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Bostik T620 AIRSEAL SEALING TAPE BG1 High Quality Flashing Tape For Inside Use

    • Название продукта: Bostik T620 AIRSEAL SEALING TAPE BG1 High Quality Flashing Tape For Inside Use
    • Сайт Factroy: Округ Юду, Ганьчжоу, Цзянси, Китай
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    • Производитель: Ascent Petrochem Holdings Co., Limited
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    Код ТН ВЭД 176402

    Как аккредитованная фабрика Bostik T620 AIRSEAL SEALING TAPE BG1 высококачественной мигающей ленты для внутреннего использования, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.

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    The product designated Bostik T620 AIRSEAL SEALING TAPE BG1 High Quality Flashing Tape For Inside Use is a cold-applied, pressure-sensitive flexible flashing tape supplied in roll form. The model designation T620 identifies the tape format and adhesive system; the suffix BG1 separates the interior-use configuration from exterior flashing products. The tape is intended for continuity of interior air barrier and vapour control layer systems at laps, abutments, and penetrations, where the sealing layer must arrest both air exfiltration and secondary moisture ingress. It requires no heat, solvent, or primer activation on clean substrates and is applied by roller pressure. Product-specific values for total thickness, width, roll length, peel adhesion, and service temperature are contained in the manufacturer’s technical data sheet; published data for this specific configuration is limited in this document. Class-typical interior polymer-backed airseal tapes are supplied in widths from 50 mm to 150 mm and roll lengths from 20 m to 30 m. The applicable product category within the European regulatory framework is ancillary vapour control layer tape under EN 13984:2013; Declaration of Performance values should be verified against the project specification before installation.

    What Separates an Interior Airseal Flashing Tape from Exterior Bituminous or Butyl Membranes?

    The primary difference is not merely product thickness or colour but the balance between adhesion, vapour diffusion, and indoor emission behaviour. Interior flashing tapes operate in a low-ultraviolet, low-liquid-water environment, but they must maintain adhesion to low-energy polymer films, coated panel surfaces, and rough sawn timber without solvent primers. Exterior bituminous flashings rely on bitumen mass and often require surface priming on porous substrates; they may also introduce odour and plasticiser migration that makes them unsuitable for sealed interior cavities. Butyl-based universal tapes exhibit high tack on metals and glass but can remain soft under load, leading to creep in vertical joints if the backing or adhesive mass is not crosslinked. The Bostik T620 AIRSEAL SEALING TAPE BG1 High Quality Flashing Tape For Inside Use is positioned as an interior vapour-control-layer tape rather than a standing-water barrier. That distinction matters because the long-term failure modes differ: interior tapes fail by adhesive drying, plasticiser uptake, or joint shear under stack pressure, while exterior tapes fail by UV degradation, freeze-thaw water absorption, or membrane swelling.

    Adhesive chemistry further differentiates the product classes. Interior airseal tapes often use acrylic or synthetic rubber adhesives selected for low-temperature tack and moderate shear resistance. Acrylic adhesives are usually less aggressive on low-energy films but can achieve good aged adhesion after wet-out. Synthetic rubber adhesives provide high initial tack on rough surfaces but may be more susceptible to oxidative embrittlement if exposed to elevated temperatures. Butyl adhesives exhibit excellent moisture resistance but low cohesive strength at elevated temperatures. Bitumen mass has high water resistance but limited compatibility with polymer vapour control layers. Because the T620 AIRSEAL BG1 is specified for interior application, the relevant durability exposure is not liquid water but humidity cycling, temperature gradients, and stack pressure.

    The comparison below summarises class boundaries, not product-specific certified values:

    Attribute T620 AIRSEAL BG1 interior tape Bitumen-based exterior tape Butyl-based universal tape
    Primary placement Interior air barrier laps, vapour control layer joints Exterior fenestration, roof underlayment, below-grade Mixed interior/exterior sealing on metal, glass, polymer sheet
    Activation requirement Pressure-sensitive; no heat May require primer or heat for conformability Pressure-sensitive; retains tack at low temperatures
    Vapour diffusion position Low-vapour-transmission to maintain interior barrier continuity Variable; often vapour-closed but not tested for interior emission Low to medium vapour transmission
    Typical application window Surface temperatures class-typically 5 °C to 40 °C Often 5 °C to 35 °C Can be applied at -10 °C or above depending on tackifier package
    Relevant standards EN 13984:2013, EN 1939, ASTM D3330 ASTM D1970, EN 13859-1 EN 13969 or manufacturer-specific values
    Indoor emission considerations Positioned for interior use; request VOC test data under ISO 16000-6 or equivalent Bituminous odour and emission load restrict interior use Emission profile depends on filler and plasticiser package

    Interior application sequences for this product follow the air barrier continuity principle: any linear junction between vapour control membranes, sheathing boards, or service penetrations is sealed before insulation and lining layers obscure the joint. The tape is positioned with a minimum overlap across the joint; class-typical practice requires a 50 mm to 100 mm pressure-applied band on each side. Substrate preparation removes loose fibres, dust, oil, and condensed moisture. On OSB/3 and plywood surfaces, adhesion is strongly influenced by surface energy and wood extractives; a surface temperature above 5 °C reduces the risk of adhesive wet-out failure. Application below the dew point or on surfaces with visible moisture is unacceptable. Pressure application with a rigid 40 mm to 60 mm roller improves contact between the adhesive and porous substrates, particularly on panel edges and nail heads.

    At window and door reveals, the tape is cut to length and dressed into the corner without stretching the backing. Stretching reduces the effective thickness and can create capillary paths at the point where the vapour barrier is terminated. On service penetrations, the membrane is cut with a cross or slit, and the tape is lapped from the pipe or cable to the surrounding membrane. Because interior vapour control layers are frequently polyolefin films with low surface energy, peel adhesion should be verified on the actual membrane rather than on steel or glass. Published data for this specific configuration is limited; therefore, project-specific peel adhesion should be evaluated using EN 1939 or ASTM D3330-04 against the specified vapour control membrane. The tape is not a substitute for defective substrate flatness; gaps larger than the tape’s conformability range require backing support or a compatible filler.

    Substrate Adhesion and Installation-Window Boundary Conditions

    The usable service range of an interior flashing tape is governed by the pressure-sensitive adhesive’s viscoelastic response. At low surface temperatures, wet-out is slow and initial tack may be insufficient to hold a vertical lap before pressure application. At high temperatures, the adhesive mass softens and can creep under continuum stress from membrane shrinkage. Class-typical application data for interior polymer-backed tapes specify surface temperatures between 5 °C and 40 °C, with relative humidity below 80% and substrate moisture content at or near the service equilibrium of the panel. The product-specific limits in the T620 AIRSEAL BG1 technical data sheet should be followed when project conditions fall outside these ranges. Installers quantify surface temperature with an infrared thermometer or contact probe because air temperature alone does not account for night-time cooling of panels.

    Adhesion is measured after a dwell time; initial adhesion is a handling property, while final adhesion is a performance property. Class-typical pressure-sensitive adhesives develop up to 80% of final peel strength within the first 24 h of contact at 23 °C. At lower temperatures, dwell time must be extended. This distinction is critical in pre-cladding inspections because a tape that separates immediately after application may still form a durable joint if pressure and temperature are maintained during cure. Conversely, high initial tack on a dusty or friable surface may fail later when the weak boundary layer detaches from the substrate.

    On mineral substrates such as concrete or gypsum board, surface pH and residual dust must be assessed. Alkaline surfaces above pH 11 can attack certain acrylic adhesives; a surface conditioner may be required but must not contain migratory oils or amines that plasticise the adhesive. The tape is not intended for direct application to bituminous membranes or solvent-based primers unless the manufacturer’s compatibility matrix states otherwise. Solvent residues remain in the substrate and can form a weak boundary layer that causes adhesive delamination under elevated humidity. Published data for this specific configuration is limited; therefore, compatibility tests should include 7-day and 28-day peel aging at staged humidity from 50% to 90% relative humidity, with failure mode recorded as cohesive, adhesive, or backing tear.

    When the Tape Is Used as a Vapour-Control Layer Transition, Incompatibilities Require Specific Controls

    When the product is specified as the continuity layer at wall-floor junctions, it operates under a vapour pressure differential that varies with indoor and outdoor humidity. The adhesive must remain intact under sustained tension at the joint; shear adhesion and creep resistance are therefore more critical than initial tack. Class-typical pressure-sensitive acrylic tapes exhibit reduced shear holding above 60 °C; for interior applications near heating pipes, fireplaces, or unventilated solar gains, verify the manufacturer’s continuous service temperature declaration. Published data for this specific configuration is limited; if service temperatures above 70 °C are anticipated, mechanical support or a metal cover strip may be required.

    Flexible PVC vapour control membranes containing monomeric plasticisers can transfer plasticiser into the adhesive over time, reducing peel strength and promoting edge lifting. Alkyd paints, silane coupling agents, and certain wood preservatives can form low-surface-energy interlayers that interfere with wetting. The release liner must be clean and intact until application; a damaged liner can expose the adhesive to dust and reduce tack before the tape reaches the joint. On joints where thermal movement is expected, the tape should be installed with a slight concave profile or supported by a backing strip to avoid tensile strain concentration. The product is not intended for continuous water immersion, positive water head, or exterior UV exposure unless specifically rated by the manufacturer for that condition.

    At the intersection between a concrete slab and a timber-frame wall, vapour pressure can be high from residual construction moisture. The tape must seal both the vertical membrane and the horizontal floor slab. Concrete slab surfaces may require conditioning to remove laitance and loose particles. Adhesion to damp concrete is not reliable; the substrate moisture content should be measured with a carbide moisture meter or equivalent. Published data for this specific configuration is limited; therefore, a peel test on the actual slab after conditioning is required before full production.

    On timber-frame and light-gauge steel panel production lines, the tape is applied after panel routing and before cavity insulation. Roller pressure, application speed, and dwell time determine initial adhesion, and batch-to-batch variability in adhesive coat weight can shift peel values. A process control check using a spring-loaded tension meter or equivalent is recommended when joints are not visually accessible after cladding. The release liner should be removed without stretching the backing; backing deformation can reduce the tape’s effective thickness at the joint and create capillary channels. Published data for this specific configuration is limited, so in-plant adhesion audits should record panel surface temperature, relative humidity, tape batch number, and roller type alongside EN 1939 peel results. Failure analysis on production lines generally distinguishes cohesive adhesive splitting from adhesive detachment at the substrate; cohesive splitting after a conditioned dwell period indicates adequate wet-out, while interfacial detachment on OSB/3 suggests extractives or insufficient surface preparation.

    Batch-to-batch variance is managed through incoming inspection. When a new shipment arrives, a short loop test is carried out using a standard aluminium or stainless steel panel at 23 °C and 50% relative humidity. The release liner is removed, the tape is applied with a standard hand roller, and peel is measured after 24 h. This practice identifies deviations in adhesive coat weight before the tape reaches the wall line. If roll-to-roll properties differ by more than the tolerance stated in the manufacturer’s certificate, the material is quarantined.

    Third-Party Test Methods for Joint Continuity and Compliance Documentation

    When the product is used in a declared air barrier system, the test evidence required is normally a combination of product-level adhesion data and joint-level airtightness data. Adhesion testing under EN 1939 or ASTM D3330-04 yields a peel force value in newtons per width; the value alone is not sufficient without the observed failure mode. Tensile properties of the backing can be evaluated under ISO 527-3, which measures the elongation at break and tensile strength of the polymeric film. Water vapour diffusion of the tape is determined by the equivalent air layer thickness or water vapour resistance factor under EN ISO 12572. For interior surfaces in Europe, the reaction to fire classification may need to be declared under EN 13501-1. The table below summarises the suitable test methods and their application relevance.

    Property Test method Measured parameter Relevance to interior flashing tape
    Peel adhesion EN 1939 / ASTM D3330-04 Peel force per unit width and failure mode Verifies attachment to vapour control membrane or sheathing
    Tensile behaviour of backing ISO 527-3 Tensile strength and elongation at break Assesses resistance to joint movement and tearing
    Water vapour transmission EN ISO 12572 Water vapour resistance factor or sd value Confirms continuity of vapour-control function
    Reaction to fire EN 13501-1 Euroclass classification Interior surface regulation under building codes
    Joint air permeability EN 12114 Air leakage rate at pressure differential Validates taped joint performance within air barrier system
    Resistance to ageing EN 1296 or ASTM D3611 Adhesion retention after heat/humidity aging Indicates long-term durability under interior humidity cycles

    Project specifications should require the manufacturer to supply batch-specific documentation rather than relying on generic product literature. The absence of product-specific published values in third-party databases is a documentation gap; the manufacturer’s Declaration of Performance is the controlling document for the CE-marked vapour control layer tape category. On non-European projects, equivalent evidence under ASTM D3330-04 and ASTM D3654 may be requested. The tape is not accepted for use where the substrate is not clean, dry, and free of frost; where continuous water immersion is present; or where the backing has been stretched or torn during application. No further statement is made regarding untested combinations.

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