| HS Code | 546054 |
| Product Type | Water-resistant VAc-Acrylate Redispersible Polymer Powder |
| Appearance | White, free-flowing powder |
| Polymer Type | Vinyl Acetate-Acrylate copolymer |
| Protective Colloid | Polyvinyl alcohol |
| Glass Transition Temperature | Approximately 0°C to 10°C |
| Minimum Film Formation Temperature | Approximately 0°C to 5°C |
| Solid Content | 99% ± 1% |
| Ash Content | ≤ 12% |
| Bulk Density | 400 to 600 g/L |
| Particle Size | ≤ 400 µm (99% through sieve) |
| Ph Of Redispersion | 6 to 8 |
| Water Resistance | Excellent, enhanced by acrylate component |
| Adhesion | Strong to common building substrates |
| Flexibility | Good, with improved impact resistance |
| Hydrophobicity | Increased, with reduced water uptake |
As an accredited Water-resistant VAc-Acrylate RDP factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Water-resistant VAc-Acrylate RDP is supplied in 25 kg moisture-proof, multi-layer paper bags with PE liner for safe storage and transport. |
| Container Loading (20′ FCL) | 20' FCL loading: palletized water-resistant VAc-Acrylate RDP bags secured safely for export transport. |
| Shipping | Water-resistant VAc-Acrylate RDP is shipped as a fine powder in moisture-proof laminated bags or sealed drums, often on pallets. Keep dry, avoid excessive humidity and direct sunlight during transport. Handle gently to prevent bag damage. Not classified as dangerous goods under standard shipping regulations. |
| Storage | Store Water-resistant VAc-Acrylate RDP in a cool, dry, well-ventilated area, away from direct sunlight, heat, and moisture. Keep in original unopened bags, placed on pallets off the floor. Avoid humidity and condensation, which can cause caking or loss of performance. Handle gently to prevent bag damage. Under proper conditions, shelf life is typically six to twelve months. |
| Shelf Life | Shelf life: 12 months from production date when stored sealed in original packaging, in a cool, dry place. |
In C2TE-class cementitious tile adhesives, water-resistant vinyl acetate-acrylate redispersible polymer powder is introduced at 2.5 wt% to 4.0 wt% of total dry-mix mass to shift the failure mode from interfacial adhesive rupture to cohesive substrate tear after 21 days water immersion. The powder is dry-blended with CEM I 52.5 R or CEM II/A-LL 42.5 R cement, silica sand with a maximum particle size of 0.5 mm, and a cellulose ether water-retention package before the addition of mixing water. For C2TE classification, laboratory trials following EN 1348:2007 and EN 12004-2 typically target tensile adhesion strength above 1.0 MPa after water immersion, above 1.0 MPa after heat ageing at 70 °C, and above 1.0 MPa after freeze-thaw cycling. The acrylate phase reduces water uptake of the coalesced polymer film and maintains film cohesion under wet conditions, whereas a straight vinyl acetate homopolymer film tends to re-emulsify and lose interfacial grip. In production-scale forced-action mortar mixers with batch volumes of 500 L to 2000 L, dry-blend homogeneity is verified after 180 s to 240 s at rotor speeds of 80 rpm to 120 rpm; over-blending above 300 s can generate static charges that segregate the polymer powder. Wet mixing at the job site with a paddle mixer at 400 rpm to 600 rpm for 120 s, followed by 5 min rest and 60 s re-stir, produces a tacky, creamy mortar. Open time is measured according to EN 1346:2007 and is sensitive to cellulose ether grade; the powder modifies surface skin formation, and in high wind or low humidity conditions the combined water-retention film must be re-assessed. The terminal products are C2TE and C2TES1 adhesives used for large-format porcelain tiles on exterior balconies, swimming-pool surrounds, and ventilated façades. One operational boundary is that powder addition above 5.0 wt% can lower slump and reduce initial grab without proportionally increasing final adhesion. Incompatibility arises with certain high-dosage calcium aluminate-rich binders, where accelerated ettringite formation and early film coalescence can create brittle micro-domains; such combinations require validation by EN 12004-2 adhesion testing before use.
| Test parameter | Method | C2TE acceptance threshold |
|---|---|---|
| Initial tensile adhesion | EN 1348:2007 | ≥ 1.0 MPa |
| Adhesion after water immersion | EN 1348:2007 | ≥ 1.0 MPa |
| Adhesion after heat ageing | EN 1348:2007 | ≥ 1.0 MPa |
| Open time adhesion after 20 min | EN 1346:2007 | ≥ 0.5 MPa |
In flexible cementitious waterproofing membranes, polymer dosage is set by the requirement to bridge hairline cracks after 14 days dry curing while maintaining watertightness under negative or positive hydrostatic pressure. The dry mix typically contains 15 wt% to 20 wt% water-resistant vinyl acetate-acrylate RDP, 50 wt% to 60 wt% CEM I 52.5 R, and 0.05 wt% to 0.5 wt% defoamer; this corresponds to a polymer-cement ratio of roughly 0.25 to 0.40. Wet mixing requires a high-shear paddle mixer at 600 rpm for 180 s to break down secondary agglomerates without generating foam. Application by brush or roller is preferred over trowel work to achieve a cured thickness of 1.5 mm to 3.0 mm. Under EN 14891:2017, the key functional properties include crack bridging, adhesion on concrete, and water impermeability; the powder contributes film elongation while the cement phase provides compressive strength. A process conflict occurs when the defoamer dosage is raised to eliminate surface pinholes: excess defoamer can destabilize the redispersed polymer particles and reduce crack-bridging elongation by more than 30% in some batch formulations. Defoamer selection is therefore validated by drawdown bar application on primed concrete followed by pinhole counting. The terminal products are one- or two-component flexible cementitious waterproofing slurries for balconies, bathrooms, and basements. Below 5 °C substrate temperature, film coalescence is incomplete and water resistance remains below specification; above 30 °C with low humidity, surface skin forms before substrate wetting is complete, leading to delamination at the concrete interface.
External thermal insulation composite system base coats and adhesive mortars require a combination of low capillary water absorption, high water-vapour permeability, and sufficient flexibility to distribute shrinkage stresses across glass-fibre mesh. Water-resistant vinyl acetate-acrylate powder is dry-blended at 2.0 wt% to 4.0 wt% with CEM I 42.5 R, limestone sand having a maximum particle size of 1.0 mm, and an air-entraining agent. The mortar is mixed in a 300 L to 1000 L twin-shaft compulsory mixer for 120 s to 180 s, then applied as a 3 mm to 5 mm base coat over expanded polystyrene or mineral wool. The terminal product is a mesh-reinforced base coat evaluated under ETAG 004 or EAD 040083-00-0404 criteria, including resistance to hygrothermal cycling and hard body impact. The acrylic portion of the polymer reduces the organic film's water sensitivity, which is critical when the base coat is exposed to driving rain before finish render application. A common production-scale failure occurs when the dosage exceeds 5.0 wt%: excessive early film formation can close surface pores and trap water vapour, causing local blistering during summer high-temperature cycles. Conversely, below 1.5 wt% the base coat may exhibit insufficient mesh bond and develop impact cracks. Incompatibility arises with some retarder-accelerator combinations based on calcium formate and sodium gluconate; the resulting hydration profile can produce a heterogeneous film distribution at the insulation-mortar interface, reducing bond strength under wet-dry cycling.
In self-levelling cementitious underlayments, water-resistant VAc-acrylate RDP is added at 1.5 wt% to 3.0 wt% of dry mix to improve flexural toughness and reduce surface dusting. The process limitation is flow retention: at constant water-to-solids ratio, the spread diameter under a 30 mm ring flow test falls from approximately 150 mm to 120 mm as polymer dosage rises from 0 wt% to 4.0 wt%. Because of this, formulators compensate with a polycarboxylate superplasticizer at 0.1 wt% to 0.3 wt% rather than increasing water. The powder is dry-blended with a ternary binder of ordinary Portland cement, calcium aluminate cement, and anhydrite, then pumped through a continuous mortar mixer at 40 L/min to 60 L/min before spreading. The terminal product is a floor underlayment for tile, laminate, or resilient flooring, classified under EN 13813:2002 as a screed material. Published data for the exact water absorption of this specific VAc-acrylate copolymer in self-levelling formulations is limited; therefore pumpability and wheel-load indentation after 28 days are used as the primary acceptance criteria on site.
Cementitious grouts for exterior floor and wet-room tile joints use water-resistant vinyl acetate-acrylate RDP at 1.5 wt% to 3.0 wt% of dry mortar to lower the water absorption coefficient and reduce staining without reducing joint compressive strength below 15 MPa after 28 days; the powder is dry-blended with fine quartz sand, white or grey cement, and inorganic pigments, mixed with 0.20 L/kg to 0.24 L/kg clean water to a stiff paste, forced into the joint by a hard rubber float, and the hardened grout is tested for abrasion resistance under EN 12808-2 and water absorption under EN 12808-5.
For cement-based skim coats applied at 1 mm to 2 mm thickness, the powder is used at 2.0 wt% to 3.5 wt% to improve adhesion to concrete and gypsum substrates while maintaining a smooth trowelled surface. The primary process hurdle is that the acrylic-modified film can generate a tacky surface during the finishing pass if the mortar is left to rest for more than 10 min under ambient conditions above 25 °C and 70% relative humidity. The dry mix is prepared in a horizontal ribbon blender for 180 s, then mixed with water at 0.30 L/kg to 0.35 L/kg and applied by steel trowel in two coats. The terminal product is a thin skim coat for interior and exterior walls, evaluated for tensile adhesion under ISO 4624:2016 on concrete and for shrinkage under EN 12617-4. Incompatibility arises with high-viscosity cellulose ether grades used for extended open time; they increase water retention but can delay film coalescence and produce soft surface patches when the powder dosage is above 3.5 wt%.
Concrete repair mortars for structural patch repairs introduce water-resistant VAc-acrylate RDP at 2.5 wt% to 5.0 wt% of dry material to raise tensile bond strength on pre-wetted concrete and reduce capillary water absorption after carbonation. The powder is dry-blended with CEM I 42.5 R, silica fume at 5 wt% to 8 wt%, and washed quartz sand up to 2 mm. Site mixing uses a compulsory pan mixer or continuous worm screw spray machine; wet mortar is applied in layers up to 30 mm per pass on exposed steel-reinforced concrete after mechanical roughening and dust removal. The terminal product is a polymer-modified structural repair mortar evaluated under EN 1504-3:2005, with pull-off adhesion measured by EN 1542:1999 and compressive strength by EN 12190:1998. The water-resistant acrylic component limits moisture ingress that would otherwise accelerate rebar corrosion in chloride-bearing environments. During production, the main failure mode is excessive air entrainment when the powder is added to a high-shear mixer at low liquid content; air contents above 6% reduce compressive strength below the structural repair requirement. Consequently, mixing speed is limited to 200 rpm to 300 rpm in vertical shaft mixers. Incompatibility exists with some pure acrylate-based superplasticizers that reduce polymer film tensile strength; the required combination must be checked by EN 1542:1999 adhesion after 28 days and after 50 freeze-thaw cycles.
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| Property | Test Method | Typical Range |
|---|---|---|
| Bulk density | ISO 60:1977 | 450–650 g/L |
| Residual moisture | ISO 3251:2019 | ≤1.5% |
| Ash content | ISO 3451-1:2019 | 8–14% |
| pH of 10% dispersion | ISO 976:2013 | 7.0–9.0 |
| Minimum film-forming temperature | ISO 2115:1996 | 0–5°C |
| Glass transition temperature | ISO 11357-2:2020 | -5°C to +5°C |
| Redispersed particle size D50 | ISO 13320:2020 | 0.8–2.5 µm |
| Sieve residue on 150 µm screen | Internal method | ≤1.0% |
| Property | Test Method | WR-501 | Conventional VAc/EVA RDP | Pure Acrylic RDP |
|---|---|---|---|---|
| Free-film water absorption after 24 h | ISO 62:2008 | 10–15% | 25–40% | 5–10% |
| Capillary water absorption coefficient w | EN 1015-18 | 0.15–0.35 kg/(m²·h0.5) | 0.60–1.20 kg/(m²·h0.5) | 0.10–0.20 kg/(m²·h0.5) |
| Tensile adhesion after water immersion | EN 1348 | 1.0–1.5 N/mm² | 0.6–1.0 N/mm² | 1.2–1.8 N/mm² |
| Open time | EN 1346 | 30–40 min | 25–35 min | 35–50 min |
| Glass transition temperature | ISO 11357-2:2020 | -5°C to +5°C | -10°C to 0°C | -20°C to -5°C |