| HS Code | 411950 |
| Solid Content | 55±1% |
| Viscosity | 3000-8000 mPa·s (Brookfield, 25°C) |
| Ph | 4.5-6.0 |
| Glass Transition Temperature | 0°C |
| Minimum Film Forming Temperature | 0-5°C |
| Particle Size | 0.5-2.0 μm |
| Surface Tension | 35-40 mN/m |
| Density | 1.05-1.10 g/cm³ |
| Residual Vinyl Acetate | <0.1% |
| Freeze Thaw Stability | stable for 5 cycles |
| Mechanical Stability | excellent |
| Film Clarity | transparent to translucent after drying |
| Water Resistance | good |
As an accredited GW-707 VAE Emulsion factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Supplied in 200 kg steel drums or 1,000 kg IBC totes, tightly sealed to prevent contamination and moisture loss. |
| Container Loading (20′ FCL) | 20′ FCL: one full 20-foot container of GW-707 VAE Emulsion, packed in drums, secured and braced for safe transport. |
| Shipping | GW-707 VAE Emulsion ships in sealed drums, totes, or ISO tank containers to prevent contamination and moisture loss. Protect from freezing and excessive heat; ideal storage is 5–35°C. Use dedicated pumps and clean equipment. Standard non-hazardous classification applies for road, rail, and sea transport. |
| Storage | Store GW-707 VAE Emulsion in sealed original containers in a cool, dry, well-ventilated area away from direct sunlight, heat, and ignition sources. Maintain temperatures between 5°C and 35°C; do not allow freezing. Keep containers tightly closed when not in use and rotate stock to prevent prolonged storage. |
| Shelf Life | Shelf life is typically 6 months from manufacture date when stored sealed, away from frost, heat, and direct sunlight. |
| CaCO3 Loading (phr) | ISO 8543 Dry Peel (N/5cm) | ISO 8543 Wet Peel after 24h (N/5cm) | Tuft Bind ISO 4919 (N) |
|---|---|---|---|
| 250 | 34 | 20 | 48 |
| 350 | 29 | 15 | 35 |
| 450 | 21 | 9 | 24 |
| 550 | 11 | 4 | 13 |
Graph shows trend data; values are indicative of VAE pre-coat systems and not a GW-707 specification. Field trials must be performed on the target substrate line.
| Crosslinker System | Typical phr on Dry Resin | EN 204 Class Attainable | Pot Life at 23 °C (hours) | Minimum Hot Press Temperature (°C) |
|---|---|---|---|---|
| None (physically drying) | 0 | D2 | >48 | 80 |
| Aziridine (polyfunctional) | 1.5–2.5 | D3 | 4–6 | 85 |
| Polymeric MDI isocyanate | 5–8 | D4 | 2–3 | 95 |
The above ranges reflect adjustment of GW-707 with laboratory-grade crosslinkers; industrial results vary with wood species, extractive content, and ambient humidity. Validation per factory line conditions is essential.
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The GW-707 VAE emulsion is a carboxylated vinyl acetate-ethylene copolymer dispersion designed for low-temperature coalescent-free film formation. With an ethylene content of approximately 25 wt% (by pyrolysis-GC/MS), the polymer exhibits a glass transition temperature (Tg) of -15 °C (midpoint, ISO 11357-2) and a minimum film formation temperature (MFFT) of 0 °C (ISO 2115). In contrast to the standard GW-705 grade (ethylene 18 wt%, MFFT 5 °C) and to conventional PVAc homopolymers, GW-707 does not require the addition of external coalescing solvents to form a coherent film at 10 °C ambient temperature—a property directly linked to the polyethylene block’s ability to reduce the modulus in the film-formation zone. The dispersion is stabilized by a combination of medium-hydrolysis polyvinyl alcohol (PVOH, degree of hydrolysis 88–89 %) and a branched alcohol ethoxylate surfactant, yielding a broad shear stability window. Typical applications include D3-grade cold-curing wood adhesives (EN 204:2016), flexible packaging lamination adhesives, nonwoven binders, and textile backcoatings where compliance with FDA 21 CFR 175.105 for indirect food contact is required.
The combination of PVOH and a polyoxyethylene alkyl ether with a cloud point above 75 °C creates a steric barrier that prevents shear-induced flocculation at shear rates up to 10⁴ s⁻¹ (as measured in a rotational rheometer with cone-plate geometry). Standard single-surfactant VAE grades often exhibit a rise in mean particle size from 0.35 µm to >0.55 µm after 8 hours of circulation through a gear pump at 1500 rpm, accompanied by coagulum buildup on the pump’s mechanical seal. In GW-707, the particle size distribution remains unimodal with a D₅₀ of 0.35 µm and a span of 0.6 after the same exposure, as determined by laser diffraction (ISO 13320). This stability advantage stems from the high cloud point surfactant preventing salting-out during local temperature spikes at pump clearances. Additionally, the PVOH forms a hydrated layer that resists desorption under alkaline washdown, reducing the risk of hard-to-clean deposits in coating lines employing pH 9–10 cleaning solutions. Production-scale observations on a multi-station laminator with recirculation hold-up of 25 L confirmed that filter changes were reduced from every 6 hours (with a competitive VAE) to every 24 hours when GW-707 was used.
| Property | Value | Test method |
|---|---|---|
| Solids content | 55 ± 1 % | ISO 3251 |
| pH | 4.5–5.5 | ISO 976:2013 |
| Brookfield viscosity (spindle 3, 20 rpm, 23°C) | 2000–4000 mPa·s | ISO 2555 |
| MFFT | 0 °C | ISO 2115 |
| Glass transition temperature (Tg) | -15 °C | ISO 11357-2 |
| Average particle diameter (D₅₀) | 0.35 µm | ISO 22412:2017 |
| Density, 20°C | 1.07 g/cm³ | ISO 2811-1 |
| Ethylene content (dry polymer) | 25 wt% | Internal GC/MS |
| Residual vinyl acetate monomer | <500 mg/kg | ISO 13741-1 |
| Coagulum on 40 µm sieve | <0.01 % | ISO 4576 |
In a typical D3-grade wood adhesive formulation based on EN 204:2016, 100 parts GW-707 emulsion are compounded with 5 parts of a hydrophilically modified polyisocyanate (pMDI) dispersion (NCO content 19 %) and 0.5 parts of a buffering solution (sodium acetate/acetic acid, pH 4.8) using a 60-L planetary mixer at 30 rpm. The native pH of GW-707 (4.8–5.2) retards the isocyanate-water reaction sufficiently to deliver a working life of approximately 45 min at 23 °C; however, if the mixer is inadvertently replaced with a high-speed dissolver, shear heating can push the batch temperature above 35 °C, collapsing the pot life to under 15 min and generating CO₂-induced foam that requires 0.2 % silicone defoamer addition. After a 4-day immersion in cold water (23 °C), the cured adhesive on beech substrates achieved a tensile shear strength of 4.2 N/mm² with wood failure consistently exceeding 70 %, meeting the EN 204 D3 requirements. When the final mixture pH dropped below 3.8—observed when an unbuffered aluminium chloride catalyst was substituted—irreversible batch gelation occurred within 10 min. Published data for the exact pMDI/GW-707 reaction kinetics beyond 60 min is limited.
Incorporating calcium carbonate filler at 30 wt% on total compound with GW-707 requires a careful balance between dispersion intensity and shear stability. A Cowles-type dissolver equipped with a 250-mm saw-tooth blade and operated at a tip speed of 15–20 m/s provides sufficient energy to break up agglomerates while keeping the emulsion’s particle size intact. At 20 m/s, the bulk viscosity drops from an initial 3500 mPa·s to approximately 1100 mPa·s due to shear-thinning, and the median particle size holds at 0.35 µm. When the tip speed is increased to 22 m/s, the temperature rises by 8 °C within 10 min, and the D₅₀ shifts to 0.45 µm with visible micro-gel speck formation. This threshold defines a narrow processing envelope: tip speed must stay between 15 and 20 m/s, and the batch temperature must not exceed 35 °C. Higher tip speeds lead to coagulum that clogs slot-die coaters downstream. Adding filler too rapidly—at rates above 2 kg/min—induces transient pH-homogeneity losses that can trigger local coagulation, even within the safe tip-speed range. A staged addition protocol, in which 50 % of the filler is pre-wetted with water and introduced as a slurry, eliminates this risk.
GW-707 applied via a laser-engraved gravure cylinder on a Schiavi laminator at a line speed of 200 m/min deposits a uniform 2.5 g/m² dry coat on corona-treated PET film (dyne level 48 mN/m). The resulting laminate exhibits no backside transfer when stacked under a pressure of 0.5 kg/cm² for 24 hours at 40 °C, confirming film-blocking resistance without the need for crystallising wax additives. This behaviour is attributed to the absence of low-molecular-weight coalescents and the rapid build-up of surface hardness as the polyethylene segments coalesce.
In direct substitution trials on dense beech (Fagus sylvatica), adhesive joints prepared with GW-707 and 5 % pMDI crosslinker were compared with a commercially available D3 PVAc homopolymer adhesive under identical pressing conditions (0.8 N/mm², 2 hours). Film-level elongation at break was measured on free films conditioned for 7 days at 23 °C/50 % RH per ISO 527-3. The resulting data set is summarised below.
| Adhesive base | Dry strength beech (N/mm²) | Wet strength 4d cold water (N/mm²) | Elongation at break (%) |
|---|---|---|---|
| GW-707 + 5% pMDI | 12.5 | 4.2 | 650 |
| Commercial D3 PVAc homopolymer | 11.0 | 1.8 | 15 |
The 2.3× greater wet strength of the GW-707 system and its high extensibility reflect the capability of the ethylene-rich backbone to dissipate stress without cohesive failure under moist conditions. In contrast, the homopolymer-based adhesive relies on coalesced particle sintering alone, which undergoes significant plasticization from absorbed water.
For textile backcoating of woven polyester, GW-707 is let-down with an acrylic alkali-swellable thickener to a viscosity of 15 000 mPa·s and knife-coated at a dry add-on of 25 g/m².