Aqueous inkjet ink for shrink film and printed matter

By adding organic solvents, surfactants and resins within a specific range to the water-based inkjet ink, the problems of poor follow-upability of the ink layer and ink leakage during the deformation of the plastic film are solved, and high-quality printing effect and jet stability are achieved.

JP2025076802AActive Publication Date: 2025-05-16TOYO INK MFG CO LTD
View PDF 2 Cites 0 Cited by

Patent Information

Application Number
JP2023188675
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2023-11-02
Publication Date
2025-05-16
Estimated Expiration
2043-11-02

AI Technical Summary

Technical Problem

The prior art is difficult to ensure that the ink layer can follow the deformation of the plastic film without wrinkles, cracks and other problems when using water-based inkjet ink, and at the same time avoid ink leakage.

Method used

A water-based inkjet ink is employed that contains organic solvents, surfactants and resins within a specific range to ensure adhesion and ductility of the ink layer while controlling the surface tension and drying properties of the ink.

Benefits of technology

The ink layer is achieved in good follow-up during the deformation of the plastic film, avoiding ink leakage and degradation of printing quality, and improving the jet stability of inkjet ink.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 2025076802000001
    Figure 2025076802000001
  • Figure 2025076802000002
    Figure 2025076802000002
  • Figure 2025076802000003
    Figure 2025076802000003
Patent Text Reader

Abstract

To provide aqueous inkjet ink which has good followability to deformation such as shrinkage of a shrink film, enables production of a printed matter without bleeding, and also has good discharge stability.SOLUTION: Aqueous inkjet ink for a shrink film contains an organic solvent, a surface active agent, and a resin, wherein the organic solvent contains 5 to 30 mass% of an organic solvent (A-1) having an SP value of 11 to 13.5(cal / cm3)1 / 2 and one or more hydroxyl groups in the total amount of the aqueous inkjet ink, the surface active agent contains one or more kinds of surface active agents (B-1) selected from the group consisting of an acetylenediol-based surface active agent and a polyoxyalkylene alkyl ether-based surface active agent, and a weighted average value of the SP value of the resin and the surface active agent is 9 to 11.5 (cal / cm3)1 / 2.SELECTED DRAWING: None
Need to check novelty before this filing date? Find Prior Art

Description

[Technical field]

[0001] The present invention relates to an aqueous inkjet ink used for printing on a shrink film, and a printed matter obtained by printing on the shrink film using the aqueous inkjet ink. [Background technology]

[0002] Unlike plate-based printing, digital printing does not require printing plates. Therefore, the adoption of digital printing makes it possible to miniaturize printing equipment and reduce costs. Inkjet printing, which is one type of digital printing, has the above-mentioned characteristics as well as the advantages of low noise from the printing equipment and ease of colorization, and is increasingly being used not only for office and home use but also for industrial use.

[0003] Until now, solvent inks and UV-curable inks have been used when using inkjet printing methods for industrial purposes, but in recent years, the demand for water-based inks has increased from the perspectives of worker safety and health, as well as environmental considerations.

[0004] In this application, the water-based ink used in the ink-jet printing method is simply referred to as "water-based ink-jet ink."

[0005] Incidentally, shrink films exist as printing substrates used in the above industrial applications. Shrink films are resin films that shrink when heated. Shrink films are mainly used for packaging applications because they can be attached to objects regardless of their shape, do not impair the design of the object, and are easy to peel off from containers, improving the recyclability of the object. When a printed matter on a shrink film (shrink film printed matter) is used for packaging applications, the shrink film printed matter is shrunk after printing on the shrink film and is attached to the object to be shrunk (packaged item).

[0006] In this application, the term "printed matter" refers to a laminate of a shrink film, a layer of aqueous inkjet ink (ink layer), and, when used in combination, a layer (ink aggregation layer) formed by a pretreatment liquid (details of which will be described later). The ink layer included in the printed matter may be an ink layer consisting of multiple layers formed by, for example, multiple types of aqueous inkjet inks (a set of aqueous inkjet inks, which will be described later).

[0007] As described above, when using a shrink film, printing is performed before the shrink film is shrunk. In other words, the ink layer on the shrink film also shrinks with the shrinking. Therefore, if the ink layer cannot follow the shrinking, problems such as wrinkles, cracks, breaks, etc. may occur in the ink layer, and the degree of shrinking may become uneven.

[0008] In addition, shrink films are a type of resin film substrate, and when printing water-based inkjet ink on such a substrate, the ink droplets tend to coalesce and bleed, because the liquid components do not permeate into the substrate and dry.

[0009] Therefore, when printing on shrink film with aqueous inkjet ink, it is necessary to ensure the ink can adapt to deformations such as shrinkage, and to produce printed matter that is free of bleeding and has excellent print quality.

[0010] However, little research has been done on printing on shrink films with water-based inkjet inks. For example, Patent Document 1 relates to an aqueous composition for inkjet recording, which contains a blocked isocyanate and a carbodiimide compound and / or an oxazoline compound. It also states that the aqueous composition is used in combination with an aqueous ink for inkjet recording containing a pigment (corresponding to the "aqueous inkjet ink" in the present application) (paragraphs 0010, 0041, etc.). Furthermore, in the examples of Patent Document 1, in addition to the pigment and water, an aqueous ink containing a resin (polymer particles); organic solvents propylene glycol (1,2-propanediol), diethylene glycol mono(normal)butyl ether, and N-methyldiethanolamine; and a surfactant alkylene glycol-modified polydimethylsiloxane is actually produced (paragraphs 0084-0094, Table 4). Then, the aqueous ink and the aqueous composition are combined and printed on a shrink PET film (paragraphs 0099-0101).

[0011] On the other hand, Patent Document 1 does not provide any specific description of surfactants that may be included in the water-based ink. That is, Patent Document 1 merely lists "surfactant" as one of the optional components (paragraph number 0063). As described above, the water-based ink described in Patent Document 1 is intended to be used in combination with the above-mentioned aqueous composition. Therefore, Patent Document 1 does not provide any description as to whether or not the above-mentioned printed matter having excellent deformation conformability and suppressed bleeding can be obtained when the water-based ink alone is printed on a shrink film. In fact, the present inventors prepared and evaluated a water-based inkjet ink that mimics the organic solvent and surfactant used in the specific example of the water-based ink, and found that the printed matter had insufficient deformation conformability (see the examples described below for details).

[0012] In addition, Patent Document 2 discloses a compound having a solubility parameter (SP value) of 8 to 13 (cal / cm 3 ) 1 / 2The present invention relates to a shrink film for inkjet recording, which is produced by melting a resin, extruding the resin onto a cooling drum to produce an unstretched sheet, and then stretching the sheet. In the examples of Patent Document 2, black ink B (corresponding to "aqueous inkjet ink" in the present application) containing carbon black, water, acrylic resin, and organic solvents such as glycerin, ethylene glycol, N-methylpyrrolidone, and isopropyl alcohol is produced and used for printing on various shrink films (paragraphs 0058-0070, 0072-0074, Table 2).

[0013] On the other hand, as is clear from Table 2 and paragraph number 0072, black ink B is used as a comparative example in Patent Document 2. In fact, in Table 2, there is not a single example that reaches a practical level in the evaluation of "heat resistance of image" (which can be said to be an item similar to deformation followability in the present application based on the description of paragraph numbers 0069 to 0070). Furthermore, Patent Document 2 does not include any specific description regarding the composition of the aqueous inkjet ink. In other words, Patent Document 2 does not describe or suggest what kind of composition of aqueous inkjet ink ensures followability to deformation and produces printed matter without bleeding. [Prior art documents] [Patent documents]

[0014] [Patent Document 1] JP 2019-189867 A [Patent Document 2] JP 2003-246136 A Summary of the Invention [Problem to be solved by the invention]

[0015] As described above, there has been little research conducted to date into aqueous inkjet inks that have good deformation conformability, can produce printed matter without bleeding, and also have excellent ejection stability, which is an essential requirement for use in inkjet printing methods.

[0016] Therefore, in one embodiment of the present invention, it is an object of the present invention to provide an aqueous inkjet ink that has good conformability to deformation of the shrink film due to shrinkage, can produce printed matter without bleeding, and has good ejection stability. In another embodiment of the present invention, it is an object of the present invention to provide an aqueous inkjet ink that can produce printed matter with excellent recyclability in addition to the above-mentioned characteristics. [Means for solving the problem]

[0017] As a result of intensive research, the present inventors have found that an aqueous inkjet ink having the following composition can simultaneously solve all of the above-mentioned problems to a high degree.

[0018] That is, one embodiment of the present invention relates to the aqueous inkjet inks shown in [1] to [3] below, and to a printed matter produced using the aqueous inkjet inks shown in [4] below. [1] A water-based inkjet ink for shrink films, comprising an organic solvent, a surfactant, and a resin, The organic solvent has an SP value of 11 to 13.5 (cal / cm 3 ) 1 / 2 The aqueous inkjet ink contains an organic solvent (A-1) having one or more hydroxyl groups in an amount of 5 to 30 mass % based on the total amount of the aqueous inkjet ink. the surfactant comprises one or more surfactants (B-1) selected from the group consisting of acetylene diol surfactants and polyoxyalkylene alkyl ether surfactants, The weighted average SP value of the resin and the surfactant is 9 to 11.5 (cal / cm 3 ) 1 / 2This is a water-based inkjet ink for shrink film. [2] The aqueous inkjet ink for shrink films according to [1], wherein the one or more surfactants (B-1) selected from the group consisting of acetylene diol surfactants and polyoxyalkylene alkyl ether surfactants include a surfactant (B-1-1) having an HLB value of 3 to 12. [3] The water-based inkjet ink for shrink films according to [1] or [2], wherein the boiling point (weighted average value) of the organic solvent at 1 atmospheric pressure is 150 to 190°C. [4] A printed matter obtained by printing the aqueous inkjet ink according to [1] or [2] on a shrink film by an inkjet printing method. Effect of the Invention

[0019] The aqueous inkjet ink according to one embodiment of the present invention has the advantage that it has good adaptability to deformation of the shrink film caused by shrinkage, etc., can produce printed matter without bleeding, and also has good ejection stability. In addition to the above-mentioned characteristics, the aqueous inkjet ink according to another embodiment of the present invention has the advantage that it can produce printed matter with excellent recyclability. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0020] An aqueous inkjet ink according to one embodiment of the present invention (hereinafter, simply referred to as "aqueous inkjet ink of this embodiment") will be described below. Note that the present invention is not limited to the embodiment described below, and includes embodiments that can be modified without changing the essential parts of the present invention.

[0021] As described above, the aqueous inkjet ink of the present embodiment is used for shrink films. As described above, shrink film prints are produced by shrinking the shrink film, which is the printing substrate, after printing. Therefore, the ink layer is required to be able to follow the above deformation without causing wrinkles, cracks, or breaks. In order to achieve the above-mentioned following, it is necessary that an ink layer having a uniform thickness is obtained for the shrink film, which is the printing substrate, that the aqueous inkjet ink sufficiently wets and spreads on the shrink film, and that the ink layer has affinity and adhesion to the shrink film.

[0022]

[0023] Therefore, the present inventors have conducted intensive research and have found that the above-mentioned problems can be solved by the aqueous inkjet ink of the present embodiment having the above-mentioned configuration, and further, that the aqueous inkjet ink is excellent in suppressing bleeding of printed matter and in ejection stability. The mechanism of the present invention will be explained below, but this is merely a speculation made by the present inventors, and the present invention should not be interpreted as being limited by the mechanism shown below.

[0023] First, the water-based inkjet ink of the present embodiment has an SP value of 11 to 13.5 (cal / cm 3 ) 1 / 2 and the aqueous inkjet ink contains an organic solvent (A-1) having one or more hydroxyl groups in an amount of 5 to 30% by mass based on the total amount of the aqueous inkjet ink. In general, organic solvents contained in aqueous inkjet inks are used for the purpose of adjusting drying properties (wettability), surface tension, and the like. On the other hand, the resin constituting the shrink film has poor affinity with water, which is the main component of the aqueous inkjet ink of this embodiment, and unlike paper substrates, the aqueous inkjet ink does not penetrate into it at all. Therefore, in the aqueous inkjet ink of this embodiment, the SP value of the organic solvent (A-1) is set to 11 to 13.5 (cal / cm 3 ) 1 / 2This improves the affinity between the aqueous inkjet ink and the resin constituting the shrink film, and also contributes to optimizing the surface tension of the aqueous inkjet ink. Furthermore, the use of a compound having a hydroxyl group as the organic solvent (A-1) ensures affinity with water. The use of a certain amount of the organic solvent (A-1) ensures the above-mentioned effects. In this way, the use of the organic solvent (A-1) achieves uniformity in the thickness of the ink layer, ensures the wetting and spreading of the aqueous inkjet ink on the shrink film, and ensures affinity with the shrink film.

[0024] Furthermore, the presence of the organic solvent (A-1) ensures the wettability of the aqueous inkjet ink, improving the ejection stability.

[0025] The aqueous inkjet ink of the present embodiment also contains one or more surfactants (B-1) selected from the group consisting of acetylene diol surfactants and polyoxyalkylene alkyl ether surfactants. As described later, in addition to the above-mentioned surfactants, siloxane surfactants, fluorine surfactants, etc. are known as surfactants used in aqueous inkjet inks. On the other hand, silicon (Si) atoms present in the siloxane surfactants and fluorine (F) atoms present in the fluorine surfactants may have hydrophobic properties, and excessive use of these may adversely affect the uniformity of the thickness of the resulting ink layer, as well as the affinity and adhesion to the shrink film. In contrast, the acetylene diol surfactants and polyoxyalkylene alkyl ether surfactants used in the aqueous inkjet ink of the present embodiment are considered to have a high affinity with the resin constituting the shrink film, since carbon atoms, oxygen atoms, and hydrogen atoms account for the majority of the molecular structure. In addition, both of these surfactants have hydroxyl groups and can form OH-π interactions and hydrogen bonds with the resin constituting the shrink film, which is considered to contribute to improving the adhesion of the ink layer. Furthermore, since the acetylene diol surfactant and the polyoxyalkylene alkyl ether surfactant have excellent affinity with the organic solvent (A-1), they can be uniformly present in the aqueous inkjet ink, and since they also have high orientation to the interface, they are essential materials for the uniform wetting and spreading of the aqueous inkjet ink. After the ink layer is formed, the surfactant after orientation remains in large amounts on the surface, so it is considered that the above-mentioned improvement in affinity and adhesion is easily achieved. In this way, it is considered that the surfactant (B-1) contributes to all of the above-mentioned requirements for following the deformation of the shrink film.

[0026] The above-mentioned interactions such as OH-π interactions and hydrogen bonds can of course occur between the molecules of the surfactant (B-1). As described above, the surfactant (B-1) has a high orientation to the interface, so it is considered that after the aqueous inkjet ink is applied to the printing substrate, the surfactant (B-1) quickly orients to the interface. As a result, it is considered that coalescence with adjacent aqueous inkjet inks is suppressed, and bleeding in the printed matter is suppressed.

[0027] On the other hand, it is considered that the above-mentioned interaction and orientation to the interface (nozzle orifice) may occur even in the aqueous inkjet ink present in the inkjet head, which may cause the ejection stability to deteriorate. However, in the inkjet head, the aqueous inkjet ink flows out due to ejection and flows in from the ink tank (container), and unlike when the aqueous inkjet ink is present on the printing substrate, the aqueous inkjet ink is often in a state of flow. As a result, it is considered that the interaction and affinity with water and the organic solvent (A-1) occurs more predominantly than the above-mentioned interaction and orientation to the interface. In addition, it is considered that this predominant interaction optimizes the viscoelasticity of the aqueous inkjet ink as a whole, improving the ejection stability.

[0028] Furthermore, in the aqueous inkjet ink of this embodiment, the weighted average SP value of the resin and surfactant contained therein is 9 to 11.5 (cal / cm 3 ) 1 / 2 The resin and surfactant are components that remain in the ink layer. Therefore, by setting the SP values ​​of these components within the above ranges, affinity with the resin that constitutes the shrink film is ensured, as in the case of the organic solvent (A-1) described above.

[0029] In order to ensure the affinity between the resin constituting the shrink film and the ink layer and to obtain printed matter with excellent deformation conformability regardless of the type of resin, the weighted average SP value of the above resin and surfactant is set to 9.3 to 11.2 (cal / cm 3 ) 1 / 2 It is preferable that the calorific value is 9.6 to 11.0 (cal / cm3 ) 1 / 2 It is particularly preferred that:

[0030] As described above, the configuration of the water-based inkjet ink of this embodiment is essential to solving the problems of the present invention described above.

[0031] Next, each component constituting the aqueous inkjet ink according to one embodiment of the present invention will be described in detail below.

[0032] <Organic solvent> The aqueous inkjet ink of this embodiment contains an organic solvent. As described above, the organic solvent has an SP value of 11 to 13.5 (cal / cm 3 ) 1 / 2 The aqueous inkjet ink contains an organic solvent (A-1) having one or more hydroxyl groups in an amount of 5 to 30 mass % based on the total amount of the aqueous inkjet ink. The organic solvent may contain an organic compound that has low solubility in water. However, it is preferable to use a water-soluble organic solvent, since ensuring the above-mentioned affinity with water makes it easier to improve the wetting and spreading of the aqueous inkjet ink and to make the thickness of the obtained ink layer uniform, thereby improving the deformation followability of the ink layer.

[0033] In this application, "organic solvent" refers to an organic compound that is liquid at 25°C, and "water-soluble organic solvent" refers to an organic compound that has a solubility of 1 mass % or more in water at 25°C.

[0034] In addition, the "SP value" in this application is an abbreviation for "Solubility Parameter." Known methods for determining the SP value include a method of calculating from the physical property values ​​of the compound, a method of calculating from the molecular structure, and a method of actually measuring by experiment. In this application, the value calculated by Fedor's estimation method, which is represented by the following formula 1, is used as the SP value. The unit of the SP value is (cal / cm 3 ) 1 / 2 Use.

[0035] Formula 1: (SP value)=(ΣEcoh / ΣV) 1 / 2

[0036] In the above formula 1, Ecoh represents the cohesive energy determined for each functional group, and V represents the molar volume determined for each functional group. The Ecoh and V are described in RF Fedors, "Polymer Engineering & Science" (Vol. 14, No. 2, 1974, pp. 147-154).

[0037] <SP value is 11 to 13.5 (cal / cm 3 ) 1 / 2 and an organic solvent (A-1) having one or more hydroxyl groups. Examples of the organic solvent (A-1) include 1,2-propanediol (13.5, 188°C), 1,2-butanediol (12.8, 193°C), 1,3-butanediol (12.8, 208°C), 1,4-butanediol (12.9, 230°C), 2,3-butanediol (12.5, 182°C), 1,2-pentanediol (12.2, 210°C), 1,5-pentanediol (12.4, 239°C), 2,4-pentanediol (12.0, 198°C), Alkanediols such as 1,2-hexanediol (11.8, 223°C), 2,5-hexanediol (11.6, 218°C), 2-methyl-1,3-propanediol (12.8, 213°C), 3-methyl-1,3-butanediol (12.1, 203°C), 3-methyl-1,5-pentanediol (11.8, 250°C), 2-methyl-1,3-pentanediol (11.6, 218°C), and 2-methyl-2,4-pentanediol (11.5, 198°C); Polyalkylene glycols such as diethylene glycol (13.0, 244°C), triethylene glycol (12.1, 287°C), tetraethylene glycol (11.6, 314°C), and dipropylene glycol (11.7, 231°C); (Poly)alkylene glycol monoalkyl ethers such as ethylene glycol monomethyl ether (12.0, 125°C), ethylene glycol monoethyl ether (11.5, 136°C), diethylene glycol monomethyl ether (11.2, 193°C), and propylene glycol monomethyl ether (11.3, 121°C); Monoalkyl alcohols such as ethanol (12.6, 78°C), normal propanol (11.8, 97°C), isopropanol (11.6, 83°C), normal butanol (11.3, 117°C), and 2-butanol (11.1, 100°C); Alkanolamines such as dimethylethanolamine (11.3, 135°C), N-methylethanolamine (12.5, 156°C), N-methyldiethanolamine (12.3, 247°C), 1-amino-2-propanol (12.6, 159°C), 3-amino-1-propanol (13.3, 188°C), and 2-aminoisobutanol (12.2, 166°C); These compounds may be used alone or in combination of two or more. The values ​​in parentheses above are the SP values ​​of each compound (unit: (cal / cm 3 ) 1 / 2 ), and the boiling point at 1 atmospheric pressure. In addition, the term "(poly)alkylene glycol" in this application refers to at least one selected from the group consisting of "alkylene glycol" and "polyalkylene glycol".

[0038] In the aqueous inkjet ink of this embodiment, a compound having two or more hydroxyl groups can be suitably used as the organic solvent (A-1). The more hydroxyl groups there are, the higher the affinity with water, which is the main component of the aqueous inkjet ink, and therefore the better the wetting and spreading of the aqueous inkjet ink and the easier it is to make the thickness of the resulting ink layer uniform, thereby improving the deformation followability of the ink layer.

[0039] In addition, the difference between the SP value of the organic solvent (A-1) and the SP value of the resin constituting the shrink film used to produce the printed matter is set to 1.3 (cal / cm) from the viewpoint that the affinity with the resin constituting the shrink film is increased and the wetting and spreading of the aqueous inkjet ink and the affinity with the shrink film are improved, thereby improving the deformation conformability of the resulting ink layer. 3 ) 1 / 2 It is preferable that the calorie content is 1.0 (cal / cm 3 ) 1 / 2 It is particularly preferable that the SP value is equal to or less than 13.2 (cal / cm2). When a film in which different types of resins are laminated is used as the shrink film, the SP value of the resin constituting the surface that comes into contact with the water-based inkjet ink is used as the SP value of the resin. For example, when the resin constituting the shrink film is polyethylene terephthalate (SP value: 13.2 (cal / cm2) 3 ) 1 / 2 ), the SP value of the organic solvent (A-1) is 11.9 to 13.5 (cal / cm 3 ) 1 / 2 It is preferable to use a compound having a molecular weight of 12.2 to 13.5 (cal / cm 3 ) 1 / 2 It is particularly preferable to use a compound having the formula: 3 ) 1 / 2 ), the SP value of the organic solvent (A-1) is 11 to 11.9 (cal / cm 3 ) 1 / 2 It is more preferable to use a compound having a molecular weight of 11 to 11.6 (cal / cm 3 ) 1 / 2 It is particularly preferred to use compounds in which When the aqueous inkjet ink contains two or more organic solvents (A-1), it is preferable that one or more of the organic solvents (A-1) satisfy the above-mentioned requirement for the difference in SP value from the resin constituting the shrink film, and it is particularly preferable that all of the organic solvents (A-1) contained in the aqueous inkjet ink satisfy the above-mentioned requirement for the difference in SP value.

[0040] In particular, from the viewpoint of improving the deformation conformability of printed matter, regardless of the type of resin constituting the shrink film, the aqueous inkjet ink of this embodiment uses an organic solvent (A-1) having an SP value of 12.0 to 13.5 (cal / cm 3 ) 1 / 2 Compounds with SP values ​​between 11 and 11.9 (cal / cm 3 ) 1 / 2 It is highly preferable to use the compound in combination with

[0041] Furthermore, in consideration of both suppressing bleeding of the resulting printed matter and improving the ejection stability, the boiling point of the organic solvent (A-1) under atmospheric pressure is preferably 120 to 210°C, and particularly preferably 120 to 200°C.

[0042] The content of the organic solvent (A-1) in the aqueous inkjet ink of this embodiment is 5 to 30 mass % of the total amount of the aqueous inkjet ink, preferably 8 to 27 mass %, and particularly preferably 10 to 25 mass %. By setting the content of the organic solvent (A-1) within the above range, the affinity between the aqueous inkjet ink containing the organic solvent (A-1) and the resin constituting the shrink film becomes good, and the deformation followability of the printed matter is improved. In addition, the above content range is preferably selected from the viewpoint of improving the ejection stability of the aqueous inkjet ink.

[0043] Other organic solvents The aqueous inkjet ink of this embodiment may contain organic solvents other than the organic solvent (A-1) (referred to as "other organic solvents" in this application). However, the content of the other organic solvents is preferably to an extent that does not inhibit the action of the organic solvent (A-1) described above. Specifically, the content of the other organic solvents is preferably 50% by mass or less (may be 0% by mass) of the total amount of organic solvents contained in the aqueous inkjet ink of this embodiment, more preferably 35% by mass or less (may be 0% by mass), and particularly preferably 20% by mass or less (may be 0% by mass).

[0044] Other compounds that can be used as the organic solvent include, for example, alkanediols such as 1,2-ethanediol (ethylene glycol) and 1,3-propanediol; Polyalkylene glycols such as tripropylene glycol; Alkanetriols such as glycerin, 1,2,4-butanetriol, and 1,2,6-hexanetriol; (Poly)alkylene glycol monoalkyl ethers such as ethylene glycol monobutyl ether, diethylene glycol monoethyl ether, diethylene glycol mononormal propyl ether, diethylene glycol monoisopropyl ether, diethylene glycol mononormal butyl ether, diethylene glycol monoisobutyl ether, triethylene glycol monomethyl ether, triethylene glycol monoethyl ether, triethylene glycol mononormal propyl ether, triethylene glycol mononormal butyl ether, triethylene glycol monoisobutyl ether, tetraethylene glycol monomethyl ether, tetraethylene glycol monoethyl ether, propylene glycol monoethyl ether, propylene glycol mononormal propyl ether, propylene glycol mononormal butyl ether, dipropylene glycol monomethyl ether, dipropylene glycol monoethyl ether, dipropylene glycol mononormal propyl ether, dipropylene glycol mononormal butyl ether, tripropylene glycol monomethyl ether, tripropylene glycol monoethyl ether, tripropylene glycol mononormal propyl ether, tripropylene glycol mononormal butyl ether, butylene glycol monomethyl ether (3-methoxy-1-butanol); (poly)alkylene glycol dialkyl ethers such as ethylene glycol diethyl ether, diethylene glycol dimethyl ether, diethylene glycol ethyl methyl ether, diethylene glycol diethyl ether, diethylene glycol isopropyl methyl ether, diethylene glycol butyl methyl ether, triethylene glycol dimethyl ether, triethylene glycol butyl methyl ether, and tetraethylene glycol dimethyl ether; Monoalkyl alcohols such as tert-butanol; Alkanolamines such as triethanolamine; Lactams such as 2-pyrrolidone, N-methyl-2-pyrrolidone, N-ethyl-2-pyrrolidone, 1-(2-hydroxymethyl)-2-pyrrolidone, 1-(2-hydroxyethyl)-2-pyrrolidone, N-vinyl-2-pyrrolidone, 2-piperidone (δ-valerolactam), N-methyl-2-piperidone, N-vinyl-2-piperidone, ε-caprolactam, and N-vinyl-ε-caprolactam; These compounds may be used alone or in combination of two or more.

[0045] In one embodiment, when the aqueous inkjet ink of the present embodiment contains another organic solvent, the SP value is 10 (cal / cm 3 ) 1 / 2 More than 11(cal / cm 3 ) 1 / 2 It is preferable to use an organic solvent (A-2) having a viscosity of less than 1000 nm and having one or more hydroxyl groups. By using a certain amount of the organic solvent (A-2) in the presence of the organic solvent (A-1), the affinity between the aqueous inkjet ink and the resin constituting the shrink film is significantly improved, and the printed matter has good deformation conformability regardless of the type of resin constituting the shrink film.

[0046] Among the other organic solvents listed above, compounds which belong to the organic solvent (A-2) and can be preferably used as the organic solvent (A-2) include, for example, ethylene glycol monobutyl ether (10.8, 171°C), diethylene glycol monoethyl ether (10.9, 196°C), diethylene glycol mono-n-propyl ether (10.7, 214°C), diethylene glycol mono-isopropyl ether (10.7, 214°C), diethylene glycol mono-n-butyl ether (10.5, 231°C), diethylene glycol mono-isobutyl ether (10.4 , 217°C), propylene glycol monoethyl ether (10.9, 133°C), propylene glycol mono-normal propyl ether (10.7, 150°C), propylene glycol mono-normal butyl ether (10.4, 170°C), dipropylene glycol monomethyl ether (10.4, 188°C), dipropylene glycol monoethyl ether (10.3, 198°C), dipropylene glycol mono-normal propyl ether (10.1, 212°C), butylene glycol monomethyl ether (10.9, 158°C), and other (poly)alkylene glycol monoalkyl ethers; Monoalkyl alcohols such as tert-butanol (10.9, 83°C); These compounds may be used alone or in combination of two or more. The values ​​in parentheses above are the SP values ​​of each compound (unit: (cal / cm 3 ) 1 / 2 ) and the boiling point at 1 atmosphere.

[0047] In particular, in consideration of both suppressing bleeding in the resulting printed matter and improving the ejection stability, the boiling point of the organic solvent (A-2) at 1 atmospheric pressure is preferably 135 to 235°C, and particularly preferably 170 to 215°C.

[0048] From the viewpoint that the effect of the organic solvent (A-2) is suitably exerted, a printed matter having excellent deformation tracking ability is obtained, and an aqueous inkjet ink having excellent ejection stability is obtained, the content of the organic solvent (A-2) is preferably 50 mass % or more (or may be 100 mass %) of the total amount of other organic solvents contained in the aqueous inkjet ink of this embodiment, more preferably 75 mass % or more (or may be 100 mass %), and particularly preferably 90 mass % or more (or may be 100 mass %).

[0049] The organic solvent contained in the aqueous inkjet ink of this embodiment preferably has a boiling point (weighted average) at 1 atmospheric pressure of 150 to 190° C., more preferably 155 to 180° C. By setting the boiling point (weighted average) of the organic solvent within the above range, a printed matter without bleeding can be obtained and the ejection stability is improved. In addition, since the aqueous inkjet ink does not dry before the ink layer is sufficiently formed, or a part of the organic solvent does not remain after the ink layer is formed, a printed matter with excellent deformation followability can be produced regardless of the type of resin constituting the shrink film.

[0050] In this application, the term "boiling point (weighted average value) of an organic solvent" refers to the boiling point of the organic solvent when only one type of organic solvent is contained in the aqueous inkjet ink, and refers to the weighted average value of the boiling points of the two or more organic solvents when two or more types of organic solvents are contained. The weighted average value of the boiling points at 1 atmosphere is a value obtained by adding together the product of the boiling points at 1 atmosphere calculated for each organic solvent and the mass ratio of the organic solvent to the total content.

[0051] The total amount of organic solvents contained in the aqueous inkjet ink of this embodiment is preferably 5 to 45 mass % of the total amount of the aqueous inkjet ink, more preferably 8 to 36 mass %, and particularly preferably 10 to 30 mass %. By keeping the total amount of organic solvents within the above range, it is possible to obtain a printed matter that has excellent deformation followability and suppresses bleeding, and the ejection stability of the aqueous inkjet ink is also improved.

[0052] <Surfactant> The aqueous inkjet ink of this embodiment contains a surfactant. As described above, the surfactant contains one or more surfactants (B-1) selected from the group consisting of acetylene diol surfactants and polyoxyalkylene alkyl ether surfactants.

[0053] In one embodiment, the surfactant (B-1) preferably includes a surfactant (B-1-1) having an HLB value of 3 to 12. The surfactant (B-1-1) having an HLB value of 3 to 12 has excellent affinity with the organic solvent (A-1) and also has high orientation to the interface, so that it contributes favorably to uniform wetting and spreading of the aqueous inkjet ink and improvement of affinity with the resin constituting the shrink film. As a result, the deformation followability of a printed matter produced using the aqueous inkjet ink is improved, and bleeding in the printed matter is also suppressed.

[0054] From the viewpoint of obtaining a printed matter having excellent deformation conformability and bleeding suppression properties by suitably exerting the above-mentioned effects, when an acetylene diol surfactant, which is a compound having two hydroxyl groups, is used as the surfactant (B-1-1) having an HLB value of 3 to 12, the HLB value is more preferably 3 to 10, and particularly preferably 4 to 9. From the same viewpoint, when a polyoxyalkylene alkyl ether surfactant, which is a compound having one hydroxyl group, is used as the surfactant (B-1-1) having an HLB value of 3 to 12, the HLB value is more preferably 6 to 12, and particularly preferably 9 to 12.

[0055] In this application, the "HLB (Hydrophilic-Lipophilic Balance) value" is one of the parameters that indicate the degree of hydrophilicity and hydrophobicity of a material. The smaller the HLB value, the more hydrophobic the material is, and the larger the HLB value, the more hydrophilic the material is. Known methods for determining the HLB value include a method of measuring it experimentally and a method of calculating it from the molecular structure, and the methods of calculating it from the molecular structure include the Griffin method, the Davis method, and the Kawakami method. In this application, the value calculated by the Griffin method, which is represented by the following formula 2, is used as the HLB value.

[0056] Formula 2: (HLB value) = 20 × (sum of molecular weights of hydrophilic parts) ÷ (molecular weight of material)

[0057] In one embodiment, the aqueous inkjet ink of the present embodiment preferably contains, as the surfactant (B-1), a surfactant (B-1-1) having an HLB value of 3 to 12 and a surfactant (B-1-2) having an HLB value of more than 12 and not more than 20. As described above, the surfactant (B-1-1) having an HLB value of 3 to 12 has excellent affinity with the organic solvent (A-1) and also has high orientation to the interface. In contrast, the surfactant (B-1-2) having an HLB value of more than 12 and not more than 20 has particularly excellent affinity with water, which is the main component of the aqueous inkjet ink. Therefore, for example, the orientation of the surfactant (B-1-1) having an HLB value of 3 to 12 in the inkjet head can be suppressed, and as a result, an aqueous inkjet ink with excellent ejection stability can be obtained. In addition, the combined use of the surfactant (B-1-1) and the surfactant (B-1-2) is preferable in terms of suppressing bleeding of the printed matter. Furthermore, the aqueous inkjet ink of the present embodiment contains a surfactant (B-1-2) in addition to the surfactant (B-1-1), and thus the affinity with a basic solution described below is improved, and the ink layer produced using the aqueous inkjet ink is easily detached from the shrink film, which makes it easier to recycle the shrink film.

[0058] The content of one or more surfactants (B-1) selected from the group consisting of acetylene diol surfactants and polyoxyalkylene alkyl ether surfactants in the aqueous inkjet ink of this embodiment is, from the viewpoint of improving the wetting and spreading properties and ejection stability of the aqueous inkjet ink, the affinity and adhesion between the ink layer and the resin constituting the shrink film, and the recyclability of the printed matter, preferably from 0.2 to 3.0 mass %, more preferably from 0.5 to 2.5 mass %, and particularly preferably from 0.7 to 2.0 mass %, of the total amount of the aqueous inkjet ink.

[0059] <Acetylene diol surfactant> Examples of the acetylene diol surfactant include 2,3,6,7-tetramethyl-4-octene-3,6-diol, 2,4,7,9-tetramethyl-5-decyne-4,7-diol, 2,5,8,11-tetramethyl-6-dodecyne-5,8-diol, 2,5-dimethyl-hex-3-yne-2,5-diol, 3,6-dimethyl-oct-4-yne-3,6-diol, 6,9-dimethyl-tetradec-7-yne-6,9-diol, 7,10-dimethylhexadec-8-yne-7,10-diol, and the oxyethylene and / or oxypropylene adducts of these compounds.Furthermore, the compounds produced by the methods described in JP-A-2001-215690 and JP-A-2002-356451 can also be used as the acetylene diol surfactant. The above compounds may be used alone or in combination of two or more.

[0060] Among these compounds, from the viewpoint of improving the affinity and adhesion between the resulting printed matter and the shrink film, resulting in improved deformation conformability of the printed matter, and from the viewpoint of excellent orientation at the interface, when an acetylene diol surfactant is used as the surfactant (B-1), 2,4,7,9-tetramethyl-5-decyne-4,7-diol, 2,5,8,11-tetramethyl-6-dodecyne-5,8-diol, and oxyethylene and / or oxypropylene adducts of these compounds can be preferably used.

[0061] In one embodiment, when the resin constituting the shrink film has an aromatic ring structure (for example, when the resin is a polyethylene terephthalate or polystyrene resin) and an acetylenic diol surfactant is used as the surfactant (B-1), it is preferable to use a compound having an oxyethylene group and / or an oxypropylene group as the acetylenic diol surfactant. Although the detailed reason is unclear, this is because the hydrogen atom bonded to the carbon atom adjacent to the oxygen atom present in the oxyethylene group and / or the oxypropylene group interacts (CH-π interaction) with the aromatic ring structure present in the resin structure constituting the shrink film, improving the affinity and adhesion to the shrink film, resulting in a printed matter with excellent deformation followability.

[0062] From the above-mentioned viewpoints, that is, that the viscoelasticity of the aqueous inkjet ink is optimized and the ejection stability is improved, and that the recyclability of printed matter is improved, when an acetylenic diol surfactant is used as the surfactant (B-1), the number of moles of oxyethylene groups and / or oxypropylene groups added in the acetylenic diol surfactant molecule is preferably 1 to 10 moles, and particularly preferably 3 to 8 moles.

[0063] In particular, when an acetylenic diol surfactant is used as the surfactant (B-1-1) having an HLB value of 3 to 12, from the viewpoint of satisfying both the above-mentioned HLB value range and the range of the number of moles of oxyethylene groups and / or oxypropylene groups added, it is extremely preferable to use, as the acetylenic diol surfactant, one or more compounds selected from the group consisting of oxyethylene and oxypropylene adducts of 2,4,7,9-tetramethyl-5-decyne-4,7-diol, oxyethylene adducts of 2,5,8,11-tetramethyl-6-dodecyne-5,8-diol, and oxyethylene and oxypropylene adducts of 2,5,8,11-tetramethyl-6-dodecyne-5,8-diol.

[0064] <Polyoxyalkylene alkyl ether surfactant> On the other hand, as the polyoxyalkylene alkyl ether surfactant, a compound represented by the following general formula 3 can be used.

[0065] General formula 3: R 1 -O-(R 2 -O) n -H

[0066] In the above general formula 3, R 1 represents an optionally branched alkyl group having 8 to 18 carbon atoms or an alkenyl group having 8 to 18 carbon atoms; R 2 represents an optionally branched alkylene group having 2 or 3 carbon atoms, and n represents an integer of 2 to 100.

[0067] Unlike acetylene diol surfactants, polyoxyalkylene alkyl ether surfactants have only one hydroxyl group. Therefore, in order to ensure the hydrophilicity of the polyoxyalkylene alkyl ether surfactant, R 2is an ethylene group, that is, it is preferable to use polyoxyethylene alkyl ether as the polyoxyalkylene alkyl ether surfactant. By using a highly hydrophilic polyoxyethylene alkyl ether, the affinity with the organic solvent (A-1) is improved, and it becomes easy to make the thickness of the ink layer uniform and to improve the affinity with the shrink film. As a result, the deformation followability of the printed matter is improved.

[0068] In addition, when the resin constituting the shrink film has an aromatic ring structure (for example, when the resin is a polyethylene terephthalate or polystyrene resin) and a polyoxyalkylene alkyl ether surfactant is used as the surfactant (B-1), the number of oxyethylene groups and / or oxypropylene groups (the value of n in the above general formula 3) contained in the polyoxyalkylene alkyl ether surfactant is preferably 4 to 50, more preferably 5 to 30, and particularly preferably 5 to 20. Although it is speculated, the reason why the preferred number of oxyethylene groups and / or oxypropylene groups present in one molecule is greater than that of the above-mentioned acetylenic diol surfactant is that a polyoxyalkylene alkyl ether surfactant having only one hydroxyl group has fewer hydrogen bonds resulting from the hydroxyl group than an acetylenic diol surfactant having two hydroxyl groups, and it is necessary to increase the amount of CH-π interactions in order to improve the affinity with the shrink film.

[0069] Furthermore, from the viewpoint of improving the affinity and adhesion with the resin constituting the shrink film, as well as the orientation at the interface, improving the ability of the printed matter to conform to deformation, and facilitating the suppression of bleeding, it is preferable to use an alkyl group (R 1 ) is preferably an optionally branched alkyl group having 10 to 18 carbon atoms or an optionally branched alkenyl group having 10 to 18 carbon atoms, and particularly preferably an optionally branched alkyl group having 12 to 18 carbon atoms or an optionally branched alkenyl group having 12 to 18 carbon atoms.

[0070] Other Surfactants The aqueous inkjet ink of this embodiment may contain surfactants other than the surfactant (B-1) (referred to as "other surfactants" in this application). However, the content of the other surfactants is preferably to an extent that does not inhibit the action of the surfactant (B-1) described above. Specifically, the content of the other surfactants is preferably 70% by mass or less (may be 0% by mass) of the total amount of surfactants contained in the aqueous inkjet ink of this embodiment, more preferably 65% ​​by mass or less (may be 0% by mass), and particularly preferably 50% by mass or less (may be 0% by mass).

[0071] As the other surfactant, an acetylene monool surfactant, a siloxane surfactant, a fluorine surfactant, etc., can be used. These other surfactants may be used alone or in combination of two or more kinds.

[0072] In one embodiment, from the viewpoint of obtaining a printed matter without bleeding, it is preferable to use a siloxane-based surfactant as the other surfactant. In addition, from the viewpoint of not adversely affecting the deformation conformability of the printed matter because it has high affinity with the surfactant (B-1) and the organic solvent (A-1), and contributes to improving the wet spread of the aqueous inkjet ink and the affinity between the ink layer and the resin constituting the shrink film, it is preferable to use a polyether-modified siloxane-based surfactant as the siloxane-based surfactant, and it is more preferable to use a polyether-modified siloxane-based surfactant having an oxyethylene group as the polyether-modified siloxane-based surfactant.

[0073] In the aqueous inkjet ink of this embodiment, for example, a compound represented by the following general formula 4 can be suitably used as the polyether-modified siloxane surfactant having an oxyethylene group.

[0074] General formula 4: [ka]

[0075] In the general formula 4, p represents an integer of 0 to 80, q represents an integer of 0 to 50, R 3 is a structure represented by the following general formula 5, or is an alkyl group having 2 to 6 carbon atoms, and R 4 is a structure represented by the following general formula 5, or an alkyl group having 1 to 6 carbon atoms, provided that p and q are both 0; q is 0, and R 4 is an alkyl group having 1 to 6 carbon atoms; or q is an integer of 1 to 50, and R 3 is an alkyl group having 2 to 6 carbon atoms, and R 4 is not an alkyl group having 1 to 6 carbon atoms.

[0076] General formula 5: [ka]

[0077] In the general formula 5, r represents an integer of 1 to 6, s represents an integer of 1 to 100, and t represents an integer of 0 to 50. 5 is -OH or -OR 6 (However, R 6 is an alkyl group having 1 to 4 carbon atoms. The addition pattern of the oxyethylene group (OC2H4) and the oxypropylene group (OC3H6) in the brackets [ ] may be block or random.

[0078] Furthermore, when a polyether-modified siloxane surfactant having an oxyethylene group is used in the aqueous inkjet ink of this embodiment, it is particularly preferable to use a polyether-modified siloxane surfactant having an oxyethylene group, in which the ratio of the number of oxyethylene groups present in the molecule to the number of silicon (Si) atoms present in the molecule is 0.5 to 2. In the aqueous inkjet ink containing such a polyether-modified siloxane surfactant, the hydrophilic oxyethylene group suppresses the expression of hydrophobicity due to silicon (Si) atoms, so that the deformation followability of the printed matter is not deteriorated. In addition, the aqueous inkjet ink has excellent orientation to the interface and affinity with the surfactant (B-1) and the organic solvent (A-1), and therefore has excellent bleeding suppression and ejection stability.

[0079] When the aqueous inkjet ink of this embodiment uses a polyether-modified siloxane-based surfactant having an oxyethylene group (preferably a polyether-modified siloxane-based surfactant having an oxyethylene group, in which the ratio of the number of oxyethylene groups present in the molecule to the number of silicon (Si) atoms present in the molecule is 0.5 to 2), the content is preferably 0.1 to 3.0 mass%, more preferably 0.2 to 2.5 mass%, and particularly preferably 0.3 to 2.0 mass%.

[0080] <Resin> The aqueous inkjet ink of this embodiment contains a resin. The weighted average SP value of the resin and the surfactant contained in the aqueous inkjet ink is 9 to 11.5 (cal / cm 3 ) 1 / 2 As described above, by setting the SP values ​​of the resin and surfactant, which are components remaining in the ink layer, within the above range, the affinity with the resin constituting the shrink film and the ability of the printed matter to conform to deformation are improved.

[0081] The SP values ​​of the resin and surfactant are calculated by the Fedor estimation method, as shown in the above formula 1, in the same manner as in the case of the organic solvent. The unit of the SP value is (cal / cm 3 ) 1 / 2 Use. In this application, the SP value of a resin is calculated using the molecular structure of the polymerizable monomer in a polymerized state. For example, in the case of polyethylene, the SP value is calculated using the structural formula (-CH2-CH2-) of ethylene in a polymerized state, not ethylene (CH2=CH2), which is the polymerizable monomer before polymerization.

[0082] Generally, water-soluble resins and resin microparticles are known as the form of resins used in aqueous inkjet inks. The resin contained in the aqueous inkjet ink of the present embodiment may be a water-soluble resin or resin microparticles. In addition, a combination of a water-soluble resin and resin microparticles may be used.

[0083] In this application, a resin having a solubility of 1 g or more in 100 g of water at 25°C is referred to as a "water-soluble resin", and a resin having a solubility of less than 1 g is referred to as a "water-insoluble resin". Among the water-insoluble resins, a resin dispersed in water in a particulate form and having a volume-based median diameter (also referred to as "D50" in this application) of 10 to 1,000 nm is referred to as a "resin microparticle". The D50 of the resin microparticles is a value that can be measured in a 25°C environment using water as a dispersion medium by using a dynamic light scattering particle size distribution measuring device such as Microtrack Bell's "Nanotrack UPA-EX150".

[0084] Examples of resins that can be used in the aqueous inkjet ink of this embodiment include acrylic resins, styrene resins, styrene-maleic acid (anhydride) based resins, olefin-maleic acid (anhydride) based resins, urethane resins, polyester resins, vinyl chloride resins, vinyl chloride-vinyl acetate resins, polyolefin resins, polyvinyl alcohol resins, etc. These resins may be used alone or in combination of two or more.

[0085] In the present application, the term "acrylic resin" refers to a resin using one or more polymerizable monomers selected from the group consisting of acrylic acid, methacrylic acid, acrylic acid esters, and methacrylic acid esters (a styrene-based monomer may also be used). In addition, the term "maleic anhydride" refers to maleic anhydride and / or maleic acid.

[0086] The resin is used for any purpose, for example, for pigment dispersion, binder, wax, etc. The resin may be used for one purpose or may have a plurality of purposes. In the aqueous inkjet ink of this embodiment, the resin is preferably used as a binder, from the viewpoint of imparting strength (robustness) to the ink layer, as well as affinity and adhesion to the resin forming the shrink film, and obtaining a printed matter with excellent followability to deformation. In addition, since ejection stability can be improved, when the aqueous inkjet ink of this embodiment contains a pigment as a colorant, it is preferable that a resin used for pigment dispersion is contained in addition to the resin used for the binder, and / or the resin used for the binder is also used for pigment dispersion (in other words, the binder resin described below serves as a pigment dispersion resin).

[0087] In this application, "use as a binder" refers to use in the application of imparting strength to the ink layer and / or adhesion to the resin forming the shrink film. Examples of resins used in the above-mentioned binder applications include resins that constitute the main component of the aqueous inkjet ink layer after drying, specifically, resins that are contained in an amount of 40 mass % or more (preferably 50 mass % or more) of the total amount of resins contained in the aqueous inkjet ink of this embodiment.

[0088] Resins used for dispersing pigments include, for example, resin fine particles encapsulating a pigment and water-soluble resins that satisfy the following requirements.

[0089] Here is a method to check whether the target water-soluble resin meets the above requirements. First, the primary particle diameter is 15 to 25 nm, and the nitrogen adsorption specific surface area is 120 to 260 m. 2 / g, DBP absorption (granular) 40-80cm 3 600 g of carbon black (100 g / 100 g), 300 g of the target resin, and 2,100 g of water are thoroughly mixed (premixed). Next, the premixed mixture is dispersed for 4 hours using a 0.6 L bead mill (e.g., Shinmaru Enterprises' "Dyno Mill") filled with 1,800 g of grinding beads (e.g., zirconia beads with a diameter of 0.5 mm). After dispersion, the viscosity of the carbon black dispersion obtained at 25°C is measured using an E-type viscometer (e.g., Toki Sangyo's "TVE25L type viscometer"), and the carbon black dispersion is stored for one week in a constant temperature incubator with a blower set at 70°C, and the viscosity is measured again. If the viscosity of the dispersion immediately after dispersion is 100 mPa·s or less and the absolute value of the viscosity change rate of the carbon black dispersion before and after storage is 10% or less, the resin is determined to function as a pigment dispersion.

[0090] The "wax application" refers to an application that becomes liquid when heated and / or pressurized, and improves the scratch resistance of the layer of aqueous inkjet ink. From this perspective, a resin that has a melting point of 50 to 160°C, melts without decomposing in a temperature environment above the melting point, and has a melt viscosity of 10 Pa s or less at a temperature 10°C higher than the melting point is determined to function as a wax.

[0091] <Binder resin> As described above, in one embodiment, the aqueous inkjet ink preferably contains a resin used for binder purposes (also referred to as a "binder resin" in the present application) in order to obtain a printed matter having excellent conformability to deformation. When the aqueous inkjet ink of this embodiment contains a binder resin, the type of resin used as the binder resin is preferably one or more types selected from the group consisting of acrylic resins, urethane resins, and polyester resins among those listed above.

[0092] When the resin constituting the shrink film has an aromatic ring structure (for example, when the resin is a polyethylene terephthalate or polystyrene resin), the binder resin preferably contains an aromatic ring structure. This is because an interaction (π-π interaction) occurs between the aromatic ring structure of the binder resin and the aromatic ring structure of the resin constituting the shrink film, and the ink layer has affinity and adheres to the shrink film, improving the deformation followability of the printed matter. Examples of functional groups having the aromatic structure include a phenyl group, a naphthyl group, an anthryl group, a tolyl group, a xylyl group, a mesityl group, and an anisyl group.

[0093] In addition to the same reasons as above, because the interaction between the binder resin molecules optimizes the viscoelasticity of the aqueous inkjet ink and provides an aqueous inkjet ink with excellent ejection stability, when the binder resin contains an aromatic ring structure, the content thereof is preferably 1 to 25 mass %, and particularly preferably 2 to 20 mass %.

[0094] In the present application, when the type and content of the polymerizable monomer constituting the resin are known, the value calculated by the following formula 4 can be used as the content of the aromatic ring structure. When the type and content of the polymerizable monomer constituting the resin are unknown, the content of the aromatic ring structure can be calculated by the following formula 6 after measuring the content of the polymerizable monomer having an aromatic ring structure and the number of moles of the aromatic ring structure, for example, by NMR (nuclear magnetic resonance) measurement.

[0095] Formula 6: (Aromatic ring structure content) (mass%) = Σ[(ni × MS ÷ Mi) × Wi]

[0096] In the above formula 6, ni is the number of moles of an aromatic ring structure contained in a polymerizable monomer having an aromatic ring structure among the polymerizable monomers constituting the resin (for example, in the case of styrene, ni=1), MS is the molecular weight (78.1) of the target structure (aromatic ring structure), Mi is the molecular weight of the polymerizable monomer having the aromatic ring structure, and Wi is the content (mass%) of the polymerizable monomer having the aromatic ring structure relative to the total amount of polymerizable monomers constituting the resin.

[0097] The acid value of the binder resin is preferably 1 to 80 mgKOH / g, more preferably 2 to 60 mgKOH / g, even more preferably 3 to 50 mgKOH / g, and particularly preferably 5 to 40 mgKOH / g. By setting the acid value within the above range, a printed matter having excellent deformation conformability and no bleeding can be obtained, and even if a part of the aqueous inkjet ink dries in the vicinity of the nozzle of the inkjet head, a significant increase in viscosity of the aqueous inkjet ink can be suppressed, so that the ejection stability can be improved. In addition, an ink layer containing a binder resin having an acid value within the above range is easily detached from the shrink film by immersion in a basic solution described later. As a result, the shrink film can be easily recycled.

[0098] In this application, the "acid value of a resin" refers to the number of milligrams of potassium hydroxide (KOH) required to neutralize the acid groups contained in 1 g of the resin. In this application, the acid value is calculated by the following method. For example, if a resin contains Wa mass % of a polymerizable monomer having na acid groups with a value of va per molecule and a molecular weight of Ma among the polymerizable monomers constituting the resin, the acid value (mgKOH / g) can be calculated by the following formula 7.

[0099] Formula 7: (Acid value) = {(va × na × Wa) ÷ (100 × Ma)} × 56.11 × 1000

[0100] In the above formula 7, the number "56.11" is the molecular weight of potassium hydroxide.

[0101] The SP value of the binder resin is 9 to 13 (cal / cm 3 ) 1 / 2 It is preferable that the density is 9.5 to 12 (cal / cm 3 ) 1 / 2 By using a binder resin having the above SP value, it becomes easy to adjust the weighted average SP value of the resin and the surfactant to be within the above range, and it becomes easy to improve the affinity with the resin constituting the shrink film and the deformation followability of the printed matter.

[0102] From the viewpoint of obtaining an aqueous inkjet ink having excellent ejection stability, and excellent deformation followability and recyclability of printed matter, the content of the binder resin in the aqueous inkjet ink of this embodiment is preferably 0.5 to 16 mass %, more preferably 1 to 14 mass %, and particularly preferably 2.5 to 12 mass %, calculated as solid content based on the total amount of the aqueous inkjet ink.

[0103] <Pigment dispersion resin> When the aqueous inkjet ink of the present embodiment contains a pigment as a colorant, a resin used for dispersing pigments (also referred to as a "pigment dispersion resin" in the present application) can also be used. In this case, the type of resin used as the pigment dispersion resin is preferably one or more selected from the group consisting of acrylic resins, styrene-maleic anhydride resins, and olefin-maleic anhydride resins, among those listed above.

[0104] The acid value of the pigment dispersion resin is preferably 80 to 400 mgKOH / g, more preferably 100 to 350 mgKOH / g, and particularly preferably 110 to 300 mgKOH / g. By setting the acid value within the above range, it is possible to maintain the dispersion stability of the pigment, and the ink can be stably ejected from the inkjet head regardless of the use conditions. In addition, the solubility of the pigment dispersion resin in water can be ensured, and the interaction between the pigment dispersion resins becomes favorable, so that the viscosity of the pigment dispersion liquid can be suppressed, and the ejection stability of the aqueous inkjet ink can be further improved.

[0105] From the viewpoints of pigment dispersion stability and ejection stability, the content of the pigment dispersion resin in the aqueous inkjet ink of this embodiment is preferably 1 to 60 mass %, and more preferably 2 to 50 mass %, calculated as solid content relative to the pigment content.

[0106] <Wax resin> In the aqueous inkjet ink of this embodiment, a resin used for wax applications (also referred to as "wax resin" in this application) can also be used to improve the abrasion resistance of the printed matter. In this case, the type of resin used as the wax resin is preferably a polyolefin resin among those listed above. When a polyolefin resin is used as the wax resin and the resin constituting the shrink film is a polyolefin resin described later, the deformation conformability to the shrink film is particularly improved.

[0107] When the aqueous inkjet ink of this embodiment contains a wax resin and a polyolefin resin is used as the wax resin, it is preferable to use an oxidized polyolefin resin and / or an acid-modified polyolefin resin as the polyolefin resin. Since the oxidized polyolefin resin and the acid-modified polyolefin resin have an acidic group or an oxygen atom-containing functional group, these polyolefin resins form an interaction with the resin constituting the shrink film, and the ink layer has affinity and adheres to the shrink film, improving the deformation followability of the printed matter.

[0108] From the viewpoint of obtaining an aqueous inkjet ink having excellent ejection stability, and excellent deformation followability and recyclability of printed matter, the content of the wax resin contained in the aqueous inkjet ink of this embodiment is preferably 0.3 to 5 mass %, more preferably 0.6 to 4 mass %, and particularly preferably 0.8 to 3 mass %, calculated as solid content based on the total amount of the aqueous inkjet ink. From the viewpoint of not interfering with each other's effects, when the aqueous inkjet ink of this embodiment contains a binder resin and a wax resin, the content of the wax resin is preferably 5 to 35 mass %, more preferably 8 to 30 mass %, and particularly preferably 10 to 25 mass %, relative to the content of the binder resin.

[0109] <Coloring agent> The aqueous inkjet ink of the present embodiment may contain a colorant. In addition, it is preferable to use a pigment as the colorant, since it is possible to obtain printed matter having high density or hiding power and excellent light resistance, water resistance, etc.

[0110] Pigments As the pigment, any conventionally known organic or inorganic pigment can be used. For example, pigments represented by the following color index names can be used. i.e., red pigments, CI Pigment Red 2, 5, 7, 9, 12, 17, 22, 23, 31, 48:1, 48:2, 48:3, 48:4, 49:1, 49:2, 57:1, 57:2, 112, 122, 123, 146, 147, 149, 150, 166, 168, 170, 171, 175, 176, 177, 178, 184, 185, 188, 202, 207, 209, 254, 255, 260, 264, 266, 269, 282; Violet pigments include CI Pigment Violet 19, 23, 29, 32, 36, 37, 42, 50; Orange pigments include CI Pigment Orange 1, 2, 3, 5, 7, 13, 14, 15, 16, 22, 34, 36, 38, 40, 43, 47, 48, 49, 51, 52, 53, 60, 61, 62, 64, 65, 66, 69, 71, 73; Blue pigments include CI Pigment Blue 15, 15:3, 15:4, 15:6, 16, 60, 64, and 79; As green pigments, CI Pigment Green 7, 10, 36, 48; Yellow pigments include CI Pigment Yellow 1, 2, 3, 5, 12, 13, 14, 16, 17, 24, 73, 74, 83, 87, 93, 94, 95, 97, 98, 109, 110, 111, 112, 120, 126, 127, 128, 129, 137, 138, 139, 147, 150, 151, 154, 155, 166, 167, 168, 170, 180, 185, 213; Black pigments include CI Pigment Black 1, 7, and 11; White pigments include CI Pigment White 4, 5, 6, 21, etc. These pigments may be used alone or in combination of two or more. A solid solution of two or more of the pigments listed above may also be used as a pigment.

[0111] The content of the pigment contained in the aqueous inkjet ink of this embodiment is adjusted depending on the use of the printed matter produced using the aqueous inkjet ink, but for example, it is preferably 0.5 to 30 mass% of the total amount of the aqueous inkjet ink. In addition, except for the case of a white aqueous inkjet ink (aqueous white ink), the content of the pigment is more preferably 1 to 15 mass%, and particularly preferably 1.5 to 10 mass%, from the viewpoint of obtaining a printed matter with high density without deteriorating the discharge stability of the aqueous inkjet ink. On the other hand, in the case of an aqueous white ink, the content of the pigment is more preferably 5 to 25 mass%, and particularly preferably 10 to 20 mass%, from the viewpoint of obtaining a printed matter with high concealing property without deteriorating the discharge stability of the aqueous white ink.

[0112] <Water> The aqueous inkjet ink of the present embodiment contains water as a main component. The water is preferably ion-exchanged water (deionized water) or distilled water, rather than ordinary water containing various ions. The content of water in the aqueous inkjet ink of the present embodiment is preferably 40 to 95% by mass, more preferably 50 to 90% by mass, of the total amount of the aqueous inkjet ink.

[0113] <Other ingredients> In addition to the above-mentioned components, the aqueous inkjet ink of the present embodiment may contain a pH adjuster, a preservative, a crosslinking agent, an ultraviolet absorbing agent, an infrared absorbing agent, etc. For each of these components, one or more conventionally known compounds may be used.

[0114] <pH adjuster> For example, the above-mentioned alkanolamines also function as a pH adjuster that can basify the aqueous inkjet ink. Other examples of pH adjusters that can basify the aqueous inkjet ink include ammonia water; alkali metal hydroxides such as lithium hydroxide, sodium hydroxide, and potassium hydroxide; alkali metal carbonates (hydrogen) salts such as lithium carbonate, sodium carbonate, sodium hydrogen carbonate, and potassium carbonate; and the like. Examples of pH adjusters that can acidify the aqueous inkjet ink include inorganic acids such as hydrochloric acid, sulfuric acid, nitric acid, and phosphoric acid; and organic acids such as acetic acid, propionic acid, butyric acid, (anhydrous) maleic acid, malonic acid, succinic acid, lactic acid, tartaric acid, malic acid, citric acid, ascorbic acid, and glutamic acid; and the like.

[0115] <Method of manufacturing water-based inkjet ink> The aqueous inkjet ink of this embodiment can be produced by a conventionally known method. For example, when a pigment is used as the colorant, the pigment is dispersed in a medium (aqueous medium) containing at least water to produce a pigment dispersion. On the other hand, when a water-soluble dye is used as the colorant, the water-soluble dye is dissolved in an aqueous medium to produce an aqueous water-soluble dye solution. Then, water, an aqueous solution of water having an SP value of 11 to 13.5 (cal / cm) is added to the pigment dispersion and / or the aqueous water-soluble dye solution. 3 ) 1 / 2 and adding an organic solvent (A-1) having one or more hydroxyl groups, one or more surfactants (B-1) selected from the group consisting of acetylene diol surfactants and polyoxyalkylene alkyl ether surfactants, a resin, etc., thoroughly stirring and mixing, and then removing coarse particles by a technique such as filtration or centrifugation. However, the method for producing the aqueous inkjet ink of this embodiment is not limited to the above-mentioned method.

[0116] <Characteristics of water-based inkjet ink> The aqueous inkjet ink of the present embodiment preferably has a viscosity of 3 to 15 mPa·s at 25°C. In this viscosity range, droplets of the aqueous inkjet ink can be stably ejected not only from an inkjet head having an ejection frequency of about 4 to 10 KHz, but also from an inkjet head having a high ejection frequency of about 20 to 70 KHz. In particular, when the aqueous inkjet ink of the present embodiment has a viscosity of 4 to 10 mPa·s at 25°C, the aqueous inkjet ink can be stably ejected even when an inkjet head having a design resolution of 600 dpi or more is used. In the present application, the viscosity is measured using a cone-plate type rotational viscometer (E-type viscometer, cone angle 1°34′) manufactured by Toki Sangyo Co., Ltd., etc., as a value measured in a 25°C environment.

[0117] In order to obtain an aqueous inkjet ink that is excellent in ejection stability and print quality of printed matter, the aqueous inkjet ink of this embodiment preferably has a static surface tension of 18 to 35 mN / m, and particularly preferably 21 to 32 mN / m, at 25° C. In the present application, the static surface tension is a value measured in an environment at 25° C. using the Wilhelmy method (plate method) with an automatic surface tensiometer CBVP-Z manufactured by Kyowa Interface Science Co., Ltd.

[0118] Furthermore, when the aqueous inkjet ink of this embodiment contains a pigment as a colorant, in order to achieve both high levels of ejection stability and high levels of density or hiding power of the printed matter, the volume-based median diameter (D50) of the pigment is preferably 30 to 450 nm, more preferably 50 to 400 nm, and particularly preferably 70 to 350 nm. The D50 of the pigment can be measured by the same method as that for the D50 of the resin fine particles described above.

[0119] <Water-based inkjet ink set> The aqueous inkjet ink of the present embodiment may be used alone, or may be used as an aqueous inkjet ink set by combining two or more aqueous inkjet inks. Examples of the aqueous inkjet ink set include a set of four aqueous inkjet inks (process color ink set) consisting of a cyan aqueous inkjet ink (aqueous cyan ink), a magenta aqueous inkjet ink (aqueous magenta ink), a yellow aqueous inkjet ink (aqueous yellow ink), and a black aqueous inkjet ink (aqueous black ink); a set of five aqueous inkjet inks obtained by further adding an aqueous white ink to the process color ink set; and the like. It is preferable that all the aqueous inkjet inks constituting the aqueous inkjet ink set satisfy the requirements of the above-mentioned embodiment of the present invention.

[0120] <Ink-pretreatment liquid set> The aqueous inkjet ink of this embodiment and the aqueous inkjet ink set can also be used in a form combined with a pretreatment liquid containing an aggregating agent (in the form of an ink-pretreatment liquid set). By applying a pretreatment liquid containing an aggregating agent onto a printing substrate before printing with the aqueous inkjet ink, a layer (ink aggregating layer) that intentionally aggregates solid components contained in the aqueous inkjet ink can be formed. Then, by landing the aqueous inkjet ink on the ink aggregating layer, it is possible to prevent the droplets of the aqueous inkjet ink from coalescing and bleeding, and to significantly improve the print quality of the printed matter.

[0121] As the flocculant, for example, a water-soluble inorganic or organic salt containing a polyvalent metal ion, and a resin (cationic resin) having one or more cationic groups selected from the group consisting of a primary amino group, a secondary amino group, a tertiary amino group, and a quaternary ammonium group, and having an amine value greater than its acid value, can be used.

[0122] In this case, from the viewpoint of being able to increase the adhesion between the shrink film and the ink coagulation layer, and between the ink coagulation layer and the ink layer, and being able to obtain a printed matter that is particularly excellent in its ability to follow deformation, when using a water-soluble inorganic salt or organic salt containing a polyvalent metal ion as the coagulant, salts of anions having a hydroxyl group (e.g., lactate ion, malate ion, 3-hydroxy-3-methylbutyrate ion, gluconate ion, and pantothenate ion) and polyvalent metal ions (e.g., magnesium ion and calcium ion) can be preferably used.

[0123] When the content of the coagulant contained in the pretreatment liquid is expressed in terms of cationic equivalent concentration, from the viewpoint of obtaining printed matter with excellent deformation conformability and suppressed bleeding, the cationic equivalent concentration of the pretreatment liquid is preferably 0.07 to 1.40 meq / g, more preferably 0.11 to 1.10 meq / g, and particularly preferably 0.15 to 0.80 meq / g.

[0124] The above-mentioned "cation equivalent concentration of the pretreatment liquid" refers to the number of equivalents of cationic components (polyvalent metal ions and cationic groups in the cationic resin) present in 1 g of the pretreatment liquid. For example, the cation equivalent concentration of a pretreatment liquid containing 5 mass% calcium acetate (anhydrous) can be calculated as {(5 / 100)×2 / 158.17}×1000 ≒ 0.63 (meq / g). In the above formula, "2" is the valence of calcium ions, which are cationic components, and "158.17" is the molecular weight of calcium acetate (anhydrous).

[0125] In one embodiment, the pretreatment liquid preferably contains a resin used as a binder. In the present application, the resin contained in the pretreatment liquid and used as a binder is referred to as a "binder resin for the pretreatment liquid." When the pretreatment liquid contains the binder resin for the pretreatment liquid, the affinity and adhesion between the shrink film and the ink aggregation layer, and between the ink aggregation layer and the ink layer, can be increased, and a printed matter with particularly excellent followability to deformation can be obtained.

[0126] The binder resin for the pretreatment liquid preferably has the same properties as the binder resin that can be contained in the aqueous inkjet ink described above. Specifically, from the viewpoint of obtaining a printed matter with excellent conformity to deformation, when the resin constituting the shrink film has an aromatic ring structure (for example, when the resin is a polyethylene terephthalate or polystyrene resin), it is preferable that the binder resin for the pretreatment liquid contains an aromatic ring structure. The content is preferably 1 to 25% by mass, and particularly preferably 2 to 20% by mass.

[0127] Furthermore, from the viewpoint that the ink layer (and the ink coagulation layer) is easily detached from the shrink film by immersion in a basic solution described below, and thus the shrink film can be easily recycled, the acid value of the binder resin for the pretreatment liquid is preferably 1 to 80 mgKOH / g, more preferably 2 to 60 mgKOH / g, even more preferably 3 to 50 mgKOH / g, and particularly preferably 5 to 40 mgKOH / g.

[0128] Examples of the resin that can be used as the binder resin for the pretreatment liquid include acrylic resin, styrene resin, urethane resin, polyester resin, polyvinyl alcohol resin, etc. These resins may be used alone or in combination of two or more types. In particular, when the aqueous inkjet ink used in combination contains a binder resin, it is preferable to use the same type of resin as the binder resin contained in the aqueous inkjet ink, from the viewpoint of improving the affinity and adhesion with the ink layer and improving the deformation followability of the printed matter.

[0129] The binder resin for the pretreatment liquid may be a water-soluble resin or may be resin particles, or a combination of a water-soluble resin and resin particles may be used.

[0130] The content of the binder resin for the pretreatment liquid contained in the pretreatment liquid is preferably 1 to 20 mass %, more preferably 2 to 15 mass %, and particularly preferably 2.5 to 12 mass %, calculated as solid content, of the total amount of the pretreatment liquid, from the viewpoints of obtaining a printed matter having excellent deformation conformability and recyclability and not impairing the effects of the coagulant described above (such as suppression of bleeding).

[0131] The pretreatment liquid may contain an organic solvent and / or a surfactant. In the present application, the organic solvent contained in the pretreatment liquid is referred to as an "organic solvent for the pretreatment liquid", and the surfactant contained in the pretreatment liquid is referred to as a "surfactant for the pretreatment liquid". Compounds that can be used as the organic solvent for the pretreatment liquid and the surfactant for the pretreatment liquid are the same as the organic solvent and surfactant that can be used in the aqueous inkjet ink of the present embodiment described above.

[0132] In one embodiment, when the pretreatment liquid is applied to a shrink film by an inkjet printing method described later, the pretreatment liquid is preferably configured similarly to the aqueous inkjet ink of the present embodiment described above.3 ) 1 / 2 The pretreatment liquid comprises an organic solvent for a pretreatment liquid having one or more hydroxyl groups, one or more surfactants for the pretreatment liquid selected from the group consisting of acetylene diol surfactants and polyoxyalkylene alkyl ether surfactants, and a binder resin for the pretreatment liquid, the content of the organic solvent for the pretreatment liquid being 5 to 30 mass % of the total amount of the pretreatment liquid, and the weighted average SP value of the binder resin for the pretreatment liquid and the surfactant for the pretreatment liquid being 9 to 11.5 (cal / cm 3 ) 1 / 2 By using a pretreatment liquid having such a constitution, an ink coagulation layer having excellent deformation followability to the shrink film can be obtained, and the ink can be spread uniformly on the shrink film, so that a printed matter having excellent print quality without bleeding can be obtained. In addition, the ejection stability of the pretreatment liquid is also good.

[0133] <Printed material> A printed matter according to one embodiment of the present invention (hereinafter also simply referred to as "printed matter of this embodiment") is obtained by printing the above-mentioned aqueous inkjet ink of this embodiment on a shrink film by an inkjet printing method. When an aqueous inkjet ink set in which two or more kinds of aqueous inkjet inks are combined is used, the printed matter of this embodiment may have an ink layer consisting of multiple layers formed by the aqueous inkjet ink set. Furthermore, when the aqueous inkjet ink of this embodiment is used in combination with the above-mentioned pretreatment liquid, the printed matter of this embodiment has an ink aggregation layer formed by the pretreatment liquid.

[0134] <Manufacturing method of printed matter> When producing the printed matter of this embodiment, it is preferable to carry out step (1) of printing the aqueous inkjet ink of this embodiment onto a shrink film, and step (2) of drying the shrink film after printing, in that order. Furthermore, when the aqueous inkjet ink of this embodiment is used in combination with the above-mentioned pretreatment liquid, it is preferable to carry out step (0) of applying the pretreatment liquid onto the shrink film before the above-mentioned step (1).

[0135] <Shrink film> As described above, the aqueous inkjet ink of the present embodiment is used for a shrink film. Specifically, the term "shrink film" used in this application refers to a film that has a shrinkage rate of 10% or more in the machine direction (MD) and / or transverse direction (TD) when heated at 100°C for 20 seconds according to the method specified in JIS Z 1709.

[0136] As described above, the printed matter produced using the aqueous inkjet ink of the present embodiment has excellent conformability to deformation. Therefore, the aqueous inkjet ink of the present embodiment can be suitably used for shrink films having a shrinkage rate of 20% or more in the machine direction (MD) and / or transverse direction (TD), and is particularly suitable for use with shrink films having a shrinkage rate of 40% or more.

[0137] In one embodiment, the shrink film preferably shrinks strongly in either MD or TD. Since the shrinkage occurs mainly in only one direction, the print produced using the aqueous inkjet ink of the present invention can fully utilize its ability to follow deformation, and wrinkles and cracks do not occur in the ink layer after shrinkage. In this case, the shrinkage rate measured under the above-mentioned conditions in the direction in which strong shrinkage does not occur is preferably 25% or less and smaller than the shrinkage rate in the direction in which strong shrinkage occurs, more preferably 15% or less and smaller than the shrinkage rate in the direction in which strong shrinkage occurs, and particularly preferably 10% or less and smaller than the shrinkage rate in the direction in which strong shrinkage occurs. In addition, the ratio of the shrinkage rate in the direction in which strong shrinkage occurs to the shrinkage rate in the direction in which strong shrinkage does not occur is preferably 3 to 100 times, more preferably 5 to 100 times, and particularly preferably 8 to 100 times.

[0138] Examples of resins constituting the shrink film include polyester resins such as polyethylene terephthalate (PET, 13.2); polyolefin resins such as polyethylene (PE, 8.6), polypropylene (PP, 8.0), and polyethylene-polypropylene composites; polystyrene resin (PS, 10.6); and polylactic acid resin (PLA, 12.1). Films in which different types of resins are laminated (laminated films) can also be used. An example of such a laminated film is a film in which polystyrene and PET are laminated. The values ​​in parentheses above are the SP values ​​of each resin (unit: (cal / cm 3 ) 1 / 2 ). In particular, the SP value is 9.0 to 14.5 (cal / cm 3 ) 1 / 2By using a shrink film made of a resin having the above-mentioned structure, the affinity with the organic solvent (A-1) is increased, and the deformation conformability of the printed matter produced using the aqueous inkjet ink of this embodiment can be fully utilized. Specifically, among the resins listed above, a shrink film made of one or more resins selected from the group consisting of polyethylene terephthalate, polystyrene resin, and polylactic acid resin can be preferably used.

[0139] <Pretreatment liquid application step (0)> In step (0), the method of applying the pretreatment liquid onto the shrink film may be a method of printing the pretreatment liquid on the shrink film in a non-contact manner, such as an inkjet printing method, or a method of applying the pretreatment liquid by contacting the shrink film. Specific examples of the inkjet printing method are the same as those of the aqueous inkjet ink, and will be described in detail later. On the other hand, when a coating method of contacting the pretreatment liquid is selected as a method of applying the pretreatment liquid, a gravure coater, an offset gravure coater, a doctor coater, a bar coater, a blade coater, a flexo coater, an air doctor coater, a roll coater, or the like can be used. Among them, a gravure coater, an offset gravure coater, or a flexo coater can be preferably used because they can be applied stably, uniformly, and easily regardless of the type of resin constituting the shrink film, and the coating amount can be easily adjusted, and by adjusting the coating amount depending on the printing substrate, for example, a printed matter with excellent deformation tracking ability and recyclability and without bleeding can be obtained.

[0140] In the present application, the term "application of a pretreatment liquid" is used as a general term to refer to non-contact printing of the pretreatment liquid and application of the pretreatment liquid by contacting the printing substrate.

[0141] From the viewpoint of obtaining a printed matter that is excellent in deformation conformability and recyclability and does not bleed, the thickness of the layer of the pretreatment liquid immediately after application is preferably 1 to 10 μm, more preferably 2 to 8 μm, and particularly preferably 3 to 7 μm.

[0142] <Drying process after application of pretreatment liquid (0A)> After the above step (0) and when printing the aqueous inkjet ink, the drying state of the pretreatment liquid on the shrink film can be selected arbitrarily.

[0143] In one embodiment, it is preferable to dry the pretreatment liquid before printing the aqueous inkjet ink, that is, to set the total remaining amount of volatile components (water and organic solvent) contained in the pretreatment liquid on the shrink film immediately before the droplets of the aqueous inkjet ink land to 15% by mass or less (more preferably 10% by mass or less, even more preferably 5% by mass or less, and particularly preferably 2% by mass or less) of the total amount of volatile components contained in the pretreatment liquid before application to the shrink film. This is because by printing the aqueous inkjet ink after the pretreatment liquid has dried, the aqueous inkjet ink that lands later does not dry poorly, and a printed matter with excellent deformation followability can be obtained.

[0144] In this case, it is preferable to provide a step of drying the pretreatment liquid on the shrink film (hereinafter also referred to as "drying step (0A)") after step (0) and before step (1). There is no particular limitation on the method for drying the pretreatment liquid in the drying step (0A), and any conventionally known method can be used, such as heat drying, hot air drying, infrared drying, microwave drying, drum drying, high-frequency dielectric heating, etc. These drying methods may be used alone or in combination, but it is preferable to use hot air drying and / or infrared drying in order to reduce damage to the shrink film and dry efficiently.

[0145] <Pre-drying process after application of pre-treatment liquid (0B)> Meanwhile, in another embodiment, the aqueous inkjet ink may be printed on a layer of the pretreatment liquid in a wet state. In the present application, "the pretreatment liquid is in a wet state" refers to a state in which the total remaining amount of volatile components (water and organic solvents) contained in the pretreatment liquid on the shrink film immediately before the droplets of the aqueous inkjet ink land is 50% by mass or more (more preferably 75% by mass or more, and particularly preferably 90% by mass or more) of the total amount of volatile components contained in the pretreatment liquid before application to the shrink film. By printing the aqueous inkjet ink on the pretreatment liquid in a wet state, it is possible to obtain a printed matter that is excellent in recyclability and does not bleed.

[0146] In this case, it is preferable to either not provide a drying step after step (0) and before step (1), or to provide a step of drying only a part of the pretreatment liquid on the shrink film (hereinafter also referred to as "pre-drying step (0B)"). As a method for drying the pretreatment liquid in the pre-drying step (0B), for example, room temperature air drying method, visible light drying method, etc. can be preferably used from the viewpoint of preventing excessive drying of the pretreatment liquid. Furthermore, after adjusting the energy applied to the printed matter, the above-mentioned methods exemplified as methods that can be used in the drying step (0A) may be adopted. Furthermore, these drying methods may be used alone or in combination.

[0147] <Water-based inkjet ink printing process (1)> When the aqueous inkjet ink of this embodiment is used in combination with a pretreatment liquid, in order to exert the effects of the present invention, in step (1), it is preferable that at least a part of the aqueous inkjet ink is printed so as to overlap an area to which the pretreatment liquid has been applied, and it is more preferable that the aqueous inkjet ink is printed so as to overlap only an area to which the pretreatment liquid has been applied.

[0148] In step (1), the same aqueous inkjet ink may be filled into a plurality of inkjet heads, and the aqueous inkjet ink may be printed on the shrink film from each of the inkjet heads. The aqueous inkjet ink filled in the inkjet head may be ejected from the inkjet head in a heated state. In this case, the heating temperature of the aqueous inkjet ink in the inkjet head is preferably 30 to 50°C, and more preferably 30 to 45°C. Furthermore, the aqueous inkjet ink may be printed while heating the shrink film from, for example, the back side (the side opposite to the side on which the aqueous inkjet ink is printed). In this case, the surface on which the aqueous inkjet ink is printed is preferably heated to a temperature of 30 to 55°C, and more preferably heated to a temperature of 35 to 50°C.

[0149] As described above, the aqueous inkjet ink may include a plurality of aqueous inkjet inks (a set of aqueous inkjet inks). In this case, one or more of the aqueous inkjet inks constituting the set of aqueous inkjet inks may be filled into a plurality of inkjet heads, and the aqueous inkjet ink may be printed on a shrink film from each of the inkjet heads.

[0150] In one embodiment, when the set of aqueous inkjet inks includes an aqueous white ink, it is preferable that at least the aqueous white ink is filled into a plurality of inkjet heads, and the aqueous white ink is printed from each of the inkjet heads. In this way, the printed matter of this embodiment can be provided without bleeding and with excellent visibility.

[0151] <Inkjet printing method> As described above, the aqueous inkjet ink is printed on the shrink film by the inkjet printing method. When the aqueous inkjet ink of the present embodiment is used in combination with a pretreatment liquid, the inkjet printing method may be selected as a method for applying the pretreatment liquid onto the shrink film. In this case, the inkjet printing method used for these printings may be a single pass method in which the aqueous inkjet ink or the like is ejected onto the shrink film only once, or a serial type method in which the aqueous inkjet ink or the like is ejected while a short shuttle head is scanned back and forth in a direction perpendicular to the transport direction of the shrink film. Specific examples of the single pass method include a method in which an inkjet head is scanned over a stopped printing substrate only once (referred to as a "single pass head scanning method" in this application) and a method in which the printing substrate is passed under a fixed inkjet head only once for printing (referred to as a "fixed head single pass method" in this application). In the present invention, any of the above-mentioned methods may be adopted, however, the fixed-head single-pass method is preferably used from the viewpoint that it is not necessary to adjust the ejection timing of the aqueous inkjet ink or the like relative to the scanning of the inkjet head, and deviation of the landing position is unlikely to occur, so that a printed matter having excellent print quality without bleeding can be obtained.

[0152] The design resolution of the inkjet head used in the fixed-head single-pass method is preferably 600 dpi (dots per inch) or more, and more preferably 720 dpi or more, in order to obtain images with excellent print quality.

[0153] <Drying process after water-based inkjet printing (2)>

[0154] The aqueous inkjet ink printed on the shrink film (and the pretreatment liquid if used in combination) undergoes a drying step (2) to become the printed matter of this embodiment. Specific examples of the drying method for the aqueous inkjet ink or the like in the drying step (2) are the same as those that can be used in the drying step (0A) after application of the pretreatment liquid described above. These drying methods may be used alone or in combination. In particular, in order to reduce damage to the shrink film and dry efficiently, it is preferable to use hot air drying and / or infrared drying.

[0155] In one embodiment, the drying temperature (temperature of the shrink film) in the drying step (2) is preferably set to a temperature at which the shrinkage rate when heated for 10 seconds is 25% or less in the machine direction (MD) and transverse direction (TD) according to the method specified in JIS Z 1709. The shrinkage rate is preferably 15% or less, and particularly preferably 10% or less. In this way, it is possible to create a printed matter without impairing the function of the shrink film, and the effect of the printed matter of this embodiment, which has excellent followability to deformation of the shrink film, can be fully utilized.

[0156] <Shrink label> The printed matter of the present embodiment can be used, for example, as a shrink label. Examples of objects to be shrunk with the shrink label include containers for beverages, solid foods, cosmetics, detergents, medicines, etc. Examples of materials for the containers include plastics such as polyethylene terephthalate (PET), polyethylene, and polypropylene; metals such as aluminum and iron; glass; and the like.

[0157] <How to recycle printed materials and shrink labels> The printed matter of the present embodiment, which satisfies the above-mentioned preferable requirements, and a shrink label produced using the printed matter, can be easily recycled.

[0158] An example of a method for recycling the printed matter of this embodiment and the shrink label manufactured using the printed matter is a method of manufacturing a recycled plastic product after separating the shrink film from the printed matter and the shrink label. Also, examples of a method for manufacturing the recycled plastic product include a method of using flakes or pellets produced by crushing the separated shrink film, and a method of chemically decomposing the separated shrink film to regenerate the polymerizable monomer and using the polymerizable monomer to resynthesize a plastic.

[0159] Furthermore, the method for separating the shrink film may include, for example, a method including a step of immersing the printed matter or the like in a basic solution. In the immersion step, the printed matter or the like is immersed in the basic solution to separate the shrink film. Note that, in order to improve the efficiency of separation, the printed matter or the like may be crushed or pulverized in advance. In addition, the term "printed matter or the like" in this application refers to the printed matter and the shrink label manufactured using the printed matter.

[0160] The basic solution contains at least a liquid medium and a basic material. The liquid medium preferably contains water, since it can hold printed matter and the like without dissolving them and improves recyclability. In this case, the amount of water is preferably 80% by mass or more, and particularly preferably 90% by mass or more, of the total amount of the liquid medium.

[0161] In addition, for example, an alkali metal hydroxide can be used as the basic material. Among them, sodium hydroxide and potassium hydroxide can be preferably used as the alkali metal hydroxide from the viewpoints of basicity (magnitude of pKb value), high solubility in an aqueous medium, and easy availability. The amount (concentration) of the basic material is preferably 0.2 to 15 mass% of the total amount of the basic solution, more preferably 0.5 to 12 mass%, and particularly preferably 1 to 10 mass%. By having the concentration within the above range, it becomes possible for the basic solution to maintain sufficient basicity for separation. In addition, even if the basic solution is not immersed inside the printed matter, for example, the shrink film can be easily separated by penetration from the surface or end of the printed matter.

[0162] The temperature of the mixture of the printed matter or the like and the basic solution during the immersion step is preferably 20 to 120° C., more preferably 25 to 110° C., even more preferably 28 to 90° C., and particularly preferably 30 to 80° C. Furthermore, the time for the immersion step carried out at the above suitable temperature range is preferably 1 minute to 24 hours, more preferably 1 minute to 12 hours, and particularly preferably 1 minute to 6 hours.

[0163] It is preferable to carry out the separation while stirring during the immersion. For example, when stirring with a rotating blade, the rotation speed is preferably 80 to 250 rpm, and more preferably 80 to 200 rpm.

[0164] The amount of the basic solution used is preferably 1 to 1,000,000 times the mass of the printed matter, etc. In order to reduce the amount of the basic solution used, a separation device capable of circulating the basic solution may be used.

[0165] From the viewpoint of obtaining a printed matter (or a shrink label manufactured using said printed matter) that is less susceptible to the effects of basic solutions during recycling and is suitable for recycling, it is preferable that the material of the shrink film that constitutes the printed matter (or a shrink label manufactured using said printed matter) be polyethylene terephthalate, polyethylene, or polypropylene.

[0166] If the material of the object to which the shrink label is shrunk is plastic, the item to which the shrink label is attached can also be recycled. In this case, an example of a recycling method would be to crush the item, separate the shrink film and the object to be shrunk from the crushed material, and then produce a recycled plastic product.

[0167] When recycling an article to which a shrink label is attached, it is preferable that the shrink film and the shrinkable object are made of the same resin, from the viewpoint of recycling efficiency, i.e., the shrink film and the shrinkable object after separation can be used directly for manufacturing recycled plastic products without further separation. From this viewpoint, it is preferable to use one or more resins selected from the group consisting of polyethylene terephthalate, polyethylene, and polypropylene as the resin constituting the shrink film when recycling an article to which a shrink label is attached. In addition, it is particularly preferable to use polyethylene terephthalate as the resin constituting the shrink film, considering that it is a material that can fully utilize the deformation conformability of the printed matter of this embodiment as described above. EXAMPLES

[0168] The aqueous inkjet ink of the present embodiment will be described in more detail below with reference to examples and comparative examples. In the following description, "parts" and "%" refer to "parts by mass" and "% by mass", respectively, unless otherwise specified.

[0169] The mass average molecular weight of the resin used below is a polystyrene equivalent value measured by a method in accordance with JIS K 7252. Specifically, it is a value measured using a Tosoh Corporation "TSKgel (registered trademark) column" and a Tosoh Corporation "HLC-8320GPC" equipped with an RI detector, using tetrahydrofuran as a developing solvent.

[0170] <Production of pigment dispersion> As the pigment, 450 g of LIONOL BLUE 7919 (CI Pigment Blue 15:3) manufactured by Toyo Color Co., Ltd. was used. As the pigment dispersion resin, a random polymer of styrene / acrylic acid / behenyl acrylate = 45 / 30 / 25 (mass ratio) in which all acid groups were neutralized with dimethylaminoethanol (acid value 233.6 mgKOH / g, SP value 11.7 (cal / cm 3 ) 1 / 2 90 g of zirconia (mass average molecular weight 20,000) and 2,460 g of ion-exchanged water were placed in a mixing vessel (volume 10 L) equipped with a stirrer and stirred (premixed) for 1 hour. Next, circulation dispersion of the mixture was started using Shinmaru Enterprises' "Dyno Mill" (volume 0.6 L) filled with 1,800 g of zirconia beads with a diameter of 0.5 mm. Then, the D50 of the mixture was measured using the above-mentioned device at regular intervals (for example, every hour), and the circulation dispersion was stopped when the D50 became 150 nm or less, thereby producing a cyan pigment dispersion.

[0171] A magenta pigment dispersion was produced using the same materials and method as for the cyan pigment dispersion, except that FASTGEN SUPER MAGENTA RG (CI Pigment Red 122) manufactured by DIC Corporation was used as the pigment.

[0172] <Production Examples of Water-Based Solutions of Acrylic Resins 1 to 9> 2,800 g of butanol was put into a 10 L reaction vessel equipped with a gas inlet tube, a thermometer, a condenser, and a stirrer, and then the inside temperature was raised to 110° C. Then, a mixture of 120 g of methacrylic acid, 300 g of styrene, 330 g of methyl methacrylate, 750 g of butyl acrylate, 600 g of butyl methacrylate, 450 g of stearyl methacrylate, 450 g of 2-hydroxyethyl methacrylate, and 180 g of dimethyl 2,2′-azobisisobutyrate (manufactured by Fujifilm Wako Pure Chemical Industries, Ltd., “V-601”) was added dropwise into the reaction vessel over 2 hours. After the dropwise addition, the polymerization reaction was carried out for 3 hours while the internal temperature of the reaction vessel was kept at 110°C, and then 18 g of dimethyl 2,2'-azobisisobutyrate was added, and the polymerization reaction was continued for 1 hour while the internal temperature was kept at 110°C. After that, the reaction vessel was cooled to room temperature, and 125 g of dimethylethanolamine was added to neutralize the reactants, and then 1,000 g of ion-exchanged water was added. Then, the mixed solution was heated to distill off butanol, and the solid content was adjusted to 30% by mass using ion-exchanged water, to obtain an aqueous solution of acrylic resin 1 (solid content concentration 30% by mass). The acid value of the acrylic resin 1, calculated by the above-mentioned method, was 26.1 mgKOH / g, and the content of the aromatic ring structure contained in the acrylic resin 1 was 7.5 mass%. Furthermore, the SP value of the acrylic resin 1 was 10.7 (cal / cm 3 ) 1 / 2 It was.

[0173] In the present application, the term "aqueous solution" refers to a solution containing an aqueous solvent and a component dispersed and / or dissolved in the aqueous solvent.

[0174] Further, aqueous solutions of acrylic resins 2 to 9 (each having a solid content concentration of 30% by mass) were obtained in the same manner as for the acrylic resin 1, except that the type and amount of polymerizable monomer, and the amount of dimethylethanolamine added after cooling the reaction vessel were changed as shown in Table 1. Table 1 also shows the amounts of polymerizable monomer and dimethylethanolamine used in the production of acrylic resin 1, as well as the acid value, content of aromatic ring structure, and SP value of acrylic resins 1 to 9.

[0175] [Table 1]

[0176] In Table 1, "GLM" represents glycerin monomethacrylate ("GLM-EX" manufactured by NOF Corporation).

[0177] <Production Example of Water Dispersion of Acrylic Resin 10-12> In a 10 L reaction vessel equipped with a gas inlet tube, a thermometer, a condenser, and a stirrer, 2,480 g of ion-exchanged water and 1.2 parts of polyoxyethylene lauryl ether sodium sulfate (Kao Corporation's "Latemul E-150") as an emulsifier were charged. Meanwhile, another mixing vessel equipped with a stirrer was prepared, and 16 g of methacrylic acid, 200 g of styrene, 284 g of methyl methacrylate, 500 g of butyl acrylate, 400 g of butyl methacrylate, 400 g of stearyl methacrylate, and 200 g of 2-hydroxyethyl methacrylate as polymerizable monomers, 1,280 g of ion-exchanged water, and 16 g of polyoxyethylene lauryl ether sodium sulfate (Kao Corporation's "Latemul E-150") as an emulsifier were charged, and then the mixture was stirred and mixed to form an emulsion. Next, 160 g of the emulsion was taken and put into a reaction vessel, the internal temperature was raised to 80° C., and the inside of the reaction vessel was fully replaced with nitrogen gas. Then, 80 g of a 5% aqueous solution of potassium persulfate and 160 g of a 1% aqueous solution of anhydrous sodium bisulfite were added to start the polymerization reaction. After the start of the polymerization reaction, the remainder of the emulsion, 24 g of a 5% aqueous solution of potassium persulfate, and 50 g of a 1% aqueous solution of anhydrous sodium bisulfite were dropped over 1.5 hours while maintaining the internal temperature of the reaction vessel at 80° C., and stirring was continued for another 2 hours. Then, after cooling the inside of the reaction vessel to room temperature, 17 g of dimethylethanolamine was added, and the solid content concentration was adjusted to 30% by mass using ion-exchanged water to obtain an aqueous dispersion of acrylic resin 10 (solid content concentration 30% by mass).

[0178] Moreover, aqueous solutions of acrylic resins 11 to 12 (each having a solid content concentration of 30% by mass) were obtained in the same manner as for acrylic resin 10, except that the type and amount of polymerizable monomer and the amount of dimethylethanolamine added after cooling the reaction vessel were changed as shown in Table 2. Table 2 also shows the amounts of polymerizable monomer and dimethylethanolamine used in the production of acrylic resin 10, as well as the acid value, content of aromatic ring structure, and SP value of acrylic resins 10 to 12.

[0179] [Table 2]

[0180] <Production examples of urethane resins 13-14> In a 10L reaction vessel equipped with a gas inlet tube, a thermometer, a condenser, and a stirrer, 870g of polypropylene glycol (molecular weight 1,000), 890g of isophorone diisocyanate, and 0.14g of dibutyltin dilaurate were charged as polymerizable monomers, and the inside of the reaction vessel was replaced with nitrogen gas, and the inside temperature of the reaction vessel was raised to 100°C, and a polymerization reaction was carried out for 5 hours. Next, the inside temperature of the reaction vessel was cooled to about 60°C, and then 180g of dimethylolpropionic acid, 60g of neopentyl glycol, and 3,000g of methyl ethyl ketone were added as polymerizable monomers, and the inside of the reaction vessel was heated to 80°C again, and a polymerization reaction was carried out. After that, the inside of the reaction vessel was cooled to room temperature, and 400g of methanol was added to stop the reaction. Next, water was added, and further an aqueous potassium hydroxide solution was added while stirring to neutralize. The mixed solution was then heated under reduced pressure to distill off methyl ethyl ketone and unreacted methanol, and the solid content was adjusted to 10% by mass using water to obtain an aqueous solution of urethane resin 13 (solid content concentration: 10% by mass).

[0181] Moreover, an aqueous solution of urethane resin 14 (solid content concentration 10 mass %) was obtained in the same manner as for urethane resin 13, except that the type and amount of polymerizable monomer were changed as shown in Table 4. Table 3 also shows the amount of polymerizable monomer used in the production of urethane resin 13, as well as the acid value, aromatic ring structure content, and SP value of urethane resins 13-14.

[0182] [Table 3]

[0183] In Table 3, "PPG1000" represents polypropylene glycol (molecular weight 1,000), and "PTMG2000" represents polytetramethylene ether glycol (molecular weight 2,000).

[0184] <Production of water-based inkjet inks> Each raw material was added to a mixing vessel equipped with a stirrer so as to obtain the formulation shown in each column of Table 4 below. After adding all the raw materials, stirring was continued at room temperature (25°C) until the mixture became sufficiently uniform. Then, the mixture was filtered through a membrane filter with a pore size of 0.65 μm to produce aqueous inkjet inks 1 to 93. In addition, in producing the aqueous inkjet inks, the components were added to the mixing vessel in the order listed in the top row of each column of Table 4. However, if the component did not contain any of these components, the component was skipped and the next component was added, and for components containing two or more types of raw materials, the order of addition within the component was arbitrary. Furthermore, each raw material was added while stirring the mixture in the mixing vessel.

[0185] [Table 4]

[0186] [Table 4]

[0187] [Table 4]

[0188] [Table 4]

[0189] [Table 4]

[0190] [Table 4]

[0191] Among the raw materials listed in Table 4, the details of the abbreviations and product names are as follows. The unit of SP value listed in Table 4 is "(cal / cm 3 ) 1 / 2 " and the unit of acid value is "mgKOH / g". <Surfactants> Surfynol 104: 2,4,7,9-tetramethyl-5-decyne-4,7-diol manufactured by Evonik, SP value 10.4 (cal / cm 3 ) 1 / 2 , HLB value 3.0 Surfynol 420: 2,4,7,9-tetramethyl-5-decyne-4,7-diol adduct with oxyethylene (1.3 moles), manufactured by Evonik, SP value 10.3 (cal / cm 3 ) 1 / 2 , HLB value 4.0 Surfynol 440: 2,4,7,9-tetramethyl-5-decyne-4,7-diol adduct with oxyethylene (3.5 moles), manufactured by Evonik, SP value 10.1 (cal / cm 3 ) 1 / 2 , HLB value 8.1 Surfynol 2502: 2,4,7,9-tetramethyl-5-decyne-4,7-diol, oxyethylene (5 moles) and oxypropylene (2 moles), manufactured by Evonik, SP value 9.7 (cal / cm 3 ) 1 / 2 , HLB value 7.8 Dynol 607: 2,5,8,11-tetramethyl-6-dodecyne-5,8-diol adduct with oxyethylene (approximately 7 moles), manufactured by Evonik; SP value 9.8 (cal / cm 3 ) 1 / 2 , HLB value 11.0 Surfynol 465: 2,4,7,9-tetramethyl-5-decyne-4,7-diol adduct with oxyethylene (10 moles), manufactured by Evonik, SP value 9.8 (cal / cm 3 ) 1 / 2 , HLB value 13.2 EMALEX 705: manufactured by Nippon Emulsion Co., Ltd., in the above general formula 3, R 1 is a 1-lauryl group, R 2Compound with ethylene group and n=5, SP value 9.6 (cal / cm 3 ) 1 / 2 , HLB value 10.8 EMALEX 710: manufactured by Nippon Emulsion Co., Ltd., in the above general formula 3, R 1 is a 1-lauryl group, R 2 Compound with ethylene group and n=10, SP value 9.5 (cal / cm 3 ) 1 / 2 , HLB value 14.1 EMALEX 720: manufactured by Nippon Emulsion Co., Ltd., in the above general formula 3, R 1 is a 1-lauryl group, R 2 Compound with ethylene group and n of 20, SP value of 9.5 (cal / cm 3 ) 1 / 2 , HLB value 16.5 EMALEX 730: manufactured by Nippon Emulsion Co., Ltd., in the above general formula 3, R 1 is a 1-lauryl group, R 2 Compound with ethylene group and n of 30, SP value of 9.5 (cal / cm 3 ) 1 / 2 , HLB value 17.5 EMALEX 750: manufactured by Nippon Emulsion Co., Ltd. In the above general formula 3, R 1 is a 1-lauryl group, R 2 Compound with ethylene group and n of 50, SP value of 9.4 (cal / cm 3 ) 1 / 2 , HLB value 18.4 Nonion S-207: NOF Corp., R 1 is a 1-stearyl group, R 2 Compound with ethylene group and n=7, SP value 9.4 (cal / cm 3 ) 1 / 2 , HLB value 10.7 Nonion S-215: NOF Corporation, in the above general formula 3, R 1 is a 1-stearyl group, R 2 Compound with ethylene group and n of 15, SP value of 9.4 (cal / cm 3 ) 1 / 2 , HLB value 14.2 NIKKOL BB-10: manufactured by Nikko Chemicals Co., Ltd. In the above general formula 3, R 1 is a 1-behenyl group, R 2 Compound with ethylene group and n=10, SP value 9.3 (cal / cm 3 ) 1 / 2 , HLB value 11.5 NIKKOL BB-20: manufactured by Nikko Chemicals Co., Ltd. In the above general formula 3, R 1 is a 1-behenyl group, R 2 Compound with ethylene group and n of 20, SP value of 9.3 (cal / cm 3 ) 1 / 2 , HLB value 14.6 Siloxane-based activator 1: In the above general formula 4, p=0, q=1, and R 1 is a structure represented by the above general formula 5 (wherein r=3, s=5, t=0, and R3 is -OH), and R 2 is a methyl group, SP value 8.9 (cal / cm 3 ) 1 / 2 Ratio of the number of oxyethylene groups to the number of Si atoms = 1.7 Siloxane-based activator 2: In the above general formula 4, p=1, q=2, and R 1 is a structure represented by the above general formula 5 (wherein r=3, s=3, t=0, and R3 is -OCH3), and R 2 is a methyl group, SP value 8.1 (cal / cm 3 ) 1 / 2 Ratio of the number of oxyethylene groups to the number of Si atoms = 1.2 Siloxane-based activator 3: In the above general formula 4, p=13, q=0, and R 2 A compound having a structure represented by the above general formula 5 (where r=3, s=5, t=0, and R3 is -OCH3), with an SP value of 7.9 (cal / cm 3 ) 1 / 2 , the ratio of the number of oxyethylene groups to the number of Si atoms = 0.67 Siloxane-based activator 4: In the above general formula 4, p=23, q=0, and R 2 A compound having a structure represented by the above general formula 5 (where r=3, s=6, t=1, and R3 is -OH), with an SP value of 8.1 (cal / cm3 ) 1 / 2 , the ratio of the number of oxyethylene groups to the number of Si atoms = 0.48 <Wax resin> Hi-Tec E-6400: Oxidized polyolefin resin fine particles (solid content concentration 35% by mass) manufactured by Toho Chemical Industry Co., Ltd., SP value 8.6 (cal / cm 3 ) 1 / 2 <Other ingredients> BITaq: 1% aqueous solution of 1,2-benzisothiazolin-3-one

[0192] <Production of pretreatment liquid> Each raw material was added to a mixing vessel equipped with a stirrer so as to obtain the blending formula shown in each column of Table 5 below. After all raw materials were added, stirring was continued at room temperature (25°C) until the mixture became sufficiently uniform. Then, pretreatment liquids 1 to 3 were produced by filtering through a nylon mesh with a pore size of 100 μm. In addition, in producing the pretreatment liquid, the components were added to the mixing vessel in the order listed in the top row of each column of Table 5. However, for components containing two or more types of raw materials, the order of addition within the component was arbitrary. In addition, each raw material was added while stirring the mixture in the mixing vessel.

[0193] [Table 5]

[0194] <Printing 1> An inkjet ejection device was prepared in which two Kyocera inkjet heads KJ4B-1200 (design resolution 1200 dpi, nozzle diameter 20 μm) were arranged along the conveyance direction of the printing substrate, and a set of aqueous inkjet inks was filled in the order of cyan ink and magenta ink from the upstream side of the conveyance direction. In addition, a shrink film cut to A4 size (width 21 cm x length 30 cm) and corona-treated on the printed surface was fixed on the conveyor. Thereafter, the conveyor was driven at a speed of 50 m / min, and when the shrink film passed under the installation part of the inkjet head, the set of aqueous inkjet inks was ejected under the condition of a drop volume of 2 pL, and an image was printed. Then, the printed shrink film was immediately placed in a constant temperature incubator set at 55 ° C. and dried for 2 minutes to produce a printed matter.

[0195] The following three types of shrink film were used: PET shrink film: Mitsubishi Chemical's Hishipet (thickness 40μm) PS shrink film: Mitsubishi Chemical DXL (thickness 45μm) PP shrink film: Kohjin Polyset CX (thickness 20μm) manufactured by Kohjin Film & Chemicals Co., Ltd.

[0196] The following two types of printed matter were produced by the above method. Then, for each of the aqueous inkjet inks shown in Table 4, the following two types of images were printed separately on each of the three types of shrink film by the above method to produce printed matter. Cyan solid print: A print with a 100% coverage rate printed using only water-based cyan ink (width 15 cm x length 30 cm) Two-color cross print: A rectangle 5 mm wide x 5 cm long printed with water-based cyan ink so that its long side is parallel to the transport direction of the printing substrate, and a rectangle 5 mm wide x 5 cm long printed with water-based magenta ink so that its long side is perpendicular to the transport direction of the printing substrate, printed in a cross shape at the center of each other.

[0197] [Examples 1 to 85, Comparative Examples 1 to 8] The above-mentioned aqueous inkjet ink and the above-mentioned printed matter produced using the aqueous inkjet ink were subjected to the following evaluations. The results of these evaluations are shown in Table 6 below.

[0198] <Evaluation 1: Evaluation of deformation followability> The solid print produced by the above method was cut out and then rolled up so that the ink layer was on the inside to form a cylinder with a diameter of 9 cm and a height of 12 cm. This print was placed over a 75 mm diameter glass bottle (object to be shrunk) that had been preheated in a thermostatic chamber at 70°C, and then left to stand in a thermostatic chamber at 100°C for 15 seconds to cause the print to shrink. The degree of wrinkles, cracks, etc. present in the shrunk print was then visually observed to evaluate the deformation followability. The evaluation criteria were as follows, and a score of 2 or more was deemed usable. Evaluation was performed for each of the three types of shrink films mentioned above. 5: Better than wrinkles and cracks in Example 13 4: Wrinkles and cracks were the same as in Example 13. 3: Better than the wrinkles and cracks in Example 19, but worse than the wrinkles and cracks in Example 13 2: Wrinkles and cracks were the same as in Example 19. 1: Wrinkles and cracks worse than those in Example 19

[0199] <Evaluation 2: Evaluation of bleeding> A two-color cross print made using PET shrink film as the printing base material was observed with a loupe and with the naked eye to check the degree of bleeding at the intersections and evaluate bleeding. The evaluation criteria are as follows, and a score of 2 or more was deemed usable. 5: Better than the bleeding in Example 13 4: The bleeding was the same as in Example 13. 3: Better than Example 19, but worse than Example 13 2: The bleeding was the same as in Example 19. 1: Worse than the bleeding in Example 19

[0200] <Evaluation 3: Evaluation of ejection stability> The aqueous cyan inks produced above were filled into an inkjet ejection device equipped with a Kyocera inkjet head "KJ4B-1200" (design resolution 1200 dpi, nozzle diameter 20 μm). A nozzle check pattern was printed to confirm that there were no missing nozzles (phenomenon in which aqueous inkjet ink is not ejected from the nozzle), and then the inkjet ejection device was placed on standby in a 25°C environment. After a predetermined time had passed, a nozzle check pattern was printed again and the number of missing nozzles was visually counted to evaluate the ejection stability. The evaluation criteria were as follows, with a score of 2 or more being deemed usable. 4: No missing nozzles even after printing for 3 hours 3: When printing after waiting for 2 hours, there were no missing nozzles, but when printing after waiting for 3 hours, one or more missing nozzles occurred. 2: When printing after waiting for 1 hour, there were no missing nozzles, but when printing after waiting for 2 hours, one or more missing nozzles occurred. 1: When printing after waiting for 1 hour, one or more nozzles were missing.

[0201] [Table 6]

[0202] [Table 6]

[0203] As is clear from Tables 4 and 6, the aqueous inkjet inks 1 to 18, 22 to 25, 27 to 40, 42 to 86, and 89 to 92, which satisfy the requirements of the present invention, were confirmed to have practically usable levels in all evaluations of conformability to deformation of various shrink films, bleeding, and ejection stability.

[0204] In contrast, the aqueous inkjet inks 19 to 20, which do not contain the organic solvent (A-1), were inferior in conformity to the deformation of the PET shrink film and the PS shrink film. It is believed that the absence of the organic solvent (A-1) caused insufficient affinity between the aqueous inkjet ink and the resin constituting the shrink film, and the ink layer was unable to conform to the deformation of the shrink film. The same tendency was confirmed in the aqueous inkjet ink 21, which contained less than 5% by mass of the organic solvent (A-1). On the other hand, in the aqueous inkjet ink 26, which contained more than 30% by mass of the organic solvent (A-1), deterioration in conformity to the deformation of the PP shrink film was confirmed, and strong bleeding was confirmed in the printed matter. It is believed that the bleeding worsened due to an imbalance in the surface tension of the aqueous inkjet ink.

[0205] The aqueous inkjet ink 41 is a system that does not contain a surfactant (B-1), and the deformation conformability does not reach a practically usable level regardless of the type of resin that constitutes the shrink base material. In addition, the weighted average SP value of the resin and the surfactant is 9 (cal / cm 3 ) 1 / 2 Water-based inkjet ink 87, whose weighted average SP value was less than 11.5 (cal / cm 3 ) 1 / 2 Water-based inkjet ink 88, which had a larger deformation coefficient than water-based inkjet ink 88, also showed a deterioration in deformation conformability in some shrink films.

[0206] From the above results, it can be confirmed that the composition of the aqueous inkjet ink of this embodiment is essential for obtaining printed matter with excellent deformation followability, regardless of the type of printing substrate that constitutes the shrink film.

[0207] The aqueous inkjet ink 93 reproduces the composition of the aqueous ink specifically shown in Patent Document 1 (only the composition of the organic solvent and surfactant), and the evaluation results showed that the deformation conformability was deteriorated regardless of the type of resin that constitutes the shrink base material. As with the aqueous inkjet ink 41, the aqueous inkjet ink 93 does not contain a surfactant (B-1), and only a siloxane-based surfactant is used. This is thought to have caused the thickness of the ink layer to become non-uniform and the affinity with the shrink film to deteriorate, adversely affecting the deformation conformability.

[0208] [Examples 86 to 136] Furthermore, the following evaluation 4 was carried out using the cyan solid prints produced by the method described above using the above-mentioned water-based inkjet inks 13, 15, 42 to 86, and 89 to 92. The evaluation results are shown in Table 5.

[0209] <Evaluation 4: Recyclability evaluation> A PET shrink film was used as the printing substrate, and the area printed with the water-based cyan ink was cut out into a 4cm x 4cm square from the cyan solid print produced by the method described above. The cut-out print was then immersed in 50g of a 2% by mass aqueous sodium hydroxide solution, heated to 70°C, and stirred for 60 minutes. The print was then removed from the aqueous sodium hydroxide solution, washed with water, and dried, after which the extent to which the ink layer had separated from the shrink film was visually confirmed to evaluate recyclability. The evaluation criteria were as follows, with a score of 2 or more deemed usable. 4: Detachment of the ink layer from the shrink film was observed, and the degree of detachment was better than that in Example 86. 3: Detachment of the ink layer from the shrink film was observed, and the degree of detachment was the same as in Example 86. 2: Detachment of the ink layer from the shrink film was observed, but the degree of detachment was worse than in Example 86. 1: No detachment of the ink layer from the shrink film was observed.

[0210] [Table 7]

[0211] <Printing 2> Using a non-wire bar coater "250-OSP-04" manufactured by OSG System Products, each of the three types of shrink films described above was coated with each of the pretreatment liquids 1 to 3 to a wet film thickness of 4 μm. The coated shrink films were then placed in an air oven at 55°C and dried for 1 minute to produce shrink films to which the pretreatment liquids had been applied. Then, a cyan solid print and a two-color cross print were produced using the same method and conditions as described in "Printed material production 1" above, except that a shrink film to which the above pretreatment liquid had been applied was used as the printing substrate.

[0212] [Examples 137 to 142] A cyan solid print and a two-color cross print were produced by the above-mentioned method using the combinations of the pretreatment liquid and the aqueous inkjet ink shown in Table 8 below. The produced prints were then used to carry out the above-mentioned evaluations 1 and 2. The evaluation results are shown in Table 8.

[0213] [Table 8]

[0214] It was confirmed from Tables 5 and 8 that even if a pretreatment liquid is used, by satisfying the requirements of the present invention, a printed matter having excellent deformation followability can be obtained. Furthermore, by using a pretreatment liquid capable of forming an ink aggregation layer in combination with a water-based inkjet ink, an especially excellent result of ⊚ level was obtained in the evaluation of bleeding.

Claims

1. A water-based inkjet ink for shrink films, comprising an organic solvent, a surfactant, and a resin, The organic solvent has an SP value of 11 to 13.5 (cal / cm 3 ) 1 / 2 The aqueous inkjet ink contains an organic solvent (A-1) having one or more hydroxyl groups in an amount of 5 to 30% by mass based on the total amount of the aqueous inkjet ink. The surfactant comprises one or more surfactants (B-1) selected from the group consisting of acetylene diol surfactants and polyoxyalkylene alkyl ether surfactants, The weighted average SP value of the resin and the surfactant is 9 to 11.5 (cal / cm 3 ) 1 / 2 This is a water-based inkjet ink for shrink film.

2. 2. The water-based inkjet ink for shrink films according to claim 1, wherein the one or more surfactants (B-1) selected from the group consisting of acetylene diol surfactants and polyoxyalkylene alkyl ether surfactants include a surfactant (B-1-1) having an HLB value of 3 to 12.

3. 3. The water-based inkjet ink for shrink films according to claim 1, wherein the organic solvent has a boiling point (weighted average value) at 1 atmospheric pressure of 150 to 190° C.

4. 3. A printed matter obtained by printing the aqueous inkjet ink according to claim 1 or 2 on a shrink film by an inkjet printing method.

Citation Information

Patent Citations

  • Shrink film for ink jet recording and method for ink jet recording using the same

    JP2003246136A

  • Aqueous composition for inkjet recording

    JP2019189867A