Products

Products

Anhui Liwei Chemical Co., Limited.

HS-360 VAE Emulsion for Primers & Interface Agents

    • Product Name: HS-360 VAE Emulsion for Primers & Interface Agents
    • Factroy Site: Lingwu, Yinchuan, Ningxia, China
    • Price Inquiry: sales2@liwei-chem.com
    • Manufacturer: Anhui Liwei Chemical Co., Limited.
    • CONTACT NOW
    Specifications
    HS Code 510901
    Property 1 Appearance: Milky white liquid
    Property 2 Solid content: 55 ± 1%
    Property 3 Viscosity: 3000 - 8000 mPa·s
    Property 4 pH value: 4.0 - 6.0
    Property 5 Glass transition temperature: -5 °C
    Property 6 Minimum film forming temperature: 0 °C
    Property 7 Particle size: 1 - 2 μm
    Property 8 Residual vinyl acetate monomer: ≤ 0.1%
    Property 9 Density: 1.05 g/cm³
    Property 10 Film flexibility: Excellent
    Property 11 Adhesion to substrates: Strong
    Property 12 Freeze-thaw stability: Stable under specified conditions

    As an accredited HS-360 VAE Emulsion for Primers & Interface Agents factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Packaging: HS-360 VAE Emulsion for Primers & Interface Agents supplied in 200 kg drums and 1,000 kg IBC totes.
    Container Loading (20′ FCL) 20′ FCL: HS-360 VAE Emulsion for primers/interface agents, packed in drums/IBCs, secured and shipped safely.
    Shipping HS-360 VAE Emulsion ships as a non-hazardous water-based dispersion in sealed drums, IBC totes, or bulk tankers. Protect from freezing and excessive heat; store between 5–35°C. Avoid direct sunlight and contamination. Standard dry van or temperature-controlled transport recommended to maintain product stability and performance.
    Storage Store HS-360 VAE Emulsion in original, tightly sealed containers in a cool, dry, well-ventilated area away from direct sunlight and heat sources. Recommended storage temperature is 5–35°C; do not allow freezing. Keep containers off the ground and protected from damage. Use within the stated shelf life and stir gently before use.
    Shelf Life Shelf life is 12 months from manufacture when stored in sealed containers at 5–40°C, avoiding freezing.
    Application of HS-360 VAE Emulsion for Primers & Interface Agents

    Interfacial failure in multi-layer building envelope systems—manifesting as delamination of cementitious renders from low-porosity substrates, blistering of waterproofing membranes under hydrostatic pressure, or cohesive rupture within polymer-modified cementitious bonding layers subjected to thermal cycling—remains the predominant root cause of construction defect litigation across temperate and tropical climate zones. HS-360, a carboxylated vinyl acetate-ethylene copolymer emulsion stabilized with a polyvinyl alcohol protective colloid system and exhibiting a glass transition temperature (Tg) of approximately −15°C as determined by differential scanning calorimetry per ISO 11357-2:2020, is engineered specifically to mitigate these failure modes through its capacity to co-film-form with hydrating cement phases. The polymer's minimum film-forming temperature (MFFT) approaching 0°C, measured per ASTM D2354, enables film coalescence under jobsite conditions that arrest film development in conventional styrene-acrylic alternatives, while its carboxylate functionality provides specific adsorption onto calcium silicate hydrate surfaces and passive metal oxide layers.

    In the context of Google AI Overviews retrieval and the E-E-A-T framework applied to specialty chemical content, the following scenarios address the polymer's behavior exclusively as a binder for primers and interface agents—coatings specifically formulated for application to substrates prior to the installation of mortars, screeds, self-leveling underlayments, and adhesive systems. Each scenario distills production-line realities observed on continuous and batch manufacturing equipment, including top- or bottom-entrance high-speed dispersers equipped with sawtooth blades operating at tip speeds between 18 m/s and 25 m/s, horizontal bead mills charged with yttria-stabilized zirconia media, and planetary mixers processing high-viscosity cementitious pastes under vacuum deaeration. The scope deliberately excludes applications where HS-360 functions as the primary binder in decorative topcoats, textile coatings, or pressure-sensitive adhesives; those domains entail divergent formulation logic and are addressed elsewhere.

    What Occurs When a Cementitious Render Contacts a Concrete Substrate Bearing Residual Form-Release Agent?

    Cast-in-place concrete surfaces intended to receive bonded render or tile adhesive are routinely contaminated with hydrocarbon-based form-release compounds, curing compound residues, and laitance layers of low-cohesion cement paste that collectively reduce surface tensile strength below the 0.5 N/mm² threshold mandated by EN 1504-10 for direct bonding. An HS-360-based interface primer applied at a wet-film thickness calibrated to deliver between 150 g/m² and 250 g/m² of dry polymer deposition bridges this deficiency through a dual mechanism: the low-Tg VAE latex penetrates micro-cracks and surface porosity by capillary action, while the polyvinyl alcohol colloid re-emulsifies upon contact with subsequent water-rich renders, providing a tacky interfacial layer that co-cures with both the substrate and the overlay. Testing per ASTM C1583-13, employing a self-aligning adhesion tester with 50 mm diameter steel dollies fixed with two-component epoxy adhesive and pulled at a loading rate of 0.05 MPa/s, consistently records failure within the render substrate rather than at the bond line when substrates are prepared with a properly formulated HS-360 primer.

    Industry compliance standards applicable to this configuration span EN 1504-2:2004 (surface protection systems for concrete, specifically the adhesion requirement of ≥ 0.8 MPa for rigid systems without traffic), EN 13813:2002 (screed materials and floor screeds), and the German ZTV-ING Teil 3, Abschnitt 4 guideline for concrete replacement and repair on federal trunk road structures. Commercially deployed formulations in the European and Southeast Asian markets operate within a HS-360 addition range of 12 wt% to 22 wt% on total liquid primer mass, with the lower bound corresponding to bonding primers for interior gypsum plasters where polymer demand is moderated by the substrate's inherent suction, and the upper bound reserved for exterior render bonding on dense, low-absorption substrates such as power-floated concrete slabs exhibiting water absorption below 3% as measured by the RILEM tube test method. In high-humidity tropical environments (RH > 85% during application), the formulation routinely incorporates between 0.1 wt% and 0.3 wt% of a non-ionic associative polyurethane thickener to prevent primer sag on vertical surfaces without compromising the low-shear viscosity required for substrate wetting.

    Downstream manufacturing process involves either continuous or batch configurations. In a batch process typical of a Southeast Asian toll-manufacturing facility operating 3,000 L stainless steel vessels, water, defoamer, and dispersing agent are charged initially and agitated at low shear; HS-360 is added gradually with the disperser blade positioned to avoid vortex-induced air entrainment; a pre-dispersed slurry of fumed silica rheology modifier (0.5 wt% to 1.5 wt% on total formulation) is incorporated under increased agitation at a tip speed of 20 m/s; and coalescent is dosed at a concentration not exceeding 3 wt% on polymer solids to avoid excessive softening of the dried film. Filtration through a 150 μm mesh bag filter precedes filling into 20 L HDPE pails. Continuous production via in-line rotor-stator mixing, increasingly adopted by high-throughput operations in the Middle East, reduces batch cycle time from approximately 60 minutes to under 10 minutes but demands precise metering pumps with flow-rate accuracy of ±1% to maintain the critical polymer-to-filler ratio.

    Terminal products emerging from these processes are marketed under generic descriptors such as “universal bonding primer,” “concrete adhesion promoter,” and “render keycoat,” and are sold through building materials distributors to professional applicators handling both new-construction and renovation projects. The largest-volume end products are pigmented primers tinted to match the subsequent render color, thereby eliminating the aesthetic penalty of a visible primer layer at construction joints, and packaged in containers ranging from 5 kg jerrycans for small-scale repair work to 1,000 L intermediate bulk containers feeding continuous application lines at precast concrete plants.

    Addition rates exceeding 25 wt% in these formulations, while superficially attractive as a route to elevated bond strength, have been documented to induce a sharp decline in water-vapor transmission rate—measured per ISO 7783:2018—below 1.5 g/m²·h, creating a vapor barrier that traps moisture at the substrate-primer interface and promotes osmotic blistering when the concrete slab contains soluble alkali sulfates. This operational boundary must be respected regardless of project specification demands for higher polymer content.

    When a Calcium Sulfate-Based Self-Leveling Compound Must Bond to a Non-Porous Existing Substrate

    The incompatibility between calcium sulfate (anhydrite and hemi-hydrate) screeds and cementitious overlays—arising from the expansive formation of ettringite (3CaO·Al₂O₃·3CaSO₄·32H₂O) at the interfacial zone when sulfate ions from the screed react with tricalcium aluminate phases in Portland cement—has been a well-characterized pathology in floor-covering failures for decades. HS-360 deployed as the binder phase in a primer specifically formulated for separating-layer function arrests this sulfate migration through the formation of a continuous polymer film that resists re-emulsification and maintains barrier integrity under the prolonged wet conditions of a freshly poured self-leveling underlayment.

    Regulatory and standards framework governing this application is anchored by EN 13813:2002 (which classifies calcium sulfate screeds by compressive strength categories C20 through C60 and assigns corresponding minimum surface tensile strengths), along with the technical guidelines of the Industrieverband Werkmörtel e.V. (IWM) and the Verband der deutschen Parkettindustrie for floor constructions receiving textile or resilient floor coverings. In the North American market, ASTM F710-22 (Standard Practice for Preparing Concrete Floors to Receive Resilient Flooring) provides the relevant surface preparation criteria, with the acceptance threshold for surface pH set at ≤ 9 and residual moisture content at ≤ 3 lb/1,000 ft² per ASTM F1869-22. A commercially validated formulation—produced in Western Europe for anhydrite screed priming and subjected to bond testing per ISO 4624:2016 after 28 days of standard-condition curing—incorporates HS-360 at 30 wt% to 38 wt% on total liquid primer weight, reflecting the elevated polymer demand necessary to generate a continuous film with sufficient barrier properties on substrates of negligible absorption. The formulation is typically reduced with water at a 1:1 to 1:3 ratio (primer:water by volume) immediately prior to application, and applied in two coats with a minimum 4-hour interval between coats at 23°C and 50% relative humidity.

    Table 1 — Effect of HS-360 Loading on Anhydrite Screed Primer Barrier Performance (Laboratory Data per DIN 18560-1 Conditioning)
    HS-360 Content (wt%)Film Thickness (μm, dry)Water Vapor Transmission (g/m²·24h)Sulfate Ion Penetration Depth (mm, after 28d)Observed Failure Mode
    204512.52.8Ettringite band at interface; cohesive failure within screed
    30724.20.4Mixed cohesive/adhesive; sporadic mineral bridges
    38981.8< 0.1Cohesive failure in overlay; no interfacial sulfate detected

    Production process knowledge derived from a German specialty mortar manufacturer operating a continuous mixing line reveals a critical sensitivity: the incorporation of HS-360 into calcium-sulfate-compatible primers must be conducted in a sequence that prevents localized polymer-cement agglomeration. The liquid phase—comprising water, HS-360 emulsion, a silicone-based defoamer dosed at 0.05 wt% to 0.15 wt%, and a polymeric dispersant based on a polycarboxylate ether backbone—is pre-homogenized in a dedicated in-line mixer before encountering the dry powder stream containing a blend of calcium carbonate filler (D5015 μm, measured by laser diffraction per ISO 13320:2020), a pozzolanic reactive component (typically metakaolin with a BET surface area in the range of 12–18 m²/g), and a retarder system based on sodium citrate or tartaric acid derivatives to manage the setting time of the subsequent self-leveler. Finished product viscosity, controlled to a target range of 400–800 mPa·s (Brookfield RVT, spindle #3, 20 rpm, 23°C), is achieved by trim-water addition at the final stage.

    Finished goods portfolio includes both one-component, ready-to-use liquid primers (packaged in 10 L and 25 L containers) and two-component systems where the liquid polymer dispersion is packaged separately from the dry cementitious powder and combined on-site using a slow-speed electric paddle mixer operating at 300–500 rpm. The predominant downstream end-use is in large-format retail and logistics flooring projects, where a continuous anhydrite screed surface exceeding 1,000 m² per floor plate must be primed and overlaid within a 48-hour closure window.

    A documented limitation concerns substrate residual moisture: on anhydrite screeds where the residual moisture content, as measured by the carbide method (CM method) per EN 13813, exceeds 0.5% for unheated constructions or 0.3% for underfloor-heated systems, the HS-360 primer film is susceptible to water-vapor-driven delamination in a pattern described as “mud-cracking” under scanning electron microscopy. Pre-drying of the screed to meet these thresholds is mandatory regardless of project scheduling pressure.

    Priming Aged Bituminous Substrates Prior to Cementitious Overlay

    Bitumen-contaminated concrete surfaces and aged mastic asphalt screeds present an exceptional adhesion challenge due to the thermoplastic nature of bitumen, its low surface energy (typically in the range of 25–35 mN/m as determined by contact angle goniometry with diiodomethane and water test liquids per the Owens-Wendt method), and the migration of oily plasticizer fractions that poison the hydration of cement at the interface. HS-360, functioning as the continuous phase in a water-based isolating primer, is applied directly to mechanically abraded bitumen surfaces (surface profile ≥ CSP 3 as defined by ICRI Guideline 310.2R) and dries to a film exhibiting both sufficient cohesive strength to bridge residual bitumen domains and sufficient alkali resistance to remain intact when in contact with a wet cementitious overlay at pH levels approaching 12.5.

    Applicable standards include the German DAfStb guideline for concrete repair (Richtlinie für Schutz und Instandsetzung von Betonbauteilen, Part 2, regulating substrate preparation requirements), along with the Swiss SIA 252 technical leaflet for bonded cementitious overlays on asphalt substrates. In formulation practice across Central European rehabilitation projects, HS-360 has been incorporated at concentrations of 18 wt% to 26 wt% within the primer liquid phase, with the specific dosage modulated according to the softening point of the target bitumen layer (determined by the ring-and-ball method per EN 1427:2015). Bitumens with softening points below 60°C demand the higher end of the polymer range to compensate for greater plasticizer mobility.

    Manufacturing workflow in this niche requires high-shear dispersion equipment capable of generating a Hegman grind below 30 μm to ensure that the particulate filler package—typically a combination of quartz flour (SiO₂ > 99%, top-cut 50 μm) and a lamellar clay thickener such as attapulgite—is fully de-agglomerated without applying excessive shear that would mechanically destabilize the VAE latex. Production records from a Swiss specialty manufacturer indicate a preferred single-shaft disperser configuration with a 45° toothed disc rotating at a tip speed of 15–22 m/s for a duration of 20–30 minutes per batch, followed by a maturation period of 12 hours under slow sweep-blade agitation to allow full development of the attapulgite gel network. The finished liquid is characterized by a thixotropic index (ratio of viscosity at 1 rpm to that at 10 rpm) exceeding 4.0 as measured by a Brookfield RVT viscometer, ensuring non-sag application on vertical bitumen-coated foundation walls.

    End-use products are almost exclusively two-pack systems, consisting of the HS-360-based liquid component and a separate bagged cement component based on a blend of ordinary Portland cement (CEM I 42.5 N per EN 197-1) and calcium aluminate cement to provide rapid setting and early water resistance. The two components are mixed at the jobsite in a weight ratio of approximately 1:2.5 (liquid:powder) using a forced-action paddle mixer. The resulting slurry, with a pot life of 45–60 minutes at 20°C, is applied by brush or roller at a wet-film thickness sufficient to yield a dry-film thickness between 0.3 mm and 0.8 mm. These systems are distributed under product descriptions such as “bitumen bridging primer,” “asphalt isolating slurry,” and “multi-substrate bonding coat.” Field experience on a rail infrastructure refurbishment project in Austria documented cohesive failure within the aged bitumen substrate itself—at a pull-off stress of 0.45 MPa—rather than adhesive failure at the primer interface, validating the functional performance of the HS-360-based formulation when the bitumen substrate retains sufficient internal strength to satisfy the project specification.

    An operational incompatibility of note: HS-360-based primers should not be applied over bitumen surfaces treated with solvent-based cold primers or cutback bitumen emulsions within the preceding 72 hours. Residual aliphatic or aromatic hydrocarbon solvents entrapped within the bitumen matrix can plasticize the VAE film, producing a soft, tacky interlayer with compromised load-transfer capability between the overlay and the structural substrate.

    Alkali-Resistant Bonding of Tile Adhesive to Precast Concrete Panels in Curtain-Wall Facades

    Precast architectural concrete panels, often produced with Class C fly ash substitution at replacement levels of 20% to 35% by mass of cementitious binder and subjected to accelerated steam-curing cycles at 60°C to 80°C for 12 to 18 hours post-casting, develop a dense, closed surface layer with minimal capillary porosity. The subsequent direct application of a polymer-modified cementitious tile adhesive without a dedicated interface agent routinely results in adhesive failures at stresses below 0.3 MPa, well under the dynamic wind-load and thermal-expansion demands exerted on a high-rise ventilated facade system. An HS-360-based interface agent, roll-applied to the precast panel in the factory before shipment or applied by the installer on-site, creates a bonding layer with documented pull-off strengths exceeding 1.0 MPa after 7-day conditioning at 23°C/50% RH followed by 7-day water immersion per EN 12004-2:2017, the harmonized standard for cementitious tile adhesives.

    Compliance landscape is dominated by EN 12004-2:2017 (Annex A.6.2, adhesion strength after water immersion, and Annex A.6.3, adhesion strength after heat ageing at 70°C) and the complementary performance specification EN 12002:2008 for deformability classification. For projects executed within jurisdictions referencing the International Building Code, the relevant documents are ANSI A118.4 and A118.15, with the latter governing enhanced-performance adhesives requiring shear bond strengths not less than 200 psi (1.38 MPa) after water immersion at 21°C for 7 days. HS-360 is used in these interface agent formulations at levels of 20 wt% to 28 wt% on total liquid weight, the elevated polymer content serving to accommodate the differential thermal movement between the ceramic tile layer (coefficient of thermal expansion approximately 6 × 10⁻⁶ /K) and the concrete backing panel (approximately 10 × 10⁻⁶ /K).

    Process engineering for these products typically takes place on a batch disperser platform not dissimilar to those described above, but with the additional incorporation of a coalescing agent—most commonly 2,2,4-trimethyl-1,3-pentanediol monoisobutyrate at 2 wt% to 4 wt% on polymer solids—to ensure film formation under the variable climatic conditions encountered on exposed construction sites. The manufacturing sequence differs from that of the render primer in one critical respect: a preservative package compliant with the EU Biocidal Products Regulation (EU) 528/2012 and capable of in-can preservation against both bacterial and fungal contamination (validated via challenge testing per ISO 11930:2019) must be dosed into the finished product at the let-down stage after the batch temperature has fallen below 40°C, to avoid thermal degradation of the isothiazolinone-based active substances.

    Commercial finished products are white or light-grey liquids with a solids content of 45% to 55% by weight per ISO 3251:2019, packaged primarily in 25 kg HDPE drums or 200 kg steel drums for factory application. They are marketed under terms that reflect their substrate-specific function: “precast concrete bonding agent,” “facade adhesion promoter,” and “tile adhesive primer concentrate.” The largest specification-driven demand originators are facade engineering firms and building envelope consultants who mandate third-party witnessed pull-off testing on project-specific mock-up panels before approving the primer for production application on the tower block.

    On facades incorporating aluminum-framed curtain-wall elements adjacent to tiled precast panels, published data indicates that the HS-360-based interface agent should be applied exclusively to the concrete surface and must be allowed to cure to a tack-free state (typically 2 to 4 hours at 23°C/50% RH) before the adhesive is combed over it. Application over uncured primer has been observed in scanning electron micrographs to produce a mixed interphase layer of unpredictable composition, contributing to bond-strength coefficients of variation exceeding 25% in on-site pull-off test programs conducted across multiple panels.

    Sheet Waterproofing Membrane Adhesion on Green Concrete

    Below-grade waterproofing of reinforced concrete structures—including basement slabs, retaining walls, and tunnel linings—employing fully bonded sheet-applied membranes (typically high-density polyethylene with a pressure-sensitive adhesive backing, or bentonite-geotextile composites) demands that the concrete substrate exhibit a surface tensile strength not less than 1.5 N/mm² and be free of laitance, curing compound residues, and standing water. An HS-360-based substrate primer has been incorporated into manufacturer-recommended installation protocols to regularize the bonding surface, particularly on “green” concrete where hydration is incomplete and surface alkalinity reaches pH 13+. The VAE polymer's carboxyl functionality provides specific adhesion to both the cementitious substrate and the adhesive layer of the membrane, as inferred from cross-cut adhesion testing per ASTM D3359 (method B, 2 mm spacing) where classification 4B or 5B is routinely recorded.

    Standards governing this application are dominated by ASTM D7832-14 (Standard Guide for the Use of Self-Adhering Waterproofing Membranes) and the British Standard 8102:2022 (Code of practice for protection of below-ground structures against water ingress). Manufacturers of proprietary sheet-membrane systems typically publish their own application specifications, which may incorporate HS-360-based primers as part of a warranted system for which a single-source warranty covering both the membrane and the primer is issued. Formulation specifications employ HS-360 at 15 wt% to 20 wt% on total liquid, the lower polymer demand relative to tile-adhesive interface agents reflecting the fact that the sheet membrane itself accommodates structural movement through bulk deformation, reducing the strain imposed on the adhesive interphase.

    Manufacturing procedures for this product category are characteristically simple: the primer is a low-solids, low-viscosity liquid designed for spray or roller application at high coverage rates (5–10 m²/L), and is produced by straightforward blending in a side-entry turbine mixer at 900–1,200 rpm. The liquid typically contains no mineral filler, relying on HS-360 for both the binding and film-forming functions. A wetting agent, introduced at 0.1 wt% to 0.5 wt% to suppress surface tension below 35 mN/m as measured by the Du Noüy ring method per ISO 304:1985, is added to promote penetration into residual surface dust and micro-roughness. The finished product is packaged in 20 L HDPE pails with a tamper-evident seal and is shipped to waterproofing subcontractors operating on multi-tower residential basement projects.

    Products are sold under function-driven names including “waterproofing membrane primer,” “substrate conditioner for sheet membranes,” and “bonding agent for green concrete.” The critical operational limitation concerns application to concrete less than 7 days old (at 20°C): when the substrate continues to undergo autogenous shrinkage and residual formwork restraint generates microcracking at the surface, the primer film may bridge these cracks initially but subsequently fail cohesively under continued crack-width expansion. A crack-bridging test conducted per EN 1062-7:2004 on primed concrete specimens subjected to controlled crack opening at a rate of 0.1 mm/minute demonstrates loss of bridging function at crack widths exceeding 0.3 mm for the unmodified primer, though incorporation of 2 wt% to 5 wt% of an aqueous acrylic thickener can extend this limit to approximately 0.5 mm without exceeding the viscosity thresholds for spray application.

    Table 2 — HS-360-Based Primer Performance Under Accelerated Ageing Conditions (ISO 6270-2:2017 Condensation Atmosphere)
    Ageing Duration (h)Pull-Off Strength (MPa)Failure LocationGloss Retention (%)Visual Observations
    0 (control)1.22 ± 0.18100% cohesive in concreteUniform film; no defects
    5001.15 ± 0.2490% cohesive; 10% adhesive at edges82Isolated edge blisters, < 2 mm diameter
    1,0000.98 ± 0.3165% cohesive; 35% adhesive61Widespread microblistering; film intact
    2,0000.72 ± 0.4240% cohesive; 60% adhesive35Film softening and re-emulsification observed

    Testing conducted on a formulation containing 18 wt% HS-360 in the liquid primer phase, applied to a C30/37 concrete substrate wire-brushed to ICRI CSP 4 profile. Data reported as mean of 6 replicates ± one standard deviation. The progressive shift in failure location from cohesive-within-substrate to adhesive-at-the-interface indicates water-induced degradation of the polymer-substrate bond under extended condensation exposure, a finding relevant to tropical basement environments where ambient conditions sustain surface condensation for prolonged durations.

    The practical implication for the waterproofing contractor is that an HS-360-based primer, while adequate for temporary moisture exposure during construction, is not designed to function as a permanent water barrier in isolation. Its role is confined to providing a transient bonding bridge until the sheet membrane is installed and the structural protection against water ingress is in place. Specification of this primer for permanent immersion or for applications where hydrostatic pressure exceeds 0.5 bar (5 meters hydraulic head) is contraindicated and lies outside the material's technically validated performance envelope.

    Free Quote

    Competitive HS-360 VAE Emulsion for Primers & Interface Agents prices that fit your budget—flexible terms and customized quotes for every order.

    For samples, pricing, or more information, please contact us at +8615380400285 or mail to sales2@liwei-chem.com.

    We will respond to you as soon as possible.

    Tel: +8615380400285

    Email: sales2@liwei-chem.com

    Inquiry

    Get Free Quote of Anhui Liwei Chemical Co., Limited.

    Flexible payment, competitive price, premium service - Inquire now!

    Certification & Compliance
    More Introduction

    The HS-360 emulsion is a carboxylated, high-ethylene-content vinyl acetate-ethylene (VAE) copolymer dispersion designed specifically for waterborne primer and interface agent formulations. Its polymer architecture integrates an ethylene comonomer fraction of 18 ±2 wt%, permanently internal plasticization that depresses the minimum film formation temperature (MFFT) to 0°C without the addition of volatile coalescing aids. The dispersion is stabilized with a surfactant/colloid system free of alkylphenol ethoxylates (APEO) and demonstrates shear stability sufficient for high-speed dissolver and airless spray equipment.

    Table 1. Physical and chemical attributes of HS-360 VAE emulsion
    PropertyTest MethodTypical Value
    Solids contentISO 3251 (2 h at 105°C)55 ±1 %
    pHISO 9764.0 – 5.5
    Brookfield viscosity (spindle 4, 20 rpm, 23°C)ISO 25551500 – 3000 mPa·s
    Minimum film formation temperatureISO 21150°C
    Mean particle sizeISO 22412 (dynamic light scattering)280 – 320 nm
    Volatile organic compounds (ready‑to‑use primer)ISO 11890‑2 (Method B)<1 g/L
    Freeze–thaw stabilityASTM D7149‑05 (modified, 3 cycles)Pass (no coagulum)

    The emulsion is produced via continuous high‑pressure polymerization in a stirred‑tank reactor cascade operating between 150 and 200 bar. Ethylene content is controlled to achieve a glass transition temperature (Tg) of approximately −5°C in the dry polymer, as measured by differential scanning calorimetry (ISO 11357‑2), which is significantly lower than the +8 to +15°C range typical of conventional VAE grades used in construction adhesives. This feature eliminates the need for external coalescing solvents—a critical advantage in indoor primer applications where compliance with low‑emission schemes such as AgBB, M1, and BREEAM is mandatory. The difference from conventional VAE emulsions manifests not only in the MFFT but also in the degree of internal plasticization, which remains stable over the service life and does not migrate to the interface, unlike low‑molecular‑weight coalescents.

    Why Is the Absence of Coalescing Agents in High‑Performance Primers Critical?

    Coalescing agents such as butyl glycol or Texanol are commonly added to latex binders to temporarily plasticize polymer particles during film formation, enabling complete coalescence at temperatures below the MFFT of the base polymer. In a primer system based on a VAE with an MFFT of 7–12°C, 3–5 wt% coalescent on binder solids is typically required to depress the MFFT to <2°C. These high‑boiling solvents remain in the dried film for weeks and are gradually released as volatile organic compounds (VOC), prolonging indoor air contamination. More critically, residual coalescent acts as a permanent internal plasticizer, reducing the primer’s cohesive strength and impairing adhesion to the substrate over time. A pull‑off adhesion study conducted in accordance with ASTM D4541 on C30/37 concrete slabs (surface tensile strength ≥ 1.5 MPa) revealed that after 28 days of curing at 23°C/50% RH, an HS‑360‑based primer without coalescent delivered a mean adhesion strength of 1.7 MPa with cohesive failure in the concrete, whereas a coalescent‑containing VAE primer (MFFT 2°C after addition) averaged only 1.1 MPa and failed adhesively at the concrete–primer interface. Under cold‑weather application (3–5°C), the performance gap widens: the coalescent‑containing system failed to form a coherent film, exhibiting mud‑cracking and adhesion below 0.5 MPa, while HS‑360 reached 1.4 MPa. Formulators targeting the EU Decopaint Directive limit of 30 g/L VOC for waterborne primers can thus forego coalescents entirely, while maintaining film integrity at temperatures approaching freezing—a combination not achievable with conventional VAEs possessing MFFTs above 4°C.

    Rehabilitation and repair mortars require interface bonding agents that permit rapid progress without extended flash‑off times. When an HS‑360‑based slurry is trowelled or sprayed onto mechanically prepared concrete (surface profile CSP 4–6 per ICRI Guideline No. 310.2R), the low static surface tension of the emulsion (38 mN/m, Wilhelmy plate) promotes penetration into microcracks and capillary pores. Subsequent application of a cementitious repair mortar must proceed within the open‑time window, typically 30–60 minutes at 20°C and 65% RH. Critical to this process is the non‑retardation of cement hydration. Polymers stabilized with high‑molecular‑weight poly(vinyl alcohol) often delay tricalcium silicate hydration, but HS‑360’s surfactant/colloid system, which does not rely on thick protective colloid layers, results in a setting time (Vicat, EN 196‑3) of 210 minutes for a CEM I 42.5R paste containing 10% emulsion solids, compared to 195 minutes for the neat cement paste—a mere 8% retardation. In contrast, an acrylic latex dispersion at the same polymer loading can extend setting time beyond 300 minutes due to calcium ion complexation by carboxylate groups. Application viscosity for spray‑applied HS‑360 slurries, formulated with a 1:3 polymer‑to‑filler ratio (filler: 325 mesh calcium carbonate), typically measures 2500–4000 mPa·s (Brookfield RV, spindle 5, 20 rpm), which ensures adequate transfer efficiency through a hopper gun with a 6 mm nozzle. This rheology allows the operative to apply a continuous, pinhole‑free film without sagging on vertical substrates.

    When Substrate Alkalinity Exceeds pH 12.5—Hydrolytic Stability Limits

    Alkaline hydrolysis is a primary failure mode for vinyl ester polymers in contact with fresh concrete, whose pore solution maintains a pH of 12.5–13.5 for months. Acetate ester groups undergo saponification, leading to chain scission and loss of mechanical integrity. The ethylene comonomer in HS‑360 introduces a stable C‑C backbone segment that physically hinders hydroxyl ion access and dilutes the ester site concentration. Accelerated aging was simulated by immersing free films (thickness 0.3 mm, conditioned 28 days at 23°C/50% RH) in saturated calcium hydroxide solution (pH 12.6) at 40°C. Table 2 summarises the retention of tensile properties.

    Table 2. Retention of tensile strength and elongation in alkaline medium (saturated Ca(OH)2, 40°C)
    Emulsion typeEthylene content (wt%)Time to 20% loss of elongation (days)Strength retention after 28 days (%)
    HS‑360 VAE18 ±2>9092
    Standard VAE (primer grade)8–1014–2165
    Pure acrylic (MMA/BA copolymer)>9095

    Pure acrylic dispersions deliver outstanding alkaline resistance but require added surfactants to achieve wetting on dusty or low‑energy substrates, and their higher raw‑material cost constrains use in large‑area civil works. HS‑360’s internal ethylene‑derived hydrolytic stability approaches that of acrylic chemistry while retaining the wetting and cost profile of a VAE. The practical boundary remains that any primer applied over a highly alkaline, laitance‑covered surface will fail adhesively unless mechanical preparation exposes sound, capillary‑active concrete. Surface tensile strength after preparation should be verified in situ by pull‑off testing (EN 1542) and should exceed 1.0 MPa before primer application.

    Interface Agent Formulation Viscosity and Wetting Kinetics

    The dynamic surface tension behavior of a primer binder dictates its ability to wet low‑porosity substrates within the short open time available. Measurements with a bubble‑pressure tensiometer (Krüss BP100) at a surface age of 100 ms give a dynamic surface tension of 42 mN/m for HS‑360—sufficiently low to spread evenly on vitrified ceramic and steel, where conventional surfactant‑poor VAEs can exhibit values above 55 mN/m and cause retraction defects. The neat emulsion shows distinct shear‑thinning: a power‑law index of 0.58 over the shear‑rate range 0.1–100 s⁻¹ (Physica MCR 302, cone‑plate geometry , 50 mm). This characteristic enables low resistance during roller application yet maintains film thickness uniformity on vertical surfaces. When loaded with 50 wt% 400 mesh calcium carbonate filler, the low‑shear viscosity rises to 12 000–15 000 mPa·s, giving a trowel‑grade non‑sag consistency. The formulation difference from pure acrylic binders is operationally significant: acrylic‑based primers frequently demand separate wetting‑agent addition, which introduces foam and necessitates a defoamer adjustment step, increasing batch‑cycle time and the risk of pinhole defects in the cured film. HS‑360 eliminates that adjustment because the colloidal package already provides the required dynamic wetting.

    The HS‑360 emulsion is supplied in 200 kg polyethylene drums, 1000 L IBC totes, and bulk tankers. Storage temperature must remain between +5°C and +35°C; freezing causes irreversible coagulation. Shelf life in unopened original containers is 6 months from production date. The product is compatible with common primer fillers—325–400 mesh calcium carbonate, quartz flour (50–100 µm), and titanium dioxide pigment—and can be thickened with alkali‑swellable acrylic associative thickeners without coagulation or seeding. Standard industrial hygiene practice requires local exhaust ventilation during prolonged spray application to control aerosol exposure below the occupational exposure limit of 10 mg/m³ for inhalable dust. Formulated primers should be protected from frost and direct sunlight during transport and storage on site.