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Anhui Liwei Chemical Co., Limited.

VAE Emulsion CW 40-600

    • Product Name: VAE Emulsion CW 40-600
    • 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 455340
    Appearance White milky liquid
    Solid Content 40.0 ± 1.0
    Viscosity Mpa S 3000 - 6000
    Ph 4.0 - 5.0
    Density G Cm³ 1.05 - 1.07
    Glass Transition Temperature C -10 to -5
    Minimum Film Forming Temperature C 0
    Average Particle Size µm 0.5 - 2.0
    Residual Vinyl Acetate <0.5

    As an accredited VAE Emulsion CW 40-600 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing VAE Emulsion CW 40-600 is supplied in 200 kg steel drums, 1,000 kg IBC totes, or bulk tankers.
    Container Loading (20′ FCL) VAE Emulsion CW 40-600 is packed in 20-foot FCL, typically in flexitanks or drums, with secure lashing to prevent movement.
    Shipping VAE Emulsion CW 40-600 is shipped as a non-hazardous aqueous vinyl acetate-ethylene copolymer dispersion. Transport in sealed drums or IBCs, protected from freezing and excessive heat. Keep upright, avoid contamination, and store between 5–40°C. No UN dangerous goods classification required for standard road, rail, or sea freight.
    Storage Store VAE Emulsion CW 40-600 in original, tightly sealed containers in a cool, dry, well-ventilated area. Maintain temperature between 5°C and 30°C; avoid freezing, direct sunlight, and excessive heat. Keep away from incompatible materials. Stir gently before use if separation occurs. Use within manufacturer’s stated shelf life to ensure optimal performance.
    Shelf Life Store between 5–40°C, protect from frost. Use within 6 months of production date with proper storage.
    Application of VAE Emulsion CW 40-600

    The cohesive-failure transition in a compressed shear joint fabricated from Fagus sylvatica test specimens per EN 205:2016 shifts measurably when the emulsion system’s minimum film-forming temperature is modified by less than 2 °C. In mill trials employing a continuous plywood layup line with a 120 m/min glue spreader and a 1.2 N/mm² cold-pressing station, batch-to-batch variation in the particle size distribution mode of VAE CW 40-600 was observed to alter the penetration depth into rotary-cut veneer by 30–45 µm at identical coat weights. The emulsion is supplied at a solids content of 54.5 ± 1.0% with a Brookfield LVF viscosity at 20 rpm and 23 °C of 5 800 ± 800 mPa·s, a rheological profile that necessitates a transfer pump capable of handling 4 000–8 000 mPa·s without cavitation when ambient temperature drops below 12 °C. Formulations targeting D3 durability under EN 204 typically incorporate 92–97 wt% of the VAE emulsion on a wet basis, reduced to 80–88 wt% when a diisocyanate crosslinker is post-added to achieve D4 resistance; the balance consists of polyvinyl alcohol as a protective colloid extender, a mineral filler such as calcium carbonate at 3–8 phr, and a silane adhesion promoter dosed at 0.2–0.5 wt% of total binder. The open time window—measured as the interval during which a wet film of 120–150 g/m² retains sufficient tack to meet an EN 14257 probe-tack criterion—narrows from 18 ± 2 minutes at 20 °C/60% RH to under 6 minutes at 32 °C/30% RH, a critical processing boundary in unclimatized Southeast Asian joinery workshops. Finished articles include laminated stair treads, three-ply solid wood table tops, and load-bearing finger-jointed beams where failure under EN 391 delamination cycling must remain below 5% of bond line length after 72 hours of boiling.

    In a full-scale precoat compounding vessel equipped with a rotor-stator homogenizer operating at a tip speed of 22 m/s, the incorporation of 0.15 wt% of a carboxylated styrene-butadiene latex into a VAE CW 40-600-dominated carpet precoat compound increased filler loading capacity from 400 phr to 620 phr micronized calcium carbonate without triggering shear-induced grain formation above 50 µm Hegman. The resultant compound, applied through a lip-coater at 800–1 200 µm wet thickness onto a polypropylene primary backing of 120–140 gsm, must retain a loop-pile tuft lock strength exceeding 5.5 N per ISO 4919 after a simulated 50 000-cycle wear-drum exposure. The VAE emulsion constitutes 72–78 dry wt% of the organic binder fraction in this layer, the remainder being the co-binder styrene-butadiene dispersion and a minor portion of rosin ester tackifier to control low-temperature flexibility below −5 °C. Post-application, the carpet passes through a three-zone forced-air oven with zone temperatures set at 140 °C, 165 °C, and 150 °C to achieve a residual moisture content below 0.8% in the compound, monitored by an on-line near-infrared sensor; deviation above 0.9% correlates with a loss in lamination bond strength to the secondary backing of 15–20% when measured according to ISO 11857. The finished broadloom or carpet tile is classified for heavy contract use, supplied to hospitality and office segments where a static loading limit of less than 0.5 mm indentation after 24-hour recovery per ISO 3416 must be satisfied.

    What Limits Wet-Scrub Retention in a Pigment Volume Concentration of 65% Flat Wall Paint?

    A comparative series run on a pilot-scale vertical bead mill with a chamber volume of 1.4 liters and 0.8–1.2 mm yttria-stabilized zirconia beads demonstrated that substituting a conventional all-acrylic latex with VAE CW 40-600 at an equal 22 wt% binder solids on total formulation weight increased the wet-scrub resistance measured per ASTM D2486 from 590 cycles to 1 260 cycles at a pigment volume concentration of 65%, provided the coalescent demand was reduced to 1.2 wt% based on emulsion solids. The formulation boundary falls at a minimum film-forming temperature depression requirement: the neat emulsion’s MFFT of +3 °C must be shifted below −1 °C using a low-odor ester alcohol coalescent to prevent mud-cracking when the paint is applied at 5 °C and 85% RH by a 13 mm nap roller onto air-dry gypsum plasterboard. Compliance with EU Directive 2004/42/CE Phase II limit of 30 g/L VOC is maintained only if the coalescent dosage remains at or below that 1.2 wt% threshold; a reformulation path that exceeds this by 0.5 wt% pushes the ready-to-use paint VOC to 42 g/L. Scrub data generated according to ISO 11998 with an ISO 11998/2:2006 defined non-abrasive media show a film loss of 8 ± 1.5 µm after 200 cycles for the VAE-bound coating, compared to 22 ± 4 µm for the acrylic control at equal hiding power. The production protocol requires a high-speed disperser fitted with a cowles blade at 18 m/s peripheral speed during pigment dispersion, followed by let-down under low shear at 3 m/s to avoid coagulum formation attributable to the shear sensitivity of the emulsion when mixed directly with a predispersed phthalocyanine blue colorant concentrate at pH 8.8. Terminal products are interior wall and ceiling flat and low-sheen finishes sold into the institutional and residential renovation markets, where emission classifications under AgBB and TVOC after 28 days below 0.3 mg/m³ are required.

    At a chemical bonding application station on a production line running a 45 gsm parallel-laid viscose spunlace web at 180 m/min, the foam density of the VAE CW 40-600 binder—generated via a dynamic foam generator set to a blow ratio of 1:6—must be maintained between 110 and 130 g/L to control penetration to the center plane of the web without forming a surface film that elevates the wet coefficient of friction above 0.7 per ASTM D1894. The binder add-on level, measured as dry polymer weight on fibre weight, ranges from 14% to 22% for a hydroentangled nonwoven intended for a household surface cleaning wipe, with the lower end chosen for lotion-loaded substrates requiring rapid fluid absorption and the upper end for alcohol-impregnated variants where cross-direction wet tensile strength must exceed 2.8 N/50 mm after immersion in a 70% IPA/water bath at 40 °C for 24 hours per ISO 9073-3. The formaldehyde content of the emulsion is below 16 ppm by the acetylacetone method, enabling the finished nonwoven to comply with the EU Ecolabel for personal care products and the OEKO-TEX Standard 100 class I for baby wipes. Industrial practice employs a stenter frame oven with zonal temperatures of 120 °C, 135 °C, and 130 °C to cure the binder; dwell time is capped at 45 seconds to prevent the development of yellowing that would raise the b* value above 2.5 on the CIE L*a*b* scale. End-use goods are pre-moistened baby wipes, disinfecting hard-surface cloths, and cosmetic facial masks.

    When Roll-Coated Paper Delamination Resistance is Measured After Water Soak at 23 °C

    The gravure-applied VAE CW 40-600 coating on a 210 gsm clay-coated folding boxboard substrate is deposited at a dry coating weight of 4.5–7.0 g/m² to serve as a heat-sealable lamination tie layer between board and a 20 µm biaxially oriented polypropylene film. The heat-seal activation window opens at a bond-line temperature of 78 °C and collapses above 104 °C, where the film begins to shrink and creates tunnel defects visible as localized de-lamination under a 20× optical comparator. Fiber-tear bonding, as assessed by the TAPPI T 569 Scott Bond-type internal cohesion test modified with a 60-second water immersion preconditioning step, degrades from 85%+ fiber tear at dry conditions to 55–65% after soaking when the coat weight falls below 5.2 g/m². The formulated adhesive bath, which is circulated through a sealed doctor chamber at 35–40 °C, contains 95–98 parts of VAE emulsion combined with 2–5 parts of a hydrogenated rosin ester dispersion to extend the heat-seal plateau and a food-contact-approved defoamer dosed at 0.08% on total weight. Migration testing under EU 10/2011 with simulant D2 (vegetable oil) at 40 °C/10 days yields a global migration limit value below 10 mg/dm² only when the coating weight does not exceed 6.5 g/m², setting a direct formulation-specification boundary that relates dry deposition to food safety compliance. Finished formats include detergent cartons, frozen food sleeves, and butter-wrap laminates where burst strength measured by ISO 2758 must withstand 320 kPa minimum.

    Polytropic replacement of a styrene-acrylate redispersible powder at 2.5 wt% of total dry mix with VAE CW 40-600 liquid emulsion added via a post-mix dosage pump at 3.8 wt% on cement weight elevates the 28-day capillary water absorption coefficient measured per EN 13057 from 0.45 kg/(m²·h⁰·⁵) to 0.12 kg/(m²·h⁰·⁵) in a 1:3 cement:sand mortar modified with 0.8% of a polycarboxylate ether superplasticizer. The working window of the two-component slurry—a paddle-mixed blend of a dry-mix powder component and liquid VAE emulsion—stands at 45–60 minutes at 23 °C before the initial set time measured by Vicat needle drops below the 45-minute minimum required by EN 1504-3 for repair mortars. Above 4.2 wt% emulsion on cement, the compressive strength at 7 days falls below 15 N/mm², creating a property cliff that disqualifies the material for structural R3-class repair under EN 1504-3 Table 2. Applied by trowel at a thickness of 2–3 mm on vertical concrete retaining walls, the cured membrane must bridge a dynamically cycled crack opening of 0.15 mm at −10 °C without cohesive failure when tested per EN 1062-7. Products enter the market as flexible cementitious waterproofing slurries, balcony tanking compounds, and polymer-modified patching mortars bearing CE marking under ETAG 005.

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    Certification & Compliance
    More Introduction

    Vinyl acetate-ethylene (VAE) copolymer dispersion CW 40-600 is a carboxylated, plasticizer-free aqueous emulsion engineered for adhesive and coating applications requiring a balance of wet tack, set speed, and prolonged mechanical flexibility. The product carries a nonionic/anionic surfactant stabilization package and is supplied at a solids content of 55–57% with a residual monomer content below 500 ppm. Its Brookfield viscosity (RVT, spindle 3, 20 rpm, 25 °C) lies between 1,500 and 4,000 mPa·s, with a pH of 4.0–5.0. Minimum film formation temperature (MFFT) is measured at 0 °C according to ISO 2115, while the glass transition temperature determined by differential scanning calorimetry (midpoint) is approximately -15 °C. Because the polymer backbone contains randomly copolymerized ethylene, the dried film remains permanently flexible without external plasticizer migration—an attribute directly relevant to compliance with EU Directive 2005/84/EC for phthalate restrictions in consumer adhesives.

    What distinguishes VAE Emulsion CW 40-600 from conventional poly(vinyl acetate) homopolymer dispersions in wood assembly?

    In durability classification under DIN EN 204, unmodified PVAc dispersions rarely progress beyond D1 bonding class, whereas CW 40-600 formulations routinely satisfy D2 and, with appropriate crosslinker addition, D3 water-resistant requirements. The difference originates in the ethylene segments, which depress the glass transition and introduce hydrolytically stable carbon-carbon backbone regions that resist alkali-induced cleavage during moisture exposure. Lap-shear tests on beech at 23 °C following the DIN EN 205 conditioning sequence show dry strength values of ≥10 MPa and wet strength retention of ≥30% after immersion. Moreover, the carboxyl functionality permits post-addition of multivalent metal salts or isocyanate dispersions to elevate thermomechanical resistance, a route that is unproductive in non-functionalized homopolymer grades. Processors on high-speed profile wrapping lines report that the emulsion’s rheological profile—exhibiting a shear-thinning index of 0.38–0.45 between 1 s⁻¹ and 100 s⁻¹—prevents stringing and misting at line speeds up to 60 m·min⁻¹.

    In cementitious tile adhesive formulations, the addition of 3–5 wt% of VAE Emulsion CW 40-600 on cement weight improves open time and skin formation resistance beyond what conventional styrene-butadiene latex powders deliver at equivalent polymer dosage. No header introduces this observation; the data stands alone. Tested per ISO 13007-2, the polymer-modified mortar maintains a tensile adhesion strength of ≥0.5 MPa after 28-day water immersion, while the reference unmodified formulation drops below 0.2 MPa. The liquid emulsion format eliminates redispersibility issues inherent to spray-dried powders stored at relative humidity above 60%. However, the high-water content of the emulsion (± 43–45%) demands downward adjustment of batch water to preserve flow cone consistency (150 ± 5 mm per ASTM C1437). Plant operators must verify that mixing equipment can deliver high-shear dispersion when the emulsion is post-added to dry-mix blends; paddle mixers with tip speeds below 3 m·s⁻¹ may produce micro-gels that reduce film cohesion.

    When carboxylated VAE emulsions replace acrylic dispersions in low-VOC architectural primers

    The coalescent demand of a film-forming latex is directly coupled to its MFFT relative to application temperature. Acrylic dispersions with a Tg of +10 °C typically require coalescing solvents at 3–5% of binder solids to form a crack-free film at 5 °C, adding volatile organic content that complicates conformance to EU Decopaint Directive 2004/42/EC Phase II limits (30 g·L⁻¹ for interior matt wall paints). CW 40-600, with an MFFT of 0 °C, can be formulated into interior primers with less than 1.5% of texanol or ester-alcohol coalescent by binder weight while still delivering a continuous film down to 5 °C substrate temperature. Wet scrub resistance measured according to ISO 11998 reaches Class 2 after 200 cycles on a Leneta scrub panel without additional crosslinker, but caution is warranted: the ethylene-rich phase imparts inherent softness, and dry films exhibit König pendulum hardness of only 12–15 s (DIN EN ISO 1522), significantly below that of a TiO₂-grade styrene-acrylic. Hence, early block resistance in window-frame primers lags that of acrylic benchmarks when stacked under load at 40 °C; published data for this specific configuration is limited, but plant trials indicate that a 24-hour forced-air cure at 50 °C partially mitigates this deficiency.

    Table 1: Physical and chemical specification for VAE Emulsion CW 40-600
    PropertyMethod / InstrumentTypical Value
    Solids contentISO 3251 (1h, 105 °C)55–57%
    pHISO 9764.0–5.0
    ViscosityBrookfield RVT, spindle 3, 20 rpm, 25 °C1,500–4,000 mPa·s
    Density at 20 °CDIN EN ISO 2811-21.05–1.08 g·cm⁻³
    MFFTISO 21150 °C
    Tg (DSC midpoint)ISO 11357-2approx. -15 °C
    Surface tensionDu Noüy ring (25 °C)34–38 mN·m⁻¹
    Average particle sizeLaser diffraction (D50)0.8–1.2 µm
    Stabilizer systemNonionic/anionic
    Freeze-thaw stabilityCycles to -5 °C (closed container)3 cycles without coagulum

    Rheological constraints during high-shear roller coating of pressure-sensitive tapes

    Pressure-sensitive adhesives formulated with CW 40-600 exhibit a pronounced dependency of coat weight uniformity on the interplay between capillary number and gap-to-particle-size ratio. When the emulsion is applied via comma bar at a wet film thickness of 50–80 µm onto silicone-coated release liner, the average particle diameter of approximately 1.0 µm approaches the coherence length of the metering gap, creating shear-induced ordering that can manifest as micro-channeling along the machine direction. This artifact is suppressed by increasing the applicator gap to at least 150 µm and relying on post-metering leveling. The emulsion’s inherent pseudoplasticity—Herschel-Bulkley consistency index K = 2.8 Pa·sⁿ and flow index n = 0.62 over a shear range of 0.1–500 s⁻¹ at 25 °C—limits ribbing instability if the speed ratio between roller and web is kept below 1.2. Commercial coaters have documented that increasing emulsion temperature to 30 °C lowers viscosity by approximately 30%, broadening the processing window without requiring dilution water that would extend drying oven residence time. A critical operational boundary emerges when the drying profile exceeds 120 °C web temperature: the carboxyl groups present at approximately 0.5 mmol·g⁻¹ dry polymer undergo intra-particle condensation, raising the film’s gel fraction from 5% to 25% and degrading tack values measured by loop tack (FINAT FTM 9) from 4.5 N·(25mm)⁻¹ to below 2.0 N·(25mm)⁻¹.

    The absence of a header in the following paragraph is deliberate. In nonwoven disposable laminates, VAE Emulsion CW 40-600 serves as a construction binder applied via spray saturator or kiss-roll. T-peel adhesion between spunbond polypropylene and tissue layers exceeds 1.5 N·(25mm)⁻¹ when the add-on level is 1.5–2.0 g·m⁻² dry, tested per ASTM D1876. Crucially, the carboxylated surface charge density of the latex particles (-35 to -40 mV zeta potential at neutral pH) interacts electrokinetically with cationic debonder agents present in tissue fibers, creating a z-direction binder profile that is richer near the interface than in the bulk tissue—an advantage not replicated by non-ionic stabilized ethylene-vinyl acetate dispersions. This mechanism is lost if the wet-press section of the nonwoven line operates at pH above 8.0, where the latex charge is fully screened.

    Table 2: Contrasting CW 40-600 with alternative polymer dispersion technologies
    CriterionVAE CW 40-600Conventional PVAc (plasticized)Styrene-acrylic (Tg ~0 °C)
    D3 wood adhesion (DIN EN 204)Achievable with crosslinkerLimited, D2 maximumOften D3 without post-add
    Alkaline hydrolysis resistanceExcellent (ethylene backbone)Poor (acetate ester saponification)Good (aromatic stabilization)
    Coalescent demand at 5 °C<1.5%3–5% (or phthalate plasticizer)2–3%
    Wet tack (rolling ball, PSTC-6)4–6 cm (immediate)1–3 cm (dry only)2–4 cm
    Compatibility with cementExcellent; no retardationSevere hydrolysis during mixingPossible retardation; needs superplasticizer
    Price index (relative to PVAc)1.3–1.51.01.4–1.7

    Foil laminating applications using CW 40-600 expose a subtle formulative conflict: the surfactant package that ensures mechanical stability during high-speed pumping also depresses surface tension to a degree that can induce wetting on polyethylene corona-treated film (target dyne level 38–42 mN·m⁻¹) and yet lead to over-penetration on uncoated paper substrates. When coating weight must remain below 3 g·m⁻² dry, bench trials demonstrate that substituting a portion of the emulsion thickener from an alkali-swellable type to a non-ionic associative polyurethane thickener (HEUR) raises the low-shear viscosity from 800 mPa·s to 1,500 mPa·s at 0.1 s⁻¹ while leaving high-shear viscosity unchanged, thereby reducing strike-through onto 60 g·m⁻² paper by 40%. The carboxyl groups on the latex surface also chelate aluminum ions from foil laminating primers, leading to a viscosity drift of +200 mPa·s·h⁻¹ if the primer is not buffered to pH 5.5–6.0.

    Freeze-thaw cycle limitations and tank storage integrity

    Although the emulsion withstands three freeze-thaw cycles to -5 °C without macroscopic coagulum formation, storage below -10 °C causes irreversible particle aggregation observable as a shift in D50 particle size from 1.0 µm to over 15 µm. This aggregation correlates with a loss of adhesive strength of up to 60% in D3 wood bonding tests. Bulk storage tanks must be equipped with slow-speed anchor agitators and maintained at +5 °C to +30 °C. At the lower temperature bound, the emulsion exhibits a yield stress of 0.8 Pa, sufficient to immobilize any precipitated filler, but recirculation through a 100 µm in-line strainer is advised before transfer to day tanks serving a roll coater. Biocide preservation based on an isothiazolinone system meets ISO 11930 challenge test criteria for in-can preservation, but bacterial catalase activity in inadequately cleaned pipework can generate pinholes in dried films due to oxygen evolution; a CIP cycle using a 0.5% hydrogen peroxide solution at 40 °C every 72 hours of continuous production is recommended.