Oily ink composition for notebooks

The oil-based ink composition with specific pigment and fluororesin particle ratios enhances abrasion resistance and adhesion on non-wettable surfaces, addressing the limitations of existing ink compositions by maintaining line integrity under severe conditions.

JP7849352B2Active Publication Date: 2026-04-21MITSUBISHI PENCIL CO LTD
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
MITSUBISHI PENCIL CO LTD
Filing Date
2022-03-18
Publication Date
2026-04-21

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Abstract

This oily ink composition for writing utensils comprises a pigment, a binder resin, an organic solvent, and fluororesin particles, wherein the total content of the pigment and the fluororesin particles is 35-70 mass% with respect to the mass of the solid components of the oily ink composition and the ratio of the mass of the fluororesin particles to the total mass of the pigment and the fluororesin particles is 0.10-0.45.
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Description

[Technical Field]

[0001] This invention relates to an oil-based ink composition for writing instruments. [Background technology]

[0002] Oil-based ink compositions used in felt-tip pens are required to have properties such as good adhesion of the lines formed on various writing surfaces and lightfastness that prevents fading when exposed to sunlight for extended periods. In particular, oil-based inks are required to produce lines with sufficient adhesion even when writing on materials with poor wettability, such as synthetic resin films, resin-coated paper, and metals. Furthermore, oil-based inks are required to have abrasion resistance even after being exposed to ultraviolet light and other elements.

[0003] To satisfy these requirements, Patent Document 1 discloses an oil-based ink composition for writing instruments, which contains a colorant, a resin, an organic solvent, and fluororesin particles, wherein the average particle size of the fluororesin particles, as measured by dynamic light scattering, is 0.1 μm or more and less than 1.0 μm. [Prior art documents] [Patent Documents]

[0004] [Patent Document 1] Japanese Patent Publication No. 2019-11401 [Overview of the project] [Problems that the invention aims to solve]

[0005] According to the oil-based ink composition for writing instruments described in Patent Document 1, it is possible to obtain scratch-resistant lines that can withstand repeated rubbing and rubbing with stronger force, and that are maintained even after being exposed to ultraviolet light.

[0006] However, there is a need for lines that can withstand even harsher environments. In these environments, even the oil-based ink composition for writing instruments described in Patent Document 1 sometimes failed to leave any trace of the ink.

[0007] Therefore, the present invention provides an oil-based ink composition for writing instruments that can produce lines with even higher abrasion resistance. [Means for solving the problem]

[0008] The inventors, after diligent study, discovered that the above problems could be solved by the following means, and thus completed the present invention. That is, the present invention is as follows: <Aspect 1> An oil-based ink composition for writing instruments, comprising a pigment, a binder resin, an organic solvent, and fluororesin particles, The total content of the pigment and the fluororesin particles is 35 to 70% by mass, based on the mass of the solid content of the oil-based ink composition for writing instruments, and The ratio of the mass of the fluororesin particles to the total mass of the pigment and the fluororesin particles is 0.10 to 0.45. Oil-based ink composition for writing instruments. <Aspect 2> The oil-based ink composition for writing instruments according to Aspect 1, wherein the pigment comprises a metal oxide-based pigment. <Aspect 3> The oil-based ink composition for writing instruments according to aspect 2, wherein the metal oxide pigment is titanium dioxide. <Aspect 4> An oil-based ink composition for writing instruments according to aspect 2 or 3, wherein, when measured by dynamic light scattering, the ratio of the average particle diameter of the metal oxide pigment to the average particle diameter of the fluororesin particles is 0.2 to 4.0. <Aspect 5> An oil-based ink composition for writing instruments according to any one of aspects 1 to 4, wherein the pigment comprises a carbon-based pigment. <Aspect 6> The oil-based ink composition for writing instruments according to any one of aspects 1 to 4, wherein the fluorine-based resin particles are polytetrafluoroethylene particles. <Aspect 7> It comprises at least an ink storage section, a writing section, and a holding section, The ink storage section contains the oil-based ink composition for writing instruments described in any one of embodiments 1 to 6. Writing implements. <Aspect 8> The writing instrument according to aspect 7, further comprising an annular ink holder arranged inside the writing instrument so as to surround the writing portion. <Aspect 9> The density of the ink retainer in accordance with JIS K7222 is 50 kg / m³ 3 A writing instrument as described in Embodiment 8, wherein the number of cells conforming to JIS K6400-1 is 40 or more per 25 mm. [Effects of the Invention]

[0009] According to the present invention, it is possible to provide an oil-based ink composition for writing instruments that can produce lines with even higher abrasion resistance. [Brief explanation of the drawing]

[0010] [Figure 1] Figure 1(a) is a side view showing one embodiment of the valve-type marking pen of the present invention. Figure 1(b) is a side cross-sectional view showing one embodiment of the valve-type marking pen of the present invention. [Modes for carrying out the invention]

[0011] 《Oil-based ink composition for writing instruments》 The oil-based ink composition for writing instruments of the present invention, An oil-based ink composition for writing instruments, comprising a pigment, a binder resin, an organic solvent, and fluororesin particles, The total content of the pigment and the fluororesin particles is 35 to 70% by mass, based on the mass of the solid content of the oil-based ink composition for writing instruments, and The ratio of the mass of the fluororesin particles to the total mass of the pigment and the fluororesin particles is 0.10 to 0.45. This is an oil-based ink composition for writing instruments.

[0012] The inventors have found that with the above configuration, the erasability of the drawn lines has become even better. Specifically, (1) the total content rate of the pigment and the fluororesin particles is high (the total content rate of the binder resin and the dye is low), and (2) the fluororesin is in a predetermined amount with respect to the total mass of the pigment and the fluororesin particles. It is considered that the combination makes it difficult for the fluororesin particles to move in the drawn line when the drawn line is erased, and as a result, the erasability provided by the fluororesin particles is likely to be maintained.

[0013] The total content rate of the pigment and the fluororesin particles may be 35% by mass or more, 40% by mass or more, 45% by mass or more, or 50% by mass or more, based on the mass of the solid content of the oil-based ink composition for writing instruments, and may also be 70% by mass or less, 65% by mass or less, or 60% by mass or less. Here, the "solid content of the oil-based ink composition for writing instruments" means the part obtained by removing volatile components such as organic solvents from the oil-based ink composition for writing instruments.

[0014] The content rate of the solid content of the oil-based ink composition for writing instruments may be 10% by mass or more, 15% by mass or more, 20% by mass or more, or 25% by mass or more, based on the entire mass of the oil-based ink composition for writing instruments, and may also be 40% by mass or less, 35% by mass or less, or 30% by mass or less.

[0015] The oil-based ink composition for writing instruments of the present invention may further contain a dye.

[0016] Hereinafter, each component of the present invention will be described.

[0017] 〈Pigment〉 As the pigment, any arbitrary pigment can be used. For example, metal oxide-based pigments and carbon-based pigments can be used. Also, as the pigment, other pigments used as coloring pigments can be used.

[0018] The average particle size of the pigment may be 50 nm or more, 70 nm or more, 90 nm or more, 100 nm or more, 120 nm or more, 150 nm or more, 170 nm or more, or 200 nm or more, and may also be 1000 nm or less, 800 nm or less, 700 nm or less, 600 nm or less, 550 nm or less, 500 nm or less, 450 nm or less, or 400 nm or less. When the average particle size of the pigment is within the above range, the movement of fluorine-based resin particles in the drawn line when the line is rubbed can be well suppressed, thereby obtaining even better abrasion resistance.

[0019] In this specification, the average particle diameter is the average particle diameter obtained using the dynamic light scattering method. Specifically, this average particle diameter is the value of the average particle diameter obtained by cumulant analysis of the scattering intensity distribution using the nanoparticle analyzer nanoPartica SZ-100V2 (HORIBA).

[0020] (Metal oxide pigments) Examples of metal oxide pigments that can be used include talc, silica, alumina, titanium dioxide, alumina silicate, and alumina.

[0021] (Carbon-based pigments) Examples of carbon-based pigments that can be used include amorphous carbon powder, graphene, carbon nanotubes, graphite, and carbon black.

[0022] (Other coloring pigments) Other coloring pigments that can be used include, for example, organic pigments such as azo pigments, condensed azo pigments, phthalocyanine pigments, anthraquinone pigments, quinacudrin pigments, isoindolinone pigments, diketopyrrolopyrrole pigments, and various lake pigments, as well as fluorescent pigments, pearl pigments, and metallic pigments such as gold and silver.

[0023] <Binder resin> As binder resins, ketone resins, sulfamide resins, maleic acid resins, terpene resins, terpene phenol resins, rosin esters, xylene resins, alkyd resins, phenolic resins, butyral resins, rosin, polyvinylpyrrolidone, polyvinyl alcohol, acrylic resins, melamine resins, cellulose resins, etc., and derivatives thereof can be used. As derivatives of the above resins, for example, rosin-modified maleic acid resin can be used. These resins may be used individually or in mixtures.

[0024] The binder resin content may be 10% by mass or more, 15% by mass or more, 20% by mass or more, or 25% by mass or more, based on the mass of solids in the oil-based ink composition for writing instruments, and may also be 50% by mass or less, 45% by mass or less, 40% by mass or less, 35% by mass or less, or 30% by mass or less.

[0025] <Organic solvents> Examples of organic solvents that can be used include aromatics, alcohols, polyhydric alcohols, glycol ethers, hydrocarbons, esters, and the like. These solvents may be used individually or in combination.

[0026] Examples of aromatic compounds that can be used include benzyl alcohol, ethylene glycol monophenyl ether, ethylene glycol monobenzyl ether, propylene glycol monophenyl ether, diethylene glycol monophenyl ether, alkylsulfonate phenyl ester, butyl phthalate, ethylhexyl phthalate, tridecyl phthalate, ethylhexyl trimellitate, diethylene glycol dibenzoate, and dipropylene glycol dibenzoate.

[0027] Examples of alcohols that can be used include ethanol, n-propanol, isopropanol, n-butanol, isobutanol, tert-butyl alcohol, 1-pentanol, isoamyl alcohol, sec-amyl alcohol, 3-pentanol, tert-amyl alcohol, n-hexanol, methylamyl alcohol, 2-ethylbutanol, n-heptanol, 2-heptanol, 3-heptanol, n-octanol, 2-octanol, 2-ethylhexanol, 3,5,5-trimethylhexanol, nonanol, n-decanol, undecanol, n-decanol, trimethylnonyl alcohol, tetradecanol, heptadecanol, cyclohexanol, and 2-methylcyclohexanol.

[0028] Examples of polyhydric alcohols that can be used include ethylene glycol, diethylene glycol, 3-methyl-1,3-puntanediol, triethylene glycol, dipropylene glycol, 1,3-propanediol, 1,3-butanediol, 1,5-pentanediol, hexylene glycol, octylene glycol, and the like.

[0029] Examples of glycol ethers that can be used include methyl isopropyl ether, ethyl ether, ethyl propyl ether, ethyl butyl ether, isopropyl ether, butyl ether, hexyl ether, 2-ethylhexyl ether, ethylene glycol monohexyl ether, ethylene glycol mono-2-ethyl butyl ether, ethylene glycol monomethyl ether, ethylene glycol monoethyl ether, ethylene glycol monobutyl ether, diethylene glycol monomethyl ether, diethylene glycol monoethyl ether, diethylene glycol monobutyl ether, triethylene glycol monobutyl ether, tetraethylene glycol monobutyl ether, 3-methyl-3-methoxy-1-butanol, 3-methoxy-1-butanol, propylene glycol monomethyl ether, propylene glycol monoethyl ether, propylene glycol monopropyl ether, propylene glycol monobutyl ether, propylene glycol tertiary butyl ether, dipropylene glycol monomethyl ether, dipropylene glycol monoethyl ether, dipropylene glycol monopropyl ether, dipropylene glycol monobutyl ether, tripropylene glycol monomethyl ether, tripropylene glycol monobutyl ether, and tetrapropylene glycol monobutyl ether.

[0030] Examples of hydrocarbons that can be used include linear hydrocarbons such as hexane, isohexane, heptane, octane, nonane, and decane, and cyclic hydrocarbons such as cyclohexane, methylcyclohexane, and ethylcyclohexane.

[0031] Examples of esters include propylene glycol methyl ether acetate, propylene glycol diacetate, 3-methyl-3-methoxybutyl acetate, propylene glycol ethyl ether acetate, ethylene glycol ethyl ether acetate, butyl formate, isobutyl formate, isoamyl formate, propyl acetate, butyl acetate, isopropyl acetate, isobutyl acetate, isoamyl acetate, methyl propionate, ethyl propionate, propyl propionate, isobutyl propionate, isoamyl propionate, methyl butyrate, ethyl butyrate, propyl butyrate, methyl isobutyrate, ethyl isobutyrate, propyl isobutyrate, Methyl valerate, ethyl valerate, propyl valerate, methyl isovalerate, ethyl isovalerate, propyl isovalerate, methyl trimethylacetate, ethyl trimethylacetate, propyl trimethylacetate, methyl caproate, ethyl caproate, propyl caproate, methyl caprylate, ethyl caprylate, propyl caprylate, methyl laurate, ethyl laurate, methyl oleate, ethyl oleate, caprylic acid triglyceride, tributyl citrate, octyl oxystearate, propylene glycol monolicinolate, methyl 2-hydroxyisobutyrate, 3-methoxybutyl acetate, etc. can be used.

[0032] <Fluorine-based resin particles> Fluorine-based resin particles are particles composed of polymers in which fluorine-containing monomers are polymerized. In particular, the fluorine-based resin particles in the oil-based ink composition for writing instruments of the present invention are fluorine-based resin particles whose average particle diameter, as measured by dynamic light scattering, is 100 nm or more and less than 1000 nm.

[0033] The average particle diameter is preferably 100 nm or more, 200 nm or more, or 300 nm or more, from the viewpoint of making it easier for fluorine-based resin particles to be exposed on the surface of the lines, thereby improving the abrasion resistance of the lines. It is also preferable that the average particle diameter is less than 1000 nm, 900 nm or less, or 800 nm or less, from the viewpoint of making the lines less susceptible to the effects of ultraviolet light and other factors as they age, thereby maintaining the abrasion resistance of the lines even after aging.

[0034] As fluororesin particles, fully fluorinated resin particles, partially fluorinated resin particles, and fluororesin-olefin copolymer particles can be used, and among these, using fully fluorinated resin particles is preferable from the viewpoint of reducing the coefficient of friction on the surface of the drawn line and, as a result, improving the abrasion resistance of the drawn line.

[0035] When the oil-based ink composition for writing instruments of the present invention contains a metal oxide pigment, the ratio of the average particle diameter of the metal oxide pigment to the average particle diameter of the fluororesin particles may be 0.2 or more, 0.3 or more, 0.5 or more, 0.7 or more, 0.9 or more, 1.0 or more, or 1.2 or more, and may be 1.5 or more, 1.7 or more, or 2.0 or more, and may also be 4.0 or less, 3.5 or less, 3.3 or less, 3.0 or less, 2.8 or less, 2.5 or less, 2.3 or less, 2.0 or less, 1.7 or less, or 1.5 or less. When this ratio is within the above range, the movement of fluororesin particles in the drawn line when the line is rubbed can be well suppressed, thereby obtaining even better abrasion resistance.

[0036] Examples of fully fluorinated resin particles include polytetrafluoroethylene (PTFE) particles, perfluoroalkoxyalkane (PFA) particles, and tetrafluoroethylene-hexafluoropropylene copolymer (FEP) particles. From the viewpoint of chemical stability and cost, PTFE is preferred among these.

[0037] Examples of partially fluorinated resin particles include polyvinylidene fluoride (PVDF) particles and polychlorotrifluoroethylene (PCTFE) particles.

[0038] Fluorinated resin-olefin copolymer particles are copolymer particles of a fully fluorinated resin and / or a partially fluorinated resin with an olefin, such as tetrafluoroethylene-ethylene copolymer (ETFE) particles and chlorotrifluoroethylene-ethylene copolymer (ECTFE) particles.

[0039] The ratio of the mass of fluororesin particles to the total mass of pigment and fluororesin particles may be 0.10 or more, 0.15 or more, 0.20 or more, or 0.25 or more, and may also be 0.45 or less, 0.40 or less, or 0.35 or less.

[0040] <dye> As dyes, any of the following can be used, including direct dyes, acid dyes, basic dyes, mordants / acid mordants, alcohol-soluble dyes, azoic dyes, sulfur / sulfur vat dyes, vat dyes, disperse dyes, oil-soluble dyes, food dyes, metal complex dyes, salt dyes, dyes obtained by dyeing resins, and solutions thereof.

[0041] <Other ingredients> The oil-based ink composition for writing instruments of the present invention may contain other components as optional. Examples of other components include dispersants, leveling agents, rust inhibitors, preservatives, lubricants, and resins. For example, butyral resin can be used as a dispersant. For example, fluorinated surfactants, silicone oils, phosphate ester surfactants, and the like can be used as leveling agents.

[0042] 《Writing implements》 The writing instrument of the present invention is It comprises at least an ink storage section, a writing section, and a holding section. The above-mentioned oil-based ink composition for writing instruments is stored in the ink storage section. It is a writing instrument.

[0043] The writing instrument of the present invention may be a marking pen or a ballpoint pen.

[0044] Herein, in this specification, "marking pen" means a pen having a mechanism that supplies ink stored in an ink reservoir to a resin writing section by capillary action, and includes pens referred to as "sign pens" by those skilled in the art. Furthermore, in this specification, "ballpoint pen" means a pen having a mechanism that causes ink stored in an ink reservoir to seep out by the rotation of a ball provided in the writing section.

[0045] In particular, when the writing instrument of the present invention is a marking pen, it is preferable from the viewpoint of obtaining good ink flow that the writing instrument of the present invention is a valve-type marking pen further having a valve mechanism between the ink storage part and the writing part. In this case, it is also preferable from the viewpoint of obtaining a sufficient ink flow rate for writing while suppressing the writing part from coming off, that the writing instrument of the present invention further has an annular ink retainer arranged so as to surround the writing part. One embodiment of such a valve-type marking pen will be described with reference to the drawings.

[0046] As shown in Figure 1, one embodiment 100 of a valve-type marking pen includes a writing section 10, an ink storage section 20, a holding section 30, an ink retainer 40, a valve mechanism 50, an inner cap 60, and an outer cap 70. The following descriptions of each component will be explained with reference to the drawings as appropriate.

[0047] <Ink storage section> The ink storage section contains the above-mentioned oil-based ink composition for writing instruments.

[0048] Any object capable of storing ink and supplying ink to the writing section can be used for the ink storage section.

[0049] It is preferable that the ink storage section is formed as a hollow space from the viewpoint of suppressing ink clogging. Furthermore, as shown in Figure 1, it is preferable that the ink storage section 20 contains an agitator 22 from the viewpoint of uniformly dispersing the pigment before use.

[0050] <Writing Department> The writing section may be made of any material depending on the intended use of the writing instrument. If the writing instrument of the present invention is a marking pen, the writing section may be made of, for example, a fiber core or a plastic core. If the writing instrument of the present invention is a ballpoint pen, the writing section may be a writing section equipped with a ballpoint pen tip at its tip.

[0051] The fiber core is a core made by processing a fiber bundle such as felt, or by resin processing a fiber bundle made from one or more types of materials such as natural fibers, animal hair fibers, polyacetal resin, acrylic resin, polyester resin, polyamide resin, polyurethane resin, polyolefin resin, polyvinyl resin, polycarbonate resin, polyether resin, or polyphenylene resin, or a combination of two or more types of materials.

[0052] <Holding part> The holding part may be a part that allows the writing instrument to be held by hand. The holding part may be integrated with the ink storage part 20, as shown in Figure 1, or, although not shown, it may exist separately from the ink storage part and have a hollow structure that can house the ink storage part. The holding part may have a shape such as cylindrical or polygonal tube.

[0053] <Ink Retainer> The ink holder is an annular ink holder positioned to surround the writing section. The material constituting the ink holder is not particularly limited as long as it is a flexible porous material, and may be, for example, urethane foam, especially polyether-based urethane foam, polyester-based urethane foam, etc.

[0054] If the writing instrument has an inner cap, the ink reservoir may be positioned to fill the gap between the inner cap and the writing section.

[0055] In particular, when using an oil-based ink composition for writing instruments with a high content of particulate components, as in the present invention, a low density and a large number of cells are preferable from the viewpoint of suppressing ink leakage from the writing area while obtaining a sufficient ink flow rate for writing.

[0056] More specifically, the density of the ink retainer is 50 kg / m³. 3 The following is preferable from the viewpoint of obtaining sufficient ink flow for writing. This density is measured in accordance with JIS K7222. This density is 45 kg / m³. 3 The following, or 40 kg / m 3 The following may be true, and also 10 kg / m 3 More than 15kg / m 3 or more, or 20 kg / m 3 That's all.

[0057] Furthermore, it is preferable that the number of cells in the ink holder be 40 cells / 25 mm or more, as this increases the contact points with the writing part and thereby suppresses ink leakage. This number of cells is measured in accordance with JIS K6400-1. This number of cells may be 45 cells / 25 mm or more, and may also be 100 cells / 25 mm or less, 90 cells / 25 mm or less, 80 cells / 25 mm or less, 70 cells / 25 mm or less, or 60 cells / 25 mm or less.

[0058] Valve mechanism As shown in Figure 1, the valve mechanism 50 includes a valve seat 52 with its front and rear openings in communication, a valve body 54 that moves back and forth relative to the valve seat 52 to open and close, and a spring 56 that biases the valve body 54 toward the writing section 10.

[0059] The valve body 54 has its tip in contact with the rear end of the writing section 10. When the writing section 10 moves backward, the valve seat 52 opens, and ink flows through the valve seat 52 and is supplied to the writing section 10. Based on this mechanism, the supply of ink to the writing section by moving the writing section back and forth is sometimes referred to as "pumping" by those skilled in the art.

[0060] <Inner cap> The inner cap is a hollow, tapered cylinder that extends longitudinally, with the end on the writing section side being narrower, and a rib supporting the writing section 10 is formed at this end. The writing section 10 is installed within the inner cap 60 so as to be able to move back and forth. The end of the inner cap 60 on the valve mechanism side is the widest part in a stepped manner, and this stepped surface has an edge shape oblique to the central axis.

[0061] <Outer cap> The outer cap is a component that conceals the writing section. The outer cap may have a structure for fitting onto the inner cap or retaining part.

[0062] Method for manufacturing oil-based ink compositions for writing instruments Oil-based ink compositions for writing instruments can be manufactured by conventionally known methods, while mixing the above-mentioned pigment, binder resin, organic solvent, and fluororesin particles using a stirring device such as a disperser. [Examples]

[0063] The present invention will be specifically described by examples and comparative examples, but the present invention is not limited thereto.

[0064] Example 1 4 parts by mass of a dye (Valifast Black 3830, Orient Chemical Industries, Ltd.) as a coloring agent, 4 parts by mass of carbon black toner (average particle size 200 nm) as a pigment, 3 parts by mass of fluoropolymer resin particles (Algoflon L203F, SOLVAY, average particle size 300 nm), 3 parts by mass of rosin-modified maleic acid resin (Marquid No. 33, Arakawa Chemical Industries, Ltd.) as a binder resin, 0.9 parts by mass of nitrocellulose, 3 parts by mass of rosin ester, and 26.0 parts by mass of ethanol and 50.10 parts by mass of propylene glycol monoethyl ether as solvents were mixed by stirring to prepare 100 parts by mass of the oil-based ink composition for writing instruments of Example 1.

[0065] <Examples 2-9 and Comparative Examples 1-4> Except for changing the types and contents of each component as shown in Tables 1 and 2, 100 parts by mass of the oil-based ink compositions for writing instruments of Examples 2-9 and Comparative Examples 1-4 were prepared in the same manner as in Example 1. The average particle size of the titanium dioxide toner used here was 400 nm.

[0066] Manufacturing of writing instruments A marking pen was created by filling a Mitsubishi Pencil Co., Ltd. PC-5M (product name "Posca", pen tip: medium-point round tip (polyethylene terephthalate (PET) fiber core)) with the above-mentioned oil-based ink composition for writing instruments. Subsequently, the abrasion resistance was evaluated using this medium-point round tip.

[0067] Evaluation as an ink composition <Abrasion Resistant (Kimwipes)> Based on the description in Patent Document 1, the abrasion resistance of Kimwipes was evaluated. Specifically, the prepared felt-tip pen was used to write on the surfaces of polyethylene terephthalate (PET) film and SUS plate, and the lines were allowed to dry. The abrasion resistance of these lines was evaluated by rubbing them with a Kimwipe that had a 500g weight placed on it, moving it five times.

[0068] The evaluation criteria are as follows: A: Almost all of the lines remain intact. B: 90% of the lines remain. C: 80% of the lines remain. D: 70% of the lines remain. E: The remaining percentage of the drawn lines is less than 70%.

[0069] <Abrasion resistance (steel wool)> The lines obtained in the same manner as described above were rubbed by moving a 500g weight on steel wool five times to evaluate the abrasion resistance of the lines. The evaluation criteria were the same as described above.

[0070] <Concealing properties> The resulting lines were visually inspected to confirm whether the underlying surface was visible. The evaluation criteria were as follows: A: The base layer is completely unrecognizable. B: The base layer isn't clearly visible, but it is recognizable. C: The base layer is clearly visible

[0071] <viscosity> Writing was performed using the prepared writing instruments, and the viscosity was evaluated by sensory assessment. The evaluation criteria were as follows: A: The viscosity is such that it does not interfere with writing. B: The viscosity is such that it slightly interferes with writing. C: The viscosity is such that it interferes with writing.

[0072] The configurations and evaluation results of the examples and comparative examples are shown in Tables 1 and 2:

[0073] [Table 1]

[0074] [Table 2]

[0075] From Tables 1 and 2, it can be seen that the oil-based ink compositions for writing instruments of Examples 1 to 9, which contain pigment, binder resin, organic solvent, and fluororesin particles, with a total content of pigment and fluororesin particles of 35 to 70% by mass based on the mass of solids of the oil-based ink composition for writing instruments, and a ratio of the mass of fluororesin particles to the total mass of pigment and fluororesin particles of 0.10 to 0.45, exhibit better abrasion resistance of the lines drawn than the oil-based ink compositions for writing instruments of Comparative Examples 1 to 4.

[0076] 《Evaluation as a writing instrument》 <Preparation of writing instruments for evaluation> (Example 10) The writing instrument of Example 10 was prepared by filling the ink reservoir of a valve-type marking pen (PC-5M, Mitsubishi Pencil Co., Ltd.) as shown in Figure 1 with the oil-based ink composition for writing instruments of Example 5. A round PET fiber tip (Mitsubishi Pencil Co., Ltd., replacement tip PCR-5) was used for the writing part.

[0077] As an ink retainer, it has a density of 30±5 kg / m³. 3 A commercially available soft porous material made of urethane foam (UF) with a cell count of 50±5 cells / 25 mm was used as a filter.

[0078] (Examples 11-17) Except for the changes made to the oil-based ink composition and ink retainer for writing instruments as shown in Table 3, the writing instruments of Examples 11 to 17 were prepared in the same manner as in Example 10. The oil-based ink composition for writing instruments used in Examples 14 to 17 is the same as that of Example 6.

[0079] <evaluation> (ink flow rate) Each writing instrument was pressed against paper and pumped to allow ink to soak into the tip. Next, the instrument was pumped 30 more times, and then 250 cm of writing was performed. The evaluation criteria were as follows: A: The flow rate was sufficient to produce a smooth, 250cm line. B: Although there was no abrasion, the ink flow was such that it produced lines that did not reach 250 cm. C: The flow rate was sufficient to produce a brushed-on line.

[0080] (How easily the writing tip comes off) After evaluating the ink flow as described above, the writing instrument was shaken 30 times in the longitudinal direction with the writing section exposed, and the condition of the writing section was observed. Subsequently, the process of shaking the instrument 30 times and observing the condition of the writing section was repeated 50 times after each 250cm of writing. The evaluation criteria are as follows. A: No gaps or protrusions were observed in the writing section. B: The writing part sometimes protruded further towards the tip than its original position. C: The writing part has come off.

[0081] The configurations and evaluation results of the examples and comparative examples are shown in Table 3.

[0082]

Table 3

[0083] From Table 3, it can be understood that the writing instruments of Examples 10 to 12 and 14 to 16 using the ink retaining body with a density of 30 ± 5 kg / m 3 have a good ink flow rate. Among them, it can be understood that the writing instruments of Examples 10 and 14 using the ink retaining body with 50 ± 5 cells / 25 mm also had good resistance to the writing part coming off.

Explanation of Reference Signs

[0084] 100 Writing instrument 10 Writing part 20 Ink storage part 22 Stirring ball 30 Holding part 40 Ink retaining body 50 Valve mechanism 52 Valve seat 54 Valve body 56 Spring 60 Inner cap 70 Outer cap

Claims

1. An oil-based ink composition for writing instruments, comprising a pigment, a binder resin, an organic solvent, and fluororesin particles, The total content of the pigment and the fluororesin particles is 35 to 70% by mass, based on the mass of the solid content of the oil-based ink composition for writing instruments. The ratio of the mass of the fluororesin particles to the total mass of the pigment and the fluororesin particles is 0.10 to 0.

45. When measured by dynamic light scattering, the average particle diameter of the fluororesin particles is 100 nm or more and less than 1000 nm, and When measured by dynamic light scattering, the average particle size of the pigment is 50 nm or more and 1000 nm or less. Oil-based ink composition for writing instruments.

2. The oil-based ink composition for writing instruments according to claim 1, wherein the pigment comprises a metal oxide-based pigment.

3. The oil-based ink composition for writing instruments according to claim 2, wherein the metal oxide pigment is titanium dioxide.

4. The oil-based ink composition for writing instruments according to claim 2 or 3, wherein, when measured by dynamic light scattering, the ratio of the average particle diameter of the metal oxide pigment to the average particle diameter of the fluororesin particles is 0.2 to 4.

0.

5. The oil-based ink composition for writing instruments according to any one of claims 1 to 4, wherein the pigment comprises a carbon-based pigment.

6. The oil-based ink composition for writing instruments according to any one of claims 1 to 4, wherein the fluorine-based resin particles are polytetrafluoroethylene particles.

7. The oil-based ink composition for writing instruments according to any one of claims 1 to 6, wherein the solid content of the oil-based ink composition for writing instruments is 10% by mass or more and 40% by mass or less, based on the total mass of the oil-based ink composition for writing instruments.

8. The oil-based ink composition for writing instruments according to any one of claims 1 to 7, wherein the content of the binder resin is 10% by mass or more and 35% by mass or less, based on the mass of the solid content of the oil-based ink composition for writing instruments.

9. It comprises at least an ink storage section, a writing section, and a holding section. The oil-based ink composition for writing instruments described in any one of claims 1 to 8 is stored in the ink storage section. Writing implements.

10. The writing instrument according to claim 9, further comprising an annular ink holder arranged inside the writing instrument so as to surround the writing portion.

11. The density of the aforementioned ink retainer, in accordance with JIS K7222, is 50 kg / m³. 3 The writing instrument according to claim 10, wherein the number of cells conforming to JIS K6400-1 is 40 or more per 25 mm.

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