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Anhui Liwei Chemical Co., Limited.

SUMIMKAFLEX S-470HQ VAE Emulsion

    • Product Name: SUMIMKAFLEX S-470HQ 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 710635
    Product Name SUMIMKAFLEX S-470HQ VAE Emulsion
    Chemical Family Vinyl acetate-ethylene copolymer
    Appearance Milky white liquid
    Solids Content 55% by weight
    Viscosity 2500 mPa·s at 25°C (Brookfield)
    Ph 5.0
    Density 1.06 g/cm³ at 20°C
    Glass Transition Temperature Tg -10°C
    Minimum Film Forming Temperature Mfft 0°C
    Particle Size 0.5-1.0 μm
    Residual Vinyl Acetate Monomer Less than 0.5%
    Shelf Life 12 months from date of production when stored below 30°C

    As an accredited SUMIMKAFLEX S-470HQ VAE Emulsion factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing SUMIMKAFLEX S-470HQ VAE Emulsion is packaged in 200 kg drums or 1,000 kg IBC totes, sealed for safe handling and stability.
    Container Loading (20′ FCL) 20′ FCL container loading of SUMIMKAFLEX S-470HQ VAE Emulsion in drums/flexitank, ensuring secure stowage, stability, and safe handling.
    Shipping SUMIMKAFLEX S-470HQ VAE Emulsion ships in sealed drums or ISO tanks, protected from extreme heat and freezing. Use dedicated pumps and clean, corrosion-resistant equipment. Keep containers upright, dry, and well-ventilated during transit. Minimize agitation to prevent skinning, and maintain temperatures between 5–40°C for product stability.
    Storage Store SUMIMKAFLEX S-470HQ VAE emulsion in sealed, original containers in a cool, dry, well-ventilated area away from direct sunlight and heat. Maintain storage temperature between 5°C and 35°C; do not allow freezing. Keep containers tightly closed to prevent skinning or contamination. Stir gently before use, and follow manufacturer’s shelf-life guidelines.
    Shelf Life Shelf life is approximately 12 months from manufacture date when stored unopened in original container at recommended temperatures.
    Application of SUMIMKAFLEX S-470HQ VAE Emulsion
    Formulating with SUMIKAFLEX S-470HQ in D3-grade interior joinery adhesives requires precise management of hydrophilic plasticizer migration and a narrow processing window that separates adequate wet tack from premature skinning. The emulsion, typically supplied at 53–55% solids with a Brookfield RVT viscosity span of 2,200–4,500 mPa·s (spindle #4, 20 rpm, 23°C), is compounded with 2.5–6.0 parts per hundred wet emulsion of a partially hydrolysed polyvinyl alcohol (PVOH) protective colloid exhibiting a degree of hydrolysis of 87–89 mol% and a viscosity of 20–40 mPa·s as a 4% aqueous solution at 20°C (DIN 53015). The formulation additionally requires 0.3–0.8 phr of a non-silicone mineral-oil-based defoamer and 0.1–0.4 phr of a phthalate-free plasticiser only when the assembly will undergo frequent humidity cycling, yet any addition beyond 5 phr plasticiser shifts the glass transition of the coalesced film above −5°C, eroding cold-creep resistance. Mixing is carried out in a planetary dissolver with a jacket temperature maintained below 32°C to prevent micro-coagulum that nucleates preferentially on high-shear tooth surfaces; the let-down is filtered through a 100 µm monofilament bag. Application proceeds at a coatweight of 120–180 g/m² wet on tangentially planed beech (Fagus sylvatica) using a three-roller coating head with a gap set to 0.8–1.2 mm, where open time measured per EN 204 Annex A must not exceed 8 minutes at 23°C/50% RH. After open assembly, pressing at 0.7–1.2 N/mm² for 25–40 minutes at 18–25°C yields lap-shear strengths exceeding 10 MPa after 7-day conditioning at 20°C/65% RH when tested in accordance with EN 205. The pressed laminate passes the D3 water resistance test sequence (4 days immersion in cold water per EN 204) without bondline discolouration. End-use products include laminated window scantlings, structural finger joints for stair treads, and multi-layer plywood cores for interior doors, where formaldehyde-free bonding aligns with CARB Phase 2 emission limits and the Japanese F☆☆☆☆ standard.
    PropertyTest MethodMeasured RangeConditions
    Dry lap-shear strength (beech)EN 20512.4–14.8 MPa7-day cure, 23°C/50%RH
    Wet shear strength (D3 soak)EN 2044.2–5.1 MPa4 days in cold water
    Heat resistance (WATT 91)EN 142577.2–8.1 MPa at 80°C15 min exposure before shear
    Film Tg (coalesced emulsion)DSC, 10°C/min+10 to +16 °Cdehydrated film, second heat
    Why does the rheology of a 55% solids VAE shift critical shear rate in carpet pre-coat applications beyond what a standard homopolymer can sustain? S‑470HQ develops a pronounced shear-thinning profile once calcium carbonate filler loading pushes total solids of the compound toward 78–82%, a point at which the zero-shear viscosity leaps past 80,000 mPa·s and the system transitions from a fluid-like to a gel-like consistency on standing. In a typical tufted-carpet pre-coat, dry parts per 100 parts emulsion binder are set as follows: 250–380 parts uncoated calcium carbonate (d₅₀ ≤ 12 µm), 2–5 parts sodium polyacrylate dispersant at 40% solids, 0.3–1.0 parts ammonium stearate foam booster where frothed application is used, and water to adjust to a Brookfield RVT viscosity of 12,000–18,000 mPa·s at 20 rpm. Compounding is performed in a Z‑blade kneader or a vacuum-equipped planetary mixer; vacuum deaeration at −0.8 bar relative pressure is indispensable because entrained micro‑bubbles nucleate steam channels during IR‑assisted forced‑air drying at 120–145°C air temperature, leaving pin‑holing defects that reduce tuft‑bind strength. The compound is applied to the reverse side of level‑loop or cut‑pile nylon‑6,6 greige goods by a doctor‑blade‑over‑roller coating head at a wet laydown of 800–1,200 g/m², after which a secondary backing of woven polypropylene is immediately nipped at 1.5–2.5 bar cylinder pressure. Dwell time in a three‑zone drying tunnel can be shortened to 4–6 minutes when the temperature profile is ramped from 110 to 145 to 135°C, but excursions above 150°C at the film surface trigger auto‑oxidation of the ethylene segments, detected by an increase in yellowness index (DIN 6167) and a sudden drop in rebound resilience to below 35%. Compliance is verified against the International Wool Secretariat WIS 4029 anchorage test and the American National Standard AATCC 181 for latex penetration. Finished broadloom and carpet tiles assembled with this binder retain tuft‑bind strength above 40 N after 60,000 cycles of castor‑chair rolling fatigue (BS EN 985), critical for Hôtel & Cité contract installations.When a coalescent‑free vehicle is non‑negotiable for preventing indoor odour complaints, SUMIKAFLEX S-470HQ permits formulation of pigmented wall coatings that comply with the EU Ecolabel emission criterion (≤30 µg/m³ TVOC at 3 days per ISO 16000‑6). In a matte reference formula with a pigment volume concentration of 72–78%, just below the critical PVC measured by a contrast‑ratio inflection, the grind paste is prepared separately: 140–180 parts titanium dioxide (EN ISO 591, R2 type), 120–160 parts hydrated aluminium silicate (d₅₀ 2 µm), 4–7 parts ammonium polyacrylate dispersant, 1.5–2.0 parts sodium salt of a biocide combination (BIT/MIT), and 40–60 parts water are high‑speed dispersed with a Cowles blade at 18–22 m/s peripheral speed until a Hegman grind gauge reading of 15–20 µm. Under low‑shear let‑down, 330–380 parts of S‑470HQ are added with a further 2–5 parts of a non‑ionic associative urethane thickener to attain a Stormer viscosity of 95–105 KU and an ICI cone‑plate viscosity at 10,000 s⁻¹ of 1.0–1.4 poise, values specifically dialled to avoid roller‑spatter while maintaining wet‑film build of 125–150 µm on gypsum board. Application with a medium‑nap micro‑fibre roller and curing at 23°C/50% RH yields a class‑1 wet‑scrub resistance rating when examined under ISO 11998:2022, showing film loss below 5 µm after 200 cycles. Early block resistance measured by the face‑to‑face peel test (ASTM D4946) reaches a rating of 7 after 48 hours, attributable to the absence of low‑boiling coalescents. The absence of alkylphenol ethoxylates and the ultra‑low residual monomer content (<100 ppm vinyl acetate by GC‑headspace, determined per DIN 55686) furthermore satisfy the French Émissions dans l’air intérieur A+ labelling and the Blue Angel RAL‑UZ 102 criteria.Achieving consistent fibre coverage on low‑basis‑weight hydroentangled nonwoven webs destined for flushable wet wipes without sacrificing dispersibility demands an overcoming of surfactant migration that otherwise concentrates at the air‑water interface during thermal drying. S‑470HQ, diluted with deionised water to a working bath at 8–14% solids, is applied through a kiss‑roll applicator or a rotor‑dampening unit at a wet pick‑up of 80–110% on fibre weight, targeting a dry binder add‑on of 7–12%. A significant processing conflict arises: raising add‑on above 12% pushes the cross‑directional wet tensile strength (ISO 9073‑3) beyond 0.45 kN/m, but risk of flake‑off in a slosh‑box test (GD‑4 per EDANA/INDA guidance) climbs sharply, while add‑on below 7% fails to anchor loose fibres at the surface, leading to particle generation above 3.8 mg/kg in the in‑line linting test. Migration control is achieved by co‑feeding 0.5–1.5 wt% (on neat emulsion) of a hydrophobically modified ethoxylated urethane associative additive that associates with the binder particles during forced‑air drying at 105–125°C through a perforated‑drum system. Wash‑off performance evaluated by the FG 505 slush‑box protocol demonstrates dispersibility within 6 minutes under mechanical agitation at 15 L/min turbulent water flow, while the residual wet strength after 2 hours immersion in distilled water still meets the 0.25 kN/m minimum required by EDANA sector standard NWSP 101.5.R2. Spunlace producers running high‑speed lines at 200–350 m/min calibrate the application nip pressure to 0.8–1.5 bar to prevent fibre crushing of the 28–45 gsm substrate before the binder-drying zone. End‑converters using this technology supply unscented, hypoallergenic dispersible moist toilet tissue rolls that conform to the Water UK Sewerage Transfer and Disposal Protocol for product flushability.A 0.6–1.2 mm wet‑film deposition of a pressure‑sensitive re‑sealable closure adhesive on high‑barrier pouch films introduces a viscosity‑versus‑coatweight instability that can be resolved only by mapping the emulsion’s plateau modulus against the laminator’s closed‑loop gravure speed. For a three‑side‑seal pouch intended for granulated food, the adhesive compound contains 100 parts S‑470HQ, 5–12 parts of an ester‑of‑hydrogenated‑rosin tackifier dispersion (softening point 75–90°C per ASTM E28), and 0.2–0.6 parts of a mercapto‑benzothiazole‑free bactericide; pH is stabilised at 4.8–5.1 using a 10% ammonium bicarbonate buffer. Coating is executed on a direct‑gravure line equipped with a quadrangular‑cell cylinder of 50 LP/cm and cell depth of 28–35 µm, driven at 140–200 m/min, immediately flash‑dried in an L‑arch at 70–85°C air temperature to a residual moisture of <0.8% before lamination to 12 µm polyethylene terephthalate that has been corona‑treated to a surface energy ≥52 mN/m (DIN 53364). The laminated film structure’s seal strength reaches 6.5–8.2 N/15mm after 24‑hour conditioning when peeled at 300 mm/min according to ASTM F88/F88M‑21, while the direct food‑contact side complies with the migration limits of Regulation (EU) No 10/2011, Annex II, being validated by overall migration testing in simulant B (10 days at 40°C, EN 1186‑1). Industrial pouch converters pressurise the adhesive-bonded zipper profile at 3.5–4.0 bar during inline forming, a condition that the S‑470HQ‑based compound withstands without cohesive splitting provided the coatweight is held within 2.8–5.0 g/m² dry.Modified cellulose‑based disposable hygiene mats for incontinence fixation bedsheets must preserve loft while resisting wet‑collapse in the presence of ammonium‑rich body fluid surrogates. The sprayable aqueous binder prepared from S‑470HQ is diluted to 13–18% solids and delivered through a series of flat‑jet nozzles at 2–4 bar atomising air pressure across a through‑air‑bonded bicomponent PET/PE core‑sheath web. A latent acid catalyst, ammonium zirconium carbonate at 1.5–2.5 wt% on dry binder, is incorporated just upstream of the spray bar via an in‑line static mixer with an L/D ratio of 12:1, assuring uniform distribution before the pot‑life window of 45 minutes expires. The coated web is cured in a through‑air oven at 135–145°C for 45–90 seconds, after which the dry‑add‑on is gravimetrically confirmed at 11–15%. Performance against the ISO 9073‑12 wet‑collapse index is monitored: add‑on below 9% yields collapse of >18% after submersion in synthetic urine (AATCC TM 183), while add‑on above 15% raises the flexural rigidity above 90 mN·cm, which triggers consumer complaints of “boardiness”. The adhesive‑cured matrix passes the fast‑drain liquid‑strike‑through test (EDANA standard WSP 70.7) with a transferee time under 4 seconds even after 5 autoclave‑ageing cycles (121°C, 100% RH, 15 min), confirming that the crosslink density withstands the steam‑sterilisation of re‑usable under‑pads. Product‑side labels reference conformance with OEKO‑TEX Standard 100 Class II for skin‑contact articles.
    Application DomainS-470HQ Dry PartsCritical Additive RangeProcessing Speed / OutputMandatory Reference Standard
    D3 joinery laminating100PVOH 2.5–6.0 phrCoater line 25–40 m/minEN 204 / EN 205
    Carpet pre‑coat100CaCO₃ 250–380 phrCoating line 15–30 m/minWIS 4029 / AATCC 181
    Indoor wall paint330–380 (wet)TiO₂ 140–180 partsFilling line 8–12 drums/minISO 11998 / Blue Angel
    Flushable nonwoven binder100Associative additive 0.5–1.5 wt%Web line 200–350 m/minEDANA NWSP 101.5.R2
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    Certification & Compliance
    More Introduction
    The SUMIMKAFLEX S-470HQ VAE Emulsion is a carboxylated vinyl acetate-ethylene copolymer dispersion stabilized with a medium‑molecular‑weight poly(vinyl alcohol) protective colloid. Manufactured via a continuous pressure‑controlled emulsion polymerization loop, the grade incorporates an ethylene content of 16–18 wt% within the copolymer backbone, delivering a glass transition temperature (Tg) of −15 °C (midpoint method, ISO 11357‑2:2021) and a minimum film‑forming temperature (MFFT) of 0 °C without coalescing solvent (ISO 2115:2014). Non‑volatile content is 55.0 ± 1.0 % (ASTM D2369‑20, 2 h at 105 °C). The emulsion is buffered to a pH of 4.5–5.5 via sodium acetate/acetic acid, a range optimized for storage stability and compatibility with most acidic and neutral compounding raw materials. Brookfield LVF viscosity, measured at 25 °C using spindle #4 at 20 rpm, falls between 3 000 mPa·s and 5 000 mPa·s (ASTM D2196‑20e1). The suspension exhibits a monomodal particle size distribution with a volume‑median diameter Dv50 of 1.6 µm (laser diffraction, ISO 13320:2020) and a specific gravity of 1.08 g/cm³ at 20 °C (ASTM D1475). The product is preserved with a CMIT/MIT mixture at a concentration compliant with EUH 208 labeling and is classified as non‑hazardous under REACH (EC) No 1907/2006.

    Film Mechanics and Plasticizer‑Free Flexibility

    Unlike vinyl acetate homopolymer dispersions that require external dibutyl phthalate or benzoate plasticizers to reduce MFFT below 10 °C, the internal plasticization of S‑470HQ by polymerized ethylene units creates a permanently flexible film. Uncompounded films dried at 23 °C, 50 % R.H., and conditioned for 24 h according to ASTM D882‑18 exhibit an ultimate elongation exceeding 600 % and a tensile strength at break of 4.2 MPa. The work‑to‑break exceeds 15 J/cm³. The absence of migratory plasticizer eliminates the long‑term embrittlement observed in external‑phase‑modified homopolymers when the plasticizer volatilizes or exudes into bonded substrates. Thermomechanical analysis (TMA) of films annealed at 80 °C for 1 h shows a softening point at −12 °C, confirming that chain mobility is retained under refrigerated storage conditions down to −25 °C in the compounded state. In practice, this allows adhesive formulations based on S‑470HQ to pass the −18 °C low‑temperature impact test on cold‑filled packaging assemblies without the formulator adding freeze‑thaw stabilizers other than 1–2 wt% ethylene glycol to the liquid phase. A critical processing boundary emerges when the dried film thickness exceeds 200 µm: the capillary‑driven coalescence gradient generates a skin‑core morphology where the surface skins over ahead of the bulk, trapping residual water and CO₂ (from acetate hydrolysis) and forming micro‑voids detectable by SEM cross‑sections. Compounding with 3–5 wt% of a high‑boiling glycol‑ester coalescent or with 0.2 wt% of a defoamer based on mineral oil/silica reduces skin‑over artifacts but raises MFFT by 1–3 °C, requiring a balancing of application‑specific film integrity against lay‑flat quality.

    What interaction occurs with multivalent metal ions during crosslinking?

    The carboxyl functionalities grafted onto the VAE backbone (0.5–0.8 mmol COOH/g dispersion solids, determined by conductometric titration) provide reactive sites for ionic crosslinking with multivalent cations. When S‑470HQ is compounded with 0.15–0.30 phr of ammonium zirconium carbonate (AZC, delivered as a 20 % active solution), film water resistance improves from a 24‑h cold‑water soak delamination time of 15 min (un‑crosslinked) to over 6 h (ASTM D7998‑19, lap‑shear on birch). The crosslinking reaction proceeds at ambient temperature but is strongly pH‑sensitive: below pH 4.8, the AZC dissociates rapidly, releasing Zr⁴⁺ that coordinates with carboxylate pairs, yet at pH < 4.2 the poly(vinyl alcohol) stabilizer loses its interfacial efficiency, triggering agglomeration and a viscosity spike of +200 % within 15 min as the colloid bridging initiates unshearing gel particles. Therefore, a two‑component mixing protocol is recommended: pre‑neutralize the emulsion to pH 5.8–6.2 with 0.5 % ammonia solution (add slowly under gentle Cowles‑blade agitation at 300 rpm), then introduce the AZC while maintaining temperature below 35 °C. Pot‑life under these conditions extends to 4 h, but is reduced to less than 45 min if the ambient temperature exceeds 30 °C and the batch size is above 500 kg, owing to the exothermic nature of neutralization. Incompatibility with amine‑based additives must be noted: tertiary amines accelerate dehydroacetic acid condensation on the acetate moieties, leading to premature yellowing and cross‑blotch formation on beech wood veneers.

    When Surfactant Migration Limits Food‑Contact Adhesive Uses

    S‑470HQ’s protective colloid stabilization, which uses no surfactant above the critical micelle concentration, reduces low‑molar‑mass extractables to 0.6 wt% in water extraction (EN 1186‑3, 24 h at 40 °C, simulant A). This property positions the emulsion for indirect food‑contact adhesive applications under FDA 21 CFR 175.105 (“Adhesives for use with food”), where the adhesive layer is separated from the food by a functional barrier. A dry film thickness of ≤ 20 µm and a volatile residue content after 72 h at 50 °C of less than 100 µg/dm², tested according to EU Regulation 10/2011 Annex III and IV conditions, have been independently documented for formulations containing S‑470HQ blended with 10 parts of rosin ester tackifier and 5 parts of calcium carbonate. However, direct contact with aqueous‑acidic foods (pH < 4.5) at temperatures above 40 °C causes progressive hydrolysis of the vinyl acetate segments, elevating vinyl acetate monomer migration—published data for this specific configuration in retort conditions is limited, and migration studies should be conducted on the finished laminate. Formulating D3‑grade wood adhesives with S‑470HQ typically requires 5 parts per hundred emulsion of a polymeric MDI hardener (NCO content 31.5 %) and 10–15 parts of coated calcium carbonate filler. The filler must be pre‑dispersed in the emulsion fraction to avoid water scavenging by the isocyanate component. The resulting thixotropy index (TI = η₂₀ rpm / η₂ rpm) of 2.3–2.8 allows roller‑coater application at machine speeds up to 20 m/min without foaming or ribbing on beech or oak substrates. Under ambient cure (23 °C, 50 % R.H.), compression shear strength on beech according to EN 205 exceeds 10.5 N/mm² after 7 days, with wood failure percentage consistently above 80 %. Adhesive films based on conventional VAE grades with 10–12 wt% ethylene content typically fail below 7 N/mm² under identical bonding parameters, largely because the lower ethylene content stiffens the bondline, concentrating cleavage stresses at the wood‑adhesive interface.
    Comparison of SUMIMKAFLEX VAE Grades in Uncompounded Form
    GradeSolids [%]MFFT [°C]Tg [°C]Viscosity [mPa·s]Ethylene [wt%]Primary Application Domain
    S-45055.0+7+52 500–4 0008–10High‑modulus paper coatings, board lamination
    S-470HQ55.00−153 000–5 00016–18Flexible wood adhesives, textile binders, low‑VOC foams
    S-49058.0−10−254 500–7 50022–25Cold‑temperature label adhesives, elastomeric sealants
    In continuous high‑shear mixing equipment (e.g., a CAVITRON homogenizer operating at 3 000 rpm), S‑470HQ exhibits shear stability up to 30 minutes without a detectable increase in coagulum on a 40‑mesh screen. Beyond 30 minutes, the local temperature rise to 45 °C starts re‑activating acetate functionality, generating a slow pH drift toward 3.8 as surface‑grafted acetic acid liberates. Operators on production lines equipped with in‑line pH probes and automated ammonia dosing maintain lot‑to‑lot consistency: an acceptable pH window of 5.2–5.8 at the applicator head corresponds to a shear index variation of less than 5 %. Batch records from a European D2‑D3 adhesive manufacturer indicate that replacing an S‑450‑based formulation with S‑470HQ reduced the required press time from 3.5 min to 2.1 min at a glue spread rate of 150 g/m², attributed to the faster water‑vapor transmission rate of the more flexible film, which permits immediate stacking without film delamination. Fire‑retardant‑treated wood presents a unique challenge. The acidic nature of most phosphate‑based fire retardants (e.g., disodium octaborate‑guanidine phosphate mixtures) can reduce the bondline pH below 4.0, accelerating isocyanate‑water competition and foaming. When bonding such substrates, the emulsion must be pre‑buffered to pH 6.5 with a soluble bicarbonate and the MDI addition increased to 8 phr; otherwise, clamp‑face temperature spikes above 50 °C in stack‑glued panels produce delamination within the warranty cycle. Pre‑drying of the fire‑retarded lumber to a moisture content of 8 ± 1 % is mandatory—a requirement not needed for untreated substrates where 10–12 % moisture is permissible. S‑470HQ is stored in 200 L HDPE drums and 1 000 L IBCs. A simple paddle agitation for 5 minutes before transfer is sufficient; pre‑filtration through a 100‑µm bag filter removes any skin formed during headspace exposure. Shelf life from the date of manufacture is 12 months when stored between 5 °C and 35 °C in sealed containers. Freeze‑thaw cycles are not recoverable: once the product is frozen below −2 °C, the poly(vinyl alcohol)‑stabilized colloid irreversibly agglomerates upon thawing.
    Key Regulatory and Standards Landscape for S‑470HQ
    RequirementStandard/RegulationCondition
    Adhesives for indoor woodwork (D2)EN 204:2016Passes 7‑day cold soak 20±3 °C; requires isocyanate crosslinker
    Adhesives for indoor woodwork (D3)EN 204:2016Passes 4‑day cold soak and 6‑h boil; requires 5 phr MDI hardener
    Indirect food contact adhesiveFDA 21 CFR 175.105Suitable when barrier layer is present; migration limits apply
    Plastic materials and articles in contact with foodEU 10/2011Total migration less than 10 mg/dm²; compliance tested on finished laminate
    REACH registration(EC) No 1907/2006Full registration as substance > 1 tpa; no SVHC content
    Emission classificationAgBB/DIBt VOC schemeUncompounded dried film VOC ≤ 300 µg/m³ after 28 days (tested per ISO 16000‑6)