Vinyl alcohol polymer, aqueous solution containing vinyl alcohol polymer, paint and cement admixture

The vinyl alcohol polymer with controlled structural units and pH adjustments addresses the handling issues of high-viscosity polymers, enabling easy viscosity changes and effective thickening, ensuring smooth delivery and solubility.

JP7681208B2Active Publication Date: 2025-05-21KURARAY CO LTD
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Patent Information

Application Number
JP2025503004
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2023-04-19
Filing Date
2024-04-19
Publication Date
2025-05-21
Estimated Expiration
2044-04-19

AI Technical Summary

Technical Problem

Modified vinyl alcohol polymers exhibit high viscosity at high concentrations, making them difficult to handle and deliver, and they often fail to dissolve completely, limiting their application in processes requiring high viscosity changes.

Method used

A vinyl alcohol polymer with specific compositional ratios and pH adjustments allows for easy and significant viscosity changes, ensuring easy delivery and effective thickening properties by controlling the content of structural units with lactone rings, ionic groups, and hydrophobic groups, and adjusting pH with acids or bases.

Benefits of technology

The polymer enables easy and substantial viscosity adjustments, facilitating smooth delivery and effective thickening, while maintaining solubility and handleability, thus overcoming handling difficulties of high-concentration polymers.

✦ Generated by Eureka AI based on patent content.

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Abstract

Provided is a vinyl alcohol polymer, wherein expression (1) is satisfied by: an aqueous solution viscosity X [cp], at 20°C and a shear rate of 1 [1 / s], of an aqueous solution in which the content of the vinyl alcohol polymer is 1.5 mass% and which exhibits a pH of 4 at 20°C; and an aqueous solution viscosity Y [cp], at 20°C and a shear rate of 1 [1 / s], of an aqueous solution in which the content of the vinyl alcohol polymer is 1.5 mass% and which exhibits a pH of 10 at 20°C. (1): 1.5<Y / X<1,500
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Description

[Technical field]

[0001] The present invention relates to a vinyl alcohol polymer, and a vinyl alcohol polymer-containing aqueous solution, a paint, and a cement admixture, each of which contains the vinyl alcohol polymer. [Background technology]

[0002] Vinyl alcohol polymers have excellent film properties (mechanical strength, oil resistance, film-forming properties, oxygen gas barrier properties, etc.) due to their hydrophilicity or high crystallinity. For this reason, vinyl alcohol polymers are widely used as viscosity adjusters (thickeners), adhesives, paper coating agents, fiber processing agents, binders, emulsion stabilizers, and raw materials for films and fibers, etc. In order to improve the performance of vinyl alcohol polymers according to their applications, modified vinyl alcohol polymers are being developed by introducing functional groups, controlling crystallinity, etc.

[0003] For example, in the application of a viscosity modifier (thickener), even ordinary vinyl alcohol polymers have an excellent thickening effect due to the interaction between the hydroxyl groups of the vinyl alcohol polymer. However, when a higher viscosity of the aqueous solution is required, modified vinyl alcohol polymers into which a small amount of hydrophobic groups such as saturated hydrocarbon groups have been introduced have been proposed (Patent Documents 1 and 2). These modified vinyl alcohol polymers exhibit a higher thickening effect because, in addition to the interaction between the hydroxyl groups, the hydrophobic groups also interact in the aqueous solution. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] JP 2008-291120 A [Patent Document 2] International Publication No. 2019 / 189402 Summary of the Invention [Problem to be solved by the invention]

[0005] The modified vinyl alcohol polymers described in Patent Documents 1 and 2 exhibit excellent thickening properties at low concentrations. However, in a process of mixing these modified vinyl alcohol polymers with an object to which viscosity is to be imparted (e.g., an emulsion), when the modified vinyl alcohol polymer is delivered to the object, it is necessary to prepare a modified vinyl alcohol polymer solution at a high concentration when delivering the modified vinyl alcohol polymer, taking into consideration that the concentration of the modified vinyl alcohol polymer decreases after mixing. As a result of the inventors' investigations, it was found that the above-mentioned modified vinyl alcohol polymer has problems in terms of handling, such as high viscosity at high concentrations making it impossible to pump the polymer or inability to dissolve the polymer at all.

[0006] The present invention has an object to solve the above problems, and has an object to provide a vinyl alcohol-based polymer from which an aqueous vinyl alcohol-based polymer solution capable of easily and greatly changing the viscosity can be obtained, an aqueous vinyl alcohol-based polymer solution capable of easily and greatly changing the viscosity, and a paint and a cement admixture containing the vinyl alcohol-based polymer. [Means for solving the problem]

[0007] The present invention includes the following inventions. [1] A vinyl alcohol polymer, In an aqueous solution state in which the content of the vinyl alcohol polymer is 1.5% by mass and the pH at 20° C. is 4, the aqueous solution viscosity X [cp] of the aqueous solution at a shear rate of 1 [1 / s] at 20° C. The vinyl alcohol-based polymer has a content of 1.5% by mass and a pH of 10 at 20°C in an aqueous solution, and the aqueous solution viscosity Y [cp] of the aqueous solution at a shear rate of 1 [1 / s] at 20°C satisfies the following formula (1): 1.5 <Y / X<1,500 (1) [2] The vinyl alcohol polymer according to the above [1], wherein the aqueous solution viscosity Y is 20 cp or more. [3] The vinyl alcohol-based polymer according to the above [1] or [2], wherein the aqueous solution viscosity Y [cp] and the aqueous solution viscosity Z [cp] of the aqueous solution at a shear rate of 100 [1 / s] at 20°C in an aqueous solution state having a vinyl alcohol-based polymer content of 1.5% by mass and a pH of 10 at 20°C satisfy the following formula (2): 1.5 <Y / Z<100 (2) [4] The vinyl alcohol polymer according to any one of the above [1] to [3], which contains a structural unit (A) having a lactone ring. [5] The vinyl alcohol polymer according to any one of the above [1] to [4], which contains a structural unit (B) having an ionic group. [6] The vinyl alcohol polymer according to any one of the above [1] to [5], which contains a structural unit (C) having a hydrophobic group made of a hydrocarbon having 3 or more carbon atoms. [7] A copolymer comprising a structural unit (A) having a lactone ring, a structural unit (B) having an ionic group, and a structural unit (C) having a hydrophobic group composed of a hydrocarbon having 3 or more carbon atoms, The vinyl alcohol-based polymer according to any one of the above [1] to [3], which satisfies the following formula (3), where the content of the structural unit (A) relative to all structural units of the vinyl alcohol-based polymer is (a), the content of the structural unit (B) is (b), the content of the structural unit (C) is (c), the number of carbon atoms of the hydrophobic group in the structural unit (C) is (d), and the number of ionic groups in the structural unit (B) is (e). 5<(c×(d-3) 2 ) / (a+b×e)<95 (3) [8] A vinyl alcohol polymer-containing aqueous solution comprising the vinyl alcohol polymer according to any one of the above [1] to [7] and water. [9] The vinyl alcohol polymer-containing aqueous solution according to [8] above, wherein the content of the vinyl alcohol polymer is 1 to 3 mass%, the pH at 20°C is 7 or more, and the aqueous solution viscosity at 20°C at a shear rate of 1 [1 / s] is 20 to 1,000,000 cp.

[10] The vinyl alcohol polymer-containing aqueous solution according to [8] above, wherein the content of the vinyl alcohol polymer is 1 to 3 mass%, the pH at 20°C is less than 7, and the aqueous solution viscosity at 20°C at a shear rate of 1 [1 / s] is 20 to 100,000 cp.

[11] A coating material comprising the vinyl alcohol polymer according to any one of the above [1] to [7].

[12] A cement admixture comprising the vinyl alcohol polymer according to any one of the above [1] to [7]. Effect of the Invention

[0008] According to the present invention, it is possible to provide a vinyl alcohol-based polymer from which an aqueous vinyl alcohol-based polymer solution whose viscosity can be easily and greatly changed can be obtained, an aqueous vinyl alcohol-based polymer solution whose viscosity can be easily and greatly changed, and a paint and a cement admixture containing the vinyl alcohol-based polymer. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0009] An example of an embodiment to which the present invention is applied will be described below, however, other embodiments are also included in the present invention as long as they are in keeping with the spirit of the present invention. In this specification, the property of being able to easily and greatly change the viscosity is referred to as "viscosity changeability." In this specification, the term "aqueous solution state" refers to a state in which components other than the solvent (water) are dissolved or dispersed in water.

[0010] [Vinyl alcohol polymer] The vinyl alcohol polymer according to the present invention is a vinyl alcohol polymer, In an aqueous solution state in which the content of the vinyl alcohol polymer is 1.5% by mass and the pH at 20° C. is 4, the aqueous solution viscosity X [cp] of the aqueous solution at a shear rate of 1 [1 / s] at 20° C. The vinyl alcohol polymer has a content of 1.5% by mass and a pH of 10 at 20°C in an aqueous solution, and the aqueous solution viscosity Y [cp] at a shear rate of 1 [1 / s] at 20°C satisfies the following formula (1): 1.5 <Y / X<1,500 (1)

[0011] The vinyl alcohol polymer according to the present invention has a large viscosity ratio (Y / X) of more than 1.5. Therefore, according to the vinyl alcohol polymer according to the present invention, it is possible to easily change the viscosity greatly by changing the pH of the aqueous solution of the vinyl alcohol polymer. Therefore, when the aqueous solution of the vinyl alcohol polymer is delivered through a pipe or the like, it is possible to easily make the aqueous solution low-viscosity by lowering the pH by adding an acid or the like, and thus to smoothly deliver the solution. In addition, when used as a thickener or the like, it is possible to easily make the aqueous solution high-viscosity by increasing the pH by adding an alkali or the like.

[0012] <Viscosity ratio (Y / X)> The viscosity ratio (Y / X) is more than 1.5 and less than 1,500. If it is 1.5 or less, the viscosity of the aqueous solution of the vinyl alcohol polymer cannot be easily changed, and therefore, it is not possible to achieve both thickening and flowability by adjusting the pH. If it is 1,500 or more, the viscosity changes significantly with a slight change in pH, making it difficult to adjust the viscosity and resulting in poor convenience. From this viewpoint, the viscosity ratio (Y / X) is preferably more than 1.5 and not more than 1,000, more preferably more than 1.5 and not more than 800, even more preferably more than 1.5 and not more than 500, still more preferably 3.0 or more and not more than 500, still more preferably 5.0 or more and not more than 500, still more preferably 5.0 or more and not more than 300, still more preferably 10 or more and not more than 300, still more preferably 15 or more and not more than 300, and still more preferably 25 or more and not more than 300.

[0013] The viscosity ratio (Y / X) tends to increase when a structural unit having a hydrophobic group with a large number of carbon atoms is introduced, when the content of structural units having a hydrophobic group is increased, when the degree of polymerization is increased, when the content of structural units having an ionic group is increased, or when the vinyl ester monomer unit is decreased. Conversely, the viscosity ratio (Y / X) tends to decrease when a structural unit having a hydrophobic group with a small number of carbon atoms is introduced, when the content of structural units having a hydrophobic group is decreased, when the degree of polymerization is lowered, when the content of structural units having an ionic group is decreased, or when the vinyl ester monomer unit is increased.

[0014] <Viscosity X> The viscosity X [cp] is preferably 6,000 cp or less from the viewpoint of improving the flowability of the aqueous solution of the vinyl alcohol polymer. The viscosity X [cp] is preferably 1 cp or more from the viewpoint of thickening after changing the viscosity of the aqueous solution of the vinyl alcohol polymer. From this viewpoint, the viscosity X [cp] is preferably 1 to 6,000, more preferably 10 to 5,500, even more preferably 20 to 5,500, even more preferably 25 to 5,500, even more preferably 100 to 5,500, even more preferably 100 to 3,000, even more preferably 100 to 2,500, and even more preferably 130 to 2,500.

[0015] When highly acidic ionic groups are modified, when the degree of polymerization is increased, or when the vinyl ester monomer units are decreased, the viscosity X [cp] tends to increase, and when the degree of polymerization is decreased or when the vinyl ester monomer units are increased, the viscosity X [cp] tends to decrease.

[0016] <Viscosity Y> The viscosity Y [cp] is preferably 20 cp or more from the viewpoint of viscosity changeability and thickening of the aqueous solution of the vinyl alcohol polymer. Also, the viscosity Y [cp] is preferably 500,000 cp or less from the viewpoint of handleability. From this viewpoint, the viscosity X [cp] is preferably 20 to 500,000, more preferably 100 to 300,000, even more preferably 100 to 200,000, still more preferably 200 to 200,000, still more preferably 500 to 200,000, still more preferably 2,000 to 200,000, still more preferably 5,000 to 200,000, still more preferably 6,000 to 200,000, still more preferably 10,000 to 150,000.

[0017] The viscosity Y[cp] tends to increase when a structural unit having a hydrophobic group with a large number of carbon atoms is introduced, when the content of structural units having a hydrophobic group is increased, when the degree of polymerization is increased, when the content of structural units having an ionic group is increased, or when the vinyl ester monomer unit is decreased. Conversely, the viscosity Y[cp] tends to decrease when a structural unit having a hydrophobic group with a small number of carbon atoms is introduced, when the content of structural units having a hydrophobic group is decreased, when the degree of polymerization is decreased, when the content of structural units having an ionic group is decreased, or when the vinyl ester monomer unit is increased.

[0018] <Viscosity ratio (Y / Z)> It is preferable that the aqueous solution viscosity Y [cp] and the aqueous solution viscosity Z [cp] of the aqueous solution at a shear rate of 100 [1 / s] at 20°C in an aqueous solution state in which the content of the vinyl alcohol-based polymer is 1.5 mass% and the pH at 20°C is 10 satisfy the following formula (2): 1.5 <Y / Z<100 (2) When the viscosity ratio (Y / Z) is more than 1.5, the composition has excellent thixotropy, and when the viscosity ratio (Y / Z) is less than 100, the composition has excellent handleability. From this viewpoint, the viscosity ratio (Y / Z) is more preferably 2.0 to 80, further preferably 5 to 80, even more preferably 10 to 80, further more preferably 20 to 80, further more preferably 20 to 60, and further more preferably 20 to 50.

[0019] The viscosity ratio (Y / Z) tends to increase when a structural unit having a hydrophobic group with a large number of carbon atoms is introduced, when the content of structural units having a hydrophobic group is increased, when the content of structural units having an ionic group is increased, or when the vinyl ester monomer unit is decreased. Conversely, the viscosity ratio (Y / Z) tends to decrease when a structural unit having a hydrophobic group with a small number of carbon atoms is introduced, when the content of structural units having a hydrophobic group is decreased, when the content of structural units having an ionic group is decreased, or when the vinyl ester monomer unit is increased.

[0020] <Viscosity Z> The viscosity Z [cp] is preferably 10,000 cp or less from the viewpoint of improving the liquid transportability of the aqueous solution of the vinyl alcohol polymer. Also, from the viewpoint of thickening, the viscosity Z [cp] is preferably 10 cp or more. From this viewpoint, the viscosity Z [cp] is preferably 10 to 10,000, more preferably 50 to 10,000, even more preferably 100 to 10,000, still more preferably 100 to 6,000, still more preferably 100 to 4,000, still more preferably 500 to 4,000, and still more preferably 1,000 to 3,000.

[0021] Introducing a structural unit having a hydrophobic group with a large number of carbon atoms, increasing the content of structural units having a hydrophobic group, or increasing the content of structural units having an ionic group tends to increase the viscosity Z [cp], and introducing a structural unit having a hydrophobic group with a small number of carbon atoms, decreasing the content of structural units having a hydrophobic group, or decreasing the content of structural units having an ionic group tends to decrease the viscosity Z [cp].

[0022] The aqueous solution viscosities X [cp], Y [cp], Z [cp], and W [cp] can be measured using a rheometer, and specifically, they can be measured by the method described in the examples.

[0023] <pH adjuster> There are no particular restrictions on the method for adjusting the pH of the aqueous solution of the vinyl alcohol-based polymer, but it is preferable to add an acidic compound or a basic compound to the aqueous solution.

[0024] Examples of the acidic compound include inorganic acids such as hydrochloric acid, sulfuric acid, phosphoric acid, nitric acid, and hydrofluoric acid; organic acids such as formic acid, acetic acid, trichloroacetic acid, propionic acid, butanoic acid, chloroacetic acid, methanesulfonic acid, p-toluenesulfonic acid, trifluoromethanesulfonic acid, and citric acid. Among these, p-toluenesulfonic acid, citric acid, hydrochloric acid, nitric acid, sulfuric acid, and acetic acid are preferable, and citric acid is more preferable. The acidic compound may be used alone or in combination of two or more.

[0025] Examples of the basic compound include alkali metal hydrides such as sodium hydride and potassium hydride; alkali metal hydroxides such as sodium hydroxide and potassium hydroxide; alkali metal carbonates such as sodium carbonate and potassium carbonate; alkali metal bicarbonates such as sodium bicarbonate and potassium bicarbonate; tertiary amines such as triethylamine, tributylamine, and diazabicyclo[2.2.2]octane; and nitrogen-containing heterocyclic aromatic compounds such as pyridine and 2,6-lutidine. Among these, alkali metal hydroxides are preferable, and sodium hydroxide is more preferable. The basic compound may be used alone or in combination of two or more.

[0026] <Constituent unit of vinyl alcohol-based polymer> (Constituent unit (A) having a lactone ring) The vinyl alcohol-based polymer according to the present invention preferably contains a constituent unit (A) having a lactone ring. When the vinyl alcohol polymer according to the present invention has a lactone ring, the surface of the vinyl alcohol polymer is prevented from melting and adhering to form a mass, and as a result, the vinyl alcohol polymer is prevented from becoming difficult to dissolve when it is made into an aqueous solution. The lactone ring can be obtained, for example, by copolymerizing a vinyl ester and a (meth)acrylic acid ester, followed by saponification. Specific examples of the vinyl ester are the same as those of the vinyl ester monomer unit described below.Specific examples of the (meth)acrylic ester are the same as those of the acrylic ester and methacrylic ester in the structural unit (B) having an ionic group described below. The structural unit (A) having a lactone ring is preferably at least one selected from the group consisting of units represented by the following structural formula (1), units represented by the following structural formula (2), and units represented by the following structural formula (3), more preferably at least one selected from the group consisting of units represented by the following structural formula (1) and units represented by the following structural formula (2), and even more preferably a unit represented by the following structural formula (1). In addition, in structural formula (1), structural formula (2) and structural formula (3), * represents a bond bonding to an adjacent structural unit. In structural formula (2) and structural formula (3), R is a methyl group, a carboxy group, or a salt of a carboxy group.

[0027] [ka]

[0028] (Structural Unit (B) Having an Ionic Group) The vinyl alcohol polymer according to the present invention preferably contains a structural unit (B) having an ionic group. The vinyl alcohol polymer according to the present invention contains a structural unit (B) having an ionic group, and therefore has improved solubility in water when made into an aqueous solution. In addition, when the pH of the aqueous solution is lowered, the ionic group reacts with the hydroxyl group in the vinyl alcohol polymer to form a lactone ring structure, or the ionic group is protonated, thereby reducing the viscosity, and thus the aqueous solution can be smoothly transferred.

[0029] The ionic group is not particularly limited, and examples thereof include carboxyl group, carboxyl salt, sulfo group, sulfo salt, amino group, amino salt, quaternary ammonium salt, etc. As the above salt, from the viewpoint of industrial availability and cost, alkali metal salt is preferable, and sodium salt is more preferable. These ionic groups may be used alone or in combination of two or more. Among these, from the viewpoint of viscosity modification and acidity, carboxyl group and carboxyl salt are preferable.

[0030] Examples of the monomer constituting the structural unit (B) having an ionic group include a monomer having a carboxy group or a salt thereof, an ester of a monomer having a carboxy group, a monomer having a sulfo group or a salt thereof, a monomer having an amino group or a salt thereof, and a monomer having a salt of a quaternary ammonium group. These monomers may be used alone or in combination of two or more. Among these, from the viewpoint of viscosity modification and acidity, a monomer having a carboxy group or a salt thereof, and an ester of a monomer having a carboxy group are preferred. The structural unit (B) having an ionic group may be a structural unit represented by the structural formula (6) described below.

[0031] <<Monomers having a carboxy group or a salt thereof, and esters of monomers having a carboxy group>> The monomer having a carboxy group or a salt thereof, and the ester of a monomer having a carboxy group may be any monomer that can be copolymerized with a vinyl ester monomer and in which a carboxy group or a salt thereof is present in the vinyl alcohol polymer after saponification. Examples of such monomers include acrylic acid or a salt thereof; acrylic acid esters such as methyl acrylate, ethyl acrylate, n-propyl acrylate, and isopropyl acrylate; methacrylic acid or a salt thereof; methacrylic acid esters such as methyl methacrylate, ethyl methacrylate, n-propyl methacrylate, and isopropyl methacrylate; maleic acid or a salt thereof; monomethyl maleate, maleic acid, and the like. Examples of the carboxylic acid ester include dimethyl maleate, monoethyl maleate, diethyl maleate, and other maleic acid esters; itaconic acid or a salt thereof; itaconic acid esters such as monomethyl itaconate, dimethyl itaconate, monoethyl itaconate, diethyl itaconate, and other fumaric acid esters; fumaric acid or a salt thereof; fumaric acid esters such as monomethyl fumarate, dimethyl fumarate, monoethyl fumarate, diethyl fumarate, and other fumaric acid esters; maleic anhydride, itaconic anhydride, or a derivative thereof; formyl carboxylic acid such as phthalaldehyde acid, isophthalaldehyde acid, terephthalaldehyde acid, glyoxylic acid, formylacetic acid, or formylpropanoic acid, or a salt thereof; and the like. These may be used alone or in combination of two or more. Among these, from the viewpoints of reactivity and industrial availability, methyl acrylate, acrylic acid, maleic acid, monomethyl maleate, dimethyl maleate, itaconic acid, monomethyl itaconate, phthalaldehyde acid, isophthalaldehyde acid, terephthalaldehyde acid, glyoxylic acid, or a salt thereof is preferred, and methyl acrylate, acrylic acid, or a salt thereof is more preferred.

[0032] <<Monomers having a sulfo group or a salt thereof>> The monomer having a sulfo group or a salt thereof is not particularly limited, and examples thereof include unsaturated sulfonic acids such as vinyl sulfonic acid, allyl sulfonic acid, (meth)acrylic sulfonic acid, styrene sulfonic acid, benzaldehyde sulfonic acid (orthobenzaldehyde sulfonic acid, methabenzaldehyde sulfonic acid, parabenzaldehyde sulfonic acid), 2-acrylamido-2-phenylpropanesulfonic acid, and 2-acrylamido-2-methylpropanesulfonic acid (AMPS), or salts of these unsaturated sulfonic acids; unsaturated disulfonic acids such as benzaldehyde-2,4-disulfonic acid, or salts of these unsaturated disulfonic acids. These monomers having a sulfo group or a salt thereof may be used alone or in combination of two or more. Among these, from the viewpoints of reactivity and industrial availability, orthobenzaldehydesulfonic acid, 2-acrylamido-2-methylpropanesulfonic acid (AMPS), benzaldehyde-2,4-disulfonic acid, or a salt thereof is preferred, and benzaldehydesulfonic acid or a salt thereof is more preferred.

[0033] <<Monomers having an amino group or its salt>> The monomer having an amino group or a salt thereof is preferably an amino group (-NH 2 ) or its salts, methylamino group (-NHCH 3 ) or its salts, dimethylamino group (-N(CH 3 ) 2 ) or its salts, diethylamino group (-N(CH 2 CH 3 ) 2 ) or its salt, diphenylamino group (-NPh 2 ) or a salt thereof, for example, vinyldimethylamine, vinyldiethylamine, vinyldiphenylamine, allyldimethylamine, methacryldiethylamine, or other unsaturated amines or salts thereof. These monomers having an amino group or a salt thereof may be used alone or in combination of two or more. Among these, vinyldimethylamine is preferred from the viewpoint of industrial availability.

[0034] <<Monomers with quaternary ammonium salts>> In this specification, the term "quaternary ammonium group" refers to a cation formed by four carbon atoms bonded to one nitrogen atom. However, the four carbon atoms do not necessarily have to be different carbon atoms, and may be the same carbon atom. Monomers having a salt of a quaternary ammonium group include quaternary ammonium chloride (-N+(CH 3 ) 3 There are no particular limitations as long as the monomer has a salt of a quaternary ammonium group such as 3-(methacrylamide)propyltrimethylammonium chloride (MAPTAC), and examples thereof include 3-(methacrylamide)propyltrimethylammonium chloride (MAPTAC). These monomers having a salt of a quaternary ammonium group may be used alone or in combination of two or more. Among these, 3-(methacrylamide)propyltrimethylammonium chloride (MAPTAC) is preferred from the viewpoint of industrial availability. <<Structural unit represented by structural formula (6)>> The structural unit (B) having an ionic group may be a structural unit represented by the following structural formula (6). [ka] In structural formula (6), * represents a bond connecting to an adjacent structural unit. In structural formula (6), R 5 is an ionic group. The ionic group is preferably the above-mentioned ionic group, and more preferably a carboxy group or a salt thereof.

[0035] (Structural Unit (C) Having a Hydrophobic Group Made of Hydrocarbon Having 3 or More Carbon Atoms) The vinyl alcohol polymer according to the present invention preferably contains a structural unit (C) having a hydrophobic group made of a hydrocarbon having 3 or more carbon atoms. The vinyl alcohol polymer according to the present invention contains a structural unit (C) having a hydrophobic group composed of a hydrocarbon having 3 or more carbon atoms, and therefore when left standing, physical crosslinks are formed by interaction between the hydrophobic groups, thereby improving the viscosity. Furthermore, when shear stress is applied by stirring or the like, the physical crosslinks are temporarily removed and the viscosity decreases. As a result, the vinyl alcohol polymer according to the present invention exhibits thixotropy. Examples of the structural unit (C) include a structural unit represented by the following structural formula (4) and a structural unit represented by the following structural formula (5).

[0036] [ka]

[0037] In structural formula (4), * represents a bond connecting to an adjacent structural unit. In structural formula (4), R 1 is a single bond, an amide bond (-C(=O)-NH-), or an ether bond (-O-). 2 R is a hydrophobic group made of a hydrocarbon having 3 or more carbon atoms, and is preferably an alkyl or alkenyl group having 3 or more carbon atoms. 3 is hydrogen or a methyl group. The number of carbon atoms in the alkyl or alkenyl group is preferably 3 to 25. When the number of carbon atoms is 3 or more, thixotropy is well exhibited. When the number of carbon atoms is 25 or less, the vinyl alcohol polymer dissolves well in water. From these viewpoints, the alkyl or alkenyl group more preferably has 4-25 carbon atoms, further preferably has 6-20 carbon atoms, even further preferably has 6-12 carbon atoms, and further still further preferably has 10-12 carbon atoms. The carbon number of the alkyl group or alkenyl group may be linear or branched, but from the above viewpoint, linear is preferable. The alkyl group is preferably a hexyl group, an octyl group, a decyl group, a dodecyl group, or the like.

[0038] [ka]

[0039] In structural formula (5), * represents a bond connecting to an adjacent structural unit. In structural formula (5), R 2 is R in structural formula (4). 2 is the same as: The structural formula (5) can be produced by binding an aldehyde or a derivative thereof to two hydroxyl groups bonded to two carbon atoms bonded to both ends of a methylene group in a vinyl alcohol polymer. The carbon number of the aldehyde or derivative thereof is preferably 4 to 20. When the carbon number is 4 or more, thixotropy is well expressed. When the carbon number is 20 or less, the vinyl alcohol polymer dissolves well in water. From this viewpoint, the carbon number is more preferably 4 to 16, further preferably 6 to 14, and further more preferably 10 to 12. The aldehyde is preferably 1-butanal, isobutyraldehyde, tert-butyraldehyde, pentanal, 3-methyl-butanal, 1-hexanal, 1-heptanal, 1-octanal, 2-ethylhexanal, 1-nonanal, 1-decanal, 3,7-dimethyl-1-octanal, 1-undecanal, 1-dodecanal, 3-methyl-3-butenal, citral, citronellal, 7-octenal, and more preferably at least one selected from dodecanal, decanal, and hexanal.

[0040] (vinyl alcohol monomer unit) The vinyl alcohol polymer according to the present invention preferably contains a vinyl alcohol monomer unit.

[0041] (vinyl ester monomer unit) The vinyl alcohol polymer according to the present invention preferably contains a vinyl ester monomer unit. Examples of vinyl ester monomer units include vinyl acetate, vinyl formate, vinyl propionate, vinyl caprylate, and vinyl versatate. Among them, vinyl acetate is preferred from an industrial point of view. These may be used alone or in combination of two or more.

[0042] The vinyl alcohol polymer of the present invention may further have a constituent unit other than the constituent unit (A), the constituent unit (B), the constituent unit (C), the vinyl alcohol monomer unit and the vinyl ester monomer unit, so long as the effects of the present invention are obtained. The constituent unit is, for example, a constituent unit derived from an ethylenically unsaturated monomer copolymerizable with a vinyl ester, or a constituent unit that has been post-modified by acetalization or the like. The ethylenically unsaturated monomer is, for example, α-olefins such as ethylene, propylene, n-butene, isobutylene, etc.; vinyl ethers such as methyl vinyl ether and ethyl vinyl ether; vinyl cyanides such as acrylonitrile and methacrylonitrile; vinyl halides such as vinyl chloride and vinyl fluoride; vinylidene halides such as vinylidene chloride and vinylidene fluoride; allyl compounds such as allyl acetate and allyl chloride; and vinyl silyl compounds such as vinyltrimethoxysilane.

[0043] (Content of structural units) The content (a) of the structural unit (A) in the vinyl alcohol polymer according to the present invention is preferably 0.1 to 10 mol %. When it is 0.1 mol % or more, the solubility in water is excellent. When it is 10 mol % or less, the effects attributable to the structural units other than the structural unit (A) are excellent. From this viewpoint, the content (a) of the structural unit (A) is more preferably 0.1 to 8.0 mol%, even more preferably 0.1 to 6.0 mol%, even more preferably 1.0 to 6.0 mol%, even more preferably 2.0 to 6.0 mol%, even more preferably 3.0 to 5.5 mol%, and even more preferably 3.0 to 5.0 mol%.

[0044] The content (b) of the structural unit (B) in the vinyl alcohol polymer according to the present invention is preferably 0.1 to 10 mol%. If it is 0.1 mol% or more, the solubility in water when the aqueous solution is prepared is improved, and when the pH of the aqueous solution is lowered, the structural unit (B) reacts with the hydroxyl group in the vinyl alcohol polymer to form a lactone ring structure or is protonated, thereby reducing the viscosity, and therefore the aqueous solution can be smoothly transferred. If it is 10 mol% or less, the effects attributable to the structural units other than the structural unit (B) are excellent. From this viewpoint, the content (b) of the structural unit (B) is more preferably 0.1 to 8.0 mol%, even more preferably 0.1 to 6.0 mol%, even more preferably 1.0 to 6.0 mol%, even more preferably 2.0 to 6.0 mol%, even more preferably 2.0 to 5.5 mol%, and even more preferably 2.0 to 5.0 mol%.

[0045] The content (c) of the structural unit (C) in the vinyl alcohol polymer according to the present invention is preferably 0.1 to 10 mol %. When it is 0.1 mol % or more, the viscosity of the aqueous solution is improved. When it is 10 mol % or less, the effects attributable to the structural units other than the structural unit (C) are excellent. From this viewpoint, the content (c) of the structural unit (C) is more preferably 0.1 to 8.0 mol%, even more preferably 0.5 to 8.0 mol%, even more preferably 1.2 to 8.0 mol%, even more preferably 1.2 to 5.5 mol%, and even more preferably 1.2 to 3.0 mol%.

[0046] The content of vinyl alcohol monomer units in the vinyl alcohol polymer according to the present invention is preferably 60 to 99 mol %. When it is 60 mol % or more, the effect due to water solubility is excellent. When it is 99 mol % or less, the effect due to the constitutional units other than the vinyl alcohol monomer units is excellent. From this viewpoint, the content of vinyl alcohol monomer units is more preferably 65 to 98 mol %, further preferably 70 to 97 mol %, even further preferably 75 to 97 mol %, and even further preferably 77 to 96 mol %.

[0047] The content of vinyl ester monomer units in the vinyl alcohol polymer according to the present invention is preferably 0.01 to 20 mol %. When it is 0.01 mol % or more, the storage stability of the aqueous solution is excellent. When it is 20 mol % or less, the effects due to the constituent units other than the vinyl ester monomer units are excellent. From this viewpoint, the content of the vinyl ester monomer unit is more preferably 0.01 to 12.0 mol %, further preferably 0.05 to 5.0 mol %, even further preferably 0.05 to 1.0 mol %, and even further preferably 0.05 to 0.5 mol %.

[0048] The vinyl alcohol polymer according to the present invention comprises a structural unit (A) having a lactone ring, a structural unit (B) having an ionic group, and a structural unit (C) having a hydrophobic group composed of a hydrocarbon having 3 or more carbon atoms, It is preferable that the content of the structural unit (A) relative to all structural units of the vinyl alcohol polymer is (a), the content of the structural unit (B) is (b), the content of the structural unit (C) is (c), the number of carbon atoms of the hydrophobic group in the structural unit (C) is (d), and the number of ionic groups in the structural unit (B) is (e), so as to satisfy the following formula (3): 5<(c×(d-3) 2 ) / (a+b×e)<95 (3)

[0049] The number of carbon atoms (d) of the hydrophobic group in the structural unit (C) is R 1 , and R 2 The sum of the carbon atoms contained in is d, and in structural formula (5), R 2 The sum of the number of carbon atoms in the aryl group and the number of carbon atoms in the acetal portion was defined as d.

[0050] The middle part of the formula (3) is "(c×(d-3) 2 ) / (a+b×e) is the numerator "(c×(d-3) 2 ) is an index showing the strength of interaction between hydrophobic groups of the resin, and the denominator "(a+b×e)" is an index showing the solubility in water. Therefore, the middle side "(c×(d-3)2 ) / (a+b×e)" is an index showing the balance between hydrophobicity and hydrophilicity. The middle part "(c×(d-3) 2 When the ratio "a+b×e" is more than 5, it has an excellent effect of thickening. When the ratio is less than 95, it has an excellent effect of exhibiting high viscosity changeability while maintaining solubility in water. From this perspective, the midpoint "(c×(d-3) 2 ) / (a+b×e)" is more preferably 6 to 70, even more preferably 10 to 60, still more preferably 10 to 55, still more preferably 13 to 55, still more preferably 15 to 55, still more preferably 15 to 50, still more preferably 15 to 45, and still more preferably 15 to 40.

[0051] (Physical Properties of Vinyl Alcohol Polymers) <<Amount of denaturation>> The modification amount of the vinyl alcohol polymer according to the present invention is not particularly limited, but is preferably 0 to 30.0 mol%. When it is 30.0 mol% or less, the effect attributable to the vinyl alcohol polymer is excellent. From this viewpoint, the modification amount is more preferably 0 to 20.0 mol%, even more preferably 0 to 15.0 mol%, even more preferably 0 to 10.0 mol%, even more preferably 0 to 8.0 mol%, or may be 0 to 6.0 mol%, or may be 0.1 to 8.0 mol%, even more preferably 0.1 to 6.0 mol%, and even more preferably 1.0 to 6.0 mol%. <<Degree of polymerization>> The degree of polymerization of the vinyl alcohol polymer according to the present invention is not particularly limited, but is preferably 100 to 5,000. When it is 100 or more, the aqueous solution viscosity is excellent. When the degree of polymerization is 5,000 or less, it is easy to produce industrially. It is more preferably 200 to 4,500, even more preferably 300 to 4,000, even more preferably 400 to 2,500, even more preferably 500 to 2,500, even more preferably 600 to 2,500, even more preferably 700 to 2,500, even more preferably 700 to 2,000, even more preferably 800 to 1,800, and even more preferably 900 to 1,800.

[0052] [Method of producing vinyl alcohol polymer] The method for producing the vinyl alcohol polymer according to the present invention is not particularly limited, and the polymer can be produced, for example, by the following production method.

[0053] (1) A vinyl alcohol polymer according to the present invention is obtained by polymerizing a vinyl ester monomer and a monomer having an ionic group or an ester thereof, followed by saponification to produce a vinyl alcohol polymer, and then acetalizing the hydroxyl groups in the vinyl alcohol polymer with an aldehyde. (2) The hydroxyl groups in the vinyl alcohol polymer are acetalized with an aldehyde, and then the vinyl alcohol polymer is acetalized with an aldehyde having an ionic group, thereby imparting an ionic group to the side chain of the vinyl alcohol polymer, thereby obtaining the vinyl alcohol polymer according to the present invention. (3) A vinyl alcohol polymer according to the present invention is obtained by polymerizing a vinyl ester monomer and a monomer having an ionic group, or the vinyl ester monomer and a monomer having a hydrophobic group, followed by saponification. (4) A vinyl ester monomer and a monomer having a hydrophobic group are polymerized, and then saponified to obtain the vinyl alcohol polymer according to the present invention.

[0054] (polymerization) Examples of methods for producing vinyl alcohol polymers (polymerization methods) include known methods such as bulk polymerization, solution polymerization, suspension polymerization, and emulsion polymerization. Among these, from the viewpoint of obtaining a polymer with a narrow molecular weight distribution, bulk polymerization in which polymerization is performed without a solvent or solution polymerization in various organic solvents is preferred. From the viewpoint of not using a solvent or a dispersion medium that may cause side reactions such as chain transfer, bulk polymerization is preferred, and from the viewpoint of adjusting the viscosity of the reaction solution and controlling the polymerization rate, solution polymerization is preferred. Examples of organic solvents used in solution polymerization include esters such as methyl acetate and ethyl acetate, aromatic hydrocarbons such as toluene, lower alcohols such as methanol and ethanol, etc. Among these, from the viewpoint of cost, lower alcohols are preferred, and methanol is more preferred. The amount of organic solvent to be added may be selected in consideration of chain transfer of the solvent according to the polymerization degree of the target vinyl alcohol polymer. For example, the mass ratio of the organic solvent to the vinyl ester monomer (organic solvent / vinyl ester monomer) is preferably in the range of 0.01 to 10. The mass ratio (organic solvent / vinyl ester monomer) is preferably 0.1 or more and preferably 5 or less.

[0055] (Radical polymerization initiator) As the radical polymerization initiator (initiator), a suitable initiator may be selected from conventionally known azo initiators, peroxide initiators, redox initiators, and the like. Examples of the azo initiator include 2,2'-azobisisobutyronitrile, 2,2'-azobis(2,4-dimethylvaleronitrile), and 2,2'-azobis(4-methoxy-2,4-dimethylvaleronitrile) (manufactured by Fujifilm Wako Pure Chemical Industries, Ltd., product name "V-70"). Examples of peroxide initiators include percarbonate compounds such as diisopropyl peroxydicarbonate, di-2-ethylhexyl peroxydicarbonate, and diethoxyethyl peroxydicarbonate; perester compounds such as t-butyl peroxyneodecanate, α-cumyl peroxyneodecanate, and t-butyl peroxyneodecanate; acetylcyclohexylsulfonyl peroxide; diisobutyryl peroxide; 2,4,4-trimethylpentyl-2-peroxyphenoxyacetate; etc. These may be further combined with potassium persulfate, ammonium persulfate, hydrogen peroxide, etc. to form a peroxide initiator. Examples of redox initiators include combinations of the above peroxides with reducing agents such as sodium hydrogen sulfite, sodium hydrogen carbonate, tartaric acid, L-ascorbic acid, and Rongalite. Among these, azo-based initiators are preferred, and 2,2'-azobisisobutyronitrile is more preferred from the viewpoints of polymerization at a relatively low temperature and suppression of side reactions. The amount of the initiator to be added varies depending on the polymerization catalyst and is not generally determined, but is arbitrarily selected depending on the polymerization rate. The amount of the initiator to be added is preferably 0.001 to 1.0 part by mass, more preferably 0.005 to 0.1 part by mass, and even more preferably 0.008 to 0.05 part by mass, relative to 100 parts by mass of the raw material monomer of the vinyl alcohol polymer.

[0056] The polymerization temperature is preferably 0°C to 80°C. When the polymerization temperature is 0°C or higher, the polymerization rate is sufficient and the productivity is improved. On the other hand, when the polymerization temperature is 80°C or lower, a vinyl alcohol polymer having a narrow molecular weight distribution can be obtained. From this viewpoint, the polymerization temperature is preferably 10 to 80°C, more preferably 20 to 80°C, even more preferably 40 to 70°C, and even more preferably 50 to 70°C.

[0057] When the desired polymerization rate is reached, the polymerization reaction is terminated by rapidly cooling the reaction system or by adding a polymerization terminator, or by both simultaneously. When the reaction system is rapidly cooled, cooling water may be passed through the jacket of the reactor, but a method in which a pre-cooled liquid medium is added to the reactor is preferred.

[0058] (Saponification) The saponification is preferably carried out in a state where the vinyl alcohol polymer before saponification is dissolved in alcohol or aqueous alcohol.

[0059] The alcohol used in the saponification reaction includes lower alcohols such as methanol and ethanol, and is preferably methanol. The alcohol used in the saponification reaction may contain other solvents such as acetone, esters such as methyl acetate and ethyl acetate, and toluene, but the content of other solvents contained in the alcohol is preferably 10% by mass or less, more preferably 5% by mass or less. The concentration of the alcohol solution after the addition is preferably 1.0 to 50% by mass, more preferably 5 to 45% by mass, and further preferably 8 to 40% by mass. Examples of the catalyst used in the saponification reaction include alkali metal hydroxides such as sodium hydroxide and potassium hydroxide, alkali catalysts such as sodium methylate, and acid catalysts such as mineral acids. Among these, sodium hydroxide is preferred from the viewpoint of ease of handling.

[0060] The temperature of the saponification reaction is preferably, for example, 20 to 70° C. When the temperature is 20° C. or higher, the saponification reaction can proceed quickly. When a gel-like product precipitates as the saponification reaction proceeds, it is separated at that point, and the product is crushed, washed, and dried to obtain the vinyl alcohol polymer of the present invention.

[0061] (Acetalization) The reaction (acetalization reaction) between vinyl alcohol polymer and aldehyde can be carried out by a known method. For example, the aqueous medium method is to carry out acetalization reaction between an aqueous solution of vinyl alcohol polymer and aldehyde in the presence of an acid catalyst to precipitate particles of acetalized vinyl alcohol polymer; the solvent method is to disperse vinyl alcohol polymer in an organic solvent, carry out acetalization reaction with aldehyde in the presence of an acid catalyst, and mix water, which is a poor solvent for vinyl alcohol polymer, with the obtained reaction mixture to precipitate acetalized vinyl alcohol polymer; the method is to disperse vinyl alcohol polymer in an organic solvent, carry out acetalization reaction with aldehyde in the presence of an acid catalyst to obtain acetalized vinyl alcohol polymer, and the like. The acid catalyst is not particularly limited, and examples thereof include organic acids such as acetic acid and p-toluenesulfonic acid; inorganic acids such as nitric acid, sulfuric acid and hydrochloric acid; gases that exhibit acidity when dissolved in an aqueous solution, such as carbon dioxide; and solid acid catalysts such as cation exchange resins and metal oxides.

[0062] [Aqueous solution of vinyl alcohol polymer] The aqueous solution of the vinyl alcohol polymer according to the present invention contains the above-mentioned vinyl alcohol polymer and water. Since the aqueous solution of the vinyl alcohol polymer according to the present invention contains the above-mentioned vinyl alcohol polymer, it is possible to easily change the viscosity greatly.

[0063] The content of the vinyl alcohol polymer in the aqueous solution of the vinyl alcohol polymer according to the present invention is preferably 0.1 to 10 mass%, more preferably 0.5 to 5.0 mass%, even more preferably 1.0 to 4.0 mass%, and even more preferably 1.3 to 3.0 mass%. The water content in the aqueous solution is preferably 80% by mass or more, and more preferably 90% by mass or more. The aqueous solution may contain a pH adjuster, and the above-mentioned ones are suitable as the pH adjuster. The suitable pH range of the aqueous solution varies depending on the application, but is preferably 1-14, more preferably 3-12, and further preferably 4-10. The aqueous solution may further contain additives such as surfactants, various plasticizers, antifoaming agents, ultraviolet absorbers, fillers, and water-resistant agents, within the scope of the present invention.

[0064] An aqueous solution of a vinyl alcohol polymer according to one embodiment of the present invention has a vinyl alcohol polymer content of 1 to 3 mass%, a pH of 7 or more at 20°C, and an aqueous solution viscosity of 20 to 1,000,000 cp at a shear rate of 1 [1 / s] at 20°C. In addition, an aqueous solution of a vinyl alcohol polymer according to another embodiment of the present invention has a vinyl alcohol polymer content of 1 to 3 mass%, a pH of less than 7 at 20°C, and an aqueous solution viscosity of 20 to 100,000 cp at a shear rate of 1 [1 / s] at 20°C.

[0065] [Paints, cement admixtures] The coating material according to the present invention contains the above-mentioned vinyl alcohol polymer and water. The cement admixture according to the present invention contains the above-mentioned vinyl alcohol polymer and water.

[0066] The paint according to the present invention may further contain other components as necessary in addition to the vinyl alcohol polymer and water. The other components are not particularly limited, and may include, for example, water-based emulsion resin, pigment, curing catalyst, crosslinking agent, filler, defoaming agent, matting agent, crosslinking reaction catalyst, skinning prevention agent, dispersant, wetting agent, surfactant, light stabilizer, antifungal agent, algae inhibitor, yellowing prevention agent, reducing agent, ultraviolet absorber, freeze stabilizer, antioxidant, film-forming assistant, organic solvent, rust inhibitor, plasticizer, antistatic agent, lubricant, deodorant, preservative, charge regulator, etc. These may be used alone or in combination of two or more.

[0067] The content of the vinyl alcohol polymer can be set arbitrarily according to the physical properties required for the coating material. It is not particularly limited, but is preferably 0.001 to 10 mass%. The content of the pigment is not particularly limited, but the mass ratio of the pigment to the resin solid content of the coating material (PWC) is preferably 1 to 70 mass%.

[0068] The coating material according to the present invention can be applied by a suitable method depending on the application, the material to be applied, etc. Examples of the application method include, but are not limited to, flow coating, spraying, brush coating, flexographic printing, dip coating, spin coating, roll coating, casting, screen printing, and gravure printing. After application to a predetermined coating object, the coating film is obtained by drying to remove volatiles. At this time, ultraviolet irradiation treatment or heating treatment at a temperature of about 40 to 120 ° C. may be performed as necessary.

[0069] The above-mentioned coating target is not particularly limited as long as a coating film can be formed on the surface, and may be either an inorganic or organic substrate. The substrate material is not limited to the following, and examples thereof include organic substrates such as natural resins and synthetic resins; and inorganic substrates such as ceramics, metals, glass, stone, concrete, and cement. These may be used alone or in combination of two or more. EXAMPLES

[0070] The present invention will be described in more detail below with reference to examples, but the present invention is not limited to these examples. In the examples and comparative examples, "%" and "parts" respectively represent "% by mass" and "parts by mass" unless otherwise specified.

[0071] [Synthesis Example 1] (Polymerization process) A reactor equipped with a reflux condenser, a stirrer, a thermometer, a nitrogen inlet tube, a post-addition liquid feed section, and a pump was charged with 640 parts by mass of vinyl acetate, 254 parts by mass of methanol, and 1.05 parts by mass of methyl acrylate to prepare a mixed solution. The mixed solution was stirred while the system was replaced with nitrogen. Separately, a methanol solution of methyl acrylate (concentration 20% by mass) was prepared as a sequential addition solution of comonomer, and nitrogen bubbling was performed for 30 minutes. The temperature of the reactor was started to be raised, and when it reached 60°C, 0.06 parts by mass of 2,2'-azobis(isobutyronitrile) (AIBN) was added to start polymerization. During the progress of the polymerization reaction, the prepared methanol solution of methyl acrylate was dropped into the system to keep the monomer composition (molar ratio of vinyl acetate and methyl acrylate) in the polymerization solution constant. The polymerization was terminated when the polymerization rate of vinyl acetate reached 30 mol%.

[0072] (Saponification process) Next, the unreacted vinyl acetate monomer was removed under reduced pressure to prepare a methanol solution of polyvinyl acetate (PVAc). Methanol was added to the obtained PVAc solution to adjust the concentration to 10% by mass. Next, while keeping the temperature at 60°C, a methanol solution of sodium hydroxide with a concentration of 10% by mass was added in a ratio of 10 mmol of sodium hydroxide per 1 mole of vinyl acetate monomer unit in the copolymer, and a saponification reaction was carried out for 2 hours.

[0073] (Post-processing) Then, the mixture was cooled to room temperature (20°C), and 900 parts by mass of methanol and 100 parts by mass of water were added to the white solid product obtained by filtration. An aqueous sodium hydroxide solution was added in a ratio of 3 moles per mole of methyl acrylate unit in the copolymer, and the temperature was kept at 60°C and stirred for 2 hours. 1000 parts by mass of methanol was added to the white solid obtained by filtration and left to stand at room temperature for 1 hour for washing. 1000 parts by mass of methanol and 15 parts by mass of acetic acid were added to the white solid obtained by filtration and left to stand at room temperature for 3 hours for washing. 1000 parts by mass of methanol was added to the white solid product obtained by filtration and left to stand at room temperature for 3 hours for washing. After repeating the above washing operation twice, the product obtained by centrifugal deliquor was dried in a dryer at 40°C and 1.3 Pa for 20 hours to obtain "PVOH-A" as the vinyl alcohol polymer (a).

[0074] [Synthesis Example 2] (Polymerization process) A reactor equipped with a reflux condenser, a stirrer, a thermometer, a nitrogen inlet tube, a post-addition liquid feed section, and a pump was charged with 640 parts by mass of vinyl acetate, 243 parts by mass of methanol, and 0.34 parts by mass of itaconic acid to obtain a mixed solution. The mixed polymerization solution was stirred and substituted with nitrogen in the system, then heated. When the temperature reached 60°C, 0.1 parts by mass of 2,2'-azobis(isobutyronitrile) (AIBN) was added to start polymerization. From the start of polymerization, the concentration of the vinyl alcohol polymer in the polymerization system was analyzed, while a 5% by mass solution of itaconic acid was dropped to proceed with polymerization. After 215 minutes from the start of polymerization, 68 parts by mass of a 5% by mass solution of itaconic acid in methanol was almost uniformly dropped, and the polymerization was stopped by cooling to room temperature (20°C).

[0075] (Saponification process) Next, unreacted vinyl acetate monomer was removed under reduced pressure to prepare a methanol solution of polyvinyl acetate (PVAc). Methanol was added to the obtained PVAc solution to adjust the concentration to 35% by mass, and 15.7 parts by mass of an alkaline solution (12% by mass of NaOH in methanol) and 31.9 parts by mass of methanol were added to 286 parts by mass of the methanol solution of PVAc, and saponification was carried out at 40°C. That is, after the addition of the alkaline solution, the gel was crushed in a crusher and left at 40°C for 1 hour to carry out a saponification reaction.

[0076] (Post-processing) After that, it was cooled to room temperature (20°C), and 200 parts by mass of methyl acetate was added to neutralize the remaining alkali. After confirming the completion of neutralization using a phenolphthalein indicator, 1000 parts by mass of methanol was added to the white solid product obtained by filtration, and the product was left to stand at room temperature for 3 hours for washing. After repeating the above washing operation three times, the product obtained by centrifugal deliquor was dried in a dryer at 40°C and 1.3 Pa for 20 hours to obtain "PVOH-B" as a vinyl alcohol polymer (a).

[0077] [Synthesis Example 3] In a three-neck flask equipped with a reflux condenser and a thermometer, 30.0 parts by mass of methanol and 0.5 parts by mass of dodecanal were added at room temperature (20°C), and 10 parts by mass of PVOH-A obtained in Synthesis Example 1 was added over 1 minute while stirring with a mechanical stirrer. 0.4 parts by mass of p-toluenesulfonic acid was added to the reaction solution, and the temperature was raised to 65°C and the reaction was carried out for 5 hours. 0.3 parts by mass of an 8 mol / L aqueous sodium hydroxide solution was added, and the reaction was carried out at 65°C for 2 hours. 100 parts by mass of methanol was added to the white solid product obtained by filtration and washed with stirring. After repeating the above washing operation three times, the product obtained by filtration was dried in a dryer at 40°C and 1.3 Pa for 20 hours to obtain "PVOH-C" which becomes a vinyl alcohol polymer (a).

[0078] [Synthesis Example 4] In a three-neck flask equipped with a reflux condenser and a thermometer, 40.0 parts by mass of methanol and 2.9 parts by mass of sodium benzaldehyde sulfonate were added at room temperature (20°C), and 10 parts by mass of a commercially available vinyl alcohol polymer (Kuraray Co., Ltd., brand 28-98) was added over 1 minute while stirring with a mechanical stirrer. 1.4 parts by mass of p-toluenesulfonic acid was added to the reaction solution, and the temperature was raised to 65°C and the reaction was carried out for 5 hours. 0.9 parts by mass of an 8 mol / L aqueous sodium hydroxide solution was added, and the reaction was carried out at 65°C for 2 hours. 100 parts by mass of methanol was added to the white solid product obtained by filtration and stirred for washing. After repeating the above washing operation three times, the product obtained by filtration was dried in a dryer at 40°C and 1.3 Pa for 20 hours to obtain "PVOH-D" which becomes the vinyl alcohol polymer (a).

[0079] <Evaluation> The following measurements were carried out on the vinyl alcohol polymers PVOH-A and PVOH-B obtained in Synthesis Examples 1 and 2. The results are shown in Table 1.

[0080] <Amount of modification> The modification amount of the comonomer of the vinyl alcohol polymer obtained in Synthesis Examples 1 and 2 is, for example, 1 For example, the vinyl ester polymer, which is a precursor of the vinyl alcohol polymer, can be obtained by H-NMR. 1 The amount of modification can be determined by measuring with H-NMR. In Synthesis Example 1, a vinyl ester polymer (0.05 g), which is a precursor of PVOH-A, was dissolved in chloroform-d (0.95 g) and subjected to 500 MHz NMR. 1 H-NMR measurement was performed. The amount of modification was calculated from the integral values ​​of the peak (4.7-5.1 ppm) derived from the main chain methine proton of the vinyl ester monomer unit and the peak (3.6-3.7 ppm) derived from the side chain methyl group of methyl acrylate. In Synthesis Example 2, a vinyl ester polymer (0.05 g), which is a precursor of PVOH-B, was dissolved in dimethyl sulfoxide-d6 (0.95 g) and subjected to a 500 MHz NMR spectrometer. 1H-NMR measurement was performed. The amount of modification was calculated from the integral values ​​of the peak (4.5-5.0 ppm) derived from the main chain methine proton of the vinyl ester monomer unit and the peak (3.0-3.2 ppm) derived from the side chain methylene group of itaconic acid. Here, the above-mentioned amount of modification corresponds to the content of the structural unit consisting of the comonomer with respect to the total structural units constituting the vinyl alcohol polymer (a). In addition, NMR analysis may be combined with measurements under various temperature conditions and nuclides, or measurements using additives, in order to clarify the structure of the target product.

[0081] <Vinyl ester monomer unit content> The vinyl ester monomer unit content of the vinyl alcohol polymers obtained in Synthesis Examples 1 and 2 is, for example, 1 The vinyl alcohol polymer (0.05 g) obtained in Synthesis Examples 1 and 2 was dissolved in dimethyl sulfoxide-d6 (0.95 g) and subjected to 1H-NMR spectroscopy at 500 MHz. 1 H-NMR measurement was performed. 1 The content of vinyl ester monomer units in the total structural units constituting the vinyl alcohol polymer (a) was determined from the peak (1.9-2.0 ppm) derived from the methyl proton of the side chain of the vinyl ester monomer unit in the H-NMR spectrum. Note that the NMR analysis may be combined with measurements under various temperature conditions and nuclides, or measurements using additives, in order to clarify the structure of the target product.

[0082] <Degree of polymerization> The viscosity average degree of polymerization is measured in accordance with JIS K 6726-1994. The obtained vinyl alcohol polymer is resaponified and purified, and then the intrinsic viscosity [η] (unit: deciliter / g) is measured in water at 30° C. to determine the viscosity average degree of polymerization.

[0083] [Table 1]

[0084] Example 1 In a three-neck flask equipped with a reflux condenser and a thermometer, 56.7 parts by mass of methanol and 0.6 parts by mass of dodecanal were added at room temperature (20°C), and 10 parts by mass of PVOH-A obtained in Synthesis Example 1 was added over 1 minute while stirring with a mechanical stirrer. 1.3 parts by mass of p-toluenesulfonic acid was added to the reaction solution, and the temperature was raised to 65°C and the reaction was carried out for 5 hours. 1.7 parts by mass of an 8 mol / L aqueous sodium hydroxide solution was added, and the reaction was carried out at 65°C for 2 hours. 100 parts by mass of methanol was added to the white solid product obtained by filtration and washed with stirring. After repeating the above washing operation three times, the product obtained by filtration was dried in a dryer at 40°C and 1.3 Pa for 20 hours to obtain "PVOH-1", which is to become a vinyl alcohol polymer (X). The conditions are shown in Table 2.

[0085] Example 2 A vinyl alcohol polymer (X), "PVOH-2", was obtained in the same manner as in Example 1, except that the amounts of methanol, dodecanal, p-toluenesulfonic acid, and 8 mol / L aqueous sodium hydroxide solution were changed. The respective conditions are shown in Table 2.

[0086] Example 3 A vinyl alcohol polymer (X), "PVOH-3", was obtained in the same manner as in Example 1, except that the amount of methanol added, 0.8 parts by mass of decanal were added instead of dodecanal, and the amount of 8 mol / L aqueous sodium hydroxide solution added was changed. The respective conditions are shown in Table 2.

[0087] Example 4 Except for changing the amount of decanal added, the same method as in Example 3 was used to obtain "PVOH-4" which would become the vinyl alcohol polymer (X). The respective conditions are shown in Table 2.

[0088] Example 5 A vinyl alcohol polymer (X), "PVOH-5", was obtained in the same manner as in Example 2, except that 1.6 parts by mass of hexanal was added instead of dodecanal, and the amount of methanol added was changed to 1.6 parts by mass of hexanal. The conditions are shown in Table 2.

[0089] Example 6 The vinyl alcohol polymer (X), "PVOH-6", was obtained in the same manner as in Example 1, except that the amount of dodecanal added, the amount of PVOH-B obtained in Synthesis Example 2 was added instead of PVOH-A, the amount of p-toluenesulfonic acid added, and the amount of 8 mol / L aqueous sodium hydroxide solution added were changed. The respective conditions are shown in Table 2.

[0090] Example 7 The vinyl alcohol polymer (X), "PVOH-7", was obtained in the same manner as in Example 1, except that the amount of methanol added, 0.9 parts by mass of sodium benzaldehyde sulfonate was added instead of dodecanal, PVOH-C obtained in Synthesis Example 3 was added instead of PVOH-A, and the amount of p-toluenesulfonic acid and the amount of 8 mol / L aqueous sodium hydroxide solution were changed. The respective conditions are shown in Table 2.

[0091] Example 8 Except for changing the amount of hexanal added, the vinyl alcohol polymer (X), "PVOH-8", was obtained in the same manner as in Example 5. The respective conditions are shown in Table 2.

[0092] Comparative Example 1 578.0 parts by mass of water was added to a three-neck flask equipped with a reflux condenser and a thermometer at room temperature (20°C), and 10 parts by mass of a commercially available vinyl alcohol polymer (Kuraray Co., Ltd., brand 28-98) was added over 1 minute while stirring with a mechanical stirrer. The temperature was raised to 90°C and the mixture was stirred for 1 hour to dissolve. After cooling the solution to 40°C, 0.6 parts by mass of decanal and 1.2 parts by mass of hydrochloric acid with a concentration of 20% were added and reacted at 40°C for 3 hours. 0.3 parts by mass of an 8 mol / L aqueous sodium hydroxide solution was added and reacted at 65°C for 2 hours to obtain an aqueous solution of "PVOH-9" which becomes the vinyl alcohol polymer (X).

[0093] Comparative Example 2 The "PVOH-A" obtained in Synthesis Example 1 was designated as "PVOH-10" which would become a vinyl alcohol polymer (X).

[0094] Comparative Example 3 A vinyl alcohol polymer (X), "PVOH-11", was obtained in the same manner as in Example 1, except that the amount of dodecanal and the amount of 8 mol / L aqueous sodium hydroxide solution were changed. The conditions are shown in Table 2.

[0095] Comparative Example 4 A vinyl alcohol polymer (X), "PVOH-12", was obtained in the same manner as in Example 1, except that the amount of dodecanal added, the amount of PVOH-D obtained in Synthesis Example 4 was added instead of PVOH-A, the amount of p-toluenesulfonic acid added, and the amount of 8 mol / L aqueous sodium hydroxide solution added were changed. The respective conditions are shown in Table 2.

[0096] [Table 2]

[0097] <Evaluation> The vinyl alcohol polymers (X) obtained in the examples and comparative examples were evaluated as follows. The results are shown in Tables 3 and 4.

[0098] <Content of each structural unit> The vinyl alcohol polymer (0.05 g) obtained in the examples and comparative examples was dissolved in dimethylsulfoxide-d6 (0.95 g) and subjected to a 500 MHz 1 H-NMR measurement was performed. 1From the H-NMR spectrum, the contents of the structural unit (A) having a lactone ring, the structural unit (B) having an ionic group, the structural unit (C) having a hydrophobic group, the vinyl alcohol monomer unit, and the vinyl ester monomer unit were calculated. In the present invention, the "structural unit" means a repeating unit having a functional group, and the structural unit having a lactone ring, the ionic group introduced by acetalization, and the hydrophobic group were also defined as "one unit". In addition, when a dicarboxylic acid monomer is used, one carboxy group forms a lactone ring and the other forms an ionic group, the structural unit (A) having a lactone ring and the structural unit (B) having an ionic group are calculated in duplicate. In addition, in the lactone ring, for example, one unit of a monomer unit having a carboxy group reacts with one unit of a vinyl alcohol monomer unit adjacent thereto to generate one lactone ring unit. In addition, an acetalized structure is also generated by reacting one unit of an acetal unit with two units of a vinyl alcohol monomer unit to generate one acetalized structure unit. Taking this into consideration, the lactone ring and acetalized structure in the vinyl alcohol polymer unit in the denominator were calculated as "2 units."

[0099] <Degree of polymerization> The measured value of the vinyl alcohol polymer (a) was used.

[0100] <How to prepare the aqueous solution> Ion-exchanged water was added to the vinyl alcohol polymer (X) or an aqueous solution of the vinyl alcohol polymer (X), and an 8 mol / L aqueous sodium hydroxide solution was added in an amount of 2 / 3 mol of the structural unit (A) having a lactone ring contained in the vinyl alcohol polymer, and the solution was dissolved by stirring at 95°C to prepare an aqueous solution having a vinyl alcohol polymer (X) content of 1.6% by mass. The 1.6% by mass aqueous vinyl alcohol polymer solution was allowed to cool to 20°C, and while stirring the aqueous solution using a magnetic stirrer, ion-exchanged water and a 20% by mass aqueous citric acid solution or a 2 mol / L aqueous sodium hydroxide solution were added to prepare a 1.5% by mass aqueous solution having a pH of 4 or 10 at 20°C. The solution was further stirred at 20°C for 5 minutes. The pH was measured using a commercially available pH meter (LAQUA twin compact pH meter manufactured by Horiba, Ltd.). When an 8 mol / L aqueous solution of sodium hydroxide was added in an amount of 2 / 3 mol relative to the lactone ring-containing structural unit (A) and stirred at 95°C, if the solution did not dissolve uniformly, it was deemed to be insoluble, and no pH adjustment was performed. The content of the vinyl alcohol polymer (X) was calculated by the following formula. Content [mass%] = Amount of vinyl alcohol polymer (X) added [g] / Total weight of aqueous solution [g] × 100

[0101] <Viscosity X, Y> After adjusting the pH to 4 according to the above-mentioned method, the viscosity X of the 1.5% by mass aqueous solution (for viscosity X) after 5 minutes was measured using a rotational rheometer (TA Instruments-Waters LLC, Discovery HR-2 rheometer) under the following measurement conditions: shear rate: 1.0 [1 / s], measurement time: 182 seconds. In addition, after adjusting the pH to 10 according to the method described above, the viscosity Y of a 1.5% by mass aqueous solution (for viscosity Y) after 5 minutes was measured using a rotational rheometer (Discovery HR-2 rheometer manufactured by TA Instruments-Waters LLC) under the following measurement conditions: shear rate: 1.0 [1 / s], measurement time: 182 seconds. <Measurement conditions> Fixture used: Stainless steel Peltier cone geometry with solvent trap (HRx0, stainless steel, 40mm, 1° cone) Measurement temperature: 20℃ Measurement time: 300 seconds Shear rate: 1.0 [1 / s] The viscosity Y was scored according to the following criteria. Note that the higher the viscosity Y, the higher the viscosity even at a low concentration, and therefore the better the thickening property. 5 points: 10,000 cp or more 4 points: 5,000cp or more but less than 10,000cp 3 points: 1,000cp or more and less than 5,000cp 2 points: 400cp or more and less than 1,000cp 1 point: Less than 400cp

[0102] <Viscosity ratio Y / X> The viscosity ratio Y / X of the viscosities X and Y measured by the above method was scored according to the following criteria. Note that the larger the viscosity ratio Y / X, the easier it is to change the viscosity, and the better the viscosity changeability. 5 points: 50.0 or above 4 points: 10.0 or more and less than 50.0 3 points: 5.0 or more and less than 10.0 2 points: 1.5 or more and less than 5.0 1 point: Less than 1.5

[0103] <Viscosity Z> The viscosity of the aqueous solution prepared to pH 10 according to the above method was measured using a rotational rheometer (TA Instruments-Waters LLC rheometer Discovery HR-2) under the following measurement conditions. The shear rate was kept at 0.01 [1 / s] for 30 seconds, and then intermittently at 0.1 [1 / s] for 30 seconds. This operation was carried out in the following six shear rates, starting from the lowest (6 steps x 30 seconds = 180 seconds), and the viscosity was measured at each shear rate. Table 4 shows the viscosity Z at the point 28 seconds after the shear rate was switched to 100 [1 / s]. <Measurement conditions> Fixture used: Stainless steel Peltier cone geometry with solvent trap (HRx0, stainless steel, 40mm, 1° cone) Measurement temperature: 20℃ Measurement time: 180 seconds Shear rate: 0.01, 0.1, 1, 10, 100, 1000 [1 / s]

[0104] <Viscosity ratio Y / Z> The viscosity ratio Y / Z of the viscosities Y and Z measured by the above method was scored according to the following criteria. Note that the larger the viscosity ratio Y / Z, the more the viscosity can be lowered by the shear rate during liquid delivery, and the better the liquid delivery properties. 5 points: 10.0 or above 4 points: 5.0 or more and less than 10.0 3 points: 2.0 or more and less than 5.0 2 points: 1.5 or more and less than 2.0 1 point: Less than 1.5

[0105] <Overall evaluation of thickeners> The sum of the scores of the above three evaluation items (viscosity Y, viscosity ratios Y / X and Y / Z) was used as the overall evaluation of the performance of the vinyl alcohol polymer. The results are shown in Table 4. <Viscosity changeability> While stirring the aqueous solution in which the viscosity X was measured at 20°C, a 2 mol / L aqueous sodium hydroxide solution was added to adjust the pH to 10, and the solution was stirred at 20°C for 5 minutes. The viscosity W at 1.0 [1 / s] was then measured under the same measurement conditions as for the viscosity X. The viscosity at this time was rated A if it was 4.0 times or more the viscosity of viscosity X, B if it was 2.5 times or more but less than 4.0 times the viscosity of viscosity X, C if it was 1.5 times or more but less than 2.5 times the viscosity of viscosity X, and D if it was less than 1.5 times the viscosity of viscosity X. The results are shown in Table 4.

[0106] [Table 3]

[0107] [Table 4]

Claims

1. A vinyl alcohol polymer, the content of the vinyl alcohol polymer is 1.5% by mass, and the pH at 20° C. is 4, the aqueous solution viscosity X [cp] of the aqueous solution at a shear rate of 1 [1 / s] at 20° C.; The vinyl alcohol-based polymer has a content of 1.5% by mass and a pH of 10 at 20° C. in an aqueous solution state, and the aqueous solution viscosity Y [cp] of the aqueous solution at a shear rate of 1 [1 / s] at 20° C. satisfies the following formula (1): 1.5<Y / X<1,500 (1)

2. The vinyl alcohol polymer according to claim 1 , wherein the aqueous solution viscosity Y is 20 cp or more.

3. 2. The vinyl alcohol-based polymer according to claim 1, wherein the aqueous solution viscosity Y [cp] and the aqueous solution viscosity Z [cp] of the aqueous solution at a shear rate of 100 [1 / s] at 20° C. in an aqueous solution state having a vinyl alcohol-based polymer content of 1.5% by mass and a pH of 10 at 20° C. satisfy the following formula (2): 1.5<Y / Z<100 (2)

4. The vinyl alcohol polymer according to claim 1 , which comprises a structural unit (A) having a lactone ring.

5. The vinyl alcohol polymer according to claim 1 , which comprises a structural unit (B) having an ionic group.

6. 2. The vinyl alcohol polymer according to claim 1, which comprises a structural unit (C) having a hydrophobic group made of a hydrocarbon having 3 or more carbon atoms.

7. The copolymer comprises a structural unit (A) having a lactone ring, a structural unit (B) having an ionic group, and a structural unit (C) having a hydrophobic group composed of a hydrocarbon having 3 or more carbon atoms, 2. The vinyl alcohol-based polymer according to claim 1, which satisfies the following formula (3), where a content of the structural unit (A) is (a), a content of the structural unit (B) is (b), a content of the structural unit (C) is (c), the number of carbon atoms of the hydrophobic group in the structural unit (C) is (d), and the number of ionic groups in the structural unit (B) is (e) relative to all structural units of the vinyl alcohol-based polymer: 5<(c×(d-3) 2 ) / (a+b×e)<95 (3)

8. A vinyl alcohol polymer-containing aqueous solution comprising the vinyl alcohol polymer according to any one of claims 1 to 7 and water.

9. The content of the vinyl alcohol polymer is 1 to 3% by mass, the pH at 20°C is 7 or more, and the aqueous solution viscosity at a shear rate of 1 [1 / s] at 20°C is 20 to 1,000,000 cp. The aqueous solution containing the vinyl alcohol polymer according to claim 8.

10. The content of the vinyl alcohol polymer is 1 to 3% by mass, the pH at 20°C is less than 7, and the aqueous solution viscosity at a shear rate of 1 [1 / s] at 20°C is 20 to 100,000 cp. The aqueous solution containing the vinyl alcohol polymer according to claim 8.

11. A paint comprising the vinyl alcohol polymer according to any one of claims 1 to 7.

12. A cement admixture comprising the vinyl alcohol polymer according to any one of claims 1 to 7.

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