Water-absorbent resin particles and absorbent material

Water-absorbent resin particles with a high contact angle and coating layer address the challenge of balancing liquid diffusibility and return amount, improving absorption efficiency by controlling backflow.

JP7731803B2Active Publication Date: 2025-09-01SUMITOMO SEIKA CHEM CO LTD
View PDF 13 Cites 0 Cited by

Patent Information

Application Number
JP2021564009
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-07-17
Filing Date
2020-12-09
Publication Date
2025-09-01
Estimated Expiration
2040-12-09

AI Technical Summary

Technical Problem

Water-absorbent resin particles in absorbents face challenges in achieving both excellent liquid diffusibility and a practically sufficient return amount, with existing absorbents tending to increase the amount of absorbed liquid that flows back.

Method used

The development of water-absorbent resin particles with a contact angle of 100 degrees or more with 0.9% by mass saline at 25±2°C, utilizing a coating layer to enhance liquid diffusibility and control backflow, achieved through polymerization methods and surface crosslinking.

Benefits of technology

The solution provides water-absorbent resin particles that effectively balance liquid diffusibility and return amount, suppressing backflow and enhancing absorption efficiency.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007731803000003
    Figure 0007731803000003
  • Figure 0007731803000004
    Figure 0007731803000004
  • Figure 0007731803000001
    Figure 0007731803000001
Patent Text Reader

Abstract

The present disclosure relates to absorbent resin particles each having a contact angle of more than 100 degrees with respect to 0.9% by mass of a saline solution at 25±2 °C; and an absorbent including said absorbent resin particles.
Need to check novelty before this filing date? Find Prior Art

Description

[Technical Field]

[0001] The present invention relates to water-absorbent resin particles and an absorbent body. [Background technology]

[0002] Water-absorbent resin particles are widely used in various fields, such as sanitary materials such as disposable diapers, sanitary products, and portable toilets, agricultural and horticultural materials such as water retention agents and soil conditioners, and industrial materials such as waterproofing agents and anti-condensation agents. Absorbent articles for absorbing liquids whose main component is water (e.g., urine) use absorbents containing water-absorbent resin particles (see, for example, Patent Documents 1 and 2). [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2006-199805 [Patent Document 2] Japanese Patent Application Laid-Open No. 2016-28117 Summary of the Invention [Problem to be solved by the invention]

[0004] The water-absorbent resin particles in an absorbent are required to have not only a high water absorption capacity but also excellent liquid diffusibility. The present inventors have found that an absorbent containing highly liquid-permeable water-absorbent resin particles has excellent liquid diffusibility, but tends to increase the amount of absorbed liquid that flows back.

[0005] An object of the present invention is to provide water-absorbent resin particles which, when used in an absorbent material, can achieve both excellent liquid diffusibility and a practically sufficient return amount. [Means for solving the problem]

[0006] One aspect of the present invention relates to water-absorbent resin particles having a contact angle of 100 degrees or more with 0.9% by mass saline at 25±2°C.

[0007] Another aspect of the present invention relates to an absorbent body containing the above-mentioned water-absorbent resin particles. [Effects of the Invention]

[0008] According to the present invention, it is possible to provide water-absorbent resin particles that, when used in an absorbent material, can achieve both excellent liquid diffusibility and a practically sufficient return amount. [Brief explanation of the drawings]

[0009] [Figure 1] FIG. 1 is a cross-sectional view showing an example of an absorbent article. [Figure 2] FIG. 1 is an image diagram showing a method for measuring the diffusion distance of a test liquid. DETAILED DESCRIPTION OF THE INVENTION

[0010] Hereinafter, several embodiments of the present invention will be described in detail, but the present invention is not limited to the following embodiments.

[0011] In this specification, "acrylic" and "methacrylic" are collectively referred to as "(meth)acrylic." "Acrylate" and "methacrylate" are similarly referred to as "(meth)acrylate." "(Poly)" refers to both cases with and without the prefix "poly." In the numerical ranges described in stages in this specification, the upper or lower limit of a certain numerical range can be arbitrarily combined with the upper or lower limit of another numerical range. In the numerical ranges described in this specification, the upper or lower limit of that numerical range may be replaced with a value shown in the Examples. The materials exemplified in this specification may be used alone or in combination of two or more. When multiple substances corresponding to each component are present in the composition, the content of each component in the composition refers to the total amount of those multiple substances present in the composition, unless otherwise specified. "Physiological saline" refers to a 0.9% by mass aqueous solution of sodium chloride. "Room temperature" refers to 25±2°C. The term "layer" encompasses a structure having a shape formed on a part of a surface as well as a structure having a shape formed on the entire surface when observed in a plan view.

[0012] [Water-absorbing resin particles] The water-absorbent resin particles according to this embodiment have a contact angle of 100 degrees or more with 0.9 mass % saline solution at 25±2°C (physiological saline solution at room temperature). By using water-absorbent resin particles with a high contact angle in an absorbent body, the water-absorbent resin particles repel water in the initial stage when they come into contact with a liquid, making it difficult for them to start absorbing water, but the liquid becomes more likely to diffuse. Then, since water absorption starts in a state where the liquid has been sufficiently diffused, it is presumed that an increase in the amount of backflow can be suppressed.

[0013] From the viewpoint of achieving both excellent liquid diffusibility and a practically sufficient return amount, the contact angle of the water-absorbent resin particles according to this embodiment is 100 degrees or more. Furthermore, the contact angle of the water-absorbent resin particles may be 102 degrees or more, 104 degrees or more, or 108 degrees or more, and may be 130 degrees or less, 128 degrees or less, 125 degrees or less, or 120 degrees or less. Furthermore, from the viewpoint of achieving both excellent liquid diffusibility and an excellent return amount, the contact angle of the water-absorbent resin particles may be 118 degrees or less, 115 degrees or less, or 114 degrees or less. In this case, the lower limit of the contact angle may be any of the values ​​listed above.

[0014] The contact angle is a value measured in accordance with JIS R 3257 (1999) "Test method for wettability of substrate glass surfaces." The contact angle in this embodiment can be measured by the following tests i) and ii) in this order. i) At 25±2° C., droplets equivalent to 0.01 g of physiological saline are dropped onto the surfaces of water-absorbent resin particles to bring the water-absorbent resin particles into contact with the droplets. ii) The contact angle of the droplet is measured 0.1 seconds after the droplet comes into contact with the surface of the water-absorbent resin particle.

[0015] When the water-absorbent resin particles according to this embodiment have a water-absorption rate of 55 seconds or more as measured by the Vortex method, the effects of the present invention are more easily exhibited. The water-absorption rate of the water-absorbent resin particles may be 56 seconds or more, 58 seconds or more, 60 seconds or more, or 61 seconds or more, and may be 180 seconds or less, 150 seconds or less, 120 seconds or less, 100 seconds or less, 95 seconds or less, or 92 seconds or less. The water-absorption rate by the Vortex method is measured in accordance with Japanese Industrial Standards JIS K 7224 (1996). Specifically, the water-absorbent resin particles are measured in a 100 mL beaker with a flat bottom at a speed of 600 rpm (rpm = min -1 ) 2.0±0.002 g of water-absorbent resin particles are added to 50±0.1 g of physiological saline solution stirred at 50°C, and the water absorption rate can be calculated as the time [seconds] from the time when the vortex disappears and the liquid surface becomes flat after the addition of the water-absorbent resin particles.

[0016] The water-retention capacity of the water-absorbent resin particles for saline may be, for example, 32 g / g or more, 34 g / g or more, or 35 g / g or more, or 60 g / g or less, 55 g / g or less, 50 g / g or less, 45 g / g or less, or 43 g / g or less. Furthermore, from the viewpoint of achieving both excellent liquid diffusibility and an excellent return flow rate, the water-retention capacity of the water-absorbent resin particles for saline may be 37 g / g or more, 39 g / g or more, or 40 g / g or more. In this case, the upper limit of the water-retention capacity may be any of the values ​​listed above. The water-retention capacity of saline is measured by the method described in the Examples below.

[0017] The configuration of the water-absorbent resin particles according to the present embodiment is not particularly limited as long as the contact angle of physiological saline at room temperature is 100 degrees or more. The contact angle can be adjusted, for example, by (1) adjusting the amount and / or HLB of a surfactant that can be used in the polymerization step of reversed-phase suspension polymerization, (2) forming a coating layer that covers at least a part of the surface of the water-absorbent polymer particles, or (3) employing both of the above (1) and (2). Hereinafter, the method (2) will be described.

[0018] The polymer particles are not particularly limited as long as they are made of a resin having water absorption properties. The polymer particles may include, for example, a crosslinked polymer formed by polymerization of a monomer including an ethylenically unsaturated monomer. The crosslinked polymer may have a monomer unit derived from the ethylenically unsaturated monomer. The polymer particles can be produced, for example, by a method including a step of polymerizing a monomer including an ethylenically unsaturated monomer. Examples of the polymerization method include reverse phase suspension polymerization, aqueous solution polymerization, bulk polymerization, and precipitation polymerization.

[0019] The ethylenically unsaturated monomer may be a water-soluble ethylenically unsaturated monomer (e.g., an ethylenically unsaturated monomer having a solubility of 1 g or more in 100 g of water at 98°C). Examples of the ethylenically unsaturated monomer include (meth)acrylic acid and its salts, 2-(meth)acrylamido-2-methylpropanesulfonic acid and its salts, (meth)acrylamide, N,N-dimethyl(meth)acrylamide, 2-hydroxyethyl(meth)acrylate, N-methylol(meth)acrylamide, polyethylene glycol mono(meth)acrylate, N,N-diethylaminoethyl(meth)acrylate, N,N-diethylaminopropyl(meth)acrylate, and diethylaminopropyl(meth)acrylamide. When the ethylenically unsaturated monomer has an amino group, the amino group may be quaternized. The ethylenically unsaturated monomer may be used alone or in combination of two or more.

[0020] From the viewpoint of industrial ease of availability, the ethylenically unsaturated monomer may include at least one compound selected from the group consisting of (meth)acrylic acid and its salts, acrylamide, methacrylamide, and N,N-dimethylacrylamide. The ethylenically unsaturated monomer may include at least one compound selected from the group consisting of (meth)acrylic acid and its salts, and acrylamide.

[0021] When the ethylenically unsaturated monomer has an acidic group, the acidic group may be neutralized before use in the polymerization reaction. The degree of neutralization of the ethylenically unsaturated monomer may be 10 to 100 mol %, 50 to 90 mol %, or 60 to 80 mol % of the acidic group in the ethylenically unsaturated monomer.

[0022] As a monomer for obtaining polymer particles, a monomer other than the above-mentioned ethylenically unsaturated monomer may be used. Such a monomer can be used, for example, by mixing it with an aqueous solution containing the above-mentioned ethylenically unsaturated monomer. The amount of the ethylenically unsaturated monomer used may be 70 to 100 mol% based on the total amount of monomers (the total amount of monomers for obtaining water-absorbent resin particles, for example, the total amount of monomers that provide structural units of a crosslinked polymer; the same applies hereinafter).

[0023] Although crosslinking due to self-crosslinking may occur during polymerization, crosslinking of polymer particles may be promoted by using an internal crosslinking agent. The use of an internal crosslinking agent makes it easier to control the water absorption properties (water retention capacity, etc.) of the water-absorbent resin particles. The internal crosslinking agent is usually added to the reaction solution during the polymerization reaction. Examples of the internal crosslinking agent include polyglycidyl compounds such as (poly)ethylene glycol diglycidyl ether, (poly)propylene glycol diglycidyl ether, (poly)glycerin diglycidyl ether, (poly)glycerin triglycidyl ether, (poly)propylene glycol polyglycidyl ether, and polyglycerol polyglycidyl ether.

[0024] The polymer particles may be particles in which crosslinking (surface crosslinking) has been performed near the surface. The polymer particles may consist solely of crosslinked polymer particles, or may further contain, for example, a gel stabilizer, a metal chelating agent, a flow improver (lubricant), etc. These components may be located inside the crosslinked polymer particles, on the surface of the crosslinked polymer particles, or both.

[0025] The shape of the polymer particles is not particularly limited, and may be, for example, substantially spherical, crushed, granular, or the like, or may be an aggregate of primary particles having any of these shapes.

[0026] The median particle size of the polymer particles may be 130 to 800 μm, 200 to 850 μm, 250 to 700 μm, 300 to 600 μm, or 300 to 450 μm. The polymer particles may have a desired particle size distribution when obtained by the production method described below, but the particle size distribution may be adjusted by performing an operation such as particle size adjustment using classification with a sieve.

[0027] The coating layer preferably contains a water-insoluble component. In this specification, the water-insoluble component may include not only a completely water-insoluble substance but also a substance that is slightly soluble in water (a poorly water-soluble substance). The solubility of the water-insoluble component in 100 g of water at 25° C. is, for example, less than 10 g, preferably less than 5 g, more preferably less than 3 g, and even more preferably less than 1 g.

[0028] As the water-insoluble component, it is preferable to use at least one selected from the group consisting of polyurethane, polyolefin, polyester, polyamide, polystyrene, polycarbonate, polyacrylate, polyacetal, and acid-modified products thereof, because the contact angle of the water-absorbent resin particles can be easily adjusted, it is more preferable to use at least one selected from the group consisting of polyolefin, polyurethane, polyester, and acid-modified products thereof, it is even more preferable to use at least one selected from the group consisting of polyolefin, polyurethane, and acid-modified products thereof, and it is particularly preferable to use acid-modified polyolefin and / or polyurethane.

[0029] When the water-insoluble component is acid-modified, the water-insoluble component may be modified with at least one acid anhydride selected from the group consisting of maleic anhydride, succinic anhydride, and phthalic anhydride. The material to be modified with the acid anhydride is preferably a polyolefin, more preferably at least one selected from the group consisting of polyethylene, polypropylene, and an ethylene-propylene copolymer, and even more preferably an ethylene-propylene copolymer. Furthermore, the acid anhydride used for modification is preferably maleic anhydride.

[0030] Polyurethane is a reaction product of a polyol and a polyisocyanate. Examples of polyols include polyether polyols, polyester polyols, polybutadiene polyols, and hydrogenated polybutadiene polyols. Examples of polyisocyanates include aromatic isocyanates such as diphenylmethane diisocyanate, dimethyldiphenylmethane diisocyanate, tolylene diisocyanate, xylylene diisocyanate, and p-phenylene diisocyanate; alicyclic isocyanates such as dicyclohexylmethane diisocyanate and isophorone diisocyanate; and aliphatic isocyanates such as hexamethylene diisocyanate.

[0031] When forming a coating layer on polymer particles, the polymer particles may be mixed with a coating material to form a coating layer on at least a portion of the surface of the polymer particles. The coating material may be, for example, a component capable of forming the above-mentioned coating layer or a material for forming that component. For example, when the coating layer contains polyurethane, the coating material may contain polyurethane itself or may contain polyol and polyisocyanate, which are materials for forming the polyurethane.

[0032] The method for forming the coating layer is not particularly limited. For example, the coating layer can be formed by dispersing polymer particles and then contacting the dispersed polymer particles with a coating material. Specifically, when the coating material is soluble in a dispersion medium for dispersing the polymer particles, the polymer particles and the coating material can be added to the dispersion medium to form a coating layer on the surface of the polymer particles. Furthermore, when a polyol and a polyisocyanate are used as the coating material, an aqueous solution of the polyol can be mixed with a dispersion of polymer particles to bring the polymer particles into contact with the polyol, and then a liquid containing the polyisocyanate can be added to polymerize the polyol and the polyisocyanate, thereby forming a coating layer containing polyurethane on the surface of the polymer particles.

[0033] The contact angle of the water-absorbent resin particles can be adjusted by appropriately changing the proportion of the coating material used to form the coating layer. This proportion varies depending on the coating material, but may be, for example, 0.01% by mass or more, 0.1% by mass or more, or 0.4% by mass or more, and may be 20% by mass or less, 18% by mass or less, or 16.7% by mass or less. In particular, when the coating layer contains polyurethane, the proportion of the coating material may be 1.5% by mass or less or 1.3% by mass or less. Furthermore, from the viewpoint of achieving both excellent liquid diffusibility and an excellent return flow rate, when the coating layer contains polyurethane, the proportion of the coating material may be 1.0% by mass or less or 0.9% by mass or less. In these cases, the lower limit of the proportion of the coating material may be one of the values ​​listed above. The proportion of the coating material is calculated by the method described in the Examples below.

[0034] The dispersion medium may contain a hydrocarbon solvent, such as: chain aliphatic hydrocarbons such as n-hexane, n-heptane, 2-methylhexane, 3-methylhexane, 2,3-dimethylpentane, 3-ethylpentane, and n-octane; alicyclic hydrocarbons such as cyclohexane, methylcyclohexane, cyclopentane, methylcyclopentane, trans-1,2-dimethylcyclopentane, cis-1,3-dimethylcyclopentane, and trans-1,3-dimethylcyclopentane; and aromatic hydrocarbons such as benzene, toluene, and xylene.

[0035] [Absorbent] The absorbent body according to the present embodiment contains the water-absorbent resin particles according to the present embodiment. The absorbent body may contain fibrous material, for example, a mixture containing water-absorbent resin particles and fibrous material. The absorbent body may have a configuration in which the water-absorbent resin particles and fibrous material are uniformly mixed, a configuration in which the water-absorbent resin particles are sandwiched between fibrous material formed in a sheet or layer shape, or other configurations.

[0036] Examples of fibrous materials include finely ground wood pulp, cotton, cotton linters, rayon, cellulosic fibers such as cellulose acetate, synthetic fibers such as polyamide, polyester, and polyolefin, and mixtures of these fibers.The fibrous materials may be used alone or in combination of two or more.Hydrophilic fibers can be used as the fibrous material.

[0037] To improve the shape retention of the absorbent body before and during use, an adhesive binder may be added to the fibrous material to bond the fibers together. Examples of adhesive binders include heat-fusible synthetic fibers, hot-melt adhesives, and adhesive emulsions. The adhesive binders may be used alone or in combination of two or more.

[0038] Examples of heat-fusible synthetic fibers include full-melt binders such as polyethylene, polypropylene, and ethylene-propylene copolymers; and non-full-melt binders having a side-by-side or core-sheath structure of polypropylene and polyethylene. In the above-mentioned non-full-melt binders, only the polyethylene portion can be heat-fused.

[0039] Examples of hot melt adhesives include mixtures of base polymers such as ethylene-vinyl acetate copolymer, styrene-isoprene-styrene block copolymer, styrene-butadiene-styrene block copolymer, styrene-ethylene-butylene-styrene block copolymer, styrene-ethylene-propylene-styrene block copolymer, and amorphous polypropylene with tackifiers, plasticizers, antioxidants, and the like.

[0040] The adhesive emulsion may be, for example, a polymer of at least one monomer selected from the group consisting of methyl methacrylate, styrene, acrylonitrile, 2-ethylhexyl acrylate, butyl acrylate, butadiene, ethylene, and vinyl acetate.

[0041] The absorbent body according to the present embodiment may contain inorganic powder (for example, amorphous silica), a deodorant, an antibacterial agent, a pigment, a dye, a fragrance, an adhesive, etc. When the water-absorbent resin particles contain inorganic particles, the absorbent body may contain the inorganic powder separately from the inorganic particles in the water-absorbent resin particles.

[0042] The absorbent body according to this embodiment may be, for example, in the form of a sheet, and the thickness of the absorbent body (for example, the thickness of a sheet-shaped absorbent body) may be 0.1 to 20 mm or 0.3 to 15 mm.

[0043] [Absorbent articles] The absorbent article according to this embodiment includes the absorbent body according to this embodiment. Other components of the absorbent article include a core wrap that maintains the shape of the absorbent body and prevents the components of the absorbent body from falling off or flowing; a liquid-permeable sheet that is placed on the outermost side on the side where the liquid to be absorbed penetrates; and a liquid-impermeable sheet that is placed on the outermost side on the side opposite the side where the liquid to be absorbed penetrates. Examples of absorbent articles include diapers (e.g., disposable diapers), toilet training pants, incontinence pads, sanitary materials (sanitary napkins, tampons, etc.), sweat pads, pet sheets, parts for portable toilets, and animal waste disposal materials.

[0044] Fig. 1 is a cross-sectional view showing an example of an absorbent article. The absorbent article 100 shown in Fig. 1 comprises an absorbent body 10, core wrap sheets 20a and 20b, a liquid-permeable sheet 30, and a liquid-impermeable sheet 40. In the absorbent article 100, the liquid-impermeable sheet 40, the core wrap sheet 20b, the absorbent body 10, the core wrap sheet 20a, and the liquid-permeable sheet 30 are layered in this order. In Fig. 1, some parts are shown as having gaps between the members, but the members may be in close contact with each other without any gaps.

[0045] The absorbent body 10 includes water-absorbent resin particles 10a according to this embodiment and a fiber layer 10b containing fibrous material. The water-absorbent resin particles 10a are dispersed in the fiber layer 10b.

[0046] The core wrap sheet 20a is arranged on one side of the absorbent body 10 (the upper side of the absorbent body 10 in FIG. 1) while in contact with the absorbent body 10. The core wrap sheet 20b is arranged on the other side of the absorbent body 10 (the lower side of the absorbent body 10 in FIG. 1) while in contact with the absorbent body 10. The absorbent body 10 is arranged between the core wrap sheets 20a and 20b. Examples of the core wrap sheets 20a and 20b include tissue, nonwoven fabric, woven fabric, synthetic resin films with liquid-permeable holes, and net-like sheets with mesh. The core wrap sheets 20a and 20b have, for example, a main surface of the same size as the absorbent body 10.

[0047] The liquid-permeable sheet 30 is disposed on the outermost side of the absorbent article 100, on the side into which the liquid to be absorbed penetrates. The liquid-permeable sheet 30 is disposed on the core wrap sheet 20a in contact with the core wrap sheet 20a. Examples of the liquid-permeable sheet 30 include nonwoven fabrics and porous sheets made of synthetic resins such as polyethylene, polypropylene, polyester, and polyamide. The liquid-impermeable sheet 40 is disposed on the outermost side of the absorbent article 100, opposite the liquid-permeable sheet 30. The liquid-impermeable sheet 40 is disposed below the core wrap sheet 20b in contact with the core wrap sheet 20b. Examples of the liquid-impermeable sheet 40 include sheets made of synthetic resins such as polyethylene, polypropylene, and polyvinyl chloride, and sheets made of composite materials of these synthetic resins and nonwoven fabrics. The liquid-permeable sheet 30 and the liquid-impermeable sheet 40 have, for example, a main surface that is wider than the main surface of the absorbent body 10, and the outer edges of the liquid-permeable sheet 30 and the liquid-impermeable sheet 40 extend around the absorbent body 10 and the core wrap sheets 20a, 20b.

[0048] The size relationships among the absorbent body 10, core wrap sheets 20a and 20b, liquid-permeable sheet 30, and liquid-impermeable sheet 40 are not particularly limited and are adjusted as appropriate depending on the intended use of the absorbent article, etc. Furthermore, the method for maintaining the shape of the absorbent body 10 using the core wrap sheets 20a and 20b is not particularly limited, and the absorbent body may be wrapped with multiple core wrap sheets as shown in Figure 1, or may be wrapped with a single core wrap sheet.

[0049] According to the present embodiment, a method for absorbing liquid using the water-absorbent resin particles, absorbent body, or absorbent article according to the present embodiment can be provided. The method for absorbing liquid according to the present embodiment includes a step of bringing the water-absorbent resin particles, absorbent body, or absorbent article according to the present embodiment into contact with a liquid to be absorbed. [Example]

[0050] The present invention will be described in more detail below with reference to examples, although the present invention is not limited to these examples.

[0051] <Polymer particles> [Manufacturing Example 1] (First stage polymerization) A round-bottom, cylindrical, separable flask with an inner diameter of 11 cm and an internal volume of 2 L was prepared, equipped with a reflux condenser, a dropping funnel, a nitrogen gas inlet, and a stirrer (a two-stage stirrer with four inclined paddle blades, each 5 cm in diameter). 293 g of n-heptane and 0.736 g of maleic anhydride-modified ethylene-propylene copolymer (Hiwax 1105A, Mitsui Chemicals, Inc.) as a dispersant were added to the flask and mixed. The mixture in the flask was heated to 80°C while stirring to dissolve the dispersant in the n-heptane, and then cooled to 50°C.

[0052] A 300 mL beaker was charged with 92.0 g of an 80.5% by weight aqueous solution of acrylic acid (1.03 mol of acrylic acid) as a water-soluble ethylenically unsaturated monomer. While cooling from the outside, 147.7 g of a 20.9% by weight aqueous solution of sodium hydroxide was added dropwise to the beaker to neutralize the 75 mol% acrylic acid. Next, 0.092 g of hydroxyethyl cellulose (Sumitomo Seika Chemicals Co., Ltd., HECAW-15F) was added as a thickener, 0.0736 g (0.272 mmol) of potassium persulfate as a radical polymerization initiator, and 0.010 g (0.057 mmol) of ethylene glycol diglycidyl ether as an internal crosslinker. The first aqueous solution was prepared by dissolving the solution.

[0053] The first-stage aqueous solution was added to the separable flask and stirred for 10 minutes. Next, a surfactant solution prepared by dissolving 0.736 g of sucrose stearate (Ryoto Sugar Ester S-370, HLB: 3, Mitsubishi Chemical Foods Corporation) in 6.62 g of n-heptane was added to the flask to obtain a reaction solution. The system was thoroughly purged with nitrogen while stirring the reaction solution at a stirrer speed of 550 rpm. The flask was then immersed in a 70°C water bath to heat the reaction solution, and the polymerization reaction was allowed to proceed for 60 minutes to obtain a first-stage polymerization slurry.

[0054] (Second stage polymerization) A 500 mL beaker was charged with 128.8 g of an 80.5% by weight aqueous acrylic acid solution (1.43 mol of acrylic acid). While cooling from the outside, 159.0 g of a 27% by weight aqueous sodium hydroxide solution was added dropwise to neutralize the 75 mol% acrylic acid. To the beaker containing the neutralized acrylic acid solution, 0.103 g (0.381 mmol) of potassium persulfate as a radical polymerization initiator and 0.0116 g (0.067 mmol) of ethylene glycol diglycidyl ether as an internal crosslinking agent were added and dissolved to prepare the second aqueous solution.

[0055] While stirring at a stirrer speed of 1000 rpm, the first-stage polymerization slurry in the flask was cooled to 25°C, and the entire amount of the second-stage aqueous solution was added. After purging the flask with nitrogen for 30 minutes, the flask was again immersed in a 70°C water bath to raise the temperature of the reaction solution, and the second-stage polymerization reaction was carried out for 60 minutes to obtain a hydrogel polymer. The flask was then immersed in an oil bath set at 125°C, and 257.7 g of water was extracted from the system by azeotropic distillation of n-heptane and water. The flask was then raised so that its lower part was slightly in contact with the oil bath, and the internal temperature was adjusted to 83°C. Subsequently, 4.42 g (0.507 mmol) of a 2% by weight aqueous solution of ethylene glycol diglycidyl ether was added to the flask as a surface crosslinking agent, and the internal temperature was maintained at 83°C for 2 hours.

[0056] Thereafter, the flask was again immersed in an oil bath, and n-heptane was removed by drying at 125°C to obtain a dried product (polymer). This dried product was passed through a sieve with 850 µm openings to obtain 220.8 g of polymer particles A. The median particle diameter of polymer particles A was 357 µm.

[0057] [Manufacturing Example 2] In the hydrogel polymer after the second-stage polymerization, 254.4 g of water was removed from the system by azeotropic distillation of n-heptane and water, and the same procedure as in Production Example 1 was repeated to obtain 220.8 g of polymer particles B. The median particle size of polymer particles B was 364 μm.

[0058] [Manufacturing Example 3] A 2-L beaker was charged with 400.0 g of an 80.5% by weight aqueous solution of acrylic acid (4.46 mol of acrylic acid) as a water-soluble ethylenically unsaturated monomer. While cooling from the outside, 480.6 g of a 28.2% by weight aqueous solution of sodium hydroxide was added dropwise to the beaker to neutralize the 75 mol% acrylic acid. Next, 0.66 g (2.23 mmol) of trimethylolpropane triacrylate as an internal crosslinking agent and 133.1 g of ion-exchanged water were added and dissolved to prepare a reaction solution.

[0059] The reaction solution, which had been purged with nitrogen for 30 minutes, was fed into a reactor formed by attaching a lid to a jacketed stainless steel double-arm kneader with two sigma blades and an internal volume of 5 L. The reactor was then purged with nitrogen while maintaining the temperature at 30°C. Subsequently, while stirring the reaction solution at 30 rpm, 1.47 g of 30% by mass ammonium persulfate (ammonium persulfate: 1.93 mmol) and 1.10 g of 2% by mass L-ascorbic acid (L-ascorbic acid: 0.125 mmol) were added as polymerization initiators. Polymerization began approximately 1 minute later. The polymerization reaction was continued at 30°C for 60 minutes, yielding a hydrogel polymer. The hydrogel polymer was fragmented to particles approximately 5 mm in diameter.

[0060] The comminuted hydrogel polymer was spread evenly on a fluororesin-coated tray and dried with hot air at 150°C for 90 minutes to obtain a dried product. The dried product was pulverized using a high-speed pulverizer (ZM-200; manufactured by Retsch). The pulverized powder was passed through a sieve with 850 μm openings to obtain irregularly pulverized polymer particle precursor with an average particle size of 425 μm.

[0061] A surface cross-linking agent solution containing 10 parts by mass of propylene glycol and 0.5 parts by mass of ethylene glycol diglycidyl ether as surface cross-linking agents, 30 parts by mass of water, and 10 parts by mass of isopropyl alcohol was prepared.

[0062] 40 g of polymer resin precursor was placed in a round-bottomed cylindrical separable flask with an inner diameter of 11 cm and an internal volume of 2 L and equipped with a Teflon anchor-shaped blade as a stirrer. 4.04 g of the surface crosslinking agent solution was added dropwise while stirring at 500 rpm, and mixed for 1 minute. The mixture was dried with hot air at 180°C for 40 minutes to obtain polymer particles C. The median particle diameter of polymer particles C was 430 μm.

[0063] (median particle size) The particle size distribution of 5 g of water-absorbent resin particles was measured using a continuous, fully automatic ultrasonic vibration sieving measuring instrument (Robot Sifter RPS-205, manufactured by Seishin Enterprise Co., Ltd.), JIS standard sieves with openings of 850 μm, 710 μm, 600 μm, 500 μm, 400 μm, 300 μm, 250 μm, and 150 μm, and a tray. The particle size distribution was measured by accumulating the particles remaining on the sieves in descending order of particle size, and the relationship between the sieve opening and the accumulated value of the mass percentage of the particles remaining on the sieves was plotted on logarithmic probability paper. The particle size corresponding to an accumulated mass percentage of 50% by mass was determined as the median particle size by connecting the plots on the probability paper with a straight line.

[0064] <Water-absorbing resin particles> [Example 1] A round-bottom, cylindrical, separable flask with an inner diameter of 11 cm and an internal volume of 2 L was prepared. It was equipped with a reflux condenser, a dropping funnel, a nitrogen gas inlet tube, and a stirrer (a stirring blade with two stages of four inclined paddle blades with a blade diameter of 5 cm). 480 g of n-heptane and 40 g of polymer particles A were added to the flask and stirred at 1000 rpm to obtain an n-heptane dispersion of polymer particles A. A mixture (1) of 1.52 g of distilled water and 0.08 g of polyether polyol (AGC Corporation, EXCENOL 750ED) was added to the dispersion and stirred for 30 minutes. A mixture (2) of 0.86 g of acetone and 0.095 g of toluene diisocyanate was then added and stirred for 120 minutes. The flask was then immersed in an oil bath set at 125 °C, and water was withdrawn from the system while refluxing the n-heptane by azeotropic distillation of n-heptane and water.

[0065] Thereafter, n-heptane was removed by drying at 125° C. to obtain a dried product. The dried product was passed through a sieve with an opening of 850 μm to obtain 36 g of water-absorbent resin particles having a coating layer containing polyurethane.

[0066] [Example 2] 36 g of water-absorbent resin particles were obtained in the same manner as in Example 1, except that the mixture (1) was changed to a mixture of 3.04 g of distilled water and 0.16 g of polyether polyol (EXCENOL 750ED), and the mixture (2) was changed to a mixture of 1.72 g of acetone and 0.19 g of toluene diisocyanate.

[0067] [Example 3] 36 g of water-absorbent resin particles were obtained in the same manner as in Example 1, except that the mixture (1) was changed to a mixture of 4.56 g of distilled water and 0.24 g of polyether polyol (EXCENOL 750ED), and the mixture (2) was changed to a mixture of 2.57 g of acetone and 0.29 g of toluene diisocyanate.

[0068] [Example 4] The same flask as in Example 1 was prepared. 250 g of n-heptane, 100 g of polymer particles A, and 20 g of maleic anhydride-modified ethylene-propylene copolymer (Hiwax 1105A, Mitsui Chemicals, Inc.) were placed in the flask, and the mixture was stirred at 1,000 rpm while being heated to 85°C and stirred for 10 minutes.

[0069] The n-heptane was then removed by drying at 125°C to obtain a dried product. The dried product was passed through a sieve with 850 μm openings to obtain 112 g of water-absorbent resin particles having a coating layer containing maleic anhydride-modified ethylene-propylene copolymer.

[0070] [Comparative Example 1] Polymer particles A were used as water-absorbent resin particles.

[0071] Comparative Example 2 Polymer particles B were used as water-absorbent resin particles.

[0072] Comparative Example 3 30 g of water-absorbent resin particles were collected from a baby diaper "Goo.N Fresh and Breathable Pants for Boys, Large Size" manufactured by Daio Paper Corporation. The median particle diameter of the water-absorbent resin particles was 388 μm.

[0073] Comparative Example 4 Polymer particles C were used as water-absorbent resin particles.

[0074] The water-absorbent resin particles were evaluated as follows, and the results are shown in Tables 1 and 2.

[0075] (Proportion of coating material) The proportion of the coating material in the preparation of the water-absorbent resin particles was calculated by the following formula. Percentage of coating material (mass%) = {mass of coating material used to form the coating layer / (mass of polymer particles used to form the coating layer+mass of coating material used to form the coating layer)} x 100

[0076] (Water retention capacity) The water retention capacity (room temperature) of the water-absorbent resin particles in physiological saline was measured using the following procedure. First, a cotton bag (membrane broadcloth No. 60, 100 mm wide x 200 mm long) containing 2.0 g of water-absorbent resin particles was weighed out and placed in a 500 mL beaker. 500 g of physiological saline was poured into the cotton bag containing the water-absorbent resin particles all at once, taking care not to smear the bag. The top of the cotton bag was then tied with a rubber band and allowed to stand for 30 minutes to allow the water-absorbent resin particles to swell. After 30 minutes had elapsed, the cotton bag was dehydrated for 1 minute using a dehydrator (manufactured by Kokusan Co., Ltd., product number: H-122) set to a centrifugal force of 167 G, and the mass (Wa [g]) of the cotton bag containing the swollen gel after dehydration was measured. The same procedure was performed without adding the water-absorbent resin particles, and the empty mass (Wb [g]) of the cotton bag when wet was measured. The water retention capacity of the water-absorbent resin particles in physiological saline was calculated using the following formula. Water retention amount [g / g]=(Wa-Wb) / 2.0

[0077] (Water absorption rate by Vortex method) 50 g of physiological saline was added to a 100 mL beaker containing a rotor (8 mm × 30 mm, without ring), and the beaker was kept at 25°C in a thermostatic bath. Next, 2.0 g of water-absorbent resin particles for evaluation were added to the vortex of physiological saline stirred at 600 rpm, and measurement with a stopwatch was started at the same time. The time when the vortex disappeared and the liquid level became horizontal was set as the end point, and the time (seconds) up to that point was taken as the water absorption rate.

[0078] (liquid permeability) Measurements were performed at room temperature. 0.20 g of water-absorbent resin particles classified to a size range of 250 to 500 μm was uniformly placed in a Plexiglas cylindrical container (1) with an inner diameter of 26 mm, an outer diameter of 40 mm, and a height of 80 mm, to which a nylon mesh sheet (250 mesh) was attached. A Plexiglas cylindrical container (2) with an inner diameter of 19 mm, an outer diameter of 25 mm, and a height of 120 mm, to which a similar nylon mesh sheet was attached, was inserted from above to serve as the measurement section. The mesh side of the measurement section was immersed in a Petri dish with an inner diameter of approximately 90 mm containing 30 g of physiological saline, and allowed to swell for 30 minutes to form a swollen gel.

[0079] Next, the entire measurement unit was moved onto an empty petri dish, and a 200 g weight was slowly placed on top of the cylindrical container (2), and the swollen gel was loaded for 3 minutes.

[0080] A 100 mm × 100 mm wire mesh with 2 mm square lattice openings was placed on the Petri dish (We) used to measure the empty mass, and the measurement section containing the swollen gel was then placed on top. 20 g of saline was then added from the top of the cylindrical container (2), and a stopwatch was started at the same time. The mass of the Petri dish (Wf), containing the saline that had passed through the swollen gel and flowed out, was measured within 30 seconds (0.5 minutes) of the addition, and the liquid flow rate (g / min) was calculated using the following equation. Liquid permeability (g / min)=(Wf-We) / 0.5

[0081] (contact angle) The contact angle was measured in an environment with a temperature of 25°C and a humidity of 50°C ± 10%. Double-sided tape (Nichiban Internal Stack: 10mm x 75mm) was attached to a glass preparation (25mm x 75mm) with the adhesive surface exposed. First, 1.0g of water-absorbent resin particles was uniformly spread on the double-sided tape attached to the preparation. Then, the preparation was stood upright and excess water-absorbent resin particles were removed to prepare a measurement sample.

[0082] The microscope (Keyence VHX-5000) consists of a sample mounting stage that can be moved up and down, and a free-angle observation stand with a scope fixing part that can be moved downward up to 90 degrees, with 0 degrees being parallel to the stage. Contact angles were measured using the microscope, a micropipette (Gilson Pipetman, capacity 100-1000 μL), and a pipette tip (Eppendorf ep TIPS Standard, 50-1000 μL) according to the following procedure.

[0083] The microscope was adjusted so that the scope was level with the stage, and the measurement sample was placed at the center of the stage. The tip of the micropipette was positioned vertically at a height of 7 ± 1 mm from the surface of the sample. A drop (0.01 g) of saline solution measured with the micropipette was placed on a smooth sample surface, and a video was recorded until the solution was absorbed by the sample surface. An image was taken at t = 0.1 seconds after the solution landed on the sample surface (this point was designated t = 0 seconds). The angle of the line connecting the left and right endpoints of the contact surface between the saline solution droplet and the double-sided tape surface was measured using the microscope's functions. This angle was defined as θ / 2. The contact angle θ was calculated by doubling this angle. The measurement was repeated five times, and the average value was used as the contact angle of the water-absorbent resin particles. The angle was measured in accordance with JIS R 3257 (1999), "Test Method for Wettability of Glass Substrate Surfaces."

[0084] <Absorbent> 12.0 g of water-absorbent resin particles and 8 g of crushed pulp (Leonia Rayflock) were mixed uniformly by air-pressing to prepare a sheet-like absorbent core measuring 40 cm x 12 cm. Next, the top and bottom of the absorbent core were cut into sheets of the same size and weighing 16 g / m². 2 The sheet was sandwiched between two sheets of tissue paper and pressed with a load of 141 kPa applied to the entire sheet for 30 seconds to prepare an absorbent body having a water-absorbent resin particle content of 60% by mass.

[0085] <Absorbent articles> On the top surface of the absorbent body, a sheet of paper of the same size as the absorbent body and weighing 22 g / m 2 An absorbent article was fabricated by placing the polyethylene air-through porous liquid-permeable sheet of the above-mentioned type on the underside of an absorbent body, and a polyethylene liquid-impermeable sheet of the same size and basis weight on the underside of the absorbent body. The following evaluations were carried out using the absorbent article. The results are shown in Tables 1 and 2.

[0086] (Preparation of test solution) A test solution was prepared by mixing 9866.0 g of distilled water, 100.0 g of sodium chloride, 3.0 g of calcium chloride dihydrate, 6.0 g of magnesium chloride hexahydrate, 25.0 g of 1 mass % Triton X solution (a mixture of Triton X-100 and water manufactured by Fujifilm Wako Pure Chemical Industries, Ltd.), and 0.25 g of Food Blue No. 1 (for coloring).

[0087] (return amount) The backflow test was conducted in a room conditioned to 25°C and 50% humidity (RH). The absorbent article was placed on a horizontal table. A liquid-injection cylinder with an opening of 3 cm inner diameter was placed in the center of the absorbent article, and 80 mL of test liquid was poured into the cylinder. The cylinder was removed, and the absorbent article was left as is. 30 minutes after the first injection of test liquid was completed, the same operation was performed using the cylinder in the same position as the first time. This operation was performed a total of five times.

[0088] Sixty minutes after the fifth injection of the test liquid, 40 sheets of 10cm square filter paper, whose mass (Wd (g)) had been measured in advance, were placed on the absorbent article near the position where the test liquid was injected, and a 5kg weight with a base of 10cm x 10cm was placed on top of them. After the load was applied for 5 minutes, the mass (W (g)) of the filter paper was measured, and the increase in mass was taken as the amount of return (g). Backflow amount (g) = W-Wd

[0089] (diffusibility) Sixty minutes after the fifth injection of the test liquid, the absorbent body was removed from the absorbent article, and the length of spread of the test liquid was measured. Specifically, as shown in Figure 2, the diffusion distance of the test liquid in the longitudinal direction passing through the center of the absorbent body (the part corresponding to the position where the test liquid was injected on the water-absorbent article) and the diffusion distance of the test liquid in the longitudinal direction passing 2 cm inward from each end of the absorbent body in the lateral direction toward the center were measured, and the average of these three values ​​was taken as the diffusion distance (cm).

[0090] [Table 1]

[0091] [Table 2] [Explanation of symbols]

[0092] 10...absorbent body, 10a...water-absorbent resin particles, 10b...fiber layer, 20a, 20b...core wrap sheet, 30...liquid-permeable sheet, 40...liquid-impermeable sheet.

Claims

1. The present invention comprises water-absorbing polymer particles and a coating layer that covers at least a portion of the surface of the polymer particles, the coating layer comprises a water-insoluble polyurethane; The water retention capacity of physiological saline is 37 g / g or more, A water-absorbent resin particle having a contact angle with 0.9 mass % saline at 25±2°C of 100 degrees or more and 130 degrees or less.

2. 2. The water-absorbent resin particles according to claim 1, wherein the water-absorption speed measured by the Vortex method is 55 seconds or more and 180 seconds or less.

3. 3. The water-absorbent resin particles according to claim 1, wherein the polymer particles have a median particle size of 130 to 800 μm.

4. An absorbent material comprising the water-absorbent resin particles according to any one of claims 1 to 3.

Citation Information

Patent Citations

  • Water-absorbing agent and production thereof

    JP1990242858A

  • Due to the aggregation of the water-swellable polymer granules and firing method

    JP1991501494A

  • Hydrophilic high swelling hydrogel

    JP1996084927A

  • encapsulating hydrogel

    JP2002501088A

  • Water absorptive polymer particle with hydrophobic surface

    JP2003301019A