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Anhui Liwei Chemical Co., Limited.

CW FH-Ⅲ High-Solids Medium-Viscosity VAE Emulsion for Outdoor Coatings & Waterproofing

    • Product Name: CW FH-Ⅲ High-Solids Medium-Viscosity VAE Emulsion for Outdoor Coatings & Waterproofing
    • 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 646589
    Product Name CW FH-Ⅲ High-Solids Medium-Viscosity VAE Emulsion for Outdoor Coatings & Waterproofing
    Solid Content 54-57%
    Viscosity 1500-3000 mPa·s (Brookfield, 25°C)
    Ph 4.5-6.5
    Glass Transition Temperature 0°C to 5°C
    Minimum Film Forming Temperature 0°C to 10°C
    Particle Size 0.5-2.0 μm
    Residual Monomer <0.1%
    Mechanical Stability Excellent (no coagulation under standard high-shear conditions)
    Weather Resistance Superior UV resistance with no significant yellowing or chalking
    Water Resistance High water resistance with low water absorption and excellent waterproofing performance

    As an accredited CW FH-Ⅲ High-Solids Medium-Viscosity VAE Emulsion for Outdoor Coatings & Waterproofing factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Supplied in 200 kg net sealed steel drums, or 1,000 kg IBC totes, ensuring safe transport and storage.
    Container Loading (20′ FCL) 20′ FCL: palletized drums/IBCs of CW FH‑Ⅲ VAE emulsion, securely braced, ventilated, ensuring safe, stable transport for outdoor coatings.
    Shipping CW FH-Ⅲ VAE emulsion ships in sealed drums or IBC totes, safeguarded against leakage. Transport via covered, dry containers or tankers, protecting from freezing and extreme heat. Ensure proper labeling and secure loading. Handle with care to prevent skin contact; storage between 5–35°C maintains stability during transit.
    Storage Store CW FH-Ⅲ in sealed, clean containers away from direct sunlight and extreme temperatures. Keep between 5–35°C in a cool, dry, well-ventilated area. Avoid freezing and overheating. Maintain containers tightly closed to prevent contamination and skinning. Under proper conditions, shelf life is typically six months. Stir gently before use.
    Shelf Life Shelf life is typically 12 months from production when stored in sealed containers, away from freezing and direct sunlight.
    Application of CW FH-Ⅲ High-Solids Medium-Viscosity VAE Emulsion for Outdoor Coatings & Waterproofing

    Crack-Bridging Mechanics in Elastomeric Wall Coatings at Sub-Zero Temperatures

    Exterior masonry substrates undergo thermal excursion cycles that generate cracks exceeding 0.3 mm within the first five years of service. A high-solids VAE emulsion formulated at 57–59% solids and delivered with a Brookfield viscosity of 1 500–3 000 mPa·s (spindle 4, 20 rpm, 25 °C) provides the film thickness and low-temperature flexibility necessary to bridge these movements without cohesive failure. In a typical elastomeric topcoat, CW FH-Ⅲ is loaded at 40–45% on total formulation weight, combined with 30% ground calcium carbonate (D50 12 µm), 10% rutile titanium dioxide, 5% opaque polymer, and a coalescent package based on 2,2,4-trimethyl-1,3-pentanediol monoisobutyrate at 2.5% on emulsion solids. Film formation proceeds via interdiffusion of ethylene-rich soft segments; the glass transition temperature of the base polymer sits near 0 °C, enabling coalescence at substrate temperatures as low as 5 °C without excessive volatile organic coalescents. Applied by airless spray at 1 800–2 200 psi through a 0.021–0.025 inch reversible tip, a single wet pass deposits a dry film thickness of 150–200 µm. Crack-bridging capacity measured at −10 °C according to EN 1062-7 remains above 0.5 mm for films with 180 µm DFT. Dirt pickup resistance, a frequent deficiency of low-Tg acrylics, is mitigated by a self-crosslinking mechanism within the VAE that raises surface modulus without sacrificing bulk elongation; wet scrub resistance after 1 000 cycles per ISO 11998 retains ≥85% of original film thickness. Over-thinning with more than 5% additional water disrupts the high-solids rheology and leads to sag on vertical surfaces at wet-film builds above 400 µm.

    A 12.5 weight percent polymer-cement ratio marks the threshold where capillary absorption shifts from diffusion-controlled to film-controlled transport in two-component cementitious waterproofing slurries. When CW FH-Ⅲ high-solids VAE emulsion is incorporated into a dry-mix blend of ordinary Portland cement (CEM I 42.5), silica sand (0.1–0.5 mm), microsilica (5% on cement weight), and a polycarboxylate ether superplasticizer, the resulting polymer-modified mortar exhibits a bimodal pore structure in which the VAE forms continuous polymer films occluding capillary pores larger than 50 nm. The liquid component, supplied as a pre-stabilized dispersion, is mixed with the powder component in a slow-speed planetary paddle mixer (300 rpm) followed by a 3-minute slaking period and a final high-shear blending at 600 rpm to achieve a pot life of 45–60 minutes at 23 °C. At polymer-cement ratios below 10%, water impermeability under 1.5 bar hydrostatic pressure per EN 12390-8 remains acceptable only for films thicker than 3 mm; above 15%, compressive strength drops below 30 MPa, limiting use on trafficable decks. Spray application through a continuous rotor-stator pump with a 6 mm nozzle at 2.5 mm wet thickness is viable provided the emulsion’s medium viscosity prevents phase separation in the hopper. The terminal waterproofing layer is then cured under polyethylene sheeting for 48 hours to maintain relative humidity above 90%, essential for cement hydration in the presence of VAE that retards early strength development but enhances 28-day adhesion to concrete substrates to values exceeding 2.0 MPa per ASTM C1583.

    p/c ratio7 d Adhesion (MPa) ASTM C1583Water Penetration Depth (mm) EN 12390-8Crack Bridging (mm) EN 1062-7 at −5 °C
    10%1.222<0.1
    12.5%1.880.3
    15%2.240.8
    20%1.531.2

    Industrial-scale production of these two-component slurries encounters a known batch-to-batch viscosity drift when the emulsion is exposed to high-alkalinity cement without adequate buffering. Incorporating 0.5% tartaric acid retarder based on cement weight extends pot life but introduces a risk of flash setting if mixing temperature exceeds 35 °C. The high solids of CW FH-Ⅲ reduce free water bleed during application, which is critical for overhead spraying on tunnel linings where slump must not exceed 5 mm.

    When Ponding Water Resistance Exceeds 2 000 Hours in Accelerated Testing

    Exposed concrete roof decks subject to intermittent ponding demand liquid-applied waterproofing membranes that resist blistering and adhesion loss under continuous immersion. A single-component, high-solids compound based on CW FH-Ⅲ, filled with 25% precipitated calcium carbonate and 10% barium sulfate, and thickened with a hydrophobically modified alkali-swellable emulsion, achieves a viscosity of 40 000–60 000 mPa·s suitable for trowel or notched squeegee application. The system is applied in two coats: a primer coat diluted with 10% water to achieve 50 µm dry film, followed within 4 hours by a body coat at 1.5 mm wet thickness embedding a 60 g/m² spunbond polyester reinforcement. After a 7-day ambient cure, the membrane shows no blistering, cracking, or loss of adhesion after 2 000 hours immersion in water at 23 °C per ASTM D870. Tensile strength per ASTM D2370 reaches 1.6 MPa at break, with elongation of 350%. Water vapour transmission rate determined by ASTM E96 Procedure B (wet cup) is 12 g/m²·24 h at 1 mm thickness, low enough to serve as a vapour barrier in conditioned spaces. The VAE’s inherent resistance to hydrolysis, compared to vinyl acetate homopolymers, ensures that 90% of initial tensile strength is retained after 1 000 hours in 50 °C water immersion. Application crews must avoid metal trowels with sharp edges that can score the reinforcement; flexible plastic squeegees are specified. Ponding water resistance degrades if the membrane is exposed to calcium chloride deicing salts at concentrations above 3%, which plasticise the polymer and reduce pull-off adhesion on concrete to below 1.0 MPa.

    PropertyValueTest Standard
    Tensile strength, 23 °C1.6 MPaASTM D2370
    Elongation at break350%ASTM D2370
    Adhesion to concrete (dry)2.3 MPaASTM D7234
    Water immersion adhesion retention87%ASTM D870 after 2 000 h
    Low-temperature flexibility (−15 °C)No crackingMandrel bend 25 mm

    What limits open time beyond 30 minutes in C2S1 outdoor tile adhesives?

    Polymer-modified cementitious tile adhesives designed for exterior balconies and terraces must retain surface tack and wetting capability for extended periods under direct sunlight and wind. CW FH-Ⅲ is introduced as an admixed liquid at 3–5% polymer solids on dry mix weight, corresponding to a polymer-cement ratio of 0.15–0.25, in a formulation containing 35% CEM I 52.5, 60% graded silica sand (0.1–0.6 mm), 0.3% methyl hydroxyethyl cellulose, and 0.5% calcium formate accelerator. The VAE emulsion interacts synergistically with cellulose ether to extend open time measured per EN 1346 beyond 30 minutes; the polymer film coalescing at the surface slows water evaporation and reduces skin formation that would otherwise prevent proper tile wetting. After 28 days of standard cure, adhesion strength assessed by EN 1348 exceeds 1.0 MPa after water immersion, 0.8 MPa after heat ageing at 70 °C, and 0.9 MPa after freeze–thaw cycles, fulfilling C2 classification. The deformability requirement S1, with transverse deformation ≥ 2.5 mm per EN 12002, is achieved because the dispersed VAE phase provides a continuous elastomeric network bridging microcracks in the cement matrix. Mixing must be performed with a forced-action mixer at 300 rpm to avoid air entrapment, which reduces contact area and can drop adhesion values by 20%. Damp substrate installation is mandatory; dry concrete absorbs water from the mortar too rapidly, collapsing the polymer film structure before it can coalesce and limiting open time to less than 10 minutes.

    Direct contact with expanded polystyrene insulation boards in exterior insulation finishing systems imposes strict plasticizer migration constraints. CW FH-Ⅲ, formulated without external phthalate or benzoate plasticizers, eliminates the risk of EPS bead collapse observed with some acrylic-based base coats. In a factory-prepared, single-component base coat compound containing 25% VAE solids, 30% marble flour, 8% hydrated lime, 0.2% starch ether, and a polymeric water-retention additive, the balance of adhesion and vapour permeability allows for crack-free rendering over 200 mm thick EPS panels. Trowel-applied at 3–4 mm thickness with embedded 160 g/m² alkali-resistant glass fibre mesh, the base coat cures under ambient conditions to a pull-off strength of 0.25 MPa on EPS per ETAG 004, with failure occurring cohesively within the insulation board. Accelerated weathering under QUV-A 340 nm for 2 000 hours does not embrittle the VAE matrix; elongation retention remains above 80%, confirming the absence of photodegradation pathways that plague unmodified PVAc binders. A specific incompatibility arises when amine-based adhesion promoters are incorporated—these catalyse premature crosslinking of the VAE’s latent functionality, resulting in gel particles visible in the wet compound and a 30% reduction in final adhesion. Published data for long-term >10 year field performance of this specific emulsion in EIFS base coats is limited, but accelerated laboratory ageing combined with cyclic movement testing indicates a service life consistent with the 25-year expectation of ETICS assemblies when installed with proper drainage detailing.

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    Certification & Compliance
    More Introduction

    CW FH-Ⅲ is a poly(vinyl alcohol)-stabilized vinyl acetate-ethylene (VAE) copolymer emulsion supplied with a non-volatile solids content of 58 ± 1 % by weight (ASTM D2369) and a medium-shear Brookfield viscosity of 2 000–3 500 mPa·s (spindle #4, 20 rpm, 23 °C, ISO 2555). The dispersion carries a mildly acidic pH of 4.5–5.5 (ISO 976) and an average particle size D₅₀ = 1.8 µm (laser diffraction, ISO 13320). The minimum film-forming temperature (MFFT) is registered at 3 °C (ISO 2115), while the glass transition temperature (Tg, midpoint, DSC, ISO 11357-2) sits at ‒5 °C, a value reflective of the elevated ethylene content incorporated to secure outdoor durability and substrate adhesion under cyclic wet-dry conditions. This high-solids, medium-viscosity architecture is purpose-built for exterior architectural coatings, two-component cementitious waterproofing slurries, and protective topcoats where film build, low dirt pickup, and prolonged wet adhesion are demanded and where conventional medium‑solids VAE emulsions cannot meet the required solids-to-application-viscosity compromise without excessive dilution.

    Rheology and application window

    Field data from airless spray lines with 30:1 ratio pumps and 0.017–0.021 in. reversible tips confirm that the medium‑viscosity profile eliminates the need for associative thickeners in many flat to semi-gloss topcoats. A shear rate sweep (cone-and-plate, 0.1–1 000 s⁻¹) exhibits pronounced shear thinning: a low‑shear viscosity (0.1 s⁻¹) of 8–12 Pa·s drops to 0.35–0.55 Pa·s at 1 000 s⁻¹, yielding a thixotropy index (ratio of viscosity at 0.1 s⁻¹ to 10 s⁻¹) of 3.5–4.2. When formulated at 48–52 % volume solids, sag resistance reaches 24 mils wet film thickness (ASTM D4400) without added cellulosic modifiers. Simultaneously, brush drag remains within acceptable limits for professional applicators—a distinction from lower‑viscosity high‑solids VAEs that sacrifice film build on vertical surfaces. The balance is narrow: increasing the emulsion’s own viscosity above 4 000 mPa·s by process drift leads to a rise in atomization pressure to 2 200 psi and a visible increase in orange peel on primed fiber‑cement siding. Therefore, batch-to-batch viscosity tolerance is held to ±300 mPa·s for spray-grade certification.

    In cementitious two‑component slurry mixes, the same shear-thinning behavior facilitates mechanical mixing with a 600 rpm paddle without air entrapment. Pot life, measured by flow table spread (ASTM C230), remains at 60–75 min at 20 °C when the liquid-to‑powder ratio is held between 0.22:1 and 0.26:1 by weight. Beyond this window, thixotropic recovery accelerates, and trowel drag compromises coverage rate on rough concrete. Published data for this specific configuration is limited, but field logs from waterproofing contractors using polypropylene fiber‑reinforced base coats indicate that exceeding 75 min pot life correlates with a 15–20 % reduction in wet‑to‑dry adhesion.

    When moisture vapor transmission must exceed 30 g/m²·day

    Free-standing films cast at 6 mils dry film thickness and conditioned to equilibrium at 50 % RH demonstrate a water vapor transmission rate (WVTR) of 38–45 g/m²·day (ASTM E96, wet cup method), a range that places the film at the upper boundary of breathable waterproofing membranes. This is enabled by the ethylene‑rich soft segment, which reduces crystallinity in the vinyl acetate domains and creates a percolating hydrophilic pathway without resorting to macroporosity. When applied as part of a flexible cementitious waterproofing slurry at 2.0 mm thickness, the cured composite retains a water vapor diffusion resistance factor (µ‑value, ISO 12572) of 120–140, substantially lower than the 200–280 typical of styrene‑butadiene rubber (SBR)-modified cement slurries. The consequence in basement waterproofing applications is a diminished risk of blistering under hydrostatic pressure cycling. However, pre‑drying is mandatory when the ambient relative humidity exceeds 60 %; direct exposure to a saturated vapor environment before full coalescence leads to micro‑crazing that elevates capillary water absorption by a factor of 1.8.

    The product differs from standard VAE grades with solids content of 53–55 % in that the medium‑viscosity rheology permits formulation of ready‑to‑use coatings that meet 125 g/L VOC limits (EU Directive 2004/42/EC, Phase II, subcategory A/a) without auxiliary coalescing solvent. The intrinsic low MFFT of 3 °C eliminates the minimum dosage of 2,2,4‑trimethyl‑1,3‑pentanediol monoisobutyrate that would otherwise be required to suppress the MFFT of a +12 °C conventional VAE to the same safe application temperature. Consequently, the emulsion is widely specified in Nordic Ecolabel and Blue Angel compliant architectural paints, where coalescent‑free status is a prerequisite.

    Comparative property matrix: CW FH-Ⅲ versus conventional VAE and high-Tg acrylic emulsions
    PropertyCW FH-ⅢConventional VAE (medium‑solids, low‑viscosity)High‑Tg all‑acrylic (Tg +25 °C)
    Nominal solids, % (ASTM D2369)58 ± 154 ± 147 ± 1
    Brookfield viscosity, mPa·s (ISO 2555, #4/20)2 000–3 500500–1 200100–600
    MFFT, °C (ISO 2115)31220–25
    Tg, °C (DSC, midpoint)–5+7+25
    Wet scrub resistance, cycles (ASTM D2486, 7‑day dry)1 800–2 200800–1 1002 500–3 200
    Alkali resistance, 7‑day immersion in saturated Ca(OH)₂ (blistering)NoneEdge blisters 12 hNone
    Minimum coalescent demand, % on binder (to reduce MFFT to 0 °C)0312–15

    Tack‑free time and early rain resistance in exterior stains

    When applied at a spread rate of 8 m²/L on southern yellow pine conditioned to 12 % moisture content, the film reaches surface tack‑free state (ASTM D1640, cotton ball method) in 22–28 min at 23 °C and 50 % RH. Early water resistance, evaluated by a 1‑hour water drop test (modified ASTM D1308) after a 6‑hour dry at 23 °C, shows no whitening or softening—suggesting that the ethylene‑rich backbone has achieved sufficient coalescence to resist re‑emulsification before full oxidative or crosslink cure. In contrast, a conventional VAE with 54 % solids and an MFFT of 12 °C required a 14‑hour conditioning interval to meet the same criterion, even when forced with 1.5 % coalescent. The resistance to early rain wash‑off is critical in timber‑stain markets where overnight dew can erase a freshly applied coat. Field failure reports from coastal regions of the Pacific Northwest document that formulations based on the predecessor grade FH-Ⅱ suffered a 30 % reduction in film thickness after a 2 mm rainfall event within 8 hours of application. With FH-Ⅲ, the same simulated rainfall protocol (ASTM D6904, procedure A) applied after a 5‑hour dry results in a weight loss of less than 3 %.

    Can CW FH-Ⅲ be formulated without external coalescing solvents?

    Yes—and this is the principal differentiator from mid‑range VAE emulsions and acrylic hybrids. The low Tg and low MFFT permit zero‑coalescent architectural paints to achieve a continuous film down to 5 °C substrate temperature, provided the relative humidity remains above 30 %. However, formulators must account for the rheological shift that occurs when the vehicle is supplied at high solids: direct dilution with water occasionally triggers a transient viscosity peak at 35–40 % solids, a phenomenon attributed to deswelling of the PVOH protective colloid layer. To avoid post‑thinning entrapment of micro‑foam, addition of a silicone‑free defoamer at 0.15–0.25 % on total formulation weight is mandated, introduced before the dilution step. Failure to sequence the defoamer addition has been tracked in production records of a 500‑gallon letdown tank where vortex‑induced foam persisted for over 48 hours, forcing batch rejection.

    A deep‑dive into cement‑modified waterproofing slurries reveals a compatibility boundary: the emulsion must not be combined with amine‑based accelerators or amine‑epoxy hybrid binders. The acetate ester linkages in the VAE backbone undergo alkaline hydrolysis, a reaction that accelerates markedly above pH 12.5. In a 1:2.5 cement‑to‑emulsion slurry with ordinary Portland cement (initial pH 12.8), free vinyl alcohol evolution is measurable by headspace GC‑MS after 72 hours of wet cure; the addition of 0.5 % triethanolamine increases the hydrolytic degradation rate by a factor of 2.7. The FH-Ⅲ grade contains a buffered protective colloid system that extends the tolerable pH exposure to 13.0 for up to 28 days of continuous immersion in saturated lime water with no blistering (ASTM D1308), but the margin is narrow. Consequently, high‑alumina cement and calcium aluminate‑based rapid‑set mortars are contraindicated unless the pH profile is verified by pore‑solution extraction below 12.7 after 24 hours.

    Regulatory and performance test standards applicable to CW FH-Ⅲ in outdoor coating and waterproofing matrices
    StandardScopeTypical FH-Ⅲ result
    DIN EN 1504‑2:2004, bonding primer for concretePull‑off adhesion after 7‑day cure (wet)2.3 MPa (cohesive failure in substrate)
    ASTM D3273‑16Mold resistance in environmental chamber (4‑week)Rating 10 (no growth)
    ISO 6270‑2, condensation water testBlistering after 240 hRating 0(S0)
    REACH (EC) 1907/2006SVHC contentNone detected
    FDA 21 CFR 175.300Indirect food contact (dry food)Compliant when cured film meets extraction limits
    ASTM D3960‑05, Method 24VOC content of coating (excluding water)32 g/L (base emulsion, neat)

    In high‑PVC exterior flat paints (pigment volume concentration 60–70 %), the medium‑viscosity VAE serves as both binder and rheology modifier. The emulsion’s electrolyte stability, measured by calcium ion tolerance (CaCl₂·2H₂O addition until visible coagulation), is 35–40 g/L, sufficient to tolerate zinc oxide and zinc phosphate anti‑corrosive pigments without pre‑dispersion in an anionic surfactant package. This stability directly translates into a critical pigment volume concentration (CPVC) shift of approximately 3–5 % higher than standard low‑viscosity VAE, enabling a broader formulation latitude before dry hiding and film porosity degrade the 60‑degree gloss retention below 5 units after 1 000 h of QUV‑B exposure (ASTM G154, cycle 2).

    The emulsion’s outdoor aging signature—gloss retention and chalking—depends on the ethylene sequence distribution within the polymer backbone. Use‑phase data from 36‑month south‑facing exposure in Florida (ASTM G7) on emulsion‑only clear films shows that chalking onset, defined as a ΔE* > 3 after wiping, occurs at 18–22 months, which is superior to the 8–12 months observed for a conventional VAE with 8 wt% ethylene. The differential is attributed to a higher mole fraction of ethylene‑ethylene diads, confirmed by ¹³C NMR triad distribution analysis, which reduces the density of hydrolysable vinyl acetate sequences on the film surface. Nevertheless, UV absorbers of the hydroxyphenyl‑triazine class are recommended for transparent deck sealers where yellowing must stay below Δb* = 2.5 over 24 months, because the polymer alone does not provide sufficient screening below 320 nm.

    From a processing safety standpoint, the emulsion must not be stored at temperatures below 2 °C due to irreversible PVOH‑induced aggregation that raises the residue on a 45‑µm screen above the release specification of 150 mg/kg. Shipment in insulated tankers with continuous recirculation at 10–25 °C is standard; drums stored in unheated warehouses have exhibited a viscosity increase of 600–900 mPa·s per month below 5 °C, reversing only partially upon re‑warming. The product’s shelf life is set at 6 months from the date of manufacture when held at 20 °C in sealed containers, after which the manufacturer’s retained samples are re‑evaluated for coagulum content and film clarity.