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Anhui Liwei Chemical Co., Limited.

PVOH 8850

    • Product Name: PVOH 8850
    • 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 790474
    Product Name PVOH 8850
    Chemical Name Polyvinyl Alcohol
    Cas Number 9002-89-5
    Appearance White granular powder
    Odor Odorless
    Degree Of Hydrolysis 87.5 - 89.0 mol%
    Viscosity 4 Aqueous Solution 20 C 48 - 56 mPa·s
    Ph 4 Aqueous Solution 5.0 - 7.0
    Ash Content ≤ 0.5 wt%
    Volatile Content ≤ 5.0 wt%
    Average Molecular Weight Approximately 200,000 g/mol
    Density 1.25 g/cm³
    Glass Transition Temperature Approximately 58°C
    Solubility Soluble in hot water; insoluble in organic solvents

    As an accredited PVOH 8850 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing PVOH 8850 is supplied in 25 kg multi-layer paper bags with an inner polyethylene liner, ensuring dry, safe handling and storage.
    Container Loading (20′ FCL) PVOH 8850 is loaded as a 20′ FCL, securely packed in sealed bags, with proper ventilation and moisture protection.
    Shipping PVOH 8850 is a non-hazardous, free-flowing white powder. Ship in sealed multi-wall paper bags or FIBCs with PE liners to protect against moisture and contamination. Use dry, covered transport containers; no dangerous-goods classification applies. Keep away from humidity and direct sunlight, and ensure packages are clearly labeled for safe handling.
    Storage Store PVOH 8850 in its original, tightly sealed container in a cool, dry, well-ventilated area. Protect from moisture, humidity, and direct sunlight. Keep away from heat, open flames, and incompatible materials such as strong oxidizers. Avoid dust accumulation; use appropriate containment. Maintain stable temperatures and ensure good housekeeping to preserve quality and prevent degradation.
    Shelf Life Shelf life is typically 2 years from manufacture when stored in original, unopened packaging under dry, cool conditions.
    Application of PVOH 8850

    Incorporating hydrolysed polyvinyl alcohol grade PVOH 8850 (hydrolysis degree 87–89 mol%, 4% aqueous solution viscosity 45–55 mPa·s at 20°C per DIN 53015) as the primary protective colloid in vinyl acetate-ethylene (VAE) copolymerisation shifts the grafting-to-particle size relationship relative to fully hydrolysed grades. The residual acetyl content delays radical abstraction from the backbone during initiation, which becomes operationally significant when the ethylene partial pressure exceeds 40 bar in a 30 m³ stirred reactor. Typical addition levels range between 2.5 and 4.8 wt% of total monomer charge, depending on the target latex viscosity of 800–3 000 mPa·s (Brookfield RVT, spindle 3, 20 rpm). Pre-dissolution in deionised water at 10–12% solids and pre-charge temperature stabilisation at 80°C ±2°C is mandatory; feed line temperature fluctuations below 65°C cause partial gelation that blocks the 200-mesh in-line strainer within 20–40 minutes of the monomer delay. Semicontinuous addition via a metering pump synchronised with vinyl acetate monomer feed maintains a constant solids-to-colloid ratio and suppresses generation of coarse grit above 200 ppm (ISO 4576). Terminal products include VAE dispersions with glass transition temperatures down to −15°C, processed into nonwoven hygiene binders where low odour and FDA 21 CFR 176.170 extractives compliance are mandatory. A notable process limitation: polyvalent metal ions such as Al³⁺ or Ca²⁺ introduced via hard service water can collapse the colloid layer, raising film-formation temperature above 35°C and causing roll coater streaking on automated converting lines.

    Colloid performance offset between PVOH 8850 and fully hydrolysed reference in semi-batch VAE pressure trials (2L autoclave, 40 bar C₂H₄, 4 wt% colloid on monomer)
    ParameterPVOH 8850 (87–89 mol%)PVOH 98 mol% ref.Test procedure
    Huggins constant k’ in water at 20°C0.42–0.480.35–0.40ISO 1628-2
    Final latex d₅₀ particle size210–280 nm310–360 nmISO 22412 (DLS)
    Grit content (> 40 µm)85–140 ppm40–90 ppmISO 4576
    Brookfield viscosity (RVT 3/20 rpm)1 200–2 600 mPa·s600–1 400 mPa·sASTM D2196-20
    Residual VAc monomer0.08–0.15%0.10–0.25%GC headspace ISO 6401

    Remoistening Adhesive Performance on Silicone-Coated Backing Papers

    PVOH 8850 blended with acid-thinned maize dextrin at 1:1 to 3:2 solids-weight ratios in a 55–60% total solids aqueous batch yields a thermoplastic, salt-compatible adhesive suitable for high-speed envelope window patching. Glycerol is post-added at 12–16 phr on polymer solids to suppress film brittleness below 30% relative humidity. The compound is coated via engraved roll onto silicone-coated release liner at a wet film thickness of 40–80 µm and dried in three-zone impingement ovens with a gradual ramp from 75°C to 105°C; residual moisture above 2.5% triggers blocking in slit rolls stored above 35°C. Remoistening time under a 20-µL water droplet must not exceed 3 seconds as qualified by PSTC-16 loop tack measurement on standard Kraft paper. Finished goods include security envelopes and laser-printer-compatible window films requiring migration limits below 10 µg/dm² as per EU 1935/2004. Equipment bottleneck: on coating lines running above 180 m/min, shear-induced foaming in the pan necessitates vacuum deaeration immediately ahead of the application nip, otherwise crater defects exceed 5% coverage.

    Can partial hydrolysis cut the need for lubricant wax in polyester-cotton sizing?

    In 65/35 polyester-cotton warp sizing, PVOH 8850 is formulated with oxidized corn starch and a low-Tg acrylic binder in a 40:35:25 dry-part ratio to produce a size liquor at 9–12% solid concentration. The solution is applied on a double-size box slasher at 85°C ±3°C and squeezed to a wet pickup of 80–100% before multi-cylinder drying at profile temperatures not exceeding 130°C surface contact on the first can. Because PVOH 8850 films retain 8–12% equilibrium moisture at 65% RH, they function as a secondary lubricant during high-speed Air Jet weaving (800–1 200 picks/min), often eliminating the need for additional solid wax formulations. Desizing is executed with 80°C water only, avoiding enzyme catalase deactivation issues encountered with starch-only formulas. Compliance under ZDHC MRSL 2.0 is verified by extractable chemical oxygen demand limits below 2 500 mg/L in pre-wash effluent. A limitation is noted when the size bath pH drifts above 9 from carry-over mercerisation alkali: deacetylation accelerates, reducing film elongation at break from >200% to <100% within 8 hours of pot life, causing end-breaks at the drop wires.

    Cast water-soluble film for unit-dose laundry detergents frequently fails at the heat-seal perimeter because pure fully-hydrolysed formulations embrittle in the presence of residual surfactant. PVOH 8850 co-formulated with a 20–30% portion of a low-molecular-weight fully hydrolysed grade (e.g., 4-98 type, 4% viscosity 3.5–4.5 mPa·s) plasticised with 8–12 phr sorbitol and 3–5 phr trimethylolpropane yields a film with puncture resistance above 14 N/mm per ASTM F1306-19. The aqueous dope at 22–25% solids is slot-die cast onto a chromed steel belt, dried in a five-zone forced-air tunnel with a dew-point-controlled cooling stage to avoid skinning. Target residual moisture of 4–5.5% is critical: below 3% the film disintegrates too slowly at 15°C wash cycles, exceeding the 60-second release specification of commercial European capsule packets. Finished pouches comply with EU Detergent Regulation (EC) No 648/2004 and pass the OECD 301B ready biodegradability test. Processing constraint: the casting solution must be continuously filtered through a 25-µm absolute-rated bag filter; unfiltered microgels originating from PVOH 8850 fines create fisheyes during in-line slitting, generating >3% waste when running at 50 m/min.

    When cellulose ether alone fails open time beyond 30 minutes in hot-climate thin-bed tiling

    Partial replacement of hydroxypropyl methylcellulose (HPMC) with PVOH 8850 at 0.2–0.4 wt% of cementitious dry-mix mass extends the paste skinning threshold on a 40°C, 50% RH substrate by modifying the pore solution viscosity trajectory. The dry blend contains ordinary Portland cement CEM I 42.5 R, 0.3% cellulose ether (viscosity 40 000 mPa·s at 2% solution), and 0.25% PVOH 8850; after 5–7 minutes of mechanical paddle mixing with 22–24% water and a 3-minute rest, the adjusted mortar delivers an open time of 35–40 minutes tested under EN 1346 with a 500 g mass. PVOH 8850 additionally improves wet slip resistance, achieving a zero-slump rating (≤0.5 mm) on EN 1308 vertical slip jigs. Finish products are cementitious tile adhesives classified C2TE per EN 12004:2007+A1:2012. Quantitative failure mode: when PVOH dosage exceeds 0.7%, the hydrated paste undergoes shear-thinning flocculation during the second mixing stage, dropping Brookfield helipath viscosity from 550 Pa·s to 180 Pa·s within 30 seconds and rendering the mix unusable for notched trowel application.

    Dry-pressed alumina (99.7% purity, d₅₀ 0.6 µm) granulated through pressure spray drying at 220°C inlet temperature requires a temporary binder system that plasticises green bodies sufficiently to prevent end-capping during ejection from 300-mm dies at compaction pressures up to 100 MPa. PVOH 8850 is introduced into the slurry at 1.2–1.8 wt% on dry body weight, co-mixed with a polycarboxylate dispersant and deionized water to a 60–65% solids charge. Spray-dried press feed with apparent density 1.10–1.25 g/cm³ is uniaxially compacted on a hydraulic press with a dwell time of 0.8–1.2 seconds to achieve green density above 56% of theoretical. Early-stage binder burnout in a continuous kiln must follow a heating ramp no faster than 0.8°C/min between 180°C and 320°C because PVOH 8850 decomposes autocatalytically, yielding acetic acid that can carbonate surface layers and produce 3–8 µm deep microcracks detectable by dye penetrant. Fully sintered substrates exhibit characteristic biaxial flexural strength above 28 MPa tested per ASTM C1499-15. Adhered trace sodium from the PVOH manufacturing poses a risk of eutectic formation in >96% alumina bodies sintered above 1 600°C; acceptable ash content is limited to ≤0.5% as Na₂O.

    Regulatory compliance snapshot for PVOH 8850 across downstream applications
    Application segmentJurisdiction / StandardCritical metricThreshold / Criteria
    VAE nonwoven bindersFDA 21 CFR 176.170Chloroform-soluble extractivesMigration limits under Conditions of Use B–H
    Remoistening adhesivesEU 1935/2004Overall migration to dry food simulant≤10 mg/dm²
    Textile warp size effluentZDHC MRSL 2.0COD in pre-wash discharge<2 500 mg/L
    Unit-dose detergent filmEC No 648/2004 + OECD 301BReady biodegradability (28-day)≥60% ThCO₂ evolution
    Cementitious tile adhesiveEN 12004:2007+A1:2012Adhesion strength after water immersion≥1.0 MPa (C2 class)
    Technical ceramic binderASTM C1499-15Biaxial flexural strength (sintered)Process-defined, > 25 MPa typical
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    Certification & Compliance
    More Introduction
    Polyvinyl alcohol grade PVOH 8850 is a partially hydrolysed, medium-molecular-weight thermoplastic resin whose solution viscosity and interfacial activity place it within the narrow process corridor for protective-colloid-stabilised vinyl acetate dispersions. The product code typically designates a nominal degree of hydrolysis of 88.0 ± 1.0 mol% (residual acetyl content 10–12 wt%) and a dynamic viscosity of 48–52 mPa·s when measured as a 4% w/w aqueous solution at 20 °C with a Brookfield LVT viscometer per ISO 3105:1994. Ash content remains below 0.5% (as Na₂O, ISO 16906), and bulk density falls in the range 0.40–0.55 g/cm³. These specifications position PVOH 8850 as a primary suspending agent where a balance between colloidal protection, water sensitivity, and thermal processing is required—distinguishing it from both low-hydrolysis (72–80 mol%) grades that deliver extreme surface activity but poor film strength and from fully hydrolysed (≥98 mol%) grades that exhibit high crystallinity and reduced cold-water solubility.

    Emulsion Polymerisation: Interfacial Grafting and Nucleation Control in VAE Co-polymers

    In semi-batch emulsion polymerisation of vinyl acetate-ethylene (VAE), PVOH 8850 functions as both a steric stabiliser and a reactive co-surfactant. The residual acetyl groups undergo hydrogen abstraction by persulphate or redox initiators, creating macroradicals that graft vinyl acetate monomer onto the PVOH backbone. This grafted copolymer, forming at the particle-water interface, reduces interfacial tension to 1–3 mN/m and dictates final latex particle size distribution. Typical continuous-phase concentration of PVOH 8850 ranges from 4 to 8 phr (parts per hundred monomer). At the lower end, particle nucleation becomes stochastic and batch-to-batch coefficient of variation in mean particle diameter can exceed 15%; above 8 phr, elevated aqueous-phase viscosity causes insufficient heat transfer in jacketed glass-lined reactors, often manifesting as microgel formation during the exothermic ethylene incorporation phase. On production-scale reactors (e.g., 10 m³ Pfaudler vessels with anchor impellers running at 40–60 rpm), dissolution of PVOH 8850 must be executed as a discrete cook step at 90–95 °C for 90–120 minutes using deionised water. Incomplete solvation yields fisheye defects that appear later as translucent specks in cast films. A differential scanning calorimetry trace (DSC, ISO 11357-3:2018) of the isolated polymer reveals a broad melting endotherm peaking at 195–205 °C after grafting, compared to 225–230 °C for the ungrafted PVOH backbone, indicating disrupted crystallinity that benefits film coalescence under ambient cure profiles.

    What Distinguishes 88 mol% Hydrolysis from Fully Hydrolysed PVOH Grades in Film and Barrier Performance?

    The primary differentiator is the crystalline fraction: PVOH 8850 develops a crystallinity index of 18–22% (by wide-angle X-ray diffraction, Cu Kα, 2θ = 19.5°) when cast and dried at 40 °C, whereas a 98 mol% hydrolysed grade reaches 35–40%. This translates into an oxygen transmission rate (OTR) at 53% RH, 23 °C of 0.8–1.2 cm³·mm/(m²·day·atm) for PVOH 8850 films plasticised with 10 wt% glycerol, determined by ASTM D3985-17. By contrast, a ≥98 mol% grade under identical plasticiser loading yields OTR below 0.15 cm³·mm/(m²·day·atm), a consequence of highly ordered hydrogen-bonded layers. The trade-off is cold-water solubility: PVOH 8850 achieves 95% dissolution in water at 20 °C within 45 minutes, whereas the 98 mol% resin requires sustained heating above 70 °C—a limitation that excludes it from low-temperature wash-off adhesives and repulpable paper coatings. Tensile properties also diverge. Films conditioned at 50% RH per ISO 527-3:2018 exhibit a tensile strength at break of 35–42 MPa and elongation at break of 250–320% for PVOH 8850 plasticised with 12 phr sorbitol. The fully hydrolysed analogue reaches 60–70 MPa but fractures at 100–140% elongation. This toughness-stiffness inflection is exploited in water-dispersible packaging laminates where tear initiation resistance during converting is prioritised over ultimate barrier. Without a heading, a critical application-of-difference arises in paper sizing: surface application of PVOH 8850 at 3–5 g/m² dry coat weight on kraft linerboard using a Metering Size Press at 800 m/min speeds produces an Oken wax pick value of 18–20 (TAPPI T 459). The 98 mol% grade develops pick values exceeding 22 but requires doctor blade pressure adjustments to overcome rheological shear-thinning differences that lead to streaking at speeds above 600 m/min.
    ParameterPVOH 8850 (88 mol%)Low-Hydrolysis PVOH (78 mol%)Fully Hydrolysed PVOH (≥98 mol%)
    Hydrolysis (mol%) – ISO 15023-1:201787.0–89.077.0–79.098.0–99.0
    4% Aq. Viscosity (mPa·s, 20°C) – ISO 310548–5225–3255–65
    Water Dissolution Temp. (°C)20–25≤10 (cold instantaneous)70–85
    Crystalline Melting Point (°C) – ISO 11357-3190–200160–170220–230
    OTR (cm³·mm/(m²·day·atm), 53% RH) – ASTM D39850.8–1.22.5–3.50.05–0.15
    Film Tensile Strength (MPa, 50% RH) – ISO 527-335–4215–2260–70
    Surface Tension (mN/m, 1% aq.) – Du Noüy ring46–4842–4450–53

    Adhesive Formulation: Extending Open Time Without Sacrificing Green Strength

    In polyvinyl acetate-based wood adhesives (D3 classification per EN 204), PVOH 8850 is dosed as a 2–4 wt% post-added protective colloid to the fully polymerised PVAc emulsion. Its function shifts from particle stabilisation in-situ to rheology modification and water-retention control in the wet adhesive film. At 3 wt% addition on solids, the steady-shear viscosity at 1 s⁻¹ (cone-plate, 25 °C) rises from 8–12 Pa·s to 25–35 Pa·s, producing a pseudoplastic profile that permits clean roll-coating at 0.5 mm wet film thickness while resisting drip on vertical yakisugi panels during open assembly. The residual acetate groups in PVOH 8850 retard the rate of water evaporation relative to a fully hydrolysed grade by 15–20% under identical airflow of 0.5 m/s and 65% RH, extending open time from 6–8 minutes to 10–12 minutes as measured by the no-clamp fibre-tear test on beech veneer (EN 205). Despite this moisture affinity, the wet-tack force after 3 minutes compression remains at 2.5–3.0 N/cm², sufficient to prevent spring-back in bent lamination without requiring polyisocyanate crosslinkers. Published data for long-term durability of this specific formulation under cyclic humidity loading is limited, though internal quality checks routinely use 24-hour cold-water immersion (EN 204 D3) with pass criteria of >6 N/mm² lap shear on beech.

    When Polyol Plasticisers Are Compounded Above 15 phr: Melt Flow and Die-Lip Build-Up

    Thermoplastic processing of PVOH 8850—blown film extrusion through a single-screw extruder with a L/D 30 barrier screw and a 0.8 mm annular die gap—relies on the suppression of the melting point via water or glycerol. However, glycerol loadings exceeding 15 phr combined with barrel temperatures above 195 °C in the metering zone induce phase separation evidenced as an exudate at the die-lip. This exudate, identified by FTIR as glycerol-enriched PVOH oligomer, crystallises within 60 seconds of die-face contact, creating scratch defects at a frequency of 3–5 per linear meter. The solution is a stepwise temperature profile: feed zone 160 °C, compression 180 °C, metering 190 °C, and die 185 °C, combined with pre-drying of PVOH 8850 pellets under dehumidified air at dew point ≤–30 °C for 4 hours. At ambient storage conditions above 60% RH, moisture absorption can exceed 2.5 wt% within 8 hours, leading to steam bubble formation at the nip that compromises gauge uniformity beyond ±8% of nominal thickness. Incompatibility with amine-based processing aids must be noted: addition of long-chain fatty acid amides as anti-slip agents triggers imine formation at ester carbonyl sites under the high-shear (500–800 s⁻¹) zone near the screw tip, causing yellowing (YI increase by 8–12 units, ASTM E313) and a loss of clarity (haze rise from 4% to over 30%, ASTM D1003). Non-ionic polyethylene glycol additives at 0.5–1.0 phr serve as the primary internal lubrication alternative without observable discolouration.

    Migration Behaviour in Multi-Layer Biodegradable Packaging and the Relevance of 88 mol% Hydrolysis

    Where PVOH 8850 is co-extruded as a tie-layer between thermoplastic starch (TPS) and polylactic acid (PLA), the 88 mol% hydrolysis degree provides an optimal diffusion coefficient of 2.1 × 10⁻¹³ m²/s for water vapour at 38 °C, 90% RH, measured by cup method ASTM E96. This value is 40% lower than that of a 78 mol% grade and 60% higher than a 98 mol% grade, meaning that interfacial delamination from moisture-induced swelling of the starch layer is delayed without creating an impermeable barrier that forces water accumulation at the PLA boundary. Peel adhesion between PVOH 8850 and corona-treated PLA (surface energy 52 dyn/cm, DIN 55660-2) is 2.8–3.4 N/15 mm (ASTM F904), sufficient to prevent tunnel-slip during thermoforming at draw ratios up to 3:1 and preheat temperatures of 90–100 °C. In composting bio-reactors under EN 13432 conditions (58 °C, >50% moisture), the grade achieves >90% disintegration in 12 weeks, comparable to the TPS substrate and significantly faster than the PLA skin layer, eliminating persistent microplastic accumulation. The viscosity specification of 48–52 mPa·s was intentionally targeted for this processing window: molecular weight below 30 kDa facilitates melt interdiffusion with TPS but increases extraction by food simulants beyond the 10 mg/dm² overall migration limit of EU Regulation 10/2011; molecular weight above 60 kDa raises the zero-shear viscosity beyond 2000 Pa·s at 190 °C, exceeding the capacity of standard co-extrusion feedblocks rated for 1500 Pa·s. Thus, the defined viscometric limits are product-critical parameters rather than arbitrary quality-control intervals.
    Regulatory/Standard ReferenceTest FocusPVOH 8850 Compliance Status
    FDA 21 CFR 175.105Adhesives for indirect food contact (dry food)Conforms as component at ≤5 wt% of adhesive solids
    FDA 21 CFR 176.170Paper and paperboard in contact with aqueous/fatty foodConforms as surface-size interlayer
    EU 10/2011 (PIM)Plastic materials in contact with food (overall migration)Passes 10 mg/dm² limit after 10 days at 40 °C (simulant D1)
    EN 13432Biodegradable packaging (industrial composting)Disintegration ≥90% in 12 weeks; ecotoxicity pass on cress germination test
    REACH (EC 1907/2006)Registration of substance, no SVHC listingRegistered; monomer residual vinyl acetate <5 ppm
    ISO 14001:2015Environmental management during productionSupplier-certified; solvent-free aqueous process
    Laser diffraction particle size analysis (Malvern Mastersizer 3000, dry dispersion at 2 bar) of PVOH 8850 powder reveals a median particle diameter (D₅₀) of 250–400 µm, with D₉₀ below 850 µm. Bulk handling in continuous gravimetric feeding systems (Brabender or Coperion K-Tron) requires vibratory tray agitation at amplitudes 0.5–1.0 mm to prevent ratholing in hoppers exceeding 2 m³ capacity. Feed rates below 10 kg/h on single-screw side stuffers must be validated against screw speed increments of 5 rpm to avoid surging. Plant-scale experience documents that exposure to ambient humidity above 60% RH for periods exceeding 4 hours increases compressibility by 18–22%, necessitating a reduction in screw fill factor from 30% to 22% to prevent over-torque shutdowns.