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Anhui Liwei Chemical Co., Limited.

KURARAY POVAL 30-88

    • Product Name: KURARAY POVAL 30-88
    • Factroy Site: Lingwu, Yinchuan, Ningxia, China
    • Price Inquiry: sales2@liwei-chem.com
    • Manufacturer: Anhui Liwei Chemical Co., Limited.
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    Specifications
    HS Code 138820
    Chemical Name Poly(vinyl alcohol)
    Cas Number 9002-89-5
    Appearance White to pale yellow granular powder
    Viscosity 4 Percent Solution 20c Mpa S 28-32
    Degree Of Hydrolysis Mol Percent 87-89
    Ph Aqueous Solution 5-7
    Density G Cm3 1.27
    Solubility Soluble in hot water; slightly soluble in cold water
    Melting Point C ~200 (decomposes)
    Glass Transition Temperature C ~75

    As an accredited KURARAY POVAL 30-88 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Kuraray Poval 30-88 is packaged in 25 kg multi-wall paper bags with a polyethylene liner for safe protection.
    Container Loading (20′ FCL) 20′ FCL: KURARAY POVAL 30-88 loaded as palletized, shrink-wrapped bags, moisture-protected, securely braced to prevent damage and contamination.
    Shipping KURARAY POVAL 30-88 (polyvinyl alcohol) ships as a dry, water-soluble granular resin in sealed multi-wall paper or PE-lined bags, typically palletized and stretch-wrapped for protection. It is not classified as dangerous goods, but should be kept dry, away from moisture, heat, and ignition sources, with standard dust-control measures during handling.
    Storage Store KURARAY POVAL 30-88 (polyvinyl alcohol) in a cool, dry, well-ventilated area, away from heat, ignition sources, moisture, and incompatible oxidizers. Keep the original container tightly sealed when not in use to prevent moisture absorption and contamination. Avoid conditions that generate airborne dust or static discharge. Ensure proper labeling and segregate from foodstuffs.
    Shelf Life Shelf life is typically 24 months from manufacture when stored in original, sealed containers under cool, dry conditions.
    Application of KURARAY POVAL 30-88

    Which Hydrolysis Level Controls Grafting Density in Vinyl Acetate Emulsion Polymerization?

    In semi-batch vinyl acetate homopolymerization, the 87–89 mol% hydrolysis range of Kuraray Poval 30-88 is not a passive specification; the residual 11–13 mol% acetyl groups function as radical transfer and grafting sites during persulfate initiation, forming the interfacial polyvinyl alcohol-polyvinyl acetate layer that regulates emulsion particle size and shelf stability. The grade is dissolved in demineralized water at 85–90 °C for 30–45 min at 4.0–6.0% solids, cooled to 70–75 °C, and charged into a 3,000–5,000 L glass-lined or stainless reactor equipped with an anchor agitator running at 80–120 rpm. The protective colloid addition is 3.0–5.0 wt% based on total vinyl acetate monomer, while potassium persulfate initiator is fed separately at 0.15–0.30 wt% on monomer after the initial charge reaches 68 °C. Monomer is metered over 3.5–4.5 h with the reaction band held at 65–75 °C. Production operators monitor agitator torque and jacket heat transfer; a torque rise above 85% of motor rating indicates particle aggregation, and the monomer feed is reduced by 5–10% while 0.05 wt% sodium acetate buffer is added to return the batch pH to 4.5–5.5. The resulting polyvinyl acetate dispersion typically contains 50–55% solids, Brookfield viscosity of 8,000–20,000 mPa·s at 25 °C, and a particle size D50 of 0.6–1.8 μm. Batch-to-batch variation in the incoming 4% solution viscosity of 30-88, specified at 27.0–33.0 mPa·s, can shift final dispersion viscosity by approximately ±10% at equivalent solids. Compliance for the unmodified dispersion falls under FDA 21 CFR 175.105 for indirect food-contact adhesives, while paperboard applications are assessed under 21 CFR 176.170. Terminal products include white woodworking PVAc glue, paper tube adhesive, bookbinding emulsion, and general lamination adhesive. Operational boundary: 30-88 alone does not achieve a D4 water-resistant bond under EN 204; a crosslinker is required when that classification is specified.

    On a flooded nip size press running at 800–1,100 m/min, the surface sizing liquor is formulated with oxidized starch and 30-88 at a dry ratio of 70:30 to 60:40, with total bath solids maintained between 6.0–8.0%. The PVA component is pre-dissolved at 90–95 °C for 45 min and blended with starch at 55–60 °C to avoid retrogradation. Film press pickup is controlled to 1.0–2.5 g/m² per side through nip pressure of 40–80 kN/m; after application, the web passes through infrared dryers and cylinder sections with surface temperatures from 90 °C to 120 °C, with final moisture held at 5.0–6.0%. The 88 mol% hydrolysis level of 30-88 reduces water absorption while preserving film flexibility, a required balance for high-speed converting. Compliance is verified with ISO 535 Cobb60, TAPPI T 530 Hercules sizing test, and ISO 5627 Bendtsen roughness; food-contact grades are cleared under 21 CFR 176.170 and 21 CFR 176.180. Terminal product types include high-speed inkjet coated paper, offset printing base stock, silicone release liner base, and direct thermal paper base. Operational limitation: at relative humidity above 65%, size press pickup drifts because the reeled paper enters with higher moisture, so the web must be pre-dried to 3.0–4.5% moisture before the size press.

    Application variable30-88 sizing windowTest method
    Size press bath solids6.0–8.0%Oven solids
    PVA-to-starch dry ratio30:70–40:60Mass balance
    Pickup per side1.0–2.5 g/m²ISO 536 basis weight differential
    Water absorptiveness20–40 g/m² Cobb60ISO 535
    Sizing holdout20–150 s HSTTAPPI T 530

    Warp Sizing Viscosity Stability in Air-Jet Weaving Sheds

    Size box viscosity drift is controlled when 30-88 is blended at 35–50% of total size solids with native or modified starch, at total solids of 9.0–13.0%. The liquor is cooked at 120–130 °C in a jet cooker for 10–15 min and held at 75–80 °C in the size box of a single-end slasher processing 7.4–9.8 tex ring-spun polyester/cotton warp yarn. Squeeze pressure is maintained at 140–220 kN/m to achieve 8.0–12.0 wt% add-on; drying cylinder temperatures are zoned at 90 °C, 125 °C, and 110 °C, with warp moisture at lease controlled to 4.0–6.0%. The sized warp is woven on air-jet looms at 800–1,200 rpm. The film formed by 30-88 reduces protruding fiber and stiffening without excessive shedding in the shed. After weaving, the fabric is desized in open-width washers at 80–95 °C with 0.5–1.0 g/L wetting agent and 10–20 min residence; residual PVA in effluent is measured by ISO 6060 chemical oxygen demand. Compliance for the input chemical includes OEKO-TEX Standard 100 product class II where finished fabric is certified; discharge limits are site-specific, but residual PVA contributes to COD and must be accounted for in the mill wastewater permit. Terminal finished products are air-jet woven denim, workwear shirting, and bed linen base fabric. The main incompatibility is with cationic size additives and strong acid desizing agents; combination with alum below pH 4.0 causes gelation and size bath instability.

    Where remoistenable front-seal adhesives must survive 12 months of warehouse cycling between 15 °C and 40 °C at up to 75% RH, 30-88 is compounded at 25–40 parts per 100 parts dry adhesive solids with oxidized dextrin or thin-boiling starch, and plasticized with 5–10 parts glycerol per 100 parts PVA. The batch is dispersed in water at 30–35% solids, cooked at 85–90 °C, and applied by a 110–150 line/cm gravure cylinder at 8–15 g/m² wet film to the paper substrate. A 3-zone forced-air oven set at 60 °C, 75 °C, and 85 °C dries the coating in 5–8 s, followed by conditioning to 45–55% RH before slitting. The rewetting response on automated inserting lines is targeted at 2–5 s open time with 0.2–0.5 mL water per seal. Compliance for indirect food-contact envelopes and label patches is covered under FDA 21 CFR 175.105; EU paper packaging falls under Regulation (EC) 1935/2004 with good manufacturing practice under Regulation (EC) 2023/2006. Terminal types include self-seal envelopes, stamp mounts, direct mail label patches, and wallpaper joint tapes. 30-88 is not recommended for direct food-contact application and is not a cold-water-instant dissolution grade; dissolution requires heating to 85–90 °C during adhesive compounding.

    When 30-88 Replaces Fully Hydrolyzed Grades in Ceramic Extrusion Binder Systems

    Alumina and cordierite honeycomb bodies respond differently to the 88 mol% hydrolysis level because residual acetate groups lower the binder solution gel point and alter pressure drop through extrusion dies. 30-88 is pre-dissolved at 15–20% solids in deionized water at 85–90 °C, then added to the ceramic batch at 1.0–2.5 wt% dry basis with 2.0–4.0 wt% polyethylene glycol plasticizer and 0.5–1.0 wt% stearic acid lubricant. Mixing is carried out in a sigma-blade kneader to a plastic body moisture of 16–20%. Extrusion through 300–600 cell/in² honeycomb dies occurs at head pressure 20–35 bar and body temperature 25–35 °C. Green ware is dried at 40–60 °C to residual moisture 0.5–1.0%, then debindered at 450–550 °C with 2–4 h hold and air flow 1.0–1.5 m/s to keep carbon residue below 0.1%. The ash specification for 30-88 is <0.5%, which is critical for high-purity alumina substrates. Terminal products include automotive catalyst honeycomb substrates, diesel particulate filter segments, and kiln furniture. Compliance is process-specific: ceramic bodies are usually qualified under ISO 9001 production controls, while fired parts may be tested to ASTM C373 for water absorption; no food-contact migration standard applies to the organic binder because it is removed by firing. Operational boundary: at body moisture above 21%, laminations form during extrusion, and below 15%, die pressure exceeds 35 bar and causes wear on coated dies.

    Crosslinker Consumption Rises When 30-88 Replaces 98 mol% Grades in Laminating Adhesives

    After 24 h of cure at 20–25 °C and 50% RH, a two-part polyvinyl acetate laminating adhesive containing 2.5–5.0 wt% 30-88 solids develops water-resistant bonds to paper-foil and paper-film structures. The 30-88 stock solution is mixed into the PVAc dispersion at 15–20% solids, and an acid-catalyzed crosslinker such as glyoxal or a blocked isocyanate is added at 0.5–1.5 wt% on total wet adhesive. Roller coating applies 40–80 g/m² wet to the paper or foil web, followed by nip pressure 3–6 bar, tunnel drying at 70–90 °C for 20–40 s, and re-moistening on a gravure station before lamination. The 30-88 component increases cohesional strength, but because 88 mol% hydrolysis leaves 11–13 mol% acetyl groups, hydroxyl availability for crosslinking is lower than in fully hydrolyzed grades; above 5.0 wt% 30-88 the wet adhesive viscosity rises above 20,000 mPa·s and working time drops below 2 h. Compliance for food packaging laminates is evaluated under FDA 21 CFR 175.105, EU Regulation 10/2011, and EN 204 D3 where wood-composite claims are involved. Bond performance is tested with ASTM D1876 T-peel and ASTM D3985 oxygen transmission after 7 days conditioning. Terminal products are paper-polyethylene foil pouches, aluminum-foil barrier wraps, and multi-layer label backings. Incompatibility: combination with amine-catalyzed epoxy hardeners at pH above 8.5 leads to premature gelation; pH is maintained between 4.5 and 5.5 during mixing.

    Compliance referenceScopeMeasured property
    FDA 21 CFR 175.105Indirect food-contact adhesiveFormulation limits
    EU Regulation 10/2011Food-contact plastic layersOverall migration 10 mg/dm²
    ASTM D1876T-peel resistancePeel strength N/25 mm
    ASTM D3985Oxygen transmissioncm³/(m²·day·bar)
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    Certification & Compliance
    More Introduction
    Kuraray POVAL 30-88 is a partially hydrolysed polyvinyl alcohol grade defined by two primary specifications: a nominal 4% aqueous solution viscosity of 30 mPa·s at 20°C and a nominal degree of hydrolysis of 88 mol%. The product is supplied as a white to off-white granular powder that is soluble in hot water; it is not cold-water soluble at 25°C. Under JIS K6726:1994, the control ranges typically presented for this grade include a viscosity of 27.0–33.0 mPa·s, a hydrolysis level of 87.0–89.0 mol%, volatile matter not exceeding 5.0%, ash as Na₂O not exceeding 0.5%, and a pH between 5.0 and 7.0 for a 4% solution. The combination of moderate chain length and partial hydrolysis places the material between low-viscosity surface-active PVOH grades and high-viscosity fully hydrolysed grades. Residual acetate groups depress crystallinity and reduce the energy required for dissolution relative to a 98–99 mol% hydrolysed grade, while the 88 mol% hydroxyl content retains sufficient interchain hydrogen bonding to form a coherent cast or coated film after drying.
    Property Typical value Test basis
    Degree of hydrolysis 87.0–89.0 mol% JIS K6726:1994
    Viscosity of 4% aqueous solution 27.0–33.0 mPa·s at 20°C JIS K6726:1994
    Volatile matter 5.0% JIS K6726:1994
    Ash as Na₂O 0.5% JIS K6726:1994
    pH of 4% solution 5.0–7.0 JIS K6726:1994
    In solution preparation, the solid is typically introduced through a low-shear eductor or centrifugal sifter into a jacketed stainless steel vessel containing water at 85–90°C. If dry powder is dumped directly into a high-speed vortex without sifting, hydrated gel layers form around undissolved cores, producing fish-eye defects that can persist through 150 μm filters. For incoming inspection, viscosity testing alone is not sufficient to detect low-level crosslinked gels. A typical quality control protocol includes visual inspection of a 10% solution after passing through a 150 μm sieve, with gel particle counts reported as number per 100 g of solid. The alcoholysis degree is verified by saponification value; residual acetyl content may also be measured by hydrolysis and titration.

    How Do Molecular Weight and Residual Acetate Distribution Influence Solubility and Film Tensile Response?

    The prefix “30” indicates a longer average chain length than grades such as 22-88 or 5-88. At equal hydrolysis, higher molecular weight raises the viscosity of a 4% solution and increases extensional viscosity in the film split during roll application. In a 5,000 L jacketed dissolution vessel with a bottom-mounted axial-flow impeller running at 40–60 rpm, a 10 wt% batch is normally fully dissolved in 90–150 min at 85°C. If the heating ramp is shortened or the vessel is operated below 80°C, residual gel particles can be carried downstream and appear as streaks in a subsequent coating nip. The 88 mol% hydrolysis level also controls solubility and film properties. Fully hydrolysed PVOH requires holding temperatures above 90°C and longer swelling times because dense hydrogen-bonded crystalline domains resist water ingress. In 30-88, randomly distributed acetate groups interrupt crystallite growth and allow a lower dissolution temperature, but they also reduce ultimate water resistance of the dried film. A dried film formed from 30-88 will exhibit measurable swelling and softening in cold water, whereas a fully hydrolysed grade remains intact until hot water is applied. Tensile testing of cast films under ASTM D882-18 typically shows that 30-88 films are more extensible than fully hydrolysed PVOH and stronger than 5-88 films at equal plasticiser content. Published data for specific plasticiser formulations is limited; observed industrial behaviour varies with plasticiser type and drying temperature. Where 30-88 is used as a protective colloid in vinyl acetate emulsion polymerization, the addition level is commonly 3.0–3.5 wt% on total monomer. In a 500–1,000 L glass-lined reactor with a pitched-blade turbine at 80–120 rpm, the colloid stabilises growing latex particles and reduces coagulum build-up on the vessel wall. The residual acetate groups participate in radical grafting to the PVOH backbone; this grafting alters the stabiliser layer and produces pseudo-plastic flow in the finished latex. Increasing the PVOH fraction from 3.0 wt% to 5.0 wt% raises low-shear Brookfield viscosity at 20 rpm and may shift the particle size distribution measured by laser diffraction toward larger mean diameters. Scale-up from laboratory glassware to a 1,000 L reactor is not linear. The lower surface-to-volume ratio changes heat removal, and persulfate initiator addition must be ramped accordingly. If the exotherm is not controlled within ±2°C, grafting density changes and batch-to-batch low-shear viscosity can vary by more than 20%. At comparable addition levels, 30-88 produces higher latex viscosity and better wet-tack than 5-88 because the longer chains bridge adjacent particles more effectively. However, the increased low-shear viscosity can complicate handling in high-solids formulations; pumps, filters, and filling lines must be sized for shear-thinning behaviour. Rheological evaluation under ISO 3219:1993 or DIN 53019-1:2008 is recommended when shifting from a low-viscosity grade to 30-88.

    Grade-Differentiating Properties in Aqueous Adhesive and Barrier Coating Applications

    In paper surface sizing, a 6.0–8.0% solids solution of 30-88 maintained at 70–80°C on a film press can deposit dry coat weights of 3–5 g/m² when metered with a rod or smooth-roll applicator. The grade’s viscosity contributes to a stable film split and reduces spattering compared with lower-molecular-weight PVOH, but the solids window narrows above 9.0% because the solution can become too viscous for uniform transfer at 600 m/min line speeds. Surface strength is often assessed via ISO 3783 IGT pick resistance; comparative trials show that PVOH addition at 3.0–5.0% of coating solids improves dry pick resistance, while wet pick resistance depends on the cure of the co-binder and the base-sheet internal size. Aqueous adhesive formulations exploit similar film-formation and colloidal stabilisation behaviour. In remoistenable adhesives, 30-88 can be compounded with plasticisers and defoamers; the higher molecular weight increases bond strength relative to 22-88 but raises the viscosity of a 20% solids formulation. Formulators typically dilute by 2–5% additional water when transitioning from 22-88 to 30-88 to maintain identical coating viscosity.
    Grade Nominal 4% viscosity at 20°C (mPa·s) Nominal degree of hydrolysis (mol%) Processing consequence in aqueous formulation
    POVAL 30-88 30 88 Higher film cohesion than 22-88 at equal solids; requires heating to 80–85°C
    POVAL 22-88 22 88 Lower viscosity at equal solids; reduced wet pickup on cylinder presses
    POVAL 5-88 5 88 Easier cold-water handling; lower tensile strength of cast film
    Fully hydrolysed PVOH 27–33 98–99 Higher water resistance after drying; dissolution above 90°C
    On textile warp sizing lines processing polyester–cotton blends, a 10–13% solids solution of 30-88 is applied in size boxes at 75–85°C. The higher viscosity of the grade provides adequate size add-on at squeeze pressures of 0.3–0.5 MPa on a two-roll padder, reducing the need for high add-on from low-viscosity grades. Desizing is carried out with hot-water washing at 80°C because the size film must be removed before dyeing; the partially hydrolysed PVOH re-dissolves more readily than fully hydrolysed size, but is not removable in cold water. Yarn tensile strength retention after sizing is typically evaluated under ISO 2062:2009; the PVOH film increases abrasion resistance during weaving as measured by loom stop counts per 100,000 picks. Published data for specific weave-room stop counts is formulation-dependent and limited.

    When a Low-Moisture Melt Process Replaces Hot-Water Solution Preparation

    Partially hydrolysed PVOH is not commonly processed as a neat melt because the temperature window between flow initiation and thermal degradation is narrow. For 30-88, the crystalline melting range is below that of fully hydrolysed PVOH, but thermal degradation accelerates above 200°C. If a twin-screw compounding line is selected, plasticiser incorporation of 15–30 phr is required to bring the melt temperature into a processable range. In a co-rotating twin-screw extruder with an L/D ratio of 40:1, a barrel temperature profile from 90–170°C and a die temperature below 180°C can be used for plasticised formulations. Without sufficient plasticiser, shear heating in the kneading blocks raises the melt temperature above 200°C, producing yellowing, generation of acetic acid, and gel formation. These observations are consistent with the known thermal degradation pathway of PVOH, but published data for this specific melt-processing configuration is limited. Aqueous solution processing remains the standard route for 30-88 in high-volume coating lines. Regulatory data sheets for Kuraray POVAL 30-88 list the substance as polyvinyl alcohol under CAS 9002-89-5. Under REACH, the grade is registered as a polymer, and exposure controls address dust containment rather than acute toxicity. For food-contact use, polyvinyl alcohol films and coatings may be evaluated under FDA 21 CFR 177.1670 or 21 CFR 175.300 depending on the final article; end-use migration testing is required because the grade itself does not establish compliance limits. Storage should be in sealed bags at relative humidity below 60% and below 30°C. Moisture uptake above 60% RH increases caking and can alter gravimetric feeding; pneumatic transfer lines should be designed for a bulk density near 0.40–0.60 g/cm³, but the exact packed density depends on particle-size distribution and consolidation. In aqueous formulation, 30-88 should be protected from strong oxidizing agents and from excessive alkaline hydrolysis at pH above 10 during prolonged hot storage. Addition of borate salts at even 0.1% by weight can produce reversible but high low-shear viscosity increases through borate-diol complexation; crosslinked gels can block filters and coating lines. These incompatibility boundaries are reversible under acidic pH adjustment but are difficult to reverse once films are dried.