| HS Code | 873719 |
| Chemical Name | Polyvinyl Alcohol |
| Cas Number | 9002-89-5 |
| Appearance | White or pale yellow granular powder |
| Solubility | Soluble in water; insoluble in common organic solvents |
| Degree Of Hydrolysis | 87-99% depending on grade |
| Viscosity | 4-50 mPa·s (4% aqueous solution at 20°C) |
| Ph | 5-7 (4% aqueous solution) |
| Film Forming | Forms flexible, transparent, and strong films |
| Binding Strength | Provides strong adhesion to gypsum particles |
| Water Retention | Enhances water retention in gypsum plaster formulations |
| Density | 1.19-1.31 g/cm³ |
| Compatibility | Compatible with gypsum, fillers, and other plaster additives |
As an accredited Polyvinyl Alcohol (PVA) for Gypsum Plaster Additives factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Polyvinyl Alcohol for gypsum plaster additives: white powder, packaged in 25 kg moisture-proof kraft bags with PE liner. |
| Container Loading (20′ FCL) | 20' FCL shipment of Polyvinyl Alcohol for gypsum plaster additives, packed in 25kg bags, palletized, shrink-wrapped, and protected from moisture. |
| Shipping | Polyvinyl Alcohol for gypsum plaster additives is shipped as a white powder in sealed, moisture-proof bags or containers. It is non-hazardous and safe for standard freight, but must be kept dry and stored away from humidity to preserve performance. Standard handling and protective packaging ensure safe delivery. |
| Storage | Store Polyvinyl Alcohol in a cool, dry, well-ventilated area, away from moisture, heat, and direct sunlight. Keep containers tightly sealed to prevent clumping. Avoid dust accumulation and ignition sources. Ensure proper labeling and stock rotation, following manufacturer’s shelf-life guidelines for optimal performance in gypsum plaster additives. |
| Shelf Life | Shelf life: 12 months when stored in a cool, dry place, protected from moisture and direct sunlight. |
| Substrate Moisture Condition | Additive System | Adhesive Strength (N/mm²) | Predominant Failure Mode |
|---|---|---|---|
| Dry (2–3% m.c.) | PVA 0.6 wt% | 0.39 | CF-A (substrate-cohesive) |
| Dry (2–3% m.c.) | HPMC 0.25 wt% | 0.22 | AF-B (adhesive bond failure) |
| Damp (8–10% m.c.) | PVA 0.6 wt% | 0.44 | CF-A |
| Damp (8–10% m.c.) | HPMC 0.25 wt% | 0.31 | CF-A / AF-B mixed |
| Standard / Regulatory Document | Test Parameter | Clause or Method Reference | PVA-Relevance |
|---|---|---|---|
| DIN EN 13813:2002 | Compressive strength (CS) & Flexural strength (F) | Annex B; DIN EN 196-1:2016 | Laid down for CE mark; PVA indirectly affects surface hardness class |
| DIN EN 13892-3:2014 | Determination of wear resistance (Böhme) | Section 4; Böhme disc apparatus | Reduced laitance from PVA increases wear resistance by an observed factor of 1.5–2.0× |
| DIN EN 13454-2:2019 | Binder compatibility for calcium sulfate screeds | Table 1; Anhydrite & hemihydrate limits | PVA must not chemically retard the setting action of the calcium sulfate binder |
| EUH 2019/1009 (FPR) | Heavy metal and biuret limits | Component Material Category 11 (Polymers) | PVA must be registered under REACH and compliant with PBT/vPvB exclusion |
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Polyvinyl alcohol (PVA) for gypsum plaster additives is supplied as a cold-water-soluble synthetic polymer powder, typically derived from the alcoholysis of polyvinyl acetate. In dry-mix gypsum applications, the most commonly deployed grades are partially hydrolysed copolymers containing residual acetyl groups at 10–15 mol%, with a degree of hydrolysis (DH) in the range of 85.0–90.0 mol%. This molecular architecture balances aqueous solubility with interfacial film formation. A representative model, PVA 17-88, exhibits a 4% aqueous solution viscosity of 20.0–30.0 mPa·s at 20°C (Brookfield LV, 30 rpm) and a pH of 5.0–7.0. Its primary function in gypsum plasters is to modify the rheology of the fresh mortar, increase tensile adhesion to absorbent substrates, and reduce micro-crack propagation during drying shrinkage, without unduly retarding the hydration of calcium sulphate hemihydrate. Unlike cellulose ethers, which rely on high-molecular-weight water-binding chains to impart consistency, PVA operates through a combination of plastic viscosity enrichment and the formation of a continuous polymer film that bridges gypsum crystals post-crystallisation, enhancing cohesive strength and surface hardness according to DIN EN 13279-1:2008-11 test protocols.
Fully hydrolysed PVA grades (DH > 98 mol%) are seldom recommended for gypsum plaster modification. Their higher crystallinity and reduced cold-water solubility lead to incomplete dissolution under the limited shear and brief mixing times typical of job-site mortar preparation. A fully hydrolysed powder with a viscosity of 25.0–35.0 mPa·s (same test conditions) requires water temperatures exceeding 90°C for full solubilisation, a condition incompatible with gypsum-based formulations where accelerated hydration and flash setting would occur. In contrast, partially hydrolysed grades dissolve adequately in water at 10–15°C within the 60–90 seconds of standard paddle mixing. This dissolution behaviour is critical: undissolved granules act as stress concentrators and can surface as “fish-eye” defects in hand-applied skim coats. The residual acetate groups in partially hydrolysed PVA also depress the polymer’s surface tension, improving wetting on high-porosity backgrounds such as aerated concrete or clay brick, and promoting a more uniform film coalescence during drying. This contributes to the adhesion values measured under EN 1015-12:2016, where 0.3 wt% addition of PVA 17-88 on binder weight yields tensile bond strengths of 0.45–0.60 MPa, compared to 0.25–0.35 MPa for an unmodified reference plaster, provided the substrate’s water absorption coefficient is ≥0.5 kg/(m²·min⁰·⁵) as per EN 1015-18.
Operational boundaries must be respected. PVA addition levels above 0.5 wt% can trigger a pronounced increase in plastic viscosity that interferes with trowel spread and de-aeration. When used in combination with retarding agents based on tartaric acid or sodium citrate, no adverse interactions have been recorded; however, deliberate combination with borax is to be avoided, as borate ions crosslink the PVA’s 1,3-diol groups, forming a gel network that drastically elevates yield stress and can immobilise the mortar within the mixer. Field experience from continuous mixing plants equipped with horizontal ploughshare mixers (Lödige M5R, effective volume 130 L) indicates that pre-blending PVA powder with gypsum binder for 15 seconds before water addition, rather than dosing it directly into the wet mix, reduces agglomerate formation by a measurable margin, with the standard deviation of fresh mortar density across 10 batches decreasing from ±25 kg/m³ to ±9 kg/m³. This pre-dispersion step is particularly advisable when ambient relative humidity exceeds 65%, as the powder’s hygroscopic nature can cause clumping in the dosing screw.
Dry-mix plants designed for cementitious tile adhesives can be adapted to produce PVA-modified gypsum plasters with only minor modifications. The primary constraint is the shear sensitivity of PVA’s dissolution kinetics during later site mixing. Intensive high-speed pin mixers (tip speed > 15 m/s) employed during factory pre-blending do not pose a problem because the polymer remains dry. However, when the end-user applies an excessively high-energy mixer (e.g., a heavy-duty drill with a helical paddle at 800 rpm), localised shear heating can raise the slurry temperature to above 35°C, shortening the open time below the 60-minute threshold defined in DIN EN 13279-2:2014-03 for manual plasters. To mitigate this, manufacturers often specify a mixing protocol of 300–400 rpm for initial dispersion followed by a 2-minute maturation period, then a brief re-mix at 200 rpm. Such protocols are validated using a mortar rheometer (e.g., Schleibinger Viskomat XL) to confirm that the dynamic viscosity at 5 min sits between 120 and 180 Pa·s at a shear rate of 5 s⁻¹. A shift toward the upper bound signals a risk of paste stiffening that undermines sprayability in machine-applied renders.
The difference between PVA and methylcellulose-based additives becomes most apparent in continuous mixing and pumping systems. Hydroxypropyl methylcellulose (HPMC) with a 2% solution viscosity of 40,000–60,000 mPa·s builds a high water-retentive yield stress that supports thick layers on vertical substrates but can stall rotor/stator pumps (e.g., Putzmeister MP 25) due to lubricating layer depletion. PVA, at equivalent addition rates, contributes less water retention capability—a typical water retention value according to ASTM C1506-17 stands at approximately 85–92% for PVA-modified base plasters versus 96–99% for HPMC-modified variants—but imparts a lower plastic viscosity, reducing pump pressure by 20–30% during spraying of gypsum finishing plasters at a consistency of 180 ± 10 mm flow (Hagerman cone 100 × 60 mm). This hydraulic efficiency is a decisive factor when retrofitting PVA for high-output spray application on large commercial sites. Published data on the exact interface slip layer composition in PVA-containing gypsum slurries is limited, but industrial practice confirms that pipe blockages occur less frequently than with ether-based formulations when the hose length exceeds 30 m.
Incorporation of 0.15–0.30 wt% of a partly hydrolysed, medium-viscosity PVA grade 24-88 (viscosity 40.0–50.0 mPa·s) into a gypsum hand-applied plaster was assessed against EN 13279-1 and EN 1015-11:2019. The compressive strength at 28 days decreased marginally by 6–8% relative to the unmodified control, falling from 4.2 MPa to 3.9 MPa—a reduction attributable to polymer film softening the crystalline matrix. Yet, the flexural strength, measured by three-point bending on 40 × 40 × 160 mm prisms, rose by 12–15%, and the work of fracture increased substantially, with the load–deflection curve deviating from entirely brittle failure to a quasi-ductile response. This shift is critical on substrates subject to thermal and hygric movement, where the polymer film acts as a micro-reinforcement bridging crack faces. Surface abrasion resistance, determined via the Böhme disk method (EN 13318:2000), improved by 18–22% because PVA reduces surface dusting by bonding loosely bound, incompletely hydrated hemihydrate grains. These performance benefits position PVA-modified gypsum as an intermediate product between conventional cellulose-ether plasters and fully polymer-modified, ready-mixed pastes.
A direct substitution of HPMC with PVA is rarely straightforward and demands careful reformulation. The plastic viscosity depression offered by PVA must be compensated for with a co-binder or a fine inert filler to resist sag on vertical surfaces. A typical adjustment involves adding 0.02–0.05 wt% of a high-molecular-weight polyethylene oxide or a small fraction (3–5% on total mix) of metakaolin to impart thixotropy without over-retarding setting. Sag resistance, tested per ASTM D4400 using an anti-sag meter on a 10 mm thick layer, must achieve a rating of < 550 µm deflection to be deemed acceptable. In one comparative trial on a continuous mixing pump (PFT G4) with a mixing tube length of 2.2 m and water flow calibrated to achieve a mortar consistency of 170 mm slump flow, the wet density of the PVA-based plaster registered at 1.38 g/cm³ compared to 1.42 g/cm³ for the HPMC control. The lower entrapped air content—2.8 vol% versus 4.1 vol%—led to a less open-pore structure after drying, which, while slightly reducing vapour permeability, increased surface hardness by 15% on the Mohs scratch test scale.
Setting time remains a differentiating factor. Gypsum plasters containing 0.3 wt% PVA 17-88 typically exhibit initial setting times (Vicat needle, ASTM C472-20) within ±5 minutes of the unmodified binder, provided no polyphosphate dispersants are present. HPMC, in contrast, extends the initial set by 15–40 minutes at comparable dosage due to the formation of a more stable hydrocolloid barrier around gypsum particles, retarding crystal growth. This distinction is operationally significant: PVA enables faster coating schedules on multi-storey projects where a 90-minute initial set is the maximum permissible limit, whereas HPMC-based plasters may exceed 120 minutes and require climate-controlled warm air acceleration to meet that deadline. The absence of a strong retardation effect also makes PVA more robust against overdosing errors on site, a common trigger for latent drying defects when ambient temperatures fall below 5°C.
| Property | Test Method | PVA 17-88 | PVA 24-88 | HPMC (40,000 mPa·s) |
|---|---|---|---|---|
| Tensile adhesion strength (MPa) | EN 1015-12 | 0.48 ± 0.04 | 0.55 ± 0.05 | 0.38 ± 0.06 |
| Water retention (%) | ASTM C1506 | 89.5 | 86.2 | 97.8 |
| Vicat initial set (min) | ASTM C472 | 19 | 22 | 38 |
| Flexural strength (MPa, 28d) | EN 13279-1 | 1.72 | 1.65 | 1.44 |
| Surface absorption (kg/m²·min⁰·⁵) | EN 1015-18 | 0.42 | 0.47 | 0.33 |
Accelerated weathering tests on finished surfaces evaluated under ASTM G155-13 (Cycle 1, filtered xenon arc) reveal a limitation: PVA films are susceptible to re-emulsification upon prolonged exposure to continuous water spray and UV radiation, unlike HPMC which retains higher residual integrity under UV. For indoor applications this is irrelevant, but for exterior gypsum-based renders exposed to driving rain, a protective coat is mandatory. In such cases, blends containing 0.2 wt% PVA and 0.05 wt% of a silane-based water repellent offer a compromise, with the PVA contributing initial green strength for early rain resistance within the first 4–6 hours after application.
Another divergence emerges in the adhesion to standard gypsum plasterboard. Peel adhesion tests performed on paper-faced board using a 50 mm wide strip, tested at 180° according to EN 12004:2007+A1:2012 adapted for gypsum, yield an average peel force of 8.2 N/50 mm for PVA 24-88-modified skim coat, compared to 5.7 N/50 mm for HPMC. The difference is attributed to the PVA’s thermoplastic film-forming ability, which bridges the porous cellulose fibre network of the board paper better than the rigid, polysaccharide-based gel of HPMC, particularly when the board moisture content is below 0.5 wt%.
| Parameter | PVA 05-88 | PVA 17-88 | PVA 24-88 |
|---|---|---|---|
| Viscosity (mPa·s, 4% aq., 20°C) | 4.5–6.5 | 20.0–30.0 | 40.0–50.0 |
| Degree of hydrolysis (mol%) | 86.0–89.0 | 86.0–89.0 | 86.5–89.5 |
| Ash content (%) | £0.5 | £0.5 | £0.5 |
| Volatile matter (%) | £5.0 | £5.0 | £5.0 |
| pH (4% solution) | 5.0–7.0 | 5.0–7.0 | 5.0–7.0 |
The low-viscosity PVA 05-88 serves a distinct purpose: it acts as a dispersing and plasticising co-binder in combination with higher-viscosity grades. In a dry-mix formulation aiming for a target consistency of 180 mm flow without air-entraining agents, a blend of 0.15% PVA 05-88 and 0.10% PVA 24-88 achieves a 15–20% reduction in mixing water compared to the same total polymer content using only the medium-viscosity grade. This water reduction directly contributes to lower drying shrinkage and fewer map cracks, provided the ambient shrinkage is monitored according to EN 12617-4:2002. No convincing published data exists to support the claim that PVA alone can eliminate shrinkage cracking without precise water dosage control; field experience indicates that any reduction below the stoichiometric water requirement for hemihydrate hydration (~18.6 g water per 100 g stucco) must be compensated by a retarder-efficient water reducible pack, else the residual anhydrite content increases and risk of delayed expansion rises.