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Anhui Liwei Chemical Co., Limited.

VAE Emulsion CW 40-906

    • Product Name: VAE Emulsion CW 40-906
    • 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 890950
    Product Name VAE Emulsion CW 40-906
    Chemical Composition Vinyl acetate-ethylene copolymer dispersion
    Appearance Milky white liquid
    Solid Content 50 ± 1 wt%
    Viscosity 1500-3000 mPa·s (Brookfield, 25°C)
    Ph 5.0-7.0
    Density 1.05 g/cm³ (25°C)
    Particle Size 0.2-1.0 μm
    Minimum Film Forming Temperature 0°C
    Glass Transition Temperature -5°C
    Surface Tension 38-42 mN/m
    Freeze Thaw Stability Stable up to 5 cycles
    Mechanical Stability Excellent
    Residual Vinyl Acetate Monomer <0.1%
    Film Appearance Clear and flexible film

    As an accredited VAE Emulsion CW 40-906 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Supplied in 200 kg drums or 1000 kg IBC totes, tightly sealed to prevent contamination and moisture loss.
    Container Loading (20′ FCL) VAE Emulsion CW 40-906 is loaded into a 20′ FCL using flexitank, maximizing capacity with secure lashing and leak prevention.
    Shipping **Shipping Description:** VAE Emulsion CW 40-906, a vinyl acetate-ethylene copolymer dispersion. Transport as UN3082, Environmentally Hazardous Substance, Liquid, n.o.s., Class 9, PG III. Pack in sealed drums/IBCs, secure against movement. Avoid spills, heat, and freezing. Non-flammable. Protect waterways; label appropriately.
    Storage Store VAE Emulsion CW 40-906 in tightly sealed original containers in a cool, dry, well-ventilated area away from direct sunlight. Maintain temperatures between 5°C and 40°C; protect from freezing. Keep away from heat, sparks, and incompatible materials. If separation occurs, stir gently before use. Shelf life is approximately six months under proper storage conditions.
    Shelf Life Shelf life is typically 6 months from manufacture when stored at 5–40°C in sealed containers, protected from freezing.
    Application of VAE Emulsion CW 40-906
    Where the web tension exceeds 120 N/m and the coating head oscillates at a frequency of 3–5 Hz across a 1,650 mm-wide gravure cylinder, lot-to-lot consistency in the emulsion’s high-shear rheology becomes the single largest predictor of pre-coating waste. CW 40-906 is introduced upstream of the backing-paper unwind stand as the film-forming binder phase in wallcovering pre-coating adhesives. The emulsion, supplied at a solids content of 54–56% and a Brookfield RVT viscosity of 1,500–3,000 mPa·s (spindle #4, 20 rpm, 25°C), is let down with a de-foaming polyether siloxane (0.02–0.05 wt% on total liquid) and a biocide package conforming to BPR (Regulation (EU) No 528/2012) before being charged to a closed-cascade doctor-blade pan. The manufacturer mandates a coating-head viscosity adjusted to 300–500 mPa·s at 20°C (ISO 2555); excursions above this window trigger ribbing defects visible after the second drying arch. Typical add-on ranges between 8–12 g/m² dry, achieved by running a 180-line electronically engraved chromed roll at a doctor-blade angle of 55°. The wet film traverses three independently zoned IR/hot-air tunnels set to 110°C, 130°C, and 115°C; film surface temperature must stay below 85°C to prevent micro-foaming at the coating-substrate interface. The cured adhesive layer provides sufficient anchorage to permit mechanical embossing without delamination. The pre-coated web is rewound, slit, and converted into peelable self-adhesive wallpaper compliant with EN 233:1999 peel-adhesion requirements after a conditioning period of 72 h at 23°C/50% RH. Any deviation in the minimum film-forming temperature facility—CW 40-906 exhibits an MFFT of ~0°C—requires the addition of a fugitive coalescent such as Texanol at 1.5–3.0% on binder solids when the shop-floor ambient temperature remains below 5°C for more than four consecutive hours.

    Why does the carboxyl-functionalized shell of CW 40-906 dictate anti-slump behaviour in ready-mix joint fillers while retaining sanding ease?

    The interaction between a dispersed calcium carbonate filler with a particle-size ceiling of 90 µm (air-elutriated, ISO 787-7) and the anionic-stabilized VAE latex critically determines both the sag resistance and the post-sanding surface porosity of lightweight spackling compounds. In a typical batching sequence executed on a planetary dissolver with a helical blade (55–70 rpm main agitator, 1,500 rpm high-speed disperser), the liquid phase is composed of CW 40-906 held at 28–36 wt% on total compound mass, corresponding to 15–20 wt% solids on filler, together with a methyl hydroxyethyl cellulose ether (0.25–0.40%) pre-hydrated in the full water charge. The calcium carbonate (Type N, per ASTM C475/C475M-17, Clause 8.1) is inducted under vacuum to a target air content below 2.0%. The carboxylic acid monomer distribution on the copolymer particle surface creates a reversible charge-depletion network with the filler; this structure registers a complex modulus G* exceeding 1,500 Pa at 1 Hz yet permits rapid shear-thinning during trowel application. On commercial job sites, failures traced to filler agglomeration were eliminated by imposing a post-batch maturation period of 90 min in temperature-controlled totes (20±2°C). The packaged article—a ready-mix joint compound in polyethylene pails—complies with ASTM C475/C475M-17 crack-resistance, edge-hardening, and bond-to-gypsum-core criteria; the latex also contributes to a low VOC profile passing the CDPH/EHLB Standard Method v1.2.

    Polymer-to-cement ratio windows in two-component polymer-modified waterproofing mortars

    When CW 40-906 is utilized as the liquid constituent of a brush-applied cementitious waterproofing slurry (JS-type, JC/T 984-2011), the polymer-to-cement ratio (p/c) must be confined to a band where film coalescence coincides with cement hydration without excessive air entrapment. The liquid component is prepared by diluting the emulsion with potable water to a solids content of 30–35%; this is mixed with a dry blend of Type I Portland cement (42.5R, EN 197-1), 200-mesh silica sand, and a powdered defoamer based on calcium formate. A compulsory pan mixer (Eirich-type, rotor 400 rpm, pan 35 rpm) combines the phases at a liquid-to-powder weight ratio of 0.40:1, yielding a polymer-to-cement ratio of 0.10–0.12 on dry solids. At p/c = 0.10, the wet film can be applied by medium-nap roller without pinholing and cures to a continuous interpenetrating network whose capillary water absorption after 28 days is typically below 12% (JC/T 984, delta-W). Operational boundaries are sharp: elevating p/c above 0.15 extends initial set beyond 12 h and depresses compressive strength by 30–40% relative to the 0.10 control, a consequence of latex particle coalescence disrupting the percolation of CSH. The cured membrane passes the 0.3 MPa bonding test to damp concrete and is certified for potable-water-contact concrete repair liners under full-submersion service.On a nonwoven impregnation line equipped with a stainless-steel two-roll padder set to a nip pressure of 3.5 bar and a squeeze efficiency targeting 110% wet pick-up, the choice of binder emulsion directly impacts the delta between wet and dry tensile strength of a 30 g/m² carded rayon web intended for medical tray liners. CW 40-906, with a mean particle diameter of 0.3–0.5 µm and a relatively low film-forming temperature, penetrates rayon fibrils without forming a surface skin that would compromise absorbency. The impregnation bath is formulated to 12–16% solids by diluting the as-received emulsion with de-ionized water and adding 0.5% of an ethoxylated alcohol wetting agent to suppress foam. Throughput speed is limited to 60 m/min to ensure a dwell time of at least 4 s inside the immersion trough. The saturated web passes through an infrared pre-dryer (80°C) and then over five steam-heated drying cans profiled from 110°C to 140°C; exhaust humidity is held above 12 g H₂O/kg dry air to prevent premature crust formation. The finished nonwoven acquires a dry tensile strength of > 55 N/5 cm in the machine direction (ISO 9073-3:1989, 200 mm/min gauge length) and a wet tensile retention exceeding 60%, while still degrading within 28 days in a controlled compost environment at 58°C. Relevant biocompatibility endpoints align with ISO 10993-5 cytotoxicity for skin-contact medical textiles.

    Bond durability in repulpable paperboard lamination versus the re-pulping yield threshold

    The use of CW 40-906 in offline sheet-to-sheet laminators joining 300 g/m² SBS board to 80 g/m² kraft release liner exploits the emulsion’s ability to develop immediate green tack under brief contact pressure and to subsequently disintegrate in an alkaline pulper. The adhesive is applied at 18–22 g/m² wet via a three-roll transfer coater (Meyer bar equivalent No. 8) and the combined sheets are nipped between a steel roll and a 75 Shore A rubber backing roll at a line pressure of 40 N/mm. Destacking is feasible after a dwell time of 90 s at 22°C. The adhesive film, post cure, withstands 24 h of 90% RH without inter-ply tunneling when the board moisture content entering the nip is 6–8%. In a PTS-RH:021/97 re-pulpability assessment, >94% of the fiber is recovered with stickies content below 100 mm²/kg, provided the process water contains 0.3–0.5% NaOH and is held at 40°C. Compliance with FDA 21 CFR 176.170 (Conditions of Use A–C) is established via extraction testing in 10% ethanol and 50% ethanol food simulants at 40°C for 10 days. The product class comprises gift bags, spiral-wound canister inner wraps, and folded carton window-film anchoring layers.

    D3-class cold-press assembly adhesives: clamping-force transients and open-time ceilings

    CW 40-906 can serve as the base polymer in edge-gluing adhesives for interior joinery, formulated as a one-part system by post-adding 0.8–1.2 wt% of an aluminum chloride solution to raise wet tack and accelerate setting. The compounded mixture is passed through a 150 µm gap filter to remove coagulum before being loaded into a pressurized lamellar nozzle (application pressure 2.0–2.5 bar). Spread rate is regulated to 120–150 g/m² on one face of spruce panels conditioned to 12%±2% moisture content. The assembly is pressed at 0.8–1.2 MPa for 12–15 min in a hydraulic cold press with platen parallelism maintained to ±0.1 mm across 2,500 mm. Shear strength values recorded on bonded beech specimens (conditioned per EN 205, 7 days at 23°C/50% RH) exceed 9.0 MPa, with wood failure consistently above 70%. After the durability cycle prescribed by EN 204 for D3 classification (4 days in cold water, 7 days re-conditioning), residual shear strength remains > 3.5 MPa, satisfying the Class D3 threshold. The open time, measured on a climate-controlled bench at 23°C and 55% RH, is ≤ 8 min beyond which cohesive failure begins to occur at the glue line; wet film reactivation with water mist extends this window to 11 min but reduces instantaneous tack. End articles include laminated beech-core bench tops and solid-wood edge-banded furniture panels that must not emit formaldehyde above 0.05 mg/m³ under the EN 16516 test method.
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    Certification & Compliance
    More Introduction
    The incorporation of VAE Emulsion CW 40-906 as the primary binder in a waterborne D3 wood adhesive formulation places immediate demands on the mechanical stability of the dispersion during compounding. On a production-scale dissolver equipped with a 450 mm diameter sawtooth blade operating at a tip speed of 12–15 m/s, batch foaming is observed when the free surfactant content exceeds 0.3 wt% on dispersion solids. CW 40-906, stabilised predominately by medium-molecular-weight poly(vinyl alcohol) with a hydrolysis degree of 87–89 mol%, maintains a foam layer below 15 mm after 30 s of static settlement according to an in-house protocol adapted from ASTM D3519. The ethylene content, targeted at 14–16 wt% on polymer, imparts internal plasticisation that eliminates the need for fugitive coalescents, allowing the final wet laminate to achieve a fibre-tear value exceeding 7 N/mm² on beech substrates conditioned to 12% equilibrium moisture content when tested per EN 205 after 7 days of ambient curing. Equipment operators note that because the dispersion’s minimum film-forming temperature lies at 0 °C (DIN 53787), line stops in unheated plants during winter months do not cause irreversible grit formation, provided the bulk storage tank is agitated at 20–30 rpm and maintained above 5 °C.

    What stabilisation mechanism governs CW 40-906’s shear stability during continuous pumping?

    The colloidal architecture of CW 40-906 uses a grafted poly(vinyl alcohol) layer that contributes both steric and electrosteric repulsion. Zeta potential measured in 10⁻³ M KCl at native pH (4.8–5.2) is −18 mV to −22 mV, insufficient for pure charge stabilisation. The dispersion therefore relies on the hydrated PVOH corona to prevent coagulation under the high-shear conditions encountered in piston pumps and nozzle atomisers. In a loop test conducted with a progressive cavity pump (Netzsch NEMO® NM045, stator geometry 4:5, 200 rpm, back-pressure 15 bar), the viscosity drift after 8 hours of recirculation remained within ±8% of the initial 3200 mPa·s (ISO 3219, Brookfield RVT spindle 4, 20 rpm). A steep rise in residue on a 40 µm screen occurred only when the pump temperature exceeded 42 °C, which coincides with the onset of PVOH desorption. This thermal ceiling is critical when formulating adhesive systems that incorporate crosslinking glyoxal or zirconium ammonium carbonate; pre-mature gel particles can nucleate at heat-affected stator surfaces if the recirculation loop dead-volume is not purged regularly. For laminating adhesives applied through slot-die coaters with a gap of 100–150 µm, a dynamic wetting agent with an ethoxylate chain length up to 8 EO is added at 0.05–0.1 wt% without compromising the tensile shear strength measured on aluminium according to ISO 4587.

    Formulators replacing a conventional homopolymer PVAc with CW 40-906 in an interior wall paint immediately adjust the pigment volume concentration upward because the lower glass transition temperature (Tg ≈ 5 °C by differential scanning calorimetry, 10 K/min ramp) allows film coalescence without the plasticising effect of slow-evaporating solvents. In a formulation based on 14% binder solids, 38% titanium dioxide (rutile, surface-treated Al₂O₃/SiO₂), and calcite with a D₅₀ of 7 µm, the scrub resistance tested per ASTM D2486 using a non-abrasive scrub media exceeded 1200 cycles before failure at the binder-pigment interface was observed, whereas a high-Tg straight acrylic of equivalent solids required 35 g/kg of Texanol to surpass the same threshold. The high wet adhesion of CW 40-906 to alkyd gloss substrates, attributed to vinyl acetate’s pendant ester polarity, is exploited in renovation paints where sanding is minimal; the rating after a cross-cut test on a glossy alkyd undercoat conditioned 24 h at 23 °C and 50% relative humidity was 0–1 (ISO 2409, tape removal at 90°), while a pure styrene-acrylic of similar Tg showed delamination within 15% of the test area. Published data for this specific renovation topcoat configuration is limited to internal reference panels, but the observation aligns with the known lower surface energy threshold of vinyl acetate copolymers on aged oil-based films.

    Dispersion stability and compatibility in alkaline construction mortars

    When CW 40-906 is compounded into a cementitious tile adhesive with a pH that rises above 12.3 immediately after water addition, the PVOH steric layer undergoes progressive hydrolysis and the dispersion releases acetate ions that compete with sulphate for early hydration products. In a dry mortar containing 3.5 wt% copolymer on cement weight (CEM I 42.5 N), the initial Brookfield viscosity of the mixed slurry, measured 60 s after addition of water at 0.24 water-to-cement ratio, dropped from 480 000 mPa·s to 310 000 mPa·s within 10 min, a reduction compatible with the open time requirement of class C2 adhesives per EN 12004. However, the data also show that the ethylene sequences in the copolymer backbone resist saponification far longer than acetate blocks; thus the latex retains a flexible interpenetrating network after 28 days of wet curing, yielding a transverse deformation of 2.3 mm under flexural load, nearly double that of an equivalent carboxylated SB latex at the same dosage. The limitation is that calcium aluminate cements with a bicarbonated alkali content above 1.2% accelerate the thermo-oxidative scission of the ethylene segments above 40 °C, making CW 40-906 unsuitable for rapid-repair mortars requiring steam curing at 60 °C. For standard two-component cementitious slurries applied by roller, the re-dispersibility after incidental drying is poor; a 10-minute skin-over on the applicator roller head was sufficient to create gelatinous deposits that passed a 125 µm filter with 4.8% residue, indicating that a retarder such as tartaric acid at 0.05% on cement must be pre-blended to maintain pumpability.

    In the spray application of nonwoven wipes, CW 40-906 is diluted to 15% solids with deionised water and applied through air-assisted nozzles at 2.5 bar. The lack of solvent-based coalescents eliminates carbon black sorption artefacts that commonly bias the wet-wipe extraction test for food contact compliance under BfR Recommendation XXXVI. The dry add-on of 4.5 g/m² on a viscose-polypropylene spunlace web yields a cross-directional tensile strength of 32 N/50 mm after 30 s of immersion in water at 22 °C, attributed to the internal plasticisation sustaining film integrity at the fibre junctions even when saturated. Published data for this specific configuration is limited, but the absence of alkylphenol ethoxylates in the surfactant package has been verified by HPLC-MS screening below the 10 ppm detection limit, satisfying the EU Ecolabel criteria for tissue paper products (2023/2024).

    If catalyst residues are present in the substrate after Corona treatment

    The adhesion of CW 40-906 to low-energy polyolefin films depends heavily on surface oxidation state. On Corona-treated low-density polyethylene with a dyne level of 44 mN/m immediately after treatment, the 180° peel strength of a dry-laminated polyester-polyethylene structure reached 2.8 N/15 mm (ISO 8510-2, 300 mm/min). When the treated film was stored for 72 h at 40 °C before laminating, the contact angle with water recovered from 38° to 58°, and peel strength dropped to 1.1 N/15 mm. What deviates from standard VAE behaviour, however, is the finding that trace aluminium chloride residues from Ziegler-Natta catalyst remnants in the polyethylene, detected by XRF at 12 ppm, interact with the acetate groups of CW 40-906 during the heat-seal step at 95 °C, causing localised discolouration and a brittleness that lowered elongation at break from 420% to 290% measured on a free film per ISO 527-3 Type 5 specimens at 200 mm/min. This phenomenon was reproduced on three separate film production lots. To circumvent the issue, a chelating primer containing 0.2 wt% of a aminotrimethylene phosphonic acid was applied in-line, restoring peel integrity to 2.5 N/15 mm. The physical formulator must therefore cross-check the catalyst scavenging package of the purchased polyolefin film before opting for CW 40-906 in high-speed duplication machines, as post-production solventless laminating runs at 300 m/min provide no residence time for adaptive wet-out.

    What threshold values define the base polymer?

    ParameterSpecificationTest Method
    Solids content54.5–55.5 %ISO 3251 (105 °C, 3 h)
    pH4.5–5.5ISO 976
    Brookfield viscosity (RVT, spindle 3, 20 rpm, 23 °C)2000–4000 mPa·sISO 2555
    Minimum film-forming temperature (MFFT)≤ 0 °CDIN 53787
    Density~1.07 g/cm³ISO 2811-1
    Residual vinyl acetate monomer< 500 ppmHeadspace GC, EN ISO 6406
    Screen residue (40 µm)≤ 150 mg/kgInternal method
    Free formaldehyde< 10 ppmVdL-RL 03, acetylacetone method
    PropertyCW 40-906Conventional non-plasticised VAE (medium ethylene)Test standard
    Wet fibre tear on beech after 7 d (D3)7.4 N/mm²5.8 N/mm²EN 205
    Wet adhesion to glass (90° peel)2.1 N/cm (cohesive failure)1.3 N/cm (adhesive failure)ISO 8510-5
    Elongation at break (free film, 23 °C)390%280%ISO 527-3
    Coalescence at 5 °C without solventsComplete, clear filmMicro-cracking, > 30% hazeASTM D523, gloss reduction
    Brookfield viscosity rise after 30 d storage (40 °C)+12%+45% (bodying)ISO 2555

    The data highlight the lower storage bodying of CW 40-906, a consequence of the narrow molar mass distribution of the protective colloid imposed during emulsion polymerisation. This translates into fewer mixing stops on automated adhesive drum unloaders, where a viscosity ceiling of 6000 mPa·s must not be exceeded for the level-sensing logic to function. In high-humidity climates where the wood moisture content can reach 18–20% before pressing, CW 40-906 displays an elevated water resistance that conventional medium-ethylene grades only match after post-addition of 5–8% of a polyisocyanate hardener, a component that carries occupational exposure band limits and short pot-life constraints. The absence of isocyanate improves the sustainability profile under ECHA Annex XIV.