US20160280825A1 - Method for Producing Water-Absorbing Polymer Particles by Suspension Polymerization - Google Patents

Method for Producing Water-Absorbing Polymer Particles by Suspension Polymerization Download PDF

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US20160280825A1
US20160280825A1 US15/032,333 US201415032333A US2016280825A1 US 20160280825 A1 US20160280825 A1 US 20160280825A1 US 201415032333 A US201415032333 A US 201415032333A US 2016280825 A1 US2016280825 A1 US 2016280825A1
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polymer particles
water
absorbing polymer
weight
pressure
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Stephan Bauer
Tina Mark
Lydia König
Yvonne Hagen
Thomas Daniel
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BASF SE
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    • CCHEMISTRY; METALLURGY
    • C08ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
    • C08FMACROMOLECULAR COMPOUNDS OBTAINED BY REACTIONS ONLY INVOLVING CARBON-TO-CARBON UNSATURATED BONDS
    • C08F220/00Copolymers of compounds having one or more unsaturated aliphatic radicals, each having only one carbon-to-carbon double bond, and only one being terminated by only one carboxyl radical or a salt, anhydride ester, amide, imide or nitrile thereof
    • C08F220/02Monocarboxylic acids having less than ten carbon atoms; Derivatives thereof
    • C08F220/04Acids; Metal salts or ammonium salts thereof
    • C08F220/06Acrylic acid; Methacrylic acid; Metal salts or ammonium salts thereof
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61FFILTERS IMPLANTABLE INTO BLOOD VESSELS; PROSTHESES; DEVICES PROVIDING PATENCY TO, OR PREVENTING COLLAPSING OF, TUBULAR STRUCTURES OF THE BODY, e.g. STENTS; ORTHOPAEDIC, NURSING OR CONTRACEPTIVE DEVICES; FOMENTATION; TREATMENT OR PROTECTION OF EYES OR EARS; BANDAGES, DRESSINGS OR ABSORBENT PADS; FIRST-AID KITS
    • A61F13/00Bandages or dressings; Absorbent pads
    • A61F13/15Absorbent pads, e.g. sanitary towels, swabs or tampons for external or internal application to the body; Supporting or fastening means therefor; Tampon applicators
    • A61F13/53Absorbent pads, e.g. sanitary towels, swabs or tampons for external or internal application to the body; Supporting or fastening means therefor; Tampon applicators characterised by the absorbing medium
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61FFILTERS IMPLANTABLE INTO BLOOD VESSELS; PROSTHESES; DEVICES PROVIDING PATENCY TO, OR PREVENTING COLLAPSING OF, TUBULAR STRUCTURES OF THE BODY, e.g. STENTS; ORTHOPAEDIC, NURSING OR CONTRACEPTIVE DEVICES; FOMENTATION; TREATMENT OR PROTECTION OF EYES OR EARS; BANDAGES, DRESSINGS OR ABSORBENT PADS; FIRST-AID KITS
    • A61F13/00Bandages or dressings; Absorbent pads
    • A61F13/15Absorbent pads, e.g. sanitary towels, swabs or tampons for external or internal application to the body; Supporting or fastening means therefor; Tampon applicators
    • A61F13/53Absorbent pads, e.g. sanitary towels, swabs or tampons for external or internal application to the body; Supporting or fastening means therefor; Tampon applicators characterised by the absorbing medium
    • A61F13/534Absorbent pads, e.g. sanitary towels, swabs or tampons for external or internal application to the body; Supporting or fastening means therefor; Tampon applicators characterised by the absorbing medium having an inhomogeneous composition through the thickness of the pad
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61LMETHODS OR APPARATUS FOR STERILISING MATERIALS OR OBJECTS IN GENERAL; DISINFECTION, STERILISATION OR DEODORISATION OF AIR; CHEMICAL ASPECTS OF BANDAGES, DRESSINGS, ABSORBENT PADS OR SURGICAL ARTICLES; MATERIALS FOR BANDAGES, DRESSINGS, ABSORBENT PADS OR SURGICAL ARTICLES
    • A61L15/00Chemical aspects of, or use of materials for, bandages, dressings or absorbent pads
    • A61L15/16Bandages, dressings or absorbent pads for physiological fluids such as urine or blood, e.g. sanitary towels, tampons
    • A61L15/22Bandages, dressings or absorbent pads for physiological fluids such as urine or blood, e.g. sanitary towels, tampons containing macromolecular materials
    • A61L15/24Macromolecular compounds obtained by reactions only involving carbon-to-carbon unsaturated bonds; Derivatives thereof
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61LMETHODS OR APPARATUS FOR STERILISING MATERIALS OR OBJECTS IN GENERAL; DISINFECTION, STERILISATION OR DEODORISATION OF AIR; CHEMICAL ASPECTS OF BANDAGES, DRESSINGS, ABSORBENT PADS OR SURGICAL ARTICLES; MATERIALS FOR BANDAGES, DRESSINGS, ABSORBENT PADS OR SURGICAL ARTICLES
    • A61L15/00Chemical aspects of, or use of materials for, bandages, dressings or absorbent pads
    • A61L15/16Bandages, dressings or absorbent pads for physiological fluids such as urine or blood, e.g. sanitary towels, tampons
    • A61L15/42Use of materials characterised by their function or physical properties
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61LMETHODS OR APPARATUS FOR STERILISING MATERIALS OR OBJECTS IN GENERAL; DISINFECTION, STERILISATION OR DEODORISATION OF AIR; CHEMICAL ASPECTS OF BANDAGES, DRESSINGS, ABSORBENT PADS OR SURGICAL ARTICLES; MATERIALS FOR BANDAGES, DRESSINGS, ABSORBENT PADS OR SURGICAL ARTICLES
    • A61L15/00Chemical aspects of, or use of materials for, bandages, dressings or absorbent pads
    • A61L15/16Bandages, dressings or absorbent pads for physiological fluids such as urine or blood, e.g. sanitary towels, tampons
    • A61L15/42Use of materials characterised by their function or physical properties
    • A61L15/60Liquid-swellable gel-forming materials, e.g. super-absorbents
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    • C08FMACROMOLECULAR COMPOUNDS OBTAINED BY REACTIONS ONLY INVOLVING CARBON-TO-CARBON UNSATURATED BONDS
    • C08F2/00Processes of polymerisation
    • C08F2/12Polymerisation in non-solvents
    • C08F2/16Aqueous medium
    • C08F2/20Aqueous medium with the aid of macromolecular dispersing agents
    • CCHEMISTRY; METALLURGY
    • C08ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
    • C08FMACROMOLECULAR COMPOUNDS OBTAINED BY REACTIONS ONLY INVOLVING CARBON-TO-CARBON UNSATURATED BONDS
    • C08F222/00Copolymers of compounds having one or more unsaturated aliphatic radicals, each having only one carbon-to-carbon double bond, and at least one being terminated by a carboxyl radical and containing at least one other carboxyl radical in the molecule; Salts, anhydrides, esters, amides, imides, or nitriles thereof
    • C08F222/36Amides or imides
    • C08F222/38Amides
    • C08F222/385Monomers containing two or more (meth)acrylamide groups, e.g. N,N'-methylenebisacrylamide
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    • C08J3/00Processes of treating or compounding macromolecular substances
    • C08J3/02Making solutions, dispersions, lattices or gels by other methods than by solution, emulsion or suspension polymerisation techniques
    • C08J3/03Making solutions, dispersions, lattices or gels by other methods than by solution, emulsion or suspension polymerisation techniques in aqueous media
    • C08J3/075Macromolecular gels
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    • C08J3/00Processes of treating or compounding macromolecular substances
    • C08J3/24Crosslinking, e.g. vulcanising, of macromolecules
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    • C08J3/00Processes of treating or compounding macromolecular substances
    • C08J3/24Crosslinking, e.g. vulcanising, of macromolecules
    • C08J3/245Differential crosslinking of one polymer with one crosslinking type, e.g. surface crosslinking
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61FFILTERS IMPLANTABLE INTO BLOOD VESSELS; PROSTHESES; DEVICES PROVIDING PATENCY TO, OR PREVENTING COLLAPSING OF, TUBULAR STRUCTURES OF THE BODY, e.g. STENTS; ORTHOPAEDIC, NURSING OR CONTRACEPTIVE DEVICES; FOMENTATION; TREATMENT OR PROTECTION OF EYES OR EARS; BANDAGES, DRESSINGS OR ABSORBENT PADS; FIRST-AID KITS
    • A61F13/00Bandages or dressings; Absorbent pads
    • A61F13/15Absorbent pads, e.g. sanitary towels, swabs or tampons for external or internal application to the body; Supporting or fastening means therefor; Tampon applicators
    • A61F13/53Absorbent pads, e.g. sanitary towels, swabs or tampons for external or internal application to the body; Supporting or fastening means therefor; Tampon applicators characterised by the absorbing medium
    • A61F2013/530868Absorbent pads, e.g. sanitary towels, swabs or tampons for external or internal application to the body; Supporting or fastening means therefor; Tampon applicators characterised by the absorbing medium characterized by the liquid distribution or transport means other than wicking layer
    • CCHEMISTRY; METALLURGY
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    • C08FMACROMOLECULAR COMPOUNDS OBTAINED BY REACTIONS ONLY INVOLVING CARBON-TO-CARBON UNSATURATED BONDS
    • C08F2/00Processes of polymerisation
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    • C08F2/06Organic solvent
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    • C08FMACROMOLECULAR COMPOUNDS OBTAINED BY REACTIONS ONLY INVOLVING CARBON-TO-CARBON UNSATURATED BONDS
    • C08F222/00Copolymers of compounds having one or more unsaturated aliphatic radicals, each having only one carbon-to-carbon double bond, and at least one being terminated by a carboxyl radical and containing at least one other carboxyl radical in the molecule; Salts, anhydrides, esters, amides, imides, or nitriles thereof
    • C08F222/10Esters
    • C08F222/1006Esters of polyhydric alcohols or polyhydric phenols
    • C08F222/103Esters of polyhydric alcohols or polyhydric phenols of trialcohols, e.g. trimethylolpropane tri(meth)acrylate
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    • C08FMACROMOLECULAR COMPOUNDS OBTAINED BY REACTIONS ONLY INVOLVING CARBON-TO-CARBON UNSATURATED BONDS
    • C08F2810/00Chemical modification of a polymer
    • C08F2810/20Chemical modification of a polymer leading to a crosslinking, either explicitly or inherently
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    • C08J2300/00Characterised by the use of unspecified polymers
    • C08J2300/14Water soluble or water swellable polymers, e.g. aqueous gels
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    • C08J2333/00Characterised by the use of homopolymers or copolymers of compounds having one or more unsaturated aliphatic radicals, each having only one carbon-to-carbon double bond, and only one being terminated by only one carboxyl radical, or of salts, anhydrides, esters, amides, imides, or nitriles thereof; Derivatives of such polymers
    • C08J2333/02Homopolymers or copolymers of acids; Metal or ammonium salts thereof

Definitions

  • the present invention relates to a process for producing water-absorbing polymer particles by suspension polymerization and thermal surface postcrosslinking, wherein the base polymer obtained by suspension polymerization has a centrifuge retention capacity of at least 37 g/g and the thermal surface postcrosslinking is conducted at 100 to 190° C.
  • water-absorbing polymer particles The production of water-absorbing polymer particles is described in the monograph “Modern Superabsorbent Polymer Technology”, F. L. Buchholz and A. T. Graham, Wiley-VCH, 1998, pages 69 to 117.
  • the water-absorbing polymer particles are typically produced by solution polymerization or suspension polymerization.
  • water-absorbing polymers Being products which absorb aqueous solutions, water-absorbing polymers are used to produce diapers, tampons, sanitary napkins and other hygiene articles, but also as water-retaining agents in market gardening.
  • the properties of the water-absorbing polymers can be adjusted via the level of crosslinking. With increasing level of crosslinking, there is a rise in gel strength and a fall in absorption capacity.
  • water-absorbing polymer particles are generally postcrosslinked. This increases only the level of crosslinking of the particle surface, and in this way it is possible to at least partly decouple absorption under pressure and centrifuge retention capacity.
  • JP S63-218702 describes a continuous process for producing water-absorbing polymer particles by suspension polymerization.
  • WO 2008/068208 A1 likewise relates to a process for producing water-absorbing polymer particles having a low proportion of hydrophobic solvents by suspension polymerization.
  • CRC centrifuge retention capacity
  • the object was achieved by a process for continuously producing water-absorbing polymer particles by polymerizing a monomer solution comprising
  • the monomers a) are preferably water-soluble, i.e. the solubility in water at 23° C. is typically at least 1 g/100 g of water, preferably at least 5 g/100 g of water, more preferably at least 25 g/100 g of water and most preferably at least 35 g/100 g of water.
  • Suitable monomers a) are, for example, ethylenically unsaturated carboxylic acids, such as acrylic acid, methacrylic acid and itaconic acid. Particularly preferred monomers are acrylic acid and methacrylic acid. Very particular preference is given to acrylic acid.
  • Suitable monomers a) are, for example, ethylenically unsaturated sulfonic acids, such as styrenesulfonic acid and 2-acrylamido-2-methylpropanesulfonic acid (AMPS).
  • sulfonic acids such as styrenesulfonic acid and 2-acrylamido-2-methylpropanesulfonic acid (AMPS).
  • AMPS 2-acrylamido-2-methylpropanesulfonic acid
  • Impurities can have a considerable influence on the polymerization.
  • the raw materials used should therefore have a maximum purity. It is therefore often advantageous to specially purify the monomers a). Suitable purification processes are described, for example, in WO 2002/055469 A1, WO 2003/078378 A1 and WO 2004/035514 A1.
  • a suitable monomer a) is, for example, an acrylic acid purified according to WO 2004/035514 A1 and comprising 99.8460% by weight of acrylic acid, 0.0950% by weight of acetic acid, 0.0332% by weight of water, 0.0203% by weight of propionic acid, 0.0001% by weight of furfurals, 0.0001% by weight of maleic anhydride, 0.0003% by weight of diacrylic acid and 0.0050% by weight of hydroquinone monomethyl ether.
  • the proportion of acrylic acid and/or salts thereof in the total amount of monomers a) is preferably at least 50 mol %, more preferably at least 90 mol %, most preferably at least 95 mol %.
  • the acid groups of the monomers a) may have been partly neutralized.
  • the neutralization is conducted at the monomer stage. This is typically accomplished by mixing in the neutralizing agent as an aqueous solution or preferably also as a solid.
  • the degree of neutralization is preferably from 25 to 95 mol %, more preferably from 30 to 80 mol % and most preferably from 40 to 75 mol %, for which the customary neutralizing agents can be used, preferably alkali metal hydroxides, alkali metal oxides, alkali metal carbonates or alkali metal hydrogencarbonates and also mixtures thereof.
  • alkali metal salts it is also possible to use ammonium salts.
  • Particularly preferred alkali metals are sodium and potassium, but very particular preference is given to sodium hydroxide, sodium carbonate or sodium hydrogencarbonate and also mixtures thereof.
  • the monomers a) typically comprise polymerization inhibitors, preferably hydroquinone monoethers, as storage stabilizers.
  • the monomer solution comprises preferably up to 250 ppm by weight, preferably at most 130 ppm by weight, more preferably at most 70 ppm by weight, and preferably at least 10 ppm by weight, more preferably at least 30 ppm by weight and especially around 50 ppm by weight, of hydroquinone monoether, based in each case on the unneutralized monomer a).
  • the monomer solution can be prepared by using an ethylenically unsaturated monomer bearing acid groups with an appropriate content of hydroquinone monoether.
  • hydroquinone monoethers are hydroquinone monomethyl ether (MEHQ) and/or alpha-tocopherol (vitamin E).
  • Suitable crosslinkers b) are compounds having at least two groups suitable for crosslinking. Such groups are, for example, ethylenically unsaturated groups which can be polymerized free-radically into the polymer chain, and functional groups which can form covalent bonds with the acid groups of the monomer a). In addition, polyvalent metal salts which can form coordinate bonds with at least two acid groups of the monomer a) are also suitable as crosslinkers b).
  • Crosslinkers b) are preferably compounds having at least two polymerizable groups which can be polymerized free-radically into the polymer network.
  • Suitable crosslinkers b) are, for example, methylenebisacrylamide, ethylene glycol dimethacrylate, diethylene glycol diacrylate, polyethylene glycol diacrylate, allyl methacrylate, trimethylolpropane triacrylate, triallylamine, tetraallylammonium chloride, tetraallyloxyethane, as described in EP 0 530 438 A1, di- and triacrylates, as described in EP 0 547 847 A1, EP 0 559 476 A1, EP 0 632 068 A1, WO 93/21237 A1, WO 2003/104299 A1, WO 2003/104300 A1, WO 2003/104301 A1 and DE 103 31 450 A1, mixed acrylates which, as well as acrylate groups, comprise further ethylenically unsaturated groups, as described in DE 103
  • Preferred crosslinkers b) are pentaerythrityl triallyl ether, tetraallyloxyethane, methylenebismethacrylamide, 15-tuply ethoxylated trimethylolpropane triacrylate, polyethylene glycol diacrylate, trimethylolpropane triacrylate and triallylamine.
  • Very particularly preferred crosslinkers b) are methylenebisacrylamide and the polyethoxylated and/or -propoxylated glycerols which have been esterified with acrylic acid or methacrylic acid to give di- or triacrylates, as described, for example, in WO 2003/104301 A1.
  • Methylenebisacrylamide and di- and/or triacrylates of 3- to 10-tuply ethoxylated glycerol are particularly advantageous.
  • Very particular preference is given to methylenebisacrylamide, di- or triacrylates of 1- to 5-tuply ethoxylated and/or propoxylated glycerol.
  • methylenebisacrylamide and the triacrylates of 3- to 5-tuply ethoxylated and/or propoxylated glycerol especially methylenebisacrylamide and the triacrylate of 3-tuply ethoxylated glycerol.
  • the amount of crosslinker in the monomer solution is selected such that the water-absorbing polymer particles after the polymerization and before the thermal surface postcrosslinking (base polymer) have a centrifuge retention capacity (CRC) of at least 37 g/g, preferably at least 38 g/g, more preferably at least 39 g/g, most preferably at least 40 g/g.
  • the centrifuge retention capacity (CRC) should not exceed 75 g/g. If the centrifuge retention capacity (CRC) of the base polymer is too high, it is not possible to build up sufficient absorption under a pressure of 49.2 g/cm 2 (AUHL) in the subsequent thermal surface postcrosslinking.
  • Initiators c) used may be all compounds which generate free radicals under the polymerization conditions, for example thermal initiators, redox initiators or photoinitiators.
  • Suitable redox initiators are potassium peroxodisulfate or sodium peroxodisulfate/ascorbic acid, hydrogen peroxide/ascorbic acid, potassium peroxodisulfate or sodium peroxodisulfate/sodium bisulfite and hydrogen peroxide/sodium bisulfite. Preference is given to using mixtures of thermal initiators and redox initiators, such as potassium peroxodisulfate or sodium peroxodisulfate/hydrogen peroxide/ascorbic acid.
  • the reducing component used is, however, preferably a mixture of the sodium salt of 2-hydroxy-2-sulfinatoacetic acid, the disodium salt of 2-hydroxy-2-sulfonatoacetic acid and sodium bisulfite.
  • Such mixtures are obtainable as Brüggolite® FF6 and Brüggolite® FF7 (Brüggemann Chemicals; Heilbronn; Germany).
  • Suitable thermal initiators are especially azo initiators, such as 2,2′-azobis[2-(2-imidazolin-2-yl)propane]dihydrochloride and 2,2′-azobis[2-(5-methyl-2-imidazolin-2-yl)propane]dihydrochloride, 2,2′-azobis(2-amidinopropane)dihydrochloride, 4,4′-azobis(4-cyanopentanoic acid) and the sodium salts thereof, 2,2′-azobis[2-methyl-N-(2-hydroxyethyl)propionamide] and 2,2′-azobis(imino-1 -pyrrolidino-2-ethylpropane)dihydrochloride.
  • azo initiators such as 2,2′-azobis[2-(2-imidazolin-2-yl)propane]dihydrochloride and 2,2′-azobis[2-(5-methyl-2-imidazolin-2-yl)propane]d
  • Suitable photoinitiators are, for example, 2-hydroxy-2-methylpropiophenone and 1-[4-(2-hydroxyethoxy)phenyl]-2-hydroxy-2-methyl-1-propan-1-one.
  • Ethylenically unsaturated monomers d) copolymerizable with the ethylenically unsaturated monomers a) bearing acid groups are, for example, acrylamide, methacrylamide, hydroxyethyl acrylate, hydroxyethyl methacrylate, dimethylaminoethyl methacrylate, dimethylaminoethyl acrylate, dimethylaminopropyl acrylate, diethylaminopropyl acrylate, dimethylaminoethyl methacrylate, diethylaminoethyl methacrylate.
  • the water-soluble polymers e) used may be polyvinyl alcohol, polyvinylpyrrolidone, starch, starch derivatives, modified cellulose, such as methyl cellulose or hydroxyethyl cellulose, gelatin, polyglycols or polyacrylic acids, preferably starch, starch derivatives and modified cellulose.
  • one or more chelating agents may be added to the monomer solution or starting materials thereof to mask metal ions, for example iron, for the purpose of stabilization.
  • Suitable chelating agents are, for example, alkali metal citrates, citric acid, alkali metal tartrates, pentasodium triphosphate, ethylenediamine tetraacetate, nitrilotriacetic acid, and also all chelating agents known by the Trilon® name, for example Trilon® C (pentasodium diethylenetriaminepentaacetate), Trilon® D (trisodium (hydroxyethyl)ethylenediaminetriacetate), and Trilon® M (methylglycinediacetic acid).
  • the preferred polymerization inhibitors require dissolved oxygen.
  • the monomer solution can therefore be freed of dissolved oxygen before the polymerization by inertization, i.e. flowing an inert gas through, preferably nitrogen or carbon dioxide.
  • the oxygen content of the monomer solution is preferably lowered before the polymerization to less than 1 ppm by weight, more preferably to less than 0.5 ppm by weight, most preferably to less than 0.1 ppm by weight.
  • the inertization can be dispensed with.
  • the dissolved oxygen is removed from the polymerization reactor together with the evaporating solvent.
  • the monomer solution is suspended or emulsified in a hydrophobic solvent.
  • Hydrophobic solvents are all the solvents known to the person skilled in the art for use in suspension polymerization. Preference is given to using aliphatic hydrocarbons, such as n-hexane, n-heptane, n-octane, n-nonane, n-decane, cyclohexane or mixtures thereof. Hydrophobic solvents have a solubility in water at 23° C. of less than 5 g/100 g, preferably less than 1 g/100 g, more preferably less than 0.5 g/100 g.
  • the hydrophobic solvent boils within the range from preferably 50 to 150° C., more preferably 60 to 120° C., most preferably 70 to 90° C.
  • the ratio between hydrophobic solvent and monomer solution is 0.5 to 3, preferably 0.7 to 2.5 and very preferably from 0.8 to 2.2.
  • the mean diameter of the monomer solution droplets in the suspension is preferably at least 100 ⁇ m, more preferably from 100 to 1000 ⁇ m, more preferably from 150 to 850 ⁇ m, most preferably from 300 to 600 ⁇ m, the droplet diameter being determinable by light scattering and signifying the volume-average mean diameter.
  • the diameter of the monomer solution droplets can be adjusted via the stirrer energy introduced and through suitable dispersing aids.
  • dispersing aids are added for dispersion of the aqueous monomer solution in the hydrophobic solvent or for dispersion of the water-absorbing polymer particles which form.
  • These dispersing aids may be anionic, cationic, nonionic or amphoteric surfactants, or natural, semisynthetic or synthetic polymers.
  • Anionic surfactants are, for example, sodium polyoxyethylene dodecyl ether sulfate and sodium dodecyl ether sulfate.
  • a cationic surfactant is, for example, trimethylstearylammonium chloride.
  • An amphoteric surfactant is, for example, carboxymethyldimethylcetylammonium.
  • Nonionic surfactants are, for example, sucrose fatty acid esters, such as sucrose monostearate and sucrose dilaurate, sorbitan esters such as sorbitan monostearate, polyoxyalkylene compounds based on sorbitan esters, such as polyoxyethylenesorbitan monostearate.
  • the dispersing aid is typically dissolved or dispersed in the hydrophobic solvent.
  • the dispersing aid is used in amounts between 0.01 and 10% by weight, preferably between 0.2 and 5% by weight, more preferably between 0.5 and 2% by weight, based on the monomer solution.
  • the diameter of the monomer solution droplets can be adjusted via the type and amount of dispersing aid.
  • stirred reactors are connected in series for the polymerization.
  • the monomer conversion can be increased and backmixing can be reduced.
  • the reaction is preferably conducted under reduced pressure, for example at a pressure of 800 mbar.
  • the pressure can be used to set the boiling point of the reaction mixture to the desired reaction temperature.
  • the resultant water-absorbing polymer particles are thermally surface postcrosslinked.
  • the thermal surface postcrosslinking can be conducted in the polymer dispersion or with the water-absorbing polymer particles which have been removed from the polymer dispersion and dried.
  • the water-absorbing polymer particles are dewatered azeotropically in the polymer dispersion and removed from the polymer dispersion, and the water-absorbing polymer particles removed are dried to remove the adhering residual hydrophobic solvent and thermally surface postcrosslinked.
  • Suitable surface postcrosslinkers are compounds which comprise groups which can form covalent bonds with at least two carboxylate groups of the polymer particles.
  • Suitable compounds are, for example, polyfunctional amines, polyfunctional amido amines, polyfunctional epoxides, as described in EP 0 083 022 A2, EP 0 543 303 A1 and EP 0 937 736 A2, di- or polyfunctional alcohols, as described in DE 33 14 019 A1, DE 35 23 617 A1 and EP 0 450 922 A2, or ⁇ -hydroxyalkylamides, as described in DE 102 04 938 A1 and U.S. Pat. No. 6,239,230.
  • suitable surface postcrosslinkers are alkylene carbonates in DE 40 20 780 C1, 2-oxazolidinone and derivatives thereof, such as 2-hydroxyethyl-2-oxazolidinone, in DE 198 07 502 A1, bis- and poly-2-oxazolidinones in DE 198 07 992 C1, 2-oxotetrahydro-1,3-oxazine and derivatives thereof in DE 198 54 573 A1, N-acyl-2-oxazolidinones in DE 198 54 574 A1, cyclic ureas in DE 102 04 937 A1, bicyclic amido acetals in DE 103 34 584 A1, oxetanes and cyclic ureas in EP 1 199 327 A2 and morpholine-2,3-dione and derivatives thereof in WO 2003/031482 A1.
  • 2-oxazolidinone and derivatives thereof such as 2-hydroxyethyl-2-oxazolidinone
  • Preferred surface postcrosslinkers are alkylene carbonates, 2-oxazolidinones, bis- and poly-2-oxazolidinones, 2-oxotetrahydro-1,3-oxazines, N-acyl-2-oxazolidinones, cyclic ureas, bicyclic amido acetals, oxetanes and morpholine-2,3-diones.
  • Particularly preferred surface postcrosslinkers are ethylene carbonate (1,3-dioxolan-2-one), trimethylene carbonate (1,3-dioxan-2-one), 3-methyl-3-oxethanemethanol, 2-hydroxyethyl-2-oxazolidinone, 2-oxazolidinone and methyl-2-oxazolidinone.
  • the amount of surface postcrosslinker is preferably 0.1 to 10% by weight, more preferably 0.5 to 7.5% by weight and most preferably 1 to 5% by weight, based in each case on the polymer particles.
  • the surface postcrosslinkers are typically used in the form of an aqueous solution.
  • the amount of the solvent is preferably 0.001 to 8% by weight, more preferably 2 to 7% by weight, even more preferably 3 to 6% by weight and especially 4 to 5% by weight, based in each case on the polymer particles.
  • the penetration depth of the surface postcrosslinker into the polymer particles can be adjusted via the content of nonaqueous solvent and total amount of solvent.
  • a surfactant is advantageously added. This improves the wetting characteristics and reduces the tendency to form lumps.
  • solvent mixtures for example isopropanol/water, 1,3-propanediol/water and propylene glycol/water, where the mixing ratio in terms of mass is preferably from 10:90 to 60:40.
  • cations especially polyvalent cations, are applied to the particle surface in addition to the surface postcrosslinkers before, during or after the thermal surface postcrosslinking.
  • the polyvalent cations usable in the process according to the invention are, for example, divalent cations such as the cations of zinc, magnesium, calcium, iron and strontium, trivalent cations such as the cations of aluminum, iron, chromium, rare earths and manganese, tetravalent cations such as the cations of titanium and zirconium.
  • Possible counterions are hydroxide, chloride, bromide, sulfate, hydrogensulfate, carbonate, hydrogencarbonate, nitrate, phosphate, hydrogenphosphate, dihydrogenphosphate and carboxylate, such as acetate, citrate and lactate.
  • Salts with different counterions are also possible, for example basic aluminum salts such as aluminum monoacetate or aluminum monolactate. Aluminum sulfate, aluminum monoacetate and aluminum lactate are preferred.
  • the amount of polyvalent cation used is, for example, 0.001 to 1.5% by weight, preferably 0.005 to 1% by weight and more preferably 0.02 to 0.8% by weight, based in each case on the polymer particles.
  • hydrophilizing agents are additionally applied before, during or after the thermal surface postcrosslinking, for example sugar alcohols such as sorbitol, mannitol and xylitol, water-soluble polymers or copolymers such as cellulose, polyethylene glycols, polyvinyl alcohols, polyvinylpyrrolidones and polyacrylamides.
  • the surface postcrosslinking is typically performed in such a way that a solution of the surface postcrosslinker is sprayed onto the dried polymer particles. After the spray application, the surface postcrosslinker-coated polymer particles are thermally surface postcrosslinked.
  • the spray application of a solution of the surface postcrosslinker is preferably performed in mixers with moving mixing tools, such as screw mixers, disk mixers and paddle mixers.
  • moving mixing tools such as screw mixers, disk mixers and paddle mixers.
  • horizontal mixers such as paddle mixers, very particular preference to vertical mixers.
  • the distinction between horizontal mixers and vertical mixers is made by the position of the mixing shaft, i.e. horizontal mixers have a horizontally mounted mixing shaft and vertical mixers a vertically mounted mixing shaft.
  • Suitable mixers are, for example, horizontal Pflugschar® plowshare mixers (Gebr.
  • the thermal surface postcrosslinking is preferably performed in contact driers, more preferably shovel driers, most preferably disk driers.
  • Suitable driers are, for example, Hosokawa Bepex® Horizontal Paddle Dryers (Hosokawa Micron GmbH; Leingart; Germany), Hosokawa Bepex® Disc Dryers (Hosokawa Micron GmbH; Leingart; Germany), Holo-Flite® driers (Metso Minerals Industries Inc.; Danville; USA) and Nara Paddle Dryers (NARA Machinery Europe; Frechen; Germany).
  • fluidized bed driers may also be used.
  • the thermal surface postcrosslinking can be effected in the mixer itself, by heating the jacket or blowing in warm air.
  • a downstream drier for example a shelf drier, a rotary tube oven or a heatable screw. It is particularly advantageous to effect mixing and thermal surface postcrosslinking in a fluidized bed drier.
  • thermal surface postcrosslinking under reduced pressure or to conduct it with use of drying gases, for example dried air and nitrogen, in order to ensure the very substantial removal of the solvents.
  • drying gases for example dried air and nitrogen
  • the surface postcrosslinked polymer particles can be classified, with removal of excessively small and/or excessively large polymer particles and recycling thereof into the process.
  • the surface postcrosslinking can also be conducted in the polymer dispersion.
  • the solution of the surface postcrosslinker is added to the polymer dispersion.
  • Preferred surface postcrosslinking temperatures are in the range of 100 to 190° C., preferably in the range of 105 to 180° C., more preferably in the range of 110 to 175° C., most preferably in the range of 120 to 170° C.
  • the preferred residence time at this temperature is preferably at least 10 minutes, more preferably at least 20 minutes, most preferably at least 30 minutes, and typically at most 90 minutes.
  • the water-absorbing polymer particles are cooled after the thermal surface postcrosslinking in a contact drier.
  • the cooling is preferably performed in contact coolers, more preferably paddle coolers and most preferably disk coolers.
  • Suitable coolers are, for example, Hosokawa Bepex® Horizontal Paddle Coolers (Hosokawa Micron GmbH; Leingart; Germany), Hosokawa Bepex® Disc Coolers (Hosokawa Micron GmbH; Leingart; Germany), Holo-Flite® coolers (Metso Minerals Industries Inc.; Danville; USA) and Nara Paddle Coolers (NARA Machinery Europe; Frechen; Germany).
  • fluidized bed coolers may also be used.
  • the water-absorbing polymer particles are cooled to 20 to 150° C., preferably 30 to 120° C., more preferably 40 to 100° C. and most preferably 50 to 80° C.
  • the polymer particles thermally surface postcrosslinked in a contact drier can be coated or remoisturized.
  • the remoisturizing is preferably performed at 30 to 80° C., more preferably at 35 to 70° C., most preferably at 40 to 60° C. At excessively low temperatures, the water-absorbing polymer particles tend to form lumps, and, at higher temperatures, water already evaporates to a noticeable degree.
  • the amount of water used for remoisturizing is preferably from 1 to 10% by weight, more preferably from 2 to 8% by weight and most preferably from 3 to 5% by weight. The remoisturizing increases the mechanical stability of the polymer particles and reduces their tendency to static charging.
  • Suitable coatings for improving the free swell rate and the permeability are, for example, inorganic inert substances, such as water-insoluble metal salts, organic polymers, cationic polymers and di- or polyvalent metal cations.
  • Suitable coatings for dust binding are, for example, polyols.
  • Suitable coatings for counteracting the undesired caking tendency of the polymer particles are, for example, fumed silica, such as Aerosil® 200, and surfactants, such as Span® 20 and Plantacare 818 UP and surfactant mixtures.
  • the present invention further provides the water-absorbing polymer particles obtainable by the process according to the invention.
  • the water-absorbing polymer particles obtainable by the process according to the invention have a centrifuge retention capacity (CRC) of at least 37 g/g, an absorption under a pressure of 21.0 g/cm 2 of at least 30 g/g, an absorption under a pressure of 49.2 g/cm 2 (AUHL) of at least 14 g/g, a sum total of centrifuge retention capacity and absorption under a pressure of 21.0 g/cm 2 (CRC+AUL) of at least 69 g/g, a sum total of centrifuge retention capacity and absorption under a pressure of 49.2 g/cm 2 (CRC+AUHL) of at least 54 g/g, and less than 20% by weight of extractables.
  • CRC centrifuge retention capacity
  • the inventive water-absorbing polymer particles have a centrifuge retention capacity (CRC) of preferably at least 38 g/g, more preferably at least 40 g/g and most preferably at least 41 g/g.
  • CRC centrifuge retention capacity
  • the centrifuge retention capacity (CRC) of the water-absorbing polymer particles is typically less than 75 g/g.
  • the inventive water-absorbing polymer particles have an absorption under a pressure of 21.0 g/cm 2 (AUL) of preferably at least 32 g/g, more preferably at least 33 g/g and most preferably at least 34 g/g.
  • the absorption under a pressure of 21.0 g/cm 2 (AUL) of the water-absorbing polymer particles is typically less than 50 g/g.
  • the inventive water-absorbing polymer particles have an absorption under a pressure of 49.2 g/cm 2 (AUHL) of preferably at least 16 g/g, more preferably at least 18 g/g and most preferably at least 20 g/g.
  • the absorption under a pressure of 49.2 g/cm 2 (AUHL) of the water-absorbing polymer particles is typically less than 35 g/g.
  • the sum total of centrifuge retention capacity (CRC) and absorption under a pressure of 21.0 g/cm 2 (AUL) of the inventive water-absorbing polymer particles is preferably at least 71 g/g, more preferably at least 73 g/g and most preferably at least 74 g/g.
  • the sum total of centrifuge retention capacity (CRC) and absorption under a pressure of 49.2 g/cm 2 (AUHL) of the inventive water-absorbing polymer particles is preferably at least 56 g/g, more preferably at least 58 g/g, most preferably at least 59 g/g.
  • the inventive water-absorbing polymer particles comprise preferably less than 17% by weight, more preferably less than 15% by weight and most preferably less than 14% by weight of extractables.
  • the inventive water-absorbing polymer particles have a proportion of particles having a particle size of 300 to 600 ⁇ m of preferably at least 30% by weight, more preferably at least 40% by weight and most preferably at least 50% by weight.
  • the present invention further provides hygiene articles comprising
  • the proportion of water-absorbing polymer particles obtainable by the process according to the invention in the liquid-absorbing storage layer (C) is preferably at least 75% by weight, more preferably at least 80% by weight, most preferably at least 90% by weight.
  • the mean sphericity of the water-absorbing polymer particles obtainable by the process according to the invention in the liquid-absorbing storage layer (C) is 0.84, preferably at least 0.86, more preferably at least 0.88, most preferably at least 0.90.
  • the water-absorbing polymer particles produced by customary solution polymerization are ground and classified after drying, to obtain irregular polymer particles.
  • the mean sphericity of these water-absorbing polymer particles is between about 0.72 and about 0.78.
  • the water-absorbing polymer particles are tested by means of the test methods described below.
  • the measurements should, unless stated otherwise, be conducted at an ambient temperature of 23 ⁇ 2° C. and a relative air humidity of 50 ⁇ 10%.
  • the water-absorbing polymers are mixed thoroughly before the measurement.
  • the residual monomer content of the water-absorbing polymer particles is determined by EDANA recommended test method WSP No. 210.2-05 “Residual Monomers”.
  • the sieve analysis is conducted according to EDANA recommended test method WSP 220.3 (11), using sieves with the following mesh sizes: 100, 200, 300, 400, 500, 600, 710, 800, 900 and 1000 ⁇ m.
  • m ni is the polymer particle mass in g retained by each sieve
  • m si is the mass of the empty sieve in g
  • m 1 is the total mass of polymer particles weighed in in g
  • the moisture content of the water-absorbing polymer particles is determined by EDANA recommended test method No. WSP 230.3 (11) “Mass Loss Upon Heating”.
  • the centrifuge retention capacity (CRC) is determined by EDANA recommended test method No. WSP 241.3 (11) “Fluid Retention Capacity in Saline, After Centrifugation”.
  • the absorption under a pressure of 0.0 g/cm 2 (AUNL) is determined analogously to EDANA recommended test method No. WSP 242.3 (11) “Gravimetric Determination of Absorption Under Pressure”, except that a pressure of 0.0 g/cm 2 (AUL 0.0 psi) is established instead of a pressure of 21.0 g/cm 2 (AUL 0.3 psi).
  • the absorption under a pressure of 21.0 g/cm 2 (AUL) of the water-absorbing polymer particles is determined by EDANA recommended test method No. WSP 242.3 (11) “Gravimetric Determination of Absorption Under Pressure”.
  • the absorption under a pressure of 49.2 g/cm 2 (AUHL) is determined analogously to EDANA recommended test method No. WSP 242.3 (11) “Gravimetric Determination of Absorption Under Pressure”, except that a pressure of 49.2 g/cm 2 (AUL 0.7 psi) is established instead of a pressure of 21.0 g/cm 2 (AUL0.3psi).
  • the bulk density is determined by EDANA recommended test method No. WSP 250.3 (11) “Gravimetric Determination of Density”.
  • the content of extractables of the water-absorbing polymer particles is determined by EDANA recommended test method No. WSP 270.3 (11) “Extractable”.
  • the extraction time is 16 hours.
  • FSR free swell rate
  • the weight W 1 should be corrected to take account of this moisture content.
  • Residual Cyclohexane The proportion of residual solvent (cyclohexane) is determined by means of headspace GC-MS.
  • mSPHT mean sphericity
  • the sample to be analyzed is introduced into a funnel.
  • the computer-controlled measurement system starts the metering device and ensures a continuous, concentration-regulated particle flow.
  • the particles fall individually through the measurement shaft and generate high-contrast shadow images between light source and high-resolution camera.
  • the light source is actuated by the camera and, because of very short exposure times, produces faultless image information for the multiple evaluation of each individual particle in real time.
  • each particle is analyzed repeatedly and the process thus gives the absolute results for length, width, thickness, area and circumference.
  • the number of pixels covered by the particle is used to calculate the size and shape. This also results in the comparatively precise determination of the mean sphericity (mSPHT) and the mean particle diameter D 50 .
  • a 2L flange vessel equipped with impeller stirrer and reflux condenser was initially charged with 896.00 g of cyclohexane and 6.00 g of ethyl cellulose, and heated to internal temperature 75° C. with stirring and introduction of nitrogen.
  • the monomer solution prepared from 150.00 g (2.082 mol) of acrylic acid, 129.00 g (1.613 mol) of 50% by weight aqueous sodium hydroxide solution, 136.80 g of water, 0.113 g (0.73 mmol) of N,N′-methylenebisacrylamide (MBA) and 0.500 g (1.85 mmol) of potassium persulfate, was then introduced into a feed vessel and purged with air.
  • the suspension present was cooled to 60° C. and the resultant polymer particles were filtered off with suction using a Büchner funnel with a paper filter.
  • the further drying was effected at 45° C. in an air circulation drying cabinet and optionally in a vacuum drying cabinet at 800 mbar down to a residual moisture content of less than 5% by weight.
  • the base polymer was produced analogously to example 1 with the amounts stated in table 1.
  • the base polymer was produced analogously to example 4, with combination of 30 batches.
  • a 2L flange vessel equipped with impeller stirrer and reflux condenser was initially charged with 896.00 g of cyclohexane and 6.00 g of ethyl cellulose, and heated to internal temperature 75° C. with stirring and introduction of nitrogen.
  • the monomer solution prepared from 150.00 g (2.082 mol) of acrylic acid, 129.00 g (1.613 mol) of 50% by weight aqueous sodium hydroxide solution, 136.80 g of water, 0.113 g (0.73 mmol) of N,N′-methylenebisacrylamide (MBA), 0.250 g (0.925 mmol) of potassium persulfate and 2.250 g of an 11.1% aqueous solution of 2,2′-azobis(imino-1-pyrrolidino-2-ethylpropane)dihydrochloride (0.711 mmol), was then introduced into a feed vessel and purged with air.
  • the suspension present was cooled to 60° C. and the resultant polymer particles were filtered off with suction using a Büchner funnel with a paper filter.
  • the further drying was effected at 45° C. in an air circulation drying cabinet and optionally in a vacuum drying cabinet at 800 mbar down to a residual moisture content of less than 5% by weight.
  • the base polymer was produced analogously to example 1 using 0.075 g (0.194 mmol) of the triacrylate of 3-tuply ethoxylated glycerol (Gly-(EO-AA) 3 ) rather than 0.113 g (0.73 mmol) of N,N′-methylenebisacrylamide (MBA) as internal crosslinker.
  • Gly-(EO-AA) 3 3-tuply ethoxylated glycerol
  • MSA N,N′-methylenebisacrylamide
  • the base polymer was produced analogously to example 9, except using 118.00 g (1.475 mol) of 50% by weight aqueous sodium hydroxide solution rather than 129.00 g (1.613 mol) of 50% by weight aqueous sodium hydroxide solution.
  • crosslinker b g mmol ppm boaa mmol % boaa 1 MBA 0.1125 0.730 750 35 2 MBA 0.0750 0.486 500 23 3 MBA 0.0563 0.365 375 18 4 MBA 0.0375 0.243 250 12 5 MBA 0.0188 0.122 125 6 6 MBA 0.0000 0.000 0 0 8 MBA 0.0375 0.243 250 12 9 Gly-(EO-AA) 3 0.0750 0.194 500 9 10 Gly-(EO-AA) 3 0.0750 0.194 500 9 boaa: based on (unneutralized) acrylic acid MBA: methylenebisacrylamide Gly-(EO-AA) 3 triacrylate of 3-tuply ethoxylated glycerol
  • the thermal surface postcrosslinking was effected analogously to example 1-1 and 1-2, except using the base polymer from example 2.
  • the heat treatment time was 60 or 75 min.
  • the conditions are summarized in table 4.
  • the thermal surface postcrosslinking was effected analogously to example 1-1 and 1-2, except using the base polymer from example 3.
  • the heat treatment time was 75 or 90 min.
  • the conditions are summarized in table 4.
  • the thermal surface postcrosslinking was effected analogously to example 1-1 and 1-2, except using the base polymer from example 4.
  • the heat treatment time was 60 or 75 min. The conditions are summarized in table 4.
  • thermal surface postcrosslinking was effected analogously to example 1-1, except using the base polymer from example 4 and additionally using aluminum trilactate.
  • the heat treatment time was 90 min.
  • the conditions are summarized in table 4.
  • the thermal surface postcrosslinking was effected analogously to example 1-1 and 1-2, except using the base polymer from example 4 and using N,N,N′,N′-tetrakis(2-hydroxyethyl)ethylenediamine (Primid® XL 552) as surface postcrosslinker.
  • the heat treatment time was 60 or 75 min. The conditions are summarized in table 4.
  • the thermal surface postcrosslinking was effected analogously to example 1-1 and 1-2, except using the base polymer from example 2.
  • the heat treatment time was 75 or 90 min.
  • the conditions are summarized in table 4.
  • the thermal surface postcrosslinking was effected analogously to example 1-1 and 1-2, except using the base polymer from example 6.
  • the heat treatment time was 60 or 75 min.
  • the conditions are summarized in table 4.
  • the product was transferred to a further Pflugschar® paddle drier.
  • the Pflugschar® paddle drier had been preheated to a wall temperature of 190° C.
  • the Pflugschar® paddle drier was set to a speed of 200 rpm. The temperature fell significantly as a result of the introduction of the product.
  • the stirrer was started.
  • the thermostat for the oil heating was turned down from 250° C. to 190° C.
  • the heating was regulated such that a constant product temperature of 160° C. was established after about 20 min.
  • the cooled product was sieved down to smaller than 850 ⁇ m on an AS400 sieve shaker (Retsch GmbH, Haan, Germany).
  • thermal surface postcrosslinking was effected analogously to example 7-1 and 7-2, except at lower temperature.
  • the Pflugschar® paddle drier had been preheated to a wall temperature of 110° C. The temperature fell significantly as a result of the introduction of the product. On attainment of a product temperature of 83° C., the thermostat for the oil heating was turned down from 250° C. to 110° C. During the experiment, the heating was regulated such that a constant product temperature of 90° C. was established after about 20 min.
  • thermal surface postcrosslinking was effected analogously to example 7-1 and 7-2, except at higher temperature.
  • the Pflugschar® paddle drier had been preheated to a wall temperature of 220° C. The temperature fell significantly as a result of the introduction of the product. On attainment of a product temperature of 183° C., the thermostat for the oil heating was turned down from 250° C. to 230° C. During the experiment, the heating was regulated such that a constant product temperature of 200° C. was established after about 20 min.
  • thermal surface postcrosslinking was effected analogously to example 1-1, except using the base polymer from example 8, 9 or 10.
  • the conditions are summarized in table 4.

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