| HS Code | 190294 |
| Product Name | CW40-916 APEO-Free High-Viscosity VAE Emulsion for Adhesives |
| Appearance | White milky liquid |
| Solids Content | 55% ± 1% |
| Viscosity | 5000 mPa·s ± 2000 mPa·s at 25°C |
| Ph | 4.5 - 6.0 |
| Density | 1.05 - 1.10 g/cm³ |
| Glass Transition Temperature Tg | -5°C |
| Minimum Film Forming Temperature | 0°C |
| Particle Size | 0.5 - 2.0 μm |
| Residual Vinyl Acetate Monomer | <0.1% |
| Film Tensile Strength | 8 - 10 MPa |
| Film Elongation At Break | 600% - 800% |
| Freeze Thaw Stability | Stable for 5 cycles |
| Storage Stability | 6 months at 5°C - 35°C |
As an accredited CW40-916 APEO-Free High-Viscosity VAE Emulsion for Adhesives factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Supplied in 200 kg drums or 1,000 kg IBC totes, sealed containers to prevent moisture loss and contamination. |
| Container Loading (20′ FCL) | 20′ FCL loading of CW40-916 APEO-free high-viscosity VAE emulsion: palletized drums secure in full container, ensuring safe transport and product integrity. |
| Shipping | CW40-916 is shipped in sealed drums or IBC totes, protected from moisture and extreme temperatures. It is classified as non-hazardous for transport, but should be kept above 5°C to prevent freezing. Avoid direct sunlight and store upright to maintain product stability during transit. |
| Storage | Store CW40-916 in original, tightly sealed containers in a cool, dry, well-ventilated area away from direct sunlight and heat sources. Maintain storage temperature between 5°C and 35°C to prevent freezing or coagulation. Avoid contamination, use clean equipment when handling, and follow first-in, first-out rotation to maintain product stability and performance. |
| Shelf Life | Shelf life is 12 months from production date when stored sealed, away from frost, and below 40°C. |
Delamination in load-bearing wood joints exposed to EN 204 D4 test cycles—4 days immersion in cold water followed by immediate strength measurement—is often traced to surfactant migration, not cohesive failure of the VAE film. When an alkylphenol ethoxylate-containing emulsion dries, non-bound APEOs concentrate at the adhesive/substrate interphase, plasticizing the interface and reducing wet shear strength by 30–50% compared to an APEO-free analogue. CW40‑916 eliminates this mechanism entirely. Its high initial viscosity, typically above 12 000 mPa·s (Brookfield LV, spindle 4, 20 rpm), permits open-time extension without excessive penetration into low-density hardwood species such as poplar or okoumé, where rapid dewatering of a thin glue line would otherwise starve the bond of mobile polymer.
For exterior joinery meeting DIN 68602 bond class B4, a two-part formulation is assembled by weighing 100 parts CW40‑916 and 5–8 parts a water-dispersible polymeric isocyanate (pMDI) hardener. Mixing is completed at 300–500 rpm with a toothed disc within 15 minutes of application; pot life at 20 °C drops to 45–60 minutes. Adhesive is roll-coated at 120–150 g/m² on both lamellae and open assembly time is maintained below 10 minutes at 20 °C/55% RH. Pressing is conducted in a multi-opening cold press at 0.8–1.2 MPa for 45–90 minutes depending on wood equilibrium moisture content, which must be clamped within 10±2%. In production of laminated window scantlings, high-frequency curing can reduce press time to 6–12 minutes; however, the steep dielectric loss factor of the wet adhesive layer requires power control below 0.6 kW/kg to prevent boiling at the bond line.
A comparative data set collected on beech after EN 204 D4/5 cycling highlights the gain in reliability:
| Metric | APEO-Free CW40‑916 + 6 phr pMDI | Conventional APEO-Containing VAE + 6 phr pMDI |
|---|---|---|
| Dry tensile shear (N/mm²) | 13.2 (wood failure > 85%) | 11.8 (wood failure 70%) |
| Wet shear after 4d cold soak (N/mm²) | 9.4 (cohesive failure in adhesive) | 5.1 (interface peel) |
| Delamination after 3 cycles (%) | <2% | 8–12% |
| pH of squeezate after press | 4.2–4.5 | 4.8–5.3 (accelerated tannin bleed) |
Structural fingerjoint stock must never be post-treated with alkaline preservative salts; acetate-buffered VAE dispersions are destabilized at pH above 8.5, leading to grit formation and starved joint micro-cracks. Furthermore, crosslinking with pMDI generates CO₂ at low rates, which remains innocuous unless press pressure drops below 0.5 MPa, when microscopic foam voids degrade creep resistance measured under ASTM D4680.
On a straight-line folder-gluer running corrugated or solid board at speeds exceeding 250 m/min, the adhesive is transferred by a rotating steel doctor wheel from a circulating pan. Splashing, misting, and stringing must remain below a threshold that triggers optical sensor fouling or mis-registration of the next blank. CW40‑916’s high zero-shear viscosity—sustained by a protective colloid system instead of associative thickeners sensitive to shear history—delivers clean application on wheel-type applicators at 40–55 °C pan temperature. The rheology profile measured on a cone-and-plate rheometer shows a gradual shear-thinning index of 0.28–0.32 (Carreau model), which suppresses stringing during nip separation yet permits rapid leveling under compression at the tucking station.
Food contact compliance is mandatory. A migration-tested formulation uses 100 parts CW40‑916, 8–15 parts glycerol ester of stabilized rosin (softening point 85–95 °C), and 2–4 parts acetyl tributyl citrate. The dry film falls under FDA 21 CFR 175.105 and Article 3 of EU 10/2011 when total migration into 10% ethanol simulant does not exceed 10 mg/dm². Tack development on clay-coated SBS measured by a probe tack tester at 0.5 s dwell reaches 180–220 g/cm², sufficient to hold a 4-corner beaker-style carton before the transfer section. Viscosity at the application roller is typically adjusted with 2–3 wt% water addition; at 55 °C the Brookfield viscosity reads 7 000–9 000 mPa·s, a range deliberately above the threshold where drop formation occurs at the doctor blade edge.
Operators must avoid substituting hydrocarbon resin with a cloud point above 80 °C—incompatibility manifests as a grainy film with catastrophic loss of adhesion on varnished areas after 48 h conditioning at 30 °C/80% RH. Final products include pharmaceutical unit-dose cartons, frozen food wraps, and bottle carrier multi-packs where rewettable glues are specified for repulpability under TAPPI UM 213.
An automotive headliner composite bonds a polyester or polypropylene nonwoven face fabric to a glass-fiber-reinforced polyurethane foam core. Adhesive is applied by robotic air-atomizing spray in a ventilated enclosure, requiring a wet-on-wet open time of 7–15 s before the fabric and foam are pressed between heated drums at 130–160 °C. CW40‑916 is pressure-strainered through a 100 µm mesh and diluted with deionized water to a spray viscosity of 800–1 200 mPa·s at 23 °C, which corresponds to a solids content of 42–48%. The absence of APEO and the low free monomer content (<300 ppm residual vinyl acetate) are prerequisites for meeting VDA 278 VOC value below 100 µg/g and FOG (fogging) below 250 µg/g.
For sustained heat resistance at the glazing line—where radiative heating can elevate bond line temperature to 95 °C—a heat-activated crosslinker is added. A polyfunctional carbodiimide at 1.5–2.0 phr relative to emulsion solids raises the softening point without shortening pot life beyond 6 h. Thermal creep resistance is verified by ISO 7391 lap shear under 500 g/cm² static load at 90 °C; delamination must not exceed 3 mm in 24 h. In production, atomizing air pressure is set at 0.25–0.30 MPa and fan pattern overlap is calibrated to 50%. Clogged nozzle tips—caused by skin formation when booth exhaust drops below 0.1 m/s face velocity—are a chronic downtime source remedied by intermittent rinsing cycles.
The fully cured system exhibits a peel strength on PU foam exceeding 2.5 N/25 mm per ASTM D903 with cohesive foam tear. Surplus spray mist drawn into water-wash scrubbers does not generate ecotoxic alkylphenol degradation products, aligning with EU 2023/27 derogation restrictions on APEO in wastewater and with automotive OEM restricted substance lists such as GMW 3059.
In upholstery lamination, open-cell polyurethane foam with density 18–30 kg/m³ is bonded to PVC synthetic leather or woven polyester fabric for seating applications. A direct-coating station applies CW40‑916 via engraved kiss-roll at a wet deposit of 60–80 g/m². The high viscosity and pseudoplastic flow prevent strike-through into the foam cell walls, preserving compression modulus measured by ISO 3386. Without such rheology control, low-viscosity emulsions penetrate the struts, creating a stiff, boardy hand and raising the 25% ILD hardness beyond the design tolerance of 120±20 N.
Flammability compliance to BS 5852 Crib 5 or CA TB 117-2013 is engineered by dispersing 25–35 phr aluminum trihydrate and 8–12 phr antimony trioxide into the emulsion under high-shear cowles dispersion at 1 800 rpm. The formulation is buffered with 0.2 phr sodium polyacrylate dispersant to prevent pH drift below 4.0 that would catalytically degrade the halogenated synergist. Post-lamination pressing between chilled rollers at 5 °C sets the thermoplastic film rapidly before unwinding tension ruptures the partially coalesced bond. Any addition of amine-functional silane adhesion promoters is prohibited; primary amines accelerate residual acetate hydrolysis, generating acetic acid odor detectable at 2 ppm and corroding brass zipper hardware in the finished sofa cushion. The final assembly withstands 80 000 cycles of the Hexapod test per ASTM F970 without delamination.
Vertical lamellae for glue-laminated timber beams are produced on a continuous finger-jointing line where profiled ends receive adhesive, are mated under end pressure of 2.5–4.0 MPa, and are instantly cured by radio-frequency at 13.56 MHz or 27.12 MHz. CW40‑916 blended with 10 wt% resorcinol-formaldehyde donor and 3 wt% paraformaldehyde hardener (press-cure version) forms a dark, Type I-water-resistant glue line compliant with ASTM D5751 for hardwood and AS/NZS 1328 for glulam. The high initial viscosity of the VAE component suppresses squeeze-out slumping on vertical faces, keeping the minimum cured bond thickness above 0.08 mm. At the extruder application head, precise volumetric dosing—0.15–0.25 g per finger profile—is maintained by a servo-driven piston pump that compensates for temperature-induced viscosity shifts between 15 °C and 30 °C.
In-process quality checks rely on an automated in-line delamination scanner using acoustic emission. The high cohesive energy density of the APEO-free VAE matrix yields 14–16 N/mm² block shear on Douglas fir when cured. Because phenol-formaldehyde prepolymer reactivity is pH-sensitive, the native acidity of CW40‑916 (pH 4.3–4.6) accelerates methylol condensation without external acid catalyst. For market segments that forbid formaldehyde in interior graded lumber, the same base emulsion can be reformulated with a polyamidoamine-epichlorohydrin (PAE) crosslinker at 0.8% solids on solids, though wet strength after a 6-hour boil reduces by 15% relative to the phenolic system. Edge-grain cutting boards and stair treads produced through this route pass ANSI/HPVA Type I.
Carpet tile backing imposes a two-layer coating challenge: pre-coat anchoring the pile yarn into the nonwoven carrier, and a heavy coat filled with calcium carbonate that delivers dimensional stability and weight. In a high-temperature forced-air tunnel, the pre-coat layer of CW40‑916 is applied via a knife-over-roll with a gap of 0.5–0.7 mm, penetrating the primary backing tufts. Its high viscosity at low shear ensures the coating mass stays perched at the root of the yarns, encapsulating 2–3 mm of the pile height. Within 90 seconds in the first oven zone at 130 °C, water is driven off to leave a flexible collar that locks tufts for pull forces exceeding 25 N per loop in ISO 10361.
The heavy coat compound is built with 100 parts CW40‑916 and 450–550 parts ground limestone (D₅₀ 12 µm), dispersed in a twin-shaft paddle mixer until Hegman grind reaches 4–5. Viscosity after filler loading is trimmed with 0.5–1.0 parts aqueous acrylic thickener to a target of 55 000–70 000 mPa·s (Brookfield LV 4/6 rpm). This body prevents the compound from bleeding through the secondary backing during lamination. Final cure in a three-zone oven with a peak substrate temperature of 145 °C yields a tile that shrinks less than 0.1% after 24 h water immersion per ISO 2551. A critical operating boundary exists with residual vinyl acetate monomer: levels above 500 ppm generate odor complaints in office installations. Each batch must be certified below this threshold by headspace GC-MS before release. The emulsion must not come into contact with zinc stearate dusting powders; chelation stiffens the coating and causes star cracking at the flex-fold point of the tile.
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| Property (Standard Method) | CW40-916 | Conventional VAE (APEO-containing) |
|---|---|---|
| Initial 180° peel strength, N/25 mm (ASTM D903-98(2022)) | 3.2 | 2.6 |
| Peel after 7-day 50°C/95% RH aging | 2.8 | 1.0 |
| APEO content (LC-MS/MS, detection limit 10 ppm) | Not detected | 450 ppm nonylphenol ethoxylates |
| Shear adhesion failure temperature, °C (SAFT, 1 kg load) | 88–93 | 72–78 |
| Sequence Step | Viscosity at 24 h (mPa·s) | Observation |
|---|---|---|
| Add water to CW40-916, then filler | 12,500 | Smooth dispersion, slight dilution thinning |
| Add filler to CW40-916, then water | 18,900 | Transient gelation, partial structure recovery |
| Add pre-dispersed filler/water slurry to CW40-916 | 14,600 | Reproducible, preferred method |