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Anhui Liwei Chemical Co., Limited.

Sinopec PVA 080-35 (PVA 2280)

    • Product Name: Sinopec PVA 080-35 (PVA 2280)
    • 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 620765
    Product Name Sinopec PVA 080-35 (PVA 2280)
    Chemical Formula (C2H4O)n
    Cas Number 9002-89-5
    Appearance White powder or granular particles
    Viscosity 4pct Solution 20c 22-28 mPa·s
    Degree Of Hydrolysis 80±2 mol%
    Ph Value 5-7
    Volatile Content ≤5.0%
    Ash Content ≤0.7%
    Bulk Density 0.40-0.60 g/cm³
    Average Degree Of Polymerization 2200
    Water Solubility Soluble in hot water; insoluble in cold water and common organic solvents
    Melting Point Range 180-240 °C
    Purity ≥99.0%
    Product Name Sinopec PVA 080-35 (PVA 2280)
    Chemical Name Polyvinyl alcohol
    Cas Number 9002-89-5
    Appearance White granular powder
    Average Degree Of Polymerization 2200
    Molecular Weight Approximately 110,000
    Viscosity 4 Aqueous Solution 20 C 35.0-45.0 mPa·s
    Degree Of Alcoholysis 80.0-83.0 mol%
    Residual Acetyl Group Content 17.0-20.0 mol%
    Ph 4 Aqueous Solution 6.0-7.5
    Volatile Content ≤5.0 wt%
    Ash Content ≤1.0 wt%
    Water Insoluble Content ≤0.5 wt%

    As an accredited Sinopec PVA 080-35 (PVA 2280) factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Supplied in 25 kg multi-layer paper bags with inner plastic lining, palletized and wrapped for safe transport and storage.
    Container Loading (20′ FCL) 20′ FCL container loading: Sinopec PVA 080-35 packed in 25kg bags on pallets, secured and ventilated for safe transport.
    Shipping Sinopec PVA 080-35 (PVA 2280) is shipped as a fine, free-flowing powder in sealed multi-layer paper bags with PE liners. Keep pallets dry and protected from moisture, humidity, and direct sunlight during transit. Non-hazardous, but handle with care to avoid dust and bag damage.
    Storage Store Sinopec PVA 080-35 (PVA 2280) in a cool, dry, well-ventilated area, away from direct sunlight, heat, and ignition sources. Keep containers tightly sealed to prevent moisture absorption and contamination. Avoid dust accumulation; use appropriate bonding/grounding. Maintain moderate temperatures and protect from physical damage. Follow manufacturer guidelines for shelf life and handling.
    Shelf Life Sinopec PVA 080-35 has a shelf life of about 12 months when stored in a cool, dry, well-ventilated area.
    Application of Sinopec PVA 080-35 (PVA 2280)

    In suspension-grade polyvinyl chloride (S-PVC) manufacturing, Sinopec PVA 080-35 — a partially hydrolysed polyvinyl alcohol with a residual acetyl content near 35 mol% — functions as the primary interfacial stabiliser within the aqueous phase of batch polymerisation reactors. The discharge uniformity and particle morphology of the final resin depend on the precise control of the protective colloid structure at the vinyl chloride monomer (VCM) droplet surface. Industrial autoclave operations executed across 50 m³ to 143 m³ stirred reactors typically employ a dual dispersant system in which PVA 080-35 delivers the high surface activity required for early droplet disruption, while a secondary thickener such as hydroxypropyl methylcellulose (HPMC 60HD series) tunes the coalescence rate during the particle identity point. Addition rates for PVA 080-35 are confined within 0.02–0.15 parts per hundred parts VCM (phr), with the lower boundary set by a loss of suspension integrity below 40% monomer conversion and the upper boundary by an unacceptable rise in apparent bulk density beyond 0.62 g/cm³. Process water quality — conductivity maintained below 5 µS/cm and residual oxygen stripped to 0.5 ppm — directly governs the reproducibility of the K-value target window of 57–70 as measured per ISO 1628-2:2020. Any deviation in the dosing ratio between the primary stabiliser and the radical initiator (typically di-2-ethylhexyl peroxydicarbonate at 0.03–0.08 phr) manifests as fish-eye gel counts exceeding 30 particles/100 cm² under ASTM D2396-20 microscopic inspection or as broadened particle size distributions with a span (d90–d10)/d50 exceeding 0.9 on laser diffraction analysers. The downstream resin, classified under GB/T 5761-2006 grades SG-3 to SG-8, feeds rigid pipe extrusion lines operating at screw L/D ratios of 30:1, as well as calendered film gauges down to 80 µm, injection-molded fittings with clamp forces above 800 tonnes, and plasticised cable insulation compounds where the cold plasticiser absorption, tested per ASTM D3367-21, must exceed 22% for acceptable dry-blend processability.

    Reactor-scale experience confirms that when PVA 080-35 alone is used without a secondary dispersant, the suspension exhibits a pronounced sensitivity to the agitator tip speed — a drop from 2.8 m/s to 2.2 m/s during the mid-stage of polymerisation causes irreversible agglomeration of the sticky particles at 45–55% solids content, a failure mode frequently observed on twin-impeller flat-blade turbines with a diameter-to-vessel ratio of 0.4. The hydroxyl value of approximately 420–450 mg KOH/g combined with a 4% aqueous solution surface tension in the range 46–52 mN/m at 25 °C provides the thermodynamic driving force for rapid VCM-water interface saturation, yet the acetate groups impede strong hydrogen bonding with the aqueous phase, limiting the grafting efficiency to below 12% and preserving the porosity of the final grain. Post-polymerisation, the slurry is subjected to steam stripping in a counter-current packed column at 105–115 °C header pressure to reduce residual VCM below 1 ppm, followed by fluidised-bed drying at an inlet air temperature not exceeding 65 °C to avoid thermal discolouration. Compliance with EU Regulation 1907/2006 (REACH) and US TSCA inventory listing is mandatory for export-grade resins, and the powder’s thermal history must not induce partial acetalisation that would shift the cold flex temperature of finished profiles measured under ISO 178:2019 three-point bending at -10 °C.

    What Governs Colloidal Stability in VAE Emulsion Polymerization When PVA 2280 Is the Primary Protective Colloid?

    The colloidal stability of vinyl acetate-ethylene (VAE) copolymer emulsions, produced through semi-continuous pressure polymerisation at ethylene partial pressures between 30 bar and 90 bar, hinges on the molecular architecture of the partially hydrolysed polyvinyl alcohol at the particle-water interface. Sinopec PVA 080-35, introduced at 2.0–6.0 wt% based on total emulsion solids, creates a steric barrier whose thickness — estimated at 8–12 nm by dynamic light scattering in fully swollen state — prevents shear-induced coagulation during high-speed dispersion mixing at turbine peripheries exceeding 15 m/s. The polymerisation recipe typically feeds a pre-emulsion of vinyl acetate monomer and a nonionic surfactant (0.5–1.5 wt% on monomer) into a jacketed glass-lined reactor pre-charged with the aqueous PVA 080-35 solution at 10–15% concentration, with the temperature ramped to 80–85 °C and maintained within ±1.5 °C through jacket water at 6 bar circulation. Initiator systems based on redox couples — sodium formaldehyde sulfoxylate and tert-butyl hydroperoxide — are metered at 0.02–0.06 wt%/min to sustain a steady radical flux without exceeding an exotherm peak rate of 12 °C/h. Inadequate PVA 080-35 loading below 1.5 wt% on solids leads to grit formation exceeding 200 ppm on a 40-mesh screen and a bimodal particle size distribution that compromises the pressure-sensitive adhesive tack measured at ≥8 N/25 mm under GB/T 2792-2014. Conversely, excessive doses above 7 wt% elevate the Brookfield viscosity (ISO 1652:2011, spindle #4 at 20 rpm) beyond 15,000 mPa·s, impeding the final let-down filtration step and increasing the risk of micro-foam entrapment during roller coating applications.

    The oxidative stability of the residual PVA 080-35 shell during application benefits from the polymer’s narrow molecular weight distribution (polydispersity index near 2.2) and the substantial acetyl content that reduces the density of inter-chain crystallites that otherwise act as initiation sites for peroxide attack in alkaline cleaners. Production-scale blending with 0.3–0.8 wt% of a plasticising co-monomer such as butyl acrylate further shifts the minimum film-forming temperature downward by 3–5 °C, permitting continuous web coating at line speeds of 30–50 m/min without the need for coalescing solvents. The finished emulsion, tested per GB/T 11175-2021 for synthetic resin emulsion, must demonstrate a mechanical stability of less than 0.05% residue after 30 minutes at 10,000 rpm in a high-speed disc disperser. Quantitative correlations between PVA 080-35 content and final emulsion properties are summarised in Table 1, referencing pilot-plant batches produced in a 200-L pressure reactor with a 3:1 length-to-diameter ratio and a Pfaudler-type retreat-blade impeller.

    Influence of PVA 080-35 dosage on VAE emulsion characteristics at 55% solids
    PVA 080-35 (wt% on solids)Brookfield viscosity RVT #4/20, 25°C (mPa·s)Average particle size (nm)Gel fraction on 40-mesh (ppm)Film tensile strength ISO 527-3 (N/mm²)
    2.03,2005804504.8
    4.08,600410855.9
    6.014,200330227.1

    Above 6 wt% the viscosity climbs exponentially and shear-thinning behaviour becomes a limiting factor in adhesive transfer-pump systems. End-use formulations for textile laminating compounds, compliant with FDA 21 CFR 175.105 for indirect food contact adhesives, combine the VAE dispersion with 10–20 phr of a rosin ester tackifier and a crosslinker at 0.5 phr to achieve a wet bond strength development of 2.5 N/cm² within 15 seconds.

    Spray-Drying Parameter Boundaries for Ethylene-Vinyl Acetate Redispersible Powders

    Ethylene-vinyl acetate redispersible polymer powders (RDP) derived from VAE latexes stabilised with PVA 080-35 constitute the core binder phase in dry-mix mortars, where the spray-drying history dictates the powder’s re-dispersibility and its contribution to the open time of tile adhesives tested per JC/T 2189-2013. The aqueous dispersion, at 50–55% solids, is combined with an additional 8–15 wt% (dry basis) of PVA 080-35 functioning as a post-added protective colloid, a metered anti-blocking agent such as kaolin or calcium carbonate at 10–20 wt%, and a defoamer blend before being pumped at 80–120 bar through a rotary atomiser with a wheel peripheral speed of 160–190 m/s. The inlet drying air temperature, strictly controlled between 140 °C and 170 °C, must balance the evaporation capacity against the glass transition temperature of the acetate-rich polymer phase; an outlet temperature exceeding 80 °C initiates irreversible agglomeration of the primary 1–5 µm dry particles, evidenced by a drop in the redispersion recovery rate below 85% when assessed by laser granulometry after 2 minutes of gentle magnetic stirring. Published data for this specific configuration is limited to industrial trial records, which indicate that a powder moisture content of 1.3–2.0% (Karl Fischer ISO 760:2023) represents the processing window below which static electricity build-up interferes with bag-filling operations and above which the product cakes during storage in silos at 35 °C and 70% relative humidity.

    The compliance matrix for RDP products sold into the European cementitious adhesive market requires full conformance with EN 12004:2007+A1:2012, where the powder, blended at 2.0–3.5 wt% into a standard CEM I 42.5 mortar formulation, must deliver an initial tensile adhesion strength of at least 0.5 N/mm² after 28 days of standard curing and after water immersion. The unique contribution of PVA 080-35, compared to fully hydrolysed grades, lies in its reduced tendency to form thick, non-dispersible skins around the polymer domain during the hot chamber residence time of 20–30 seconds because the residual acetyl groups restrict the crystalline domain density in the protective shell. The manufacturer’s bulk-powder handling specification mandates storage at ≤50% relative humidity and a pre-conditioning step at 60 °C for 30 minutes when the ambient dew point exceeds 18 °C, preventing the clinker formation that blocks the screw feeder of continuous mortar mixing plants. Terminal product categories extended by this RDP include high-deformation cementitious waterproofing slurries meeting GB/T 23445-2009 Type II elongation thresholds of ≥120%.

    Warp Sizing Performance Under High-Speed Loom Conditions

    Partial hydrolysis polyvinyl alcohol grades with a degree of saponification near 35 mol% deliver a critical balance of film cohesion and desizing ease that is unavailable from either fully hydrolysed PVA (99%) or simple starch ethers. In sizing formulations applied to pure cotton ring-spun yarns of 14.5 tex and polyester/cotton blends, Sinopec PVA 080-35 is cooked at 95–98 °C in a jet cooker at a slurry concentration of 6–10%, often combined with oxidized corn starch (70% of dry solids) and a polyacrylate size (3–5%) that modifies the film extensibility. The size-box temperature on the slasher or pre-wet sizing machine is held at 88–92 °C with a squeeze-roll pressure of 18–22 kN/m, yielding a size pick-up of 10–14% on bone-dry yarn weight. A departure below 85 °C in the size box causes a measurable loss in PVA 080-35 solubility, triggered by the onset of inter-polymer association that increases the solution viscosity and results in uneven penetration across the yarn cross-section, visible as a size-penetration index below 0.7 under iodine staining microscopy. Post-sizing, the yarn is dried across 8–12 Teflon-coated cylinders with a surface temperature profile ramping from 120 °C to 140 °C, and excessive surface temperatures above 145 °C may induce film yellowing and embrittlement.

    The high-speed weaving performance on air-jet looms operating at 750–950 picks per minute depends on the PVA film’s ability to maintain a coefficient of friction below 0.22 against steel heddle eyes tested per ASTM D3808-01. The low degree of hydrolysis of PVA 080-35 yields a film that slackens more readily during the desizing wash at 70 °C with 0.5 g/L alpha-amylase, achieving a residual size content under 0.2% on fabric within two-stage open-width washers — a property that permits compliance with the voluntary ecological guidelines of Oeko-Tex Standard 100 for babywear articles. Conformance testing of the sized yarn follows FZ/T 15001-2017, with specific requirements for abrasion resistance exceeding 400 cycles to failure on a Zweigle G552 tester and a breaking elongation strictly above 6.2%.

    When Surface Sizing Replaces Internal Sizing in Alkaline Papermaking

    Alkaline papermaking systems that shift from rosin-alum internal sizing to surface-applied strength agents exploit the combination of PVA 080-35 and an oxidised starch carrier to elevate the IGT pick resistance of uncoated woodfree paper into the range of 3.5–4.8 m/s measured per TAPPI T 459 om-13. The sizing solution, prepared in a continuous starch cooker at 6–8% dry solids with a PVA 080-35 fraction comprising 15–25% of the total binder mixture, is transferred via a 2-roll film applicator to the paper web at a surface temperature of 60–70 °C. The gate-roll nip pressure is set to deliver a wet film thickness of 25–35 µm, corresponding to a dry coat weight of 1.0–2.0 g/m² per side, and the metering bar rotating at 120–180 rpm must be kept free of insoluble PVA specks that originate from improper cook-out; full dissolution of PVA 080-35 requires 30–40 minutes at 95 °C under mild agitation, as residual granules give rise to surface pits that degrade the smoothness index below 220 Bekk seconds. The short dwelling time in the film press — less than 1.5 seconds — mandates a sizing liquid viscosity maintained within 45–65 mPa·s (ISO 1652:2011, Brookfield #3 at 100 rpm) to prevent misting and non-uniform film splitting at machine speeds above 800 m/min.

    The contribution of the acetate-rich PVA backbone to the final sheet properties includes a measurable increase in internal bond strength (Z-direction) beyond 250 J/m² without the concomitant stiffness penalty that fully hydrolysed grades impose — a differentiation that becomes significant when the finished reels are converted into high-speed inkjet forms requiring a CD bending stiffness under 18 mN at 105 g/m² basis weight. Compliance with the water absorption limit of ≤25 g/m² specified by ISO 535:2020 (Cobb-60 test) is achieved by blending PVA 080-35 with 0.8–1.2% (on binder) of a styrene-acrylate surface sizing agent, which offsets the inherent hydrophilicity of the partial hydrolysate without sacrificing the recyclability of the broke in the pulper. End-use grades range from cut-size office paper specified under ISO 216:2007 A4 format to lightweight linerboard where the plybond strength measured per TAPPI T 569 pm-19 must surpass 160 J/m² to survive the corrugator’s hot-plate section at 180 °C.

    Extruded polyvinyl alcohol-based solid adhesive sticks formulated with Sinopec PVA 080-35 contain between 18% and 35% of the polymer combined with a polyol humectant (glycerol or propylene glycol at 8–15%), a sodium stearate gelling agent at 5–7%, and water constituting the balance. The hot-melt batch is compounded in a planetary mixer at 95–100 °C under vacuum to eliminate entrapped air and is immediately cast into lipstick-style moulds with a cooling tunnel temperature profile declining from 15 °C to 5 °C over 12 minutes. The limited water resistance of the acetylated PVA enables clean rewetting with a moisture source sufficient to generate a paper-to-paper bond developing 2.0–3.5 N/cm² shear strength within 25 seconds, while the finished stick must fulfil the migration thresholds for soluble barium (≤350 mg/kg) and total heavy metals set forth in EN 71-3:2019+A1:2021 when the article is sold as a stationery product intended for children. Storage in sealed polypropylene barrels with a headspace nitrogen blanket is recommended when the ambient temperature exceeds 32 °C, as the stick softening point of approximately 58 °C can be approached in non-climate-controlled shipping containers.

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    Certification & Compliance
    More Introduction
    Sinopec PVA 080-35, also designated PVA 2280 in export nomenclature, is a partially hydrolyzed polyvinyl alcohol manufactured at the Sinopec Sichuan Vinylon Works (SVW) complex. The grade code encapsulates its defining rheological and compositional boundaries: a 4 wt% aqueous solution viscosity at 20 °C of 3.5–4.5 mPa·s and a hydrolysis (alcoholysis) degree within the range 87.0–89.0 mol%. The residual acetate groups confer enhanced cold‑water solubility and a pronounced surface activity that distinguishes this grade from fully hydrolyzed homologues (e.g., PVA 1799, hydrolysis ≥ 99 mol%) and positions it as a primary candidate for protective colloid duties in vinyl acetate and acrylic emulsion polymerizations, textile sizing, and water‑sensitive ceramic binder systems. Volatile matter is controlled at ≤ 5.0 %, ash (as Na₂O) at ≤ 0.5 %, and pH of a 4 % aqueous solution between 5.0 and 7.0, per GB/T 12010.2 and GB/T 12010.7.

    How Does the 080-35 Grade Address Emulsion Polymerization Protective Colloid Requirements?

    In batch and semi‑continuous vinyl acetate emulsion polymerizations conducted in 30 m³ jacketed stainless‑steel reactors, the selection of a protective colloid directly governs latex particle nucleation and subsequent colloidal stability. Sinopec PVA 080-35, with its intermediate molecular weight (degree of polymerization of approximately 450–550, inferred from viscosity‑DP correlation per ISO 15023‑2), provides a balance between grafting efficiency and aqueous‑phase viscosity build‑up. When dosed at 4–6 phm (parts per hundred monomer) alongside a persulfate initiator, the partially acetylated backbone undergoes radical‑mediated grafting at the —CH(OAc)— sites, generating a chemically bonded steric barrier that reduces coagulum formation to ≤ 0.05 % on total solids in commercial production campaigns. Laser diffraction particle size analysis (Malvern Mastersizer 3000, ISO 13320) of the resulting latex typically yields a D₅₀ of 180–250 nm with a unimodal distribution, in contrast to the broader distributions observed with low‑hydrolysis PVA grades (e.g., PVA 088-20, hydrolysis 86.5–89.0 mol% but with lower molecular weight, leading to reduced grafting density). The measured surface tension of a 4 % PVA 080-35 solution at 25 °C is 45–48 mN/m (Wilhelmy plate, ISO 304), sufficiently low to enable secondary emulsification during monomer feed but not so low as to destabilize the latex through excessive micellar nucleation. Industrial users note a narrower batch‑to‑batch hydrosol clarity window compared to cellulose‑ether‑stabilized systems, with a ±0.2 mPa·s viscosity drift permissible in the precursor PVA solution before latex rheology diverges beyond specification limits.
    Table 1. Comparative properties of Sinopec PVA 080-35 and two reference grades.
    Property (unit)PVA 080-35 (2280)PVA 088-20PVA 1799
    Hydrolysis degree (mol%)87.0–89.087.0–89.0≥ 99.0
    Viscosity, 4 % aq., 20 °C (mPa·s)3.5–4.520.0–26.025.0–31.0
    Typical DP (approx.)450–5501700–20001700–2000
    Ash content (wt%, max)0.50.50.7
    Cold‑water solubilityFull dissolution at 20 °CRequires 60–70 °CRequires 85–95 °C
    Primary functionProtective colloid, binderHigh‑viscosity adhesiveHigh‑strength film, sizing

    Thermal Stability and Processing Window for Ceramic Green Body Binders

    The use of PVA 080-35 as a temporary binder in alumina‑based ceramic tape casting and extrusion introduces a critical thermal debinding step where residual sodium acetate (from saponification) and the inherent decomposition profile of the partially acetylated polymer dictate the allowable heating rate. Thermogravimetric analysis under air (heating rate 10 °C/min, ASTM E1131) reveals a two‑stage mass loss: the first onset at 190–210 °C corresponds to side‑group elimination, while the main‑chain scission accelerates beyond 280 °C with a peak rate at 330–345 °C. In production‑scale debinding furnaces (e.g., electrically heated chamber kilns with ≥ 6 air changes per hour), the recommended ramp from 20 °C to 250 °C must not exceed 0.5 °C/min when green density exceeds 2.2 g/cm³ and section thickness surpasses 8 mm. Failure to observe this thermal profile results in blistering and delamination, caused by rapid vaporization of acetic acid and water trapped in the pore network. Replacing PVA 080-35 with a fully hydrolyzed grade (PVA 1799) extends the debinding window by approximately 20 °C but compromises green strength: three‑point bending tests on dried green tapes (bar width 25 mm, span 80 mm, ASTM C1161‑18) routinely deliver 4.8–5.5 MPa for 5 wt% PVA 080-35 versus 2.8–3.3 MPa for an equivalent addition of PVA 1799, due to the higher hydroxyl density of the latter leading to stiffer but more brittle particle‑binder bridges. Extrusion trials on a vacuum pug mill (L/D = 8, auger speed 25 rpm) indicate that the plasticizing effect of moisture becomes acute: a dough moisture range of 16–18 % is mandatory; below 15 % the extrusion pressure exceeds 12 MPa, causing frictional heating and premature binder degradation, while above 19 % the extrudates exhibit slumping and loss of dimensional tolerance. Paper surface sizing with PVA 080-35 exploits its film‑forming capacity and strong adhesion to cellulosic fibres. In a metering size press running at 1200 m/min, a sizing solution of 6–8 % solids prepared at 50 °C and combined with oxidized starch at a 60:40 starch‑PVA dry ratio yields a Cobb‑60 water absorptiveness (ISO 535:2014) of 22–28 g/m², compared with 38–45 g/m² for starch‑only formulations on the same lightweight coated base paper. The IGT dry pick velocity (ISO 3783:2023, Westvaco method, spring‑loaded pendulum) improves from 1.2 m/s to 1.9 m/s, indicating a substantial reduction in lining probability during offset printing. However, the surface tack of the PVA film increases under ambient relative humidity above 65 %, leading to blocking when reel‑hard tensions exceed 1.2 kN/m; therefore, a post‑dryer cooling drum set to 20–25 °C and a starch‑to‑PVA ratio of at least 2:1 is prescribed.
    Table 2. Specification compliance matrix for Sinopec PVA 080-35 (PVA 2280).
    ParameterLimitsTest method
    Alcoholysis degree87.0–89.0 mol%GB/T 12010.5 (back‑titration)
    Viscosity (4 %, 20 °C)3.5–4.5 mPa·sGB/T 12010.2 (rotational viscometer)
    Volatile matter≤ 5.0 wt%GB/T 12010.3 (105 °C, 3 h)
    Ash (as Na₂O)≤ 0.5 wt%GB/T 12010.4 (750 °C muffle furnace)
    pH (4 % solution)5.0–7.0GB/T 12010.7
    Purity≥ 93.0 wt%GB/T 12010.1
    Transmittance (4 %, 650 nm)≥ 90 %Spectrophotometric, GB/T 12010.6

    When Humidity Exceeds 60 % RH – Pre‑Drying and Storage Imperatives

    PVA 080-35 is hygroscopic; equilibrium moisture content at 65 % RH and 23 °C reaches 5.0–5.5 wt%, well above the threshold at which stickiness and reduced glass transition temperature (Tg, dry ≈ 75–80 °C) compromise free‑flowing behaviour in gravimetric feeders. For hot‑melt adhesive compounding on co‑rotating twin‑screw extruders (L/D = 40, 25–30 mm diameter) operating at 150–200 rpm, the powder must be dried in a dehumidified hopper dryer to ≤ 0.3 % moisture content (verified by Karl Fischer coulometry, ISO 15512) before gravimetric feeding, otherwise hydrolysis during melt processing generates acetic acid, which corrodes nitrided screw elements and causes vapour‑induced bubble formation in the extrudate. Where the grade is blended with plasticizers such as glycerol or sorbitol for water‑soluble film casting, storage at ≤ 25 °C and ≤ 50 % RH in sealed aluminised bags is mandatory; opened bags exposed to ambient conditions for more than 4 h absorb sufficient moisture to alter the dissolution temperature of the finished film by +3 °C. Incompatibility arises with borate‑based crosslinkers (borax, boric acid) which complex instantaneously with the 1,3‑diol structure of PVA, leading to gelation before homogenous mixing can be achieved in continuous process lines; if delayed crosslinking is required, glyoxal‑based additives or blocked aldehydes must be substituted. Published data for long‑term aquatic toxicity of this specific grade is limited; however, inherent biodegradability in activated sludge exceeds 60 % after 28 days per OECD 301B, consistent with the general behaviour of partially hydrolyzed PVA polymers.