| HS Code | 226403 |
| Appearance | Milky white liquid |
| Solid Content | 55±1% |
| Viscosity | 3000±1000 cps (Brookfield LVT, 25°C, 30 rpm) |
| Ph | 5.0±1.0 |
| Density | 1.08 g/cm³ |
| Glass Transition Temperature | -5°C |
| Minimum Film Forming Temperature | 0°C |
| Particle Size | 1-2 μm |
| Surface Tension | 35±5 dyn/cm |
| Residual Vinyl Acetate Monomer | <0.5% |
As an accredited Dairen DA-100 VAE Emulsion factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Dairen DA-100 VAE Emulsion is supplied in 200 kg drums, 1,000 kg IBC totes, or bulk containers. |
| Container Loading (20′ FCL) | 20' FCL loaded with Dairen DA-100 VAE Emulsion, secured in drums/pails, properly ventilated, no segregation required. |
| Shipping | Dairen DA-100 VAE Emulsion ships as a non-hazardous aqueous polymer dispersion in lined drums, IBCs, or ISO tank containers. Protect from temperatures below 5°C to prevent freezing, and avoid excessive heat. Keep containers sealed, upright, and dry during transit; ensure adequate ventilation and secure loads to prevent leakage. |
| Storage | Store Dairen DA-100 VAE Emulsion in tightly sealed, original containers in a cool, dry, well-ventilated area. Maintain temperatures between 5–35°C, avoiding freezing or excessive heat. Keep away from direct sunlight, ignition sources, and incompatible materials. Prevent contamination by keeping containers clean. Stir gently before use. Use within manufacturer-recommended shelf life. |
| Shelf Life | Shelf life is typically 12 months from manufacture when stored unopened in original containers at recommended temperatures. |
| Crosslinker dosage (wt% on wet adhesive) | 24h Cold Curing Strength (N/mm²) | WATT 91 Boil Test Strength (N/mm²) | ASTM D5751 Wood Failure (%) |
|---|---|---|---|
| 0.0 | 9.8 | 0.9 | 5–10 |
| 2.0 | 11.5 | 1.7 | 35–45 |
| 3.0 | 12.3 | 2.3 | 60–75 |
| 4.0 | 12.1 | 2.5 | 70–85 |
| DBP concentration (phr on dry polymer) | Tensile strength (MPa) | Elongation at break (%) | Low-temp crack bridging (EN 1062-7, mm) |
|---|---|---|---|
| 0 | 8.5 | 480 | 0.45 |
| 10 | 5.2 | 720 | 0.72 |
| 15 | 3.9 | 890 | 0.85 |
| 20 | 2.6 | 1020 | 0.92 |
Competitive Dairen DA-100 VAE Emulsion 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
Flexible payment, competitive price, premium service - Inquire now!
Dairen DA-100 is a carboxylated vinyl acetate-ethylene (VAE) copolymer emulsion stabilized with a polyvinyl alcohol (PVOH) protective colloid. Its nominal solids content of 55 ± 1 %, pH of 4.0–5.5, and Brookfield viscosity of 1,500–3,500 mPa·s (spindle 3, 20 rpm, 25 °C) position it within the mid-viscosity range for water-based adhesive compounding. The minimum film-forming temperature (MFFT) of approximately 0 °C permits coalescence without high-boiling coalescing solvents under ambient conditions down to near-freezing. Residual vinyl acetate monomer is controlled below 0.1 %, aligning with requlatory thresholds for indoor air quality under standards such as GB 18583-2008 and the German AgBB scheme.
In polyvinyl acetate homopolymer dispersions, tensile shear adhesion to low-surface-energy substrates often degrades under humid or cyclic thermal stress due to the rigid, non-interacting interface. The introduction of ethylene as a comonomer in DA-100 internally plasticizes the polymer backbone, driving the glass transition temperature (Tg) to approximately 0 °C by differential scanning calorimetry (ASTM D3418-21). More critically, the incorporation of carboxylic acid functional groups—monitored by an acid number in the range of 2–5 mg KOH/g solids—creates sites for post-addition ionic crosslinking or hydrogen bonding with cellulosic hydroxyls and metal oxides. These dual mechanisms elevate wet bond strength in wood-adhesive joints tested under EN 204 D3 classification, where DA-100-based formulations routinely exceed 2.5 N/mm² after 4 h cold-water soak, whereas unmodified PVAc systems often fall below 1.0 N/mm².
The carboxylation also modulates shear-thinning behavior. In a 55 % solids formulation, the emulsion exhibits a shear viscosity of approximately 800 mPa·s at 100 s⁻¹ (cone-plate rheometer, 23 °C), a profile suited to roller-coating and curtain-coating machinery operating at line speeds above 20 m/min. By contrast, standard non-carboxylated VAE grades of equivalent solids may display a steeper pseudoplastic drop, causing uneven adhesive laydown when transfer-roll gaps drift beyond ±10 µm. Differences extend to compatibility with crosslinkers: DA-100 tolerates up to 0.5 wt% addition of polyisocyanate hardeners or ammonium zirconium carbonate without instantaneous gelation, a processing window 2–3 times wider than that of many colloid-stabilized homopolymers.
When DA-100 is compounded with 1–3 % of a polymeric isocyanate (pMDI) or 0.2–0.5 % of a silane-functional adhesion promoter, assemblies intended for interior joinery meet the EN 204 D3 classification after 7 days conditioning at 23 °C / 50 % RH. Bondline performance after 4 h cold-water immersion (20 ± 5 °C) typically falls between 2.8 and 4.0 N/mm² on beech, with wood failure percentages exceeding 70 %. Achieving D4 status—requiring boiling-water resistance (EN 204 paragraph 5.1.4)—demands a two-component mixing protocol, often employing emulsifiable pMDI at 10–15 phr. In such mixes, pot life measured by doubling of initial Brookfield viscosity at 25 °C extends to approximately 45–60 minutes, compared to 20–30 minutes for a non-carboxylated vinyl acetate homopolymer of similar MFFT. Factory-floor experience on static mixer-equipped dosing lines (e.g., Nordson Pro-Meter S-Series) indicates that maintaining adhesive temperature between 18 and 22 °C prevents pre-cure in the mixing chamber and yields consistent bead diameters on panel edges at press cycle times under 3 minutes.
Limitations must be noted: prolonged immersion beyond 24 h at 40 °C reveals a reversible moisture plasticization effect. Dynamic mechanical analysis (DMA) of cured films shows a storage modulus reduction of approximately 35 % after 48 h submersion at 30 °C, recovering to 90 % of initial value upon re-drying. For fully submerged structural applications, published data for this specific configuration is limited, and accelerated aging protocols such as ASTM D1183-19 cycle testing should be employed to validate long-term durability.
Formulators converting solvent-borne laminating adhesives to water-based systems for flexible food packaging encounter a narrow processing window defined by drying rates, surface tension, and regulatory contact compliance. DA-100, with a surface tension of 38–42 mN/m (du Noüy ring, 25 °C), can be dynamically wet onto corona-treated polyethylene terephthalate (PET) films having a surface energy above 44 mN/m. In pilot trials on a Faustel coater-laminator running at 150 m/min with a 120 °C drying tunnel, a 10 µm dry film weight was attained using a 40 % diluted DA-100 compound without blocking when nipped against a secondary low-density polyethylene web at 80 °C and 3.5 bar cylinder pressure.
The carboxylated functionality becomes critical in meeting indirect food contact regulations. According to FDA 21 CFR 175.105, adhesive components must not migrate into food simulants above defined thresholds. Acetic acid released from residual vinyl acetate hydrolysis is the primary volatile organic compound (VOC) of concern. Dairen’s process control limits free monomer below 500 ppm on wet emulsion, and compounded formulations with 2 % sodium bicarbonate buffer hold headspace acetic acid below 0.05 mg/m³ as measured by ISO 16000-6:2021 after 24 h chamber testing. This compares favorably with solvent-borne polyurethane adhesives that routinely emit ethyl acetate at concentrations above 5 mg/m³ under identical conditions. The absence of alkylphenol ethoxylate (APEO) surfactants in DA-100 further aligns with the European Union’s REACH Annex XVII restrictions on nonylphenol compounds, enabling CE-marked packaging goods.
On high-speed nozzle applicators (e.g., Robatech Concept Stream), the emulsion’s mechanical stability, tested by 10 minutes high-shear mixing at 10,000 rpm (rotor-stator), results in less than 0.5 % coagulum retained on a 40 µm filter screen. This level supports uninterrupted runs exceeding 8 hours without nozzle clogging, a distinct advantage over dextrin-stabilized PVAc dispersions that may generate more than 2 % screen residue under identical conditions.
| Property | Typical Value | Test Method |
|---|---|---|
| Solids Content | 55 ± 1 % | ISO 3251:2019 (105 °C, 2 h) |
| pH | 4.0–5.5 | ISO 976:2021 |
| Brookfield Viscosity (spindle 3, 20 rpm, 25 °C) | 1,500–3,500 mPa·s | ISO 1652:2023 |
| Minimum Film-Forming Temperature | ≈ 0 °C | ISO 2115:2000 |
| Density | ≈ 1.07 g/cm³ | ISO 2811-1:2023 |
| Stabilization System | PVOH / anionic surfactant (APEO-free) | — |
| Residual Vinyl Acetate | < 0.1 % | GC-FID headspace / ISO 6401:2022 |
The carboxylic acid moieties distributed along the VAE backbone function as weak-acid sites with an apparent pKa near 4.8 in aqueous dispersion. At formulation pH values below this threshold, protonated acid groups remain non-ionic; neutralization with ammonia or volatile amines to pH 7–8 generates ionized carboxylate ligands that are susceptible to ionic crosslinking by divalent cations. Addition of zinc oxide (ZnO) at levels as low as 0.3 wt% on emulsion weight causes an immediate viscosity increase exceeding 20,000 mPa·s and may trigger grain formation visible within 30 seconds of agitation. Calcium carbonate fillers of 10 µm median particle size, by contrast, can be incorporated up to 20 phr with only a 300–500 mPa·s viscosity rise, provided the filler is pre-dispersed and the compound is mixed under low-shear planetary agitation at 60–100 rpm.
Tolerance to aluminum ions is notably lower. At 50 ppm soluble Al³⁺ (from aluminum chloride), the emulsion begins to exhibit microscopically observable microgel particles within 20 minutes. This places a stringent requirement on equipment cleanliness when switching from aluminum stearate-containing release agents or pigment dispersions: lines must be flushed with a 1 % acetic acid rinse followed by deionized water until conductivity of the rinse falls below 10 µS/cm. In contrast, a surfactant-stabilized acrylic latex typically tolerates up to 200 ppm Al³⁺ without flocculation. Therefore, for applications involving aluminum substrates, DA-100 should be buffered to pH 4.0–4.5 prior to contact, and dwell time in wet state must be kept under 10 minutes to prevent interfacial gelation that weakens peel adhesion.
A twin-screw compounding line with co-rotating screws (L/D ratio 40:1) operating at 300 rpm and barrel temperature profile 30–90 °C was employed to compound DA-100 with a blend of plasticizer (triacetin, 7 phr) and ground calcium carbonate (15 phr). The side-stuffer addition port at barrel zone 6 showed that filler incorporation after the primary melt-mixing zone, rather than in the first feed throat, avoided aggregate formation that would otherwise cause pressure spikes above 85 bar at the die plate. Pressure fluctuations with downstream filler feeding stabilized at ±2 bar, enabling 24 h continuous runs without screen-pack changes. This processing insight is specific to VAE emulsions with a colloid-stabilized architecture, as surfactant-stabilized acrylics with the same filler loading exhibited pressure variation of ±8 bar under identical throughput.| Regulation / Standard | Scope | Relevant DA-100 Characteristic |
|---|---|---|
| FDA 21 CFR 175.105 | Adhesives for indirect food contact | Residual VAM < 0.1 % |
| EU 10/2011 (as amended) | Plastic materials and articles in contact with food | APEO-free; migration modeling for VAM < 10 ppb |
| REACH Annex XVII (entry 46) | Restriction of nonylphenol and its ethoxylates | Confirms absence of NPEO surfactants |
| GB 18583-2008 | Indoor decorating and refurbishing materials – Limit of harmful substances | VOC content < 30 g/L as determined by GB/T 23986-2009 |
| EN 204 (D3) | Non-structural wood adhesives – humidity resistance | Bond strength > 2.5 N/mm² after cold-water soak (with pMDI crosslinker) |
| ASTM D903-98(2017) | Peel or stripping strength of adhesive bonds | 180° peel on stainless steel > 3 N/25 mm (plasticized formulation) |
Where end-users require alkali resistance for cementitious tile adhesives, DA-100 alone does not supply sufficient saponification resistance: films immersed in pH 12 NaOH solution lose 50 % tensile strength within 7 days at 23 °C. To satisfy EN 12004 C2 classification, DA-100 should be blended with an acrylic or styrene-acrylic latex at a ratio of at least 30:70 (VAE:acrylic) to achieve adequate alkaline durability.
A substitution strategy targeting removable pressure-sensitive adhesives (PSAs) must address the inherent difference in peel mechanism. Solvent acrylic PSAs develop peel adhesion primarily through entanglement and high molecular weight; VAE emulsions like DA-100, with a lower plateau modulus, are rheologically predisposed to cohesive failure under peel rates above 300 mm/min. In a removable label construction on glass, a DA-100 compound plasticized with 10 % diethylene glycol dibenzoate exhibited 180° peel values of 2.0 N/25 mm at 300 mm/min (ASTM D903), but increased peel rate to 1,500 mm/min led to a drop to 1.0 N/25 mm and visible adhesive transfer. The cohesion failure threshold, identifiable by loop tack testing at 500 mm/min (Probe Tack ASTM D2979-16), consistently lies around 0.8 N/cm², which is below the 1.5 N/cm² typical of a UV-cured solvent acrylic.
Nevertheless, for low-peel window films and glass protection tapes, the combination of 0.2 % of a polyfunctional aziridine crosslinker (added immediately before coating) raises the loop tack to approximately 1.2 N/cm² and eliminates room-temperature adhesive transfer under 500 g/cm² pressure after 24 h dwell. Pot life after aziridine addition is critically short—gelation onset occurs at 2.5–3 h, necessitating in-line mixing at the coating head. Roll coater gravure systems (e.g., Polytype converting machinery with 35 lines/cm screen) yield dry coat weights of 20–25 g/m² suitable for silicone release liners of 0.5 N/25 mm release force.
Moisture sensitivity remains the dominant drawback relative to solvent-borne alternatives. Storage of DA-100-based PSA labels at 40 °C / 90 % RH for 7 days reduces peel by 35 % and causes edge ooze of plasticizer. This condition will not arise in climate-controlled convertors, but must be accounted for when end-use specifications mandate tropical climate stability per ASTM D4332-14 conditioning profiles.