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3M 4380 General Purpose Aluminum Foil Tape

    • Название продукта: 3M 4380 General Purpose Aluminum Foil Tape
    • Сайт Factroy: Округ Юду, Ганьчжоу, Цзянси, Китай
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    • Производитель: Ascent Petrochem Holdings Co., Limited
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    Спецификации
    Код ТН ВЭД 966869

    Как аккредитованный завод по производству лент из алюминиевой фольги общего назначения 3M 4380, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.

    Упаковка и хранение
    Упаковка 3M 4380 General Purpose Aluminum Foil Tape is packaged in a cardboard case containing 24 rolls, each measuring 2 in × 50 yd.
    Погрузка контейнера (20-футовый контейнер) 20′ FCL loading: palletized 3M 4380 General Purpose Aluminum Foil Tape cartons, evenly distributed, shrink-wrapped, strapped, secured in clean, dry container.
    Доставка 3M 4380 General Purpose Aluminum Foil Tape is not classified as dangerous goods for transportation. It ships as general cargo by ground, air, or sea, with no UN number, hazard class, packing group, or marine pollutant designation. Store in a cool, dry place away from extreme heat and direct sunlight.
    Хранение Store 3M 4380 General Purpose Aluminum Foil Tape in its original packaging in a cool, dry, well-ventilated area. Maintain approximately 60–80°F (16–27°C) and 40–60% relative humidity. Keep away from direct sunlight, moisture, heat, sparks, and ignition sources. Do not freeze or expose to excessive temperatures. Rotate stock and use within shelf life.
    Срок годности Shelf life is 24 months from manufacture when stored in original packaging at 21°C and 50% relative humidity.
    Бесплатная цитата

    Конкурентоспособные цены на ленту из алюминиевой фольги общего назначения 3M 4380, которые соответствуют вашему бюджету - гибкие условия и индивидуальные котировки для каждого заказа.

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    Запрос

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    Сертификация и соответствие требованиям
    Более подробное введение

    A dead-soft aluminum foil backing combined with a pressure-sensitive acrylic adhesive defines the core construction of 3M 4380 General Purpose Aluminum Foil Tape. The product is supplied in roll form and is positioned for seaming, sealing, and patching on rigid and flexible air-duct systems, foil-faced insulation boards, and metal repair applications where a thin conformable metal barrier is required. Unlike cloth-laminated duct tape or metallized polyester film, 3M 4380 does not rely on scrim reinforcement; handleability and dimensional stability under low stress derive from the aluminum foil carrier. Because the backing is foil, it provides opacity and a metallic surface that can be detected by visual inspection and does not exhibit the same tear-propagating behavior as biaxially oriented polymer films. Representative physical-property values are summarized in Table 1. They are typical lot data, not procurement specification limits; current certificate-of-analysis data should be requested when incoming inspection requires fixed acceptance ranges.

    Representative physical properties of 3M 4380
    PropertyRepresentative valueTest method
    Total tape thickness0.09 mmASTM D3652/D3652M
    Aluminum backing thickness0.05 mmASTM D3652/D3652M
    Acrylic adhesive thickness0.04 mmASTM D3652/D3652M
    Peel adhesion to stainless steel, 180°2.7 N/10 mmASTM D3330/D3330M
    Tensile strength at break26 N/10 mmASTM D3759/D3759M
    Elongation at break5%ASTM D3759/D3759M
    Service temperature range−54 °C to 149 °CManufacturer’s thermal cycling data

    Table 1 values are obtained after conditioning at 23 °C and 50% RH for 24 h unless otherwise noted. The service temperature range is not a continuous load rating and assumes clean, low-stress joints.

    The dead-soft aluminum backing is typically manufactured from rolled foil that has been annealed, resulting in an O-temper material. The O-temper condition denotes a fully annealed state in which residual work hardening from the rolling process is minimized. This temper is specified because it supports hand tearing and permits the tape to be torn across the roll by hand or cut with a straight-edge knife. Hand tearing produces irregular edges, which is acceptable for many sealing applications but not for joints requiring a clean visual line. Where clean edge definition is required, a rotary shear or dispenser knife is used. The metallic backing provides low water-vapor transmission across the taped seam once the adhesive has wet out; this is relevant to condensation control in insulated duct systems where air leakage and vapor drive must be controlled together.

    How Does Dead-Soft Foil Temper Affect Conformability and Tensile Response?

    When the foil backing is characterized under ASTM D3759/D3759M, tensile at break is approximately 26 N/10 mm, and elongation at break is approximately 5%. The dead-soft temper is produced by annealing rolled aluminum to a fully recrystallized condition; this removes much of the work hardening generated during rolling and yields an O-temper foil with low yield strength. In processing, the low yield strength produces plastic deformation rather than elastic springback when the tape is burnished around a crimped duct seam or a rectangular corner bead. This is a critical property distinction: harder-temper aluminum backings may lift after application because they retain elastic energy, whereas dead-soft backing absorbs forming energy and remains in the deformed state. The 5% elongation boundary is an operational limit. Joint movement that imposes local strain above this value will fracture the backing, because the acrylic adhesive layer can flow plastically but the aluminum backing cannot stretch without necking. The tape is therefore not assigned to expansion joints, structural dynamic seams, or vibration-isolated connections where cyclic displacement exceeds the backing strain limit. In static HVAC and insulation jacket seams, the conformability reduces edge-lift failures and maintains a continuous air barrier across flanged connections.

    Peel adhesion measurements are obtained under ASTM D3330/D3330M using a 180° peel angle, 300 mm/min crosshead speed, and a 24 h dwell at 23 °C and 50% RH. The representative peel adhesion to stainless steel is 2.7 N/10 mm. The thin backing alters peel-front stress distribution because the foil bends at the peel line with relatively low bending stiffness; this can produce a lower apparent peel value than a thicker backing with the same adhesive mass. The peel test on polished stainless steel does not simulate field adhesion on galvanized steel with surface roughness, oxide morphology, or forming-oil residues. Adhesion to foil-faced duct board is also affected by the surface energy and release parameters of the facing film. These substrate differences require application trials on the intended surface; the peel value is a comparative control for incoming lot verification, not a predictor of field bond life.

    The acrylic adhesive used in 3M 4380 is a pressure-sensitive system that forms bonds through viscoelastic wet-out rather than through chemical cure. Unlike solvent-borne contact adhesives, it does not require open-time management or forced drying. The adhesive thickness of 0.04 mm is sufficient to compensate for moderate surface roughness on galvanized steel and foil facers but may not fully fill deep scratches or heavily embossed surfaces. In those cases, a thicker adhesive system or a mastic sealant may be required. The tape’s resistance to plasticizer migration is generally better than many rubber-resin systems; it is therefore less likely to soften and ooze at the edge of flexible vinyl or polymer duct connections, although such substrates require trial validation because plasticizer type and concentration vary.

    When Acrylic Pressure-Sensitive Adhesive Contacts Galvanized Steel: Installation Limits

    On galvanized steel ducting, acrylic pressure-sensitive adhesive performance is controlled by surface cleanliness and temperature. Forming oils, loose zinc oxide, and handling films reduce wet-out. The substrate is prepared by wiping with a dry low-lint cloth or by solvent wiping with an approved cleaner; the solvent must be allowed to evaporate completely before tape placement. The bond is formed by pressure, not by solvent evaporation from the adhesive itself. Condensation on the metal surface is a rejection criterion because a continuous water film prevents adhesive contact and can produce immediate peel failure. Installation below 10 °C reduces initial tack because the adhesive storage modulus increases and the polymer does not wet the substrate rapidly; published data for this specific configuration is limited, and cold-climate qualification should be performed on the intended substrate. The service temperature range of −54 °C to 149 °C applies to clean, low-stress joints. Continuous exposure near 149 °C is not recommended where the tape carries mechanical load or where the joint is exposed to high peel forces.

    Surface contact pressure is applied with a hand roller or squeegee immediately after positioning. Manual roller pressure sufficient to produce full adhesive contact is approximately 5–10 N/cm²; excessive force can deform thin duct-board facers and cause foil wrinkling. The purpose of pressure is to collapse adhesive microvoids and increase contact area across the substrate topography. No open flame or heat gun is required for application. When the tape is used on aluminum foil-faced polyisocyanurate or fiberglass duct board, the adhesive bonds to the facing film, not to unbacked fibrous insulation. Adhesion to unbacked fiberglass is outside the specified use because fibrous surfaces prevent continuous adhesive contact and leave void channels for air leakage. The tape should not be installed over wet insulation or over surfaces with visible frost.

    Portfolio Comparisons and the Role of Backing Thickness

    Across the 3M aluminum foil tape portfolio, backing thickness drives the difference between general-purpose and heavy-duty products. 3M 425 is manufactured with a thicker backing, approximately 0.076 mm, and a total thickness near 0.117 mm; its higher tensile and peel values are used for mechanically stressed seaming and abrasion exposure. 3M 4380, with a backing near 0.05 mm and total thickness near 0.09 mm, is easier to hand-tear and more conformable but has lower tensile resistance. Table 2 summarizes representative differences. The adhesive chemistry of 3M 4380 is acrylic, which provides resistance to oxidation and plasticizer migration in many HVAC and insulation applications; it does not have the high-temperature performance of silicone-adhesive foil tapes, which are specified above 149 °C for powder-coat masking or exhaust wrap. In comparison with butyl sealing tapes, 3M 4380 has lower elongation and is not designed to remain soft and flowable under building movement. In comparison with cloth duct tapes, the aluminum backing provides a metallic barrier and higher temperature resistance but lower tear resistance after puncture.

    Representative comparison of 3M 4380 and 3M 425
    Property3M 43803M 425Test method
    Total thickness0.09 mm0.117 mmASTM D3652/D3652M
    Backing thickness0.05 mm0.076 mmASTM D3652/D3652M
    Peel adhesion to stainless steel2.7 N/10 mm4.9 N/10 mmASTM D3330/D3330M
    Tensile strength at break26 N/10 mm44 N/10 mmASTM D3759/D3759M
    Elongation at break5%5%ASTM D3759/D3759M

    For process quality control, incoming inspection commonly includes thickness, peel adhesion, and unwind force. Thickness is checked under ASTM D3652/D3652M; peel adhesion under ASTM D3330/D3330M; unwind force under ASTM D3811/D3811M. These tests require conditioning and calibrated instruments. In production audits, adhesion is not measured on the installed duct; instead, edge lift, wrinkle, and pressure application are inspected visually. The distinction between laboratory adhesion values and installed joint performance is essential because field inspections focus on geometry and surface preparation rather than destructive peel testing of installed tape.

    Compliance verification for surface-burning characteristics is performed under UL 723 and ASTM E84; certification status must be confirmed in the manufacturer’s current certification directory because listing can be product-configuration dependent and may vary by roll width or liner. For air-leakage control in commercial HVAC, tape closure is used in conjunction with mechanical fastening per SMACNA HVAC Duct Construction Standards; the tape does not replace mechanical fasteners for pressure-class duct construction. The aluminum backing is electrically conductive, but the acrylic adhesive layer may act as a dielectric at the bondline; continuity should not be assumed across a taped joint unless specifically tested. When the tape is used in food-processing areas, the relevant regulatory status of the adhesive and backing should be verified under applicable FDA 21 CFR sections; published data for this specific configuration is limited and a specific compliance statement from the manufacturer is required for the intended contact application.

    Roll-width and converting tolerances affect automated dispensing more than manual installation. Standard roll widths in some regions range from 25 mm to 150 mm; regional availability and lot-specific wound tension vary. Automated lines should control unwind tension below 1.0 N/mm of width to avoid exceeding the foil yield point and inducing necking or telescoping. Rotary knife dispensers are typically configured with a cutting angle of 45° and blade replacement intervals near 10 000 cycles; published data for this specific configuration is limited, and line qualification should be conducted on the intended roll width and liner configuration. Storage above 29 °C or below 5 °C for extended periods can alter tack and unwind stability; rolls should be conditioned to room temperature before high-speed dispensing.

    The product is not specified for continuous immersion in liquid water, direct flame impingement, or dynamic structural joints. It is also not recommended for use on low-surface-energy substrates such as untreated polypropylene or polyethylene without surface treatment or primer; peel adhesion on those substrates is substantially lower than on metal or foil facers. Published data for adhesive performance on those plastics is limited; trial bonding with the actual substrate and environment is required.

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