Transfer paper

The transfer paper with specific pigment and binder composition and friction coefficients addresses trailing edge turbulence, ensuring stable image formation by preventing rear end movement during transport.

JP7808064B2Active Publication Date: 2026-01-28MITSUBISHI PAPER MILLS LTD
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Patent Information

Application Number
JP2023022353
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2023-02-16
Publication Date
2026-01-28
Estimated Expiration
2043-02-16

AI Technical Summary

Technical Problem

Transfer printing methods experience trailing edge turbulence, particularly in curved transport paths, leading to unstable image formation and quality issues.

Method used

Transfer paper with a base paper and outermost coating layer containing white inorganic pigment and binder, where the volume-based average particle diameter of the pigment is 110% to 200% of the layer thickness, and friction coefficients are 0.8 or less statically and 0.6 or less dynamically, to stabilize the paper during transport.

Benefits of technology

Prevents rear end movement of transfer paper, enhancing image stability and reducing quality checks in subsequent processes.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a transfer paper sheet for suppressing the unstable motion of a rear end of a closely contacted object than before during transportation of the closely contacted object between an object to be printed and the transfer paper sheet on which a drawing pattern transferred to the transfer paper sheet in a transfer printing method.SOLUTION: A transfer paper sheet used in a transfer printing method has: a base paper sheet; and one or two or more coated layers on at least one side of the base paper sheet, where an outermost coated layer as a coated layer positioned outermost based on the base paper sheet contains a white inorganic pigment and a binder, and yet contains at least one having an average particle size (diameter μm ) on a volumetric basis of 110% or more and 200% or less to an average layer thickness (μm) of the outermost coated layer, a static frictional coefficient measured on a side having the outermost coated layer is 0.8 or lower, and a dynamic friction coefficient is 0.6 or lower.SELECTED DRAWING: None
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Description

[Technical Field]

[0001] The present invention relates to a transfer paper used for transferring a pattern in a transfer printing method using a textile ink to form a pattern on a substrate such as a textile material, and in particular to a transfer paper suitable for a transfer printing method using a dye-sublimation textile ink. [Background technology]

[0002] A known example of the transfer paper is an inkjet recording medium for sublimation ink transfer, which has an ink-receiving layer containing at least a pigment and an adhesive on a support, and which contains silicone spherical powder in the ink-receiving layer (see, for example, Patent Document 1). The inkjet recording medium for sublimation ink transfer described in Patent Document 1 prevents sticking due to heat fusion that occurs during transfer between the recording medium and the print medium. Another known example of a recording medium is one that has an ink-receiving layer containing inorganic fine particles and a binder on a substrate, with some of the inorganic fine particles protruding from the binder layer of the ink-receiving layer, and contains 0.05 to 3 parts of inorganic fine particles per 100 parts of the solid content of the binder (see, for example, Patent Document 2). The recording medium described in Patent Document 2 is excellent in image characteristics, anti-blocking properties, transportability in various printers, and continuous paper feed properties. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2006-256018 [Patent Document 2] Japanese Patent Application Publication No. 07-304249 Summary of the Invention [Problem to be solved by the invention]

[0004] The transfer printing method includes the steps of printing a design onto transfer paper to obtain transfer paper, and bringing the surface of the transfer paper with the design printed thereon into close contact with the substrate. The close contact step may include heating or heating and pressurizing, as necessary. Examples of the close contact step include a method in which the transfer paper and the substrate are brought into close contact with each other using a press, a heated roll, or a heated drum, and then heated or heated and pressurized. In particular, in the transfer printing industry, in order to increase productivity, a method is often adopted in which the transfer paper and the substrate are conveyed in close contact with each other while being sandwiched between heated rolls or heated drums.

[0005] While this does not pose a problem when the transport path is straight, when the transport path is curved, especially when it has a U-shaped curve that reverses the transport direction, the trailing edge of the closely-contacted transfer paper and printed material may flap or bounce as it passes between the transport rolls, i.e., "trailing edge turbulence." This phenomenon adversely affects the image formed on the printed material at and near the trailing edge. Conventionally, for example, clear trailing edge turbulence occurred about once out of every 25 transfer printing runs, necessitating quality checks in subsequent processes, posing a problem in terms of stable production. SUMMARY OF THE INVENTION In view of the above, an object of the present invention is to provide a transfer paper sheet that is less prone to rear end upset than conventional transfer paper sheets. [Means for solving the problem]

[0006] The present inventors have conducted extensive research to solve the above problems, and as a result, the object of the present invention has been achieved as follows.

[0007] [1] Transfer paper for use in transfer printing, comprising a base paper and one or more coating layers on at least one side of the base paper, the outermost coating layer being the coating layer located outermost relative to the base paper, containing a white inorganic pigment and a binder, and the white inorganic pigment containing at least one type whose volume-based average particle diameter (diameter, unit μm) is 110% to 200% of the average layer thickness (unit μm) of the outermost coating layer, and the static friction coefficient measured on the side having the outermost coating layer is 0.8 or less and the dynamic friction coefficient is 0.6 or less. [Effects of the Invention]

[0008] The present invention makes it possible to provide transfer paper in a transfer printing method in which the rear end of the closely-contacted transfer paper, on which a pattern to be transferred to the transfer paper is printed, and the printed material is prevented from moving wildly when transported, more than in the past. DETAILED DESCRIPTION OF THE INVENTION

[0009] The present invention will be described in detail below. In this specification, "transfer paper" refers to a blank sheet of paper before a design to be transferred is printed on it. "Transfer paper" refers to a sheet of paper on which a design to be transferred has been printed.

[0010] The transfer paper has a base paper and one or more coating layers on at least one side of the base paper. Base paper is made from chemical pulp such as LBKP (Leaf Bleached Kraft Pulp) and NBKP (Needle Bleached Kraft Pulp), mechanical pulp such as GP (Groundwood Pulp), PGW (Pressure Groundwood Pulp), RMP (Refiner Mechanical Pulp), TMP (ThermoMechanical Pulp), CTMP (ChemiThermoMechanical Pulp), CMP (ChemiMechanical Pulp), and CGP (ChemiGroundwood Pulp), and DIP (Deinked Pulp). The paper is obtained by making a paper stock containing a slurry of dispersed one or more pulps selected from recycled paper pulp such as recycled pulp (e.g., recycled pulp), calcium carbonate, talc, clay, various kaolins, and other fillers, as well as various additives such as binders, sizing agents, fixing agents, retention agents, cationizing agents, paper strength agents, pigment dispersants, thickeners, flow improvers, antifoaming agents, foam suppressors, release agents, foaming agents, penetrating agents, coloring dyes, coloring pigments, fluorescent brighteners, ultraviolet absorbers, antioxidants, preservatives, mildew inhibitors, and water-resistant agents, as needed. The base paper also includes wood-free paper obtained by calendering the paper, or by surface-sizing or surface-treating the paper with starch, styrene-acrylic resin, or the like. The base paper also includes wood-free paper obtained by calendering the surface-sizing or surface-treating the paper.

[0011] In some embodiments, the paper has a density of 0.75 g / cm as determined in accordance with ISO534:2011 "Paper and board - Determination of thickness, density and specific volume". 3 More than 0.85g / cm 3 The reason for this is that the adhesion between the transfer paper and the printing material is improved.

[0012] Papermaking is carried out by adjusting the paper stock to an acidic, neutral or alkaline state and using a paper machine conventionally known in the papermaking field, such as a Fourdrinier paper machine, a twin-wire paper machine, a combination paper machine, a cylinder paper machine, or a Yankee paper machine. The calendering is carried out using a calendering device conventionally known in the papermaking field, such as a machine calender, a soft nip calender, a super calender, a multi-stage calender, or a multi-nip calender.

[0013] In some embodiments, the pulp contains 80% by mass or more of LBKP and NBKP in total relative to the pulp of the base paper, 75% by mass or more and 95% by mass or less of LBKP with a freeness in the range of 380 ml to 480 ml, and 5% by mass or more and 25% by mass or less of NBKP with a freeness in the range of 400 ml to 480 ml, because this improves adhesion between the transfer paper and the printed material. The freeness is the CSF freeness determined in accordance with ISO5267-2:2001 "Pulps - Determination of drainability - Part 2 Canadian Standard freeness method."

[0014] Among the coating layers, the coating layer located outermost relative to the base paper is referred to as the outermost coating layer. When there is only one coating layer, that coating layer becomes the outermost coating layer. The outermost coating layer contains at least a white inorganic pigment and a binder. When there are two or more coating layers, the coating layer located between the base paper and the outermost coating layer is a coating layer conventionally known in the field of coated paper, and there are no particular restrictions on the presence, type, and quantity of a white inorganic pigment, the presence, type, and quantity of a binder, or the presence and quantity of other conventionally known additives. In some embodiments, the transfer paper has one coating layer. This is because the manufacturing cost of the transfer paper is advantageous. In some embodiments, the transfer paper has two coating layers, including the outermost coating layer. This is because migration of the printing ink from the transfer paper to the printing substrate, rather than to the opposite direction, can be suppressed in a contact state during transfer printing.

[0015] In some embodiments, when the coating layer consists of two layers including the outermost coating layer, the coating layer located between the base paper and the outermost coating layer contains a white inorganic pigment and a binder, because this can further suppress the migration of the printing ink in the opposite direction as described above. The white inorganic pigment is one that has been conventionally known in the field of coated paper. Examples of the white inorganic pigment include various kaolins such as kaolin, delaminated kaolin, calcined kaolin, and engineered kaolin, heavy calcium carbonate, light calcium carbonate, talc, satin white, lithopone, titanium oxide, zinc oxide, amorphous silica, colloidal silica, alumina, aluminum hydroxide, zinc oxide, activated clay, and diatomaceous earth. The binder is one that has been conventionally known in the field of coated paper. Examples of binders include starches such as starch, modified starch, and modified starch, celluloses such as carboxymethyl cellulose and hydroxyethyl cellulose, naturally occurring resins or derivatives thereof such as casein, gelatin, soy protein, pullulan, gum arabic, Karaya gum, and albumin, polyvinyl alcohols such as polyvinyl alcohols of various degrees of saponification or polymerization and various modified polyvinyl alcohols, polypropylene glycol, polyethylene glycol, copolymer resins such as maleic anhydride resins, acrylic acid resins, methacrylic acid resins, acrylate resins, methacrylate resins, acrylate-butadiene copolymers, styrene-butadiene copolymers, and ethylene-vinyl acetate copolymers, as well as functional group-modified resins obtained by introducing functional groups such as carboxy groups into these copolymer resins, thermosetting resins such as melamine resins and urea resins, polyurethane resins, unsaturated polyester resins, polyvinyl butyral, and alkyd resins. The coating layer located between the base paper and the outermost coating layer can contain various additives conventionally known in the field of coated paper, as needed. Examples of the additives include organic pigments, dispersants, surfactants, fixing agents, thickeners, flow improvers, antifoaming agents, release agents, foaming agents, penetrating agents, colorants, printability improvers, fluorescent brighteners, ultraviolet absorbers, antioxidants, preservatives, mildew inhibitors, cationic resins such as modified polyamines and modified polyamides, and the like.

[0016] In some embodiments, the transfer paper has two coating layers including an outermost coating layer, and the coating layer located between the base paper and the outermost coating layer contains a white inorganic pigment and a binder, and the white inorganic pigment contains at least one selected from various kaolins and heavy calcium carbonate. This is because it can further suppress the migration of the textile ink in the opposite direction as described above, and because the solvent contained in the textile ink evaporates and becomes more easily permeable when heated in a contact state during transfer printing. In some embodiments, the coating layer has two layers including the outermost coating layer, and the coating layer located between the base paper and the outermost coating layer contains a white inorganic pigment and a binder, and the binder contains at least one selected from starches and at least one selected from polyvinyl alcohols. This is because it can further suppress the migration of the printing ink in the opposite direction as described above, and because the solvent contained in the printing ink is easily vaporized and permeable when heated in a contact state during transfer printing. In at least one embodiment, the coating layer has two layers including the outermost coating layer, and the coating layer located between the base paper and the outermost coating layer contains a white inorganic pigment and a binder, the white inorganic pigment containing at least one selected from various kaolins and heavy calcium carbonate, and the binder containing at least one selected from starches and at least one selected from polyvinyl alcohols. The reason for this is that the migration of the printing ink in the opposite direction can be further suppressed, and when heated in a contact state during transfer printing, the solvent contained in the printing ink is easily vaporized and becomes air permeable.

[0017] In some embodiments, the transfer paper has coating layers, including the outermost coating layer of the present invention, on only one side of the base paper. This is because the manufacturing costs of the transfer paper are advantageous. In some embodiments, the transfer paper has coating layers, including the outermost coating layer of the present invention, on both sides of the base paper. This is because the transfer paper can be used regardless of whether it is on the front or back side. In some embodiments, when the transfer paper has the outermost coating layer of the present invention on only one side of the base paper (for convenience, referred to as the "front side"), the transfer paper has a conventionally known backcoat layer on the back side of the base paper for purposes such as preventing paper curling and preventing print ink from showing through.

[0018] In some embodiments, the transfer paper has the outermost coating layer of the present invention on only one side of the base paper, and a conventionally known backcoat layer on the back side of the base paper, the backcoat layer containing a white inorganic pigment and a binder, and the white inorganic pigment containing at least one selected from various kaolins and heavy calcium carbonate, because this can further suppress rear end upset. In some embodiments, the transfer paper has the outermost coating layer of the present invention on only one side of the base paper, and has a conventionally known backcoat layer on the back side of the base paper, the backcoat layer containing a white inorganic pigment and a binder, and the binder contains at least one kind selected from starches and at least one kind selected from polyvinyl alcohols, because this can further suppress rear end upset. In at least one embodiment, the transfer paper has the outermost coating layer according to the present invention on only one side of the base paper, and a conventional backcoat layer on the back side of the base paper, the white inorganic pigment containing at least one selected from various kaolins and heavy calcium carbonate, and the binder containing at least one selected from starches and at least one selected from polyvinyl alcohols, because this can further suppress rear end upset.

[0019] In some embodiments, the transfer paper has one coating layer, including the outermost coating layer of the present invention, on only one side of the base paper, and a backcoat layer on the back side of the base paper. In at least one embodiment, the transfer paper has one coating layer, including the outermost coating layer of the present invention, on only one side of the base paper, and a backcoat layer on the back side of the base paper, the backcoat layer containing a white inorganic pigment and a binder, the white inorganic pigment containing at least one selected from various kaolins and heavy calcium carbonate, and the binder containing at least one selected from starches and at least one selected from polyvinyl alcohols.

[0020] In some embodiments, the transfer paper has two coating layers, including an outermost coating layer, on only one side of the base paper, and the coating layer located between the base paper and the outermost coating layer contains a white inorganic pigment and a binder, the white inorganic pigment containing at least one selected from various kaolins and ground calcium carbonate, and the binder containing at least one selected from starches and at least one selected from polyvinyl alcohols, and a backcoat layer on the back side of the base paper. In at least one embodiment, the transfer paper has two coating layers, including an outermost coating layer, on only one side of the base paper, and the coating layer located between the base paper and the outermost coating layer contains a white inorganic pigment and a binder, the white inorganic pigment including at least one selected from various kaolins and heavy calcium carbonate, and the binder including at least one selected from starches and at least one selected from polyvinyl alcohols, and has a backcoat layer on the back side of the base paper, the backcoat layer containing a white inorganic pigment and a binder, the white inorganic pigment including at least one selected from various kaolins and heavy calcium carbonate, and the binder including at least one selected from starches and at least one selected from polyvinyl alcohols.

[0021] The coating layers, including the outermost coating layer, can be obtained by applying a coating solution to the base paper or coating layer using a conventional coating device and drying device, and then drying the coating layer. After applying and drying the coating solution, the coating layer can be subjected to a calendar treatment.

[0022] Examples of conventionally known coating devices include a size press, a gate roll coater, a film transfer coater, a blade coater, a rod coater, an air knife coater, a gravure coater, a bar coater, an E-bar coater, and a curtain coater. Examples of conventionally known drying devices include various drying devices such as hot air dryers such as linear tunnel dryers, arch dryers, air loop dryers, and sine curve air float dryers, infrared heating dryers, and dryers that utilize microwaves, etc.

[0023] In some embodiments, the coating weight of the coating layer is 8 g / m2 per side of the base paper in terms of dry solid content. 2 More than 25g / m 2 The range is the total coating weight of the coating layers, including the outermost coating layer, per side of the base paper. In at least one embodiment, when there are two or more coating layers, including the outermost coating layer, the total coating weight of the coating layers, including the outermost coating layer, is 8 g / m2 or less in terms of dry solid content per side of the base paper. 2 More than 25g / m 2 The coating weight of the outermost coating layer is 5 g / m2 per side of the base paper in terms of dry solid content. 2 More than 22g / m 2 The following is the result. The reason for this is that the adhesion between the transfer paper and the printing material is improved.

[0024] The outermost coating layer contains a white inorganic pigment and a binder. The white inorganic pigment is conventionally known in the field of coated paper. Examples of the white inorganic pigment include various kaolins such as kaolin, delaminated kaolin, calcined kaolin, and engineered kaolin, heavy calcium carbonate, light calcium carbonate, talc, satin white, lithopone, titanium oxide, zinc oxide, amorphous silica, colloidal silica, alumina, aluminum hydroxide, zinc oxide, activated clay, and diatomaceous earth. The binder is conventionally known in the field of coated paper. Examples of binders include starches such as starch, modified starch, and modified starch, celluloses such as carboxymethyl cellulose and hydroxyethyl cellulose, naturally occurring resins or derivatives thereof such as casein, gelatin, soy protein, pullulan, gum arabic, Karaya gum, and albumin, polyvinyl alcohols such as polyvinyl alcohols of various degrees of saponification or polymerization and various modified polyvinyl alcohols, copolymer resins such as polypropylene glycol, polyethylene glycol, maleic anhydride resin, acrylic acid resin, methacrylic acid resin, acrylate resin, methacrylate resin, acrylate-butadiene copolymer, styrene-butadiene copolymer, and ethylene-vinyl acetate copolymer, as well as functional group-modified resins obtained by introducing functional groups such as carboxy groups into these copolymer resins, thermosetting resins such as melamine resin and urea resin, polyurethane resin, unsaturated polyester resin, polyvinyl butyral, and alkyd resin. The outermost coating layer may contain various additives conventionally known in the field of coated paper, as needed. Examples of the additives include organic pigments, dispersants, surfactants, fixing agents, thickeners, flow improvers, antifoaming agents, release agents, foaming agents, penetrating agents, colorants, printability improvers, fluorescent brighteners, ultraviolet absorbers, antioxidants, preservatives, mildew inhibitors, cationic resins such as modified polyamines and modified polyamides, and the like.

[0025] The outermost coating layer contains at least one white inorganic pigment whose volume-based average particle size (diameter, unit μm) is 110% to 200% of the average layer thickness (unit μm) of the outermost coating layer. By satisfying the above-mentioned relationship between the average particle size of the white inorganic pigment and the average layer thickness of the outermost coating layer, the transfer paper can suppress trailing-end running-up to a greater extent than before due to a synergistic effect with the friction coefficient described below. If the above-mentioned relationship is not satisfied, trailing-end running-up cannot be suppressed to a greater extent than before. In some embodiments, the outermost coating layer contains at least one white inorganic pigment whose volume-based average particle size (diameter, unit μm) is 110% to 200% of the average layer thickness (unit μm) of the outermost coating layer, and the amount of the white inorganic pigment in the outermost coating layer having a volume-based average particle size that is 110% to 200% of the average layer thickness (unit μm) of the outermost coating layer is 5 to 25 parts by mass per 100 parts by mass of the white inorganic pigment in the outermost coating layer. The reason for this is that rear end movement can be further suppressed. The volume-based average particle size of the white inorganic pigment can be determined from a volume-based particle size distribution curve. The volume-based average particle size of the white inorganic pigment refers to the average particle size of a single particle when the white inorganic pigment is a single particle, or the average particle size of an aggregate when the white inorganic pigment forms aggregate particles. The volume-based average particle size can be determined, for example, from a volume-based particle size distribution curve obtained by measurement using a particle size distribution analyzer based on the laser diffraction / scattering method. An example of an example of a particle size distribution analyzer is Nikkiso's Microtrac MT3000II.

[0026] The method for measuring the average thickness of the outermost coating layer is not particularly limited. For example, the average thickness of the outermost coating layer can be obtained by taking an image of the cross section of a paper cut using a microtome and then measuring it from the resulting image using an electron microscope. The average thickness of the outermost coating layer is the average value of measurements taken at any 10 or more locations on the outermost coating layer that are visible in the resulting image.

[0027] In some embodiments, the outermost coating layer has an average layer thickness of 4 μm to 18 μm. In at least one embodiment, the outermost coating layer has an average layer thickness of 8 μm to 14 μm. In some embodiments, the outermost coating layer contains at least one white inorganic pigment whose volume-based average particle diameter (diameter, unit μm) is 110% to 200% of the average layer thickness (unit μm) of the outermost coating layer, and the average layer thickness of the outermost coating layer is 4 μm to 18 μm. In at least one embodiment, the outermost coating layer contains at least one white inorganic pigment whose volume-based average particle diameter (diameter, unit μm) is 110% to 200% of the average layer thickness (unit μm) of the outermost coating layer, and the average layer thickness of the outermost coating layer is 8 μm to 14 μm. The reason for this is that rear-end runaway can be further suppressed. The average thickness of the outermost coating layer can be adjusted by the concentration of the resin component in the coating solution, the coating amount, drying conditions, and whether or not calendering is performed and the treatment conditions.

[0028] In some embodiments, the white inorganic pigment in the outermost coating layer comprises at least one selected from various kaolins and one or more selected from the group consisting of heavy calcium carbonate and talc. In some embodiments, the mass ratio of the total amount of species selected from various kaolins (various kaolin amounts) to the total amount of species selected from the group consisting of heavy calcium carbonate and talc (heavy calcium carbonate and talc amounts) contained in the outermost coating layer is 70:30 to 97:3. In some embodiments, the total content of the species selected from various kaolins and the species selected from the group consisting of heavy calcium carbonate and talc accounts for 90% by mass or more of the total amount of the white inorganic pigment in the outermost coating layer. In at least one embodiment, the white inorganic pigment of the outermost coating layer comprises at least one selected from various kaolins and one or more selected from the group consisting of heavy calcium carbonate and talc, and the mass ratio of the total amount of species selected from the various kaolins (various kaolin amount) contained in the outermost coating layer to the total amount of species selected from the group consisting of heavy calcium carbonate and talc (heavy calcium carbonate and talc amount) is various kaolin amount:heavy calcium carbonate and talc amount=70:30 to 97:3, and the content of the species selected from the various kaolins and the species selected from the group consisting of heavy calcium carbonate and talc is 90 mass% or more of the total amount of the white inorganic pigment contained in the outermost coating layer. The reason for this is that rear end movement can be further suppressed.

[0029] In some embodiments, the outermost coating layer contains a white inorganic pigment comprising at least one selected from various kaolins and one or more selected from the group consisting of ground calcium carbonate and talc, and the white inorganic pigment having a volume-based average particle size of 110% or more and 200% or less of the average layer thickness of the outermost coating layer is ground calcium carbonate and / or talc. In some embodiments, the outermost coating layer contains a white inorganic pigment that is one or more selected from the group consisting of calcined kaolin, ground calcium carbonate, and talc. In at least one embodiment, the outermost coating layer contains a white inorganic pigment that is one or more selected from the group consisting of calcined kaolin, ground calcium carbonate, and talc, and the white inorganic pigment that has a volume-based average particle size that is 110% to 200% of the average layer thickness of the outermost coating layer is ground calcium carbonate and / or talc. The reason for this is that rear end movement can be further suppressed.

[0030] In some embodiments, the binder of the outermost coating layer comprises carboxymethyl cellulose and at least one selected from polyvinyl alcohols. In some embodiments, the binder of the outermost coating layer comprises carboxymethyl cellulose and at least one selected from polyvinyl alcohols, and the mass ratio of the amount of carboxymethyl cellulose to the total amount of polyvinyl alcohols contained in the outermost coating layer is 35:65 to 55:45 (carboxymethyl cellulose:total amount of polyvinyl alcohols). In some embodiments, the binder of the outermost coating layer comprises carboxymethyl cellulose and at least one selected from polyvinyl alcohols, and the total amount of carboxymethyl cellulose and polyvinyl alcohols accounts for 90 mass% or more of the total amount of binders contained in the outermost coating layer. In at least one embodiment, the outermost coating layer contains a binder comprising carboxymethyl cellulose and at least one selected from polyvinyl alcohols, the mass ratio of the amount of carboxymethyl cellulose to the total amount of polyvinyl alcohols contained in the outermost coating layer is 35:65 to 55:45 (amount of carboxymethyl cellulose:total amount of polyvinyl alcohols), and the total amount of carboxymethyl cellulose and polyvinyl alcohols accounts for 90 mass% or more of the total amount of binders contained in the outermost coating layer. The reason for this is that the trailing end runaway can be further suppressed by a synergistic effect with the white inorganic pigment.

[0031] In some embodiments, the outermost coating layer contains a white inorganic pigment that is one or more selected from the group consisting of calcined kaolin, heavy calcium carbonate, and talc, and a binder that is carboxymethyl cellulose and at least one selected from polyvinyl alcohols. In at least one embodiment, the outermost coating layer contains a white inorganic pigment that is one or more selected from the group consisting of calcined kaolin, heavy calcium carbonate, and talc, and the white inorganic pigment having a volume-based average particle size that is 110% to 200% of the average layer thickness of the outermost coating layer is heavy calcium carbonate and / or talc, and the binder of the outermost coating layer contains carboxymethyl cellulose and at least one selected from polyvinyl alcohols. The reason for this is that rear end movement can be further suppressed.

[0032] Carboxymethylcellulose is a type of cellulose ether and is a conventionally known compound, without any particular limitation. Carboxymethylcellulose includes alkali metal salts. Carboxymethylcellulose can be obtained, for example, by reacting pulp as a raw material with sodium monochloroacetate and sodium hydroxide (direct method). In addition to the direct method, it can also be obtained by the alkali method and the solvent method. Carboxymethylcellulose can be produced with various molecular weights or degrees of polymerization depending on the properties of the pulp used and the production method. Generally, carboxymethylcellulose is industrially produced and sold as alkali metal salts of carboxymethylcellulose. Most carboxymethylcellulose is sodium carboxymethylcellulose or potassium carboxymethylcellulose. Conventionally, the sodium and potassium are often omitted. In some embodiments, the carboxymethylcellulose is sodium carboxymethylcellulose. This is because sodium carboxymethylcellulose is readily available commercially.

[0033] Polyvinyl alcohols are a general term that includes general polyvinyl alcohols and various modified polyvinyl alcohols. Polyvinyl alcohols include conventionally known polyvinyl alcohols with various degrees of saponification and polymerization, and various modified polyvinyl alcohols. Examples of modified polyvinyl alcohols include polyvinyl alcohols into which various functional groups such as silyl groups, carboxy groups, amino groups, and acetoacetyl groups have been introduced, and polyvinyl alcohols into which other monomers such as ethylene have been introduced randomly, graft-wise, or block-wise.

[0034] The outermost coating layer may contain various auxiliaries conventionally known in transfer printing. These auxiliaries are added to optimize various physical properties of the coating layer coating solution or to improve the dyeability of colorants contained in dye-sublimation inks and other printing inks. Examples of auxiliaries include humectants, wetting agents, pH adjusters, alkali agents, mordants, dye-deepening agents, degassing agents, and reduction inhibitors.

[0035] The transfer paper has a static friction coefficient of 0.8 or less and a kinetic friction coefficient of 0.6 or less, measured on the side having the outermost coating layer. The friction coefficients are determined in accordance with ISO 15359:1999, "Paper and board - Determination of the static and kinetic coefficients of friction - Horizontal plane method." By satisfying the above-mentioned ranges of friction coefficients, the transfer paper can suppress trailing edge upset to a greater extent than conventional levels due to the synergistic effect of the relationship between the average particle size of the white inorganic pigment in the outermost coating layer and the average layer thickness of the outermost coating layer. If the friction coefficient does not satisfy the above-mentioned ranges, trailing edge upset cannot be suppressed to a greater extent than conventional levels.

[0036] The coefficient of friction can be controlled, for example, by considering the smoothness of the outermost coating layer, the coating weight of the outermost coating layer, the type, content, and average particle size of the white inorganic pigment contained in the outermost coating layer, the coating layer components, and density. The coefficient of friction increases as the coating weight of the outermost coating layer increases. The coefficient of friction decreases as the smoothness and density increase. The coefficient of friction increases as the hydrophilicity of the outermost coating layer increases. The coefficient of friction decreases when the outermost coating layer contains a lubricant and a surfactant. The coefficient of friction increases as the resin content increases. The density of the outermost coating layer can be controlled to some extent by the application and drying conditions of the coating layer coating solution. For example, the density of the outermost coating layer tends to increase when a contact coating device is used and the drying speed is slowed.

[0037] The transfer paper can be obtained by printing a design on the surface of the transfer paper having the outermost coating layer using any of various conventionally known printing methods using dye-sublimation ink or other textile ink. The various printing methods for printing a design on transfer paper are conventionally known printing methods and are not particularly limited. Examples of printing methods include gravure printing, inkjet printing, electrophotographic printing, and screen printing. In at least one embodiment, the printing method for printing a design on transfer paper is inkjet printing. This is because it allows high-resolution printing from digital data.

[0038] The transfer printing method is a method comprising the steps of printing a design on transfer paper to obtain transfer paper, and bringing the surface of the transfer paper with the design printed thereon into close contact with the substrate to be printed. The contacting step includes heating or heating and pressurizing as necessary. The heating and heating and pressurizing conditions in the contacting step are those conventionally known for transfer printing methods. The contacting step can be exemplified by a method in which the transfer paper is brought into close contact with the substrate to be printed using a press, a heated roll, a heated drum, or the like, and then heating or heating and pressurizing. In at least one embodiment, the printing ink used in the transfer printing process is a dye sublimation ink.

[0039] The printing substrate is a fibrous material and is not particularly limited. The fibrous material may be either a natural or synthetic fibrous material. Examples of natural fibrous materials include cellulosic fibrous materials such as cotton, linen, lyocell, rayon, and acetate, and protein-based fibrous materials such as silk, wool, and animal hair. Examples of synthetic fibrous materials include polyamide fiber (nylon), vinylon, polyester, and polyacrylic. In at least one embodiment, when a dye-sublimation printing ink is used, the fibrous material is polyester. If necessary, the printing substrate may be pretreated with an agent or the like that is effective in promoting dyeing. [Example]

[0040] The present invention will be described in more detail below with reference to examples. However, the present invention is not limited to these examples. Here, "parts by mass" and "% by mass" represent the dry solid content or the substantial component amount, respectively. The amount of the coating layer applied represents the dry solid content.

[0041] (base paper) A total of 1000 parts by mass of 870 parts by mass of LBKP (CSF freeness 430 ml) and 130 parts by mass of NBKP (CSF freeness 450 ml), the freeness of which had been adjusted by beating, was dispersed in water to form a pulp slurry. 25 parts by mass of talc as a filler, 50 parts by mass of light calcium carbonate, 10 parts by mass of cationized starch, 9 parts by mass of aluminum sulfate, and 0.7 parts by mass of an alkyl ketene dimer sizing agent were added to the pulp slurry, and paper was produced on a Fourdrinier paper machine. The paper thus obtained was subjected to a machine calendering treatment to obtain a calendered paper. The density of the paper thus obtained was 0.81 g / cm. 3 The oxidized starch was coated on both sides of the calendered paper using a size press at a coating amount of 1 g / m per side. 2 The base paper was prepared by coating so that the thickness was as follows:

[0042] (Coating liquid for outermost coating layer) The coating layer coating solution was prepared as follows. White inorganic pigment. Type and mass parts are listed in the table. Carboxymethyl cellulose 7.5 parts by mass Polyvinyl alcohol 10.5 parts by mass Surfactant (nonionic type) as needed Modified polyamide resin 1 part by mass The above contents were compounded, mixed and dispersed in water, and the concentration was adjusted to 12% by mass.

[0043] (Coating liquid for the coating layer provided between the base paper and the outermost coating layer) The coating layer coating solution was prepared as follows. Kaolin 80 parts by mass Heavy calcium carbonate 20 parts by mass Starch (phosphate esterified starch) 40 parts by mass Polyvinyl alcohol (saponification degree 98%, average polymerization degree 300) 10 parts by mass Surfactant (nonionic type) 0.1 parts by mass The above contents were compounded, mixed and dispersed in water, and the concentration was adjusted to 12% by mass.

[0044] (Coating liquid for backcoat layer) The coating layer coating solution was prepared as follows. Kaolin 80 parts by mass Heavy calcium carbonate 20 parts by mass Starch (phosphate esterified starch) 40 parts by mass Polyvinyl alcohol (saponification degree 98%, average polymerization degree 300) 10 parts by mass Surfactant (nonionic type) 0.1 parts by mass The above contents were compounded, mixed and dispersed in water, and the concentration was adjusted to 12% by mass.

[0045] [Table 1]

[0046] The white inorganic pigments used in the outermost coating layer are as follows: Kao A: Kaolin (average particle size 1.8 μm) Kao B: Calcined kaolin (average particle size 1.4 μm) Talc: Talc (average particle size 13.7 μm) Heavy calcium carbonate A: Heavy calcium carbonate (average particle size 9.0 μm) Heavy calcium carbonate B: Heavy calcium carbonate (average particle size 10.8 μm) Heavy calcium carbonate: Heavy calcium carbonate (average particle size 15.4 μm) Heavy calcium carbonate D: Heavy calcium carbonate (average particle size 19.3 μm) Heavy calcium carbonate E: Heavy calcium carbonate (average particle size 21.3 μm) Silica: Amorphous silica (average particle size 12.8 μm)

[0047] (average particle size of white pigment) The average particle diameters of these white inorganic pigments were calculated from the volume-based particle size distribution curves obtained from measurements using a particle size distribution measuring device based on the laser diffraction / scattering method, Nikkiso Co., Ltd.'s Microtrac MT3000II.

[0048] (Transfer paper - 1 layer type) The transfer paper was prepared according to the following procedure. The coating solution for the outermost coating layer was applied to one side of the base paper (referred to as the "front side" for convenience) using an air knife coater and dried using a hot air dryer. After drying, the front side was subjected to no or light calendaring. The coating amount, drying conditions, and calendaring were adjusted so that the outermost coating layer would have a predetermined thickness. Next, the coating solution for the backcoat layer was applied to the back side of the base paper using a blade coater and dried using a hot air dryer. The coating amount was 4 to 6 g / m 2 In this way, a transfer paper having an outermost coating layer and a backcoat layer on the base paper was obtained.

[0049] (Transfer paper - 2-layer type) The transfer paper was prepared according to the following procedure. The undercoat layer was coated on one side of the base paper (referred to as the "front side" for convenience) using a blade coater and dried in a hot air dryer. The coating amount was 4 to 6 g / m 2The thickness was set to a range of 1000 to 12000 mm. Next, the coating solution for the outermost coating layer was applied to the surface using an air knife coater and dried in a hot air dryer. After drying, the surface was subjected to no or light calendering. The coating amount, drying conditions, and calendering treatment were adjusted so that the layer thickness of the outermost coating layer would be the specified thickness. Finally, the coating solution for the backcoat layer was applied to the backside of the base paper using a blade coater and dried in a hot air dryer. The coating amount was 4 to 6 g / m 2 In this way, a transfer paper having an undercoat layer, an outermost coating layer and a backcoat layer on the base paper was obtained.

[0050] (thickness of outermost coating layer) The average thickness of the outermost coating layer was measured from the image obtained by photographing the cross section of the transfer paper cut with a microtome using an electron microscope. Measurements were taken at 10 random locations on the image. The average film thickness of the outermost coating layer was calculated as the average of the 10 locations. The thickness of the outermost coating layer is shown in Table 1.

[0051] (coefficient of friction) The static and dynamic friction coefficients of the resulting transfer paper were measured on the side having the outermost coating layer in accordance with ISO 15359:1999. The measuring device used was a Tensilon 1210 manufactured by A&D Co., Ltd. The values ​​of the friction coefficients are shown in Table 1.

[0052] (Transfer paper) On the side of the resulting transfer paper having the outermost coating layer, an evaluation pattern was printed using an inkjet printer (Mimaki Engineering Co., Ltd., JV2-130II) that uses sublimation textile inks, consisting of each ink single color of sublimation textile ink (cyan, magenta, yellow, black), as well as green, which is a mixture of yellow and cyan, red, which is a mixture of yellow and magenta, blue, which is a mixture of cyan and magenta, and black, which is a mixture of yellow, cyan, and magenta, to obtain transfer paper.

[0053] (transfer printing) White polyester cloth was used as the printing substrate. The coated side of a 3-meter-long transfer paper was placed face-to-face with a 3-meter-long piece of white polyester cloth, and the resulting bonded object was then tightly pressed against it. The bonded object was then sandwiched between two paired, driven rolls with a U-shaped curved transport path, such as that shown in Figure 3 of JP 2015-16978 A. The paired rolls, each approximately 30 cm in diameter and located in the middle of the U-shaped curved portion, consisted of a heated metal roll on the inside and a rubber roll on the outside. The transfer paper was oriented in contact with the metal roll, and the paired rolls heated and pressurized the transfer paper and the white polyester cloth. The temperature of the metal roll was 200°C, and the transfer paper was in contact with the outer periphery of the metal roll for 35 seconds.

[0054] (Rear end movement evaluation) In carrying out the above transfer printing, the trailing edge of the adhered product was visually observed passing between the conveying rolls that heat and pressurize the U-shaped portion in the conveying path. The print transfer was carried out 25 times. From the observation results, the "trailing edge unrest" was evaluated according to the following criteria. In the present invention, if the transfer paper was rated A, B, or C, it was considered that the trailing edge unrest was suppressed compared to conventional transfer paper. A: In practice, almost no rear end movement was observed, and the result was extremely good. B: Although slight rear end irregularity was observed in 1 out of 25 times, it was in good condition. C: Slight rear end irregularity was observed in more than 1 and less than 3 times out of 25 times, but generally good. D: Slight rear end movement observed in more than 3 out of 25 times. Or, clear rear end irregularity was observed in more than one out of 25 times, which poses problems in terms of stable production.

[0055] The evaluation results are shown in Table 1.

[0056] The evaluation results in Table 1 show that the transfer papers of Examples 1 to 8, which correspond to the present invention, can suppress rear end upset more than conventional ones in the transfer printing method. On the other hand, the transfer papers of Comparative Examples 1 to 4, which do not satisfy the configuration of the present invention, cannot suppress rear end upset more than conventional ones in the transfer printing method.

Claims

1. 1. A transfer paper for use in a transfer printing method, comprising a base paper and one or more coating layers on at least one side of the base paper, wherein an outermost coating layer, which is the coating layer located outermost relative to the base paper, contains a white inorganic pigment and a binder, wherein the white inorganic pigment in the outermost coating layer comprises at least one selected from various kaolins and one or more selected from the group consisting of heavy calcium carbonate and talc, and wherein the white inorganic pigment contains at least one type whose volume-based average particle size (diameter, unit μm) is 110% or more and 200% or less of the average layer thickness (unit μm) of the outermost coating layer, and wherein the static friction coefficient measured on the side having the outermost coating layer is 0.8 or less and the dynamic friction coefficient is 0.6 or less.

2. Transfer paper used in the transfer printing method described in claim 1, wherein the total content of species selected from various kaolins and species selected from the group consisting of heavy calcium carbonate and talc accounts for 90 mass% or more of the total amount of white inorganic pigment contained in the outermost coating layer.

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