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Anhui Liwei Chemical Co., Limited.

Polyvinyl Alcohol (PVA) for Remoistenable Adhesives

    • Product Name: Polyvinyl Alcohol (PVA) for Remoistenable Adhesives
    • 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 850140
    Chemical Name Polyvinyl Alcohol
    Cas Registry Number 9002-89-5
    Chemical Formula (C2H4O)n
    Physical Form White to off-white granular or powder
    Solubility Soluble in hot water; sparingly soluble in cold water
    Degree Of Hydrolysis Typically 85-99%
    Molecular Weight Approximately 20,000-200,000
    Viscosity 4 Solution At 20 C 4-60 cP depending on grade
    Ph 4 Solution 5.0-7.0
    Film Formation Forms clear, flexible, and tough films upon drying
    Remoistenable Adhesion Develops tack when rewetted with water and bonds on drying
    Glass Transition Temperature Approximately 70-85°C
    Tensile Strength High tensile strength, typically 30-60 MPa
    Elongation At Break Typically 100-400% depending on plasticizer content
    Storage Stability Stable under normal dry storage conditions; moisture-sensitive

    As an accredited Polyvinyl Alcohol (PVA) for Remoistenable Adhesives factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Polyvinyl Alcohol (PVA) for remoistenable adhesives, supplied as 25 kg net in multi-layer paper bags with polyethylene liner.
    Container Loading (20′ FCL) 20′ FCL container loaded with PVA for remoistenable adhesives, packed in sealed bags on pallets, securely stowed.
    Shipping Polyvinyl Alcohol (PVA) for remoistenable adhesives ships as a non-hazardous, water-soluble powder. Pack in sealed multi-layer bags or drums to prevent moisture absorption. Store in dry, ventilated areas; avoid dust accumulation. Transport by standard freight with proper labeling. Ensure containers remain intact to prevent contamination and spillage during transit.
    Storage Store Polyvinyl Alcohol (PVA) for remoistenable adhesives in a cool, dry, well-ventilated area inside tightly sealed original containers. Protect from moisture, humidity, and direct sunlight. Avoid temperatures above 25°C and sources of ignition. Under proper conditions, shelf life is typically 12–24 months from manufacture date.
    Shelf Life Shelf life is typically 2 years when stored sealed in a cool, dry area away from moisture.
    Application of Polyvinyl Alcohol (PVA) for Remoistenable Adhesives

    At line speeds exceeding 300 m/min on rotary envelope folding equipment, the remoistenable adhesive film experiences an abrupt transition from a 22–28% solids aqueous solution to a dry, non-blocking layer within a forced-air drying tunnel spanning less than 4.5 metres. Partially hydrolysed polyvinyl alcohol (degree of hydrolysis 86–89 mol%, 4% aqueous solution viscosity 20–30 mPa·s at 20°C) constitutes 45–60 wt% of the dry adhesive matrix, compounded with glycerine at 6–12 wt% as humectant-plasticiser and a polyether-modified siloxane defoamer at 0.05–0.15 wt% to suppress micro-foam generation during pan-fed gravure or three-roll reverse-kiss application. Adhesive open time—the interval between roll transfer and paper fibre strike-through—is governed by wet-film viscosity held at 1800–3500 mPa·s (Brookfield RV, Spindle 3, 20 rpm) and is deliberately shortened by infrared pre-heating of the paper stock to 38–45°C immediately upstream of the applicator, a practice that reduces glue migration into the furnish of 70–90 g/m² bleached kraft paper and prevents wrinkled envelope back panels. The dried film must exhibit zero tack at 40°C/80% RH simulated warehouse storage yet regenerate a peel adhesion of at least 2.5 N/25 mm (ASTM D1876, T-peel, 300 mm/min jaw separation) within 3 seconds of contact with a water film of 8–12 µm thickness delivered by a lick-strip moistener. Compliance with USPS DMM 507.2.5 automated mail processing requires that sealed flaps resist shear forces generated during AFCS 200 facing-and-cancelling machinery without fibre-tear failure below 0.7 N/mm linear force. Production-run observations on gear-driven W+D 628 and F.L. Smithe Champion envelope folders document that adhesive viscosity drift exceeding ±200 mPa·s during an 8-hour shift triggers variable coating weight (target 3.5–4.5 g/m² dry) and can be traced to progressive evaporation loss at the pan lip; closed-loop solvent replenishment actuated by a Coriolis mass flow meter reduces adhesive-on-paper variation to ±0.2 g/m². The terminal product is a standard #10 commercial envelope, a window envelope with polyester film patch, or a self-sealing security envelope where the remoistenable adhesive stripe is patterned alongside a latex cohesive.

    What Limits Open Time on High-Speed Label Converting Lines Using Remoistenable Adhesive?

    When a UV-flexo inline converting press is configured to produce pre-gummed label stock for lick-and-stick coupon sheets or collectible sticker books, the adhesive layer must remain non-tacky through festoon accumulation and die-cutting but reactivate instantly under a saliva-style moisture source. The critical processing parameter is not adhesion strength alone but the interval during which an applied water droplet of 10–15 µL/cm² generates sufficient solubilisation to raise the peel force from <0.1 N/25 mm to the required re-wet bond value. Formulations based on a blend of low-molecular-weight PVA (86–88 mol% hydrolysis, viscosity 8–14 mPa·s) and a modified starch extender (acid-thinned maize starch, 15–25 wt% of dry binder) shift the re-moistening activation curve. PVA content in the dry film is maintained at 30–45 wt%, balanced against dextrin and a poly(ethylene glycol) plasticiser (Mw 400) at 4–8 wt%. Open time on a Gallus Labelmaster or similar narrow-web line is measured as the lag between moisture application and the onset of a 1.5 N/25 mm bond to uncoated paper (FINAT FTM-1, modified for remoistening with a 5 µm digital water transfer roller). If open time exceeds 2.5 seconds, the line speed of the downstream packaging machine drops below the contractual 400 labels/min; a formulation that hydrates too quickly will cause blocking in rolls stored at 30°C/70% RH. Compliance with EN 71-3 migration limits for heavy metals and FDA 21 CFR 176.170 (indirect food additive: components of paper and paperboard in contact with aqueous and fatty foods) applies to gummed sheets intended for secondary food-packaging promotional inserts. Coating is performed via a closed-chamber doctor-blade gravure system using a ceramic anilox roll (80–100 l/cm, 12–18 cm³/m² volume), delivering a dry deposition of 6–9 g/m² onto a 68–75 µm supercalendered release paper; the coating line incorporates a two-zone flotation dryer with nozzle velocities of 25–30 m/s and web temperature not exceeding 95°C to prevent dextrin browning. The end products are pre-gummed self-adhesive sheets, lottery wallet stamps, and promotional stickers requiring saliva-activable adhesion without synthetic acrylic chemistry.

    Ice-Bucket Durability and Re-Wet Tack of Beer Bottle Label Adhesives

    Cooler-wall condensation and long-duration submersion in ice-water mixtures place opposing demands on the remoistenable adhesive coated onto metallised paper or wet-strength paper facestock used for returnable beer bottles. The adhesive must resist wash-off at 0–4°C for at least 45 minutes (simulated consumer ice-bucket dwell) yet dissolve completely during industrial caustic washing at 80°C in a 2.5% NaOH bath within 60 seconds, a requirement codified in the European PET Bottle Platform (EPBP) design-for-recycling protocol for pressure-sensitive and water-soluble label adhesives. A ternary dry-film matrix consisting of fully hydrolysed PVA (98–99 mol%, 56–70 cps viscosity in 4% solution), a 10–20 wt% addition of partially hydrolysed PVA (87–89 mol%) to accelerate re-wettability, and a boric acid/borax complex applied at 0.15–0.35 wt% of total adhesive solids forms transient borate-didiol crosslinks that increase the film’s cold-water resistance at neutral pH but rapidly dissociate in hot alkaline media. The rheometric signature, acquired on a 25-mm parallel-plate geometry at 25°C with a frequency sweep from 0.1 to 100 rad/s, reveals a crossover of G′ and G″ at an angular frequency ω near 2–5 rad/s, indicating a weakly associated network that flows under the high-shear doctor-blade application (gap 80–120 µm) but recovers a storage modulus above 10⁴ Pa within 0.2 seconds of film drying. Industry practice on a BMB K2 cassette-type coating head for label stock involves depositing 5–7 g/m² (dry) of adhesive onto 75–80 µm wet-strength paper, followed by multi-zone convective drying with web temperature ramping from 60°C to 115°C and dew-point-controlled recirculation to prevent surface skinning that would block re-wetting. Release testing under FDA 21 CFR 175.105 (indirect food contact for adhesive components) and EN 12092 (adhesive viscosity determination) is supplemented by a proprietary ice-bath peel test: after 30 minutes at 1°C, the 180° peel force must remain above 4 N/25 mm on glass. The terminal labels are applied to 330 mL and 500 mL returnable glass bottles, where the adhesive film survives the return-loop humid conditions and is fully removed during bottle-wash caustic immersion without leaving residues that would compromise bottle inspection cameras.

    Postage stamp gumming represents a regime where coating weight uniformity and freedom from curl are the dominant specifications, not bulk adhesive strength. Single-stamp gum layer dry mass targets 1.8–2.2 g/m² of a highly purified, gel-free PVA (full hydrolysis, 98.0–99.5 mol%, viscosity 4–8 mPa·s at 4% concentration) with less than 0.05% ash, applied by a deep-gravure etching station downstream of the intaglio printing cylinders on a rotary press. The wet adhesive enamel consists of PVA at 6–9 wt% in deionised water, optionally with 0.5–1.0 wt% of propylene glycol to retard drying-induced brittleness and an acetylenic diol surfactant at 0.03 wt% to ensure wetting on the sized stamp paper. Curl control relies on coating-side-only application without re-wetting the paper’s back side and maintaining dryer tension below 30 N/m across a suspended-contact flotation dryer where air bars at 80–105°C support the web; residual moisture is held at 3.5–4.5% (Karl Fischer titration) at rewind to balance dimensional stability. Adhesion activation is tested by a UPU LR48-compliant laboratory lick strip device that applies a precisely metered 7 µL/cm² water layer and measures the time to reach a peel force of 2.0 N/25 mm on envelope paper, a value that must fall between 1.0–3.0 seconds. Multiple postal authorities mandate traceability of gum formulation (trace metals: Pb ≤ 3 mg/kg, As ≤ 1 mg/kg, per USPS Publication 52 and relevant philatelic standard requirements). The resulting product is a commemorative or definitive postage stamp sheetlet, a self-adhesive stamp with silicone-liner release, or a first-day cover adhesive stripe; all require archiving stability of at least 50 years under dark storage at 21°C, 50% RH without gum discolouration or loss of re-activation capability.

    Flexible paper mailers and corrugated fibreboard cartons bonded with water-activated tape (WAT) demand a remoistenable adhesive that delivers immediate fixture strength on kraft paper surfaces and resists failure under cyclic humidity typical of intercontinental shipping. Unlike cold-applied pressure-sensitive tapes, the kraft paper-backed gummed tape employs a dry film composed of 40–55 wt% partially hydrolysed PVA (87–89 mol%, 25–38 cps), 35–45 wt% modified potato dextrin, and 8–15 wt% of a polyhydric plasticiser such as glycerol or sorbitol syrup (70% solids); the PVA fraction provides cohesive strength and resistance to adhesive ooze at summertime container temperatures exceeding 60°C. The formulation is applied on a dedicated tape-coating line through a slot-die at a coat weight of 25–35 g/m² (dry) onto 50–70 g/m² extensible kraft that has been micro-creped to 10–15% stretch; drying passes through a three-section tunnel (90°C → 110°C → 85°C) with total residence time of 8–12 seconds before rehumidification to 6–8% moisture to prevent embrittlement. Activation occurs in the user’s automated tape dispenser, where a heated water bath at 35–45°C with a kiss-brush applicator wets the gum layer for 1.2–1.8 seconds. Performance is benchmarked per ASTM D5486/D5486M (standard specification for pressure-sensitive tape for packaging, with supplemental remoistening protocol) and ASTM D5749 (standard specification for reinforced and plain gummed tape for sealing and securing); a freshly sealed single-wall C-flute corrugated box must sustain a 90° peel adhesion on kraft greater than 12 N/25 mm and hold top-lid seam integrity during a 24-hour ASTM D4332 conditioning cycle from -10°C to 40°C/90% RH. Machine operators report that incomplete removal of foam formed during high-shear recirculation in the holding tank leads to skip-coat defects, a failure eliminated by equipping the supply loop with an ultrasonic de-foaming chamber. The terminal packaged goods are plain and reinforced WAT rolls for e-commerce box sealing, heavy-duty double-wall container closure, and asbestos-free fire-resistant tape variants for logistics compliance.

    Remoistenable Pre-Wallpaper Paste and Residual Moisture Equilibrium

    Pre-pasted wallcoverings with a dry PVA-based adhesive on the reverse side eliminate mixing errors on the job site and require only activation with a water trough. The adhesive layer is designed to activate within 10–20 seconds of immersion and remain repositionable on the wall for 15–25 minutes, achievable by a blend of medium-viscosity PVA (86–89 mol%, 45–55 cps) at 18–25 wt% of total dry binder, carboxymethyl cellulose (sodium salt, degree of substitution 0.7–0.9) at 25–35 wt%, and kaolin clay filler at 30–40 wt%, with a biocide package including 1,2-benzisothiazolin-3-one (BIT) at 150–250 ppm on total formulation weight to satisfy EN 15457 (fungicidal efficacy in wallcovering adhesives). The adhesive is deposited by a multi-roller gravure station as an aqueous dispersion at 35–40% solids content onto a non-woven substrate or paper scrim, immediately followed by a forced-air/convection dryer in which web surface temperature is not permitted to exceed 105°C to prevent CMC chain scission. Coating weight ranges from 15–25 g/m² dry, calibrated by on-line beta-gauge scanning with a closed-loop adjusting the doctor blade angle. Regulatory compliance is verified against EN 233 (wallcoverings in roll form) for washability and colour fastness, and against REACH Annex XVII for organotin compounds in polymeric materials. The dried pre-pasted roll must maintain equilibrium moisture at 5–8% when stored at 23°C/50% RH; a moisture level below 4% causes flaking during unrolling, while levels above 9% lead to premature activation in humid climates and permanent adhesion to the front face of the underlying lap. Published data on long-term activation uniformity for this specific PVA/CMC configuration under alkaline wall surfaces with pH > 10 are limited; field reports suggest that increased CMC content extends open time but reduces shear resistance when humidified. End-use formats include woven textile wallcoverings, heavy-paste vinyls with pre-gummed non-woven backing, and consumer-grade prepasted murals.

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    Certification & Compliance
    More Introduction

    How degree of hydrolysis governs tack re-activation kinetics

    The fraction of residual acetyl groups in partially hydrolyzed polyvinyl alcohol dictates the temperature at which chain segments hydrate and disentangle. Grades carrying 87–89 mol% hydrolysis values dissolve sufficiently in cold water (10–25°C) to re-establish adhesive contact within seconds, whereas fully hydrolyzed types (> 98 mol%) require water temperatures exceeding 80°C—a thermal load unavailable on high-speed inserting or labelling lines. When a dried PVA film of 4–6 µm thickness is re-wetted on 60 g/m² uncoated envelope kraft, the time to develop 50% fiber tear is measured as low as 1.5 s for a 88 mol% grade versus > 12 s for a 99 mol% grade under TAPPI UM 666 conditions (23°C, 50% RH). This performance gap intensifies on machine decks operating above 30,000 envelopes per hour: insufficient tack within the 0.2–0.4 s compression dwell time of a flap closer results in seal failures requiring rework. The phenomenon is linked to the hydrogen-bond network density in the crystalline domains, which expands rapidly as acetyl content falls below 2 mol%, shifting the onset of gel-phase mobility upward by 40–50°C.

    Polyvinyl alcohol grades engineered for remoistenable adhesive films are predominantly partially hydrolyzed (87–89 mol%) with low-to-medium viscosity-average polymerization degrees between 500 and 1700. These parameters deliver a balance of cold-water solubility sufficient for rapid tack re-activation upon moisture contact, yet maintain a cohesive film that resists blocking under ambient humidity below 65% RH. Commercial examples include Poval™ grades 205, 217, 224E, and Selvol™ 205 S, employed globally in envelope back-flap gumming, label stock, and postage stamp coatings. Unlike natural-product adhesives such as dextrin, which depend on cooked starch gels, PVA forms transparent, non-telescoping films that do not support mold growth without biocides—simplifying conformance to FDA 21 CFR 175.105 for indirect food contact. Additionally, PVA-based remoistenable films exhibit tensile strengths 2–3 times higher than dextrin films at equivalent coat weight, per ASTM D638 modified for free films, largely because of the linear polymer backbone free of amylopectin branching.

    Model Specifications and Physicochemical Benchmarking

    Table 1 collates the physical constants of representative partially hydrolyzed PVA grades supplied for remoistenable compounding. Viscosity is measured on a 4% aqueous solution at 20°C per JIS K6726, while hydrolysis degree is determined by saponification back-titration under ISO 15023-2:2019. Ash content and volatile matter are capped to minimize inorganic residues that could impair film clarity and re-wetting uniformity on doctored gravure rolls.

    Grade Designation Viscosity (mPa·s) Hydrolysis (mol%) Ash (%) Volatile Matter (%) pH (4% aq.)
    PVA‑205 5.0–6.0 86.5–89.0 ≤ 1.2 ≤ 5.0 5.0–7.0
    PVA‑217 20.5–25.5 86.5–89.0 ≤ 1.5 ≤ 5.0 5.0–7.0
    PVA‑224E 44.0–52.0 86.5–89.0 ≤ 1.5 ≤ 5.0 5.0–7.0
    PVA‑226E 60.0–72.0 86.5–89.0 ≤ 1.5 ≤ 5.0 5.0–7.0

    Selection among these models is governed by the coating method. Low-viscosity grade 205 permits solids contents up to 25% while retaining handleable flow for smooth-rod Mayer applicators; higher-viscosity 224E and 226E are reserved for slot-die or reverse-roll coating heads where high-shear thixotropy can be managed and greater final film toughness is required for large-format mailer flaps exposed to burst-stress during inserting.

    On modern envelope production lines (W+D 102, F.L. Smithe SW series, or Winkler+Dunnebier Helios 600), the adhesive solution, typically at 12–18% solids, is deposited via a segmented ceramic anilox roll with a cell volume of 8–12 cm³/m² to yield a dry coat weight of 2–4 g/m². Maintaining a Brookfield RVT viscosity between 800 and 1500 mPa·s (spindle #3, 20 rpm, 25°C) is critical: excursions above 2000 mPa·s starve the metering nip, producing lane-shaped voids in the gummed band and subsequent remoistening failure rates above 5%. Drying tunnel air temperatures are set at 120–140°C for a residence time of 2–4 s, driving residual moisture below 5% in the outgoing film. Over-drying that pushes web surface temperatures past 160°C must be avoided because thermally driven acetalization of residual acetyl groups generates inter-chain crosslinks that permanently depress water solubility; on infrared thermography surveys, hot-spot zones exceeding 155°C have been correlated with re-wetting tack reductions of 30–40%. Foam within the recirculation tank—often originating from high-shear cavitation at the doctor chamber—is suppressed by dosing 0.05–0.15 wt% of a non-silicone defoamer (e.g., polyether-based) active in alkaline pH, but silicone-based additives are avoided because they migrate to the film surface and yield a hydrophobic bloom that extends tack-initiation time beyond 4 s.

    When dextrin-based formulations fail in high-speed remoistening equipment

    Dextrin, a roasted starch derivative, has dominated low-cost remoistenable applications for decades, yet its performance envelope collapses on lines running above 30,000 envelopes per hour. Native dextrin films remain hygroscopic; at equilibrium moisture contents above 12%, they plasticize and cold-flow under pack pressure, causing telescoping of stacked envelopes. Furthermore, dextrin’s branched amylopectin-rich structure retards wetting—contact-angle goniometry on dried dextrin films typically shows an advancing water contact angle of 65–70° versus 30–35° for a 88 mol% hydrolyzed PVA film ( ASTM D5946 ). This wetting delay translates directly to longer tack-on times. A direct comparison on a Helios 600 line operating at 35,000 cph using 4 g/m² gum dry weight demonstrated that dextrin-coated flap seals showed 15% failure rate after 72 h of conditioning at 35°C and 80% RH, whereas PVA-coated seals maintained 98% integrity under the same protocol (seal strength tested by modified ASTM D1876, T-peel, 25 mm width at 300 mm/min crosshead). Moreover, dextrin requires incorporation of a preservative such as 1,2-benzisothiazolin-3-one to meet microbiological shelf-life requirements, which then complicates food-safe declarations; PVA films, being synthetic, are inherently non-biodegradable under dry storage and bypass this additive burden entirely.

    Table 2 — Comparative Performance of Remoistenable Adhesive Base Polymers at Equal Dry Coat Weight (3 g/m²)
    Property Method PVA (88 mol%, 20 mPa·s) White Dextrin (40% solids) PVAc Homopolymer Emulsion
    Re-wetting tack onset (s) TAPPI UM 666 1.8 4.5 N/A*
    Peel strength on envelope kraft (N/m) ASTM D1876 (T‑peel) 250 180 N/A
    Blocking (% fiber tear) Modified ASTM D1146 (40°C, 90% RH, 24 h) 5 80 N/A
    Film appearance Visual Transparent Opaque Transparent (irreversible)
    Mold growth (no biocide) 28 d at 30°C, 90% RH None Moderate None
    FDA 21 CFR indirect food contact 175.105 175.105 (with preservative limitation) 175.105
    *PVAc emulsions form irreversible films that cannot be re-activated with water; they are listed for conceptual differentiation only.

    Polyvinyl alcohol films for remoistenable coatings are inherently hygroscopic. Storage and transport conditions necessitate sealed polyethylene-lined corrugated containers capable of maintaining internal relative humidity below 60%. When ambient humidity exceeds 70% RH, the absorbed water plasticizes the PVA matrix, lowering its glass transition temperature from approximately 75°C to 35°C; under the 0.5–1.0 kPa stack pressure typical of palletised ream cartons, this plasticization causes cold flow and irreversible blocking. Adding 5–10 wt% (based on PVA solids) of a paraffin wax emulsion slip agent such as Astorstat® grades can elevate the blocking point by 8–12°C as measured by a dead-weight block test adapted from ASTM D1146 (load 112 N/m², 24 h). However, wax incorporation sacrifices re-wetting speed: a 0.5–1.0 s increase in tack development time is routinely observed when wax content crosses 7 wt%. Formulators therefore target a minimum blocking point of 45°C for temperate-zone distribution, accepting the trade-off. Additionally, PVA-based remoistenable adhesives are incompatible with amine-functional additives, which catalyze premature crosslinking during the drying stage and yield insoluble domains; neutral or weakly acidic pH (5.0–7.0) must be maintained in the wet compound. Published data on the long-term hydrolytic stability of thin PVA films under cyclical humidity in tropical field warehouses remains limited, but accelerated aging per ASTM F1980 on 100 µm cast films at 50°C, 75% RH for 30 days indicates less than 10% loss of re-wetting peel force when properly packaged.