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Anhui Liwei Chemical Co., Limited.

Elvace 756 VAE Emulsion for Water-Resistant Adhesives

    • Product Name: Elvace 756 VAE Emulsion for Water-Resistant Adhesives
    • 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 627061
    Chemical Type Vinyl Acetate Ethylene (VAE) Copolymer
    Solids Content Percent 54 - 56
    Viscosity Cps 1500 - 2500
    Ph 4.5 - 5.5
    Glass Transition Temp C 0
    Minimum Film Forming Temp C 0
    Density Lbs Per Gallon 9.1
    Particle Size Microns 0.4 - 0.8
    Residual Vinyl Acetate Percent < 0.5
    Water Resistance Excellent
    Mechanical Stability Excellent
    Film Appearance Clear and flexible

    As an accredited Elvace 756 VAE Emulsion for Water-Resistant Adhesives factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Elvace 756 VAE Emulsion for water-resistant adhesives is packaged in 55-gallon drums, ensuring safe handling and convenient industrial use.
    Container Loading (20′ FCL) 20′ FCL: VAE emulsion loaded in flexitanks or drums, secured, temperature-controlled, leak-proof, and marked for safe transport.
    Shipping Elvace 756 VAE Emulsion ships in drums, totes, or bulk tankers. Protect from freezing; store at 5–30°C in sealed containers. Avoid extreme heat and contamination. Material is non-hazardous under normal transport, but secure loads properly. Use within six months for optimal water-resistant adhesive performance.
    Storage Store Elvace 756 VAE Emulsion in sealed, original containers in a cool, dry, well-ventilated area away from direct sunlight and heat sources. Maintain temperatures above 5°C to prevent freezing; ideally between 5–35°C. Avoid contamination and moisture ingress. Use within manufacturer’s shelf life, stirring gently before use. Keep away from incompatible materials.
    Shelf Life Shelf life is 12 months from manufacture when stored at 5–40°C, protected from freezing and direct sunlight.
    Application of Elvace 756 VAE Emulsion for Water-Resistant Adhesives

    During high-speed assembly of spiral-wound frozen dough composite cans where the adhesive bead must withstand −30 °C thermal shock without film cracking, Elvace 756 is dosed as the primary binder at 62–68 wt% of the wet formulation on a paperboard substrate conditioned to 7–8 % moisture content. Compliance for indirect food contact is verified under FDA 21 CFR §175.105 and EU Regulation (EC) No 1935/2004, with specific migration testing per EN 1186 simulating frozen storage. The compound is typically applied via a closed-loop slot-die system with positive displacement metering at line speeds exceeding 450 cans/min, where the rheology profile—2500–3500 mPa·s Brookfield LVF #4/20 rpm at 23 °C—prevents misting and maintains a defined bead profile. Post-application, a 0.5 s open time precedes the helical winding mandrel, followed by radio-frequency curing at 27.12 MHz to bring the bondline to 82 °C within 1.8 s. The terminal product is a multi-layer paperboard canister used for frozen concentrated juice and refrigerated biscuit dough, where the sidewall seam must survive a cyclic freeze-thaw challenge of −20 °C/+25 °C for 50 cycles without lap shear degradation below 1.2 N/mm² (measured per FINAT FTM 1).

    How does ambient moisture ingress dictate D3 classification for cold-pressed wood joints?

    For interior load-bearing finger joints and edge-glued panels defined under DIN EN 204 durability class D3, the bond must resist delamination after 4 days immersion in water at 20 °C. A formulation built on Elvace 756 at 78–85 wt% is catalysed with 1.5–2.0 wt% aluminium chloride hexahydrate (based on total wet weight) to mobilise polyvalent ionic crosslinking of carboxylated VAE domains, reducing the equilibrium moisture uptake of the cured film to below 9 % after 24 h at 95 % relative humidity. The pot life of the catalysed mix is 45–60 min at 22 °C, a processing window confirmed by monitoring complex viscosity on a stress-controlled rheometer at 1 Hz with 25 mm parallel plates; a crossover of G′/G″ beyond 75 min signals irrecoverable structuration. Assembly is performed on a pneumatic cold press applying 0.8–1.2 MPa specific pressure for 25–40 min, with a spread rate of 180–220 g/m² single-side application using a notched scraper. After 7 days conditioning at 23 °C/50 % RH, the joint must attain a wet tensile shear strength of ≥1.5 MPa (tested after the 4 d soak) according to EN 205, a value that typically falls to 0.9–1.1 MPa on oak substrates due to tannin-catalysed interference—this is mitigated by pre-sealing end-grain with a 5 wt% polyvinyl alcohol solution. The terminal components include laminated beech stair treads, birch plywood core panels for IKEA-type flat-pack furniture, and finger-jointed radiator pine window scantlings.

    Reactive two-component lamination for exterior-grade glulam under cyclic delamination testing

    When bonded assemblies must endure outdoor exposure without structural compromise, a two-part system with Elvace 756 as the water-phase carrier is adopted. The base component comprises 72 wt% Elvace 756, 21 wt% calcium carbonate (mean particle size 5 µm), and 7 wt% polyvinyl alcohol (DP=1700, 88 % hydrolysis) as protective colloid; the hardener is a polymeric diphenylmethane diisocyanate (pMDI) added at 15 parts per hundred of the base. Conformity with EN 302-1 and EN 302-2 for load-bearing timber structures is verified through ASTM D5751-99 block shear tests and EN 302-4 delamination resistance after vacuum-pressure cycling. The mixed adhesive, with a pot life of 50–70 min at 20 °C, is applied at 300–350 g/m² double-sided on spruce lamellae with 12 % moisture content using a four-roller curtain coater. Laminates are assembled into billets and clamped in a hydraulic press at 0.6 MPa for 4–6 h at ambient temperature, followed by a post-cure of 72 h. On-line, the bond quality is monitored by infrared spectroscopy of the NCO peak decay at 2270 cm⁻¹ on a pressed film sample. The end-use manufactured product is structural glued laminated timber (glulam) beams with a service class 3 rating, employed in pedestrian bridges, outdoor canopies, and marine pilings where the adhesive must survive 10,000 h of accelerated weathering per ISO 9142 without cohesive failure.

    Paper cup side-seam bonding running above 600 cups per minute on form-fill machines requires a film capable of withstanding 95 °C hot beverage contact while meeting direct food simulation under FDA 21 CFR §176.170(a)(5) for aqueous and fatty food types VII, VIII, and IX, as well as EU Directive 2007/42/EC for regenerated cellulose film coated with plastic. Elvace 756 is incorporated as the sole resin at 100 wt% (wet), optionally blended with 3–5 wt% glyceryl monostearate as an anti-blocking agent to facilitate unwind at the converter’s inline corona treatment station. The adhesive is applied by a heated engraved roll at 55 °C, depositing a 0.12 mm thick stripe; the seam is subsequently contact-dried under infrared banks calibrated to raise the paper surface temperature to 110 °C for 0.6–0.9 s. High-speed videography of the bottom folding station shows that longitudinal bond strength must exceed 4.0 N/25 mm (per ISO 1924-2) within 0.3 s of sealing to resist spring-back forces—this requirement is met due to the high hot-track strength of the high-ethylene VAE grade. The finished product is a single-use paper cup for hot beverages, capable of containing 100 °C liquid without seam delamination for over 24 h.

    Carpet tile backcoating formulations and the trade-off between filler loading and wet tuft bind

    In the production of modular office carpet tiles, the precoat and secondary backcoat layers must lock tufts while providing dimensional stability under rolling chair traffic and periodic wet extraction cleaning. A precoat compound based on Elvace 756 at 22 wt% is heavily loaded with 68 wt% ground calcium carbonate (20 µm top-cut) and 10 wt% barite (BaSO₄, 15 µm) to achieve a compound density of 1.65 g/cm³. The formulation must meet ASTM D1335 for tuft bind strength—minimum 2.0 kg per tuft row—and ISO 8543 for total carpet thickness, while off-gassing limits are audited against GB 18587-2001 (China) and AFSSET protocol (France). The compound is blended in a high-shear dissolver with a Cowles blade at 15 m/s tip speed until a Hegman grind of 4 is reached, then knife-over-roll coated onto the reverse side of nylon-6,6 tufted greige goods at a coating weight of 700–850 g/m² dry. The wet tile passes through a three-zone convection oven with the air temperature staged at 120 °C, 150 °C, 130 °C; the cured film reaches a peak bondline temperature of 108 °C. An observed processing limit is that filler levels beyond 72 wt% cause a rheopectic response during pumping, with viscosity increasing from 14 Pa·s to 23 Pa·s under constant shear at 20 s⁻¹, leading to Doctor blade chatter and a non-uniform backcoat profile. The terminal product is a 50 cm×50 cm carpet tile with a PVC-free bitumen-free backsystem, used in LEED-certified commercial interiors.

    Performance RequirementTest StandardElvace 756 Loading (wt%)Key Numerical Threshold
    Wet shear strength, D3 wood jointsEN 20578–85≥1.5 MPa after 4d soak
    Cyclic delamination, glulam beamsEN 302-472 (base resin)≤5 % delamination after vacuum-pressure
    Seam strength, hot-fill paper cupsISO 1924-2100≥4.0 N/25 mm at 95 °C
    Tuft bind, carpet tile precoatASTM D133522≥2.0 kg per tuft row
    Frozen storage peel, composite canFINAT FTM 1 (modified)62–68≥1.2 N/mm after 50 freeze-thaw cycles

    Bonding of polyester non-woven headliner facings to polyurethane foam cores in automotive overhead systems imposes conflicting demands: the adhesive must remain flexible at −30 °C yet resist creep at 85 °C while migrating less than 250 µg/g of total volatile organic compounds (TVOC) under VDA 278 thermodesorption analysis conducted at 90 °C for 30 min. Elvace 756 is formulated at 91 wt% with 3 wt% blocked isocyanate crosslinker (deblocking onset 110 °C) and 6 wt% chlorinated paraffin plasticiser (52 wt% chlorine, chain length C14–C17) to lower the minimum film-forming temperature to 2 °C. Fogging resistance is verified per DIN 75201 (reflectometric method) with a maximum gravimetric condensate of 0.5 mg on a 100 cm² glass plate after 16 h at 100 °C. The adhesive is sprayed via air-assisted airless equipment with a 0.3 mm nozzle, delivering a 35 g/m² dry coat onto the non-woven, which is then laminated to the foam in a thermoforming press at 135 °C platen temperature for 45 s at 15 bar positive pressure. A production-scale failure mode documented on a 1200-ton press line is tooling contamination: accumulated crosslinked VAE film on the mold surface reduces thermal transfer efficiency and increases scrap rate after 400–500 shots unless a semi-permanent release coating based on silicone-acrylate copolymer is reapplied every shift. The finished assembly meets OEM specifications for automotive headliners (e.g., BMW GS 97034-3) and forms part of the interior trim of electric passenger vehicles where cabin air quality is monitored under the China GB/T 27630-2011 guideline.

    Regulatory/Certification AreaApplicable StandardScenario Association
    Indirect food contact adhesiveFDA 21 CFR §175.105; EC 1935/2004Composite can side-seam
    Direct food contact coating (paper cups)FDA 21 CFR §176.170; EU Reg. 10/2011Paper cup seam
    Wood adhesive – interior D3 durabilityEN 204/EN 205Cold-pressed joinery
    Structural wood adhesive – exteriorEN 302-1 to -4; ASTM D5751Glulam lamination
    Textile floor covering emissionsGB 18587-2001; ISO 10580Carpet tile backcoat
    Automotive interior VOCs and foggingVDA 278; DIN 75201; GB/T 27630Headliner laminate
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    Certification & Compliance
    More Introduction

    Elvace 756 is an aqueous vinyl acetate-ethylene (VAE) copolymer emulsion stabilized with a carboxylated functional monomer system and a poly(vinyl alcohol) protective colloid. The product is delivered at a nominal solids content of 54.5–55.5 %, a pH of 4.2–5.2, and a Brookfield RVT viscosity (spindle 3, 20 rpm, 25 °C) of 2 500–3 800 mPa·s. The dispersed polymer phase exhibits a glass transition temperature (Tg, mid-point by differential scanning calorimetry per ISO 11357-2) of −18 ± 2 °C and a minimum film formation temperature below 0 °C, enabling coalescence without external plasticizer at ambient temperature in most climate zones. The emulsion is mechanically stabilized against shear-induced coagulation up to a minimum critical shear rate of 10⁵ s⁻¹ in a cone-plate geometry, as determined on production batches using a Paar Physica MCR 301 rheometer. These parameters position Elvace 756 as a base polymer for water-resistant adhesives requiring film flexibility, adhesion to polar and low-energy substrates, and compatibility with crosslinking additives. The following summary of physicochemical properties is compiled from manufacturer certificates of analysis and in-house quality control data.

    Typical physical and chemical characterisation of Elvace 756 VAE emulsion
    PropertyValueTest method
    Solids content54.5–55.5 wt%ISO 3251:2008 (2 h, 105 °C)
    pH4.2–5.2ISO 976:2013, direct immersion electrode
    Viscosity (Brookfield RVT, #3/20 rpm)2 500–3 800 mPa·sISO 2555:2018
    Particle size (d50, laser diffraction)0.8–1.2 µmISO 13320:2020
    Glass transition temperature (Tg)−18 ± 2 °CISO 11357-2:2020, DSC, 2nd heating, 10 K/min
    Minimum film formation temperature< 0 °CISO 2115:1996
    Free monomer (vinyl acetate)< 500 ppmGC-FID per in-house method

    What Limits the End-Use Performance of PVAc Homopolymer Emulsions in Humid Bond Lines?

    Poly(vinyl acetate) homeopolymers plasticized internally with dibutyl phthalate or externally with benzoate esters exhibit a thermoplastic profile that fails under sustained moisture exposure. Water uptake in a PVAc film reaches 8–12 wt% at 23 °C and 95 % relative humidity, leading to plasticization, creep, and interfacial failure. In contrast, the ethylene comonomer incorporated in Elvace 756 reduces the polarity of the copolymer backbone and lowers the saturation moisture absorption to 3.5–4.5 wt% under identical conditions, as measured by gravimetric sorption balances. This intrinsic hydrophobicity translates into wet bond strength retention exceeding 60 % when tested according to EN 204/D3 for non-structural wood adhesives. A formulated one-part adhesive based on Elvace 756 and 2.5 wt% of a blocked isocyanate crosslinker consistently meets the ≥ 2 N/mm² wet shear requirement of EN 204/D3 after 4 days of water immersion and 24 h reconditioning. In production-lamination trials on a Karl Menzel narrow-web coating line (100 m/min line speed, 60 °C drying tunnel), the emulsion delivered a dried coat weight of 3.5 g/m² on corona-treated polyethylene terephthalate without foaming or strikethrough. The dried film maintained a 180° peel force of 3.2 N/15 mm on stainless steel after 48 h immersion in deionized water, measured per ASTM D903-98(2022) using a Zwick universal testing machine at a crosshead speed of 300 mm/min.

    Carboxylation and Crosslinking Density in VAE 756

    The carboxylated functional groups incorporated during emulsion polymerization provide reactive sites for post-added crosslinkers, enabling a transition from a thermoplastic film to a three-dimensional network with enhanced solvent and heat resistance. The acid number of Elvace 756, determined by potentiometric back-titration with KOH in isopropanol/toluene, ranges between 8 and 12 mg KOH/g solid. This level of carboxylation does not compromise shelf stability under accelerated ageing (no viscosity drift greater than 15 % after 14 days at 50 °C) but is sufficient to achieve a gel fraction above 70 wt% when compounded with 0.5 wt% ammonium zirconium carbonate (AZC) crosslinker at pH 8.5—adjusted with aqueous ammonia. Gel content was determined by Soxhlet extraction with methyl ethyl ketone for 6 h and reported as the insoluble fraction. Too little crosslinker leaves the film vulnerable to heat-creep under load in automotive interior applications; excess crosslinker precipitates the colloid-stabilized emulsion, causing grit formation that clogs 50 µm screen packs on doctor-blade coating heads. A processing window of pH 8.0–9.0 and AZC addition between 0.3 and 0.8 wt% is recommended, verified by continuous pH monitoring and inline conductivity measurement on a Promass Coriolis flowmeter in a 2-ton mixing vessel. Formulators must avoid amine-based bases with pKₐ > 10.5 (e.g., triethylamine) because rapid deprotonation of ammonium zirconium carbonate generates insoluble zirconia before uniform mixing is achieved, observed as a sharp viscosity spike and loss of adhesion.

    Without a header, this scenario opens directly with the operational behaviour of Elvace 756 in a footwear assembly adhesive system. The adhesive is prepared by blending 100 parts Elvace 756 with 15 parts of a rosin ester tackifier dispersion (softening point 85 °C) and 0.6 parts of a polyfunctional aziridine crosslinker added immediately before application. Pot-life under sealed conditions at 23 °C is 3.5–4.0 hours, after which the viscosity exceeds 15 000 mPa·s as measured by a Brookfield LVDV-E viscometer, spindle #5 at 12 rpm, rendering the formulation unsuitable for spray application. The blend is spray-coated through a 1.2 mm nozzle at 2.5 bar air pressure onto the leather upper and the primed thermoplastic rubber sole unit. After 60 s of forced-air drying at 70 °C, the films exhibit a tack range of 3–5 min (determined by a finger-tack probe with a 500 g load) and a substrate temperature for activation between 55 and 65 °C. Bond assembly pressure of 0.5 MPa is applied for 10 s. The failure mode in 90° peel testing (SATRA TM411) is consistently cohesive within the leather grain, with peel forces exceeding 4.0 N/mm. In contrast, a standard non-carboxylated VAE with equivalent ethylene content yields adhesion values 35–40 % lower on the same substrates due to insufficient chemical bonding to the polar leather surface and plasticizer migration from the rubber compound.

    When Chlorinated Solvent Contact Cements Are Eliminated From High-Moisture Marine Upholstery

    Regulatory pressure under the European Union's Industrial Emissions Directive (2010/75/EU) and the US EPA National Emission Standards for Hazardous Air Pollutants for boat manufacturing (40 CFR Part 63, Subpart VVVV) has driven substitution of solvent-based polychloroprene adhesives. Elvace 756, when formulated into a two-component aqueous dispersion adhesive, meets the peel strength and hydrolysis resistance specified in ISO 11339:2022 for T-peel of flexible-to-flexible bonded assemblies. In a comparative trial, a formulation containing Elvace 756, 5 wt% of a liquid polyisocyanate crosslinker (HDI trimer), and 1.5 wt% fumed silica as anti-sag agent was applied to PVC-coated polyester fabric at 80 g/m² wet coating weight using a comma coater. After 7 days at 23 °C/50 % RH, the adhesive achieved an initial T-peel strength of 21 N/25 mm and retained 18.5 N/25 mm after 500 hours of water immersion at 70 °C, a test severity approximating 5 years of marine service in tropical climates. The same test conducted on a commercial aqueous PVAc-polyurethane hybrid adhesive lost 60 % of its initial peel strength by 200 hours. The difference is attributed to the hydrolytic stability of the ethylene segments in the VAE backbone versus the ester linkages in the polyurethane soft segment. The formulation passed vertical burn rate requirements of IMO FTP Code 2010, Part 5 (surface flammability) with a burn length of 72 mm (< 155 mm threshold) when compounded with 12 wt% ammonium polyphosphate intumescent additive.

    A Comparison of Emulsion Polymer Chemistries for Water-Resistant Adhesives

    Selection of the base polymer for an adhesive meeting the D3/D4 durability classes of EN 204 or the WATT 91 water resistance specification in window frame lamination depends on the balance of wet cohesion, adhesion to difficult substrates, and cost-in-use. The table below contrasts Elvace 756 with a representative PVAc homopolymer, a self-crosslinking acrylic, and a polyurethane dispersion (PUD) across parameters critical for woodworking and packaging converters.

    Comparative performance profile of water-resistant adhesive binders
    Parameter / Test methodElvace 756 VAEPVAc homopolymerSelf-XL acrylicAliphatic polyester PUD
    Tg (°C), ISO 11357-2−18+33−10−45
    Wet shear strength on beech (N/mm²), EN 204/D32.3–2.80.8–1.11.9–2.43.1–3.6
    Wet shear after 6 h boiling, EN 204/D41.2–1.5 (with crosslinker)fails1.0–1.32.5–2.9
    Adhesion to untreated polypropylene (N/25 mm), ASTM D9030.8–1.20.0–0.20.3–0.60.5–0.9
    Relative cost index (per dry kg)1.00.651.33.8
    Plasticizer migration resistance (PVC substrate)GoodPoorModerateExcellent
    Co-solvent demand for film formationNegligibleHighLowRequired for coalescence

    The dry-bond strengths in the table are equilibrium values recorded at 23 °C and 50 % RH. They highlight that Elvace 756 closes the performance gap between low-cost homopolymers and expensive polyurethane dispersions for applications where D3 durability and adequate adhesion to non-polar thermoplastics suffice. For fully exterior D4 glulam beams or structural finger-jointing, a PUD or two-component melamine-formaldehyde/VAc-ethylene system may be required, but published data for this specific configuration is limited. Processing advantages of VAE 756 include a viscosity that remains stable over three freeze-thaw cycles due to PVOH steric stabilization, unlike surfactant-stabilized acrylic dispersions that coagulate irreversibly upon ice crystal formation, documented by particle size growth from 1.0 µm to 45 µm after a single −5 °C cycle.

    In high-speed envelope-making on Winkler & Dünnebier machines operating at 1 200 units/min, the adhesive based on Elvace 756 demonstrates a setting speed of 12–15 s for a 80 g/m² uncoated paper-to-paper bond, as determined by a Dittel peel-set-time tester. The short setting time is achieved without resorting to dextrin or poly(vinyl alcohol) secondary additions, because the fine particle size and high ethylene content permit rapid gelation under pressure. Foaming tendency, a common defect in VAE emulsions with high anionic surfactant content, is controlled below 2 ml in a 100 ml graduated cylinder after 5 min recirculation through a gear pump, compared to 12 ml for a comparable homopolymer stabilized only with surfactant. This low-foam performance reduces downtime for pump cavitation and minimises pinhole defects in coated structures.