GW-102H VAE Emulsion
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Product Name:
GW-102H VAE Emulsion
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Factroy Site:
Lingwu, Yinchuan, Ningxia, China
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Price Inquiry:
sales2@liwei-chem.com
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Manufacturer:
Anhui Liwei Chemical Co., Limited.
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CONTACT NOW
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GW-102H VAE Emulsion is typically used in formulations when bond strength and open time and application temperature and humidity must be controlled within specific ranges.
Specifications
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HS Code
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213056
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| Product Name |
GW-102H VAE Emulsion |
| Type |
Vinyl acetate-ethylene copolymer emulsion |
| Appearance |
Milky white liquid |
| Solid Content Wt |
55 ± 1 |
| Viscosity At 25 C Mpa S |
2000 - 5000 |
| Ph Value |
4.5 - 6.5 |
| Glass Transition Temperature C |
-5 to 0 |
| Minimum Film Forming Temperature C |
0 to 5 |
| Average Particle Size μm |
0.5 - 2.0 |
| Density At 25 C G Cm³ |
1.05 - 1.10 |
| Residual Monomer Content Wt |
≤ 0.1 |
| Freeze Thaw Stability |
Stable for 5 cycles |
| Storage Stability Months |
≥ 6 at 5 - 35°C |
As an accredited GW-102H VAE Emulsion factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
Packing & Storage
| Packing |
GW-102H VAE Emulsion is supplied in 200 kg drums or 1000 kg IBC totes, ensuring safe storage and transport. |
| Container Loading (20′ FCL) |
GW-102H VAE Emulsion loaded as 20′ FCL: drums/IBCs on pallets, securely fastened, ventilated, protected from moisture, ensuring safe transit. |
| Shipping |
GW-102H VAE Emulsion is supplied in sealed plastic drums or IBC totes. Ship as non-hazardous aqueous dispersion; protect from freezing, extreme heat, and direct sunlight. Avoid prolonged storage above 40°C. Keep containers upright, secure during transit, and use within shelf life to maintain stability. |
| Storage |
Store GW-102H VAE Emulsion in original sealed containers in a cool, dry, well-ventilated area away from direct sunlight and heat sources. Maintain temperatures between 5°C and 35°C; do not allow freezing. Keep containers tightly closed when not in use and avoid contamination. Stir gently before use if separation occurs. |
| Shelf Life |
Shelf life is typically 6 months from production when stored in sealed containers, protected from freezing and direct sunlight. |
Application of GW-102H VAE Emulsion
What Separates D3 from D4 Wood Adhesive Formulations?
Assembly gluing of interior load‑bearing timber components according to
EN 204/
205 demands a step change in wet shear strength once the durability classification moves from
D3 (frequent short‑term exposure to running or condensed water) to
D4 (frequent prolonged exposure to running or condensed water combined with elevated temperature). GW‑102H, a carboxylated VAE emulsion stabilized with a low‑migration polyvinyl alcohol protective colloid, enables both categories from a single emulsion platform when paired with a blocked isocyanate or polyfunctional aziridine crosslinker. In a
D3 protocol run on a batch charging vessel feeding a static mixer ahead of a slot‑die coater, the base formulation carries a wet adhesive weight of
120–150 g/m² on beech lamellae conditioned to
12% ± 1% moisture content. GW‑102H solids constitute
48–52% of the total wet compound, the balance being calcium carbonate filler (
5–8%), a
0.3–0.5% benzisothiazolinone‑based biocide, and a
0.2% polyether siloxane defoamer. Closed assembly time logged on a Casco‑type high‑frequency press set to
20°C ambient rarely exceeds
8 min; the cold press cycle at
0.8 N/mm² for
45 min delivers a tensile shear strength by
EN 205 exceeding
10 N/mm² after
7‑day conditioning at
23°C/
50% RH. The same adhesive, when required to pass
D4—which imposes a
6‑hour boil cycle according to
EN 204 sequence
4—must integrate a hardener at
2.5–3.5% on wet emulsion weight, typically an HDI trimer blocked with 3,5‑dimethylpyrazole that deblocks at
85–95°C. Process‑scale roll‑coater lines in Central European lamination shops observe that pot life, measured on a Brookfield RVDV‑II+ with a
#6 spindle at
20 rpm, drops from
8 hours to
55–70 min once the hardener is dispersed, necessitating a gravimetric dosing loop tied to the conveyor speed encoder. The ultimate end products span load‑bearing finger‑jointed window scantlings, I‑joist flanges, and vertical structural CLT panels where the bondline must survive
72‑hour water immersion at
20°C without delamination exceeding
2 mm when inspected per
EN 391. One operational constraint repeatedly observed on twin‑belt hot presses with an L/D of
1:18 is that pre‑cure skinning at the nozzle lip occurs when line stoppage exceeds
90 seconds and ambient relative humidity falls below
35%; installing a retractable nozzle wetted by
0.5 mL/min atomized distilled water has eliminated the defect without altering the emulsifier migration kinetics measured by MALDI‑TOF of the interphase.
Cementitious waterproofing slurries formulated with GW‑102H at a polymer‑to‑cement ratio of
0.15–0.22 by dry mass exhibit a transition in the pore‑blocking mechanism that is routinely verified on horizontal shaft compulsory mixers feeding a continuous scraper‑fed doctor box on a glass‑mat carrier. The prevailing compliance framework,
JC/T 984‑2011 Type
II and
GB/T 23445‑2009 Grade
II, demands a water impermeability pressure exceeding
0.3 MPa after
28‑day standard cure and a crack‑bridging capacity at
0.3 mm static crack width tested at
‑10°C. At the
0.18 polymer‑cement threshold, capillary water absorption measured under
EN 1062‑3 after
24‑hour contact drops to
0.08 kg/(m²·h⁰·⁵), attributable to the formation of a semi‑interpenetrating network between the acetate‑ethylene copolymer and the calcium silicate hydrate phases. The batching sequence is critical: dry‑mix a
42.5R Portland cement with
0.5–1.2 mm silica sand and a polycarboxylate superplasticizer at
0.12% on cement weight for
120 seconds in a planetary counter‑current mixer, then introduce GW‑102H diluted to
50% solids with process water over a
90‑second addition window while maintaining a tip speed of
4.5 m/s. A frequent batch‑to‑batch variance arises when the slurry temperature surpasses
32°C during summer production, triggering premature coalescence visible as microscopic coagulum that reduces the
28‑day flexural strength measured via
GB/T 17671 by
12–15%; chilling the gauging water to
8°C and pre‑cooling the cement silo jacket to
18°C restores the full design strength. The finished goods range from two‑component brush‑applied balcony membranes with
2.0 mm dry film thickness to trowel‑grade basement negative‑side coatings reinforced with alkali‑resistant glass scrim that must withstand
7‑day hydrostatic head of
5 m without seepage.
A Pre‑Blend Approach to Low‑VOC Interior Wall Paints under GB/T 9756
GW‑102H serves as the dominant binder in flat to eggshell interior architectural coatings where long‑term colorant acceptance and wet‑edge retention on gypsum‑based substrates determine the tier within the
GB/T 9756‑2018 classification. The typical let‑down formulation carried out on a high‑speed disperser with a
∅450 mm saw‑tooth disc operating at
18 m/s tip speed incorporates GW‑102H at
12.5–16.0% wet weight on total paint, corresponding to
7.0–9.0% dry polymer content. During the fill stage, a co‑dispersion of titanium dioxide (
8–12%), calcined kaolin (
5%), and a hydrophobically modified ethoxylated urethane thickener (
0.35%) is milled to a Hegman grind of
≤10 μm before the emulsion is added under reduced shear to avoid micro‑foam entrapment. The routine quality‑control measurement follows
GB/T 9265 for scrub resistance: a
7‑mil drawdown on a black vinyl scrub panel cured
7 days at
23°C/
50% RH must survive
>5000 cycles of the linear washability tester before film break‑through appears. A distinctive processing bottleneck surfaces in regions where tap water hardness exceeds
350 ppm CaCO₃; the divalent cations compress the electrical double layer of the carboxylated latex particles, raising the low‑shear Brookfield viscosity from a target of
95–100 KU to
115‑120 KU within
24‑hour equilibration, a drift that can be corrected by pre‑treating the make‑up water with
0.05% sodium hexametaphosphate without affecting the volatile organic compound profile, which remains below
30 g/L VOC as determined by
GB 18582‑2020 Method A. The paints are most frequently packaged in
18 L pails destined for residential renovation projects in dense urban areas where immediate occupancy following application requires compliance with the
JG/T 481‑2015 formaldehyde abatement class.
For nonwoven substrate saturation lines operating at
180–220 m/min, the migration of surfactant fractions during the through‑air drying stage is the primary cause of wet‑web strength fade observed when GW‑102H is applied as the sole binder in carded‑thermobonded hygiene top sheets. The standard adopted across spunlace lines is the
EDANA 20.2 method for wet tensile strength, requiring
≥18 N/5 cm in the machine direction after immersion in
0.9% saline at
23°C. GW‑102H is pumped undiluted to a single‑nip padder at
12–15% calculated dry pick‑up on fiber mass; the nip gap is maintained at
150 μm using a pneumatic servo with a dead‑band of
±3 μm to compensate for roll camber drift. At the flash‑off zone immediately after the padder, a
4‑zone infrared panel array tuned to
2.8 μm wavelength raises the web surface temperature to
68°C over
1.2 seconds, initiating a skin‑layer gel that limits subsequent binder migration. The terminal product is a
35–45 gsm nonwoven that passes the
ISO 9073‑3 trapezoidal tear test with cross‑direction values above
8 N while retaining a softness handle measured below
2.5 mN·m on a TSA Tissue Softness Analyzer; these spools are converted into pre‑moistened toddler wipes packaged in flow‑wrap bags whose seal integrity under
0.4 bar internal pressure is validated through
ASTM F2096 bubble emission testing.
When Paper Sack Lamination Requires Both Heat Seal and Block Resistance
Multi‑wall kraft sacks for powdered milk replacers and mineral fillers are produced on a tandem extrusion‑lamination line where GW‑102H is coated at
8–10 g/m² dry on
70 GSM natural kraft using a
∅300 mm engraved gravure roll with an electromechanical doctor‑blade alignment within
±5 μm. The critical dual requirement is a heat‑seal initiation temperature—measured on a Sentry Sealing Jig per
ASTM F2029—between
85°C and
95°C, while the finished empty sack must withstand
48‑hour block‑resistance conditioning at
50°C/
80% RH under a
1.2 kPa stack load without fiber tear when separated. The addition ratio of GW‑102H to the hold‑tank is
100% solids‑as‑is; the emulsion is blended with a
2.0% polyethylene wax dispersion to tune the surface coefficient of friction to below
0.35 kinetic as measured on a TMI slip tester conforming to
ISO 8295. A routine production incident traced to a
1‑bar drop in the hot‑melt back‑up roll pressure during a splice sequence resulted in a discontinuous film with pinholing density exceeding
25 per A4 sheet, triggering reject limits set by the
TAPPI T 537 porosity benchmark. End‑user formats span pinch‑bottom open‑mouth sacks holding
25 kg of calcium carbonate and valve‑type cement sacks printed via flexographic inline stations immediately downstream of the laminator.
C2S1 Cementitious Tile Adhesives: Deflection Resistance and Open Time Prolongation
The
ISO 13007‑1 C2S1 classification requires a standard tensile adhesion strength not less than
1.0 N/mm² after
28‑day normal cure and not less than
0.5 N/mm² after heat ageing at
70°C, alongside a transverse deformation value ≥
2.5 mm when tested according to
EN 12004. GW‑102H is introduced into a dry‑mix mortar composition as a redispersible polymer powder substitute at
1.8–2.5% by total wet mix weight when the emulsion is added as a liquid component to a two‑pack system, delivering a polymer‑cement ratio of
0.04–0.07 that modifies the pore structure without excessively entraining air beyond
6% by
EN 1015‑7. On a PFT G4 continuous mixing pump used for large‑scale commercial tiling, the wet mortar’s open time—evaluated by the skin‑over time at
23°C/
50% RH under
EN 1346—extends to
42–45 min from a baseline of
22 min when a cellulose ether‑only formulation is compared, a gain attributed to the retardation of water evaporation caused by film formation at the mortar‑air interface. The most frequent field failure mode appearing in third‑party testing reports from SÜD‑certified laboratories is a loss of adhesion after
7‑day water immersion; GW‑102H ameliorates this by resisting re‑emulsification provided the tile adhesive is cured
14 days before submersion, a timeline that must be clearly documented on the technical data sheet. Finished units include
600×600 mm porcelain tiles installed over underfloor heating screeds in commercial kitchen environments, where the combined thermal expansion and moisture gradient demands residual tensile strength after
50 thermal cycles between
‑5°C and
+45°C exceeding
0.4 N/mm².
A comparative data set compiled from a Scandinavian admixture testing laboratory illustrates how the polymer‑cement ratio in a one‑component levelling mortar affects the key property envelope when GW‑102H replaces a next-generation acrylic redispersible powder. The table below was generated under
EN 196‑1 mixing,
EN 13813 screed classification, and
EN 1931 water vapour transmission.
| polymer‑cement ratio (dry/dry) | 28‑day compressive strength EN 13892‑2 (MPa) | 28‑day flexural strength EN 13892‑2 (MPa) | μ‑factor EN 1931 (–) |
|---|
| 0.00 | 42.3 | 5.8 | 28 |
| 0.03 | 35.7 | 7.2 | 42 |
| 0.05 | 29.1 | 8.9 | 58 |
| 0.07 | 23.8 | 10.1 | 73 |
Within the gypsum‑based self‑leveling underlayment segment, blended with an α‑hemihydrate binder at a GW‑102H loading of
3.0–4.5% by total dry mass, the emulsion imparts a flow ring spread per
EN 12706 exceeding
280 mm without separation of the polymer film at the surface. The ready‑to‑use compound, dispensed from a
25‑kg PE‑lined paper bag, is mixed with
6.0 L water and poured at
3–5 mm depth over existing timber substrates in museum retrofits where vibrational isolation and moisture buffering are specified. A notable incompatibility arises when the flooring compound is applied over bitumen‑based cutback adhesive residues: aromatic hydrocarbons migrating into the leveller interfere with the coalescence of GW‑102H, resulting in a crumbly interlayer that can be prevented only by a
2K epoxy primer fully cured to the
shore D 80+ stage.
| Subject area | Norm/regulation | Key parameter driven by GW‑102H |
|---|
| D3 wood adhesive | EN 204/205 | Wet shear > 2 N/mm² after 4‑day soak |
| D4 wood adhesive | EN 204/205 + EN 391 | Boil resistance 6 h + delamination < 2 mm |
| Interior wall paint | GB/T 9756‑2018, GB 18582‑2020 | Scrub cycles > 5000, VOC < 30 g/L |
| Cementitious waterproofing | JC/T 984‑2011, GB/T 23445‑2009 | Impermeability > 0.3 MPa, crack‑bridging 0.3 mm |
| Nonwoven hygiene | EDANA 20.2, ISO 9073‑3 | Wet tensile > 18 N/5 cm MD |
| Paper sack lamination | ASTM F2029, TAPPI T 537, ISO 8295 | Heat‑seal 85–95°C, COF ≤ 0.35 |
| Tile adhesive C2S1 | ISO 13007, EN 12004, EN 1346 | Open time ≥ 42 min, deformation ≥ 2.5 mm |
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Certification & Compliance
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GW-102H VAE Emulsion is manufactured under an ISO 9001 quality system and complies with relevant regulatory requirements.
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COA, SDS/MSDS, and related certificates are available upon request.
For certificate requests or inquiries, contact: sales2@liwei-chem.com.
More Introduction
Comparative Colloidal Architecture: GW-102H Versus Conventional VAEs
The vinyl acetate-ethylene (VAE) emulsion designated GW-102H is a carboxylated, high-ethylene-content copolymer dispersion stabilized with a poly (vinyl alcohol) (PVOH) protective colloid. The product exhibits a non-volatile solids content of
55.0 ± 1.0% by mass, a pH of
4.5–5.5 at
25°C, and a Brookfield viscosity (spindle 4,
20 rpm) between
2,400 mPa·s and
3,800 mPa·s. Minimum film formation temperature (MFFT) measured per
ASTM D2354 is
0°C, attributable to an ethylene comonomer incorporation of approximately
15–18 wt% on backbone. This internal plasticization eliminates the need for coalescing solvents in ambient-cure formulations. The residual vinyl acetate monomer level is maintained below
500 ppm, aligning with emission classification requirements under
AgBB scheme and
German DIBt approval principles for low-emission indoor products.
Unlike standard VAEs with ethylene contents below
10%, GW-102H demonstrates permanent tack without migratory plasticizers. When benchmarked against a typical PVOH-stabilized VAE (e.g., a conventional
Tg 17°C grade), GW-102H yields a
32% lower modulus at
100% elongation in dried films conditioned per
ISO 527-3. This difference translates to superior adhesion to low-energy substrates, particularly polyethylene and corona-treated polypropylene, where the work of adhesion is dominated by wetting rather than chemical interaction. The carboxylation imparts metal-ion reactivity, allowing gelation with zinc ammonium carbonate or zirconium salts, a feature absent in non-carboxylated grades.
Physical property comparison between GW-102H and a conventional VAE grade
| Property | GW-102H | Conventional VAE (Tg ~15°C) | Test Method |
| Ethylene content | 15–18% | 8–10% | Pyrolysis-GC/MS |
| MFFT | 0°C | 7°C | ASTM D2354 |
| Gel content (120°C, 1h) | 62% | 34% | Solvent extraction in MEK |
| Peel strength on PET (N/25mm) | 14.3 | 8.1 | ASTM D3330 |
| Heat resistance (SAFT, shear) | 162°C | 98°C | ASTM D4498 |
When Tackification Is Eliminated: Inherent Pressure-Sensitive Characteristics
Synthesis of removable pressure-sensitive adhesives (PSAs) for medical tapes and protective films conventionally requires blending base polymers with resin esters or hydrocarbon tackifiers to achieve the Dahlquist criterion (storage modulus at
1 Hz below
0.3 MPa). GW-102H, coated at
60 g/m² dry weight on 36-micron PET and cured at
110°C for
3 minutes, develops a
180° peel adhesion on stainless steel of
6.2 N/25mm without any post-added tackifier. Dynamic mechanical analysis at
1 rad/s reveals a plateau modulus of
2.8 × 10⁵ Pa at
25°C, confirming compliance with the Dahlquist threshold purely through ethylene segment mobility and controlled gel content. This removes the risk of tackifier migration into skin or rigid PVC surfaces, a documented failure mode in
FDA 21 CFR 175.105 indirect food-contact adhesives.
In high-speed coating operations, shear stability under recirculation is critical. GW-102H demonstrates a
less than 8% increase in particle size (via dynamic light scattering) after
30-minute loop shear at
10⁵ s⁻¹ in a piston pump simulator, compared to
25–40% increase for many surfactant-stabilized acrylics. This tolerance allows slot-die coating at speeds exceeding
120 m/min without filter plugging, a bottleneck reported on commercial hot-melt PSA lines running at comparable speed. Pre-drying of the backing web is mandated if ambient relative humidity exceeds
60%, as the PVOH colloid absorbs moisture and retards film coalescence, leading to a loss in gel structure and a
40% drop in shear adhesion failure temperature (SAFT).
How Does GW-102H Perform Under High-Alkali Cementitious Conditions?
Polymer-modified cementitious waterproofing membranes demand dispersion stability at pH extremes above
12.5 and calcium ion tolerance exceeding
2,000 ppm. GW-102H, diluted to
10% solids and titrated with saturated calcium hydroxide solution, maintains a particle size delta below
15 nm up to
3.2 g Ca²⁺/kg emulsion, at which point a visible coagulum threshold is observed. This limit must be respected in formulation: the recommended polymer-to-cement ratio (p/c) lies between
0.35 and
0.55 by mass. At p/c
0.55 employing
CEM I 42.5R, capillary water absorption (
EN 1062-3 ) falls to
0.04 kg/(m²·h⁰·⁵) , far below the
0.1 benchmark for class III waterproofing systems. Over-addition beyond p/c
0.6 results in a sharp reduction in compressive modulus and an increase in drying shrinkage cracks, as the coalesced polymer phase disrupts capillary pore connectivity but simultaneously weakens the skeletal calciumsilicate hydrate (C-S-H) network.
Mixing protocol affects dispersion quality critically. In twin-shaft compulsory paddle mixers (e.g., colloidal mortar mixers with
285 rpm main shaft and
140 rpm disperser), the emulsion must be added after the cement and aggregate have been homogenized with
70% of the total water, then the remaining water is adjusted for slump. Reverse addition—mixing emulsion with cement directly—causes instant destabilization due to local calcium ion gradients exceeding the tolerance limit. Published data for this specific cement-to-emulsion addition sequence in GW-102H is limited to single-batch observations; field variability in cement alkalinity may shift the coagulum threshold.
Film Formation in High-Humidity Environments
In regions where ambient relative humidity consistently exceeds
80%, the PVOH protective colloid of GW-102H re-swells during drying, extending the open time but compromising water resistance development. When formulated into a clear wood coating applied at
120 μm wet, films dried at
23°C and
85% RH exhibit
14% lower König pendulum hardness (
DIN EN ISO 1522) after
7 days compared to films dried at
50% RH. The addition of
0.8 wt% ammonium zirconium carbonate crosslinker effectively arrests this plasticization by chelating the carboxylate groups before the PVOH dissolves, restoring film hardness to within
5% of the low-RH baseline. Without this post-crosslinking, blushing and intercoat adhesion failures are reported on oak substrates after
24-hour water spotting.
A processing conflict emerges when line speed dictates film drying. Forced-air ovens at
65°C air temperature reduce drying time to
4 minutes for a
50 μm dry film on beech. However, if the substrate enters the oven with surface moisture (e.g., from cold stock equilibrium), the rapid skin formation traps water vapor, causing micro-bubbling and crater defects. Infrared pre-heating (
2.5 kW/m² medium-wave) for
20 seconds prior to coating eliminates this failure mode by elevating the substrate surface to
32–35°C, below the MFFT but sufficient to shift surface condensation.
Tensile and Elongation Envelope Under Monotonically Increasing Load
Tensile testing of unsupported GW-102H films (dried
7 days at
23°C,
50% RH) per
ISO 527-3 at a crosshead speed of
200 mm/min yields an ultimate tensile strength of
4.7 MPa and an elongation at break of
820%. These values position the material differently from semi-crystalline PVOH homologues, which typically show higher tensile strengths (
35–50 MPa) but elongations under
300%. The high extensibility results from random ethylene sequences disrupting poly(vinyl acetate) crystallinity, enabling energy dissipation over large strains without microcrack formation. In elastic recovery tests (
300% strain, hold
60 seconds, release,
5 cycles),
93% of strain is recovered after the third cycle, indicating limited permanent set.
For textile lamination applications, the large deformation behaviour interacts with fabric stretch. When GW-102H is applied to a
250 g/m² cotton scrim at
40 g/m² dry add-on, the resultant composite exhibits a tearing strength increase of
230% in the machine direction (trapezoidal tear,
ISO 9073-4) relative to uncoated fabric. Failure analysis indicates adhesive fibrillation bridging yarns across the tear path, with SEM images confirming polymer ligament elongation before detachment. This contrasts with stiff melamine-based binders, which fracture before significant strain accumulation and transfer stress crisply to the yarns.
What Separates GW-102H from Acrylic Emulsion in Damp-Surface Bonding?
Adhesion to green concrete or damp wood distinguishes VAE from ambient-crosslinking acrylics. GW-102H, applied to a concrete slab with surface moisture content of
8% (Tramex meter), provides a pull-off adhesion strength (
EN 1542) of
2.3 MPa, with cohesive failure within the substrate in
80% of test spots. By contrast, a representative acrylic latex with MFFT of
5°C achieves
0.9 MPa, predominantly adhesive failure at the interface. The mechanism involves lower interfacial surface tension of the ethylene-rich polymer against the alkaline water film (
~42 mN/m for VAE vs.
~48 mN/m for acrylic, pendant drop method), enabling better air displacement from capillaries. Furthermore, the PVOH colloid absorbs a fraction of the surface water, locally raising polymer concentration at the interface.
A stringent regulation applies: for continuous water immersion service (
EN 12004 D2 classification), GW-102H must be crosslink-reinforced. Without post-crosslinking, swelling exceeds
18% by mass after
7-day immersion at
23°C, causing adhesion loss. With
1.2% of a water-emulsifiable aliphatic polyisocyanate (HDI trimer) on dispersion solids, swelling is contained to
4.2%. Processing note: pot life of the blend is
4 hours at
23°C; after this period, viscosity doubles and film clarity deteriorates, indicating incipient gelation and necessitating coating line shutdown for flushing.
Heat-Activated Bonding and Post-Forming Operations
GW-102H is not a thermoplastic hot-melt, but its dried film can be heat-sealed. At a sealing jaw temperature of
85°C, pressure
0.4 MPa, and dwell time
2 seconds, GW-102H bonds to itself with a T-peel strength of
8.5 N/25mm. This enables post-forming processes for automotive interior panels where a pre-applied adhesive on a decorative skin is later heat-pressed onto a polyolefin core. One operational boundary: seal initiation temperature (
SIT) is
72°C; exceeding
110°C causes irreversible crosslinking (detected by increased gel content to
91%) that reduces re-positionability in subsequent heat cycles. Formulators exploiting this property in multi-layer laminate assembly must control platen temperature to a processing window of
±5°C, which on a large-area press with uneven heating elements, demands thermocouple mapping to avoid cold spots and over-cured zones.
The absence of chlorine and APEO surfactants in the GW-102H manufacturing process allows classification under
DIN EN 71-3 as suitable for toy coatings, adhering to migration limits for specific elements. Third-party certification data confirm antimony, arsenic, and cadmium migration below
4.5 mg/kg,
3.8 mg/kg, and
0.3 mg/kg, respectively, against limits that are an order of magnitude higher.
Regulatory and compliance standards applicable to GW-102H in various service classes
| Standard/Method | Test and Compliance Criterion | Result Range |
| FDA 21 CFR 175.105 | Indirect food contact adhesive component | Compliant subject to use within GMP |
| GB 18583-2008 (China) | VOC content for indoor adhesive | 2.1 g/L |
| REACH Regulation (EC) No 1907/2006 | SVHC >0.1% w/w | None detected |
| DIBt (Germany) | AgBB indoor air emissions after 28 days | TVOC <500 μg/m³ |
| ISO 16000-9 | Formaldehyde release | <0.005 ppm |
Why Does Colloid Type Dictate Solvent Compatibility?
PVOH-stabilized emulsions hold an advantage in solvent resistance over surfactant-stabilized types, but exhibit complex behaviour with alcohols. GW-102H tolerates
2% ethanol addition by total wet weight without viscosity break, but at
5% ethanol, viscosity rises sharply from
3,100 mPa·s to beyond
12,000 mPa·s due to PVOH dehydration and inter-particle bridging, rendering the compound uncoatable by roller methods. Methanol sensitivity is even more pronounced: flocculation initiates at
1.5% addition. In formulating conductive flooring adhesives requiring alcohol-soluble additives, this stress threshold forces a shift to surfactant-stabilized grades, sacrificing the PSA behaviour that GW-102H otherwise provides. Compounding with acetone or methyl ethyl ketone is not viable; coalescence is complete at
1% loading, a failure mechanism proven by particle size jump from
350 nm to multimodal aggregates exceeding
4,500 nm. Industrial practice dictates thorough water rinsing of all lines between solvent-based and GW-102H production runs to avoid catastrophic gelation in transfer piping.
The rheological profile under controlled shear rate reveals a moderate pseudoplastic index of
0.72 (ratio of viscosities at
2 rpm and
20 rpm). This characteristic prevents strike-through on porous papers at low coat weights but still allows self-levelling on non-porous backings. For high-viscosity knife-over-roll coating, pre-shearing at
500 s⁻¹ for
15 minutes prior to use reduces thixotropic recovery time from
18 hours to
6 hours, enabling consistent coat weight across shift changes, a detail gleaned from roller coaters processing aqueous dispersions on continuous web lengths exceeding
2,000 linear meters.