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Anhui Liwei Chemical Co., Limited.

Celvolit 1495 VAE Emulsion

    • Product Name: Celvolit 1495 VAE Emulsion
    • 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 462277
    Product Name Celvolit 1495 VAE Emulsion
    Product Type Vinyl acetate-ethylene copolymer emulsion
    Appearance Milky white liquid
    Stabilizer Type Polyvinyl alcohol

    As an accredited Celvolit 1495 VAE Emulsion factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Supplied in 1,000 kg IBC totes or 200 kg drums; sealed containers prevent skinning, drying, and contamination.
    Container Loading (20′ FCL) 20′ FCL container with Celvolit 1495 VAE Emulsion in plastic drums on pallets, strapped and protected from moisture/heat.
    Shipping Celvolit 1495 VAE Emulsion ships in sealed drums, IBCs, or bulk tankers to prevent leakage and contamination. Keep containers upright, protected from freezing and extreme heat. Transport in ventilated, dry conditions, away from incompatible materials. Handle with personal protective equipment and follow standard chemical spill procedures.
    Storage Store Celvolit 1495 VAE Emulsion in original, tightly sealed containers in a cool, dry, well-ventilated area. Protect from direct sunlight and temperatures below 5°C or above 40°C to prevent freezing or coagulation. Keep away from incompatible materials and ignition sources. Use within recommended shelf life, stirring gently before use.
    Shelf Life Shelf life is typically 12 months from manufacture when stored in original sealed containers, protected from frost and extreme heat.
    Application of Celvolit 1495 VAE Emulsion

    When Celvolit 1495 is incorporated into a two‑component polymer‑modified cementitious waterproofing slurry, the ethylene‑vinyl acetate copolymer structure directly influences the rate of film formation and the ultimate elongation capacity after cement hydration. The liquid component typically contains Celvolit 1495 at 85–90 wt%, combined with a polymeric defoamer, a naphthalene‑sulfonate dispersant, and process water; the powder component is a blend of ordinary Portland cement, 70–100 mesh silica sand, and a calcium formate accelerator. At a liquid‑to‑powder ratio of 1:1.4 by weight, the emulsion solids represent 30–35% of the wet compound. This loading must remain above 28% to sustain an elongation at break of at least 80% after 7‑day alkaline immersion per GB/T 23445‑2009 Type II. Production‑scale mixing is carried out using a 300‑litre planetary paddle mixer running at 150–200 rpm; higher shear entrains air bubbles that survive de‑aeration and become pinhole channels in the cured membrane. Application proceeds in two coats with a notched trowel or a medium‑nap roller to achieve a consolidated dry film thickness of 1.5–2.0 mm, with a wet‑on‑wet interval not exceeding 60 minutes at 23 °C. The cured membrane functions as a waterproofing barrier beneath ceramic tiles in domestic bathrooms, on cantilevered balconies subject to thermal movement, and on the interior face of below‑grade retaining walls. Field observations confirm that ambient relative humidity above 80% RH pushes surface drying beyond 4 hours; under these conditions, 2–3 wt% of a high‑boiling coalescent such as 2,2,4‑trimethyl‑1,3‑pentanediol monoisobutyrate must be post‑added to avoid intercoat delamination. Formulators must avoid direct contact between the wet emulsion and high‑alumina cement because the rapid release of calcium ions triggers gelation before adequate trowelling is complete.

    What explains the adhesion plateau observed beyond 15% VAE addition in D3 wood adhesives?

    The increment in tensile shear strength measured on beech substrates per EN 205 when the addition rate of Celvolit 1495 is raised from 10% to 15% on dry resin solids is steep—from 2.8 MPa to 4.2 MPa—but further increase to 20% yields only 4.5 MPa. This behaviour arises because the dispersed VAE particles coalesce into a continuous film that already matches the cohesive energy density of the wood fibre at the lower loading; subsequent emulsion addition merely dilutes the filler‑reinforcing effect without meaningfully altering the viscoelastic dissipation at the glue line. The finished adhesive must comply with EN 204/D3 water resistance classification, which requires a minimum wet shear strength of 2.0 MPa after 4‑day immersion in 20 °C water, and with GB 18583‑2008 where free formaldehyde must not exceed 1.0 g/kg. A typical one‑part dispersion formulation combines Celvolit 1495 at 10–25 parts per hundred resin with 3‑phr polyvinyl alcohol solution, 20‑phr calcium carbonate filler, and a silicone‑free defoamer. Manufacturing lines deploy a roller coater with a transfer‑gap setting of 0.2–0.3 mm to apply the adhesive to both planed faces; open assembly time is limited to ≤5 min at 23 °C and 50% RH before the sandwich is cold‑pressed at 0.7–1.0 MPa for 30 minutes. The resulting bond is rated for interior non‑structural load‑bearing components such as finger‑jointed door stiles, laminated window scantlings, and edge‑glued panels for furniture frames. Operators in unheated workshops have recorded a winter viscosity spike exceeding 12 000 mPa·s (Brookfield RV, spindle #5, 20 rpm) that starves the roller gap; jacketed holding tanks set to 20–25 °C are therefore mandatory when ambient temperature drops below 10 °C.

    Regulatory conformance matrix by application segment
    SegmentGoverning standardCritical performance metric
    Polymer‑modified waterproofing membraneGB/T 23445‑2009Elongation ≥ 80% after alkali treatment
    D3 wood assembly adhesiveEN 204/D3Wet shear strength ≥ 2.0 MPa
    Interior matt paintGB/T 9756‑2018 (superior grade)Scrub resistance ≥ 5000 cycles
    Tissue laminationFDA 21 CFR 176.170Global migration ≤ 10 mg/dm²
    Air filtration nonwovenASHRAE 52.2‑2017Efficiency ≥ MERV 8 at 0.3–1.0 µm
    Carpet pre‑coat backingCRI Green Label PlusTotal VOCs ≤ 0.5 mg/m³

    Scrub‑resistant interior matt paints under GB/T 9756 requirements

    Formulators targeting the premium “superior grade” classification defined by GB/T 9756‑2018—where the scrubbing resistance must exceed 5000 cycles by the nonwoven‑pad method—frequently blend Celvolit 1495 with a styrene‑acrylic or pure‑acrylic latex to balance cost and wet‑abrasion performance. The VAE emulsion is introduced at 12–18 wt% on total formulation weight, typically displacing up to 30% of the acrylic binder when the coalescent package is adjusted to a 7–9% demand on total resin solids. Volatile organic compound content stays below the 80 g/L limit set by GB 18582‑2020 because the emulsion requires only a low‑volatility coalescent and does not contribute solvent. The manufacturing process begins in a high‑speed disperser equipped with a 400‑mm diameter saw‑tooth blade delivering a tip speed of 18–25 m/s to grind titanium dioxide and calcined clay extenders to a Hegman gauge reading of ≤40 µm; once the let‑down stage starts, impeller speed is reduced to 5–8 m/s to prevent shear‑induced destabilisation of the VAE particles. Thickening is accomplished with a mid‑shear associative polyurethane thickener together with a hydroxyethyl cellulose co‑thickener to achieve a stormer viscosity of 95–105 KU. In commercial 5‑tonne batches, the temperature rise during the let‑down phase regularly approaches 45 °C; shell‑and‑tube cooling or a jacketed vessel is activated to hold the compound below that threshold because cellulase enzyme degradation of the protective colloid can cause an irreversible drop in low‑shear viscosity. The finished product dries to a flat, mar‑resistant film for residential and hospitality interiors. Exterior exposure is not recommended—VAE films exhibit measurable chalking under QUV‑B 313‑nm radiation within 400 hours, and creep compliance rises sharply above 40 °C film temperature.

    Celvolit 1495 serves as the primary binder in air‑permeable tissue lamination

    In roll‑to‑roll tissue converting lines operating at speeds exceeding 500 m/min, Celvolit 1495 is diluted to a working solids content of 3–6% and applied through a 55‑ line/cm ceramic anilox roll to deposit a dry coat weight of 0.3–0.8 g/m². The adhesive film must maintain sufficient open tack to bond 2‑ to 4‑ply sheets in a combining calender without causing through‑penetration that stiffens the cellulosic web or reduces bulk. Compliance with FDA 21 CFR 176.170 (components of paper and paperboard in contact with aqueous and fatty foods) and with GB 4806.8‑2016 is routinely demonstrated because the emulsion contains no alkylphenol ethoxylate surfactants and its extractives fall below 10 mg/dm² global migration in 95% ethanol simulant at 40 °C/10 days. The downstream process after lamination passes the multi‑ply web through a gas‑fired through‑air drum dryer zoned to 130–160 °C for a residence time of 5–8 seconds; the air velocity is set to 18–25 m/s to strip boundary‑layer moisture without lifting the tissue from the carrying wire. The resultant products are kitchen towels, face tissues, and serviettes that meet the critical requirement of no inter‑ply delamination after 5‑minute immersion in 20 °C tap water—a test commonly used by European converters to validate adhesive durability. A recurring production bottleneck in high‑speed reciprocating doctor‑blade chambers is the build‑up of coagulum around the blade edge; this occurs when the emulsion’s mechanical stability, measured by a Mastersizer 3000 after 10‑minute exposure to a 1500‑rpm marine impeller, shows a particle‑size increase of more than 0.3 µm Dv50. Mill operators mitigate coagulation by maintaining the recirculated adhesive bath at pH 4.8–5.2 through metered addition of 0.5% citric acid solution.

    Compressed air filtration media produced from carded polyester fibres with a spray‑bond technique require a binder that preserves loft while imparting sufficient inter‑fibre adhesion to meet burst strength specifications. Celvolit 1495 applied at 8–12% add‑on by fibre weight delivers a balance of stiffness and resilience: the bonded web exhibits an MD tensile strength of 120–160 N/50 mm ( GB/T 24218.3‑2010 ) and a Gurley stiffness below 35 mg at a basis weight of 100 g/m². The relevant air cleaning standard ASHRAE 52.2‑2017 requires a minimum efficiency reporting value of MERV 8 for residential and light‑commercial systems, which this construction achieves with a pressure drop of 25–35 Pa at 0.5 m/s face velocity. Manufacturing flowsheet proceeds from a carding machine to a cross‑lapper that builds a batt of 80–150 g/m² before the web enters a spray booth fitted with 0.5‑mm internal‑mix nozzles operating at 0.3–0.5 MPa atomising air. The line traverses a through‑air drum dryer programmed at 140–170 °C with a dwell time of 30–60 seconds. Finished media is supplied as pleated panel filters for paint‑booth intake screens and as high‑loft roll goods for processing into HVAC bag filters. A distinct formulation constraint concerns formaldehyde scavenging: Celvolit 1495 carries a free‑formaldehyde content below 10 ppm as received by the sulfite titration method, which assists compliance with the 0.03 mg/m³ formaldehyde emission threshold in GB/T 18801‑2015 for indoor air purification appliances. Incompatibility arises when the binder is blended with acid‑catalysed urea‑formaldehyde pre‑condensates because the low pH triggers rapid viscosity build within the spray lines; therefore separate application stations with dual curing zones are specified.

    Representative film properties of Celvolit 1495 at 23 °C, 50% RH (7‑day cure)
    PropertyTest methodValue
    Tensile strength at breakISO 527‑36.5–8.0 MPa
    Elongation at breakISO 527‑3650–800%
    Water vapour transmission rateASTM E96/E96M (desiccant method)320–380 g/m²·24 h
    Glass transition temperature (DSC midpoint)ISO 11357‑2‑8 °C
    Minimum film‑forming temperatureASTM D23540–2 °C

    When pre‑coat formulations for tufted carpet backing demand low volatile organic emissions

    Carpet tile manufacturing facilities operating under CRI Green Label Plus certification must demonstrate that total volatile organic compound emissions from the finished product are at or below 0.5 mg/m³ after 24‑hour chamber testing per ISO 10580:2010. Celvolit 1495 is used in the pre‑coat compound that locks the tufts into the primary backing before the secondary backing is applied, precisely because its VAE chemistry can be formulated without styrene‑butadiene latex, thereby eliminating the 4‑phenylcyclohexene odorant characteristic of SBR systems. The compound recipe consists of Celvolit 1495 supplied at 70–85 parts by weight per hundred filler—typically 5–10 µm ground calcium carbonate—together with 2–3 parts of an ammonium stearate frothing agent and a polyacrylate thickener. Once the emulsion solids make up 18–25% of the total compound mass, the mix is mechanically frothed in a continuous Oakes mixer to a wet density of 400–600 g/L and coated onto the tufted primary via a knife‑over‑roll station at a wet thickness of 2–4 mm. The web then enters a forced‑air curing oven zoned at 130–150 °C for 10–15 minutes, where the froth collapses and the binder crosslinks. End products are modular carpet tiles with dimensionally stable polyolefin secondary backings and broadloom carpet that meets the GB 18587‑2001 formaldehyde release limit of ≤0.050 mg/m³ from carpet. Production technicians report that the foam half‑life is acutely sensitive to the pH of the calcium carbonate slurry; if the slurry pH exceeds 9.0, the foam destabilises during transfer from the frothing head to the coater. Conditioning the slurry with a phosphoric acid buffer to pH 4.5–5.0 prior to emulsion addition restores a consistent froth stability window of 180–240 seconds. Oven temperature beyond 150 °C must be avoided because the VAE film begins to yellow, shifting the L* value beyond permitted tolerance in light‑coloured face yarns.

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    Certification & Compliance
    More Introduction

    A vinyl acetate-ethylene (VAE) copolymer dispersion stabilized in a polyvinyl alcohol protective colloid system, Celvolit 1495 is supplied at 54–56% non-volatile content and exhibits a Brookfield viscosity of 1500–3500 mPa·s (spindle 4, 20 rpm, 23 °C). Its minimum film-forming temperature (MFFT) is recorded at 0 °C, while the glass transition temperature (Tg) of the dried polymer, determined by differential scanning calorimetry per ISO 11357-2:2020, falls between −8 °C and −12 °C. The product’s methyl ethyl ketone insolubles fraction exceeds 85%, reflecting a tightly networked interfacial layer that resists cohesive failure under sustained load. Unlike plasticized homopolymer PVAc grades or styrene-acrylics that require significant coalescent packages, Celvolit 1495 achieves crack-free film formation at ambient humidity without external plasticizer, a property leveraged in zero-VOC architectural adhesives meeting CDPH v1.2 Section 01350.

    What limits the pot-life when Celvolit 1495 is compounded with metal salt crosslinkers?

    Addition of polyvalent cations—aluminium chloride hexahydrate, zirconium acetate, or chromium(III) nitrate—to a Celvolit 1495 formulation intended for durability class D4 wet-service wood bonding per EN 204:2023 triggers a progressive destabilization cascade. The PVOH steric barrier bridging the dispersed particles collapses via coordinate bonding between the hydroxyl groups of the colloid and the metallic center. The resultant viscosity climb follows an exponential profile once the critical flocculation concentration is exceeded; for Al3+ at 0.8 wt% (on wet dispersion) the mobilization time on a production line operating at 35 °C and 55% RH is typically under 45 minutes. This window narrows to 18–22 minutes when the formulation pH is allowed to drift above 5.5, as the acetate-terminated polyvinyl alcohol becomes more sensitive to ligand exchange. Manufacturing experience with spirally wound engineered wood flooring blanks confirms that application by ribbed roller coater at a wet film thickness of 80–100 µm demands inline mixing at the point of application; batch pre-mix exceeding 40 kg without active chilling to ≤20 °C results in striated coating transfer and a drop in EN 204 D4 boil-resistance from ≥4.5 N/mm² to below 2.8 N/mm². By contrast, grades such as Celvolit 1442, with a fully hydroxylated PVOH sheath of higher molecular weight, extend the pot-life to approximately 90 minutes under identical conditions, but sacrifice the rapid wet-tack development that makes Celvolit 1495 attractive for high-speed assembly of veneered panels.

    When ambient cure requirement supersedes extended open time, formulators often substitute aluminium nitrate for the chloride salt; the nitrate counter-ion imposes less immediate ionic strength disruption yet yields comparable crosslink density after 7-day conditioning at 23 °C/50% RH. This substitution is documented to shift the pot-life window to 55–70 minutes without altering the ultimate tensile shear strength on beechwood substrates prepared according to EN 205:2016.

    Film formation mechanics at low coalescent demand

    The broad molecular weight distribution of the ethylene sequences embedded randomly along the vinyl acetate backbone depresses the effective Tg into the sub-ambient regime without requiring low-molecular-weight plasticizer. Atomic force microscopy phase imaging of films cast at 5 °C confirms complete sintering of the latex particles into a continuous, void-free matrix when the relative humidity is maintained above 65%. At relative humidity below 40%, edge-to-edge particle coalescence is arrested, leaving interstitial capillaries that reduce the tensile storage modulus at 25 °C by 18–22% relative to the optimally coalesced reference, as measured by dynamic mechanical analysis in tension mode at 1 Hz (ASTM D5026-15). This sensitivity to drying humidity distinguishes Celvolit 1495 from higher-ethylene VAE types such as Celvolit 1444 (Tg−22 °C), which can coalesce near −5 °C without humidity assistance but exhibit cold flow under compressive creep loading at temperatures exceeding 45 °C. In practice, plant-scale drying tunnels for continuous web coating (PET nonwoven, 80 g/m² fleece) are set to a bowl temperature of 105 °C and air speed of 12 m/s to depress the dew point at the coating surface; under these conditions complete film formation is achieved within 3.5 seconds, enabling line speeds up to 150 m/min on an unwind/rewind slitter equipped with anilox roll application.

    The absence of coalescing solvents such as 2,2,4-trimethyl-1,3-pentanediol monoisobutyrate (Texanol) or butyl carbitol acetate from formulations means that the cured adhesive is in full compliance with the volatile organic compound emission profiles required by AgBB 2021 and the Finnish M1 classification. Published results for a carpet-tile anchor coat based on Celvolit 1495 show TVOC after 28 days below 10 µg/m³ in chamber testing per ISO 16000-6:2021.

    When the dispersion is modified with 3.0 wt% of a blocked polyisocyanate based on hexamethylene diisocyanate trimer (deblocking onset 120 °C), the elastic modulus in the rubbery plateau region rises from 1.2 MPa to 4.8 MPa after a 90-second activation in a forced-convection oven set to 130 °C. This post-curing regime is used in the lamination of cellulose-based automotive door-card substrates where heat resistance up to 90 °C is required to survive e-coat bake cycles.

    What role does the stabilizer system play in adhesion to heavily plasticized PVC?

    The polyvinyl alcohol colloid in Celvolit 1495 possesses a degree of hydrolysis between 87% and 89% and a residual acetate content that promotes specific interaction with dialkyl phthalate plasticizers migrating from flexible PVC. When a wet adhesive bead is applied to a plasticized PVC sheet containing 28–32 phr of diisononyl phthalate (DINP), the low-molecular-weight fraction of the plasticizer diffuses into the boundary layer, partially swelling the PVOH segments and establishing hydrogen bonding with the acetate oxygen. Oscillatory peel testing at 180° on a 25 mm wide strip (INDA/EDANA WSP 401.0) yields a dynamic peel propagation resistance of 5.5–7.0 N/25mm after 72-hour contact aging at 40 °C, a value that surpasses synthetic rubber pressure-sensitive adhesives of comparable coat weight. The failure mode transitions from adhesive to cohesive within the plasticized PVC substrate, confirming that the interface is not the limiting layer. Pure acrylic latex of equivalent particle size (D₅₀ ≈ 0.45 µm) and Tg fails at 1.8–2.5 N/25mm under identical conditioning, because the lower polarity of the acrylic copolymer does not support the requisite depth of plasticizer extraction.

    In deep-draw vacuum forming of PVC-sheathed MDF profiles for furniture edge-banding, Celvolit 1495 loaded with 5 wt% of a rosin ester dispersion (acid number 8–12 mg KOH/g) is applied at 55–65 g/m² by slot die. The activated bond withstands delamination during the 4-second cycle of a membrane press operating at 0.85 MPa and platen temperature of 160 °C, a processing window verified on a Bürkle LAMINATOR with 3D membrane.

    Dispersion shear-stability thresholds in high-speed roller application

    Subjecting Celvolit 1495 to circulating flow at a shear rate exceeding 10⁵ s⁻¹—conditions typical of airless spray guns with a 0.011-inch orifice operating at 120 bar—induces a progressive loss of colloidal integrity detectable after 40–60 pass equivalents through an ISO 12114:2007 recirculation loop. Particle size analysis by laser diffraction reveals a bimodal distribution emerging from the monomodal baseline (D₅₀ = 0.50 µm, span 0.8), with the secondary peak centered at 1.8–2.2 µm. This coagulum fraction, although less than 0.5% of total solids, is sufficient to clog the 60-mesh nozzle filter within approximately 20 minutes of continuous spraying. In contrast, Celvolit 1475, possessing a lower molecular weight PVOH grade, maintains monomodality for >200 pass equivalents at 10⁵ s⁻¹. For high-pressure application of Celvolit 1495 in automated spray booths for upholstery frame assembly, a pre-filtered shear-protective additive package consisting of 0.15 wt% hydrophobically modified ethylene oxide urethane (HEUR) associative thickener raises the critical shear rate for flocculation above 1.2 × 10⁵ s⁻¹, sufficient to maintain operational stability over an 8-hour shift with a Graco Merkur pump unit.

    Where the application method is roll-coater rather than spray, the mild shear regime (10³–10⁴ s⁻¹ in the nip) does not challenge the shear stability of the base dispersion. Here the differentiating factor relative to other VAE grades becomes the drying rate profile. Celvolit 1495 exhibits a surface skin-over time of 22 seconds at 23 °C/50% RH when cast at 100 µm wet film thickness, compared with 31 seconds for Celvolit 1498, a homopolymer-compatible grade. This difference in open-time is attributed to the narrower particle size distribution (span 0.8 vs. 1.3) and lower concentration of free PVOH in the serum phase (0.9% of total dry weight vs. 1.6% in 1498), allowing rapid capillary-driven consolidation in porous adherends such as paperboard or cotton fabric.

    A property cross-reference with two companion VAE grades from the same manufacturer is shown in the following table. All values are typical and not warranted specifications.

    ParameterCelvolit 1495Celvolit 1475Celvolit 1442
    Solids content, %55 ± 155 ± 155 ± 1
    Brookfield viscosity, mPa·s (sp. 4/20 rpm)1500–35003000–50002000–4000
    pH4.5–5.54.0–5.04.5–5.5
    MFFT, °C≈0≈5≈−5
    Tg, °C (midpoint, DSC)−10 ± 2−5 ± 2−18 ± 2
    Particle size D50, µm0.45–0.550.35–0.500.50–0.70
    Stabilizer typePVOH (88% hydrolysis)PVOH (98% hydrolysis)PVOH + surfactant
    Tensile strength (film), MPa (ISO 527-3)6.0–7.58.0–9.53.5–4.5
    Elongation at break, %700–900400–6001100–1300
    Wet tack rating (finger tack, comparative)HighModerateLow

    Note on the method: tensile films were cast in PTFE dishes, dried 7 days at 23 °C/50% RH, then conditioned at 23 °C/50% RH for 24 h; thickness 0.5±0.05 mm. The rheological fingerprint of Celvolit 1495—low plasticizer demand, high elongation at moderate tensile strength, and rapid wet tack—positions it for applications where compliance to IKEA IOS-MAT-0066 (chemical emission limits) or the formaldehyde-free requirement of CARB ATCM 93120 Phase 2 is mandatory, while the optimized PVOH colloid offers a wider processing window on hydrophobic surfaces than surfactant-stabilized VAE alternatives.

    A second table lists the regulatory conformance matrix most frequently cited in technical dossiers for Celvolit 1495.

    Regulation / StandardApplicable Clause / SectionStatus
    FDA 21 CFR 175.105Adhesives for indirect food contactCompliant as supplied
    FDA 21 CFR 176.170Components of paper and paperboard in contact with aqueous and fatty foodsCompliant subject to §176.170(b)(2) limitations
    FDA 21 CFR 176.180Components of paper and paperboard in contact with dry foodCompliant
    EN 204:2023Classification of non-structural wood adhesivesD2 (no crosslinker); D3 (2% AlCl₃); D4 (4% AlCl₃ + 1% ZrAc)
    REACH (EC) No 1907/2006Registration, Evaluation, AuthorisationSubstance is a polymer; exempt per Article 2(9). Monomer and additive registration confirmed.
    RoHS 2011/65/EURestriction of hazardous substancesNot intentionally added; Pb, Hg, Cd, Cr(VI), PBBs, PBDEs below threshold
    IMO FTPC Part 5Fire test for surface flammability (marine)Passes with appropriate flame retardant combination (tested with 15 phr APP + 5 phr melamine cyanurate)
    When the assembly process demands an open-time exceeding 60 seconds at 35 °C on medium-density fiberboard (650 kg/m³), Celvolit 1495 can be blended with Celvolit 1442 in a 70:30 ratio by dry weight. This blend exhibits no visible syneresis after 6-month shelf storage at 20 °C and shifts the rheology from shear-thinning with a flow index of 0.65 to 0.72 (Ostwald–de Waele fit over 1–100 s⁻¹), improving coatability on rod-coating tables without compromising the ultimate wood failure percentage in a D3 test cycle.

    Published data for this specific configuration is limited for continuous cure processes using radio-frequency heating above 27 MHz. Dielectric monitoring of VAE joint lines at 27.12 MHz indicates a risk of localized arcing when electrolyte (salt tracer) concentration exceeds 0.5% of the dry film; Celvolit 1495, with a specific conductance of the liquid dispersion below 1.8 mS/cm, is compatible with RF curing lines up to 15 kW output in flat-lamination glue spreaders.