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Anhui Liwei Chemical Co., Limited.

Dairen DA-502 VAE Emulsion

    • Product Name: Dairen DA-502 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 903859
    Product Name Dairen DA-502 VAE Emulsion
    Polymer Type Vinyl acetate-ethylene copolymer
    Appearance Milky white liquid
    Film Property Flexible and transparent film

    As an accredited Dairen DA-502 VAE Emulsion factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Dairen DA-502 VAE Emulsion is supplied in 200 kg drums or 1,000 kg IBC totes, ensuring safe handling and storage.
    Container Loading (20′ FCL) Dairen DA-502 VAE Emulsion in 20′ FCL: drums/totes secured, waterproof lining, labeled, ventilated, leak-free, stable stacking for safe transit.
    Shipping Dairen DA-502 VAE Emulsion ships as a non-hazardous, water-based polymer dispersion in sealed drums or totes. Protect from freezing and excessive heat; store upright, dry, and ventilated. Avoid contamination. Use standard chemical handling precautions. Ensure proper labeling and documentation per local transport regulations.
    Storage Store Dairen DA-502 VAE Emulsion in tightly sealed, clean containers in a cool, dry, well-ventilated area, avoiding direct sunlight and extreme temperatures. Protect from freezing and heat above 40°C (104°F). Keep containers upright and secure to prevent leakage. For optimal performance, use within the manufacturer’s specified shelf life and stir before use if settling occurs.
    Shelf Life Store at 5–35°C, avoid freezing and direct sunlight. Shelf life is six months from manufacture date.
    Application of Dairen DA-502 VAE Emulsion

    DIN EN 204 D3 Wood Assembly Adhesives

    Formulations targeting EN 204:2016 classification D3 for interior structural timber assemblies commonly build the adhesive base around 70–80 wt% DA-502 emulsion, extended with a C9 or rosin ester dispersion at 5–15 wt%, precipitated calcium carbonate filler at 5–10 wt%, and a coalescent/plasticizer package—typically dipropylene glycol n‑butyl ether or dibutyl adipate—at 2–5 wt%. The wet film is applied via a serrated blade coater or a curtain coater to achieve a controlled spread of 120–180 g/m² on hardwood substrate conditioned to 10–12 % moisture content. Cold-pressing under 0.8–1.2 N/mm² for 3–4 hours at 18–25 °C yields a bond that, after 7‑day conditioning at 23 °C/50 % RH and a subsequent 4‑day cold‑water soak, retains shear strength exceeding 2.0 MPa when tested per EN 14257. Finished articles range from laminated tabletops and chair spindles to interior door stiles. A process limitation must be observed: tannin‑rich species such as white oak or merbau extract metal ions from the filler and can cause local discolouration at the bond line unless a chelating agent—e.g., 0.1–0.3 wt% sodium metaphosphate—is incorporated. Bulk storage requires frost protection; the emulsion must be maintained above 5 °C and gently re‑agitated after cold exposure to restore shear stability.

    Formulators of food‑contact paper laminates frequently select VAE emulsions for their low odour and absence of halogenated catalysts; DA-502 is typically compounded with a cellulosic thickener and a food‑grade polyether defoamer to achieve a stable coating rheology at 48–55 % solids content. The adhesive is applied via a three‑roll transfer coater at a dry coating weight of 3–8 g/m², followed immediately by lamination to a polyethylene or aluminium foil layer using a heated nip at 85–110 °C. Compliance with U.S. indirect food‑additive provisions requires the formulated adhesive to fall within FDA 21 CFR 175.105 and 176.170, with the extractive fraction monitored through migration testing per EN 1186‑3 and overall organoleptic acceptance under EN 1230‑1. European converters additionally demand conformance to EU Regulation 10/2011 for plastic multi‑layer materials, specifically Annex II restrictions on vinyl acetate monomer migration below 12 mg/kg simulant. The finished laminate is fabricated into single‑use drinking cups, sandwich wrapping, and bakery bags. A critical processing window exists at web speeds exceeding 180 m/min, where electrostatically induced misting and stringing become pronounced; chilled roller surfaces maintained at 14–18 °C and in‑line static elimination bars are necessary to preserve transfer uniformity and avoid pinholing in the subsequent extrusion coating step.

    What Adjusts Polymer:Cement Ratio Risk in Flexible Cementitious Waterproofing?

    The polymer‑to‑cement weight ratio (P/C) governs key performance thresholds in two‑component flexible cementitious waterproofing slurries where DA-502 serves as the liquid component. A P/C of 0.45–0.55 is typically targeted to balance tensile elongation and capillary water absorption. The liquid side consists of 88–94 wt% neat emulsion blended with a polycarboxylate superplasticiser (0.3–0.8 wt%) and a mineral‑oil‑based defoamer (0.2–0.5 wt%); the powder side is an OPC 42.5R cement‑silica sand mixture graded to 0–0.5 mm. On‑site the two components are combined in a forced‑action pan mixer at 400–550 rpm for 3–4 min, followed by a 5‑min dwell for air release. Application proceeds with a notched trowel at a wet thickness of 1.8–2.5 mm on a pre‑wetted concrete substrate; after initial set, a mist cure at ≥95 % RH for 48 h is mandatory to prevent plastic shrinkage cracking. The cured membrane is expected to conform to ASTM C836‑18 Type I (elongation at break ≥200 %, water vapour transmission rate < 30 g/m²·24 h) and meet the requirements of EN 1504‑2 PI‑MC‑IR for active crack‑bridging protection. End uses include exposed roof decks, bathroom tanking, and planter box linings. A narrow processing window emerges below 10 °C substrate temperature: cement hydration retards sharply while the emulsion film‑formation minimum is approached, risking a powdery, non‑coalesced interface. Heated gauging water (25–30 °C) and wind‑shield enclosures become essential under such conditions.

    When VAE Emulsions Replace SBR Latex in Carded Nonwoven Web Bonding

    DA-502 offers a distinct hand‑feel advantage over conventional SBR or acrylic binders in carded, through‑air bonded and saturate‑bonded nonwovens destined for hygiene top‑sheet and acquisition‑distribution layers. The neat emulsion is diluted to a bath concentration of 18–25 % solids with deionised water, to which 0.05–0.1 wt% of a silicone‑free wetting agent and a benzisothiazolinone‑based biocide are added. Dry add‑on is maintained between 4 % and 10 % of fabric weight, monitored in‑line by β‑ray gauging. The web passes through a double‑saturator unit with vacuum extraction slots set to −15 to −25 kPa, then enters a three‑zone flotation dryer with air temperatures of 120–135 °C and a residence time of 110–150 s. Finished materials routinely pass OEKO‑TEX STANDARD 100 class I criteria, with formaldehyde release below 16 μg/g when determined by JIS L 1041 method B. Typical end‑products include acquisition strips for infant diapers, leg‑cuff laminates, and spunlace‑compatible cover stock for disposable medical caps. A known incompatibility must be managed: the self‑crosslinking monomer built into DA‑502 exhibits a rapid curing onset above 140 °C, and non‑uniform airflow in the dryer can generate fused stiff spots that create web breaks during winding. Fibre swelling agents containing zinc salts must be excluded from the binder bath to prevent premature gelation.

    High‑speed cigarette‑making machines running at 9,000–12,000 cigarettes/min impose strict demands on side‑seam adhesive rheology: DA‑502, with its narrow particle‑size distribution and controllable pseudoplastic index, is adjusted with a 0.3–0.6 wt% polyvinyl alcohol post‑add and a phosphate buffer to maintain a steady viscosity of 900–1,400 mPa·s (Brookfield RVT, spindle #3, 20 rpm, 25 °C). The adhesive, supplied at 52–56 % solids, circulates in a closed stainless‑steel loop to a high‑speed applicator wheel; open time must not exceed 0.2–0.3 s to prevent nozzle drying and fibre tear on the tipping paper. Regulatory conformance follows CORESTA Recommended Method Nº 8 for cigarette adhesives, with particular attention to acetaldehyde and formaldehyde limits enforced by China GB/T 18771.6‑2015 and analogous ISO 15166 carbonyl profiling. The finished cigarette rod is tested for seam‑burst strength, exceeding 5.0 N per 10 mm seam length. In subtropical converting floors where ambient temperature rises above 28 °C and relative humidity surpasses 75 %, tack build‑up on the spinner wheel intensifies; chilled‑water jackets on the adhesive reservoir and an in‑line 20 µm mesh filter are mandatory to avoid line stoppage caused by coagulum formation.

    Pre‑coat and secondary backing formulations must compensate for tufting deformation stress

    The pre‑coat layer, applied directly to the tufted carpet back, must absorb most of the mechanical stress from tuft pull‑out, demanding a balance of polymer elongation and mineral filler loading. DA‑502 is formulated into a pre‑coat compound at a wet solids content of 70–75 %, blended with ground calcium carbonate (median particle size 5–15 µm) at a dry ratio of 1:1.2 to 1:1.8 and a sodium polyacrylate dispersant. The compound is pumped to an air‑knife coater that lays down a uniform film of 500–750 g/m² dry weight, which is subsequently dried in a multi‑pass conveyor oven at 125–135 °C for 6–9 min. A secondary backing formulation—typically a blend of DA‑502 with a polyvinyl alcohol‑stabilised tackifier—is then roller‑applied at 350–550 g/m² and married to a woven polypropylene or jute scrim at a hot‑press pressure of 0.4–0.6 MPa and a platen temperature of 155–170 °C. Finished broadloom and carpet tiles undergo tuft‑bind testing per ASTM D1335‑17, with a target value above 35 N, and must achieve the delamination resistance thresholds defined in EN 1307 for heavy commercial use (class 33). A formulation constraint applies: the inclusion of zinc‑based crosslinkers or ammonium zirconium carbonate accelerators is incompatible with DA‑502’s protective colloid system, leading to viscosity jumps exceeding 30 % within 2 h of catalyst addition. During winter logistics, the finished carpet roll must be stored above 0 °C to prevent micro‑cracking of the glassy VAE film in the backing.

    DA‑502 Application Dosage Window and Critical Unit Operation Parameters
    Application SegmentTypical Wet Addition / Dry RatioKey Unit OperationPerformance IndicatorTest Standard
    D3 Wood Assembly70–80 wt% emulsion; filler dry ratio 0.1–0.15Serrated‑blade coater; cold pressDry shear > 7 MPa; wet shear > 2 MPaEN 204 D3, EN 14257
    Food‑Contact Paper Laminates48–55 % solids; coat weight 3–8 g/m² dryThree‑roll transfer coater; heated nipBond strength > 2.5 N/15 mm; migration < VdL limitEN 1186‑3, EN 1230‑1
    Flexible Cementitious WaterproofingP/C ratio 0.45–0.55; emulsion 88–94 wt% of liquid componentForced‑action pan mixer; notched trowelElongation > 200 %; WVTR < 30 g/m²·24 hASTM C836‑18, EN 1504‑2
    Carded Nonwoven BondingBath solids 18–25 %; dry add‑on 4–10 %Double‑saturator; flotation dryerTensile index gain > 2.5 N·m/g; formaldehyde < 16 μg/gOEKO‑TEX 100, JIS L 1041
    Cigarette Side‑Seam Adhesive52–56 % solids; PVA post‑add 0.3–0.6 wt%High‑speed spinner wheel (> 9,000 cpm)Seam burst strength > 5.0 N/10 mmCORESTA № 8, GB/T 18771.6
    Tufted Carpet Pre‑coat/BackingPre‑coat dry add‑on 500–750 g/m²; dry filler:emulsion 1.2–1.8Air‑knife coater; hot‑press laminatorTuft‑bind strength > 35 N; delamination resistance class 33ASTM D1335‑17, EN 1307
    Regulatory Compliance Crosswalk per Downstream Industry Using DA‑502
    Downstream IndustryTarget GeographyApplicable Standard/RegulationCritical Clause or Test
    Woodworking AdhesivesEU/EFTAEN 204:2016, EN 14257:2006D3 classification: cold‑water soak and 7‑day re‑conditioning
    Food‑Contact Paper PackagingUSA, EUFDA 21 CFR 175.105, 176.170; EU 10/2011Migration into simulant B; overall migration < 10 mg/dm²; VAM < 12 mg/kg
    Liquid‑Applied WaterproofingNorth America, EUASTM C836‑18, EN 1504‑2Class PI‑MC‑IR; crack‑bridging ability at −20 °C
    Hygiene NonwovensGlobalOEKO‑TEX STANDARD 100 Annex 4 class I; JIS L 1041Formaldehyde < 16 μg/g; total heavy metals < limit
    Tobacco ProductsChina, globalGB/T 18771.6‑2015; CORESTA Rec. Method № 8Carbonyl volatiles; seam burst strength
    Textile Floor CoveringsEU, USAEN 1307:2014, ASTM D1335‑17Class 33 heavy commercial; tuft‑bind > 35 N
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    Certification & Compliance
    More Introduction

    A formulation built on vinyl acetate-ethylene (VAE) copolymer chemistry, Dairen DA-502 is dispersed at 54–56% solids and stabilized with a polyvinyl alcohol (PVOH) protective colloid. Brookfield viscosity at 25°C falls within 500–2,000 mPa·s (spindle 3, 20 rpm, ISO 2555), and pH is maintained at 4.0–5.5. The emulsion carries a mean particle size of 0.5–2.0 µm and exhibits a glass transition temperature (Tg) near 0°C by differential scanning calorimetry. Its residual monomer content is held below 500 ppm, conforming to REACH Annex XVII entry 46 standards for substances of very high concern, while FDA 21 CFR 175.105 clearance permits use in indirect food-contact adhesives applied at dry-film levels not exceeding those of the finished food-contact article.

    Why Does Low-Temperature Flexibility Define DA-502 in Laminating Adhesives?

    When polyethylene or polypropylene films are bonded for snack-food overwrap, the adhesive must survive refrigerated distribution without channelling or tunnelling. DA-502’s ethylene co-monomer imparts backbone flexibility that homopolymer PVAc cannot achieve. In a pilot-scale laminator running a 300 mm web at 80 m/min with a gravure-roll applicator, peel strengths measured per ASTM D1876-08 reach 2.8–3.5 N/25 mm on corona-treated LDPE at 2 g/m² dry coat weight. Low-Tg VAEs with a colloid-protected surface exhibit a minimum film formation temperature (MFFT) of ≤0°C, so coalescing solvent demands drop to zero. This contrasts with a typical semi-crystalline PVAc homopolymer of Tg 28–32°C, which requires 8–12 wt% dibutyl phthalate or a comparable plasticizer to achieve room-temperature film integrity, introducing migration-related delamination risk over time. DA-502’s self-plasticized architecture avoids that trade-off, while its hydroxyl-rich colloid shell maintains open time sufficient for high-speed laydown: a wet-tack window of 12–18 s measured with a Texture Analyzer probe-tack test at 23°C/50% RH under 100 gf contact force.

    Processors on a 3-roll nip-fed laminating line often calibrate viscosity through water dilution. Adding 5% deionized water shifts Brookfield viscosity from 1,200 mPa·s to approximately 700 mPa·s, yet caution is warranted: shear rates exceeding 5,000 s⁻¹ inside a closed-chamber doctor-blade system can trigger a momentary drop in apparent viscosity by 15–20%. This shear-thinning behavior, while reversible, can cause coat-weight variability if pump speed compensations do not follow a PID loop tuned to 0.25 s response lag. The recommended application temperature window is 10–35°C; dipping below 5°C raises the risk of chalking on chilled metal rollers.

    Film Formation Mechanics and MFFT in Barrier Coating Operations

    When DA-502 is deposited on paperboard for oil-and-grease resistance, the absence of coalescing solvent becomes a critical compliance parameter—particularly for converters aiming at BfR XXXVI and FDA 176.170 components of paper and paperboard in contact with aqueous and fatty foods. On a blade-coater running 120 m/min, the emulsion forms a continuous film only if the web surface temperature stays 3–5°C above the MFFT. With DA-502’s MFFT near 0°C, the safety margin is generous. By contrast, an acrylic latex of equivalent 55% solids but a calculated MFFT of 18°C forces the converter either to pre-heat the substrate or add 2–4 wt% of a high-boiling ester such as 2,2,4-trimethyl-1,3-pentanediol monoisobutyrate. That additive, while effective, extends the post-cure waiting time before blocking resistance develops; a 24-hour conditioned stack at 40°C/80% RH with DA-502 typically reaches a dry rub resistance rating of 4 per ASTM D5264-98, versus 3 for the plasticized acrylic under identical conditions.

    Operators of Mayer-rod and air-knife coaters should note that DA-502 dries with a slight shrinkage on cellulose fiber. When coating weight exceeds 12 g/m² dry, curl-index values measured by a standard TAPPI T 515 om-02 test can rise from 5 mm to 18 mm. The mitigation strategy is a 20:80 blend with a styrene-butadiene latex that imparts compressive stiffness; published data for this specific configuration is limited to internal mill trials, but the tension-equilibrium principle is well established in flexible packaging converting.

    Comparative data: DA-502 versus reference homopolymer and acrylic emulsions (coating context)
    PropertyDA-502 (VAE, colloid-stabilized)PVAc homopolymerStyrene-acrylic latex
    Solids (%)54–5650–5548–50
    Tg (°C)03022
    MFFT (°C)≤015–18 (with plasticizer)16
    König hardness (s) on glass, 40 µm dry film8–1260–8040–50
    Oil-absorbency (g oil/m², 24 h, oleic acid)0.22.51.8

    When Crosslinking Degree Is Reduced in Nonwoven Binder Formulations

    A VAE binder imparts wet-strength without the extensive formaldehyde-based crosslinking required by melamine-formaldehyde or urea-formaldehyde systems. DA-502’s hydroxyl groups from the PVOH shell are available for reaction with glyoxal-based insolubilizers. In a hydraulic-entanglement nonwoven line producing 0.4 m wide viscose/polyester (70:30) webs at 150 m/min, an add-on of 12% solids on fiber weight—applied via a two-roll padder with a squeeze pressure of 1.2 bar—yields a wet tensile index of 12–15 N·m/g after curing at 130°C for 3 min, per ISO 1924-2. If the same fabric is treated with a self-crosslinking acrylic binder at equal add-on, wet tensile reaches 14–16 N·m/g but the handle (bending length per ISO 9073-7) increases by 35%. DA-502 retains crease flexibility to allow packaging of pre-moistened wipes in pop-up dispensers without excessive storage stiffness.

    One processing bottleneck emerges in high-throughput tunnel dryers with air temperatures above 160°C. The colloid shell of DA-502 can undergo partial dehydration, leading to a transient skinning that retards water vapor egress. The practical maximum wet-laydown film thickness before skinning becomes evident is approximately 80 µm wet; above that, dryer exhaust humidity must be raised to 12–15 g water/kg dry air to equalize evaporation rate differentials. In contrast, a surfactant-stabilized acrylic can tolerate a wet film of 120 µm without skinning, but requires more aggressive coagulant salts in the wet-end forming section to achieve retention, introducing additional conductivity-management steps for the white water loop.

    Adhesives for Assembly of Multilayer Furniture Components: Press-Out and Heat Resistance

    Hot-press flat-lamination of PVC edge-banding onto MDF core panels demands an adhesive with a heat resistance sufficient to survive a post-lamination trimming saw that generates localized interface temperatures of 85–95°C. DA-502, when formulated with 1.5 phr of a polyfunctional aziridine crosslinker added immediately before application, exhibits a heat resistance temperature (HRT) of 110°C measured by the gradient-bar method described in DIN EN 14257. A comparable EVA hot-melt might deliver 120°C HRT but requires slot-coating at 160°C, which limits line speed due to cooling-time constraints. DA-502 is applied cold, typically with a serrated roller at 23°C, and pressed for 45 s at 1.5 N/mm². Blocking resistance develops within 15 min after demolding, allowing immediate stacking. The difference in machine utilization is stark: one converting shop reported a 28% increase in throughput after switching from a hot-melt to a catalyzed VAE system on a 2-head through-feed press, largely because the downtime for barrel purging of charred polyolefin was eliminated.

    Open assembly time is not unlimited; under ambient conditions of 25°C/65% RH, the wetted edge-banding strip retains tack for approximately 45 s. In facilities where the panel transfer conveyor exceeds 30 m, a pre-applied mist of 0.5% water on the substrate surface extends open time to 60 s without compromising final shear strength, which reaches 4.2 MPa (lap shear, beech/steel, ASTM D1002-10). Exceeding 1.0% surface moisture, however, leads to a fall-off in cohesive strength by 15–20% as the partial re-wetting of the interface introduces micro-voids visible under SEM at 500× magnification.

    Further along the value chain, the adhesive’s low formaldehyde content—below 0.01% by weight—enables E1 classification under EN 717-1 for wood-based panels. This satisfies procurement specifications issued by furniture retailers demanding indoor air quality compliance beyond California CARB Phase 2 limits.

    Property change with addition level of DA-502 in a cementitious tile adhesive (CTA) mortar
    VAE addition (wt% on dry cement)Flexural strength (MPa, EN 12004)Adhesion to porcelain (MPa, EN 1348)Open time (min, EN 1346)
    03.20.310
    54.80.720
    106.11.230
    156.81.028

    Inclusion of DA-502 in a class C2TE cementitious tile adhesive modifies the rheology of the fresh mortar and the hardened polymer-cement co-matrix. At 10% polymer loading, the flexural strength measured by EN 12004 increases from 3.2 MPa to 6.1 MPa, and the adhesion to porcelain tiles per EN 1348 rises from 0.3 MPa to 1.2 MPa after water immersion. Beyond 12% VAE, the additional organic phase does not translate linearly into improved bond, because the increased air entrainment—visible as a 6–8% reduction in wet density of the fresh mortar per EN 1015-6—creates a weaker interfacial transition zone. A contractor mixing on-site with a paddle mixer at 400 rpm must be mindful that higher polymer loads tend to slump more; slump measured per EN 13395-1 at 15% addition climbs to 150 mm versus 90 mm for the neat mortar. The effective upper limit for floor tile installations on balconies with residual slope tolerances is 12% VAE, balancing deformability (transverse deformation ≥ 5.0 mm per EN 12002) with sag resistance.

    What restricts DA-502’s use in rapid-setting CTA formulations is the risk of premature film coalescence in the presence of accelerating admixtures containing calcium chloride. Chloride ions at concentrations above 0.5% on cement weight destabilize the colloid, causing a grit formation of >150 µm screened residue in the wet mortar. This incompatibility is well documented for PVOH-stabilized VAE latices, and the countermeasure is to use a calcium formate accelerator instead, which maintains a screen residue below 0.2% on a 150 µm sieve per ASTM C430, while still achieving a set time of <180 min at 20°C.

    Storage stability also demands attention: DA-502 should be kept from freezing, as irreversible coagulation occurs below 0°C. In a silo equipped with a slow-rotation paddle (6 rpm), the emulsion remains homogeneous for up to 6 months when the temperature is maintained at 5–35°C. Biocide preservation based on a blend of 5-chloro-2-methyl-4-isothiazolin-3-one and 2-methyl-4-isothiazolin-3-one (CMIT/MIT) at 15 ppm active substance is generally included, but microbial growth can still develop if the headspace relative humidity exceeds 85% for extended intervals. A demineralized-water top wash should be performed weekly on the dip-roll and trough of the coater to prevent dried latex skin from entering the application system; particles exceeding 50 µm have been correlated to diagonal streak defects at the rewinder when the film is slit at 2,000 m/shift throughput.

    When compared to a high-ethylene VAE (ethylene content >20%) such as Dairen’s own DA-601, DA-502 sacrifices some low-temperature impact strength in favor of higher cohesive energy density, making it a more predictable binder in high-shear roll coating where foaming must be minimized. The choice between the two shifts depending on whether the prime performance demand is ‑30°C cold impact resistance on steel (where DA-601 would achieve 120 in·lb Gardner impact without rupture) or a cleaner shear-thinning profile for metering-rod application at 400 m/min (where DA-502’s lower equilibrium surface tension of 38 mN/m versus DA-601’s 34 mN/m reduces rod-striation microfoam).