Cleaning fluid for writing instruments and cleaning fluid package containing the same

A cleaning liquid with a nonionic surfactant of HLB 15 or less effectively cleans dried ink from writing instrument components, ensuring efficient removal and maintaining re-usability.

JP7721701B2Active Publication Date: 2025-08-12PILOT PEN CO LTD
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Patent Information

Application Number
JP2024001053
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2019-05-15
Filing Date
2024-01-09
Publication Date
2025-08-12
Estimated Expiration
2040-03-23

AI Technical Summary

Technical Problem

Existing writing instruments face challenges in efficiently cleaning dried ink from components like comb grooves, nibs, and converters, especially when using ink compositions with pigments, which harden and are difficult to remove, leading to poor writing performance and re-usability issues.

Method used

A cleaning liquid comprising water, a pH adjuster, and a nonionic surfactant with an HLB value of 15 or less, which effectively reduces surface tension and enhances cleaning of intricate writing instrument components by dissolving and dispersing dried ink components without affecting re-writing performance.

Benefits of technology

The cleaning liquid efficiently removes dried ink from complex structures in writing instruments, ensuring good re-writing properties and stability, even after prolonged non-use, particularly effective for fountain pens with fine grooves and converters.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a writing instrument cleaning liquid that can efficiently clean a writing member such as a comb groove on a writing instrument in which the comb groove is arranged as an ink flow rate adjustment mechanism, a pen nib, and a converter, and has a good after cleaning rewriting property.SOLUTION: Provided is a writing instrument cleaning liquid, which is a writing instrument cleaning liquid comprising water, a pH adjuster, a surfactant, and a chelating agent, and is characterized in that the surfactant has an HLB value of 15 or less.SELECTED DRAWING: None
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Description

[Technical Field]

[0001] The present invention relates to a writing instrument cleaning liquid and a writing instrument cleaning liquid package containing the same. More specifically, the present invention relates to a writing instrument cleaning liquid for cleaning writing instrument components such as the comb grooves, nib, and converter (an ink reservoir (ink inhaler for fountain pens) that has the function of directly drawing ink from an ink reservoir such as an ink bottle into the ink reservoir of the writing instrument) of a writing instrument that has comb grooves arranged as an ink flow rate adjusting mechanism, and a writing instrument cleaning liquid package containing the same. [Background technology]

[0002] Writing instruments such as fountain pens and drafting pens that are connected to ink cartridges or converters (ink reservoirs (fountain pen ink inhalers) that have the function of directly drawing ink from an ink container such as an ink bottle into the ink reservoir) have been well known. When such fountain pens or drafting pens run out of ink, they can be replaced with a new ink cartridge filled with ink or ink can be drawn into the converter from the nib, allowing them to be used repeatedly without having to discard the writing instrument itself.

[0003] If such writing instruments are left unused for a long period of time, the water content in the ink gradually evaporates, causing ink components such as dyes and pigments to harden on the writing instrument's grooves, nib, converter, and other parts.If the ink dries up, this can result in poor writing performance or malfunction of the converter. Therefore, before a writing instrument is to be used again after a long period of non-use or after a long period of storage, the writing instrument components such as the nib, tip, and converter are washed with water or lukewarm water. Furthermore, for example, when replacing black ink with red ink in a writing instrument, the black and red inks may mix inside the writing instrument components, resulting in mixed-color handwriting, or the mixing of different types of ink may cause aggregation or deposition. To prevent this, the remaining black ink in the writing instrument components, such as the grooves, nib, and converter (ink injector for fountain pens), is washed away with water or lukewarm water.

[0004] In ink compositions for writing instruments that contain colorants, resins, etc., in order to obtain excellent handwriting that is excellent in water resistance and light resistance and exhibits good color development, the ink contains a resin component, and therefore, once the ink dries, it is extremely difficult to remove the dried ink by simply immersing the grooves, nib, or converter of the writing instrument in water or lukewarm water. Therefore, there are cleaning methods (e.g., Patent Documents 1 and 2) in which ultrasonic waves are applied while the writing instrument is immersed, but this requires large-scale cleaning equipment, and there is a problem that, particularly when cleaning writing instruments that use ink compositions that use pigments as colorants (pigment inks), once the ink dries, it tends to dry out and harden on the writing instrument components such as the nib and converter. In particular, with fountain pens, when ink runs out during writing, ink is sucked from the nib into a converter (a fountain pen ink injector), allowing the writing instrument body to be reused without being discarded, and the same writing instrument components, such as the comb groove, nib, converter, etc., can be used over a long period of time. Therefore, when ink is sucked into the writing instrument, scratches such as mounting scratches and sliding scratches are formed on the writing instrument components, and if ink gets into these scratches and dries up, it becomes extremely difficult to remove the dried ink. [Prior art documents] [Patent documents]

[0005] Japanese Utility Model Application Publication No. 56-76092 Japanese Patent Application Laid-Open No. 2001-96974 Summary of the Invention [Problem to be solved by the invention]

[0006] The object of the present invention is to solve the above-mentioned problems of the prior art, and to provide a writing instrument cleaning liquid (hereinafter sometimes simply referred to as "cleaning liquid") for cleaning writing instrument components such as comb grooves, nibs, and converters, which can efficiently clean writing instrument components such as comb grooves, nibs, and converters of writing instruments in which comb grooves are arranged as an ink flow rate adjustment mechanism (an ink reservoir (fountain pen ink inhaler) that has the function of directly drawing ink from an ink container such as an ink bottle into the ink reservoir of the writing instrument), and which also has good re-writing properties after cleaning, and a writing instrument cleaning liquid package that contains the same. [Means for solving the problem]

[0007] The present invention provides "1. A cleaning liquid for a writing instrument comprising water, a pH adjuster, and a nonionic surfactant, wherein the HLB value of the nonionic surfactant is 15 or less. 2. The writing instrument cleaning liquid according to item 1, characterized in that the surface tension of the writing instrument cleaning liquid at 20°C is 20 to 50 mN / m. 3. The writing instrument cleaning liquid according to item 1 or 2, wherein the nonionic surfactant has a polyoxyalkylene group. 4. The writing instrument cleaning liquid according to any one of items 1 to 3, wherein the alkyl group of the nonionic surfactant has 1 to 20 carbon atoms. 5. The writing instrument cleaning liquid according to any one of items 1 to 4, wherein the pH adjuster is a water-soluble amine compound. 6. A writing instrument cleaning liquid package, characterized in that the writing instrument cleaning liquid according to any one of items 1 to 5 is contained in the package. [Effects of the Invention]

[0008] According to the present invention, it is possible to provide a writing instrument cleaning liquid and a writing instrument cleaning liquid package containing the same that can efficiently clean writing instrument components such as the comb grooves, nibs, and converters (ink reservoirs (fountain pen ink inhalers) that have the function of directly drawing ink from an ink container such as an ink bottle into the ink reservoir of the writing instrument) of writing instruments in which the comb grooves are arranged as an ink flow rate adjustment mechanism, and that also have good re-writing properties after cleaning. DETAILED DESCRIPTION OF THE INVENTION

[0009] Hereinafter, embodiments of the present invention will be described in detail. In this specification, "parts," "%," "ratio," and the like indicating the composition are based on mass unless otherwise specified.

[0010] <Cleaning liquid for writing instruments> The present invention is characterized in that it is a cleaning liquid for a writing instrument comprising water, a pH adjuster, a surfactant, and a chelating agent, wherein the surfactant has an HLB value of 15 or less. By using the above-mentioned writing instrument cleaning liquid, it is possible to obtain a writing instrument cleaning liquid that has excellent cleaning properties for dried ink inside the fine grooves, precision nibs, and converters (ink reservoirs (fountain pen ink inhalers) that have the function of directly drawing ink from an ink container such as an ink bottle into the ink reservoir of the writing instrument) of writing instruments that have grooves arranged as an ink flow rate adjustment mechanism, and that also has good re-writing properties after cleaning. In particular, with fountain pens, when the ink runs out due to writing, ink is drawn from the nib into the converter, allowing the writing instrument body to be used repeatedly without being discarded, and therefore the writing instrument components, such as the comb groove, nib, converter, etc., can be used for a long period of time without replacement. Therefore, when drawing ink or during daily use, scratches such as mounting scratches and sliding scratches can appear on these components, and if ink gets into these scratches and dries up, it becomes extremely difficult to remove the dried up ink. However, even in such cases, it is possible to achieve excellent cleanability.

[0011] <Surfactant> The writing instrument cleaning solution of the present invention comprises a surfactant with an HLB value of 15 or less. This is because a surfactant with an HLB value of 15 or less can clean the ink even when the ink components have hardened in the grooves, nib, or converter (ink injector for fountain pens) of the writing instrument, causing the ink to dry out, and because a surfactant with an HLB value of 15 or less is stable in the writing instrument cleaning solution, a long-term cleaning effect can be obtained. Furthermore, even after cleaning writing instrument components such as the grooves, nib, and converter (ink injector for fountain pens), there is no problem with writing performance, and re-writing is also good. The reason for this is unclear, but is speculated as follows. It is believed that the surfactant with an HLB value of 15 or less reduces the surface tension of the writing instrument cleaning liquid, improving wettability of the writing instrument's comb grooves, nib, and converter, and that the surfactant efficiently disperses the colorants and resins contained in the dried ink into the cleaning liquid after dissolving them in the cleaning liquid, preventing the colorants and resins dispersed in the cleaning liquid from re-adhering to the comb grooves, nib, and converter, thereby providing high cleaning performance. Furthermore, it is believed that the cleaning liquid does not continue to adhere to the writing instrument components after cleaning and affect writing performance, resulting in good re-writability. In particular, in the case of fountain pens equipped with a neck shaft equipped with a nib and comb grooves, and a converter (an ink reservoir (fountain pen ink inhaler) that has the function of directly drawing ink from an ink reservoir into the ink reservoir of the writing instrument), the comb grooves have a fine and complex structure, so once the ink has dried, ink stains are difficult to remove even with cleaning, and therefore the use of the writing instrument cleaning liquid of the present invention is effective and preferable.

[0012] Among surfactants with an HLB value of 15 or less, in consideration of water solubility and cleanability, surfactants with an HLB value of 4 to 15 are preferred, and even more preferably an HLB value of 6 to 15. Furthermore, in consideration of the possibility of scratches on writing implement components such as the comb grooves, pen tip, and converter, surfactants with an HLB value of 8 to 14, which are excellent in cleanability, are preferred, and even more preferably an HLB value of 11 to 14. The above HLB value is a value calculated by the Griffin method, and is calculated by the following formula. HLB value = 20 × (mass % of hydrophilic groups) = 20 × (sum of formula weights of hydrophilic groups / molecular weight of surfactant)

[0013] Methods for cleaning writing instruments using cleaning fluid for writing instruments include removing the cap, barrel, converter, etc. from the writing instrument to leave the grooves, nib (neck), and converter in their original state, and then immersing the grooves, nib (neck), and converter in the cleaning fluid, using a dropper or the like to pour the cleaning fluid into the grooves, nib (neck), and converter, and using a converter used as an ink reservoir to suck the cleaning fluid into the nib as if refilling ink.

[0014] Examples of surfactants include polyoxyethylene fatty acid esters, polyoxyethylene sorbitan fatty acid esters, polyethylene glycol fatty acid esters, polyglycerin fatty acid esters, polyoxyalkylene alkyl ethers, polyoxyethylene polyoxypropylene glycols, sucrose fatty acid esters, sorbitan fatty acid esters, alkyl glycosides, alkyl glyceryl glycosides, and methyl glucoside fatty acid esters. Among these, nonionic surfactants containing polyoxyalkylene groups such as polyoxyethylene are preferred. This is because they have high affinity with colorants and resins, making them more effective at removing colorants and resins from comb grooves, pen nibs, and converters. Furthermore, the polyoxyalkylene group provides good solubility in water, stability in aqueous inks, and a long-term, stable cleaning effect. Among these surfactants, it is preferred to use one or more of polyoxyalkylene alkyl ethers, polyoxyethylene sorbitan fatty acid esters, and polyethylene glycol fatty acid esters, with polyoxyalkylene alkyl ethers being more preferred. This is because it has excellent penetration and low foaming power, so it can penetrate and clean even scratches on writing instrument components such as comb grooves, nibs, and converters, as well as comb grooves with thin and complex structures, precise nibs, and converters, and is therefore effective in cleaning even difficult-to-remove stains. In particular, in the case of fountain pens equipped with a neck shaft equipped with a nib and comb grooves, and a converter (an ink reservoir (fountain pen ink inhaler) that has the function of directly drawing ink from an ink reservoir into the ink reservoir of the writing instrument), once the ink has dried, ink stains are difficult to remove even with cleaning, so it is effective and preferable to use polyoxyalkylene alkyl ethers.

[0015] For the nonionic surfactant having a polyoxyalkylene group, the alkyl group of the nonionic surfactant having a polyoxyalkylene group preferably has 1 to 20 carbon atoms. This is because, within this range, the alkyl group has a length in terms of the number of carbon atoms suitable for obtaining the effect of easily penetrating the cleaning solution into scratches on the writing instrument component or into fine, complex structures, etc., and a high cleaning effect is likely to be obtained. On the other hand, if the alkyl group has a large number of carbon atoms and is too long, it is difficult to dissolve in water, which can easily affect the cleaning effect. Also, if the alkyl group has a small number of carbon atoms and is too short, it is difficult to obtain a sufficient cleaning effect. Therefore, the alkyl group preferably has 4 to 16 carbon atoms, and from a more particular perspective, the alkyl group preferably has 8 to 14 carbon atoms.

[0016] The alkyl group of the nonionic surfactant having the polyoxyalkylene group may have a straight-chain structure or a branched structure, but an alkyl group having a branched structure is preferred because it has a bulky structure and can penetrate and effectively clean even when there are scratches on the writing instrument component, or even when there are thin, complexly structured comb grooves, precision pen tips, and converters, thereby making it easier to remove difficult-to-remove stains. Specific examples of the nonionic surfactant having a polyoxyalkylene group, polyoxyalkylene alkyl ether, polyoxyethylene sorbitan fatty acid ester, and polyethylene glycol fatty acid ester include polyoxyalkylene isodecyl ether (alkyl group: branched structure), polyoxyalkylene isotridecyl ether (alkyl group: branched structure), polyoxyalkylene tridecyl ether (alkyl group: linear structure), polyoxyalkylene decyl ether (alkyl group: linear structure), polyoxyalkylene lauryl ether (alkyl group: linear structure), polyoxyethylene sorbitan monolaurate, polyoxyethylene sorbitan monooleate, polyoxyethylene sorbitan monostearate, polyoxyethylene sorbitan trilaureate, polyoxyethylene sorbitan trioleate, polyoxyethylene sorbitan tristearate, polyethylene glycol monolaurate, polyethylene glycol monostearate, and polyethylene glycol monooleate. However, considering that reducing the dynamic surface tension results in excellent penetration and thus easily improves cleaning power, it is preferable to use polyoxyalkylene isodecyl ether.

[0017] The polyoxyalkylene group of the polyoxyalkylene alkyl ether preferably contains an ethylene oxide group or a propylene oxide group. This is because it has good solubility in water, is stable in aqueous inks, and is likely to provide a cleaning effect. From a more specific perspective, it is preferable to have at least an ethylene oxide group. Furthermore, the polyoxyalkylene group preferably has an average number of added moles of alkylene oxide of 1 to 20. This is because, within this range, the length of the alkylene oxide allows it to easily penetrate scratches on writing implement components, and therefore a high cleaning effect is likely to be obtained. On the other hand, if the average number of added moles of alkylene oxide is too large or too long, it is difficult to dissolve in water and is likely to affect the cleaning effect. If the average number of added moles of alkylene oxide is too small or too short, it is difficult to obtain a cleaning effect. Therefore, the average number of added moles of alkylene oxide is preferably 3 to 15, and more preferably 5 to 10.

[0018] The cloud point of the polyoxyalkylene alkyl ether is preferably 90°C or lower in consideration of the cleaning effect, and more preferably 30 to 80°C, and more preferably 40 to 80°C.

[0019] The content of the surfactant in the writing instrument cleaning liquid of the present invention is preferably 0.01 to 10% by mass, more preferably 0.5 to 8% by mass, and even more preferably 1 to 5% by mass, based on the total mass of the writing instrument cleaning liquid. This is because if the content is less than the above range, it is difficult to fully exert the cleaning effect, and if it is more than the above range, the solubility in water is likely to be poor and it is difficult to see any improvement in the effect, so it is not necessary to include more than this amount.

[0020] Regarding the nonionic surfactant, specifically, as polyoxyalkylene alkyl ethers, specifically, Neugen LF series (polyoxyalkylene isodecyl ether, manufactured by Dai-ichi Kogyo Seiyaku Co., Ltd.), Neugen SD series (polyoxyethylene isodecyl ether, manufactured by Dai-ichi Kogyo Seiyaku Co., Ltd.), Neugen TDX series (polyoxyalkylene isotridecyl ether, manufactured by Dai-ichi Kogyo Seiyaku Co., Ltd.), Neugen XL series (polyoxyalkylene isodecyl ether, manufactured by Dai-ichi Kogyo Seiyaku Co., Ltd.), Neugen TDS series (polyoxyethylene tridecyl ether, manufactured by Dai-ichi Kogyo Seiyaku Co., Ltd.), Neugen LP series (polyoxyethylene lauryl ether, manufactured by Dai-ichi Kogyo Seiyaku Co., Ltd.), Sorgen series (sorbitan fatty acid ester, manufactured by Dai-ichi Kogyo Seiyaku Co., Ltd.), Sorgen TW series (polyoxyethylene sorbitan fatty acid ester, manufactured by Dai-ichi Kogyo Seiyaku Co., Ltd.), Leodol series (sorbitan fatty acid ester · polyoxyethylene sorbitan fatty acid ester, manufactured by Kao Corporation), Emanon series (polyethylene glycol fatty acid ester, manufactured by Kao Corporation), etc. can be mentioned.

[0021] <pH adjuster> The cleaning liquid for writing instruments of the present invention contains a pH adjuster. Examples of the pH adjuster include basic inorganic compounds such as ammonia, sodium carbonate, sodium phosphate, and sodium hydroxide which are basic components, basic organic compounds such as sodium acetate, triethanolamine, and diethanolamine, and acidic components such as lactic acid and citric acid. In the present invention, considering the compatibility with the surfactant having an HLB value of 15 or less, it is preferable to use a basic component. These pH adjusters may be used alone or in combination of two or more.

[0022] Among basic components, water-soluble amine compounds such as monoethanolamine, diethanolamine, and triethanolamine are preferred because they have good affinity with the surfactants and result in writing instrument cleaning solutions with excellent long-term storage stability. From a more specific perspective, alkanolamines are preferred, and among these, triethanolamine, which is weakly basic, is more preferred.

[0023] The content of the pH adjuster in the writing instrument cleaning liquid of the present invention is preferably 0.01 to 50% by mass, more preferably 0.1 to 15% by mass, and even more preferably 0.1 to 5% by mass, based on the total mass of the writing instrument cleaning liquid. Taking into consideration both the cleaning properties of the comb grooves, nibs, and converters of the writing instrument and the increase in pH of the writing instrument cleaning liquid, the content is preferably 0.5 to 5% by mass. If the content of the pH adjuster is too low, the intended effect of the present invention may not be fully exerted, and conversely, if the content is too high, safety concerns may arise due to the pH of the cleaning solution.

[0024] The writing instrument cleaning liquid of the present invention is used to clean dried ink from the thin, complexly structured grooves of a writing instrument component that has grooves arranged as an ink flow rate adjusting mechanism, the inside of a precise nib, a converter (ink injector for fountain pens), etc., so that the surface tension of the writing instrument cleaning liquid at an environment of 20°C is preferably 50 mN / m or less, more preferably 40 mN / m or less, and even more preferably 35 mN / m or less. Furthermore, a surface tension of 20 mN / m or more is preferable, because even if cleaning liquid remains in the grooves, nib, or converter of the writing instrument, it is less likely to affect newly added ink to the writing instrument, and 23 mN / m or more is more preferable. The surface tension can be determined by measuring in an environment of 20° C. using a surface tension measuring instrument manufactured by Kyowa Interface Science Co., Ltd., using a platinum plate by the vertical plate method. In particular, in the case of fountain pens equipped with a neck shaft equipped with a nib and comb grooves, and a converter (an ink reservoir (fountain pen ink inhaler) that has the function of directly drawing ink from an ink reservoir into the ink reservoir of the writing instrument), the comb grooves have a fine and complex structure, so once the ink has dried, ink stains are difficult to remove even with cleaning, and therefore the use of the writing instrument cleaning liquid of the present invention is effective and preferable.

[0025] Furthermore, the writing instrument cleaning solution of the present invention has excellent penetration properties, so it penetrates into even scratches on writing instrument components such as comb grooves, pen nibs, and converters, as well as fine comb grooves and precise pen nibs, and has excellent cleaning properties. -1 The viscosity of the writing instrument cleaning liquid measured at a rotation speed of 100 rpm is preferably 12 mPa·s or less, and in consideration of improving penetration and cleaning properties, it is preferably 6 mPa·s or less, and from further consideration, it is even more preferably 3 mPa·s or less.

[0026] The writing instrument cleaning liquid containing the surfactant of the present invention having an HLB value of 15 or less preferably has a pH of 10 or less in an environment of 20°C. This is because, when the writing instrument cleaning liquid exceeds pH 10 and becomes more alkaline, it is easier to suppress precipitation and discoloration of colorants such as dyes contained in ink, and it is also safe even if the cleaning liquid comes into contact with the user's hands or clothes during cleaning. Furthermore, in consideration of cleaning properties and stability, the pH of the writing instrument cleaning liquid in a 20°C environment is preferably pH 7 to 10, and more preferably pH 8 to 10. The pH of the writing instrument cleaning liquid may be measured by measuring the pH of a highly concentrated stock solution, which will be described later, or by measuring the pH of the cleaning liquid when the stock solution is diluted with water or the like. In particular, it is advisable to measure the pH when cleaning the grooves and nib of the writing implement. In the present invention, the pH value is measured in a 20° C. environment using a commercially available pH meter (for example, IM-40S pH meter manufactured by DKK-TOA Corporation).

[0027] The writing instrument cleaning liquid of the present invention may be sold at a concentration suitable for cleaning writing instruments, or may be sold as a concentrated solution that becomes suitable for cleaning writing instruments when diluted with water, and it is preferable that the pH when cleaning writing instrument components is 10 or less in a 20°C environment. Selling the product in a highly concentrated form has the advantage of being able to store it in a small container, reducing transportation costs, and reducing waste after use. The writing instrument cleaning liquid of the present invention has a pH of 10 or less in a 20°C environment even at high concentrations, making it highly safe even if the high concentration liquid comes into contact with the user's hands or clothing.

[0028] The writing instrument cleaning liquid of the present invention is preferably contained in a package such as a film or sheet to form a writing instrument cleaning liquid package, but from the standpoint of portability and convenience, it is preferable to individually package the amount used for one time in a film or sheet package, and further, in consideration of improving long-term storage stability such as moisture evaporation, it is preferable to package in a metal film, and particularly preferable to package in an aluminum compound film. Furthermore, with regard to the content of the cleaning liquid contained in the package, in consideration of cleaning ability and portability, it is preferable to use a writing instrument cleaning liquid package containing 3 to 15 ml, and from further consideration, it is preferable to use a writing instrument cleaning liquid package containing 5 to 10 ml. Furthermore, when two or more writing instrument cleaning liquid packages are sold, they are preferably separated along a seam or perforation, and may be sold as a set of 3 to 12 writing instrument cleaning liquid packages.Furthermore, it is preferable to sell a writing instrument set that includes a writing instrument cleaning liquid package and a writing instrument. Furthermore, the writing instrument cleaning liquid package is preferably sold as a writing instrument set together with a writing instrument such as a fountain pen, ballpoint pen, marking pen (sign pen), brush pen, calligraphy pen, or drafting pen, and is preferably sold as a writing instrument cleaning liquid set together with an inhaler such as a dropper for collecting the writing instrument cleaning liquid.

[0029] After removing the dried ink from the grooves and nib of a writing instrument using the cleaning method described above, the cleaning solution is generally washed away with water, i.e., "rinsing." However, if rinsing is insufficient, cleaning solution will remain in the grooves and nib of the writing instrument. If a converter filled with new ink is attached to the grooves and nib (neck) of the writing instrument in this state and the new ink is drawn into the converter from the nib, the cleaning solution remaining in the grooves, nib, and converter of the writing instrument may get mixed in with the new ink. If rinsing is insufficient and cleaning solution remains in the grooves, nib, or converter of the writing instrument, it may mix with the newly drawn ink and have adverse effects, so to minimize this effect, the writing instrument cleaning solution preferably has a pH of 10 or less in a 20°C environment and a surface tension of 20 to 50 mN / m. More preferably, the writing instrument cleaning solution preferably has a pH of 7 to 10 in a 20°C environment and a surface tension of 23 to 40 mN / m.

[0030] In particular, when cleaning writing instruments that use ink compositions that use pigments as colorants (pigment inks), the nonionic surfactants are preferred because they have a high affinity for the pigments and pigment dispersants contained in the pigment inks. Pigment dispersants for pigment inks include acidic resins, basic resins, nonionic surfactants, and anionic surfactants. Nonionic surfactants with an HLB value of 15 or less are preferred because they are particularly effective in cleaning writing instruments that use inks made with acidic resins such as acrylic resin, styrene-acrylic resin, styrene-maleic acid resin, and phenolic resin, and are even more effective in cleaning writing instruments that use inks made with acrylic resin and styrene-acrylic resin. Therefore, the writing instrument cleaning liquid of the present invention, which uses the nonionic surfactant, is preferably used as a cleaning liquid for writing instruments that use pigment inks.

[0031] In the case of an ink composition using a pigment (pigment ink), once the ink dries and hardens on the comb grooves, pen tip, and converter, stains are generally difficult to remove even by washing, so the use of the writing instrument cleaner of the present invention is effective. Pigments used in ink compositions (pigment inks) include inorganic, organic, and processed pigments, but among these, organic pigments are particularly difficult to remove stains from even by washing, so the use of the cleaner of the present invention is effective. Furthermore, taking into consideration phthalocyanine organic pigments, the most effective are ink compositions using phthalocyanine green and phthalocyanine blue, which are effective and preferred. Examples of phthalocyanine greens include Pigment Green 7, 36, and 58, and examples of phthalocyanine blues include Pigment Blue 16, 15, 15:1, 15:2, 15:3, 15:4, 15:6, 75, and 79, with Pigment Blue 15, 15:1, 15:2, 15:3, 15:4, and 15:6 being particularly effective.

[0032] <Water> The writing instrument cleaning liquid of the present invention contains water. The water is not particularly limited, and for example, ion-exchanged water, ultrafiltered water, distilled water, etc. can be used.

[0033] The writing instrument cleaning liquid of the present invention preferably contains various additives such as preservatives, anti-rust agents, and chelating agents for the purpose of improving the properties and functions of the cleaning liquid.

[0034] Examples of preservatives (antibacterial agents) include phenol, sodium benzoate, sodium dehydroacetate, potassium sorbate, propyl parahydroxybenzoate, 2,3,5,6-tetrachloro-4-(methylsulfonyl)pyridine, sodium 2-pyridinethiol-1-oxide, 1,2-benzisothiazolin-3-one, 2-methyl-4-isothiazolin-3-one, 2-n-octyl-4-isothiazolin-3-one, etc. These preservatives may be used alone or as a mixture of two or more. Among these antiseptics (antibacterial agents), it is preferable to use isothiazolin-based compounds in consideration of their antiseptic (antibacterial) effects, and more particularly, it is preferable to select from 1,2-benzisothiazolin-3-one, 2-methyl-4-isothiazolin-3-one, and 2-n-octyl-4-isothiazolin-3-one. Furthermore, as in the present invention, it is preferable to use 1,2-benzisothiazolin-3-one in consideration of the influence of compatibility with other components such as the nonionic surfactant on the stability of the cleaning solution (changes over time, changes over time with heating, and color changes).

[0035] Examples of the rust inhibitor include benzotriazole, tolyltriazole, dicyclohexylammonium nitrite, diisopropylammonium nitrite, sodium thiosulfate, saponin, dialkylthiourea, etc. Considering the rust inhibitory effect and the compatibility with the nonionic surfactant used in the present invention, among the rust inhibitors, benzotriazole is preferably used, and these rust inhibitors may be used alone or as a mixture of two or more kinds.

[0036] Furthermore, the writing instrument cleaning liquid according to the present invention preferably contains a chelating agent in order to suppress precipitation of ionic substances contained in water after rinsing, i.e., after ionic substances in the colorant of the ink composition contained in the writing instrument and cleaning liquid adhering to the writing instrument components are washed away with water.

[0037] Examples of the chelating agent include aminocarboxylic acids such as ethylenediaminetetraacetic acid (EDTA), hydroxyethylenediaminetriacetic acid (HEDTA), glycol ether diaminetetraacetic acid (GEDTA), nitrilotriacetic acid (NTA), hydroxyethyliminodiacetic acid (HIDA), dihydroxyethylglycine (DHEG), diethylenetriaminepentaacetic acid (DTPA), triethylenetetraminehexaacetic acid (TTHA), and alkali metal salts, ammonium salts, or amine salts thereof. Considering that the chelating agent tends not to significantly affect the physical properties of the writing instrument cleaning liquid before and after its addition, and also the compatibility with the nonionic surfactant used in the present invention, it is preferable to use aminocarboxylic acids or salts thereof among the above chelating agents, and in particular, it is preferable to use ethylenediaminetetraacetic acid (EDTA) or salts thereof.

[0038] The content of the chelating agent in the writing instrument cleaning liquid of the present invention is preferably 0.01 to 1% by mass based on the total mass of the ink composition, because if it is 1% by mass or less, it is unlikely to affect the performance and physical properties of the cleaning liquid, and if it is 0.01% by mass or more, it is unlikely to suppress the occurrence of precipitates, and the content is more preferably 0.01 to 0.5% by mass.

[0039] The writing instrument cleaning liquid of the present invention may also contain a water-soluble organic solvent. Examples of the water-soluble organic solvent include (i) glycols such as ethylene glycol, polyethylene glycol, and glycerin; (ii) alcohols such as methanol, ethanol, 1-propanol, 2-propanol, isopropanol, isobutanol, t-butanol, propargyl alcohol, allyl alcohol, 3-methyl-1-butyn-3-ol, ethylene glycol monomethyl ether acetate, and other higher alcohols; and (iii) glycol ethers such as ethylene glycol monomethyl ether, ethylene glycol monoethyl ether, 3-methoxybutanol, and 3-methoxy-3-methylbutanol. These water-soluble organic solvents may be used alone or in combination of two or more. [Example]

[0040] Example 1 Nonionic surfactant 1.0% by mass (Manufactured by Daiichi Kogyo Seiyaku Co., Ltd., product name: Noigen XL-70, polyoxyalkylene branched decyl ether, HLB value 13.2) Triethanolamine 3.0% by mass Preservatives 0.2% by mass (1,2-benzisothiazolin-3-one) Rust inhibitor 0.1% by mass (benzotriazole) Chelating agent 0.1% by mass (aminocarboxylic acid) Ion-exchanged water 95.7% by mass A nonionic surfactant, triethanolamine, an antiseptic, a rust inhibitor, and a chelating agent were added to ion-exchanged water and mixed by propeller stirring to obtain a cleaning liquid for writing instruments. The pH value of the resulting writing instrument cleaning liquid was measured using an IM-40S pH meter (manufactured by DKK-TOA Corporation, in an environment of 20° C.), and was found to be 9.2. The surface tension of the resulting writing instrument cleaner was measured using a surface tension meter (in a 20°C environment, platinum plate, vertical plate method, manufactured by Kyowa Interface Science Co., Ltd.) and found to be 27.2 mN / m. The viscosity of the resulting writing instrument cleaning liquid was measured using a Brookfield DV-II viscometer (CPE-42 rotor) at 20°C and a shear rate of 380 sec -1 When measured at a rotation speed of 100 rpm, the viscosity of the cleaning liquid for writing instruments was 1.1 mPa·s.

[0041] <Examples 2 to 29 and Comparative Examples 1 to 5> In Examples 2 to 29 and Comparative Examples 1 to 5, writing instrument cleaning liquids were obtained in the same manner as in Example 1, except that the types and amounts of ingredients contained in the writing instrument cleaning liquid were changed to the compositions shown in the table.

[0042] The cleaning liquids for writing instruments obtained in Examples 1 to 29 and Comparative Examples 1 to 5 were evaluated as follows, and the results are shown in the table. A fountain pen (product name: Custom NS) manufactured by Pilot Corporation was fitted with a nib, comb grooves (neck barrel), and a push-type converter (an ink reservoir (ink inhaler for fountain pens) capable of directly inhaling ink from an ink reservoir into the ink reservoir of the writing instrument) using a pressing member filled with 0.5 ml of the aqueous pigment ink composition for a writing instrument of Example 1, to prepare a test fountain pen. The fountain pen was then used and continued to write until the ink was used up. After that, ink was sucked up from the ink bottle using a push-type converter and refilled. After using this repeatedly 10 times, scratches such as attachment marks and sliding marks were formed on the nib and converter due to repeated use of the same writing instrument. Water was sucked into the nib, comb groove (neck shaft), and converter, which had scratches and stains from ink, to clean them. After that, the nib, comb groove (neck shaft), and converter were cleaned with writing instrument cleaning fluid. The converter was removed from the nib and grooves (neck), and the nib, grooves (neck) and converter were left immersed in 100 ml of cleaning solution for writing instruments in a 20°C environment for 24 hours. Next, the pen tip, comb grooves, and converter were washed with ion-exchanged water, and the presence or absence of ink was visually evaluated. Furthermore, a converter filled with 0.5 ml of an aqueous pigment ink composition for writing instruments was attached to the pen, and rewriting performance was evaluated. The viscosity of the resulting writing instrument cleaning liquid was measured using a Brookfield DV-II viscometer (CPE-42 rotor) at 20°C and a shear rate of 380 sec -1 When measured at a rotation speed of 100 rpm, the viscosities of the writing instrument cleaning liquids of Examples 6, 17, and 18 were 1.3 mPa·s, 5.5 mPa·s, and 10.7 mPa·s, respectively.

[0043] <Water-based pigment ink composition for writing instruments> Pigment dispersion (acrylic resin dispersion) 18.0% by mass (Fuji Pigment Co., Ltd., containing Pigment Blue 15:3, 17% by mass water dispersion) Moisturizing agent 2.0% by mass (glycerin) pH adjuster 0.5% by mass (triethanolamine) Preservatives 0.2% by mass (Manufactured by Lonza Japan Co., Ltd., product name: Proxel XL-2) Ion-exchanged water 79.3% by mass Ion-exchanged water, a humectant, a pH adjuster, and a preservative were added and mixed with a propeller to obtain a base liquid, and then the pigment dispersion was added to the base liquid and mixed with a propeller to obtain an aqueous pigment ink composition for a writing instrument.

[0044] [Table 1] [Table 2] [Table 3]

[0045] <Converter (with scratches) cleaning> ◎: Almost no ink stains were observed on the converter. ○: A small amount of ink staining was observed on the converter. △: Ink stains were observed on the converter, but were at a level that did not cause any practical problems. ×: A lot of ink stains remained on the converter.

[0046] <Cleaning of pen tip (with scratches)> ◎: Almost no ink stains were observed on the pen tip. ○: A small amount of ink staining was observed on the pen tip. △: Ink stains were observed on the pen tip, but were at a level that did not cause any practical problems. ×: There was a lot of ink staining on the pen tip.

[0047] <Cleaning of comb grooves> ⊚: Almost no ink stains were observed in the comb grooves. ○: A small amount of ink staining was observed in the comb grooves. △: Ink stains were observed in the comb grooves, but were at a level that did not cause any practical problems. ×: A lot of ink stains remained in the comb grooves.

[0048] <Rewriting performance> ◎: The handwriting was good. ◯: The handwriting was of no practical use. ×: There was some smearing in the handwriting, which was problematic.

[0049] <Stability test of cleaning solution> 100 ml of the writing instrument cleaning liquid obtained in Examples 1 to 29 and Comparative Examples 1 to 5 was collected in a glass tube and left to stand at 50° C. for 2 weeks, after which the cleaning liquid was visually observed. ⊚: The stability of the cleaning solution was good. ⊚: The stability of the cleaning solution was slightly affected, but was at a level that would not pose a problem in practical use. ◯: The stability of the cleaning solution was affected, but it was at a level that did not pose a problem in practical use.

[0050] As can be seen from the table, compared to the writing instrument cleaning liquids of Comparative Examples 1 to 5, the writing instrument cleaning liquids of Examples 1 to 29 have a high cleaning effect even when the pigment ink has dried inside the converter, nib, and comb grooves, and even if there are scratches, they are highly effective in cleaning the converter and nib, and do not affect re-writing properties. In addition, in Examples 2 to 4, the content of the surfactant was low at less than 1%, which resulted in slightly poor stability in the cleaning solution, and the cleaning solution was slightly cloudy when visually inspected, and Example 1 had a higher cleaning power. In Example 14, the HLB value of the surfactant was less than 10, which resulted in slightly poor solubility in the cleaning solution, and the cleaning solution was slightly cloudy when visually inspected, and Example 1 had a higher cleaning power.

[0051] On the other hand, the writing instrument cleaning liquids of Comparative Examples 1 to 5 did not contain a surfactant with an HLB value of 15 or less, so ink stains remained even after cleaning the converter (with scratches).In addition, in Comparative Examples 1, 2, and 4, ink stains remained in the comb grooves. As is clear from the above results, it has become clear that the writing instrument cleaning liquid of the present invention is an excellent cleaning liquid.

[0052] In the examples, the fountain pen nib, comb grooves, and converter were used to clean the writing instrument parts using the cleaner, but other writing instrument parts may also be used, such as ballpoint pen nibs made of plastic or metal tips, ballpoint pen tip holders, ink cartridges, writing instrument barrels, and writing instrument caps. In addition, the converter may be a push-type converter that uses a pressing member to suck up ink, a slide-type converter that uses a sliding member to suck up ink, or a rotary converter that uses a rotating body to suck up ink, and is not particularly limited. [Industrial Applicability]

[0053] The cleaning liquid for writing instruments of the present invention can be suitably used as a cleaning liquid for writing instruments equipped with comb grooves as an ink flow rate adjusting mechanism, such as fountain pens, ballpoint pens, marking pens (felt pens), brush pens, calligraphy pens, and drafting pens.

Claims

1. A cleaning liquid for a writing instrument comprising water, a pH adjuster, a nonionic surfactant, and a chelating agent, wherein the HLB value of the nonionic surfactant is 15 or less.

2. 2. The writing instrument cleaning liquid according to claim 1, wherein the chelating agent is an aminocarboxylic acid.

3. 3. The writing instrument cleaning liquid according to claim 1, wherein the content of the chelating agent is 0.01 to 1% by mass based on the total mass of the ink composition.

4. 4. The writing instrument cleaning liquid according to claim 1, wherein the writing instrument cleaning liquid has a surface tension of 20 to 50 mN / m at 20°C.

5. 5. The writing instrument cleaning liquid according to claim 1, wherein the pH adjuster is a water-soluble amine compound.

6. A writing instrument cleaning liquid package, comprising the writing instrument cleaning liquid according to any one of claims 1 to 5 housed in the package.

Citation Information

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