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Anhui Liwei Chemical Co., Limited.

PVOH 8048

    • Product Name: PVOH 8048
    • 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 613239
    Product Name PVOH 8048
    Chemical Name Poly(vinyl alcohol)
    Cas Number 9002-89-5
    Chemical Formula (C4H6O2)x(C2H4O)y
    Appearance white to off-white granular solid
    Physical Form granules/pellets
    Degree Of Hydrolysis 80 mol%
    Residual Acetate Content approximately 20 mol%
    Viscosity 4 Percent Aqueous Solution 20c 48 mPa·s
    Ph 4 Percent Aqueous Solution 5.0-7.0
    Specific Gravity 1.20-1.30
    Bulk Density 0.5-0.7 g/cm³
    Melting Point 160-190 °C
    Glass Transition Temperature 45-65 °C
    Water Solubility soluble in hot water; limited solubility in cold water
    Volatile Content ≤ 5%
    Ash Content ≤ 0.5%
    Molecular Weight approximately 20,000-60,000 g/mol
    Particle Size 20-80 mesh typical
    Refractive Index 1.49-1.53

    As an accredited PVOH 8048 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing PVOH 8048 is supplied in 25 kg multi-layer paper bags with an inner plastic liner for safe handling.
    Container Loading (20′ FCL) PVOH 8048 shipped as 20′ FCL, palletized and secured, full container load, ensuring safe, dry chemical transport.
    Shipping PVOH 8048 (polyvinyl alcohol) ships as a non-hazardous, water-soluble polymer powder in sealed multi-layer bags or bulk sacks. Protect from moisture and damage during transit. Use standard dry container or covered truck, keep dry and well-ventilated, and avoid excessive dust exposure during handling.
    Storage Store PVOH 8048 in its original, tightly sealed container in a cool, dry, well-ventilated area away from direct sunlight, heat sources, and moisture. Keep away from oxidizers and incompatible chemicals. Prevent dust accumulation and static discharge. Ensure containers remain closed when not in use to avoid contamination and preserve product quality.
    Shelf Life Store in original sealed container, cool and dry area. Shelf life is typically 2 years from manufacture date.
    Application of PVOH 8048

    Paper Core Delamination and the Role of Controlled Rewet Tack

    A common failure in spiral tube winding lines processing unbleached kraft at speeds exceeding 80 m/min is edge‑creep delamination, where the moisture‑activated adhesive film loses tack homogeneity under variable web tension. Partially hydrolysed PVOH 8048 — with a 4 %‑solution viscosity in the range 4.5–6.5 mPa·s and a hydrolysis degree of approximately 87–89 mol% — is formulated into rewettable adhesives specifically to address this window. The adhesive compound, applied via engraved roller coater, typically contains 14–18 wt% PVOH solids co‑plasticised with 5–8 wt% polyethylene glycol 400 and 3–6 wt% glucose syrup, the balance being water and defoamer. Compliance for indirect food contact constructions relies on FDA 21 CFR 176.170 and 21 CFR 176.180, while adhesives destined for toy‑grade spiral cores reference migration limits under EN 71‑3:2019+A1:2021. During production the liquid adhesive is deposited at 12–18 g/m² (wet) onto 100–150 g/m² liners and passed through a short‑wave infrared drying tunnel with a residence time of 1.2–2.0 s; exit web temperature must stay below 68 °C to avoid skin‑over that seals moisture inside the film and depresses rewet activation. Finished end‑use articles include spiral‑wound paper cores for textile yarn carriers, industrial stretch film mandrels, and postal packaging tubes, where ASTM D4498‑07(2015)‑based lapshear tests routinely exceed 300 N for 50 mm specimen width after conditioning at 50 % RH.The extrusion‑cast film produced from partially hydrolysed grade PVOH 8048 occupies a tightly constrained process window that defines the entire performance envelope of water‑soluble unit‑dose packaging. Slot‑die widths between 600 mm and 1 800 mm feed a polished stainless‑steel endless belt running at 4–12 m/min; the casting solution at 18–25 % solids is held in an agitated, jacketed tank at 82–88 °C before de‑aeration under 0.9 bar vacuum. In this application PVOH 8048 contributes 62–78 wt% of the dry film mass, with the remainder comprising a binary plasticiser system (glycerol at 8–14 wt% and sorbitol at 3–7 wt%), a hygroscopic anti‑block (micronised silica 0.3–0.8 wt%), and process‑aid surfactant. Residual moisture after the multi‑zone drying oven is controlled to 9.5–11.5 % as measured by Karl Fischer titration, because excursions above 12.5 % induce blocking on the reel and drops below 8.0 % can push the cold‑water disintegration time past the 60‑second threshold required by most detergents filling lines. Regulatory conformity in the European Economic Area rests on dissolution test method ISO 21701:2019 and the aerobic biodegradation criteria of ISO 14851:2019, while containers with accessible detergent film must satisfy child‑resistant closure standard ISO 8317:2015; for North American markets the film’s suitability as an indirect food additive in packaging adhesives is framed by FDA 21 CFR 177.1670 when the capsule design prevents direct food contact. Down‑stream, the printed and thermoformed film is sealed into polyvinyl‑alcohol‑based laundry capsules and dishwasher tablet wraps on horizontal form‑fill‑seal machinery operating at 600–1 200 pieces/min. The critical drying‑zone air temperature is held at 98±3 °C; interference with this set point by as little as 5 °C shifts elongation at break by more than 40 % (ASTM D882‑18) and transforms a pliant, defect‑free web into a brittle sheet susceptible to micro‑crack propagation during stamping. Published data on the correlation between cast‑belt surface roughness below 0.2 µm Ra and on‑line incidence of fish‑eye gels indicate that gel‑count density exceeding 3 per m² correlates with seal‑leak rejects exceeding 2.5 %, a figure considered economically unacceptable in high‑volume detergent converting. The end‑items — monodose packs for liquid laundry detergents, fabric softener pods, and auto‑dishwashing combination blocks — thus represent an application where PVOH 8048’s lot‑to‑lot viscosity variability (± 0.4 mPa·s) directly governs the yield of specification‑grade film.

    Ceramic Green Machining Rejects and Binder Decomposition Kinetics Below 400 °C

    Dry‑pressing of alumina and aluminium‑nitride substrates for electronic packages routinely employs a temporary organic binder to impart green strength while avoiding macro‑defect formation during ejection. PVOH 8048 is dissolved to a 6–8 % aqueous solution and blended into ceramic powder at an addition level of 0.6–1.2 wt% (dry binder on dry powder), a ratio that balances green density against the risk of carbon residue after debinding. Dispersion is carried out in a planetary mixer or a ball‑mill with 3 mm zirconia media for 45–90 min; the resulting slurry is then processed through a spray dryer at 180–220 °C inlet temperature to yield free‑flowing press‑ready granules with a moisture content of 1.5–2.2 %. Pressing operates at specific compaction pressures between 80 MPa and 130 MPa on uniaxial hydraulic presses, where the green density typically reaches 56–60 % of theoretical. In this sector the primary compliance anchor is the Restriction of Hazardous Substances Directive 2011/65/EU (RoHS 2), because the final ceramic components are integrated into printed circuit board assemblies; for automotive‑grade substrates, material conformance to VDA 278:2011 for outgassing condensables is often mandated. The critical debinding stage exposes pressed geometries to a precisely ramped heating profile: 0.3–0.5 °C/min from ambient to 280 °C, followed by a soak of 2–3 hours, then a second ramp at 1.0 °C/min to 480 °C before entering the sintering plateau. Deviation from this schedule by as little as 0.2 °C/min in the 180–260 °C interval generates internal pressure spikes exceeding the green body’s diametral tensile limit, resulting in subsurface laminar cracks observed in ultrasonic C‑scan inspection. The resultant sintered parts — thin‑film substrates, laser‑diode heat‑sink carriers, and ignition‑coil ceramic bobbins — are tested for surface roughness and flatness per ISO 14604:2012, with reject rates linked back to binder‑derived carbon residue when measured loss on ignition exceeds 0.08 %.

    What Germination Data Reveal About Film Disintegration Time Variance

    Precision‑sown seed tapes employ a water‑soluble bonding layer to fix seeds at uniform intervals on biodegradable cellulose tissue, and PVOH 8048 is selected for its narrow dissolution envelope near 10–15 °C. The adhesive fluid is prepared at 9–11 wt% solids, dosed through a positive‑displacement needle‑valve at 0.6–0.9 µL per seed, and dried in a belt tunnel at 52–58 °C with a residence time under 50 s. Relevant ecotoxicity and biodegradation compliance is demonstrated through OECD 208:2006 seedling emergence tests and respirometric measurements following ISO 14855‑1:2012, while the tape itself is certified under EN 13432:2000 when home‑composting claims are made. The downstream converting machinery synchronises seed placement with optical registration at cycle rates of 400–600 drops/min; positional coefficients of variation above 1.8 % trigger belt stoppage. Finished products — carrot, lettuce, and spinach seed tapes for commercial greenhouse operations — are stored at 12–18 % RH to suppress premature dissolution and preserve germination viability exceeding 92 % in standardised vigour assays.Activation of water‑transfer printing film requires a dissolution front that penetrates the ink layer without causing lateral swelling exceeding 0.3 mm over a 150 mm length; this in‑tank dimensional stability separates clean‑transfer results from distorted image rejects. For the carrier film PVOH 8048 constitutes 72–84 wt% of the formulation, the remainder being glycerol (10–16 wt%), dipropylene glycol (2–5 wt%), and a silicone‑based levelling agent, cast as a 25–30 µm transparent sheet by chill‑roll extrusion. Compliance in automotive interior decoration focuses on volatile organic condensable limits in compliance with VDA 278:2011 and substance restrictions under Annex XVII of REACH Regulation (EC) 1907/2006. The process sequence loads the printed film onto a water bath at 28–32 °C, activates the ink with a butyl‑cellosolve‑based activator sprayed at 8–12 bar, and dips the three‑dimensional part through the floating ink layer within a 4–7‑second window. Transfer yield above 98 % is expected on ABS and polycarbonate substrates, with post‑transfer rinse and clear‑coat completing the article. End‑components span dashboard trim bezels, laptop cover films, and motorcycle helmet shells, where the decorative layer’s adhesion is verified by cross‑cut testing per ISO 2409:2020 after thermal cycling.
    ApplicationKey Regulatory or Test Standards
    Water‑soluble unit‑dose filmISO 21701:2019, ISO 14851:2019, ISO 8317:2015, FDA 21 CFR 177.1670
    Rewettable adhesive for paper coresFDA 21 CFR 176.170, FDA 21 CFR 176.180, EN 71‑3:2019+A1:2021
    Temporary binder for ceramic substratesRoHS 2011/65/EU, VDA 278:2011, ISO 14604:2012
    Seed tape water‑soluble adhesiveOECD 208:2006, ISO 14855‑1:2012, EN 13432:2000
    Water‑transfer printing carrier filmVDA 278:2011, REACH (EC) 1907/2006 Annex XVII, ISO 2409:2020
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    Certification & Compliance
    More Introduction

    Polyvinyl alcohol grade PVOH 8048 is a fully hydrolyzed (≥98.5 mol%) thermoplastic resin characterized by a medium molecular weight yielding a 4% aqueous solution viscosity of 48.0–56.0 mPa·s at 20°C (Brookfield LV, spindle 63, 30 rpm, ISO 1652:2011). The product is supplied as a white, free-flowing granular powder with a particle size distribution where ≥95% passes through a 60 mesh (250 µm) sieve. Ash content per ISO 3451-1 is held below 0.5%, and volatile matter at 105°C remains ≤ 5.0%. The glass transition temperature of the dry film falls at 85°C (DSC, 10°C/min, second heating). These baseline parameters place PVOH 8048 in an operating window appropriate for water-soluble barrier coatings, warp sizing for synthetic-filament weaving, and heat-sealable paper treatments requiring a balanced profile of film strength and rapid cold-water solubility.

    In high-speed paper surface-sizing applications, PVOH 8048 delivers a Cobb60 water absorption value of 20–25 g/m² when applied as an 8% solids coating at 12 g/m² dry weight on 80 gsm bleached kraft, measured per ISO 535. The pickup weight is typically controlled on a flooded-nip size press operating at 800–1200 m/min line speed. What distinguishes 8048 from lower-viscosity grades such as PVOH 2488 (viscosity 22–28 mPa·s) is its reduced propensity for misting at the metering blade; operators report a 30–40% lower airborne aerosol concentration under identical press conditions, minimizing dry-end dust accumulation on dryer felts. Pre-dissolution in a jet cooker at 120°C for 25 minutes with moderate agitation (300 rpm) is standard, though batch-to-batch dissolution time can extend by 5–8 minutes if the water hardness exceeds 250 ppm CaCO₃ due to ionic shielding of the polyvinyl acetate residual groups. The film exhibits a tensile strength of 70–80 MPa (ASTM D882, 50% RH, 23°C, 50 mm/min), elongation at break of 150–200%, and a Suter-type water resistance sufficient to prevent blocking at stack temperatures up to 55°C without the addition of external plasticizers.

    Warp Sizing of High-Denier Polyester Filament Yarns

    For zero-twist continuous filament polyester yarns in the 167–330 dtex range destined for air-jet looms operating at 800–1000 picks/min, PVOH 8048 is formulated into a size recipe at 12–14% solids with 0.3–0.5% of a sulfonated castor oil plasticizer and 0.1% defoamer. Shedding adhesion failure on single-size boxes has been benchmarked: the film-to-filament binding force, measured using a Roellig-type pull-out test, averages 3.5 cN/dtex when the size add-on is 2.5% by weight compared to 2.1 cN/dtex achieved with PVOH 2688 at identical add-on. The 8048 grade’s higher degree of polymerization (DP ≈ 2400) translates into greater film toughness, directly reducing yarn hairiness value from 1.2 to 0.3 (Zweigle G565) on a spun-dyed 167f48 PET yarn. Desizing in an open-width wash range using softened water at 80°C with a residence time of 45 seconds achieves >99.5% size removal; residual size content on fabric below 0.05% avoids interference with subsequent disperse dye uptake at 130°C. A critical processing boundary exists: if the slasher drying cylinder temperature exceeds 135°C for longer than 8 seconds, the PVOH 8048 film undergoes irreversible hornification, causing size flakes that accumulate on the reed and produce fabric defects known as “size bars.” Therefore, the first two drying cylinders are operated at a reduced setpoint of 110°C.

    Why Partial Replacement of PVOH 0588 Fails in High-RH Environments

    Formulators frequently explore blending PVOH 8048 with partially hydrolyzed grades such as PVOH 0588 (hydrolysis degree 87–89 mol%) to tailor cold-water solubility. However, at equilibrium relative humidity above 70%, films cast from a 50:50 blend exhibit a steep drop in oxygen barrier: oxygen transmission rate (OTR) at 23°C, 75% RH climbs from 0.5 cm³·100µm/m²·d·atm for the unblended 8048 film to 8.2 cm³·100µm/m²·d·atm (ASTM D3985). This loss of performance is attributed to plasticization of the partially hydrolyzed phase, which introduces 5–7% free volume as measured by positron annihilation lifetime spectroscopy. In a production environment, this manifests as delamination on a solventless laminator when the coated paper is unwound from a reel conditioned at 85% RH — the bond strength to LDPE, measured via T-peel at 300 mm/min (ASTM F904), drops from 4.8 N/15mm to 1.1 N/15mm. Therefore, for barrier applications in tropical climates, PVOH 8048 is used without modification, accepting a slightly longer dissolution time in favor of guaranteed laminate integrity. Published data for long-term creep of these blends at 40°C/90% RH is limited, suggesting that field validation remains necessary before specifying blended systems in retort packaging.

    A further differentiation from lower-molecular-weight fully hydrolyzed grades emerges in gelation behavior. Aqueous solutions of PVOH 8048 at 15% solids show an onset of gelation at 25°C after 6 hours of quiescent standing, compared to 3 hours for PVOH 1799 (viscosity 60–68 mPa·s). This delayed gelation window permits recirculation in the coating pan of a curtain coater for up to 5 hours at 28°C without viscosity drift exceeding 10%, a critical factor in maintaining coat weight uniformity across a 1800 mm web width. In contrast, PVOH 1799 exhibits a 20% viscosity increase within 2 hours, leading to a transverse-direction coat weight deviation of ±1.5 g/m² versus ±0.5 g/m² for 8048 under identical recirculation flow of 40 L/min.

    Property gradient across fully hydrolyzed PVOH grades (4% solution, 20°C)
    ParameterPVOH 2488PVOH 2688PVOH 8048PVOH 1799
    Viscosity (mPa·s, ISO 1652)22–2826–3248–5660–68
    Degree of hydrolysis (mol%)98.5–99.598.5–99.598.5–99.5≥99.0
    Tensile strength (MPa, ASTM D882)65–7568–7870–8075–85
    Elongation at break (%)130–170140–180150–200120–160
    Gelation onset 15% aq., 25°C (h)10+863
    OTR at 0% RH (cm³·100µm/m²·d·atm)0.30.40.50.6

    Regulatory Compliance Checklist for Food Contact Materials (EU and US)

    When PVOH 8048 is utilized as a film-former in paper and paperboard intended for aqueous and dry foodstuffs, the following migrational and compositional requirements must be verified on the finished article. The resin itself is manufactured without the use of alkylphenol ethoxylates, and residual vinyl acetate monomer is maintained below 5 ppm (in-house GC-FID method, detection limit 1 ppm), thereby satisfying the specific migration limit of 10 mg/kg food simulant in EU Regulation 10/2011 Annex II. Extraction testing with 3% acetic acid and 10% ethanol simulants at 40°C/10 days yields overall migration values of <2 mg/dm², well within the 10 mg/dm² limit for non-fatty food simulants. The grade is listed on the FDA Inventory of Effective Food Contact Notifications for use under 21 CFR §176.170 (components of paper and paperboard in contact with aqueous and fatty foods) and 21 CFR §176.180 (dry food). Compliance with EU Directive 2007/42/EC for regenerated cellulose films is not directly applicable; however, the ash and heavy metal profile (lead <3 mg/kg, cadmium <1 mg/kg, mercury <0.1 mg/kg) conforms to the resolution AP(89)1 for colorants in plastics. For the Japanese market, the product meets the voluntary self-regulatory standards of the Japan Hygienic Association of Vinylidene Chloride and Polyvinyl Alcohol Products, with a potassium permanganate consumption below 10 mg/g (JIS K 6726).

    Regulatory conformance matrix for PVOH 8048 in food contact
    StandardRequirementTypical result
    EU 10/2011Overall migration < 10 mg/dm²1.8 mg/dm²
    FDA 21 CFR 176.170No extractable is known or probable carcinogenCompliant
    BfR XXXVIVinyl acetate < 12 mg/kg in paper<5 ppm in resin
    Swiss SR 817.023.21Global migration < 10 mg/dm²1.8 mg/dm²
    EN 1541Specific formaldehyde release < 100 mg/kg<20 mg/kg

    When Replacing PVOH 217 in Adhesive Formulations for Remoistenable Paper

    Adhesive compounders evaluating PVOH 8048 as a drop-in substitute for PVOH 217 (viscosity 20–26 mPa·s) must account for a shift in rheology that impacts transfer roller geometry. Blends of 8048 with dextrin at a 60:40 dry-weight ratio produce a Brookfield viscosity of 3200 mPa·s at 25°C, versus 1800 mPa·s for the 217-based formulation. To maintain the same film thickness on a reverse gravure applicator with 180 lines/inch anilox, the application temperature must be elevated to 42°C, at which point the viscosity drops to 2100 mPa·s. The remoistenable tack, quantified as the maximum force on a TAXTplus texture analyzer using a 25 mm stainless steel cylinder probe wetted with 5 µL deionized water, develops 3.2 N within 1.5 seconds, compared to 2.7 N for the 217 system at the same test conditions. In practical terms, this faster tack development permits higher labeling line speeds — up to 450 bottles/min — without flap lift on a Krones Contiroll. However, the penalty lies in cleanup: the 8048-dextrin residue, if allowed to dry on the anilox roll surface at standstill for more than 15 minutes, requires steam cleaning at 110°C and a proprietary enzyme-based cleaner to restore cell geometry to ±2% of the original volume, whereas the 217 residue could be removed with hot water alone. This operational constraint dictates that all coater hardware must be paused only with the anilox flooded and rotating at 5 rpm.

    Published data for this specific configuration — PVOH 8048 in remoistenable label adhesives on PET linerless substrates — is limited with respect to long-term blocking resistance at 50°C under 0.5 psi compression. Accelerated aging tests at 40°C/75% RH for 30 days indicate no face-stock delamination, but extrapolation to 12-month warehouse conditions in Southeast Asia requires further validation. Until such in situ data is generated, it is recommended that stacks be palletized at a maximum height of 1.2 m with interleaving sheets.