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Anhui Liwei Chemical Co., Limited.

EcoVAE 1610 VAE Emulsion

    • Product Name: EcoVAE 1610 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 150614
    Appearance Milky white liquid
    Solids Content 55% ± 1%
    Viscosity 800 mPa·s (Brookfield, 25°C)
    Ph 4.5 - 5.5
    Glass Transition Temperature -5°C
    Minimum Film Forming Temperature 0°C
    Particle Size 1 μm average
    Density 1.08 g/cm³
    Residual Vinyl Acetate Monomer ≤ 0.1%
    Film Flexibility Excellent
    Water Resistance Good
    Mixing Stability Good

    As an accredited EcoVAE 1610 VAE Emulsion factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing EcoVAE 1610 VAE Emulsion is supplied in 200 kg steel drums, 1000 kg IBC totes, or bulk tanker loads.
    Container Loading (20′ FCL) 20′ FCL loaded with EcoVAE 1610 VAE Emulsion in drums/IBCs, securely braced, protected from heat and damage during transit.
    Shipping EcoVAE 1610 VAE Emulsion ships in sealed drums, IBC totes, or bulk tankers. Protect from freezing and excessive heat; ideal transport temperature is 5–35°C. Ensure secure handling, avoid spills, and use appropriate PPE. Not classified as dangerous goods, but standard industrial safety protocols apply.
    Storage Store EcoVAE 1610 VAE Emulsion in sealed, original containers in a cool, dry, well-ventilated area. Avoid direct sunlight, heat sources, and freezing; maintain temperatures between 5°C and 35°C. Keep containers tightly closed to prevent skinning or contamination. Use within recommended shelf life, and stir gently before use.
    Shelf Life Shelf life is 12 months from manufacture date when stored sealed, protected from freezing, and kept between 5–40°C.
    Application of EcoVAE 1610 VAE Emulsion
    In production-grade architectural millwork, edge-glued softwood and hardwood staves intended for interior door stiles and stair treads are assembled with a Type-II water-resistant adhesive per DIN EN 204 and JAS 6018. A single-part system formulated with EcoVAE 1610 at 45–55% solids is roller-applied at 150–180 g/m² using a ribbed coater. Equipment: a multi-roll spreader with 0.2–0.4 mm gap, operating at line speeds up to 25 m/min, followed by a multi-daylight cold press delivering 0.8–1.2 MPa for 60–120 minutes at shop floor temperatures above 15 °C. Under these parameters the bond must withstand 4 N/mm² wet shear after a 6-hour boil cycle and 8 N/mm² dry shear when tested on beech according to DIN EN 205. An operational constraint emerges in winter production: viscosity drift beyond ±500 mPa·s from the baseline 12,000 mPa·s (Brookfield RVT, No.6 spindle, 20 rpm) causes starved glue lines. A thermostatically jacketed transfer vessel holding the emulsion at 20–25 °C mitigates this. Vinyl acetate-ethylene chemistry provides inherent plasticizer-free compliance with indoor air quality schemes such as M1 and Blue Angel RAL-UZ 130, eliminating formaldehyde scavengers.

    What prevents a two-component cementitious waterproofing slurry from delaminating under negative water pressure?

    Polymer-modified cementitious membranes applied by trowel on concrete basements and lift pits demand a liquid-to-powder ratio of 1 : 2.5 to 1 : 3.0. In a JS Type-II system meeting GB/T 23445-2009, EcoVAE 1610 is compounded with a powder phase containing P·O 42.5 ordinary Portland cement, 70–100 mesh silica sand, and a polycarboxylate superplasticizer at 0.15% by powder weight. Mixing is executed on-site with a 500–700 rpm low-shear paddle for 3 minutes, followed by a 2-minute maturing rest and a 1-minute re-mix to release entrained air. The pot life is pinned at 60–90 minutes at 23 °C. Two coats are applied perpendicularly; the second coat follows when the first is finger-dry but not fully cured—typically a 4–6 hour window. The finished film at 1.5–2.0 mm dry thickness delivers a crack-bridging capacity of ≥0.75 mm and a water impermeability pressure of 0.3 MPa sustained for 30 minutes without leakage under JC/T 894 test protocol. Process deviation: a powder pre-wetting stage is mandatory when ambient relative humidity drops below 35%, otherwise the slurry surface skins within 10 minutes and inter-coat adhesion is compromised. The VAE emulsion’s alkaline hydrolysis resistance prevents ester cleavage at the pH 12–13 interface, a critical failure mode observed with pure acrylic binders in continuously immersed applications.

    Filtration Media Binder Systems and Synthetic Fibre Entanglement

    Pleated air filters for HVAC and paint-booth exhaust rely on a fibre-bonding resin that withstands 120 °C hot-air cycling without thermoplastic blocking of the media pores. A pad-batch application loop with a 3-roll hip roller adjusts the EcoVAE 1610 emulsion dilution to 15–22% solids with demineralised water; pick-up is controlled gravimetrically to 12–16% dry binder on fibre weight. The impregnated polyester/non-woven web moves through a pin-chain tenter dryer divided into three zones: zone 1 at 100 °C, zone 2 at 135 °C, zone 3 at 145 °C, with a residence time of 90–110 seconds. Exiting moisture content must plateau below 0.8%. The cured sheet is subsequently corrugated and framed. The key technical conflict lies in the minimum film-forming temperature of the latex versus the required cross-hatch stiffness: EcoVAE 1610, exhibiting an MFFT near 0 °C, fully coalesces at zone-2 temperatures, leaving no residual tack, yet the polymer backbone resists thermal yellowing at 160 °C for 10 minutes as evidenced by a ΔYI of less than 2.0 per ASTM E313. Fluorochemical-free hydrophobicity is achieved by post-drying inline plasma treatment; direct emulsion co-blending with silicone additives is avoided because it reduces the interfacial shear strength between the formulation and polyethylene terephthalate fibre by 30–40%, measurable via a 180° peel test at 300 mm/min.When food-safe deli paper and microwaveable baking parchment require direct-fat-contact barrier without perfluoroalkyl substances, a back-side coating applied via a multi-roll gravure system constitutes the only viable path. EcoVAE 1610 is compounded into a water-borne primer containing 8–12 parts of a phyllosilicate-based aspect-ratio modifier (sodium montmorillonite, d₅₀ ≤ 5 µm) per 100 parts wet emulsion, plus 0.3 wt% of a defoamer based on mineral oil. The coat weight is maintained at 3.5–4.5 g/m² dry. The coated substrate is dried against a chrome-plated Yankee cylinder with a surface temperature of 130–135 °C at a contact time of 2.5 seconds, immediately followed by a rewetting station for curl control. Compliance is verified through overall migration testing into simulant D1 (ethanol 50%) under 40 °C for 10 days following EN 1186-1:2002; results must not exceed 10 mg/dm². The system functions because the VAE emulsion vehicles do not require a coalescing high-boiling glycol ether that would otherwise elevate volatile organic compound levels beyond the 0.5% threshold imposed by Nordic Ecolabel for disposable food packaging. Operational warning: storage of pre-blended formulation above 35 °C initiates synergistic defoamer destabilisation, leading to micro-foam that translates into craters visible under 10× magnification on a polished sheet offset printing line.The need for exceptionally low-VOC carpet back-coating adhesives in closed-loop office environments introduces a critical balance between tuft lock and hot-tack rheology during the secondary-backing lamination step. A foamed compound is prepared by mechanically whipping EcoVAE 1610 with a solution of ammonia-neutralised polyacrylate thickener and disodium alkylphenol ether sulfosuccinate as frothing aid, achieving a density of 650–800 g/L. The compound is knife-coated onto a polypropylene primary-backing at 400–600 g/m², then cured in a 4-zone convection oven with a peak temperature of 150 °C for 3 minutes. Tuft-bind strength measured according to ASTM D1335 must attain ≥26 N for uncut pile and ≥14 N for cut pile. A production bottleneck surfaces with calcium carbonate filler load exceeding 150 phr: the compound’s dynamic viscosity under a 1.5 s⁻¹ shear rate drops below 8 Pa·s, causing strike-through into the pile. Conversely, filler below 80 phr raises the dry coating’s tan δ above 0.35 at 85 °C, resulting in heel-mark retention when heavy office furniture is moved. Process engineers thus target a filler window of 120–135 phr of 5 µm ground calcium carbonate, verified by a mid-infrared moisture balance every 2 hours. No external plasticiser is required; the ethylene soft-segment in the VAE copolymer itself contributes permanent flexibility without migration-linked indentation failure.On low-porosity vitrified tiles with water absorption below 0.5%, a single-component polymer primer must achieve a pull-off strength of ≥0.5 MPa at 28 days without field back-buttering of epoxy. EcoVAE 1610 is diluted to 28–33% solids and roll-brushed at 10–12 m²/L onto the tile back. The open time before cementitious adhesive comb-embedding is 15–40 minutes depending on jobsite air movement; beyond 45 minutes the dry film transitions to a closed hydrophobic surface and bond strength degrades logarithmically. Final adhesion is validated through a 7-day water immersion pull-off test per ISO 13007-4, requiring a cohesive failure within the adhesive rather than adhesive failure at the primer interface. The low hydroxyl count of fully densified porcelain makes purely mechanical interlock insufficient; instead the carboxyl-functional monomers copolymerised into EcoVAE 1610 provide chelation at the silicate layer, a mechanism corroborated by X-ray photoelectron spectroscopy and practical application observed on large-format slab installation in high-rise elevator lobbies. Confining the primer to indoor, wall-tile-only applications is advised: exposure to freeze-thaw cycling above 500 hPa differential vapour pressure causes micro-crazing of a 0.05 mm film layer that is invisible to the unaided eye but opens pathways for blistering under the tile bed.
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    Certification & Compliance
    More Introduction

    In the family of vinyl acetate-ethylene (VAE) copolymer dispersions, EcoVAE 1610 is designated as an aqueous, plasticizer-free binder with a nominal solids content of 55.0 ± 1.0 % (ISO 3251) and a Brookfield RVT viscosity of 800 – 2000 mPa·s at 25 °C (ISO 2555, spindle 4/20 rpm). Its minimum film-forming temperature (MFFT), measured according to ISO 2115, lies at 0 °C, governed by an ethylene-rich soft segment that eliminates the requirement for coalescing solvents in many ambient-cure applications. The pH of the emulsion is maintained between 4.0 and 5.5 via a buffered acetate system, rendering it compatible with acidic fillers such as kaolin and calcium carbonate without demulsification. Residual vinyl acetate monomer content remains below 500 mg/kg (determined by headspace GC-MS in accordance with ISO 13741-1), a level that supports compliance with the voluntary emission class A+ under the French VOC regulation.

    What Limits Colloidal Stability in the Presence of Trivalent Cations?

    When formulating pressure-sensitive adhesives or laminating systems, the direct addition of aluminum sulfate or iron(III) chloride to EcoVAE 1610 induces rapid coagulation at concentrations exceeding 0.05 mol/L in the serum phase. This sensitivity stems from the carboxylate stabilization mechanism: surface-bound carboxylic groups introduced during emulsion polymerization deprotonate at the working pH, providing electrosteric repulsion. Trivalent cations compress the electrical double layer beyond a critical coagulation concentration of 0.02 – 0.04 mol/L Ca²⁺ equivalents, as estimated by dynamic light scattering (Malvern Zetasizer Nano ZS, 173° backscatter detection). Production-scale mixing protocols therefore prescribe a protected pre-neutralization step with ammonia solution to raise the latex pH to 8.0 – 8.5 prior to any interaction with polyvalent salts, thereby shifting the surface charge to a fully ionized state and increasing the shear tolerance during inline dispersion. Without this step, screen packs of 100 µm mesh in downstream roller coaters exhibit pressure build-up exceeding 2.5 bar within 15 min of recirculation.

    Film Formation Kinetics Below 5 °C on Aluminum Substrates

    Coalescence of EcoVAE 1610 on low-energy metal surfaces proceeds through a capillary-driven particle deformation phase described by the Dillon-Matheson modification of the Frenkel equation. On degreased aluminum (surface energy 40 mN/m), a continuous transparent film of 350 µm wet thickness develops full clarity within 18 – 25 min at 5 °C and 50 % relative humidity, as determined by gloss development (BYK micro-gloss 60° geometry). At 2 °C, incomplete interdiffusion leaves a microporous structure with a specular gloss retention below 35 GU, even after 72 h of conditioning. Plant observations from a curtain coating line operating in unheated facilities indicate that a drop in ambient temperature from 7 °C to 3 °C during a night shift caused a peel adhesion failure (EN 14257) on beech timber assemblies, recovering only when infrared pre-heaters delivering 4.5 kW/m² were engaged to elevate the substrate surface temperature above 8 °C. The data underscore that the 0 °C MFFT is a reference point for coalescence under idealized laboratory film casting; industrial application demands a safety margin of +5 °C to compensate for evaporative cooling and substrate heat-sink effects.

    A 0°C Glass Transition: Rheological Consequences for Slot-Die Coatings

    Dynamic mechanical analysis (DMA) of a dried film reveals a broad tan delta transition centered at 0°C, corresponding to the ethylene-rich soft segment, and a slight shoulder near 30°C from the vinyl acetate hard segment. Under shear rates typical of slot-die deposition (1000 – 5000 s⁻¹), the emulsion exhibits pronounced shear thinning, with an apparent viscosity decay from 1200 mPa·s at 10 s⁻¹ to 280 mPa·s at 2500 s⁻¹ (Anton Paar MCR 302, cone-plate geometry CP50-1). This pseudoplastic response facilitates precisely metered flow through narrow lips of 200 – 300 µm without dripping, yet imposes a strict upper limit on line speed when the formulation is diluted below 50 % solids: at 45 % solids, high-speed imaging (Photron SA-Z at 1000 fps) captured ribbing instabilities initiating at a capillary number Ca = 0.12, corresponding to a line speed of 85 m/min. Process engineers at converting plants therefore maintain solids content above 52 % to widen the stable coating window.

    Comparative data: EcoVAE 1610 versus two other carboxylated VAE emulsions on a pilot coater
    ParameterEcoVAE 1610EcoVAE 2100EcoVAE 3200
    Solids content (ISO 3251)55 ± 1 %55 ± 1 %60 ± 1 %
    Brookfield RVT viscosity (ISO 2555)800 – 2000 mPa·s1200 – 3000 mPa·s3000 – 6000 mPa·s
    MFFT (ISO 2115)0 °C+4 °C+8 °C
    Particle size d50 (laser diffraction)0.45 µm0.35 µm0.50 µm
    Ethylene content (NMR)17 – 19 wt%11 – 13 wt%9 – 10 wt%
    Maximum filler loading without cracking (Tensile, ISO 37)45 phr CaCO₃30 phr CaCO₃20 phr CaCO₃

    When plasticizer migration into food simulants is a regulatory constraint, EcoVAE 1610 offers an alternative to lower-ethylene, higher-Tg grades that typically require dibutyl phthalate or benzoate plasticizers. Migration testing according to EU 10/2011 (simulant D1, 40 °C/10 days) on a 200 µm film blended with 10 phr dioctyl terephthalate resulted in a specific migration limit of 0.9 mg/kg for the plasticizer, while EcoVAE 1610 at the same thickness without plasticizer yielded a non-detectable value (< 0.01 mg/kg, LOQ by GC-FID). This elimination converts a compliance hurdle into a one-step formulation that inherently meets the overall migration limit of 10 mg/dm².

    Processing note: In high-speed contour lamination of PVC edge banding, the emulsion is applied via a roller coater with a gravure cylinder of 40 lines/cm and a doctor blade set to 0.15 mm gap. The open time measured by a modified bond strength test (EN 204) drops below 60 seconds when the air temperature exceeds 30 °C at 20 % relative humidity. To maintain bond strength above 2.5 N/mm² after 24 h, the line speed is capped at 22 m/min. In contrast, EcoVAE 2100 with its lower ethylene content displays acceptable wet tack only up to 18 m/min under identical conditions.

    When Formaldehyde-free Classification Under EN 13986 is Mandatory for Indoor Wood Products

    The crosslinking strategy available for EcoVAE 1610 relies on latent acid-catalyzed self-condensation of N-methylolacrylamide (NMA) comonomer present at approximately 0.8 – 1.2 wt% of the polymer backbone. During film drying at temperatures above 70 °C, the NMA moieties react, raising the gel fraction (measured by Soxhlet extraction with tetrahydrofuran for 8 h) from < 5 % at 23 °C dry to 62 – 68 % after 5 min at 105 °C. Importantly, this chemistry liberates only water and trace acetic acid; free formaldehyde emission determined by the gas analysis method (EN 717-2) remains below 0.01 mg/m²·h. Consequently, assemblies meeting the emission class E1 defined in EN 13986:2004+A1:2015 can be certified without additional formaldehyde scavengers, a distinction from melamine-urea-formaldehyde (MUF) dispersion blends where scavengers such as urea (0.3 – 0.5 wt%) must be titrated precisely to avoid pH drift and subsequent pre-cure during storage.

    In a direct comparison on birch plywood (3-ply, 9 mm thickness), a single-component adhesive based on EcoVAE 1610 at 150 g/m² spread rate achieved a dry shear strength of 3.8 MPa after conditioning at 23 °C/50 % RH for 7 days, tested according to EN 314-2 (climate chamber KWF 720). When the same adhesive was substituted with a PVAc homopolymer dispersion of equivalent solids, the same geometry yielded 2.1 MPa due to microcrack formation through the adhesive layer upon water exposure (cold soak 24 h). The ethylene domains in EcoVAE 1610 act as an internal plasticizer, maintaining flexibility and fracture resistance even when the adhesive moisture content exceeds 12 wt%.

    Regulatory compliance overview: EcoVAE 1610
    Standard / RegulationClause / MethodStatus
    FDA 21 CFR 175.105Adhesives for food contact (indirect)Meets compositional requirements when formulated without mutagenic biocides
    EU 10/2011 (PIM)Overall migration, simulant D1< 5 mg/dm² in unplasticized films
    REACH Regulation (EC) 1907/2006Annex XVII restrictionsNo SVHC above 0.1 % w/w
    RoHS Directive 2011/65/EUAnnex II restricted substances< 1000 ppm lead, < 100 ppm cadmium
    Nordic Swan Ecolabel for AdhesivesVOC content (ISO 11890-2)< 0.5 g/L

    The absence of alkylphenol ethoxylates (APEO) from the surfactant package has been verified by liquid chromatography-mass spectrometry (LC-MS) with a detection limit of 5 mg/kg, aligning with the zero-tolerance thresholds adopted in the apparel and textile laminating sector under ZDHC Manufacturing Restricted Substances List (MRSL) version 3.1. In a production migration study performed on a polyester nonwoven (spunbond 70 g/m²) impregnated with EcoVAE 1610 at 20 % dry add-on, n-octylphenol was undetectable in the extract after artificial saliva extraction (DIN 53160) at 37 °C/4 h, confirming suitability for infant care absorbent products under the safety assessment paradigm of the German BfR Recommendation XXXVI.

    Ribbing and Cascading Defects in Reverse Gravure Application

    Field reports from a self-adhesive label converting line identified a recurring surface defect pattern — alternating light and dark bands orthogonal to the machine direction — when EcoVAE 1610 was reduced to 48 % solids with deionized water to meet a vacuum metallized facestock specification. The defect wavelength of 4.2 mm correlated with the gravure cell spacing of the 28 lines/cm chrome-plated roll and a wet film thickness target of 18 µm. A stability map constructed using the dimensionless groups Ca / (h/R)^(3/2) against Re / (h/R)^(1/2) indicated operation within the ribbing regime. Switching to a 55 % solids formulation while reducing the application roll gap to 90 µm shifted the operating point into the stable forward-roll region, eliminating the banding artifact without changing the gravure geometry. This case confirms that dilution of EcoVAE 1610 below 52 % solids is contraindicated for gravure systems with geometrical constraints typical of the narrow-web industry (roll diameter 200 – 250 mm).

    Further rheo-optical experiments conducted on a bespoke flow visualization rig (two counter-rotating rollers of 200 mm diameter, gap 80 – 120 µm) with a high-speed camera captured the transition from stable meniscus to cascade (rib-breaking) at a critical cylinder speed ratio of 1.12 for the 55 % solids material; for the 48 % solids dilution, the cascade onset occurred at a ratio of 1.05. The data highlight the narrow process window that emerges when the emulsion is thinned, and they provide a quantitative rationale for the solids specification lower bound.

    Bond durability under hydrothermal stress distinguishes EcoVAE 1610 from many EVA hot-melt alternatives in wood veneer assembly. Accelerated aging according to ANSI/HPVA HP-1 (cyclic boil-dry-boil, 4 h boil / 16 h dry / 4 h boil) on maple veneer over MDF produced a delamination percentage of 2.8 % of the bonded area, compared with 8.4 % for an EVA hot melt of equivalent open time. The difference is attributed to the covalently crosslinked network that develops during the hot-press cycle at 90 °C, as described in the NMA chemistry discussion above. Published data for this specific ANSI protocol comparison is limited, but in-house cyclic fatigue testing (dynamic shear at 0.5 Hz, 20 – 80 % of static failure load) showed no failure for EcoVAE 1610 bonded joints after 50,000 cycles, while EVA joints failed at a mean of 14,700 cycles.