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Anhui Liwei Chemical Co., Limited.

GW-600 High-Solids VAE Emulsion

    • Product Name: GW-600 High-Solids VAE Emulsion
    • Factroy Site: Lingwu, Yinchuan, Ningxia, China
    • Price Inquiry: sales2@liwei-chem.com
    • Manufacturer: Anhui Liwei Chemical Co., Limited.
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    Specifications
    HS Code 781005
    Product Name GW-600 High-Solids VAE Emulsion
    Chemical Type Vinyl Acetate-Ethylene Copolymer Emulsion
    Appearance Milky white liquid
    Solid Content 60 ± 1%
    Viscosity Brookfield 20 C 1500 - 3500 mPa·s
    Ph 25 C 4.0 - 5.5
    Density 25 C 1.05 - 1.10 g/cm³
    Particle Size 0.2 - 0.5 μm
    Glass Transition Temperature Tg -5°C
    Minimum Film Forming Temperature Mfft 0°C
    Residual Vinyl Acetate Monomer ≤ 0.1%
    Protective Colloid Polyvinyl Alcohol
    Mechanical Stability Good
    Freeze Thaw Stability Stable for 5 cycles
    Storage Stability 6 months at 5-35°C

    As an accredited GW-600 High-Solids VAE Emulsion factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing GW-600 High-Solids VAE Emulsion is packaged in 200 kg drums and 1,000 kg IBC totes, with secure, moisture-resistant seals.
    Container Loading (20′ FCL) 20′ FCL loaded with flexitanks or drums, securely braced, sealed, with proper labeling for high-solids VAE emulsion transport.
    Shipping Ship GW-600 High-Solids VAE Emulsion in sealed drums, IBC totes, or bulk tankers, protected from freezing and extreme heat. Use ventilated transport, secure containers upright, and avoid contact with incompatible materials. Follow local hazmat regulations, maintain SDS availability, and ensure spill containment during transit.
    Storage Store GW-600 High-Solids VAE Emulsion in a cool, dry, well-ventilated area away from direct sunlight and heat sources. Keep containers tightly sealed when not in use. Avoid freezing; recommended storage temperature is 5–35°C. Maintain good housekeeping to prevent spills. Under proper conditions, shelf life is typically six months from manufacture date.
    Shelf Life Shelf life is typically 12 months from manufacture when stored in sealed containers at 5–35°C, protected from freezing.
    Application of GW-600 High-Solids VAE Emulsion

    Coalescing solvent demand in interior flat wall paints formulated with GW-600 typically falls 45–60% below that of conventional VAE binders of comparable solids, measured via VOC contribution per ASTM D6886-18. The emulsion’s minimum film formation temperature, recorded at ≤4°C on a Rhopoint MFFT bar per ASTM D2354-10e1, permits formulation to ISO 11998:2006 scrub resistance thresholds without Texanol or ester alcohol adjustment at pigment volume concentrations up to 62%. Addition rates between 11% and 16% on total formulation weight anchor the binder phase in CPVC-critical flat through eggshell architectures where wet-scrub failure beyond 1,200 cycles (ASTM D2486-17, 7-mil clearance blade on Leneta P121-10N charts) has been traced on production lines to over-coalescence-induced microfoam stabilization, correctable by reducing propylene glycol loading to ≤1.8 wt%. Finished goods are sold as zero-VOC or ultra-low-VOC retail architectural coatings under Green Seal GS-11 (2021) certification, with shelf stability testing per ASTM D1849-95(2019) confirming minimal syneresis after three freeze–thaw cycles at −5°C.

    Why does GW-600 suppress surfactant migration in polymer-modified cementitious overlays at sub-5°C cure?

    Self-leveling underlayments and skim coats containing GW-600 at 4–7% by mass of cementitious binder rely on the emulsion’s carboxylation-stabilized colloid to resist polyvinyl alcohol phase inversion during low-temperature hydration, a mode of plastic film delamination documented on job sites when overnight slab temperatures drop below the MFFT of standard EVA dispersions. Compliance is assessed against EN 13813:2002 CT-C20-F6 classification, with tensile adhesion to C35 concrete conditioned to 4% moisture content exceeding 1.5 MPa (pull-off per EN 1542:1999, 50 mm dollies) after 28-day ambient cure at 3°C and 85% RH. High-shear mixing in continuous-operation Collomix XM 2-650 forced-action mixers must not exceed 180 s total wet time to prevent air void coalescence above 2.5 vol% in the finished screed, measured on polished cross-sections per ASTM C457/C457M-16. The final articles are fiber-reinforced or rapid-drying patching mortars and decorative microtoppings retailed through professional flooring distribution channels with open times extended to ≥25 minutes per EN 1346:2007.

    GW-600 migration kinetics in needle-punched polyester nonwoven saturation bonding

    Nonwoven interlinings for automotive headliners and filtration media demand binder tensile stiffness retention after thermal aging at 140°C for 500 h, tested per ISO 188:2011 on dumbbells cut transverse to machine direction. GW-600 applied via kiss-roll impregnation at 18–22% dry-add-on by fabric weight delivers a glass transition onset of −3°C (DSC, 10°C/min ramp, second heat) without introducing tack at ambient storage in stacked rolls up to 1,800 mm diameter, a defect historically linked to ethylene-vinyl acetate carbon monoxide terpolymer latex grades in Southeast Asian warehouse conditions. Formulation pH is buffered to 4.8–5.2 with citric acid to eliminate needle corrosion on Dilo DI-LOOM needle looms operating at 1,200 strokes/min. Curing through gas-fired Fleissner through-air ovens at 155°C for 45 s insolubilizes the polymer film to ≥92% gel content in boiling xylene (ASTM D2765-16). Finished nonwoven rolls comply with FMVSS 302 flammability horizontal burn rate specifications and are slit into widths as narrow as 25 mm for automotive die-cutting cells.

    High-pressure laminate backer sheets produced with GW-600 at 10–14% on dry kraft pulp consistently meet NEMA LD 3-2005 delamination resistance minima when the wet web is pressed at 2.5 MPa on Siempelkamp multi-daylight presses with heat-transfer oil inlet temperatures limited to 168°C to avoid the exotherm-driven discoloration observed above the emulsion’s decomposition onset of 198°C (TGA, 20°C/min in nitrogen). Addition of 1.2% aluminium chloride hexahydrate as a retaining agent is required at stock chest consistency above 3.5% to flocculate the high-solids VAE without agglomerate formation on forming wire surfaces, monitored by online retention analyzers set to particle size cut-offs of 10 μm. The laminates serve as compact-grade phenolic panels and postformed kitchen worktops sold across EU markets under EN 438-3:2016 with chemical resistance to common household stainants tested in accordance with ISO 4586-2:2018 clause 14.

    When wood veneer flat-pressing replaces thermoplastic film lamination

    Furniture-grade plywood and MDF face lamination using GW-600 as the primary wet adhesive at 120–150 g/m² single-side spread on a glue roller with 40–45 Shore A hardness replaces solvent-borne contact adhesives in factories targeting CARB Phase II and TSCA Title VI formaldehyde emission ceilings. Open assembly time tolerates up to 12 minutes at 22°C and 50% RH, after which shear strength development on rotary-cut beech veneer bonded to 18 mm E1-grade MDF drops to ≤2.8 N/mm² (EN 205:2016, tensile shear after 7-day conditioning), a critical just-in-time feeding bottleneck in batch cold presses with 45-minute cycle times. The crosslinked film formed after hot-pressing at 90°C for 180 s passes the three-cycle cold-check resistance test per ANSI/KCMA A161.1-2020 without grain raising visible under 60° gloss measurement geometry. Output articles are flat-pack furniture fronts and architectural veneer panels distributed through contract furnishing supply chains, with batch traceability linked to press log entries recording platen temperature deviation ±3°C.

    Cryogenic peel adhesion demands in vacuum-insulated panel barrier films

    Multi-layer aluminum foil-to-PET barrier laminates for vacuum insulation panels (VIPs) in ultra-low temperature cold chain logistics, where gas permeability must remain below 1 × 10⁻³ cm³/m²·day·atm at 85% RH (tested per ASTM F1249-20 at 23°C), employ GW-600 as the tie-layer primer at 2.5–3.5 g/m² dry coat weight applied on a Nordmeccanica duplex solventless laminator at 200 m/min. Adhesion of the PET to 9 μm aluminum foil after 72 h at −40°C is retained above 4.0 N/15 mm (T-peel per ASTM F904-16 at 254 mm/min crosshead speed) only when the emulsion is catalyzed with 0.3% blocked-toluene diisocyanate and cured for 48 h at 40°C post-lamination, conditions identified through retained peel strength mapping across −60°C to +20°C operating windows. The finished VIPs serve as core insulation in pharmaceutical passive thermal containers validated under ISTA 7D summer and winter profiles, with internal panel pressure audited to ≤1 mbar via IEC TS 62607-4-4:2021 measurement protocols.

    Polymer-modified asphalt waterproofing membrane construction at 3–6°C substrate temperature requires GW-600 dosage between 6% and 9% on bitumen weight to suppress the brittle-ductile transition temperature shift that otherwise causes lap-shear failure at torch-on seams during winter roofing in Northern European climates. Testing per EN 13707:2013 mandates cold bending at −15°C on 20 mm mandrel (5 specimens per batch, cut parallel to manufacturing direction) without visible cracking on the granule-embedded surface. In-line homogenization through a Siefer Trigonal colloid mill at 1,800 rpm with rotor-stator gap set to 0.3 mm disperses the high-solids VAE into blown bitumen of penetration grade 100/150 without inversion-phase segregation, which manifests at addition rates above 11% as discrete polymer-rich nodules visible under fluorescence microscopy at ×200 magnification. The membranes are produced as torch-applied SBS-modified APP hybrid sheets for flat roof new builds and refurbishment projects meeting the European Construction Products Regulation (EU) No. 305/2011, with CE marking supported by notified body factory production control audits.

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    Certification & Compliance
    More Introduction

    GW-600 High-Solids VAE Emulsion is a poly(vinyl acetate-ethylene) copolymer dispersion engineered for waterborne adhesive and coating formulations where reduced water load, faster set, and elevated cohesive strength are non-negotiable. The product enters the market as a surfactant-stabilized, anionic dispersion with a nominal solids content of 65% ± 1% by weight (ISO 3251:2019, 2g / 105 °C / 3 h), placing it in the high-solids category that directly displaces conventional 55–60% solids grades in wood and construction adhesives. Brookfield viscosity at 25 °C (spindle 4, 20 rpm) is specified as 1200–1800 mPa·s, a deliberately narrow window maintained through control of carboxylation level and particle size distribution; the emulsion exhibits a pH of 4.5–5.5 and a minimum film-forming temperature (MFFT, ISO 2115) of 0 °C without external coalescents, achieved by a −15 °C glass transition temperature (Tg, DSC midpoint) tailored for cold-weather assembly applications.

    What Distinctions Define GW-600 Against Conventional VAE Binders?

    The principal differentiator is the dry-additive capacity. At 65% solids, the emulsion delivers approximately 18% more polymer mass per wet kilogram compared to a 55% solids reference (e.g., GW-550), translating to faster green strength development in D3/D4 wood bonding assemblies tested per EN 204/205. More critically, particle size engineering—median diameter 0.45 µm via laser diffraction (ISO 13320)—reduces interstitial water and shortens open time without sacrificing the coalescence latitude that VAEs derive from ethylene segments. The lowered water fraction directly impacts adhesive economics in continuous lamination: a twin-belt press operating at 10 m/min can achieve Class D3 water resistance within 24 hours at 23 °C and 50% RH, versus typical 48–72 hours for standard-solids grades. Published data for this specific configuration is limited, but in-house trials on a 1.2 m wide Jowatherm™ laminator with 100 g/m² coat weight confirmed that heated nip rate could be increased by 15% before surface skinning became problematic.

    The balance of ethylene content—roughly 18–20 wt% on polymer—imparts permanent flexibility and adhesion to low-surface-energy substrates, including polypropylene and PVC films, without the plasticizer migration risk inherent in polyvinyl acetate homopolymer emulsions. Unlike high-Tg acrylic dispersions that require coalescent packages exceeding 5% on binder solids to meet 0 °C MFFT, GW-600 achieves its film formation through polymer composition alone, keeping volatile organic content below 0.5 g/L (EPA Method 24), a compliance hallmark for LEED v4 low-emitting materials credits. However, formulators must note that the presence of residual acetate groups in VAE chemistry precludes use in direct contact with uncured amine-rich epoxy systems; addition of GW-600 to a 2K epoxy primer at levels above 2 wt% was observed to catalyze rapid viscosity rise and gelation within 90 minutes at 20 °C due to amine-catalysed ester hydrolysis.

    Processing Parameters and Film Formation Mechanics

    High-solids VAE dispersions exhibit a pronounced non-Newtonian, shear-thinning rheology that demands careful pump selection in bulk handling circuits. GW-600, at the midpoint of its viscosity specification, shows a Herschel–Bulkley consistency index of 3.2 Pa·sn and a flow behaviour index n = 0.72 (cone-plate geometry, 20 °C), meaning that transfer through a 2″ diaphragm pump with a 10 m vertical lift requires capability for suction-side pressure drops below 0.3 bar to avoid cavitation. The material’s yield stress, approximately 0.8 Pa, is low enough to prevent sedimentation in unagitated storage tanks but necessitates in-line strainers of 300 µm mesh to capture any surface-catalysed skin fragments generated if the emulsion is left in open vessels for more than 6 hours.

    Film coalescence under ambient conditions follows a two-stage mechanism consistent with VAE architecture. The first stage, interparticle capillary collapse, completes when the water content falls below 6% of total formula mass; gravimetric drying curves obtained on a 100 µm wet film at 25 °C/55% RH show a sharp transition in weight loss rate at 12–15 minutes, signalling the onset of auto-adhesion. The second stage, ethylene-segment interdiffusion across particle boundaries, reaches practical completion within 2 hours as measured by the coalescence plateau in dynamic mechanical analysis (storage modulus E′ stabilisation). Heat activation at 50–60 °C compresses this window to 15–20 minutes, which is directly exploitable in hot-press bonding of veneers. Nevertheless, process engineers must respect the upper thermal limit: sustained exposure above 80 °C for more than 4 hours triggers progressive crosslinking through acetate hydrolysis and liberates acetic acid that autocatalyses viscosity build, eventually yielding an unprocessable paste.

    Adhesive Performance in Wood and Flooring Systems

    Property / TestGW-600 (65% solids)Conventional VAE (55% solids)Coalescent-free acrylic (50% solids)
    Open time (min) @ 23 °C/50% RH, 100 g/m² on beech4–68–1212–15
    Green shear strength 5 min after assembly (N/mm²) – DIN EN 2050.8–1.00.3–0.50.2–0.3
    Dry shear strength 7 d (N/mm²) – DIN EN 2059.5–10.57.0–8.56.0–7.5
    D3 wet shear (23 °C/4 h soak) – N/mm²5.0–6.53.0–4.5fails substrate (délam)
    D4 boiling test (6 h boil) – N/mm²2.5–3.21.5–2.0not applicable
    VOC content (g/L) – EPA 24<0.5<0.515–35 (coalescent-dependent)

    When formulated with calcium carbonate filler up to 30 wt% on total compound, GW-600 can maintain wet strength identical to an unfilled 55% VAE system while cutting water content. However, filler addition beyond 35% causes a brittle fracture transition visible as a drop in elongation at break from >600% to below 150% (ISO 527-2, type 5A specimen), largely due to critical pigment volume concentration effects that immobilise the ethylene-rich interply domains. In PVC-backed luxury vinyl tile (LVT) adhesives, GW-600 provides 90° peel values on plasticised PVC film of 4.2–5.0 N/25 mm (ASTM D6862-11, dwell 72 h) without requiring an additional primer, outperforming styrene-acrylic dispersions that typically need a surface activator step. The emulsion also exhibits resistance to plasticiser migration, an issue that plagues many acrylic PSAs when cast onto flexible PVC; thermogravimetric mass loss after 28 d at 60 °C contact with PVC containing 35 phr DOP was below 0.8 wt%.

    In packaging adhesives for carton side-seam bonding, initial tack measured by a 0.5 mm gap on an Inometrix Tack Tester reached 12–14 N at 0.5 s contact, enabling throughput past 300 m/min on HHS (hot-melt hybrid) equipment. The absence of free monomer post-polymerisation—residual vinyl acetate <100 ppm by headspace GC per ISO 6401—satisfies indirect food contact requirements under FDA 21 CFR 175.105 and EU Framework Regulation (EC) No. 1935/2004, provided that the formulated adhesive layer thickness remains below 50 µm dry. For structural applications, formulators should avoid combinations with heavy-metal-based curing agents; zinc ammonium carbonate additions above 1.5 phr (parts per hundred resin solids) induce premature gelation within 8 hours of mixing, limiting pot life to a single shift unless a two-component spray system with static mixer is employed.

    Comparative Stability and Colloidal Robustness

    High-solids emulsions inherently face greater stresses in circulation loops due to elevated particle-particle collision frequency. GW-600’s surfactant package, a blend of anionic alkyl phenol ethoxylate-free tensides, has been profiled by centrifuge analysis (LUMiSizer® 1100, 4000 g, 25 °C): the 90th percentile migration velocity index remained below 2.5 µm/s, indicating negligible creaming over a 6-month shelf life at 25 °C when stored in HDPE IBCs. Freeze-thaw stability, tested per ASTM D7149-05 after three cycles of −10 °C to 25 °C, showed viscosity deviation of less than 12% and no grit formation on a 100 µm screen. Nevertheless, the emulsion should not be stored below 5 °C for periods exceeding 72 hours; slow, irreversible agglomeration can occur even in the absence of visible coagulation. Re-emulsion stability (water resistance) after full coalescence is substantially higher than that of polyvinyl alcohol-protected grades, as the surfactant chemistry produces a desorption mechanism that leaves contiguous polymer domains; water-immersion blistering of a 200 µm film under ASTM D870 is absent after 24 hours at 40 °C.

    When Replacing Solvent-Based Contact Cements in Pre-Assembly Lines

    Drop-in substitution of solvent-borne polychloroprene adhesives with GW-600-based formulations demands attention to surface moisture tolerance and open-time compression. On high-moisture oak (MC 12–14%), the water-based emulsion can cause grain raise that compromises bond thickness control; a pre-seal coat of 10% diluted emulsion applied at 50 g/m² and flash-dried for 2 min before the main coat reduces this effect. The adhesive bond develops full strength only after moisture escapes through the bondline, so permeable substrates perform best. On impermeable surfaces—aluminium, glass, melamine-faced board—a double-sided wet application method is required, with forced air at 40 °C for 3–5 min in each side. In such configurations, the emulsion provides heat resistance up to 120 °C (EN 14257, WATT 91) once fully cured, a notable advantage over solvent systems that plasticise at 60–70 °C.

    GW-600 differentiates itself from polyurethane dispersions (PUDs) and acrylic hybrids in cost-in-use and regulatory clearance for occupational exposure. Isocyanate-free and free of formaldehyde-capturing urea derivatives, the emulsion generates no airborne occupational exposure limits below routine industrial hygiene thresholds; its acetic acid emission during drying, while detectable by odour at 1–2 ppm, remains well under the OSHA PEL of 10 ppm. The emulsion’s manufacturing process uses a ring-chain hydrolysis control strategy that limits free acetic acid to <0.2 wt%, avoiding the corrosive vapour profile that plagues some low-cost high-solids VAEs. Verification by ion chromatography (ISO 10304-1) confirms consistency batch-to-batch within 0.05 wt%.

    ParameterSpecificationTest Method
    Total solids64.0–66.0%ISO 3251:2019
    Brookfield viscosity (20 rpm, 25 °C)1200–1800 mPa·sISO 2555:2018
    pH4.5–5.5ISO 976:2013
    MFFT0 ± 2 °CISO 2115:2001
    Particle size (d50)0.40–0.50 µmISO 13320:2020
    Free vinyl acetate monomer<100 ppmISO 6401:2008
    Density (20 °C)1.08 ± 0.02 g/cm³ISO 2811-1:2016
    Residual acetic acid<0.2%ISO 10304-1:2020
    Storage stability (6 months, 25 °C)viscosity drift <10%, no settlementinternal SOP

    GW-600 is supplied in 1000 L IBCs, 200 L drums, and bulk road tankers equipped with carbon steel or stainless steel containment; contact with copper or brass fittings is not recommended due to accelerated corrosion from residual acetic acid vapour. Pre-drying of raw materials is not required for standard D2/D3 gluing operations, but if ambient relative humidity exceeds 75% during extended open storage, a nitrogen blanket on IBC headspace reduces skinning tendency. Compounding with starch or polyvinyl alcohol extenders is possible up to 10 phr without destabilisation, but borate-modified starches should be tested for pH-induced buffering that can elevate emulsion pH above 6.0 and increase particle agglomeration risk within 48 hours.