| HS Code | 418091 |
| Product Name | VINAVIL EVA 50-R VAE Emulsion |
| Chemical Family | Vinyl acetate ethylene copolymer aqueous dispersion |
| Appearance | Milky white liquid |
| Odor | Slight characteristic vinyl ester odor |
| Solid Content | 50 ± 1% by weight |
| Viscosity | 3000 - 6000 cP at 25°C |
| Ph | 4.5 - 5.5 |
| Density | 1.04 - 1.06 g/cm³ at 25°C |
| Particle Size | 0.5 - 1.0 μm average |
| Glass Transition Temperature | -12°C |
| Minimum Film Forming Temperature | 0°C |
| Residual Vinyl Acetate Monomer | < 0.2% |
| Surfactant Stabilizer | Anionic/nonionic surfactant system |
| Solubility In Water | Dispersible/miscible with water |
| Storage Stability | Stable for 6 months at 5 - 35°C in sealed original container |
As an accredited VINAVIL EVA 50-R VAE Emulsion factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | VINAVIL EVA 50-R VAE Emulsion is packaged in 200 kg drums, 1000 kg IBC containers, or bulk tankers. |
| Container Loading (20′ FCL) | 20′ FCL loaded with palletized drums/IBCs of VINAVIL EVA 50-R VAE Emulsion, secured, labeled, and weight-optimized for safe transport. |
| Shipping | VINAVIL EVA 50-R is a water-based VAE emulsion. For transport, it is generally classified as non-hazardous and not regulated under ADR, IMDG, or IATA. No UN number, hazard class, or packing group is required. Ship in tightly sealed containers, protected from freezing and excessive heat, with proper labeling for safe handling. |
| Storage | Store VINAVIL EVA 50-R VAE Emulsion in clean, tightly sealed containers away from direct sunlight, heat, and frost. Recommended storage temperature is 5–35°C; do not allow freezing. Keep containers upright and avoid prolonged exposure to air to prevent skinning or drying. Under proper conditions, shelf life is typically six months from manufacture. Stir gently before use. |
| Shelf Life | Shelf life is 12 months from production when stored in original unopened containers at 5–35°C, protected from frost. |
| Test method | Conditioning sequence per EN 12004-2 | Minimum threshold for C2E |
|---|---|---|
| EN 12004-2 tensile adhesion | Standard climate air cure to 28 days | ≥ 1.0 N/mm² |
| EN 12004-2 tensile adhesion after water immersion | Standard climate cure followed by water immersion | ≥ 1.0 N/mm² |
| EN 12004-2 tensile adhesion after heat ageing | Standard climate cure followed by heat ageing at 70 °C | ≥ 1.0 N/mm² |
Competitive VINAVIL EVA 50-R VAE Emulsion prices that fit your budget—flexible terms and customized quotes for every order.
For samples, pricing, or more information, please contact us at +8615380400285 or mail to sales2@liwei-chem.com.
We will respond to you as soon as possible.
Tel: +8615380400285
Email: sales2@liwei-chem.com
Flexible payment, competitive price, premium service - Inquire now!
VINAVIL EVA 50-R is an aqueous vinyl acetate-ethylene copolymer emulsion manufactured by Vinavil S.p.A. The product is used as a binder in adhesives, coatings, construction compounds, and nonwoven systems. Its grade identifier places it in the 50% nominal solids range, while the R suffix is a production-series marker rather than a performance specification; the manufacturer’s batch certificate remains the controlling document for any individual lot. Incoming material is assessed by ISO 3251 for non-volatile content, ISO 976 for pH, and ISO 2555 for Brookfield rotational viscosity. Unlike an unmodified polyvinyl acetate homopolymer, the ethylene comonomer in the polymer chain reduces the glass transition temperature and minimum film forming temperature, permitting flexible film formation without an external plasticizer. The dispersion is ionically stabilized and therefore sensitive to pH shifts, shear history, and freezing. In formulated systems, EVA 50-R is typically compounded with protective colloids, tackifier dispersions, defoamers, wetting agents, and mineral fillers, each of which can alter dispersion stability and final film morphology.
Film formation in a VAE is governed by the interdiffusion of polymer particles after water evaporation. The ethylene segments generate free volume and lower segmental stiffness, reducing the minimum film forming temperature measured by ISO 2115 relative to a vinyl acetate homopolymer. A homopolymer PVAc dispersion may exhibit a minimum film forming temperature near 18–22°C, whereas many VAE grades ship with MFFT values below 5°C. The exact EVA 50-R value must be obtained from the batch certificate or an MFFT gradient bar, but the formulation consequence is that continuous film can be produced at ambient conditions without coalescent addition. Glass transition temperature measured by differential scanning calorimetry according to ISO 11357-2 is not identical to MFFT, because particle stabilization, particle size, and drying rate shift coalescence behaviour independently of the polymer Tg.
For contact adhesives, the ethylene modification changes peel force and cohesive strength in opposing directions. The flexible segments improve wetting of low-energy substrates and reduce the brittle point, but excessive ethylene content can lower shear resistance at elevated temperature. Formulators selecting EVA 50-R should therefore measure lap shear after conditioning according to ISO 4587 and peel resistance according to ASTM D903-98 on the intended substrate rather than transfer data from another VAE grade. In wood-to-PVC lamination, a 120 mm wide roller coater applying 60–90 g/m² wet film at 15–25 m/min can yield continuous films if the drying tunnel holds board surface temperature above the MFFT for at least 20 s; below this thermal exposure, particle sintering is incomplete and peel force drops sharply. Field troubleshooting on high-speed coaters frequently identifies cold substrate edges as the first zone to show whitening or delamination, which corresponds to film formation below the measured MFFT.
The particle stabilization system also contributes to film formation. Conventional VAE emulsions are stabilized by anionic surfactants and protective colloids such as polyvinyl alcohol. In EVA 50-R, the protective colloid can increase dry film hydrophilicity and wet tack, while surfactant can migrate to the adhesive interface and reduce heat resistance. Before production use, the formulator should quantify the surfactant effect by measuring lap shear before and after the first heat cycle. Mechanical stability is evaluated on a high-speed disperser at 8,000–10,000 rpm for 10 min; coagulum is recovered on an 80 µm screen and reported as weight percent. This test is not a substitute for full line qualification but identifies batches that may block filters on slot-die coating stations.
Blocking resistance and heat resistance are controlled by compounding rather than by the neat polymer. After complete drying, films may be tested for block resistance with ASTM D4946 at 43°C and 0.7 kg/cm² for 24 h. The test result is strongly influenced by protective colloids, plasticizer residues, and coalescent selection; a neat VAE film can block even when adhesive strength is acceptable. Therefore, EVA 50-R should be evaluated in the fully compounded state. Water resistance is moderate by ISO 527-3 tensile retention after 24 h immersion, but water whitening can appear before mechanical loss. For applications requiring hot water resistance, a crosslinking mechanism or a different polymer class is required. Published data for this specific grade in extended hot-water immersion is limited; substitution into wet-service end uses should be preceded by a laminated-part test rather than isolated film data.
Incoming material release is typically verified against the parameters in the following table. Values are expressed as the class expected for a 50% solids VAE dispersion; the exact product-specific limits are issued by the manufacturer and may differ by production campaign.
| Parameter | Method | Typical control band |
|---|---|---|
| Non-volatile content | ISO 3251 | Nominal 50%; manufacturing band 49–51% |
| pH | ISO 976 | 4.0–5.5 |
| Brookfield viscosity | ISO 2555, RVT spindle 3, 12 rpm, 23°C | 2,500–7,500 mPa·s |
| Density | ISO 2811-1 | 1.05–1.10 g/cm³ |
| Minimum film forming temperature | ISO 2115 | Class below 5°C; batch-specific value required |
| Residual vinyl acetate monomer | ISO 13741-2 | Low parts-per-million range; limits from safety data sheet |
| Coagulum on 80 µm screen | Internal method | Below 0.05% of wet dispersion |
The dispersion is shear-thinning. Brookfield viscosity alone does not fully define coating behaviour; high-shear viscosity under a cone-and-plate rheometer at 10,000 s⁻¹ or capillary flow is better correlated with roller coater transfer and doctor blade levelling. High-shear viscosity at 10,000 s⁻¹ is more predictive of transfer on a roller coater than Brookfield viscosity at 12 rpm. Some production plants measure viscosity recovery after 24 h; a rise above 15% can indicate protective colloid hydration or partial destabilization. The pH drift between raw material receipt and compounding often remains below 0.3 units for stable batches under closed storage at 23°C. Particle size distribution, usually assessed by laser diffraction ISO 13320-1, controls mechanical stability and penetration into porous substrates. Residual monomer levels are monitored by gas chromatography; tight specification shows that the reaction has reached high conversion and reduces odour.
For adhesive compounding, EVA 50-R is diluted to a target coating solids of 40–55% after other ingredients are incorporated. High-solid mixes often use a vacuum dissolver with peripheral blade speed of 5–10 m/s; tip speeds above 15 m/s can generate local heat and produce skinning or coagulum. Continuous lamination via direct gravure or slot-die coating is preferred over airless spray when the film-weight tolerance must remain within ±2 g/m². Wet deposits of 60–120 g/m² are common in wood-to-paper and foam-to-PVC bonding, but the final weight should be fixed by peel tests according to ASTM D903-98 on the production substrate. Drying tunnels are zoned; the first zone is held below 70°C to prevent surface skinning, while later zones may reach 90–110°C for moisture removal. The line should deliver surface temperature at or above MFFT + 5°C for 15–20 s to secure film coalescence. At relative humidity above 70%, final water release slows and exhaust air volume should be increased before coalescent additions. In nonwoven binder padding, EVA 50-R is applied at 5–15% dry fibre mass, and cure at 140–160°C for 1–3 min is common when a crosslinkable formulation is used. The neat grade without crosslinker provides limited wet strength; this boundary must be evaluated by ISO 9073-3 tensile testing after water immersion.
Mineral fillers such as calcium carbonate with median particle size 10 µm increase Brookfield viscosity when loaded above 20 phr dry resin and reduce wet tack if particle packing prevents polymer interdiffusion. Fumed silica at 0.5–2.0 phr can provide thixotropy for vertical application, but overdispersion breaks the network and sag reappears. Tackifier ester dispersions must be pH-checked; those with pH below 4 can destabilize an anionic emulsion if added rapidly. Addition sequence should follow water, protective colloid, filler, dispersion, then thickener and defoamer. Reverse addition of thickener before the polymer can create local high-viscosity zones and coagulum. On production lines, these failures appear as filter plugging at 100–200 µm screens and streak defects in roller coating.
Substitution of EVA 50-R for a PVAc homopolymer or an acrylic dispersion involves different trade-offs. The following table provides a relative engineering comparison; the ratings are not direct measurements on EVA 50-R unless a cited method is used on the final compound.
| Comparison dimension | Method/frame | VAE EVA 50-R class | PVAc homopolymer | Acrylic dispersion |
|---|---|---|---|---|
| External plasticizer requirement | Film flexibility after accelerated ageing | None required | Often required | Usually not required |
| Minimum film forming temperature | ISO 2115 | Typically <5°C | 15–22°C class | Typically <5°C |
| Wetting of low-energy surfaces | Peel adhesion after corona/flame, ASTM D903-98 | Moderate; wetting agent selection critical | Low to moderate | Moderate |
| Exterior water and UV resistance | ISO 527-3 after 24 h water immersion; ISO 4892-2 weathering | Limited | Limited | Higher than VAE/PVAc |
| VOC potential without coalescent | ISO 11890-2 | Below 1 g/L class | Below 1 g/L class | Below 1 g/L class |
The primary difference from PVAc homopolymer is the removal of external plasticizer from the formulation. Plasticizer migration in PVAc films can embrittle the bond line and stain substrates; EVA 50-R avoids this failure mode because the flexible unit is copolymerized into the backbone. Relative to acrylics, vinyl acetate-ethylene copolymers often show better adhesion to polar cellulosic surfaces in peel testing by ASTM D903-98 and can exhibit lower raw-material cost per dry kilogram, but exterior UV stability and water resistance remain lower. When replacing solventborne polychloroprene in contact bonding, EVA 50-R reduces volatile organic compound load but may not match the instantaneous grab or high-temperature creep resistance of a crosslinked solventborne system when screened by ASTM D903-98 peel and EN 14257 elevated-temperature lap shear. Open time is typically shorter; line response may require lower application weight, higher wetting-agent loading, or induction heating of the dried surface before bonding. Published data for EVA 50-R in direct substitution is limited, so these comparisons must be verified on the target substrate.
Storage and formulation boundaries are set by ionic stability and hydrolysis chemistry. The product is stored at 5–35°C and protected from freezing; one freeze-thaw cycle can produce coagulum that blocks 80 µm screens and slot-die lips. Processing vessels should be stainless 316L, glass-lined, or plastic; copper, brass, and galvanized surfaces are excluded because acetic acid released from vinyl acetate hydrolysis can corrode them. Cationic fixatives, trivalent metal salts, and low-pH additives should not be added directly to the emulsion because charge imbalance causes coagulation. Dilution water should be chloride-free and, when necessary, adjusted to pH 4–6 before introduction. Biocide preservation must be re-evaluated after dilution because active concentration drops proportionally. The uncoalesced VOC content is typically below 1 g/L by ISO 11890-2, but coalescing solvents and reactive diluents shift this value. REACH registration is communicated in the safety data sheet; food-contact status is not inherent to the neat emulsion and must be confirmed for the final compounded adhesive under FDA 21 CFR 175.105 or EU Regulation 10/2011. The product should not be used below its MFFT without coalescent addition, because surface cracks and loss of peel force may result. Published data for this specific grade under extreme pH or high-temperature ageing is limited; such conditions require pre-qualification on production equipment.