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Bostik BOSTIK ROLL 240 Contact Dry Adhesives

    • Название продукта: Bostik BOSTIK ROLL 240 Contact Dry Adhesives
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    Among solvent-free dry-bonding roll goods, Bostik BOSTIK ROLL 240 is classified as a contact dry adhesive supplied as a continuous non-tacky thermoplastic film or web. The roll format eliminates the solvent flash-off step, open-time control, and mechanical drying that govern liquid contact cement operations. Because the adhesive is solid at ambient temperature, it does not develop bond until the lay-up is heated and compressed: heat converts the adhesive to a melt-wetting state, and pressure drives capillary and mechanical penetration into fabric, foam, or leather surfaces. Upon cooling, the bond line develops green strength and can be trimmed or handled. The designation contact dry adhesive is used to distinguish this product from pressure-sensitive transfer tapes and from reactive liquid adhesives: the roll remains tack-free before activation, but once thermally activated it behaves as a contact-wetting adhesive under dwell pressure. Product-specific values for areal weight, softening point, melt flow, roll width, and backing type should be obtained from the current Bostik BOSTIK ROLL 240 technical data sheet; unpublished lot-specific values may vary with grade and film-weight selection. In the absence of publicly available Bostik product-specific data for this configuration, the processing ranges presented here are class-typical for roll-format thermoplastic contact dry adhesives and are not supplier-guaranteed lot values.

    What Distinguishes a Roll-Format Contact Dry Adhesive from Solvent-Borne Contact Cements?

    Solvent-borne contact cements rely on a volatile solvent carrier to keep the polymer in solution until brush or spray application. After evaporation, the dry film is brought into contact with a second coated substrate; bond formation is immediate at ambient temperature. The dry roll adhesive operates by a different mechanism: the polymer is pre-formed into a solid film, and thermal energy replaces solvent evaporation as the mobility trigger. This distinction drives equipment selection. Spray booths, explosion-proof dryers, and VOC abatement systems are not required for the roll adhesive; however, a heated flat-bed press, heated rotary drum, or continuous belt laminator becomes mandatory. Published VOC test values for liquid solvent cements are commonly 600–750 g/L under EPA Method 24, whereas a non-tacky roll adhesive is typically below 10 g/L or non-detect with headspace GC-MS. The absence of a solvent carrier also removes the risk of solvent entrapment in low-permeability substrates such as compact PVC or metal skins, but it introduces a thermal boundary condition: substrates must tolerate the activation temperature without deformation, gloss loss, or plasticizer emission.

    In terms of bond formation, solvent-borne contact adhesives develop peel strength after the two coated surfaces are joined under hand or nip pressure; the open time window is controlled by solvent evaporation rate and can be as short as 10 min or as long as 30 min at 23 °C. A dry roll adhesive has no open time in the same sense: once the web is cooled below its softening range, the bond is fixed and cannot be repositioned without reheating. This converts the process risk from operator-dependent flash-off timing to equipment-dependent temperature uniformity. Peel strength of roll-format contact dry adhesives should be measured by ISO 11339:2022 or ASTM D903-98(2017) on the actual stacked laminate; product-specific values for Bostik BOSTIK ROLL 240 are not published in public domain literature, so incoming inspection requires a laboratory peel test on the production substrate combination rather than reliance on a generic datasheet value. For soft polyurethane foam-laminated textiles, class-typical T-peel values for copolyamide or copolyester roll webs fall between 2 N/mm and 6 N/mm, with the failure mode usually substrate foam tear rather than adhesive cleavage.

    Process/property parameterBostik ROLL 240 class: dry thermoplastic rollSolvent-borne contact cementWaterborne contact adhesive
    Carrier stateNon-tacky dry film; no solventFlammable solvent blendAqueous dispersion
    Typical VOC under EPA Method 24<10 g/L or non-detect600–750 g/L50–150 g/L
    Activation temperature120–170 °C platen/roll surface15–35 °C ambient20–40 °C after dry
    Open timeNone after cooling; reactivation requires heat10–30 min at 23 °C20–60 min at 23 °C
    Bond formationHeat + pressure, then cool under pressureContact pressure at ambientContact pressure after dry
    Continuous process equipmentFlat-bed or rotary laminatorManual, roll coater, or spray boothRoll coater or spray
    Peel test methodISO 11339:2022ISO 11339:2022ISO 11339:2022

    Compliance status for roll-format conversion is governed by standards that differ from liquid coating operations. For automotive interior laminations, test reports typically reference VDA 278 for VOC and fog emissions, ISO 3795 or FMVSS 302 for horizontal burning rate, and REACH (EC) No 1907/2006 notification duties for imported roll goods. Product-specific certification must be confirmed with the supplier, because regulatory compliance depends on the exact grade, basis weight, and any post-lamination edge treatment. In food-contact packaging, the dry roll form is not automatically compliant under FDA 21 CFR 175.105; end-use testing is required when the adhesive could become a functional barrier or indirect additive. Electrical and electronic enclosures may require RoHS Directive 2011/65/EU documentation for heavy metals and phthalates. Without lot-specific declarations, a compliance statement alone is not sufficient for incoming inspection or for automotive PPAP documentation. Published public-domain data for Bostik BOSTIK ROLL 240 is limited beyond the manufacturer’s technical data sheet and safety data sheet; therefore, regulatory and process parameters in this section are class-typical ranges rather than guaranteed lot values.

    Roll 240 Configuration and Thermal Activation Boundary Conditions

    The roll format is supplied as a continuous web that can be slit to width, kiss-cut, or die-cut before lamination. Class-typical areal weights for thermoplastic contact dry adhesives in roll form range from 20–80 g/m²; selection depends on surface roughness and porosity of the face material, foam cell structure, and required peel strength. A heavier adhesive web increases melt penetration into porous substrates but increases the risk of strike-through on lightweight woven textiles. The activation window is defined by three coupled variables: platen surface temperature, bond-line pressure, and dwell time. A flat-bed press with closed-loop thermocouple control should maintain a platen-temperature differential of less than ±5 °C across the entire bonding area. Edge delamination on 1,500 mm-wide automotive door-panel stacks is commonly traced to a cold zone at the outer 50 mm of the platen, where surface temperature can lag the setpoint by 5–10 °C during high-volume cycling. Pneumatic or hydraulic press platens with machined flatness of 0.05 mm/m and pressure uniformity of ±0.05 MPa reduce bond-line thickness variation. Typical bond-line pressure is 0.2–0.6 MPa for low-density polyurethane foam; the lower end prevents foam cell collapse, while the upper end densifies nonwoven backings and improves surface wetting.

    Softening points for copolyamide and copolyester roll webs of this class are typically 110–140 °C by ISO 4625-1:2020. Melt mass-flow rate at 190 °C/2.16 kg usually falls between 10–60 g/10 min under ISO 1133-1:2022; this range provides enough flow to penetrate open textiles but not enough to drip from inclined surfaces in the press. Density, determined by ISO 1183-1:2019 method A, is generally 1.02–1.12 g/cm³. A 10 °C rise in activation temperature can reduce the melt viscosity of a polyamide-based web by roughly 30–50% within the processing window, which narrows the acceptable platen range because excessive flow promotes adhesive bleed through perforated leather or coarse denier fabrics. Rotary drum laminators are less tolerant to over-temperature than flat-bed presses because the web is exposed to the heated drum for a shorter contact arc; a drum diameter of 300–600 mm with a silicone nip roller at 0.2–0.4 MPa requires a higher setpoint than a static platen press to reach the same bond-line melt temperature. Batch-to-batch variance in web basis weight of ±5% can shift the required dwell by 3–7 s; therefore, production trials on each incoming roll are recommended when the bond is used for safety-critical seat or headliner assemblies.

    ParameterClass-typical range for roll-format thermoplastic contact dry adhesivesTest method/equipment
    Areal weight20–80 g/m²Mass per unit area, ISO 536:2019
    Softening point110–140 °CRing-and-ball, ISO 4625-1:2020
    Melt mass-flow rate10–60 g/10 min at 190 °C/2.16 kgISO 1133-1:2022
    Density1.02–1.12 g/cm³ISO 1183-1:2019, method A
    Press platen temperature130–170 °CHeated flat-bed press, thermocouple-platen calibration
    Bond-line pressure0.2–0.6 MPaHydraulic press with ±0.05 MPa control
    Dwell time10–40 s after melt contactTrial laminate with thermocouple in bond line
    Storage<30 °C, <60% RH, sealed moisture-barrier bagSupplier-stipulated moisture control

    Moisture uptake by polyamide-based webs in high-humidity plants can create bond-line microvoids; when substrate or ambient moisture exceeds 60% RH, the web should be conditioned and the substrate pre-dried at 60–80 °C for at least 2 h or until moisture content falls below 0.5% by weight. Pre-drying is especially critical with hygroscopic leather splits and open-cell polyurethane foams, since trapped steam expands during activation and reduces bond coverage. Storage of the roll should be in a sealed moisture-barrier bag at less than 30 °C and less than 60% RH; partial rolls exposed to high humidity may develop blocking or dimensional distortion. The roll should not be stored near ultraviolet sources or near strong oxidizing agents because oxidative embrittlement changes the heat-seal initiation temperature.

    When Flat-Bed Lamination Replaces Manual Contact Cement Application

    When a flat-bed laminating line replaces manual contact cement application, the process changes from a spray-and-dry sequence to a cut-place-press sequence. For a rigid automotive door-panel substrate, the converter typically cuts the dry adhesive web to net shape, positions it between the substrate and the face fabric, and transfers the lay-up into an electrically heated or oil-heated platen press. The press closes to 0.4 MPa at a platen setpoint of 150 °C; the bond line remains under pressure for 25–40 s after the web reaches melt temperature. The assembly is then cooled under pressure until the bond-line temperature falls below the softening point, preventing fabric springback or edge lift. Manual solvent contact cement would require spray-booth ventilation, multiple flash-off stations, and a hand-pressed contact bond that may exhibit inconsistent peel strength due to operator-dependent open time. The dry roll format provides a repeatable bond-line area when the press platen and die-cut web are aligned; however, the process is not suitable for on-site repair or for heat-sensitive substrates that cannot tolerate 130–170 °C surface temperature. Low-surface-energy polyolefin substrates may require corona or plasma pretreatment, and heavily plasticized PVC may extract plasticizer into the bond line over time, reducing heat resistance and peel strength. In footwear collar laminations, the roll web can be kiss-cut to a narrow strip and reactivated by a band press or profile press, but speed is limited by the dwell time required for full melt penetration into suede or nylon tricot.

    Production-scale bottlenecks for the dry roll process include die-cutting registration on contoured parts and heat transfer into three-dimensional seams. A heated membrane press with an elastomeric diaphragm can follow moderate curvature, but uniform pressure is more difficult to maintain above 0.3 MPa on deep draws; under-pressure zones at concave radii may require localized pre-heating with infrared lamps. The bond line should be inspected before lamination for web fold-over or slitting dust, because a folded edge creates a visible witness line and lowers local peel strength. Incoming fabric lots with residual silicone softeners or fluorocarbon finishes can block adhesion; a wetting tension test according to ISO 8296:2003 is used to verify surface energy before production. Published peel values for Bostik BOSTIK ROLL 240 on specific substrates are not available in public domain documentation; ISO 11339:2022 T-peel testing on the production laminate is therefore advised for each substrate combination before lot acceptance. Operators should record platen temperature, dwell, pressure, and web lot number on each batch because shifts in web softening point of even 5 °C can move the process from cohesive failure of the foam to interfacial delamination when the platen setpoint is not adjusted.

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