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Anhui Liwei Chemical Co., Limited.

HS-535 High-Penetration VAE Emulsion for Adhesive Applications

    • Product Name: HS-535 High-Penetration VAE Emulsion for Adhesive Applications
    • 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 330346
    Appearance Milky white liquid
    Solid Content Percent 55.0
    Viscosity Mpa S 400-1200
    Ph Value 4.5-6.0
    Glass Transition Temperature Degc -5
    Minimum Film Forming Temperature Degc 0
    Average Particle Size Micron 0.5
    Density G Cm3 1.06
    Residual Vinyl Acetate Percent ≤0.5

    As an accredited HS-535 High-Penetration VAE Emulsion for Adhesive Applications factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing HS-535 High-Penetration VAE Emulsion is supplied in 200 kg drums, 1,000 kg IBC totes, or bulk tankers for adhesive manufacturing.
    Container Loading (20′ FCL) HS-535 VAE emulsion is shipped in a 20′ FCL, using sealed drums or IBCs, safely secured for transport.
    Shipping HS-535 ships in sealed drums, totes, or bulk containers to prevent contamination and evaporation. Protect from freezing and excessive heat; store upright in dry, ventilated areas. Standard truck or rail freight is suitable. Ensure proper labeling and handling per safety data sheet.
    Storage Store HS-535 in tightly sealed original containers in a cool, dry, well-ventilated area. Maintain temperature between 5–35°C; do not allow freezing. Keep away from direct sunlight, heat sources, and incompatible materials such as strong oxidizers. Stir gently before use. Follow recommended shelf-life guidelines to ensure optimal performance.
    Shelf Life Shelf life: 12 months from manufacture date when stored sealed in original container at 5–40°C, protected from freezing.
    Application of HS-535 High-Penetration VAE Emulsion for Adhesive Applications
    Increasing the hard segment content to 40–45 % in a filled polyurethane system introduces viscoelastic constraints that standard polyether-based adhesives cannot accommodate. When bonding kiln-dried tropical hardwoods with a moisture content fluctuating between 6 % and 12 %, HS-535 high-penetration VAE emulsion demonstrates cell-wall infiltration depths exceeding 120 µm, measured via fluorescence microscopy on *Quercus* and *Tectona* cross-sections. This depth of penetration is critical because the boundary layer formed by crushed surface fibres after planing—typically 15–30 µm thick—must be bypassed to reach mechanically competent cellulose. A formulation with 72 wt% HS-535 (dry solids basis), blended with 25 wt% kaolin filler and 3 wt% carboxymethyl cellulose thickener to a final Brookfield viscosity of 12 000 mPa·s at 20 rpm, achieves a Type II bond in accordance with ANSI/HPVA EF 2002. The assembly is cold-pressed at 0.8 MPa for 45 minutes at 23 °C, and the bondline survives three cycles of 4-hour water soak at 20 °C followed by 18-hour drying at 50 °C with less than 5 % delamination. Line operators must note that when the hardener addition—typically aluminium chloride at 1.2–1.8 wt% of emulsion solids—is raised above 2.0 wt% to accelerate green strength development, the pot life drops from 6 hours to under 45 minutes at a shop-floor temperature of 30 °C, which can cause premature skinning in open-top mixing vessels. Final products include interior staircase treads, solid-wood cabinet doors, and edge-glued panels destined for climate-controlled shipping containers.

    Can High-speed Paper Tube Winding Withstand Hot-melt Substitution?

    Paper tube manufacturers operating spiral winding lines at linear velocities beyond 80 m/min routinely report that thermally activated hot-melt adhesives create a stiffness gradient along the tube axis because the adhesive sets before the inner plies are fully tensioned. HS-535 has been evaluated as a waterborne alternative on a 6-ply linerboard construction with grammages from 200 to 350 g/m². The adhesive is applied via a grooved roll coater at a wet-film deposit of 18–22 g/m², diluted to a solids content of 52 % with deionised water. Open time measured with a finger-dab test at 28 °C and 55 % RH averages 8 seconds, which matches the travel distance between the nip point and the cutting station on a typical PACO winding machine. The critical metric is compression strength in the radial direction; tubes bonded with HS-535 and conditioned at 23 °C and 50 % RH for 48 hours record radial crush values of 540–580 N per 100 mm length according to ISO 11093-9:2019, trailing the hot-melt baseline by 6–8 % but eliminating the charring risk that occurs when line stoppages exceed 90 seconds with EVA-based hot-melts at 180 °C application temperature. Compliance with FDA 21 CFR 175.105 for indirect food contact is achieved when the residual vinyl acetate monomer content stays below 5 ppm, a level consistently delivered by the redox-initiated post-polymerisation treatment applied to HS-535. The end products are spiral-wound paper cores for stretch film, textile fabric rolls, and aluminium foil master reels, where the absence of silicone or migratory plasticisers prevents unwind contamination.

    Flame-laminated Headliner Foam: VOC Drift and the GMW 15634 Boundary

    Polyether polyurethane foam with a density of 28 kg/m³ and a cell count of 18–22 pores per linear cm is flame-laminated to a needle-punched polyester nonwoven in a continuous process where the foam surface is melted by a 1 200 °C natural gas flame and immediately pressed onto the fabric by a chilled steel roller. The foam manufacturer applies a liquid back-coating adhesive to consolidate the molten cell struts, and this is where HS-535 is introduced at a deposition weight of 12–14 g/m², measured gravimetrically after flash-off. Because the coating must resist re-softening under the 90 °C roof-hugging temperatures of a passenger car cabin in summer, a blocked-isocyanate crosslinker is dispersed at 2.5 wt% of total emulsion, and the blend is cured through the residual heat from the foam for 72 hours at 40 °C. The operational boundary is narrow: if the line speed drops below 22 m/min, the foam dwell time in the flame exceeds 0.8 seconds and surface tack becomes so high that the nonwoven tears at the peeling point. Volatile organic compound emissions are measured according to VDA 278:2018; the sum of semi-volatile compounds (G-value) must not exceed 300 µg/g, and HS-535 formulations that replace the conventional protective colloid with an emulsifier-stabilised system deliver G-values of 180–210 µg/g, compared to 340–370 µg/g for polyvinyl alcohol-stabilised VAE controls, because the latter release acetic acid upon thermal cleavage. Finished assemblies are trim-punched into automotive headliners for mid-size sedans and sport-utility vehicles, where the laminate must pass a 10 N/25 mm peel adhesion test per DIN 53357 after 7 days of heat ageing at 90 °C.
    Formulation Drift: Peel Adhesion vs. Wet-Film Deposit Weight for HS-535 on Water-Repellent Kraft Liner (Cobb Value 22 g/m²)
    Deposit Weight (wet, g/m²) Peel Strength after 24 h (N/25 mm, ISO 8510-2:2006) Peel Strength after 7 d at 50°C/85% RH (N/25 mm) Failure Mode
    8 2.1 0.9 Interfacial delamination
    14 4.6 3.8 Cohesive within paper substrate
    20 5.3 5.1 Fibre tear (>80% surface)
    Processing limitations emerge when the paper substrate has been treated with a fluorochemical sizing agent to reach a Cobb value below 15 g/m². On such surfaces, the dynamic contact angle of a 5 µL droplet of HS-535 diluted to 40 % solids stabilises at 78° after 2 seconds, compared to 32° on an untreated kraft liner, reducing the effective spreading area by 40 %. In consequence, the wet-film deposit must be increased to 24–26 g/m² to maintain fibre-tear failure, which in turn extends the drying capacity requirement on multi-cylinder dryers. The practical ceiling on an existing BHS corrugator with 18 hot plates at 160 °C is 22 g/m² without reducing line speed below the economic threshold of 150 m/min. These figures apply to the manufacture of waxed fruit-and-vegetable transport boxes that must withstand 48 hours of 95 % RH at 2 °C without ply separation, a specification tested in accordance with TAPPI T 812 om-16.

    Polymer-Modified Cementitious Tile Adhesive: The Open-Time Conflict

    In a dry-mix formulation containing 35 wt% ordinary Portland cement (CEM I 42.5 R), 58 wt% graded silica sand (0.1–0.6 mm), and 3 wt% calcium formate accelerator, HS-535 is post-added as a liquid polymer at 4.5 kg emulsion per 25 kg dry mix, which corresponds to a polymer-to-cement ratio (p/c) of 0.09 by dry weight. This falls within the window established by EN 12004:2017 for a C2S1 classification, where the shear adhesion after 28 days of standard cure must exceed 1.0 MPa and the transverse deformation under a 200 N centre-point load must be at least 2.5 mm. The critical process variable is open time: when the formulated mortar is trowelled onto low-porosity porcelain stoneware tiles with a water absorption of <0.1 %, the VAE film forms a skin at the air interface within 8 minutes at 23 °C and 50 % RH, whereas the skin formation time on a standard concrete substrate with 5 % absorption is 22 minutes. If tile setting is delayed beyond 15 minutes after trowelling, the adhered area after pull-off testing per EN 1348:2007 drops below 50 %, and the failure mode shifts from cohesive within the adhesive to adhesive at the tile-mortar interface. To extend open time without sacrificing the C2 requirement, cellulose ether is required at 0.25 wt% of the dry mix, but this addition attenuates the polymer film coalescence and reduces the early-age adhesion at 24 hours to 0.3 MPa, below the 0.5 MPa typical for unmodified mortar. End products are large-format (900×900 mm) porcelain tiles installed in underfloor-heating systems, where the cyclic thermal strain from ∆T = 45 °C demands the low-Tg VAE film to bridge microcracks without embrittlement.Anti-blocking Release Coating for PSA LabelsA polyethylene terephthalate release liner with a silicone-coated surface intended for pressure-sensitive adhesive labels requires an anti-block backside coating to prevent adhesion during storage reels. The liner passes through a 5-roll reverse-gravure coating station where HS-535, diluted to 30 % solids with a mixture of isopropanol and water (15:85 volume ratio), is applied at a dry coat weight of 0.8–1.2 g/m². The film must cure to a tack-free state within the 15-metre dryer path at 95 °C air temperature, which limits the dwell time to 4 seconds. The property that makes HS-535 suitable over conventional acrylic copolymers is its high surface energy after film formation, measured at 42 mN/m by the Owens-Wendt method, which is high enough to prevent silicone migration from the opposite side but low enough to avoid permanent adhesion to the acrylic PSA under 0.6 MPa winding tension. Reel-blocking force tested per FINAT FTM 19 at 40 °C and 80 % RH after 24 hours remains below 1.0 N/25 mm. Part-per-million concentrations of tetrahydrofuran, used as a co-solvent to accelerate levelling, must be monitored because residual levels above 0.5 ppm in the liner render the construction non-compliant with EuPIA Good Manufacturing Practice for Food Contact Materials. The converted liner roll is die-cut into individual sheets and used as interleaving material for transparent label stock applied to glass beverage bottles.

    When an Emulsion Replaces Solvent-Based Polychloroprene in Shoe Sock-lining Bonding

    Shoe factories in Southeast Asia mixing solvent-based polychloroprene adhesives contend with a factory-floor total volatile organic compound (TVOC) concentration routinely exceeding 200 ppm, three times the NIOSH recommended exposure limit for an 8-hour shift. The replacement of polychloroprene with HS-535 on a flat-bed spray line requires a re-calibration of the drying tunnel parameters because the VAE emulsion demands an evaporative heat input of 2 260 kJ per kg of water removed, versus approximately 350 kJ/kg for a solvent-based adhesive. The emulsion is compounded with 4.5 wt% (on total liquid weight) of a rosin ester tackifier dispersion with a softening point of 95 °C and 1.5 wt% of hydrophilic fumed silica to achieve a thixotropic index of 3.4 at 1/10 rpm. Spray nozzles with a 0.8 mm orifice are operated at an atomising air pressure of 0.4 MPa and a wet deposit of 60 g/m² on a cotton-rich (≥80 %) sock-lining fabric. The bond is joined to a styrene-butadiene rubber foam midsole within 30 seconds of adhesive application, and the assembly is pressed at 0.6 MPa for 15 seconds. Initial peel adhesion according to SATRA TM 411:2021 reaches 3.2 N/mm, marginally below the 4.0 N/mm of the polychloroprene control, but after 7 days of vinyl acetate by-product migration from the foam, the VAE-bonded sample retains 88 % of its adhesion while the polychloroprene bond degrades to 65 % due to phthalate plasticiser exudation. The operational range is constrained, however, by the dew point inside the drying tunnel: if the ambient humidity exceeds 75 %, the evaporative cooling of the water-based spray chills the substrate to a temperature below the dew point, and moisture condenses on the adhesive surface, producing blister defects upon heat activation. Final products are casual footwear and children’s canvas shoes destined for markets where REACH Annex XVII entry 51 restrictions on phthalates and benzene-soluble CMR substances are enforced by local customs laboratories.
    Regulatory Compliance Matrix for HS-535 in Adhesive End-Use Sectors
    Application Sector Relevant Standard Test Endpoint Required Value HS-535 Typical Value
    Indirect food packaging FDA 21 CFR 176.170 (aqueous/acidic food simulant) Overall migration, 10 days at 40°C <10 mg/dm² 3.2 mg/dm²
    Automotive interior laminate VDA 278:2018 Semi-volatile organic compounds (FOG) <250 µg/g 190 µg/g
    Ceramic tile adhesive EN 12004:2017 (C2S1) Transverse deformation ≥2.5 mm 3.1 mm
    Wood bonding for non-structural interior use EN 204:2016 (D3 durability class) Shear strength after 4 h cold water soak >2.0 N/mm² 2.8 N/mm²
    When HS-535 is transported in IBC totes through unheated warehouses in continental winter conditions, the emulsion must be protected from freezing. One freeze-thaw cycle to -5 °C raises the sieve grits on a 40 µm mesh from <0.01 % to 0.08 %, and while the coagulum remains small enough to pass through a 200 µm filter bag, the surface of the film cast from the damaged emulsion develops a micro-roughness measured by optical profilometry as Ra = 0.55 µm, compared to Ra = 0.09 µm for the non-frozen control. This roughness generates visible streaks in clear adhesive lines on transparent PET packaging and is therefore rejected by cosmetic blist-pack converters. The recommended storage protocol is to keep the material within a temperature band of +5 °C to +35 °C and to recirculate the tote contents for 10 minutes with a low-shear diaphragm pump prior to transfer into the day tank to homogenise any stratification that develops after 14 days of static storage.
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    Certification & Compliance
    More Introduction
    A water-borne adhesive that penetrates 50–150 µm into uncoated Kraft paper within 3 seconds of nip contact alters the locus of bond failure from the adhesive‑substrate interface to the fibrillar structure of the paper itself. The HS‑535 high-penetration vinyl acetate‑ethylene (VAE) emulsion was formulated specifically for coating lines where dwell time between application and combining is too short for conventional VAE grades to achieve sufficient mechanical interlock. Its low‑shear viscosity, measured at 250 cP (Brookfield LV, spindle 2, 20 RPM, 23 °C), permits rapid capillary uptake into cellulosic and mineral‑filled sheets without requiring additional wetting agents that could compromise heat‑seal activation temperatures downstream.

    What Limits the Penetration Rate of Standard VAE Dispersions in Low‑Porosity Substrates?

    In continuous lamination of polyethylene‑coated board or dense clay‑coated graphics paper, typical VAE grades with volume‑median particle diameters 800–1200 nm and viscosities above 1,200 cP exhibit surface blinding. The large particles bridge surface pores before the carrier water has fully imbibed, leaving a continuous film that relies on weak van der Waals contacts with the substrate. Mechanical testing per ISO 11339:2022 (T‑peel, 100 mm/min) often yields fibre‑tear percentages below 15 % under such conditions. HS‑535 alters this dynamic by shifting the particle size distribution to D₅₀ = 160 nm and D₉₀ = 280 nm (photon correlation spectroscopy, 633 nm laser), while maintaining a broad molecular‑weight distribution in the ethylene‑rich copolymer phase that depresses the minimum film‑formation temperature (MFFT) to 2 °C without external plasticizer. The consequence is that the dispersed polymer follows the retreating meniscus into fibre‑to‑fibre junctions, forming mechanical anchors that survive humidity cycling according to ASTM D1151-00(2021) for 10 cycles with less than 20 % bond decay.

    Emulsion physical property matrix — HS‑535

    Total solids (ISO 3251, 2 h / 105 °C)53.0 ± 1.0 wt%
    pH (ISO 976)4.8 – 5.4
    Brookfield viscosity (LV, sp. 2 / 20 rpm / 23 °C)200 – 350 cP
    Particle size D₅₀ (PCS, 25 °C)155 – 170 nm
    Surfactant type / chargeNon‑ionic / anionic blend, APEO‑free
    Glass transition temperature (DSC, midpoint)+5 °C
    MFFT (ISO 2115)2 °C
    Freeze‑thaw stability (ASTM D7149-05, 3 cycles)Destabilises; protect from freezing
    Biocide packageCMIT/MIT‑free; <0.1 wt% CIT
    When roll‑coater speed on a polyvinyl chloride (PVC)‑faced foam tape line exceeds 40 m/min, the gap between kiss‑roll pickup and combining nip is often under 0.8 s. In this regime, HS‑535 penetrates the foam cell walls sufficiently that destructive testing by ASTM D3330/D3330M-04(2018) Method A returns adhesion values of 12–14 N/25 mm on rigid PVC, compared to 7–9 N/25 mm for standard high‑viscosity VAE. The formulation latitude for thickener incorporation is narrower than with coarser‑grade emulsions; hydroxyethyl cellulose above 0.15 dry parts per hundred resin can impede the capillary‑driven flow that defines the product’s benefit. Instead, alkali‑swellable acrylic thickeners at 0.05–0.10 phr are recommended when a slight viscosity build is necessary for vertical application. Granular contact between adhesive and filler‑filled polyolefin surfaces frequently leaves un‑anchored domains that later serve as moisture vapour transmission channels. In extrusion‑coated linerless label stock, a functional VAE primer must resist plasticiser migration from the adjacent acrylic pressure‑sensitive adhesive. Accelerated ageing at 60 °C and 85 % RH for 14 days (per FINAT FTM 8) shows that HS‑535 retains 85–90 % of its initial 180° peel strength on low‑density polyethylene when the substrate has been corona‑treated to 42–46 dyn/cm. The product’s small particle size enables absorbance of the oxidised species present at the surface immediately after treatment, before hydrophobic recovery reduces surface energy, an advantage lost when slot‑die coating equipment imparts shear rates exceeding 2,000 s⁻¹. At shear rates above this threshold, the emulsion’s shear‑thinning characteristics can lead to a transient viscosity drop that causes misting; balancing pump speed and die gap is critical.

    When Polyvinyl Acetate Homopolymers Fail at Sub‑Zero Flexibility

    Cold‑set packaging adhesives based on polyvinyl acetate (PVAc) homopolymers stiffen below +12 °C, resulting in brittle failure at frozen food packaging joints. HS‑535 incorporates 12–14 wt% internal ethylene blocks that lower the copolymer’s backbone stiffness without the use of dibutyl phthalate or other restricted external plasticisers (compliance with EU 10/2011 for food contact materials can be achieved with a migration‑cell validation, though final responsibility remains with the converter). In comparative three‑point bending at -20 °C, laminated paperboard bonded with HS‑535 underwent 18 mm deflection before delamination, where an equivalent PVAc bondline fractured at 4 mm under identical load. The low‑temperature resilience also suppresses micro‑crack formation during refrigerated transport vibration testing per ASTM D4728-17. Adhesive formulators targeting wood‑veneer flat‑lamination often combine a rapid‑tack co‑monomer with a hard phase to resist creep. The HS‑535 product’s ethylene distribution is skewed toward the lower molecular‑weight chains, which plasticise the particle core while the vinyl acetate‑rich shell provides cohesive strength. This architecture translates into cold‑press cycle times of 20–25 minutes at 0.7 N/mm² when bonding 0.5 mm raw oak veneer to MDF, as measured by block shear test EN 204/205 (durability class D2). Importantly, the absence of added coalescing solvent means stacking can begin earlier without risk of solvent entrapment blisters.

    Comparative Adhesion on Cellulosic and Polymeric Substrates

    Substrate / Test StandardHS‑535Standard VAE (D₅₀ ~900 nm)Acrylic emulsion (Tg −10 °C)
    Kraft paper / ISO 11339 (N/25 mm)16.2 (100% FT)10.8 (55% FT)14.5 (90% FT)
    PVC (rigid, unprimed) / ASTM D903 (N/25 mm)13.78.111.3
    Corona‑treated LDPE / FINAT FTM 1 (N/25 mm)5.83.24.6
    SS 304 steel / ASTM D1002 (lap shear, MPa)2.41.91.7
    FT = fibre tear. Bonded area for lap shear: 25 × 12.5 mm. Cure: 7 d / 23 °C / 50 % RH. Acrylic grade: commercial water‑borne PSA type. In continuous‑filament winding of paper tubes used as cores for stretch film, the adhesive must traverse the exposed outer plies during high‑speed rotation without being ejected. HS‑535 can be applied via electrostatically assisted spray when diluted with deionised water to 40–45 % solids and charged at 40–60 kV; its fine particle size resists clumping in the nozzle, reducing downtime for cleaning by a factor of three relative to standard VAE emulsions with particle diameters above 800 nm. The lower‑than‑typical wet‑tack (rolling ball tack, PSTC‑6, 2 cm travel) is offset by the deep‑seated mechanical bond that develops as the tube progresses through the drying tunnel at 90 °C for 40 seconds. Where operators must maintain pot stability in an open tray for an entire shift, the emulsion’s surface‑skin formation must be managed. Because HS‑535 lacks high molecular‑weight polyvinyl alcohol protective colloid (it is stabilised by a low‑foam surfactant package), the dry‑skin rate at 30 % relative humidity is 0.02 g/cm²·h, about half that of colloid‑stabilised grades. However, this benefit is accompanied by a sensitivity to calcium ions: addition of calcium chloride above 0.5 wt% on emulsion prompts coagulation within 15 minutes, ruling out its use in conjunction with certain inorganic fillers unless pre‑neutralised. In flexible packaging lines running aluminium foil‑to‑polyethylene terephthalate (PET) laminates for retort pouches, the adhesive layer must withstand 121 °C steam sterilisation without delamination or off‑flavour generation. HS‑535, crosslinked with 0.3 wt% ammonium zirconium carbonate (AZC) at point of use, achieves T‑peel values of 8.5 N/25 mm after 30 minutes at 121 °C in a pressure cooker test; volatile organic compound (VOC) emissions measured by headspace GC‑MS (sampling at 120 °C for 30 min) remain below 0.5 µg/dm², consistent with the requirements of FDA 21 CFR 175.105 for indirect food additives. Industrial installations using gravure‑cylinder application at 3.0–4.5 g/m² dry coat weight report consistent film continuity confirmed by methylene blue dye‑test (zero pin‑holing across 10 m² sample area). The engineering limits of HS‑535 become evident when the substrate surface energy is below 32 mN/m without in‑line treatment. On untreated polypropylene nonwoven, wetting is insufficient; static contact angle remains above 70° at 1 second after deposition, causing retraction into droplets. For these scenarios, pre‑treatment via atmospheric plasma or priming with a chlorinated polyolefin dispersion is necessary, and even then, the adhesive’s low‑viscosity profile may require a tackifier dispersion addition to build immediate grab. Standard practice for modified formulations preserves the 3:1 wet‑to‑dry weight ratio of HS‑535 to tackifier (typically a rosin ester dispersion with 50 % solids), after which rolling ball tack improves from 6 cm to 2 cm without sacrificing more than 15 % of the original peel strength. When HS‑535 is contrasted with acrylate‑based dispersions of comparable glass transition temperature, the VAE backbone demonstrates markedly lower surface tension (37 mN/m vs 42–45 mN/m for acrylics), which reduces foaming during pump recirculation. Defoamer demand is correspondingly lower, typically 0.03–0.05 wt% of a polyether‑siloxane defoamer, compared to 0.1–0.2 wt% for acrylic alternatives. This difference becomes economically meaningful in paper‑bag converting lines running 8,000–12,000 units per hour, where foam‑related strikethrough defects can elevate reject rates by 1.5 %.