| HS Code | 490541 |
| Appearance | White milky liquid |
| Solid Content | 55 ± 1% |
| Viscosity 25 C | 3000–6000 mPa·s |
| Ph | 4.5–6.5 |
| Glass Transition Temperature | -10°C |
| Minimum Film Forming Temperature | 0°C |
| Average Particle Size | 0.5–1.5 μm |
| Residual Vinyl Acetate Monomer | ≤0.1% |
| Density 25 C | 1.05–1.10 g/cm³ |
| Freeze Thaw Stability | Stable for 5 cycles without significant coagulation |
| Mechanical Stability | Excellent |
| Film Properties | Flexible, transparent, good water resistance |
As an accredited GW-707H VAE Emulsion factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | GW-707H VAE Emulsion is packaged in 200 kg steel drums, ensuring safe transport and easy handling for industrial use. |
| Container Loading (20′ FCL) | GW-707H VAE Emulsion is loaded as a 20′ FCL, packed in drums/IBCs on pallets, securely fastened and protected. |
| Shipping | GW-707H VAE Emulsion is shipped in sealed drums, IBC totes, or bulk tankers to prevent contamination and evaporation. Protect from freezing and excessive heat during transit; store between 5–35°C. While non-hazardous, use proper handling and spill containment. Ensure secure, upright loading to avoid container damage. |
| Storage | Store GW-707H VAE Emulsion in original sealed containers in a cool, dry, well-ventilated area, away from direct sunlight, heat sources, and freezing. Maintain temperature between 5–35°C to prevent coagulation or skinning. Keep containers tightly closed, protected from moisture and contamination. Stir gently before use; shelf life is typically six months under proper conditions. |
| Shelf Life | Shelf life: 12 months from manufacture if stored sealed, cool, and protected from freezing. |
GW-707H, a carboxylated vinyl acetate-ethylene copolymer emulsion stabilized with a polyvinyl alcohol protective colloid system, enters interior flat and semi-gloss wall paint formulations where regulatory pressure to reduce coalescing solvent demand has exposed the brittleness limits of conventional homopolymer PVAc binders. The emulsion's minimum film formation temperature is specified at 0°C, a parameter that must be verified against ASTM D2354 on substrates conditioned to 23 ± 2°C and 50 ± 5% relative humidity, because pigment volume concentration shifts above 55% elevate the effective MFFT of the compounded paint by 2–4°C depending on extender particle packing. In production-scale high-speed dispersion using a Cowles blade at tip speeds of 18–22 m/s, the emulsion is post-added after the pigment grind phase to prevent shear-induced coagulation of the PVA-colloid shell; the grind base typically consists of titanium dioxide conforming to ASTM D476 Type II, calcined kaolin of 0.8 µm median particle size, and a sodium polyacrylate dispersant dosed at 0.3–0.5% active dispersant on total pigment weight. Letdown addition of GW-707H at 12–18 wt% on total formulation, combined with a non-ionic associative HEUR thickener at 0.2–0.6 wt%, produces a Stormer viscosity of 90–110 KU measured per ASTM D562; this rheological target is necessary because excessive low-shear viscosity from HEC-based thickeners interacts with the PVA colloid to generate syneresis during shelf storage at temperatures cycling between 5°C and 40°C. Scrub resistance of the dried film—tested according to ISO 11998 using a 200-µm wet film drawdown on Leneta P121-10N charts—declines sharply when coalescent levels drop below 1.5 wt% on binder solids, with film cracking observed after fewer than 200 cycles in formulations where Texanol ester alcohol is omitted entirely. GW-707H's carboxyl functionality provides a reactive handle for zinc oxide crosslinking in formulations targeting ASTM D2486 scrub thresholds above 1000 cycles; zinc ammonium carbonate added at 0.3–0.5 wt% as metal ion equivalent on binder solids shifts the film's gel content from approximately 40% to above 75% after seven days of ambient cure, as confirmed by Soxhlet extraction in refluxing methyl ethyl ketone.
A distinct processing window governs the interaction between GW-707H and associative rheology modifiers. When the HEUR thickener hydrophobic end-cap ethylene oxide spacer length is below 40 EO units, competitive adsorption onto latex particle surfaces displaces PVA colloid segments and produces viscosity drift of 10–15 KU over fourteen days. Formulators counter this by introducing a low-HLB nonionic surfactant post-thickener addition, typically an ethoxylated C11–C13 alcohol with 5–7 EO moles, to saturate hydrophobic cavities on the latex surface before thickener addition. The terminal coating must additionally demonstrate wet adhesion to alkyd substrates per ASTM D3359 Method B; GW-707H without adhesion promoter shows crosshatch failure at the 3B–4B rating level after 24-hour water immersion, but incorporation of 2–3 wt% methacryloxypropyltrimethoxysilane post-added at the letdown stage elevates adhesion to 5B with less than 2% area removed. Published data for long-term yellowing resistance under UV-B exposure at 340 nm and 0.55 W/m² irradiance following ISO 16474-3 cycle A is limited for this specific PVA-stabilized grade; however, comparative data from sister grades suggests Δb* values exceeding 2.5 after 500 hours when TiO₂ loading falls below 18 PVC.
Flexible packaging converters deploying GW-707H for dry-bond lamination of untreated polyethylene terephthalate film to clay-coated paperboard encounter a critical open-time constraint rooted in the emulsion's PVA-colloid dehydration kinetics. The adhesive is applied at 3–5 g/m² dry coat weight via a multi-roll gravure station operating at line speeds of 80–120 m/min; the gravure cylinder, typically a 60–80 line/cm trihelical engraving with a cell depth of 40–55 µm, must deliver sufficient wet film to permit fiber-tearing bonds while avoiding strike-through on substrates with Cobb values below 20 g/m² per ISO 535. The lamination nip temperature is maintained at 65–75°C with a dwell time under pressure of 0.3–0.6 seconds, a narrow window where inadequate heat input fails to collapse the PVA colloid membrane into a continuous interphase, yet excessive heat flux exceeding 80°C causes premature skin formation that blocks secondary wetting of the PET web. GW-707H's carboxyl content—titrated at approximately 0.8–1.2 meq/g dry polymer by conductometric back-titration with 0.1 N KOH—is deliberately exploited in two-part crosslinking systems using glyoxal added at 0.5–1.0 wt% immediately before application, yielding a pot life of 4–6 hours before a viscosity inflection exceeding +50% of initial reading renders the mixed adhesive uncoatable.
Plasticizer migration from print primers and substrates into the GW-707H bondline represents the dominant long-term failure mode. Diisobutyl phthalate and acetyl triethyl citrate at concentrations as low as 2 wt% in the adjacent nitrocellulose-based ink layer depress the adhesive's glass transition temperature by 8–12°C within 72 hours of contact at 40°C, a shift detectable by dynamic mechanical analysis at 1 Hz and 3°C/min ramp rate as a downward displacement of the tan δ peak. To retard this mass-transfer-driven degradation, a barrier primer based on styrene-acrylic copolymer with a Hildebrand solubility parameter mismatch greater than 3 MPa1/2 relative to the migrating species is interposed at 0.5–1.0 g/m² dry weight. Peel strength testing according to ASTM F88/F88M on 25 mm wide strips at a separation rate of 300 mm/min reveals that laminated structures without the barrier primer fall below the 250 gf/25mm threshold after 14 days of accelerated aging at 50°C and 85% RH, whereas specimens incorporating the intermediate coating retain above 350 gf/25mm with fiber tear exceeding 80% of the bonded area. High-speed converting lines operating at 150 m/min impose an additional requirement for adhesive re-wettability after momentary drying on the gravure cylinder lands; GW-707H formulated with 5–8 wt% propylene glycol on total adhesive mass extends tack retention to 12–15 seconds post-application, measured by a probe-tack apparatus with a 500 g contact force and 1 second dwell.
Ignition of the laminating adhesive at converting speeds above 120 m/min demands consideration of the emulsion's electrostatic charging behavior. The PVA colloid's hydroxyl-rich exterior adsorbs ambient moisture during transfer through non-conductive gravure rollers, generating surface resistivity in the range of 10⁸–10¹⁰ Ω/sq at 50% RH per ASTM D257. When resistivity exceeds 10¹¹ Ω/sq in low-humidity winter conditions, static discharge to the substrate can create pinhole defects with diameters below 50 µm that escape visual inspection yet compromise barrier properties. The corrective measure involves inline humidification maintaining the coating enclosure at 55–65% RH or incorporation of 0.05–0.1 wt% lithium nitrate, which depresses volume resistivity without interfering with the glyoxal crosslinking stoichiometry.
Polymer-modified cementitious tile adhesives formulated with GW-707H at polymer-cement ratios between 0.10 and 0.25 by mass exploit the emulsion's carboxylated surface chemistry to regulate the hydration kinetics of ordinary Portland cement conforming to ASTM C150 Type I. The PVA colloid, unlike fully hydrolyzed grades that adsorb irreversibly onto calcium silicate hydrate nuclei and delay C₃S hydration, achieves a partial desorption equilibrium in the high-pH pore solution exceeding pH 13 after approximately 4–6 hours, a timeframe that corresponds to the onset of the acceleration period in isothermal calorimetry traces collected at 23°C following ASTM C1679. In two-component systems where GW-707H is blended into the gauge water at a dosage calculated to deliver 5–8% polymer solids on total dry mix, the resulting fresh mortar displays a consistency of 140–160 mm flow per ASTM C1437 with a water-cement ratio held constant at 0.45. The critical formulation parameter is the ratio of PVA-colloid to carboxylated-VAE solids, because excess free PVA exceeding 1.2 wt% on cement weight reticulates within the pore solution to produce macrovoids observable by scanning electron microscopy at 1000× magnification after 28 days of wet curing, lowering compressive strength relative to unmodified mortar by 15–20%.
Open time—the interval between trowel application and the point at which wetting of the freshly placed tile back-face drops below 50%—is extended by GW-707H from approximately 20 minutes for unmodified mortar to 35–45 minutes when tested per EN 1346 on a concrete substrate conditioned to a water absorption of 0.5–1.5 mL over 4 hours. This extension arises because the coalescing VAE domains form a continuous polymer film that occludes capillary pores at the mortar-air interface, reducing the evaporation rate of free water measured gravimetrically at 40 ± 5% RH to below 0.15 mg/cm²·min. The adhesive strength measured by pull-off testing according to EN 1348 after 28 days of standard cure and an additional 7 days of water immersion must exceed 0.5 MPa for C2 classification; GW-707H-modified mixes achieve 0.8–1.2 MPa with cohesive failure within the mortar layer when the polymer-cement ratio is maintained at or above 0.18. Below this threshold, adhesive failure at the tile-mortar interface becomes the dominant fracture mode, producing pull-off values that scatter between 0.3–0.7 MPa with a coefficient of variation exceeding 25% across ten replicate specimens.
The sensitivity of GW-707H to divalent cations in the mixing water imposes a process specification that is sometimes overlooked during field application. Calcium ion concentrations above 400 mg/L—common in hard-water regions—initiate colloidal destabilization visible as a viscosity spike exceeding 30% of the initial Brookfield reading within 120 seconds of blending, as the carboxylate groups on the latex surface coordinate with Ca²⁺ and collapse the electrosteric barrier. This can be mitigated by pre-sequestering the mixing water with 0.1–0.2 wt% sodium tripolyphosphate on cement weight, added and dissolved before the emulsion is introduced. Frost resistance testing under EN 12004 freeze-thaw cycling from -15°C to +20°C at 50 cycles reveals that GW-707H, with its Tg of approximately 0°C, contributes less to low-temperature flexibility than VAE grades with ethylene contents above 20 wt%; pull-off strength retention after cycling typically falls to 60–70% of the pre-cycle value, a result that confines its use to interior or protected exterior applications.
Paper sack bottomers running at 300–400 sacks per minute on machinery such as Windmöller & Hölscher AD 2375 series equipment impose an instantaneous fiber-tear requirement on the adhesive that GW-707H delivers through rapid removal of water into the porous substrate. The emulsion is applied at 35–45°C through a nozzle extrusion system delivering a 2–3 mm bead onto the side-gusset fold; within 0.8–1.2 seconds of application, the squeeze-out under compression rollers at 0.4–0.6 MPa line pressure must exhibit sufficient green tack to prevent spring-back opening of the fold before entering the hot-air drying tunnel. The drying tunnel, operating at 180–220°C air temperature with an impingement velocity of 15–20 m/s, evaporates the continuous aqueous phase to a moisture content below 2 wt% within a residence time of 3–5 seconds; this thermal budget is calibrated to the PVA-colloid melting transition, because incomplete coalescence yields a powdery bondline that ruptures under the burst-strength test conditions of TAPPI T 810 om-22.
Blocking—the unintended adhesion of the outer adhesive surface to the adjacent sack during stacked storage—is the primary defect that GW-707H's formulation must overcome. The dried adhesive film, when conditioned to 30°C and 70% RH and placed under a compressive load of 5 kPa simulating a pallet stack of 1.5 m height, exhibits a blocking force measured by the 180° peel separation of kraft-to-kraft specimens per TAPPI T 542 om-22. GW-707H films without antiblocking modification deliver peel values of 0.8–1.5 N/cm under these conditions, sufficient to cause fiber rupture on separation. Incorporation of a high-melting-point paraffin wax dispersion at 3–5 wt% on emulsion solids, with a wax congealing point of 55–65°C determined by ASTM D938, reduces the blocking force to below 0.3 N/cm through surface bloom during film formation. The wax particle size distribution—optimized to 1–3 µm median diameter to match the target adhesive film thickness of approximately 10–15 µm—is critical, because particles exceeding 5 µm protrude from the bondline and reduce the effective contact area with the opposing kraft surface, degrading the machine-direction ply-bond strength measured by TAPPI T 569 at a separation speed of 25 mm/min.
Heat-seal activation of GW-707H provides an alternative closing mechanism for multi-wall sacks containing hygroscopic products such as cement or fertilizer. Under a jaw temperature of 120–140°C, a dwell time of 0.5–1.0 second, and a sealing pressure of 0.3–0.5 MPa, the PVA-colloid phase softens sufficiently to flow into the paper fiber matrix, generating a seal strength of 4–6 N/15mm measured per ASTM F88/F88M. The operational constraint is that jaw temperatures above 150°C initiate thermal degradation of the acetate groups, producing acetic acid vapor detectable by odor and causing corrosion on downstream metal contact surfaces over cumulative running hours exceeding 500. Thus, temperature control loops on the sealing station must maintain setpoint tolerance within ±5°C.
A large-format flexographic pre-print station followed by tandem extrusion coating enters the converting sequence when GW-707H serves as the barrier-sizing pre-coat on kraft linerboard destined for pet-food bag stock. A rod-coater applies the emulsion at 1.5–2.5 g/m² dry weight; the coat weight is metered by a Mayer rod with wire diameters between 0.15 mm and 0.35 mm depending on the substrate's Sheffield smoothness value. The pre-coat fills fiber interstices measurable by profilometry at roughness amplitudes of 5–12 µm Ra, creating a planarized surface onto which low-density polyethylene is extruded at 320°C melt temperature and 15–25 g/m². Without the GW-707H pre-coat, pinhole density in the LDPE layer—counted by a dark-room light-box inspection at 500 lux—typically exceeds 5 pinholes/100 cm²; with the pre-coat, pinhole count drops to below 1 pinhole/100 cm². The PVA colloid's limited water resistance, however, restricts this structure to dry-product packaging unless an additional moisture-barrier layer is incorporated.
Carded nonwoven webs of 30–60 g/m² basis weight, composed of polyethylene terephthalate staple fiber of 1.5–3.0 denier and 38–51 mm cut length, are saturation-bonded with GW-707H on a screen-belt conveyor line where the emulsion pick-up ratio is controlled by a vacuum slot operating at 5–10 kPa differential pressure to achieve 20–35% binder solids on finished fabric weight. The low Tg of GW-707H relative to conventional self-crosslinking acrylic binders endows the fabric with a soft hand—measured by a Handle-O-Meter at 10–25 g force per ASTM D6828—but simultaneously depresses the wet tensile strength to a range that often fails the mechanical integrity requirements of high-speed converting processes. The critical mechanical ratio is the wet-tensile-to-dry-tensile value, expressed as a percentage, which for GW-707H-bonded webs typically falls between 30% and 45% when tested on 25 mm wide strips at a 200 mm/min extension rate following ISO 9073-3 and after 60 seconds of immersion in deionized water. This ratio compares unfavorably to the >60% achievable with formaldehyde-crosslinking vinyl acetate-ethylene binders, but the absence of formaldehyde in GW-707H makes it selectable for hygiene applications subject to OEKO-TEX Standard 100 Class I restrictions.
Saturation line operators encounter a drying bottleneck when the lower Tg of GW-707H causes the impregnated web to adhere to steam-heated can surfaces at temperatures exceeding 110°C. The drying section, typically a series of 8–12 Teflon-coated cylinders operated in a descending temperature profile from 130°C at the wet end to 90°C at the dry end, requires that the final 2–3% of moisture be removed at can surface temperatures below the PVA-colloid's softening point. When dryer temperature control tolerances drift above 115°C, the fabric sticks to the cylinder and a doctor-blade scraping system must engage to prevent wrap-around, an event that generates fabric waste and line stoppage. A nonionic surfactant with a cloud point above 60°C, added at 0.3–0.5 wt% on wet emulsion, lubricates the fabric-to-can interface and permits dryer temperature increases of 5–8°C without adhesion incidents, raising the maximum sustainable line speed from 40 m/min to 55–65 m/min.
Flushability requirements for dispersible wipes present a contradictory demand: the binder must maintain adequate wet strength during use but disintegrate under the shear conditions of municipal wastewater conveyance. GW-707H's carboxylation provides a trigger mechanism whereby the introduction of divalent cations in hard water reverses the latex charge, but published data for this specific configuration is limited to internal laboratory studies. In screening tests simulating the INDA/EDANA GD4 slosh-box disintegration protocol, nonwoven fabrics bonded with GW-707H at 25% add-on pass through a 12.5 mm perforated sieve plate after 30–40 minutes of agitation, a timeframe that satisfies the <60 minute acceptance criterion for the FG502 flushability guideline only when the water hardness is below 150 mg/L as CaCO₃.
Corrugators running dual-arch single-facer stations with GW-707H as a partial substitution for conventional cooked starch at the corrugating roll glue dam encounter a pot-life constraint that dictates adhesive kitchen logistics. The emulsion is blended with a Stein-Hall formulation consisting of a primary starch carrier portion gelatinized at 65–70°C and a secondary raw starch portion held at 35–40°C; GW-707H is introduced into the secondary portion at 5–12% on total adhesive solids, immediately before transfer to the glue pan. The resulting dispersion exhibits a Stein-Hall viscosity of 25–40 seconds through a #2 Zahn cup at 38°C, with a stability window of 4–6 hours before the emulsion's carboxyl groups complex with calcium ions leached from the recycled linerboard fiber to form a precipitate that clogs the glue roll metering gap. The corrugating rolls, heated to 170–190°C with saturated steam at 0.8–1.2 MPa, gelatinize the raw starch fraction while simultaneously coalescing the VAE component within the flute tips; the line speed is governed by the time required to raise the bondline temperature to the VAE MFFT, a value quantified by thermocouple probes embedded in the double-backer hot plate sections as the distance from the glue station at which the web centerline temperature crosses 0°C.
Edge crush testing per TAPPI T 811 om-22 on B-flute board of 2.5–3.0 mm caliper reveals that GW-707H addition at 10% on adhesive solids elevates ECT values by 8–14% compared to identical board bonded with unmodified starch, a gain attributed to the polymer film's ability to bridge microcracks that propagate through the starch bondline under compressive buckling. The gain is disproportionately large in board manufactured from 100% recycled old corrugated containers because the shorter fiber length distribution—typically 1.0–1.5 mm arithmetic average—reduces the mechanical interlock contribution to bonding and makes the continuous-phase polymer contribution more critical. A formulation cost-performance analysis indicates that GW-707H substitution above 12% yields diminishing ECT returns as the starch-polymer co-continuous phase collapses, with ECT gains plateauing at approximately 15% improvement while adhesive cost per ton of board increases exponentially.
Static charge accumulation on the dry end of the corrugator is mitigated by the residual ionic character of the PVA-colloid shell, which provides a surface resistivity of 10⁸–10⁹ Ω/sq on the finished board surface measured at 23°C and 50% RH per ASTM D257. This resistivity is approximately two orders of magnitude lower than that of unmodified starch-bonded board and eliminates the need for post-applied anti-static spray in converting operations where board feeds into flexo-folder-gluers at speeds above 200 sheets/min. However, the resistivity advantage degrades when the board moisture content drops below 6 wt%; below this threshold, static-induced sheet jams re-emerge and the corrugator must either increase the starch-application solids to raise the equilibrium moisture or operate the dry-end spray humidification system to maintain a minimum 45% RH environment.
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| Property | Range | Method |
|---|---|---|
| Solids content | 54.0–56.0% | ISO 3251 |
| pH | 4.5–5.5 | ISO 976 |
| Viscosity (Brookfield RVT, #4/20 rpm/25°C) | 800–2500 mPa·s | ISO 2555 |
| Tg (midpoint, DSC) | −14 ± 2°C | ASTM D3418 |
| MFFT | <0°C | ISO 2115 |
| Density | 1.04–1.08 g/cm³ | ISO 2811 |
| Mechanical stability (Hamilton Beach) | No coagulum after 30 min | ASTM D2243 |
| Test | GW-707H | Standard VAE | Method |
|---|---|---|---|
| Wet scrub resistance | 1220 cycles | 480 cycles | ASTM D2486 |
| Wet adhesion (crosshatch, alkyd substrate) | 4B–5B | 2B | ASTM D3359 |
| Free-film water absorption (24 h) | 6.2 wt% | 11.8 wt% | ASTM D570 |
| Elongation at break (free film) | 830% | 320% | ASTM D638 (Type IV die, 50 mm/min) |
| Loop tack (transfer tape, neat) | 8.2 N/25 mm | 5.4 N/25 mm | FINAT FTM 9 |