| HS Code | 317882 |
| Chemical Name | Polyvinyl Alcohol |
| Cas Number | 9002-89-5 |
| Molecular Formula | (C2H4O)n |
| Appearance | White to off-white powder or granules |
| Solubility | Soluble in hot water; insoluble in most organic solvents |
| Degree Of Hydrolysis | Typically 86-89% for vinyl acetate emulsion stabilization |
| Viscosity 4 Aqueous Solution 20 C | 3-50 mPa·s depending on grade |
| Ph 4 Aqueous Solution | 5.0-7.0 |
| Glass Transition Temperature | 70-80°C (dried) |
| Minimum Film Formation Temperature | Approximately 20-40°C (formulation dependent) |
| Protective Colloid Property | Excellent stabilizing effect for vinyl acetate emulsions |
| Average Molecular Weight | Varies from about 20,000 to 200,000 depending on grade |
| Density | 1.19-1.31 g/cm³ |
| Ash Content | Low, typically <1% |
As an accredited Polyvinyl Alcohol (PVA) for Vinyl Acetate Emulsion Stabilizers factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | 25 kg net in multi-layer paper bags with polyethylene liner, sealed for moisture protection. |
| Container Loading (20′ FCL) | 20′ FCL shipment of Polyvinyl Alcohol (PVA) stabilizer, packed in bags on pallets, for vinyl acetate emulsion production. |
| Shipping | Polyvinyl Alcohol (PVA) for vinyl acetate emulsion stabilizers ships as a non-hazardous, free-flowing powder in multi-layer paper bags or FIBCs. Protect from moisture and contamination. Store cool, dry, and ventilated. Not regulated as dangerous goods; transport via standard truck, rail, or ocean container with proper labeling and handling. |
| Storage | Store Polyvinyl Alcohol (PVA) in a cool, dry, well-ventilated area away from moisture, direct sunlight, and ignition sources. Keep containers tightly sealed to prevent dust formation and contamination. Avoid contact with oxidizing agents. Maintain stable temperatures; with proper storage, PVA remains effective for emulsion stabilization for up to two years. |
| Shelf Life | Shelf life: 12 months when stored sealed in a cool, dry area away from moisture and sunlight. |
In the formulation of interior flat wall paints with pigment volume concentrations (PVC) above 70%, the colloid-stabilized vinyl acetate-ethylene (VAE) emulsion must maintain film integrity under repeated wet abrasion while keeping formulation cost at a minimum through high extender loading. The PVA protective colloid directly governs the compromise between coalescence and water sensitivity. Partially hydrolyzed grades in the range 87–89 mol% are preferred because they reduce the critical pigment volume concentration (CPVC) mismatch caused by high-viscosity, fully hydrolyzed colloid thickeners. Wet scrub resistance measured per ASTM D2486-17 Method B degrades nonlinearly when the PVA 4% aqueous viscosity exceeds 30 mPa·s at 20°C; excessive colloid migrates to the film surface and forms a water-softened boundary layer. Production-scale high-speed dispersers operating at tip speeds above 18 m/s reveal that grit generation correlates with PVA acetate residue above 2.5 mol%, as the residual acetyl groups reduce solubility in the aqueous phase and promote shear-induced insolubles. Low-odor architectural paints complying with EU Directive 2004/42/CE typically require PVA with residual sodium acetate below 0.5 wt% to avoid amine-sensitivity in the vapour phase during drying. Thickener demand, often supplied by cellulosics or HEUR associative thickeners, can be reduced by 15–20% when the PVA stabilization package is shifted from a medium-molecular-weight grade (DP approx. 1,700) to a low-molecular-weight grade (DP approx. 500) without sacrificing storage stability, provided the emulsion contains at least 3.5 wt% PVA based on total monomer. Freeze-thaw resistance testing following ASTM D7149-05 highlights a vulnerability window: emulsions stabilized solely with low-hydrolysis PVA fail after one cycle due to ice-crystal dehydration; adding 2–3 wt% of medium-hydrolysis PVA (92–94 mol%) in a bimodal colloid system extends cycle life to beyond five cycles. On a 400 L pilot batch scale, the transition from semi-batch to continuous emulsion polymerization using a static mixer for PVA dissolution at 95°C exposed an operational boundary: solutions above 10 wt% solid content develop undissolved gel bodies recognizable only after 40-mesh inline filtration, leading to microcoagulum formation during ethylene stripping at 0.5 bar gauge pressure.
| Application segment | PVA hydrolysis range (mol%) | 4% aqueous viscosity (mPa·s, 20°C) | Key colloid property demand | Undesirable side-effect threshold |
|---|---|---|---|---|
| Interior matte wall paint | 87–89 | 18–28 | Minimum grit at high extender load | Wet scrub < 100 cycles at PVC 78% |
| Exterior silk sheen paint | 91–93 | 22–35 | UV-resistant film formation | Chalking after 2,000 h QUV-B |
| D3 wood adhesive | 88–90 | 25–40 | Extended open time with cold water resistance | Delamination > 5% after EN 204 D3 sequence |
| D4 wood adhesive | 92–95 | 30–50 | Boil-resistant internal cohesion | Viscosity drift > +30% over 6 months |
| Redispersible powder binder | 87–88 | 5–12 | Low hot-block tendency during spray drying | Non-dispersible fraction > 2 wt% per EN 12004 |
| Nonwoven saturant binder | 97–99 | 15–25 | Solvent resistance (perchloroethylene dry cleaning) | Surface tack above 40°C Tg causing roll blocking |
| Carpet pre-coat compound | 86–88 | 40–55 | High filler affinity and froth stability with 400 phr CaCO₃ | Mechanical shear instability above 7,000 s⁻¹ |
| Flexible packaging laminating adhesive | 88–90 | 20–30 | Hydrolizable resistance under hot-fill conditions | Heat seal strength drop > 20% after 85°C/95% RH aging |
Classification under EN 204/205 imposes a step-change in water resistance that is reflected directly in the protective colloid architecture. A PVA-stabilized PVAc homopolymer containing 4–5 wt% partially hydrolyzed PVA (88 mol%) will routinely pass the D3 cold-water immersion test (4 days at 23°C) but fails the D4 boiling-water protocol (6 h boiling water, 2 h cold water) because the colloid phase becomes plasticized and diffuses to the adhesive-substrate interface, causing cohesive failure within the bond line. Upgrading to D4 requires a shift to a VAE or crosslinked PVAc backbone, where the PVA’s role pivots from simple steric stabilization to participation in post-cure crosslinking. Formulators commonly use grades with hydrolysis between 92 and 95 mol% and a viscosity of 25–45 mPa·s. At this hydrolysis level, residual acetate groups are low enough to permit hydrogen bonding with added aluminum chloride or glyoxal-based crosslinkers without immediate premature gelation during adhesive mixing. Extended open time testing per DIN EN 14257 (WATT 91) demonstrates a sensitivity window: adhesives based on PVA with number-average molecular weight (Mₙ) above 50,000 g/mol show open times exceeding 12 minutes at 60% RH, but the same colloid increases the minimum film formation temperature (MFFT) by 3–5°C, resulting in chalky bonding on cold substrates below 8°C. Heat resistance measured by DIN EN 14256 (Heat Resistance Test A) highlights a limitation: thermo-mechanical analysis of adhesive films reveals that sodium acetate impurity above 0.8 wt% acts as an internal plasticizer and lowers the heat softening point by 7–10°C. Consequently, PVA quality certificates must specify ash content below 0.5%. In automated finger-jointing lines where adhesive is applied via slot-die coating at line speeds of 60–80 m/min, the dynamic surface tension of the stabilized emulsion must stay above 45 mN/m; PVA with blockier distribution of acetyl groups, typical of certain fluidized-bed hydrolysis processes, depresses dynamic surface tension more sharply than random-acetyl PVA and can cause adhesive misting and pump cavitation at supply pressures below 1.5 bar.
The spray drying of VAE dispersions into redispersible polymer powders (RDP) subjects the protective colloid to a dual and contradictory role: preventing irreversible coalescence during hot-air dehydration and enabling spontaneous cold-water redispersion after packaging. The PVA grade selection diagram for RDP is narrower than for liquid emulsion applications because the colloid becomes the continuous phase after water removal. High-molecular-weight PVA (DP > 2,000) mechanically reinforces the powder particle shell and provides excellent anti-caking behavior during bulk storage in silos at 35°C and 70% RH, yet the same shell retards redispersion, yielding a non-dispersible residue above 2% as measured by the EN 12004 wet sieve method (315 μm). Low-molecular-weight PVA (DP < 500, 4% viscosity 3–6 mPa·s) permits nearly instantaneous cold-water redispersion but leads to powder caking within 48 hours unless the spray dryer outlet temperature is kept below 55°C and an antiblocking agent such as kaolin or calcium carbonate (8–15 wt%) is co-sprayed. The most robust commercial solutions employ a blend of two PVA grades, one with 87–88 mol% hydrolysis and DP 500–800 as the inter-particle film former, and a minor fraction (15–25% of total PVA) of 98 mol% hydrolysis as a surface-hardening shell component. On a 10 m conical spray dryer with rotary atomizer operating at 15,000 rpm, inlet temperature 160–185°C and exhaust temperature 68–78°C, a critical process conflict emerges: PVA with high acetate blockiness depresses the glass transition temperature of the dry shell below 50°C, causing thermoplastic wall deposition on the conical section beyond 4–6 hours of uninterrupted run time, forcing a clean-in-place shutdown. The same phenomenon reduces the powder’s block resistance under ASTM C1439 modified compression test (40°C, 48 h, 5 kg weight). An additional incompatibility emerges during the re-wet stage in cementitious tile adhesives: PVA containing residual sodium sulfate above 0.3% from the saponification process interferes with aluminate-phase hydration, retarding final set time by more than 120 minutes at 5°C. Therefore, PVA destined for RDP manufacture must specify conductivity below 100 μS/cm as a proxy for electrolyte contamination.
| Process parameter | Optimal window | Deviation consequence linked to PVA | Detection method |
|---|---|---|---|
| Exhaust air temperature | 65–75°C | Below 60°C: residual moisture > 2% triggers PVA plasticization and lump formation | Karl Fischer titration, DIN EN 12004 |
| Atomizer peripheral speed | 140–180 m/s | Below 120 m/s: coarse droplets (> 80 μm) produce hollow-core particles that collapse during transport | Laser diffraction, ISO 13320 |
| Feed solids content | 42–48% | Above 50% with high-DP PVA causes stringy feed and nozzle pulsation | Brookfield LV#4 at 20 rpm |
| PVA shell Tg (dry) | > 52°C (DSC midpoint) | Below 48°C results in sack-clumping after 7 days at 35°C | DSC per ISO 11357-2 |
In pigmented paperboard coating for food-contact folding carton applications governed by FDA 21 CFR 176.170 and 176.180, the VAE binder stabilized with PVA must satisfy conflicting requirements: sufficient water retention to prevent binder migration into the base sheet during metered size press application and low blocking tendency when coated reels are stored under compressive load at 40°C. Low-molecular-weight PVA (4% viscosity 5–12 mPa·s, hydrolysis 87–89 mol%) in the binder at 12–18 parts per hundred pigment yields a coating color with Brookfield LV#3 viscosity of 1,200–2,400 mPa·s at 60 rpm and solids of 62–66%. This combination reduces binder depletion at the coating surface as confirmed by UV fluorescent dye tracing; surface binder content remains above 60% of the nominal add-on level. The same formulation, however, can fail blocking resistance evaluation under TAPPI T 477 if the PVA contains plasticizing low-molecular-weight fractions below 10 kDa. Fractionation by GPC shows that off-specification grades with polydispersity index above 2.8 introduce oligomeric chains that migrate to the coating-air interface and create micro-adhesion sites, leading to fiber tear upon reel separation at calender temperatures above 55°C. An operating limitation emerges in high-speed coating lines above 1,200 m/min: PVA-stabilized emulsions with dynamic surface tension below 50 mN/m (measured at 10 Hz bubble pressure) cause trailing blade streaking because the wetting front oscillates. Counter-intuitively, increasing PVA hydrolysis to 92 mol% raises the dynamic surface tension and reduces streaking, but it also builds low-shear viscosity, reducing flow under the blade and increasing coat weight non-uniformity above 5% at a target of 12 g/m² dry. In microwave-safe packaging where the coating is in indirect food contact, extraction testing with 3% acetic acid at 100°C for 30 minutes per EU Regulation 10/2011 Annex III demands residual PVA monomer (vinyl acetate) below the specific migration limit of 0.01 mg/kg food simulant, which is only consistently achieved with PVA grades post-treated by methanolysis under nitrogen stripping and having free monomer content certified below 5 ppm.
Thermally bonded high-loft nonwovens for garment interlining require stiffening binders that withstand perchloroethylene dry cleaning and resist yellowing. PVA-stabilized VAE latices compete with acrylic and SBR lattices in this segment only if the colloid itself contributes insolubility. Fully hydrolyzed PVA (98–99.5 mol%) with 4% aqueous viscosity in the range 12–28 mPa·s creates, after application and drying, a crystalline phase that is swollen but not dissolved by organic solvents. This crystalline fraction, detectable by DSC endotherm between 220 and 235°C, is the key to surviving three successive dry-cleaning cycles per ISO 3175-2. However, a severe process penalty accompanies this hydrolysis range. The dissolution of fully hydrolyzed PVA in continuous stirred-tank reactors at 10 wt% requires jacketed vessels heated to 95–98°C with high-torque anchors (1.5 kW/m³ specific power) for 90–120 minutes, and the resulting solution gels at ambient temperature unless maintained above 40°C throughout the emulsification train. In a 500 L semi-batch polymerization, this causes a hysteresis in viscosity management: pre-emulsion holding times must be kept below 30 minutes to avoid skin formation in transfer piping. The compensation strategy employs a co-colloid, typically a monoester of PEG with MW 400, at 0.5–1.0 wt% on monomer, which disrupts PVA gelling but simultaneously films a PEG-rich layer that slightly raises the coating’s Cobb water absorption value from 15 to 22 g/m². In formaldehyde-free binder systems crosslinked with diacetone acrylamide and adipic dihydrazide, the presence of residual sodium hydroxide from PVA saponification (above 0.1 meq/g) prematurely catalyses the keto-hydrazide reaction during storage, causing a progressive MFFT increase of 1–2°C per month at 25°C. This drift ultimately limits the shelf life to 4 months, documented by a rise in gel content above 2% on 200-mesh screen residue. The nonwoven line’s impregnation bath presents a further boundary: foaming generated by fully hydrolyzed PVA solutions defoamer demand reaches 0.3% on bath weight, and if a silicone-free system is specified for automotive interior VOC compliance (VDA 278), the available mineral-oil defoamers begin to fail at bath recirculation rates above 5 turnovers per hour.
Tufted carpet pre-coat compounds combine VAE latex with heavy calcium carbonate filler loads exceeding 400 phr dry, applied as a frothed foam to obtain targeted penetration and lock the tuft bundles. The PVA stabilizer governs the mechanical froth stability under the blade of a continuous frothing mixer operating at 800–1,200 rpm. Grades with 4% viscosity of 40–55 mPa·s (commonly corresponding to DP 1,700–2,000) at 86–88 mol% hydrolysis provide the necessary elongational viscosity to prevent rapid bubble coarsening while still allowing the foam density to stabilize at 300–450 g/L within 20 seconds after exiting the mixing head. A viscosity below 35 mPa·s yields froth collapse before the gel point during entry into the 150°C tenter oven, resulting in variable pile anchorage and tuft withdrawal force below the 2.5 kg threshold specified in BS EN 1307 testing. However, the high-viscosity PVA introduces a filler tolerance ceiling. At filler loadings above 450 phr, the water-layer in the latex becomes critically depleted and the PVA protective colloid layer undergoes a thickness transition detectable by oscillatory rheology: the loss modulus cross-over shifts from a strain of 10% to below 2%, indicating a brittle adsorbed layer that fractures under the high-shear conditions of a compounder operating above 7,000 s⁻¹. This fracture manifests on the production line as a sudden drop in Brookfield viscosity (LV#3, 20 rpm) from 8,000 to 4,500 mPa·s within 15 minutes of continuous recirculation, accompanied by grit accumulation on a 60-mesh in-line screen. To operate at maximum filler levels, the pre-coat formulator blends a medium-molecular-weight PVA with a low-molecular-weight grade (DP 500) at a ratio of 70:30, sacrificing 5–7% in froth half-life for a 20% gain in shear-stable operating window. A persistent limitation concerns latex compatibility with cationic surfactants used in stain-blocking treatments: PVA with a hydrolysis value below 88 mol% possesses sufficient residual acetate ester groups to undergo saponification in the alkaline environment of post-treatment (pH > 10), liberating acetic acid that neutralizes the buffer and shifts the pH downward, causing destabilization of subsequent fluorochemical applications.
Water-based VAE laminating adhesives for flexible packaging, particularly those meeting FDA 21 CFR 175.105 for indirect food contact, rely on PVA colloid systems to provide cohesive strength during heat sealing of multi-layer PET/PE structures at jaw temperatures of 120–160°C. Acetate residue distribution along the PVA backbone is not merely a solubility parameter: it modulates the thermal rheology of the adhesive film at sealing temperatures. PVA with block acetyl distribution (common from partial re-acetylation processes) yields an adhesive film with a broad glass-rubber transition spanning 45–75°C, which promotes inter-diffusion with the polyethylene sealant layer at 130°C and develops a T-peel strength above 3.5 N/15mm per ASTM F88 after 1-second dwell. By contrast, PVA with random acetyl distribution and the same average hydrolysis of 88 mol% produces a narrower transition (DSC half-width 15°C versus 25°C) and results in a lower peel strength of 2.1–2.8 N/15mm because the flow under compression is insufficient to fill the PET surface topography. However, the block-acetyl PVA introduces a critical weakness under hot-fill conditions. Laminates subjected to 85°C water at 95% RH for 48 hours exhibit channel delamination initiating at the cut edge, driven by water diffusion through the PVA-rich interphase. An extraction study following EN 1186-3 (total immersion, simulant A) shows that PVA with block acetyl sequences leaches oligomeric fragments at a rate three times higher than random-acetyl PVA, increasing the global migration from –2.5 mg/dm² to above –8 mg/dm², approaching the 10 mg/dm² overall migration limit. This imposes the requirement that for laminating adhesives destined for pasteurized retort applications, the PVA grade must specify a random acetyl distribution index (measurable by ¹³C NMR sequence analysis) confirmed by a triad tacticity distribution containing less than 15% block sequences, even if this sacrifices initial peel strength. In production, the adhesive is applied on a gravure cylinder at 2.5–3.5 g/m² dry coat weight. The PVA’s level in the finished emulsion influences wetting on corona-treated PET: a viscosity exceeding 30 mPa·s (4% aq.) reduces lateral flow and causes macro-voids in the adhesive layer, visible under 20x magnification, which become leak paths in pouch burst tests (ASTM F2054 at 3 psig). The acceptable window is therefore constrained to PVA with consistent viscosity control within ±2 mPa·s from lot to lot, achievable only from suppliers using continuous alcoholysis with residence-time distribution control.
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| Grade identifier (example) | Hydrolysis (mol%) | 4% solution viscosity (mPa·s) | Typical usage level (wt% on monomer) | Mean particle size range (µm) |
|---|---|---|---|---|
| PVA-205 | 87–89 | 4.8–5.8 | 4–6 | 1.5–3.0 |
| PVA-217 | 87–89 | 20.5–24.5 | 3–5 | 0.7–1.5 |
| PVA-224 | 87–89 | 40.0–48.0 | 2–4 | 0.4–1.0 |
| PVA-117 | 98–99 | 25.0–31.0 | 3–5 | 1.0–2.5 |
| Parameter | Partially hydrolyzed PVA (87–89 mol%) | HEC (MS 1.8–2.5) |
|---|---|---|
| Graft copolymerization with VAc | Extensive; forms irreversibly adsorbed interfacial layer | None; purely physical adsorption, reversible under shear |
| Mechanical stability (tested per ISO 13318-1 centrifugal method) | Low coagulum after 30 min at 5,000 rpm | Pronounced shear-induced desorption; coagulum > 0.5% under identical conditions |
| Film water resistance (24-h immersion, ASTM D870) | Slight blushing, weight gain 15–25% | Severe blushing, weight gain > 40% |
| Thickening efficiency (relative viscosity increase at 3 wt% stabilizer on monomer) | Moderate; latex viscosity typically 5,000–12,000 mPa·s | Very high; latex viscosity can exceed 30,000 mPa·s, leading to pumping difficulties |
| Freeze–thaw stability (5 cycles, −15 °C to +25 °C) | Excellent; particle aggregation minimal due to grafted layer | Poor; unmodified HEC does not prevent coalescence; requires additional post-additives |