Ink composition for metal printing

By using calcium carbonate and limiting silica content, the ink composition for metal printing addresses stability and productivity issues, ensuring faster premixing, reduced misting, and enhanced transferability while maintaining storage stability.

JP2025143680APending Publication Date: 2025-10-02SAKATA INX
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Patent Information

Application Number
JP2024043030
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-03-19
Publication Date
2025-10-02

AI Technical Summary

Technical Problem

White ink compositions for metal printing have high solids content, leading to stability issues over time and reduced productivity due to extended dispersion and premixing times, which affect printability and transferability during high-speed printing.

Method used

Incorporating calcium carbonate with an average primary particle size of 70 nm or less and limiting silica content to 5 mass% or less, along with specific solvents and resins, to enhance dispersibility and stability.

Benefits of technology

The ink composition allows for faster premixing, reduces misting and improves transferability during high-speed printing, and maintains good storage stability.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a white ink composition for metal printing which can complete premixing in a shorter time, and has printability such as reduction in misting during printing and transferability at the time of high speed printing, and good storage stability.SOLUTION: An ink composition for metal printing contains a coloring pigment, a resin, a solvent, silica and calcium carbonate, and contains titanium oxide as the coloring pigment, wherein the content of the silica is 5 mass% or less with respect to the whole composition, and an average primary particle diameter of the calcium carbonate is 70 nm or less.SELECTED DRAWING: None
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Description

[Technical Field]

[0001] The present invention relates to an ink composition for metal printing, and more particularly to a white ink composition for metal printing. [Background technology]

[0002] For printing on the outer metal surfaces of metal materials, such as galvanized or tinned iron sheets, aluminum sheets, or metal cans made from these metal materials, metal printing ink compositions are used, the main vehicle components of which are binder resins such as alkyd resins, polyester resins, and epoxy resins, and organic solvents such as mineral oils or higher alcohols.

[0003] Furthermore, these printing surfaces are generally coated with an overprint varnish to improve the ink film's adhesion, bending resistance, impact resistance, abrasion resistance, etc. These overprint varnishes are commonly solvent-based varnishes that contain binder resins such as alkyd resins, polyester resins, acrylic resins, and epoxy resins, hardeners such as melamine resins and benzoguanamine resins, and organic solvents such as mineral oils and cellosolves.

[0004] When printing on the outer surface of a metal, ink is printed using an offset printing machine, dry offset printing machine, etc., and then an overprint varnish is applied wet-on-wet onto the ink coating using a coater, etc., and then baked at 150 to 280°C.

[0005] Incidentally, metal printing is almost always performed using a white ink composition in addition to the four process colors (yellow, magenta, cyan, and black). This is because the printing target for metal printing is metallic, not white like paper, and therefore a white ink composition is required to reproduce the white color. Furthermore, to enhance the color development of full-color printing using process colors, the entire printing area may be printed with a white ink composition prior to the printing of the process colors. This white ink composition requires high hiding power to conceal the color of the base, and therefore contains a high concentration of titanium oxide, a white pigment. In fact, the white ink compositions described in Patent Documents 1 to 3 contain high concentrations of titanium oxide, and the invention described in Patent Document 3 is said to use small-particle silica in addition to titanium oxide to further enhance hiding power. Thus, white ink compositions tend to contain a high content of solids, such as color pigments and extender pigments, to ensure high hiding power. [Prior art documents] [Patent documents]

[0006] [Patent Document 1] Japanese Patent Application Publication No. 6-279722 [Patent Document 2] Japanese Patent Application Laid-Open No. 2011-26404 [Patent Document 3] Patent Publication No. 2021-91806 Summary of the Invention [Problem to be solved by the invention]

[0007] As mentioned above, white ink compositions tend to have a high solids content, which can lead to a decrease in the ink composition's stability over time and a deterioration in printability. A typical solution to this problem is to extend the dispersion process (a milling process using a roll mill or the like) to improve the dispersibility of the solids in the ink composition. However, extending the dispersion process lengthens the production lead time and reduces productivity. Furthermore, prior to the dispersion process, premixing is performed, in which solids such as pigments are added to and mixed with the varnish, thoroughly blending the solids into the varnish until they are no longer powdery. However, as the solids content increases, this premixing process also takes a long time, which also reduces productivity.

[0008] The present invention has been made in view of the above circumstances, and aims to provide a white ink composition for metallic printing that can be premixed in a shorter time, has printability such as reduced misting during printing and transferability during high-speed printing, and has good storage stability. [Means for solving the problem]

[0009] As a result of extensive research into solving the above problems, the present inventors discovered that the above problems can be solved by adding calcium carbonate to a white ink composition for metal printing in addition to silica as an extender pigment, and further by setting the silica content to 5 mass% or less and setting the average primary particle size of the calcium carbonate to 70 nm or less, thereby completing the present invention. Specifically, the present invention provides the following.

[0010] (1) The present invention is an ink composition for metal printing comprising a color pigment, a resin, a solvent, silica, and calcium carbonate, characterized in that the color pigment contains titanium oxide, the content of the silica is 5 mass% or less of the total composition, and the average primary particle diameter of the calcium carbonate is 70 nm or less.

[0011] (2) In addition, the present invention provides a solvent having a solubility parameter (sp value) of 10.00 (cal / cm 3 ) 1 / 2 The ink composition for metal printing according to item (1) is characterized in that it is less than 100% and contains at least one compound selected from the group consisting of compounds represented by the following general formula (1): [ka] (In the above general formula (1), each A is independently an alkylene group having 2 to 4 carbon atoms which may have a branch, R is an alkyl group having 1 to 13 carbon atoms which may have a branched and / or cyclic structure, and n is an integer of 2 to 8.)

[0012] (3) The present invention also provides an ink composition for metal printing according to item (2), wherein the divalent group represented by AO in general formula (1) is an oxypropylene group.

[0013] (4) The present invention also provides the ink composition for metal printing according to any one of (1) to (3), wherein the silica is surface-hydrophobized silica.

[0014] (5) The present invention also provides an ink composition for metal printing according to any one of (1) to (4), wherein the resin contains an alkyd resin.

[0015] (6) The present invention also provides an ink composition for metal printing according to the above item (5), wherein the alkyd resin has a mass average molecular weight of less than 10,000.

[0016] (7) The present invention also provides an ink composition for metal printing according to item (5) or (6), wherein the alkyd resin has a pentaerythritol skeleton.

[0017] (8) The present invention also provides the ink composition for metal printing according to any one of (5) to (7), further comprising a rosin-modified resin as the resin.

[0018] (9) The present invention also provides the ink composition for metal printing according to any one of (1) to (8), further comprising an alkanolamine. [Effects of the Invention]

[0019] According to the present invention, a white ink composition for metallic printing is provided which can be premixed in a shorter time, has printability such as reduced misting during printing and good transferability during high-speed printing, and has good storage stability. DETAILED DESCRIPTION OF THE INVENTION

[0020] An embodiment of the ink composition for metal printing of the present invention will be described below. Note that the present invention is not limited to the following embodiment, and can be practiced by making appropriate modifications within the scope of the present invention.

[0021] The ink composition for metal printing of the present invention (hereinafter referred to as "the ink composition of the present invention") is for metal printing and is preferably applied to printing by the so-called dry offset printing method using a relief plate as the printing plate or the offset printing method using a lithographic plate as the printing plate, but can be applied to all printing methods commonly used in metal printing. Furthermore, the ink composition of the present invention suppresses the occurrence of misting during printing, and suppresses the occurrence of staining around the printing machine due to tiny ink droplets generated during printing. Furthermore, the ink composition of the present invention significantly reduces the poor transferability and poor storage stability during high-speed printing that are caused by the tendency of white ink compositions to have a high pigment solids content.

[0022] The ink composition of the present invention is a metal printing ink composition comprising a color pigment, a resin, a solvent, silica, and calcium carbonate, wherein the color pigment contains titanium oxide, the content of the silica is 5 mass% or less based on the total composition, and the average primary particle size of the calcium carbonate is 70 nm or less. Each component will be described below.

[0023] [Coloring pigments] The ink composition of the present invention contains titanium oxide as a color pigment. Examples of titanium oxide that have been used in ink compositions to date are not particularly limited. Examples of such titanium oxide include anatase-type titanium oxide and rutile-type titanium oxide, with rutile-type titanium oxide being preferred from the viewpoint of achieving higher hiding power. The titanium oxide may be surface-treated with a metal oxide such as alumina, silica, or zirconia, and its average particle size may preferably be, for example, about 0.1 μm to 0.5 μm.

[0024] The content of titanium oxide in the ink composition is preferably about 10 to 60 mass %, more preferably about 20 to 50 mass %, and even more preferably about 30 to 45 mass %, based on the total mass of the composition.

[0025] [resin] The resin used in the ink composition of the present invention may be any resin that has been used in ink compositions for metal printing, without any particular limitation. Among these resins, alkyd resins and rosin-modified resins are preferably used in the ink composition of the present invention. These resins will now be described.

[0026] Alkyd resins are condensation polymers of polyhydric alcohols and polybasic acids, a type of polyester, but can also be prepared by condensation polymerization with animal and vegetable oils and / or their fatty acids. In this process, the animal and vegetable oils undergo transesterification with the polyhydric alcohol to form fatty acids, which are then incorporated into the alkyd resin structure. The proportion of fatty acids derived from animal and vegetable oils in an alkyd resin is referred to as the oil length, and the oil length of the alkyd resin used in the present invention is preferably 20 to 50% by mass. Oil-free alkyd resins that do not contain fatty acid components from animal or vegetable oils may also be used.

[0027] The alkyd resin used in the present invention is preferably one having a pentaerythritol skeleton in the molecule. The use of an alkyd resin having such a skeleton is preferred because it can improve the impact resistance of the printed film after retort treatment. Such an alkyd resin is prepared using pentaerythritol as the polyhydric alcohol. The alkyd resin used in the present invention may also be prepared using other polyhydric alcohols in addition to pentaerythritol.

[0028] An alkyd resin having a pentaerythritol skeleton in its molecule can be obtained, for example, as a condensation polymer of an acid component consisting of a fatty acid and a polybasic acid with a polyhydric alcohol containing at least pentaerythritol. Next, a method for preparing such an alkyd resin will be described.

[0029] Fatty acids are obtained by hydrolyzing natural fats and oils such as vegetable oils and animal oils, and because they have one carboxyl group, they can form esters with polyhydric alcohols, as described below. By incorporating such fatty acids into alkyd resins, it is possible to improve the transferability of ink compositions using the same and increase the proportion of biomass-derived components. From this perspective, it is preferable to use fatty acids in an amount such that the oil length, which is the ratio (mass %) of the mass of the fatty acid moiety to the mass of the entire resin, is approximately 20 to 50 mass %. A preferred example of such a fatty acid is coconut oil fatty acid. Various fatty acids can be used, and these can be used alone or in combination of two or more.

[0030] The polybasic acid is a compound having multiple carboxy groups and is a component for polycondensation with a polyhydric alcohol (described later) to achieve a high molecular weight. Examples of such polybasic acids include phthalic acid, phthalic anhydride, isophthalic acid, terephthalic acid, adipic acid, trimellitic acid, 1,2-cyclohexanedicarboxylic acid, 1,3-cyclohexenedicarboxylic acid, 1,4-cyclohexenedicarboxylic acid, hexahydrophthalic anhydride, 5-sodiosulfoisophthalic acid, fumaric acid, benzoic acid, tert-butylbenzoic acid, tetrahydrophthalic anhydride, maleic anhydride, succinic acid, succinic anhydride, fumaric acid, sebacic acid, azelaic acid, tetrabromophthalic anhydride, methylhimic anhydride, tetrachlorophthalic anhydride, hexahydrophthalic anhydride, pyromellitic anhydride, trimellitic anhydride, and methylcyclohexenedicarboxylic anhydride. Among these, phthalic acid or phthalic anhydride is preferred. These polybasic acids can be used alone or in combination of two or more.

[0031] The polyhydric alcohol forms an ester with the acid component, thereby increasing the molecular weight of these components. As the polyhydric alcohol, any of those that have been used in the synthesis of alkyd resins can be used without limitation, and examples thereof include compounds having two or more hydroxyl groups.

[0032] In addition to the above-mentioned pentaerythritol, such compounds include ethylene glycol, 1,3-propanediol, 1,2-propanediol, 1,4-butanediol, diethylene glycol, triethylene glycol, polyethylene glycol, dipropylene glycol, 1,3-butanediol, neopentyl glycol, spiroglycol, dioxane glycol, adamantanediol, 3-methyl-1,5-pentanediol, methyloctanediol, 1,6-hexanediol, 1,4-cyclohexanedimethanol, 2-methylpropanediol, 3-methylpentanediol, 1,6-hexanediol, 1,4-cyclohexanedimethanol, 2-methylpropanediol, 3-methylpentanediol, 1,6-hexanediol, 1,4-cyclohexanedimethanol, 2-methylpropanediol, 1,3-methylpentanediol, 1,3-methylpentanediol, 1,4-methylpentanediol, 1,5 ...1,3-methylpentanediol, 1,3-methylpentanediol, 1,5-methylpentanediol, 1,6-hexanediol, 1,4-cyclohexanedimethanol, 1,3-methylpentanediol, 1,3-methylpentanediol, 1,5-methylpentanediol, 1,6-hexanediol, 1,4-cyclohexanedimethanol, 1,3-methylpentanediol, 1,3-methylpentanediol, 1,5-methylpentanediol, 1,6-hexanediol, ,5, hexamethylene glycol, octylene glycol, 9-nonanediol, 2,4-diethyl-1,5-pentanediol, ethylene oxide-modified compounds of bifunctional phenols such as bisphenol A, propylene oxide-modified compounds of bifunctional phenols such as bisphenol A, ethylene oxide and propylene oxide copolymer-modified compounds of bisphenol A, copolymer polyether polyols of ethylene oxide and propylene oxide, polycarbonate diol, adamantane diol, polyether diol, polyester diol, polycaprolactone diol, etc. These can be used alone or in combination of two or more.

[0033] To prepare an alkyd resin, a reaction vessel containing the acid component and polyhydric alcohol is charged with an inert gas such as nitrogen gas, and a small amount of a solvent such as xylene is added and heated. The resulting mixture is then azeotropically distilled with the condensed water to remove the water, resulting in condensation polymerization. Alternatively, an alkyd resin that provides a highly crosslinked, tough cured coating can be obtained by using a condensation polymerization reaction between the acid component and polyhydric alcohol as the first step and a polybasic acid with a functionality of 3 or more, such as trimellitic acid, as the second step. The reaction temperature can be approximately 170 to 250°C, and the reaction time can be approximately 5 to 25 hours, but is not particularly limited. The completion of the reaction can be determined by monitoring the acid value of the reaction mixture over time. That is, the reaction is considered complete when the decrease in the acid value of the reaction mixture accompanying the condensation polymerization stops. The condensation polymerization reaction can be carried out more quickly by distilling the water produced by the condensation polymerization out of the system or by using a reaction catalyst. Examples of the reaction catalyst include tetrabutyl zirconate, monobutyltin oxide, zirconium naphthate, and tetrabutyl titanate.

[0034] The mass average molecular weight of the alkyd resin is preferably less than 10,000, more preferably 8,500 or less, and even more preferably 7,000 or less.

[0035] The mass average molecular weight of the resin in the present invention can be measured by gel permeation chromatography (GPC). As an example, chromatography is performed using a Waters Acquity APC (Waters) as a GPC apparatus, ACQUITY APC XT 45 1.7 μm 4.6 × 150 mm, ACQUITY APC XT 200 2.5 μm 4.6 × 75 mm, and ACQUITY APC XT 900 2.5 μm 4.6 × 75 mm (Waters), respectively, under the following conditions: tetrahydrofuran as a mobile phase, a column temperature of 40 ° C, a flow rate of 0.8 mL / min, an RI detector, a sample injection concentration of 10 mg / 5 mL, and an injection volume of 10 μL, and the value can be calculated as the mass average molecular weight in terms of polystyrene.

[0036] The content of the alkyd resin in the ink composition is preferably from 10 to 40% by mass, more preferably from 20 to 40% by mass, based on the total mass of the composition.

[0037] Rosin-modified resins are resins prepared using rosin as one of the raw materials. Rosin contains a mixture of resin acids such as abietic acid, palustric acid, isopimaric acid, and levopimaric acid. These resin acids contain hydrophilic, chemically active carboxyl groups, and some also contain conjugated double bonds. Therefore, various rosin-modified resins have been prepared by combining polyhydric alcohols and polybasic acids and subjecting them to condensation polymerization; adding resols, which are condensates of phenols, to the benzene rings contained in the rosin skeleton; or subjecting dienophiles such as maleic anhydride and maleic acid to a Diels-Alder reaction to add maleic acid or maleic anhydride skeletons. Various types of such rosin-modified resins are commercially available, and they can be obtained and used.

[0038] Examples of rosin-modified resins include rosin ester resins, maleated rosin, fumarated rosin resins, rosin-modified maleic acid resins, rosin-modified fumaric acid resins, rosin-modified phenolic resins, rosin-modified alkyd resins, rosin-modified polyester resins, etc. In the present invention, any of the rosin-modified resins may be used, but among these, rosin ester resins are preferably used.

[0039] The rosin-modified resin used in the present invention preferably has a hydroxyl value of 10 mgKOH / g or more. By including such a rosin-modified resin with a high hydroxyl value in the ink composition of the present invention, the transferability of the ink composition during printing can be further improved. Furthermore, the increased polarity of the composition itself increases its affinity with aqueous OP varnishes, which also have high polarity, thereby suppressing repelling even when the ink composition is applied wet-on-wet. The hydroxyl value of the rosin-modified resin is more preferably 15 mgKOH / g or more, and even more preferably 20 mgKOH / g or more. The upper limit of the hydroxyl value of the rosin-modified resin is not particularly limited, but is, for example, approximately 200 mgKOH / g, preferably approximately 150 mgKOH / g, and more preferably approximately 100 mgKOH / g.

[0040] Furthermore, although not particularly limited, the acid value of the rosin-modified resin is preferably 100 mgKOH / g or less. Having an acid value of 100 mgKOH / g or less is preferable because it can achieve both suppression of cissing when an aqueous OP varnish is applied wet-on-wet and printability, such as suppression of misting and smearing. The acid value of the rosin-modified resin is more preferably 80 mgKOH / g or less, and even more preferably 50 mgKOH / g or less.

[0041] The rosin-modified resin is used in the form of a varnish obtained by heating with a solvent described below to dissolve or disperse it. The rosin-modified resin may be used as a dissolved varnish in which it remains dissolved or dispersed in a solvent, or may be used in the form of a gelled varnish obtained by dissolving the resin in the varnish during preparation by adding a divalent or higher metal alkoxy compound as a gelling agent to the dissolved varnish. Among these, preparing a dissolved varnish from the rosin-modified resin and using it to prepare an ink composition is preferred, as it can improve the transferability of the ink composition during printing. Furthermore, preparing a gelled varnish from the rosin-modified resin and using it to prepare an ink composition can impart appropriate viscoelasticity to the ink composition, thereby improving flowability and reducing misting, as well as forming a tougher cured coating.

[0042] The content of the rosin-modified resin in the ink composition is preferably 1 to 20 mass% relative to the total composition, more preferably 1 to 10 mass% relative to the total composition, and even more preferably 2 to 5 mass% relative to the total composition.

[0043] In addition to the alkyd resin or rosin-modified resin, the ink composition of the present invention can also contain resins conventionally used in preparing ink compositions for metal printing. That is, depending on the required performance, such as printability and coating properties, known resins compatible with the alkyd resin or rosin-modified resin can be used alone or in combination. Examples of such resins include polyester resins, petroleum resins, epoxy resins, ketone resins, amino resins, and benzoguanamine resins.

[0044] [solvent] The solvent used in the ink composition of the present invention can be any solvent that has been used in the field of ink compositions for metal printing, without any particular limitation. Examples of such solvents include aliphatic hydrocarbons, alicyclic hydrocarbons, alkylbenzenes, polyalkylene glycols, etc., which have a boiling point range of about 230 to 400°C. The ink composition of the present invention is particularly suitable for use in ink compositions containing aliphatic hydrocarbons, alicyclic hydrocarbons, alkylbenzenes, polyalkylene glycols, etc., which have a solubility parameter (sp value) of 10.00 (cal / cm 3 ) 1 / 2 A preferred example of the compound is at least one selected from the group consisting of compounds having a solubility parameter (sp value) of less than 10.00 (cal / cm 3 ) 1 / 2 The specific solvent has an sp value of less than 9.80 (cal / cm 3 ) 1 / 2 The lower limit of the sp value in the specific solvent is preferably 8.50 (cal / cm 3 ) 1 / 2 A preferable range is 9.00 (cal / cm 3 ) 1 / 2 The specific solvent having such an sp value can also be said to be a polyalkylene glycol monoalkyl ether having hydrophobic properties.

[0045] [ka]

[0046] In the general formula (1), each A is independently an alkylene group having 2 to 4 carbon atoms, which may have a branch. Examples of such alkylene groups include an ethylene group [-(CH2)2-], a propylene group [-CH2(CH3)-CH2- or -CH2CH2(CH3)-], a trimethylene group [-(CH2)3-], and an isopropylidene group [-C(CH3)2-]. Among these, a propylene group is preferred. In this case, the divalent group represented by AO in the general formula (1) is an oxypropylene group.

[0047] In the general formula (1), R is an alkyl group having 1 to 13 carbon atoms, which may have a branched and / or cyclic structure. This alkyl group may be not only an aliphatic group but also an alicyclic group. Examples of such alkyl groups include methyl, ethyl, propyl, isopropyl, butyl, hexyl, 2-ethylhexyl, octyl, decyl, and cyclohexyl groups.

[0048] In the above general formula (1), n ​​is an integer of 2 to 8. When n is 2 or more, it is possible to ensure a sufficient boiling point of the specific solvent to provide stability to the ink composition on a printing press, which is preferable, and when n is 8 or less, it is possible to achieve a viscosity that is preferable as a solvent for the ink composition.

[0049] Examples of the compound represented by the above general formula (1) include dipropylene glycol monomethyl ether, dipropylene glycol monobutyl ether, dipropylene glycol monooctyl ether, dipropylene glycol tridecyl ether, tripropylene glycol monobutyl ether, tripropylene glycol monodecyl ether, tetrapropylene glycol monohexyl ether, pentapropylene glycol monobutyl ether, and hexapropylene glycol monomethyl ether.

[0050] The sp value used in the present invention is calculated by the Fedros method (see reference: RF Fedros, Polym. Eng. Sci., 14(2)147(1974)).

[0051] The content of the solvent in the ink composition of the present invention is preferably 10 to 50 mass% of the entire composition, and more preferably 20 to 45 mass% of the entire composition. Among the solvents, the content of the specific solvent is preferably 15 to 40 mass% of the entire composition, and it is preferable that all of the solvents in the composition are the specific solvent. By including such a specific solvent in the ink composition of the present invention, misting during printing can be reduced, which is preferable.

[0052] [silica] The ink composition of the present invention contains silica. Silica contributes to improving the hiding power of the ink composition of the present invention. The silica used in the present invention is preferably in the form of extremely fine particles with an average primary particle diameter of 100 nm or less, and may be hydrophilic silica whose particle surfaces are covered with silanol groups, or surface-hydrophobized silica whose silanol groups present on the particle surface are modified with alkyl groups or the like. Among these, fumed silica whose average primary particle diameter is 10 to 30 nm and whose surface is hydrophobized is preferably used.

[0053] The content of silica in the ink composition of the present invention is 5% by mass or less. By having a silica content of 5% by mass or less, it is possible to reduce misting of the ink composition during high-speed printing, obtain good transferability, and improve the storage stability of the ink composition. It is also possible to shorten the premixing time in the production stage of the ink composition. The lower limit of the silica content in the ink composition of the present invention is preferably about 0.1% by mass, more preferably about 1% by mass, and even more preferably about 2% by mass.

[0054] [Calcium carbonate] The ink composition of the present invention contains calcium carbonate having an average primary particle diameter of 70 nm or less. That is, the calcium carbonate used in the present invention is in the form of powder particles. Calcium carbonate contributes to improving the hiding power of the ink composition of the present invention. Furthermore, since the primary particle diameter of calcium carbonate is 70 nm or less, the storage stability of the ink composition can be ensured. Furthermore, the lower limit of the primary particle diameter of calcium carbonate is preferably about 10 nm, more preferably about 20 nm, and even more preferably about 30 nm.

[0055] The calcium carbonate used in the present invention is preferably one whose particle surface has been modified by chemical modification. In this case, preferred examples of the treatment agent used for the modification include fatty acids and rosin acids. Various types of such modified calcium carbonate are commercially available, including the Hakuenka series manufactured by Shiraishi Calcium.

[0056] The content of calcium carbonate in the ink composition of the present invention is preferably about 2 to 15% by mass, more preferably about 2 to 10% by mass, and even more preferably about 4 to 10% by mass.

[0057] [Other ingredients] The ink composition of the present invention preferably contains an alkanolamine in addition to the above components. By containing an alkanolamine in the ink composition of the present invention, misting during printing can be reduced.

[0058] Examples of alkanolamines include monoethanolamine, diethanolamine, triethanolamine, ethylmonoethanolamine, n-butylmonoethanolamine, dimethylethanolamine, diethylethanolamine, ethyldiethanolamine, n-butyldiethanolamine, di-n-butylethanolamine, triisopropanolamine, etc. Among these, triethanolamine is preferred.

[0059] The content of alkanolamine in the ink composition of the present invention is preferably 0.1 to 3 mass %, more preferably 0.1 to 1 mass part, based on the total mass of the composition.

[0060] Other components that may be added to the ink composition of the present invention, if necessary, include known curing agents, pigment dispersants, waxes, extender pigments such as silica particles, benton clay, kaolin, and talc, and stabilizers.

[0061] As the curing agent, for example, an amino resin such as a melamine resin or a benzoguanamine resin can be used.

[0062] To prepare the ink composition of the present invention, the above-mentioned components are first mixed and stirred until the powder components, such as titanium oxide, silica, and calcium carbonate, are no longer powdery. As already explained, this process is called premixing, and is a process for thoroughly blending the solvent and varnish with the powder components. The mixture obtained by premixing is then milled using a roll mill, ball mill, bead mill, or the like to obtain the ink composition of the present invention. The viscosity of the ink composition is, for example, 10 to 70 Pa·s at 25°C as measured by a Raley viscometer, but is not particularly limited.

[0063] The metal for metal printing in the ink composition of the present invention is not particularly limited, but examples thereof include zinc-plated or tin-plated iron sheets, aluminum sheets, and metal cans made of these metal materials. [Example]

[0064] The ink composition of the present invention will be explained in more detail below by showing examples, but the present invention is not limited to the following examples in any way.

[0065] [Preparation of alkyd resin varnish] The first stage of esterification was carried out by reacting 5.98 parts by weight of neopentyl glycol, 8.53 parts by weight of pentaerythritol, 10.10 parts by weight of coconut oil fatty acid, 11.95 parts by weight of isophthalic acid, and 2.48 parts by weight of terephthalic acid under a nitrogen atmosphere at 220°C until the acid value of the mixture reached 7 mgKOH / g. Then, 0.70 parts by weight of trimellitic anhydride was added, and the mixture was heated at 165°C under a nitrogen atmosphere for 30 minutes to carry out the second stage of esterification. These esterification reactions were carried out according to conventional methods to obtain an alkyd resin with a mass average molecular weight of 6,049 and a number average molecular weight of 2,591. To this alkyd resin, 21.8 parts by weight of tripropylene glycol monobutyl ether was added to produce an alkyd resin varnish. The sp value of this tripropylene glycol monobutyl ether was 9.73 (cal / cm 3 ) 1 / 2 and corresponds to the specific solvent in the present invention.

[0066] [Preparation of rosin-modified resin varnish] 63.2 parts by mass of rosin ester resin (hydroxyl value 20-30 mgKOH / g, acid value <10 mgKOH / g, mass average molecular weight 632, number average molecular weight 565) and 35.9 parts by mass of tripropylene glycol monobutyl ether were heated at 130°C for 1 hour to dissolve them, to obtain a rosin-modified resin varnish. The sp value of this tripropylene glycol monobutyl ether was 9.73 (cal / cm 3 ) 1 / 2 and corresponds to the specific solvent in the present invention.

[0067] [Examples 1 to 9, Comparative Examples 1 to 5] First, the components were mixed according to the formula of "Component 1" shown in Tables 1 and 2, and premixing was performed. Premixing was performed by heating the components other than the powder to about 60°C while stirring with a stirring blade, and then gradually adding the powder while continuing stirring and heating, and finishing when the powder became crumbly. The mixture obtained by premixing was kneaded in a three-roll mill, and then "Component 2" shown in Tables 1 and 2 was added and mixed well to prepare the ink compositions of Examples 1 to 9 and Comparative Examples 1 to 5. In Tables 1 and 2, the "specific solvent" was tripropylene glycol monobutyl ether (sp value 9.73 (cal / cm 3 ) 1 / 2 ), where "titanium oxide" is titanium oxide with an average primary particle diameter of 250 nm and DBP oil absorption of 18 g / 100 g, and "silica" is Aerosil R972 (surface hydrophobic treated silica, average primary particle diameter of 0.016 μm, specific surface area of ​​110 ± 20 m) manufactured by Nippon Aerosil Co., Ltd. 2 / g), where "clay" is a product named CLAYTONE APA (Benton clay) manufactured by BYK Japan Co., Ltd., "Calcium Carbonate 1" is a product named Hakuenka O (rosin acid-treated calcium carbonate, average primary particle diameter 30 nm) manufactured by Shiraishi Calcium Co., Ltd., "Calcium Carbonate 2" is a product named Hakuenka CC (fatty acid-treated calcium carbonate, average primary particle diameter 50 nm) manufactured by Shiraishi Calcium Co., Ltd., "Calcium Carbonate 3" is a product named Hakuenka DD (rosin acid-treated calcium carbonate, average primary particle diameter 50 nm) manufactured by Shiraishi Calcium Co., Ltd., "Calcium Carbonate 4" is a product named Viscoexcel 30 (fatty acid-treated calcium carbonate, average primary particle diameter 30 nm) manufactured by Shiraishi Calcium Co., Ltd., and "Calcium Carbonate 5" is a product named Hakuenka T-DD (rosin acid-treated calcium carbonate, average primary particle diameter 80 nm) manufactured by Shiraishi Calcium Co., Ltd.

[0068] [Premixing suitability evaluation] For each example and comparative example, when the ink composition was prepared according to the above procedure, the time required for premixing was measured, and the premixing suitability was evaluated based on the measurement results according to the following criteria. The evaluation results are shown in the "Premixing suitability" column in Tables 1 and 2. ○: The premixing time was less than 10 minutes. △: The time required for premixing was more than 10 minutes but less than 15 minutes. ×: The time required for premixing was 15 minutes or more.

[0069] [Misting amount evaluation] For each of the ink compositions of the Examples and Comparative Examples, 2.6 cc of the ink composition was applied to the rotating roller of an ink meter, smoothed evenly, and then rotated at 1200 rpm for 3 minutes. During this time, a piece of white paper was placed under the roller, and the amount of ink composition adhering to its surface due to misting was compared. The measurement was performed with the roller maintained at 40°C. The change in mass of the white paper before and after the measurement was determined, and this was taken as the misting amount (mg). The greater the change in mass of the white paper before and after the measurement, the greater the amount of ink composition scattered, so the smaller this value, the better the result. Based on the calculated misting amount (mg), evaluation was performed according to the following criteria. The evaluation results are shown in the "Misting" column of Tables 1 and 2. ○: The amount of misting was less than 5 mg △: The amount of misting was 5 mg or more and less than 10 mg ×: The amount of misting was 10 mg or more.

[0070] [Rapid metastatic assessment] For each of the ink compositions of the Examples and Comparative Examples, 0.1 cc of the ink composition was applied to a 50 μm thick aluminum substrate using a high-speed paint-applying machine "PM-900PT" (manufactured by Mitsui Electric Seiki Co., Ltd.) at a printing pressure of 90 kgf and a painting speed of 9 m / s. The resulting paints were evaluated according to the following criteria. The evaluation results are shown in the "High-speed transferability" column of Tables 1 and 2. ○: No fading is observed △: Blurring was observed in less than 50% of the transfer area, but within the practical range ×: Blurring is observed over 50% or more of the transfer area, and it is poor.

[0071] [Storage stability] The ink compositions of each Example and Comparative Example were allowed to stand at 25°C for 30 days, and then inspected by touch to evaluate their storage stability according to the following criteria. The results are shown in the "Storage stability" column of Tables 1 and 2. ○: Almost no change in the touch from immediately after preparation △: It was harder to the touch compared to when it was immediately after preparation, but it was at a level that did not pose any practical problems. ×: The product was harder to the touch than when it was immediately after preparation, to the extent that it was problematic for practical use.

[0072] [Table 1]

[0073] [Table 2]

[0074] As shown in Tables 1 and 2, in Examples 1 to 9, which are ink compositions of the present invention, all evaluation items were within practical ranges, whereas it can be understood that there are problems in terms of production and practical use in Comparative Examples 1 to 5. From the above, it was demonstrated that the ink composition of the present invention allows premixing to be completed in a shorter time, and has printability such as reduced misting during printing and transferability during high-speed printing, as well as good storage stability.

Claims

1. An ink composition for metal printing comprising a color pigment, a resin, a solvent, silica, and calcium carbonate, The color pigment contains titanium oxide, The content of the silica is 5% by mass or less based on the total amount of the composition, An ink composition for metal printing, characterized in that the calcium carbonate has an average primary particle size of 70 nm or less.

2. The solvent has a solubility parameter (sp value) of 10.00 (cal / cm 3 ) 1/2 2. The ink composition for metal printing according to claim 1, wherein the total amount of the ink composition is less than 100 wt %, and the ink composition contains at least one compound selected from the group consisting of compounds represented by the following general formula (1): 【Chemical 1】 (In the above general formula (1), each A is independently an alkylene group having 2 to 4 carbon atoms which may have a branch; R is an alkyl group having 1 to 13 carbon atoms which may have a branched and / or cyclic structure; and n is an integer of 2 to 8.)

3. 3. The ink composition for metal printing according to claim 2, wherein the divalent group represented by AO in general formula (1) is an oxypropylene group.

4. 2. The ink composition for metal printing according to claim 1, wherein the silica is surface-hydrophobized silica.

5. 2. The ink composition for metal printing according to claim 1, wherein the resin comprises an alkyd resin.

6. 6. The ink composition for metal printing according to claim 5, wherein the alkyd resin has a mass average molecular weight of less than 10,000.

7. 6. The ink composition for metal printing according to claim 5, wherein the alkyd resin has a pentaerythritol skeleton.

8. 6. The ink composition for metal printing according to claim 5, further comprising a rosin-modified resin as the resin.

9. 2. The ink composition for metal printing according to claim 1, further comprising an alkanolamine.

Citation Information

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