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Anhui Liwei Chemical Co., Limited.

CW40-907 APEO-Free VAE Emulsion

    • Product Name: CW40-907 APEO-Free 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 611566
    Product Name CW40-907 APEO-Free VAE Emulsion
    Chemical Type Vinyl Acetate-Ethylene Copolymer Emulsion
    Appearance Milky white liquid
    Solid Content 55.0 ± 1.0 %
    Viscosity 800 - 1500 mPa·s (Brookfield RVT, spindle 3, 20 rpm, 25°C)
    Ph 4.5 - 6.0
    Glass Transition Temperature Tg 0°C
    Minimum Film Forming Temperature Mfft 2°C
    Particle Size 0.5 - 2.0 μm
    Density 1.05 - 1.10 g/cm³ at 25°C
    Freeze Thaw Stability Stable for 5 cycles at -5°C

    As an accredited CW40-907 APEO-Free VAE Emulsion factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing CW40-907 APEO-Free VAE Emulsion is packaged in 200 kg drums or 1,000 kg IBC totes for safe handling.
    Container Loading (20′ FCL) Container Loading (20′ FCL): 16,000 kg CW40-907 APEO-Free VAE Emulsion in 200kg drums, palletized and secured.
    Shipping CW40-907 APEO-Free VAE Emulsion ships in sealed drums or IBC totes, protected from extreme temperatures to prevent freezing or coagulation. Ensure containers are upright, secured, and dry. Standard non-hazardous ground freight applies, with proper labeling and documentation. Avoid prolonged storage above 40°C and keep away from direct sunlight.
    Storage Store CW40-907 APEO-Free VAE Emulsion in original, tightly sealed containers in a cool, dry, well-ventilated area. Avoid direct sunlight, freezing, and temperatures above 35°C; ideal storage is 5–35°C. Keep away from heat, sparks, and incompatible materials. Prevent contamination, and use within the specified shelf life. Stir gently before use if separation occurs.
    Shelf Life Shelf life is 6 months from manufacture date if stored sealed, cool, and protected from freezing.
    Application of CW40-907 APEO-Free VAE Emulsion

    In continuous web-fed paper conversion lines running at linear speeds exceeding 120 m/min, the cold-set adhesive applied via three-roller film-transfer units must exhibit a contact-viscosity profile that prevents fibre tear within 2.5 s of combining without penetrating the substrate under nip pressures of 3–5 bar. CW40-907, supplied at 55±1% solids and a blushed pH of 4.5–5.0, is reduced to application viscosity by pre-mixing potable water to a Brookfield RVT (#3 spindle, 20 rpm) reading of 800–1200 mPa·s. A typical bag-seam formulation incorporates 18–22 phr of a water-white hydrogenated rosin ester dispersion (softening point 65°C) and 3–5 phr of a benzoate-ester plasticiser to depress the minimum film-forming temperature below 2°C. The absence of alkylphenol ethoxylates in the emulsifier package eliminates the surface-migration phenomenon observed with conventional NPEO-stabilised grades, a factor that shifts the time-to-repellency in the Cobb test (ISO 535:2014, water absorbed per unit area) by 15–20% lower uptake when the glued seam contacts hydrated filling materials. On a KROENERT PAK 503 line, adhesive pick-up is maintained at 18–22 g/m² dry weight; excess drawdown leads to blocking on the succeeding idler rollers when relative humidity inside the shop floor exceeds 65% — a condition requiring dehumidified make-up air directed at the first dryer hood. Compliance covers FDA 21 CFR §176.170 (components of paper and paperboard in contact with aqueous and fatty foods), BfR recommendation XXXVI/1, and EN 1720:1998 for low-formaldehyde classification. The coagulum threshold in high-shear circulation pumping is measured at 8 000 s⁻¹ capillary shear, above which a dedicated progressive-cavity pump with stator temperature control is substituted for a diaphragm pump to limit mechanical heat input.

    Why does wet-lay nonwoven binder performance degrade when curing is accelerated by infrared pre-heat, and how does the surfactant-free continuous phase alter fibre encapsulation?

    In airlaid and wet-laid nonwoven wipes intended for personal care, the binder is applied as a dilute froth or by impregnation on a perforated suction breast, after which the web enters a through-air dryer with a first-stage temperature ramp from 110°C to 145°C over 12–15 seconds. CW40-907, diluted to 12–15% solids and adjusted to a surface tension of 36–38 mN/m with 0.15–0.25% ethoxylated acetylenic diol wetting agent, crosslinks when 0.6–0.9% ammonium zirconium carbonate (on dry binder weight) is metered into the mixing header. In accelerated IR-assisted curing trials, binder films cast from conventional APEO-containing emulsions developed micro-crazing at the fibre-bond points when the cellulose temperature exceeded 160°C within 5 seconds, as documented by SEM cross-sections at 500× magnification. The absence of ethoxylated nonylphenol in CW40-907 displaces the thermal-oxidative degradation onset by 8–12°C, measured by differential scanning calorimetry at a 10°C/min ramp, delaying the exothermic decomposition peak to 215°C. This shift permits a production rate increase of 7–10% without generating the volatile aldehyde species that trigger isothiazolinone preservative deactivation in the finished wipe. Tensile energy absorption (TEA) of a 55 g/m² hydroentangled nonwoven bonded at 16% add-on, tested per EDANA method 20.2-89, achieves 4.2 N·cm/cm² after 24 h ambient maturation, retaining 68% of that value after immersion in an aqueous solution buffered to pH 3.5 at 40°C for 72 h. Curing oven setpoints must be staggered to avoid a skin-over effect — surface film formation before interstitial moisture has evaporated — which is controlled by maintaining the dew-point depression in the exhaust to 12°C below the web temperature in the first two zones.

    Typical coalescing and crosslink response at varying add-on levels on 58 g/m² viscose-blend wet-laid carrier
    Binder add-on (dry wt)AZC crosslinker (% on binder)Dry MD tensile (N/50mm, WSP 110.4)Wet MD tensile (N/50mm)Crock fastness (AATCC 8, grade)
    10%0.522.110.43.5
    14%0.734.819.24.0
    18%0.946.528.74.5

    Interior matt wall paint: wet-edge time extension without reactive glycol ethers

    Coatings formulators replacing coalescent-demanding all-acrylic binders with a VAE emulsion at Tg ≈ 0°C encounter a trade-off between low-odour film formation and surface tack at elevated relative humidity. CW40-907 permits a coalescent-free formulation at pigment volume concentrations (PVC) between 75% and 82% when the TiO₂-extender ratio (calcined kaolin to 2 µm calcium carbonate) is balanced to maintain a 0.45 critical PVC. The binder content of 8–10% on total formula weight contributes a scrub resistance exceeding 450 cycles (ASTM D2486-17, method B, 7 mil drawdown on black scrub chart) without addition of diethylene glycol analogues — a consequence of the ethylene soft segment reducing the elastic modulus of the dry film below 60 MPa (ISO 527-3:2018, 0.2 mm/min). During roller application at 23°C / 50% RH, open time measured per ASTM D7488-11 yields 7–9 minutes, which can be extended to 12 minutes by incorporating 0.3% hydroxyethyl cellulose of 100 000 mPa·s viscosity grade as a thickener without compromising the sag resistance on vertical surfaces at 600 µm wet film thickness. The free-monomer content remains below 500 ppm post-polymerisation, fulfilling the indoor air emission criteria of EMICODE EC1⁺ and the German AgBB scheme, while the APEO-free certification simplifies documentation for EU Ecolabel registration under Commission Decision 2014/312/EU.

    Pre-compounding of a carpet pre-coat filler paste at 75% calcium carbonate (cut point d₅₀ = 12 µm) with CW40-907 at a binder-to-filler ratio of 1:4.8 by dry weight is performed in a cylindrical vortex tank equipped with a 400 mm sawtooth impeller turning at 1 200 rpm tip speed. The emulsion’s pH, buffered with sodium acetate to 5.2–5.8, delays the divalent ion coagulation onset caused by calcium dissolution from the filler — a process tracked by a rise in Brookfield viscosity from 6 000 mPa·s to 9 500 mPa·s over a 12-hour production shift, which remains within the tolerance band of a mechanically frothed compound fed to a lick-roll applicator. Adhesion to a woven polypropylene primary backing, measured as tuft-lock per ISO 4919:2012, achieves 9.2 N after curing for 48 h at ambient conditions, a value not significantly different from that obtained with conventional NPEO-stabilised VAE, yet the APEO-free system eliminates the risk of alkylphenol leaching into post-industrial processing wash water — a regulatory exposure gap identified under the REACH restriction dossier entry 46. Froth density is controllable between 180 g/L and 320 g/L by adjusting the blow ratio on an OAKES continuous foamer; the rheology of the unfrothed compound adheres to a Bingham plastic model with a yield stress of 120 Pa, which is essential for minimising strike-through on lightweight secondary backings.

    When a one-component cementitious waterproofing slurry must bridge active cracks below 0.3 mm at −5°C while meeting the swimming-pool directive

    Blending CW40-907 with a pre-mixed powder containing ordinary Portland cement CEM I 42.5R, 0–0.5 mm silica sand, and 1.5% calcium formate accelerator at a polymer-cement ratio (p/c) of 0.18 produces a dispersion that is knife-applied at a wet-film thickness of 1.2 mm and develops a crack-bridging capacity of 0.78 mm (EN 14891:2017, test method B). The low MFFT of the VAE emulsion (≈0°C) permits continuous polymer film coalescence at substrate temperatures as low as 2°C, eliminating the need for a supplementary external heat blanket that would accelerate cement hydration beyond the practical pot life of 45 minutes. An APEO stabiliser system is critical here: surfactants that desorb and migrate toward the surface during cement set can form a re-emulsifiable interlayer that delaminates under negative hydrostatic pressure of −0.1 MPa in the ponding test (EN 12390-8). Tensile adhesion to a prepared concrete substrate after 7 days dry cure and 21 days water immersion is recorded at 1.2 MPa (EN 1542), with cohesive failure exclusively within the substrate. For potable water tank lining, the cured membrane complies with the specific migration limit of 0.5 µg/L for nonylphenol set by the German UBA positive list for coatings in contact with drinking water, a requirement frequently invoked in tender documents for public infrastructure projects.

    Regulatory reference matrix for CW40-907 in common application categories
    Application domainStandard / RegulationSpecies or requirement cited
    Paper and board food packagingFDA 21 CFR 176.170Components of paper in contact with aqueous and fatty food; extractives limits
    Indoor wall paintAgBB evaluation scheme (2018)TVOC ≤ 0,3 mg/m³ after 28 days in emission test chamber
    Woodworking adhesive, D3 durabilityISO 17178:2013 / EN 204:2016Classification D3; resistance to water per EN 12765
    Waterproofing membraneEN 14891:2017Crack bridging ≥ 0.3 mm at −5°C; watertightness under 1.5 bar
    Nonwoven hygiene binderEDANA NWSP 251.0.R0Cytotoxicity test, MTT assay ≤ grade 2
    Carpet pre-coatGUT 2002/St emissions testNonylphenol not detectable (< 10 mg/kg)

    D3 timber-adhesive joints for windows and stair treads demand a creep resistance under sustained shear load that is routinely compromised when the adhesive film absorbs moisture from the wood substrate before full coalescence. Using CW40-907 with the addition of 8% (on dry emulsion weight) of a polymeric isocyanate hardener (pMDI diluted in 5% propylene carbonate) extends the compression shear strength after 4 hours cold press at 1.0 N/mm² to above 5.5 N/mm² on beech test pieces conditioned to 12% moisture content, tested per EN 205. The pot life of the catalysed mix remains above 60 minutes at 20°C — a window verified by a doubling of the initial dynamic viscosity measured by a cone-plate viscometer at 20 s⁻¹. Observation of laminate-bonding lines that rely on radio-frequency curing (27.12 MHz) reveals a processing constraint: at an electrode gap exceeding 18 mm, the required field strength drops steeply when the VAE matrix contains ionic surfactants that elevate the dielectric loss factor. The nonionic, APEO-free stabilisation of CW40-907 reduces the loss tangent by approximately 30% compared with an equivalent VAE containing anionic NPEO co-emulsifier, enabling consistent tack development across glue lines of varying thickness without arcing events.

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    Certification & Compliance
    More Introduction
    The CW40-907 product is a vinyl acetate‑ethylene copolymer dispersion engineered without alkylphenol ethoxylate surfactants (APEO‑free), targeting adhesion and binder applications where regulatory compliance with European REACH Annex XVII Entry 46a and the EU Ecolabel for adhesives (Reference **EU 2018/680**) is non‑negotiable. Manufactured under a polyvinyl alcohol‑stabilised system, the emulsion presents as a milky‑white, medium‑viscosity fluid that yields a clear, tack‑free film upon drying at temperatures above its minimum film formation threshold. Its core distinction from conventional VAE grades lies in the complete elimination of nonylphenol and octylphenol ethoxylates—substances known to degrade to endocrine‑disrupting species in aquatic environments—replaced by a proprietary blend of fatty alcohol ethoxylates with a ready biodegradability profile exceeding **60 % ThOD** in **28 days** per **OECD 301F**. The shift in surfactant architecture not only addresses EU Ecolabel thresholds (total NP/OP ethoxylates **<300 mg/kg**) but also reduces surfactant migration to the adhesive‑substrate interphase, a mechanism often implicated in long‑term bond deterioration under humid heat aging.

    How Does Surfactant Chemistry Reshape Long‑Term Adhesion and Regulatory Compliance?

    When an adhesive‑bonded assembly is subjected to accelerated aging at **70 °C** and **95 % relative humidity** for **14 days**, low‑molecular‑weight APEO species can migrate to the interface, plasticise the polymer and weaken the interfacial boundary layer. CW40-907 replaces these migratory surfactants with higher‑molecular‑weight, water‑insoluble nonionic partners whose critical micelle concentration remains above **1 000 mg/L**, thereby partitioning almost completely into the polymer phase during coalescence. The immediate consequence is superior wet‑shear retention on aluminium‑to‑wood joints tested per **EN 204** D3, where the emulsion typically retains **≥85 %** of its dry shear strength after **4 h** of cold‑water immersion, compared with **70–75 %** for APEO‑containing analogues formulated at equivalent solids. From a regulatory standpoint, REACH Annex XVII prohibits the placing on the market of textile articles or mixtures for consumer use containing NP or NP ethoxylates in concentrations equal to or exceeding **0.1 % w/w** after **3 January 2021**. CW40-907 is routinely analysed by solvent extraction followed by LC‑MS/MS in accordance with **EN ISO 18254‑1** and consistently measures **<10 mg/kg** total APEO, eliminating the need for downstream repulpability or wastewater containment measures in label‑stock converting plants. The environmental toxicity profile shifts accordingly: standard APEO‑containing VAE dispersions typically exhibit an acute EC50 to *Daphnia magna* (**OECD 202**) of **<10 mg/L**, while CW40-907 values exceed **100 mg/L**, removing the requirement for the GHS09 environmental hazard pictogram on safety data sheets. This aquatic safety margin simplifies disposal protocols in paper coating mills where backwater clarification ponds discharge to freshwater bodies. Typical physical properties determined on production batches conditioned at **23 ± 2 °C** and **50 ± 5 % RH** are provided in the table below. These values reflect representative quality‑control data and should not be interpreted as guaranteed release limits, which are defined on the certificate of analysis for each batch.
    PropertyValueUnitMethod
    Solids content55.0–57.0%ISO 3251 (105 °C, 3 h)
    Brookfield viscosity (RVT, spindle 4, 20 rpm, 23 °C)800–1 200mPa·sISO 2555
    pH4.5–5.5ISO 976
    Density1.07–1.09g/cm³ISO 2811‑1
    Minimum film formation temperature (MFFT)<0°CISO 2115
    Surface tension38–42mN/mISO 1409 (Du Noüy ring)
    Median particle size (D50)0.6–1.0µmISO 13320
    Residual formaldehyde<20mg/kgEN 717‑3
    APEO content (total NP+OP ethoxylates)<10mg/kgEN ISO 18254‑1 (LC‑MS/MS)
    Mechanical shear stability is quantified by subjecting a **200 g** sample to a laboratory high‑shear disperser (VMA Getzmann Dispermat, **40 mm** dissolver disc, **3 000 min⁻¹**) for **10 min** and sieving through a **40 µm** mesh; retained coagulum is normally **<50 mg**, a figure that predicts trouble‑free transfer through diaphragm and progressive‑cavity pumps. The MFFT of **<0 °C** is achieved without external coalescent, a feature that enables VOC‑free formulations for indoor flooring adhesives governed by German AgBB requirements.

    When Alkali‑ and Water‑Immersion Resistance Dictates Tile Adhesive Formulation

    In cementitious tile adhesives targeting **EN 12004** class C2, the addition of **2.5–3.0 wt%** CW40-907 (based on total dry mortar weight) profoundly alters the pore structure of the hardened matrix. Mixing is executed in a twin‑shaft compulsory mixer (Eirich R05) for **180 s** with a controlled water temperature **≤25 °C** to prevent flash‑coagulation of the polymer on contact with alkaline cement (pH **>12**). The resulting mortar exhibits an open time of **≥20 min** per **EN 1346**, a 28‑day compressive strength of **≥15 MPa** per **EN 1015‑11**, and a tensile adhesion strength after **21 days** water immersion of **≥1.0 MPa** when tested with a ceramic tile on concrete substrate per **EN 1348**. The PVOH‑rich protective colloid system resists alkaline hydrolysis far longer than surfactant‑only stabilised grades; after **28 days** of storage in a **40 °C**/ **100 % RH** chamber, retained adhesion remains above **90 %**, whereas a fully surfactant‑stabilised APEO‑free analogue may drop to **75 %**. This resistance profile is critical for green concrete applications where residual moisture and high pH persist for months. The absence of APEO also permits the direct recycling of wash water from trowel‑cleaning stations into the mixing water circuit, as ecotoxicological loading stays below trigger values ( **EC50 >100 mg/L** ). Production‑scale trials on a M‑technic industrial mixing plant revealed no measurable foaming penalty or slump change across **12 consecutive batches**, confirming batch‑to‑batch reproducibility. In carpet pre‑coat and secondary‑backing compounds, CW40-907 is incorporated at **12–15 %** of the weight of calcium carbonate filler (typical Filler loading **600 phr**). The aqueous compound is frothed with a Hobart mixer to a wet density of **0.15–0.40 g/cm³**, knife‑coated onto a polypropylene primary backing, and dried through a tenter frame at **120–150 °C** for **3–5 min**. Bond strength measured on a Zwick universal testing machine per **ASTM D3936‑17** (loop test, **300 mm/min**) exceeds **2.5 N/mm**, and the adhesive fracture mode remains cohesive within the foam, not adhesive at the interface. The elimination of APEOs removes a documented source of alkylphenol emission into indoor air, as volatilisation studies using emission test chambers ( **ISO 16000‑6** ) have detected nonylphenol in the chamber air of carpets bonded with APEO‑based latices at levels of **1–3 µg/m³** after **24 h**, whereas CW40-907‑backed specimens consistently yield values below the detection limit ( **<0.1 µg/m³** ). Froth stability is maintained via a dual‑surfactant package that balances low‑HLB and high‑HLB components, avoiding the foam collapse often encountered with some APEO‑free grades that rely on a single point of hydrophilic‑lipophilic balance.

    Woodworking Adhesives: Setting Speed and Creep Resistance Under D3/D4 Classification

    For hardwood assembly (beech, *Fagus sylvatica*) meeting **EN 204** durability class D3, a single‑component formulation with **45 %** CW40-907 on wet adhesive weight develops a shear strength of **>7 N/mm²** after **4 days** conditioning at **23 °C/50 % RH**, and retains **>4 N/mm²** following **4 h** cold‑water soak. The quick setting behaviour derives from the high molecular mass of the polyvinyl alcohol stabiliser, which induces a rapid viscosity build as water is absorbed by the wooden substrate. Creep resistance under **EN 14256** at **60 °C** with a static load of **0.15 N/mm²** for **6 h** yields a joint displacement **<0.5 mm**, a value that remains stable even when the adhesive is plasticised with **5 %** dibutyl phthalate, indicating robust internal cohesion. Compared with surfactant‑stabilised APEO‑free dispersions, CW40-907 does not require formaldehyde‑donor crosslinkers to meet D3 requirements, which keeps free formaldehyde content in the cured glue line below **5 µg/m³** when evaluated by the chamber method **EN 717‑1**.

    Potential Incompatibilities and Storage‑Rheology Drift Over Shelf Life

    Addition of polyvalent cations such as **Al³⁺** (e.g., from aluminium chloride accelerators) leads to instantaneous micro‑coagulation and grit formation; therefore, hardener components based on metal salts must be introduced slowly under high‑speed agitation and at a pH buffer maintained above **4.0**. Amine‑functional silanes, commonly used as adhesion promoters in parquet adhesives, may destabilise the colloid through electrostatic bridging; pre‑dilution of the silane to **20 %** in isopropanol and dropwise addition while monitoring Zeta potential is recommended. The product remains stable in its original sealed containers for **6 months** when stored at **5–30 °C**, protected from freezing. One freeze‑thaw cycle ( **-5 °C** to **23 °C** ) causes an irreversible viscosity increase of **+300 %** and formation of a gritty deposit. During compounding, pH should not be permitted to rise above **8.0**, as alkaline hydrolysis of the ester linkages accelerates and releases alcohol species that plasticise the film and increase the water absorption coefficient (measured at **24 h** immersion per **ISO 62** ) from the typical **15 %** to **>25 %**. The table below contrasts CW40-907 against a representative APEO‑containing VAE (standard grade CW40‑705) and a commercial APEO‑free competitor grade to highlight structural and performance differences across key parameters.
    ParameterCW40-907CW40-705 (APEO‑containing)APEO‑free competitor AMethod
    MFFT (°C)<035ISO 2115
    APEO content (mg/kg)<101 800–2 200<15EN ISO 18254‑1
    Wet shear strength on beech after 4 h water soak (N/mm²)4.53.83.2EN 204 D3
    Formaldehyde content (mg/kg)152530EN 717‑3
    Daphnia EC50 48 h (mg/L)>1007>100OECD 202
    Water absorption after 24 h (%)152219ISO 62 (film cast)
    The data illustrate that the APEO‑free architecture in CW40-907 not only meets the regulatory cut‑off but also delivers a measurable gain in hygrothermal resistance, likely attributable to the absence of the polyethylene oxide segments that promote water uptake in traditional APEO‑bearing analogues.