxidants, leveling agents, coupling agents, plasticizers, antifoaming agents, fillers, thermal radial generating agents, and aluminum chelating agents.
- the thickness of the releasing layer is not particularly limited, and it is, for example, 0.1 ⁇ m or more and 20 ⁇ m or less.
- the releasing layer can be obtained by, for example, applying an ink for forming a releasing layer, including curable resin X, to the surface of the pattern layer that is opposite side to the white solid layer, and curing thereof.
- an ink for forming a releasing layer including curable resin X
- Examples of the method for application may include printing methods.
- Examples of the printing method may include gravure printing, offset printing, screen printing, flexographic printing, electrostatic printing, and inkjet printing.
- a cured product of the electron beam curable resin is usually obtained by irradiating an electron beam.
- the electron beam source may include various electron beam accelerators such as Cockcroft-Walton type, Van de Graaff type, resonant transformer type, insulated core transformer type, linear type, dynamitron type, and high frequency type.
- the energy of the electron beam is, for example, 100 kV or more and 1000 kV or less, and may be 100 kV or more and 300 kV or less.
- the irradiance level of the electron beam is, for example, 2 Mrad or more and 15 Mrad or less.
- the ink for forming a releasing layer includes an ultraviolet ray curable resin
- a cured product of the ultraviolet ray curable resin is usually obtained by irradiating an ultraviolet ray.
- the ultraviolet ray source may include an ultra-high pressure mercury lamp, a high pressure mercury lamp, a low pressure mercury lamp, a carbon arc lamp, a black light fluorescent lamp, and a metal halide lamp.
- the wavelength of the ultraviolet ray is, for example, 190 nm or more and 380 nm or less.
- the ink for forming a releasing layer includes a thermosetting resin
- a cured product of the thermosetting resin is usually obtained by heating.
- the heating temperature is appropriately set according to the type of the thermosetting resin.
- the ink for forming a releasing layer may include curing agents such as cross-linking agents and polymerization initiators; and polymerization accelerators.
- the curing agent may include isocyanates, organosulfonates, organoamines, peroxides (such as methyl ethyl ketone peroxide), and radical initiators (azoisobutyronitrile).
- the ink for forming a releasing layer may include solvents as necessary.
- the solvent may include water; hydrocarbon compounds such as toluene and xylene; alcoholic compounds such as methanol, ethanol, methyl glycol; ketone compounds such as acetone and methyl ethyl ketone; ester compounds such as methyl formate and ethyl acetate; nitrogen containing compounds such as N-methylpyrrolidone, N,N-dimethylformamide; ether compounds such as tetrahydrofuran and dioxane; halogenated hydrocarbon compounds such as methylene chloride and chloroform; and dimethylsulfoxide.
- the pattern layer in the present disclosure is disposed partially (particularly, in a pattern form) on a surface of the white solid layer that is opposite side to the porous substrate.
- the pattern (design pattern) in the pattern layer may include stone-grain pattern, sand-grain pattern, tile laying pattern, wood-grain pattern, brick laying pattern, fabric-grain pattern, leather tie-dyed pattern, geometric shapes, letters, symbols, abstract patterns, and plant and flower patterns.
- the pattern layer includes, for example, a colorant and a resin component (binder resin).
- the colorant may include inorganic pigments such as carbon black, titanium white, zinc flower, Bengal red, ultramarine blue and cadmium red; organic pigments such as azo pigment, rake pigment, anthraquinone pigment, quinacridone pigment, phthalocyanine pigment, isoindolinone pigment and dioxidine pigment; metal powder pigments such as aluminum powder and bronze powder; pearlescent pigments such as titanium oxide-coated mica and bismuth oxychloride; fluorescent pigments; and luminous pigments. Dyes may be used as the colorant.
- the resin component may include ester urethane based resins, acrylamide based resins, (meth)acrylic acid based resins, ethylene oxide based resins, N-vinylpyrrolidone based resins, ester based resins, amide based resins, vinyl acetate based resins, vinyl chloride based resins, urethane (meth)acrylic based resins, amino based resins, phenolic based resins, natural polymer (such as polynucleotides, polypeptides and polysaccharides), natural rubbers, and synthetic rubbers.
- the resin component may be water soluble, and may be lipid soluble.
- the pattern layer preferably includes a resin including a polar group.
- the polar group may include hydroxyl group (-OH), amino group (-NH 2 ), and carboxyl group (-COOH).
- the polar group may be ionized and stabilized, for example, due to the influence of solvents and other functional groups.
- the "hydroxy group (-OH)” is a concept including “-O - " in the ionized state
- the "amino group (-NH 2 )” is a concept including “-NH 3 + " in the ionized state
- the "carboxy group (-COOH)” is a concept including "-COO - " in the ionized state.
- the resin including a polar group is preferably a resin that is dissolved or dispersed in water, methanol or ethanol. This is because the impregnation property of uncured resins such as melamine resin, having hydrophilic properties, is improved.
- dissolved or dispersed in water, methanol or ethanol means satisfying certain criteria in the following test. That is, the following operations are carried out according to Section 3.2 of JIS K8001:2017.
- the resin including a polar group may include aqueous proteins such as casein; cellulose derivatives typified by cellulose, acetylcellulose, nitrocellulose, hydroxypropyl cellulose, and carboxymethylcellulose; polyvinyl alcohol derivatives such as polyvinyl alcohol and polyvinyl butyral resins; amino based resins such as melamine resins; (meth) acrylic acid based resins; phenolic resins; acrylic polyols; and natural polymers (such as polynucleotides, polypeptides, and polysaccharides).
- aqueous proteins such as casein
- cellulose derivatives typified by cellulose, acetylcellulose, nitrocellulose, hydroxypropyl cellulose, and carboxymethylcellulose
- polyvinyl alcohol derivatives such as polyvinyl alcohol and polyvinyl butyral resins
- amino based resins such as melamine resins
- (meth) acrylic acid based resins phenolic resins
- the pattern layer in the present disclosure preferably includes at least one or more of casein, melamine based resin, polyvinyl alcohol, polyvinyl alcohol derivative, cellulose and cellulose derivative, and more preferably includes casein.
- casein ⁇ -casein, ⁇ -casein, ⁇ -casein, or a mixture thereof may be used.
- the derivatives typified by casein sodium and casein ammonium can be used alone or in a combination.
- the pattern layer may include additives, such as fillers (such as silica), extender pigments (such as organic beads), neutralizers, and surfactants, if necessary.
- additives such as fillers (such as silica), extender pigments (such as organic beads), neutralizers, and surfactants, if necessary.
- the thickness of the pattern layer is not particularly limited, and it is, for example, 0.1 ⁇ m or more and 20 ⁇ m or less.
- Examples of the method for forming a pattern layer may include applying methods using an ink for forming a pattern layer including a colorant, a binder resin, and a solvent (or a dispersant).
- a pattern layer is obtained by coating the surface of the white solid layer that is opposite side to the porous substrate with the ink for forming a pattern layer, and drying.
- the solvent may include petroleum based organic solvents such as hexane, heptane, octane, toluene, xylene, ethylbenzene, cyclohexane, and methylcyclohexane; ester based organic solvent such as ethyl acetate, butyl acetate, 2-methoxyethyl acetate, and 2-ethoxyethyl acetate; alcoholic based organic solvents such as methyl alcohol, ethyl alcohol, normal propyl alcohol, isopropyl alcohol, isobutyl alcohol, ethylene glycol, and propylene glycol; ketone base organic solvents such as acetone, methyl ethyl ketone, methyl isobutyl ketone, and cyclohexanone; ether based organic solvents such as diethyl ether, dioxane, and tetrahydrofuran; chlor
- Examples of the method for application may include printing methods.
- Examples of the printing method may include gravure printing, offset printing, screen printing, flexographic printing, electrostatic printing, and inkjet printing.
- the white solid layer in the present disclosure is disposed so as to cover the entire surface of one surface of the porous substrate.
- the entire surface of one surface of a porous substrate refers to, based on the portion that functions as the decorative sheet among one surface of the porous substrate, the region of 90% or more thereof.
- the white solid layer may be disposed so as to cover 95% or more thereof, and may be disposed so as to cover 100% thereof.
- the white solid layer is disposed so as to cover the entire surface of one surface of the porous substrate.
- FIG. 6(a) viewing from the thickness direction, when the porous substrate 1 is completely covered by the white solid layer 2, the white solid layer 2 is disposed so as to cover the entire surface of the porous substrate 1 (100% of the portion that functions as the decorative sheet).
- FIG. 6(b) viewing from the thickness direction, when both ends of the porous substrate 1 are exposed from the white solid layer 2, the both ends do not function as the decorative sheet. Therefore, the entire surface of the porous substrate 1 is defined, excluding the region that does not function as the decorative sheet.
- the white solid layer 2 is disposed so as to cover the entire surface of the porous substrate 1 (100% of the portion that functions as the decorative sheet).
- the white solid layer 2 is disposed so as to cover the entire surface of the porous substrate 1 (100% of the portion that functions as the decorative sheet).
- the entirety of the surface of the porous substrate 1 functions as the decorative sheet.
- the white solid layer 2 is not formed (for example, an uncoated portion produced for the purpose of design expression).
- the white solid layer is disposed so as to cover the entire surface of one surface of the porous substrate.
- the white solid layer 2 is not formed (for example, an uncoated portion produced for the purpose of design expression), so as to divide the white solid layer 2.
- the white solid layer is disposed so as to cover the entire surface of one surface of the porous substrate.
- the entirety of the surface of the porous substrate 1 functions as the decorative sheet.
- the white solid layer 2 is not formed.
- the white solid layer is disposed so as to cover the entire surface of one surface of the porous substrate.
- the white solid layer is disposed so as to cover the entire surface of one surface of the porous substrate. Also, as shown in FIG. 6(h) , viewing from the thickness direction, when the outer periphery of the porous substrate 1 is located on the outer side than the outer periphery O 1 of the white solid layer 2 for the whole circumference, the region of the porous substrate 1, exposed from the white solid layer 2 on the outer side than the outer periphery O 1 , does not function as the decorative sheet. Therefore, the entire surface of the porous substrate 1 is defined, excluding the region that does not function as the decorative sheet.
- the outer periphery O 1 of the square is set so that the area of the white solid layer 2 is maximized. Also, in FIG. 6(h) , there is a region ⁇ wherein the white solid layer 2 is not formed. In this case, when the total area of the region ⁇ is less than 10% with respect to the portion that functions as the decorative sheet, among the surface of the porous substrate 1, it can be said that "the white solid layer is disposed so as to cover the entire surface of one surface of the porous substrate".
- the white solid layer includes a white pigment.
- the white pigment is not particularly limited, and examples thereof may include titanium oxide, calcium carbonate, zinc oxide, barium sulfate, and silica. Among them, titanium oxide and calcium carbonate are preferable. In the present disclosure, titanium oxide is particularly preferable due to its good whiteness and hiding property.
- the ratio of the white pigment in the white solid layer is, for example, 50% by mass or more, and preferably 60% by mass or more. Meanwhile, ratio of the white pigment is, for example, 95% by mass or less, and preferably 90% by mass or less.
- the white solid layer includes, for example, resin components, additives and solvents (or dispersion media).
- resin components for example, resin components, additives and solvents (or dispersion media).
- examples of the resin component, additive, and solvent (or dispersion medium) may include those similar to the resin component, additive, and solvent (or dispersion medium) exemplified for the pattern layer described above.
- the white solid layer preferably includes a resin including a polar group. This is because the resin impregnation property into the porous substrate is good.
- the resin including a polar group may include those similar to the resin including a polar group exemplified for the pattern layer described above.
- the white solid layer in the present disclosure preferably includes at least one or more of casein, melamine based resin, polyvinyl alcohol, polyvinyl alcohol derivative, cellulose and cellulose derivative, and more preferably includes casein.
- casein ⁇ -casein, ⁇ -casein, ⁇ -casein, or a mixture thereof may be used.
- the derivatives typified by casein sodium and casein ammonium can be used alone or in a combination.
- the ratio (S 2 /S 1 ) of the area S 2 of the white blank region (the region that is not covered with the pattern layer) in the white solid layer, with respect to the total area S 1 of the white solid layer is, for example, 5% or more, and may be 10% or more.
- the ratio (S 2 /S 1 ) is in the above range, the design effect due to the white blank region can be sufficiently obtained.
- the ratio (S 2 /S 1 ) is, for example, 95% or less, may be 80% or less, and may be 70% or less.
- the contact angle with respect to pure water, of the region exposed from the releasing layer, as view from the thickness direction, is preferably low. Viewing from the thickness direction, the region exposed from the releasing layer is the region where the white solid layer is formed and the releasing layer is not formed.
- the surface of the region exposed from the releasing layer may be the surface of the white solid layer, and may be the surface of the pattern layer. This is because the impregnation property of uncured resins such as melamine resin, having hydrophilic properties, is better.
- the contact angle with respect to pure water is determined by the following method. In other words, the decorative sheet is placed on a horizontal surface so that the releasing layer side is the top surface.
- a water droplet (pure water, 2.0 ⁇ L) is dripped on to the horizontal surface, on the white solid layer, from the perpendicular direction. At this time, the water droplet is not dripped on the boundary between the white solid layer and the releasing layer, for example, but is dripped so that all the water droplets come into contact with the region exposed from the releasing layer.
- a contact angle meter (fully automatic contact angel meter DMo-702 from Kyowa Interface Science Co., Ltd). The above measurement is carried out at arbitrary 10 locations, and the average value thereof is regarded as the contact angle with respect to pure water.
- the contact angle with respect to pure water may be 80.0° or less, may be 70.0° or less, and may be 60.0° or less. Meanwhile, the contact angle with respect to water may be 0°. That is, pure water may completely penetrate into the decorative sheet.
- the wettability of the region exposed from the releasing layer described above is preferably high. This is because the impregnation property of uncured resins such as melamine resin, having hydrophilic properties, is better.
- the wettability is determined by the following method.
- the wettability is, for example, 50 mN/m or more, may be 54 mN/m or more, and may be 60 mN/m or more. Meanwhile, the wettability is, for example, 70 mN/m or less.
- the ratio of the resin including a polar group described above, with respect to the resin components included in the white solid layer is, for example, 20% by mass or more, may be 30% by mass or more, may be 40% by mass or more, and may be 50% by mass or more. Meanwhile, the ratio of the resin including a polar group is, for example, 100% by mass or less, and may be 90% by mass or more.
- the permeation of the ink of the releasing layer into the porous substrate may further be suppressed, without inhibiting the permeation of the uncured resin with respect to the porous substrate.
- the white solid layer may include other resins, in addition to the resin including a polar group described above.
- the other resins may include (meth)acrylic based resins, ester urethane based resins, acrylamide based resins, ethylene oxide based resins, N-vinylpyrrolidone based resins, ester based resins, amide based resins, vinyl acetate based resins, vinyl chloride based resins, urethane (meth)acrylic based resins, natural rubbers, and synthetic rubbers.
- (meth)acrylic based resins, and urethane(meth)acrylic based resins are preferable.
- the thickness of the white solid layer is not particularly limited, and is, for example, 1 ⁇ m or more, preferably 2 ⁇ m or more, and may be 3 ⁇ m or more. When the thickness of the white solid layer is in the above range, it has excellent whiteness. Meanwhile, the thickness is preferably 8 ⁇ m or less, and may be 6 ⁇ m or less. When the thickness of the white solid layer is in the above range, good resin impregnation property into the porous substrate is obtained.
- the thickness of the white solid layer is the average value of the thickness measured at 10 locations by observing the cross-section, obtained by cutting the decorative sheet in the thickness direction, with an optical microscope.
- the applying amount (basis weight) of the white solid layer is not particularly limited, and is, for example, 1.0 g/m 2 or more, preferably 2.0 g/m 2 or more, and may be 3.0 g/m 2 or more.
- applying amount (basis weight) of the white solid layer is preferably, for example, 10 g/m 2 or less, and may be 8 g/m 2 or less.
- good resin impregnation property into the porous substrate is obtained.
- the gloss value of the white blank region (region not covered with the pattern layer) of the white solid layer, at 75° is, for example, 6.0 or more, preferably 8.0 or more, and more preferably 10.0 or more.
- the gloss value at 75° of the white blank region of the white solid layer is in the above range, it is easy to obtain a resin-impregnated decorative plate that can express a white design.
- the gloss value at 75° is, for example, 25.0 or less, and preferably 20.0 or less.
- the gloss value at 75° of the white blank region of the white solid layer is in the above range, the inhibition of melamine impregnation due to the white solid layer can be prevented, and the processability can be maintained well.
- the gloss value of the white blank region of the white solid layer, at 75° is the specular glossiness at 75° measured according to Method 2 of JIS Z 8741:1997, and is the value measured by the following method.
- the gloss value of the white blank region of the white solid layer at 75° is the average value of the values measured at arbitrary ten points of the white blank region (region not covered with the pattern layer). At each measurement point, the measurement is carried out after confirming that the white blank region of the white solid layer is at the center of the measurement region of the gloss meter, and that the ratio of the area of this white blank region is 50% or more of the area of the measurement region.
- the gloss value of the white blank region of the white solid layer at 75° can be increased by, for example, increasing the thickness of the white solid layer, and decreased by reducing the thickness of the white solid layer.
- Examples of the method for forming the white solid layer may include applying methods using an ink for a white solid layer including a white pigment, a resin component, an additive and a solvent (or a dispersant).
- a white solid layer is obtained by coating one surface of a porous substrate with the ink for forming a white solid layer, and drying.
- the solvent may include petroleum based organic solvents such as hexane, heptane, octane, toluene, xylene, ethylbenzene, cyclohexane, and methylcyclohexane; ester based organic solvent such as ethyl acetate, butyl acetate, 2-methoxyethyl acetate, and 2-ethoxyethyl acetate; alcoholic based organic solvents such as methyl alcohol, ethyl alcohol, normal propyl alcohol, isopropyl alcohol, isobutyl alcohol, ethylene glycol, and propylene glycol; ketone base organic solvents such as acetone, methyl ethyl ketone, methyl isobutyl ketone, and cyclohexanone; ether based organic solvents such as diethyl ether, dioxane, and tetrahydrofuran; chlor
- examples of the coating method for forming the white solid layer may include various coating methods such as roll coating, knife coating, air knife coating, die coating, lip coating, comma coating, kiss coating, flow coating, and dip coating.
- Examples of the printing method may include a gravure printing method.
- the white solid layer may be disposed so as to cover the entire surface of one surface of the porous substrate by coating for once, and may be disposed so as to cover the entire surface of one surface of the porous substrate by a plurality time of coating.
- the layer formed by coating for once may have a patterned shape.
- the porous substrate in the present disclosure is a substrate into which uncured resin (curable resin Y) such as thermosetting resin is impregnated, during the production of the resin-impregnated decorative plate.
- the porous substrate may include permeable fibrous substrates.
- the permeable fibrous substrate may include paper, synthesized paper, non-woven fabric and woven fabric.
- the paper may include titanium paper, tissue paper, kraft paper, linter paper, paperboard, gypsum board paper, high-quality paper, coated paper, parchment paper, and Japanese paper.
- vinyl wallpaper webs paper dry laminated with polyvinyl chloride resin
- the fibrous substrate may include non-woven or woven fabrics including synthetic resin fibers such as polyester, vinylon, polyethylene and polypropylene.
- synthetic resin fibers such as polyester, vinylon, polyethylene and polypropylene.
- titanium paper, tissue paper, kraft paper, coated paper, art paper, vegetable parchment paper, glassine paper, parchment paper, paraffin paper, and Japanese paper are preferable in view of the impregnation property of the thermosetting resin.
- titanium paper is preferable from the viewpoint of obtaining the L* value. Further, titanium paper has excellent impregnation property of curable resin Y.
- the porous substrate may be colored.
- a porous substrate colored in white is obtained by blending white pigments.
- the porous substrate is paper
- paper colored in white is obtained by mixing white pigments such as titanium dioxide at the papermaking stage.
- the content of the white pigment is not particularly limited as long as the content is such that the ash content is the ratio described above.
- the white pigment used for the porous substrate constituting the decorative sheet in the present disclosure is required to have a function to adjust the whiteness of the porous substrate; and a function to adjust the permeability of the porous substrate.
- the type and content of the white pigment are set so that the L* value described above is obtained and the ash content is in the above range, that is, to adjust the permeability of the porous substrate.
- the porous substrate may include various additives such as fillers, frosting agents, foaming agents, flame retardants, lubricants, antistatic agents, antioxidants, ultraviolet ray absorber and photostabilizers, if necessary.
- the basis weight of the porous substrate is not particularly limited, and is, for example, 40 g/m 2 or more and 150 g/m 2 or less.
- the thickness of the porous substrate is not particularly limited, and it is, for example, 50 ⁇ m or more and 70 ⁇ m or less.
- the white solid layer side surface of the porous substrate may be subjected to a corona discharge treatment.
- the b* value of the white blank region, in the L*a*b* color system is preferably 4.5 or less, and more preferably 4.0 or less.
- the b* value is, for example, 3.0 or more.
- the decorative sheet in the present disclosure is used for a production of a resin-impregnated decorative plate. Since the resin-impregnated decorative plate will be described later, description herein is omitted.
- the impregnation amount of the melamine resin, into the decorative sheet is for example, 35 g/m 2 or more, and may be 45 g/m 2 or more. Meanwhile, the impregnation amount of the melamine resin, into the decorative sheet, is for example, 80 g/m 2 or less, and may be 60 g/m 2 or less. The details of the impregnation property test will be described in the following Examples.
- FIG. 2 is a schematic cross-sectional view exemplifying the resin-impregnated decorative plate in the present disclosure.
- the resin-impregnated decorative plate 100 shown in FIG. 2 includes the decorative sheet 10 described above, a core substrate 20 disposed so as to face the porous substrate 1 of the decorative sheet; and a cured resin layer 32 disposed on the white blank region X, and including a cured product of curable resin Y, wherein the core substrate 20 and the porous substrate 1 include the cured product of the curable resin Y.
- the L* value of the white blank region X is 88.0 or more, when measured via the cured resin layer 32.
- the decorative sheet described above is provided in the resin-impregnated decorative plate in the present disclosure, it is possible to stably exhibit a gloss matte design, while expressing a white design.
- the resin-impregnated decorative plate in the present disclosure includes a porous core substrate 20 on the porous substrate 1 side surface of the decorative sheet 10 (the surface of the decorative sheet 10 located on the porous substrate 1 side, based on the white solid layer 2).
- the core substrate 20 may include phenol resin-impregnated paper.
- the phenol resin-impregnated paper is a paper obtained by, for example, impregnating phenol resin into a kraft paper, that is a core paper, and drying it.
- the core substrate and the porous substrate in the present disclosure include a cured product of a curable resin Y.
- the resin-impregnated decorative plate includes a cured resin layer disposed on the white blank region.
- the cured product of curable resin filled into the core substrate and porous substrate; and the cured product of curable resin included in the cured resin layer are formed with the same curable resin Y, as described later.
- These cured resins are, for example, a cured product of thermosetting resins described below.
- the thickness of the cured resin layer is not particularly limited, and is, for example, 1 ⁇ m or more, and may be 10 ⁇ m or more. Meanwhile, the thickness is, for example, 500 ⁇ m or less, and may be 300 ⁇ m or less.
- the L* value of the white blank region X when measured via the cured resin layer 32, is 88.0 or more, and may be 90.0 or more. Meanwhile, the L* value is not particularly limited, and may be, for example, 92.0 or less, and may be 91.0 or less.
- FIGS. 3 are schematic cross-sectional views exemplifying a method for producing a resin-impregnated decorative plate using the decorative sheet in the present disclosure.
- thermosetting resin thermosetting type resins may be widely used.
- thermosetting resin may include melamine based resins (melamine based resin precursors), melamine-urea co-condensate based resins, unsaturated polyester based resins, polyurethane based resin (including two-liquid curing type polyurethane), epoxy based resins, aminoalkyd based resins, phenolic based resins, urea based resins, diallylphthalate based resins, guanamine based resins, silicon based resins and polysiloxane based resins.
- melamine based resins melamine based resin precursors
- melamine-urea co-condensate based resins unsaturated polyester based resins
- polyurethane based resin including two-liquid curing type polyurethane
- epoxy based resins epoxy based resins
- aminoalkyd based resins aminoalkyd based resins
- phenolic based resins phenolic based resins
- urea based resins dially
- thermosetting resin examples include a method wherein a decorative sheet 10 is immersed into a bath including thermosetting resin; a method wherein a decorative sheet 10 is coated with thermosetting resin by a coater such as a kiss coater or a comma coater; and a method wherein thermosetting resin is sprayed onto a decorative sheet 10 by a spray device or a shower device.
- a first stacked body 51' is produced by disposing a release film 40 on the thermosetting resin layer 30' that is opposite side to the white solid layer 2, and disposing a core substrate 20 on the porous substrate 1 side surface of the decorative sheet 10 (the surface of the decorative sheet 10 located on the porous substrate 1 side, based on the white solid layer 2).
- the release film may include a peeling layer including a cured product of an ionizing radiation curable resin composition, on the surface facing the thermosetting resin layer.
- a second stacked body 52' is produced by heating and pressurizing the first stacked body 51' to cure the thermosetting resin, and forming a cured resin layer 31' from the thermosetting resin layer 30'.
- the heating temperature is, for example, 90°C or more, and 160°C or less.
- the heating time is, for example, 30 seconds or more and 30 minutes or less.
- the smoothness of the release film 40 is reflected onto the surface of the cured resin layer 31'.
- release film 40 is peeled off from the second stacked body 52', and at the same time, the cured resin layer 31', located between releasing layer 4 and release film 40, is peeled off to the release film 40 side. At this time, the cured resin layer 31' which has not been peeled off to the release film 40 side becomes a gloss layer 32.
- a resin-impregnated decorative plate 100 comprising: a porous substrate 1; a white solid layer 2 disposed on an entire surface of one surface of the porous substrate 1; a pattern layer 3 disposed partially on a surface of the white solid layer 2 that is opposite side to the porous substrate 1; a releasing layer (matte layer) 4 disposed in a pattern on a surface of the pattern layer 3 that is opposite side to the white solid layer 2; and a cured resin layer (gloss layer) 32 disposed on the white blank region of the decorative sheet.
- the resin-impregnated decorative plate in the present disclosure is, for example, used by disposing thereof on the surface of a base member.
- the base member may include woody members, resin members, metal members, and ceramic members.
- the woody member may include wood single panel, plywood panel, particle board, and woody fiberboard.
- the wood used for the woody member may include cedar, hinoki cypress, pine, and lauan.
- Examples of the resin used for the resin member may include vinyl chloride based resins, (meth)acrylic based resins, ester based resins, styrene based resins, olefin based resins, acrylonitrile-butadiene-styrene based copolymers (ABS based resins), phenolic based resins, cellulose based resins, carbonate based resins, melamine based resins, and rubber.
- Examples of the metal used for the metal member may include iron, and aluminum.
- the material of the ceramic member may be ceramics such as glass and pottery, may be non-cement ceramic based material such as gypsum, and may be non-pottery ceramic based material such as ALC (lightweight aerated concrete).
- Examples of the use application of the resin-impregnated decorative plate in the present disclosure may include construction materials and furniture.
- the construction material may be interior material, and may be exterior material.
- Examples of the construction material may include walls, floors, ceilings, doors, and shelves.
- Examples of furniture may include tables, desks and cabinets.
- the present disclosure is not limited to the embodiments.
- the embodiments are exemplification, and any other variations are intended to be included in the technical scope of the present disclosure if they have substantially the same constitution as the technical idea described in the claim of the present disclosure and offer similar operation and effect thereto.
- a releasing layer having a thickness of 2 ⁇ m was formed in a pattern by coating the pattern layer with the ink for forming a releasing layer so as to align with the stone-grain pattern of the pattern layer, and irradiating electron beams of 3 Mrad at an accelerating voltage of 165 kV.
- a decorative sheet including a porous substrate, a white solid layer, a pattern layer, and a releasing layer in a patter, in this order, was produced.
- the ratio (S 2 /S 1 ) of the area S 2 of the white blank region (the region that is not covered with the pattern layer) with respect to the total area S 1 of the white solid layer, as view from the thickness direction, was adjusted to be 50% or more and 60% or less, for all the Examples and Comparative Examples described below.
- the easy adhesive surface of a polyethylene terephthalate film (Cosmo Shine (registered trademark) A4160 from Toyobo Co., Ltd.) having a thickness of 50 ⁇ m was coated with a coating solution including 100 parts by mass of an ionizing radiation curable monomer, 2 parts by mass of a reactive silicone, 8 parts by mass of silica and 50 parts by mass of ethyl acetate at an amount of 5 g/m 2 (dried), and electron beams were irradiated at 5 Mrad and an accelerating voltage of 165 kV to cure. Thereby a release film including a cured resin layer was produced.
- a coating solution including 100 parts by mass of an ionizing radiation curable monomer, 2 parts by mass of a reactive silicone, 8 parts by mass of silica and 50 parts by mass of ethyl acetate at an amount of 5 g/m 2 (dried), and electron beams were irradiated at 5 Mrad and an accelerating voltage
- the produced decorative sheet was impregnated with a liquid uncured melamine resin composition including 60 parts by mass of uncured melamine resin (water-soluble methylol melamine resin, Nikaresin S-260 from Nippon Carbide Industries Co., Inc.), 35 parts by mass of water and 5 parts by mass of isopropyl alcohol so that the ratio of the uncured melamine resin composition was 80 g/m 2 (dried), and dried to produce an impregnated decorative sheet.
- uncured melamine resin water-soluble methylol melamine resin, Nikaresin S-260 from Nippon Carbide Industries Co., Inc.
- isopropyl alcohol so that the ratio of the uncured melamine resin composition was 80 g/m 2 (dried), and dried to produce an impregnated decorative sheet.
- the impregnated decorative sheet was stacked on 3 sheets of phenolic resin-impregnated core paper with a basis weight of 245 g/m 2 (obtained by impregnating core kraft paper with a liquid uncured resin composition made from phenolic resin) produced by impregnating kraft paper with the phenolic resin liquid. Further, the release film was stacked on the releasing layer side surface of the impregnated decorative sheet so that the cured resin layer of the release film was in contact with the printed surface of the impregnated decorative sheet, and a first stacked body was obtained.
- the formed stacked body was sandwiched between two mirror plates, and heat molded using a hot press device, at a pressure of 100 kg/cm 2 , under the conditions of molding temperature of 150°C for 10 minutes to produce a molded body (second stacked body).
- a melamine resin layer including cured melamine resin was formed between the releasing layer and the release film.
- the portion that covers the releasing layer was removed by peeling the release film off from the cured resin layer including the cured product of the melamine resin.
- the cured resin layer that has not been removed remained as a gloss layer.
- a melamine decorative plate was obtained.
- a decorative sheet was produced and a melamine decorative plate was obtained in the same manner as in Example 1 except that the thickness of the white solid layer was set to 6 ⁇ m.
- a decorative sheet was produced and a melamine decorative plate was obtained in the same manner as in Example 1 except that the thickness of the white solid layer was set to 1 ⁇ m.
- a decorative sheet was produced and a melamine decorative plate was obtained in the same manner as in Example 1 except that the porous substrate was changed to KW801P from KJ Specialty Paper Co., Ltd.
- a decorative sheet was produced and a melamine decorative plate was obtained in the same manner as in Example 1 except that the porous substrate was changed to PM-79P from KJ Specialty Paper Co., Ltd.
- a decorative sheet was produced and a melamine decorative plate was obtained in the same manner as in Example 1 except that the white solid layer was not formed.
- a decorative sheet was produced and a melamine decorative plate was obtained in the same manner as in Example 1 except that the printing ink for the white solid layer was changed to a transparent ink (including no titanium oxide).
- a decorative sheet was produced and a melamine decorative plate was obtained in the same manner as in Example 1 except that the porous substrate was changed to PM-28P from KJ Specialty Paper Co., Ltd.
- a decorative sheet was produced and a melamine decorative plate was obtained in the same manner as in Example 1 except that the porous substrate was changed to KSH801P from KJ Specialty Paper Co., Ltd.
- the white designability of the obtained melamine decorative plate was evaluated by visual observation.
- a reference melamine decorative plate 1 and a reference melamine decorative plate 2 prepared separately were used as the whiteness criteria.
- the reference melamine decorative plate 1 was prepared by impregnating a titanium paper (PM-77P from KJ Specialty Paper Co., Ltd.) with an uncured melamine resin composition in the same manner as (Preparation of melamine decorative plate) in Example 1, and heat pressing.
- the reference melamine decorative plate 2 was prepared by impregnating a titanium paper (KW801P from KJ Specialty Paper Co., Ltd.) with an uncured melamine resin composition in the same manner as (Preparation of melamine decorative plate) in Example 1, and heat pressing.
- Each reference decorative plate used was scored in a five-point scale (3 points for one equivalent to the reference, 1 point for the lowest white designability, and 5 points for the highest white designability) from 1 point to 5 points.
- the evaluation was respectively carried out by 10 observers, the average points of every observer was calculated, and the white designability was evaluated based on the following criteria.
- the gloss matte designability of the obtained melamine decorative plate was evaluated visually. Specifically, under the light source of a natural color fluorescent lamp color rendering AA (model number: FLR40S•D-SDL/M from Panasonic Corporation), the obtained decorative plate was respectively observed visually from the position 50 cm away from the decorative plate, and the gloss matte designability and the condition of the matte portion (releasing layer) were checked.
- a natural color fluorescent lamp color rendering AA model number: FLR40S•D-SDL/M from Panasonic Corporation
- the impregnation property of the produced decorative sheet was measured by the following method.
- the melamine decorative plate having good white designability and gloss matte designability can be produced with the decorative sheets in Examples 1 to 5. Meanwhile, the white designability of the melamine decorative plate produced using the decorative sheet wherein the solid layer was not disposed, as in Comparative Example 1, was low. Similarly, the white designability of the melamine decorative plate produced using the decorative sheet wherein the transparent solid layer including no white pigment, as in Comparative Example 2, was also low. Although the white solid layer was disposed in Comparative Example 3, the white designability of the melamine decorative plate was low, since the ash content of the decorative sheet was low. The gloss matte designability was low in Comparative Example 4, since the ash content of the decorative sheet was high so that the ink for a releasing layer permeated.
Landscapes
- Engineering & Computer Science (AREA)
- Architecture (AREA)
- Civil Engineering (AREA)
- Structural Engineering (AREA)
- Laminated Bodies (AREA)
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| JP2022149092 | 2022-09-20 | ||
| PCT/JP2023/034054 WO2024063083A1 (fr) | 2022-09-20 | 2023-09-20 | Feuille décorative et panneau décoratif imprégné de résine |
Publications (2)
| Publication Number | Publication Date |
|---|---|
| EP4592076A1 true EP4592076A1 (fr) | 2025-07-30 |
| EP4592076A4 EP4592076A4 (fr) | 2026-03-04 |
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| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP23868204.1A Pending EP4592076A4 (fr) | 2022-09-20 | 2023-09-20 | Feuille décorative et panneau décoratif imprégné de résine |
Country Status (5)
| Country | Link |
|---|---|
| EP (1) | EP4592076A4 (fr) |
| JP (1) | JP2024045069A (fr) |
| CN (1) | CN119604411A (fr) |
| TW (1) | TWI883550B (fr) |
| WO (1) | WO2024063083A1 (fr) |
Family Cites Families (8)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JP2004209840A (ja) * | 2003-01-06 | 2004-07-29 | Dainippon Printing Co Ltd | 化粧紙 |
| CN103362265A (zh) * | 2012-04-10 | 2013-10-23 | 丁召志 | 高强度高韧性耐雨淋的红外水泥保温装饰板 |
| JP6716877B2 (ja) * | 2015-03-26 | 2020-07-01 | 大日本印刷株式会社 | 化粧板 |
| WO2016148091A1 (fr) * | 2015-03-13 | 2016-09-22 | 大日本印刷株式会社 | Panneau décoratif et son procédé de fabrication |
| JP7000700B2 (ja) * | 2017-04-07 | 2022-01-19 | 凸版印刷株式会社 | 樹脂含浸化粧板用化粧紙及び樹脂含浸化粧板 |
| JP2018176517A (ja) * | 2017-04-11 | 2018-11-15 | 凸版印刷株式会社 | 化粧紙及びこれを用いた化粧板並びに化粧板の製造方法 |
| JP6915489B2 (ja) * | 2017-09-29 | 2021-08-04 | 大日本印刷株式会社 | 化粧シート並びに該化粧シートを備える化粧板及びその製造方法 |
| JP2022172800A (ja) * | 2021-05-07 | 2022-11-17 | 凸版印刷株式会社 | 樹脂含浸化粧板用化粧紙及びメラミン化粧板、並びにメラミン化粧板の製造方法 |
-
2023
- 2023-09-20 JP JP2023152079A patent/JP2024045069A/ja active Pending
- 2023-09-20 EP EP23868204.1A patent/EP4592076A4/fr active Pending
- 2023-09-20 CN CN202380059444.XA patent/CN119604411A/zh active Pending
- 2023-09-20 TW TW112135799A patent/TWI883550B/zh active
- 2023-09-20 WO PCT/JP2023/034054 patent/WO2024063083A1/fr not_active Ceased
Also Published As
| Publication number | Publication date |
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| WO2024063083A1 (fr) | 2024-03-28 |
| TWI883550B (zh) | 2025-05-11 |
| JP2024045069A (ja) | 2024-04-02 |
| TW202417212A (zh) | 2024-05-01 |
| CN119604411A (zh) | 2025-03-11 |
| EP4592076A4 (fr) | 2026-03-04 |
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