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3M 431 Premium Performance Aluminum Foil Tape

    • Название продукта: 3M 431 Premium Performance 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 360045

    Как аккредитованный завод 3M 431 Premium Performance Aluminum Foil Tape, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.

    Упаковка и хранение
    Упаковка Clear plastic wrap around one 2-inch by 55-yard roll of 3M 431 Premium Performance Aluminum Foil Tape.
    Погрузка контейнера (20-футовый контейнер) 20′ FCL container loaded with palletized 3M 431 Premium Performance Aluminum Foil Tape, securely braced and moisture-protected for ocean transport.
    Доставка 3M 431 Premium Performance Aluminum Foil Tape ships as a non-hazardous, non-DG article under general freight. It requires no UN hazard class, packing group, or special transport label. Store in a cool, dry area; protect from moisture, direct sunlight, and extreme temperatures. Standard cartons and pallets apply.
    Хранение Store 3M 431 Premium Performance Aluminum Foil Tape in a cool, dry, well-ventilated area away from direct sunlight, heat sources, open flames, and incompatible chemicals. Keep rolls sealed in original packaging, upright and off the floor. Maintain 16–27°C (60–80°F) and 30–50% relative humidity. Avoid moisture, dust, solvents, acids, and alkalis. Rotate stock and follow shelf-life recommendations. Do not freeze or crush rolls.
    Срок годности Shelf life is 24 months from manufacture when stored in original packaging at 21°C (70°F) and 50% relative humidity.
    Бесплатная цитата

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    Запрос

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    Сертификация и соответствие требованиям
    Более подробное введение

    3M 431 Premium Performance Aluminum Foil Tape is manufactured as a dead-soft aluminum foil coated with an acrylic pressure-sensitive adhesive. The product is typically supplied in log-roll form for HVAC seam sealing, aluminum-faced insulation repair, and metal-surface masking. Three technical attributes separate the 431 from general-purpose aluminum foil tapes: the gauge of the dead-soft foil, the thickness of the acrylic adhesive layer, and the low-porosity foil surface that functions as a moisture-vapour barrier when the tape is fully adhered. Manufacturer-published physical property data are reported under ASTM D3330/D3330M, ASTM D3654/D3654M, and ASTM D3759/D3759M; these values are typical and should be verified against the current 3M technical data sheet and lot certificate of analysis. The tape is not a structural fastener; building codes and project specifications may require separate mechanical fastening for ductwork.

    Dead-Soft Foil Gauge and Acrylic Adhesive Architecture

    At the construction level, the product consists of a dead-soft aluminum foil backing combined with a pressure-sensitive acrylic adhesive. Manufacturer-published typical total thickness is 0.13 mm (5.0 mil), with the adhesive layer contributing approximately 0.05 mm (2.0 mil). The dead-soft foil is intentionally annealed to reduce springback; this condition permits the tape to remain closed over nonplanar duct seams, but it also means the backing can crease irreversibly when folded at acute angles. Physical property tests for thickness, tensile, and elongation are normally performed according to ASTM D3652/D3652M and ASTM D3759/D3759M. Representative published values include a tensile strength of 525 N/100 mm (30 lb/in) and elongation at break of 6%. These values describe the foil-dominated mechanical response, not the creep resistance of the adhesive.

    Property Typical value Test method
    Total tape thickness 0.13 mm (5.0 mil) ASTM D3652/D3652M
    Adhesive thickness 0.05 mm (2.0 mil) ASTM D3652/D3652M
    180° peel adhesion to stainless steel 71 N/100 mm (65 oz/in) ASTM D3330/D3330M
    Tensile strength at break 525 N/100 mm (30 lb/in) ASTM D3759/D3759M
    Elongation at break 6% ASTM D3759/D3759M
    Continuous service temperature −40 °C to 121 °C (−40 °F to 250 °F) Manufacturer-published

    The acrylic adhesive is selected for thermal-oxidative resistance relative to natural rubber and synthetic rubber adhesives. In high-temperature duct service, the foil backing shields the adhesive from direct radiant heat, but the adhesive layer still dictates the upper continuous temperature boundary. At temperatures above approximately 121 °C (250 °F), acrylic cohesive strength declines, and shear-loaded vertical seams may creep. The tape should be mechanically supported or protected when sustained service approaches the upper published boundary. Published data for shear adhesion failure at the upper temperature limit is limited; project-specific testing is required where duct surface temperatures exceed 100 °C (212 °F).

    Adhesion build on rigid fiberglass duct board is controlled less by the tape than by the substrate boundary layer. Duct fabrication shops observe that dust, glass fibers, and release agents on factory-formed aluminum facings create a weak boundary layer that can cause peeling, even when the tape itself meets published adhesion values. A dry wipe or a controlled solvent wipe with isopropyl alcohol or heptane is usually required before tape application. The solvent must be fully evaporated before the foil tape is applied; otherwise, entrapped solvent plasticizes the acrylic adhesive at the bond line. Bond formation requires full-surface pressure, typically applied by a hand roller, and dwell time. At 20 °C (68 °F), nominal adhesion develops over 24–72 h; at 5 °C (41 °F), the same build may require significantly longer because polymer chain mobility in the pressure-sensitive adhesive is reduced.

    What Limits Cold-Weather Application Below 10°C on Aluminum-Faced Insulation?

    Cold-weather application is limited by two competing mechanisms: increased adhesive modulus and the formation of a condensed moisture layer. When substrate temperature falls below approximately 10 °C (50 °F), the adhesive's loss modulus increases and the tape cannot wet out the microscopic roughness of the aluminum facing. The resulting contact area is insufficient to generate a stable peel interface; failures occur at the adhesive-substrate interface rather than within the adhesive. Pressure-sensitive adhesion requires the adhesive's storage modulus at bonding temperature to remain sufficiently low for micro-flow into the substrate. The Dahlquist criterion places this threshold at approximately 0.1 MPa at 1 Hz; below the acrylic's glass transition region, the storage modulus rises above this threshold and wet-out becomes incomplete. This explains the low-temperature application boundary more precisely than a single application-temperature number. On a production duct line, the substrate may be at 0 °C (32 °F) while the room air is warm; the first tape-to-metal contact can cool the adhesive within seconds and freeze the wet-out process before the roller passes.

    A second boundary appears when the substrate temperature falls below the dew point of the surrounding air. Condensation creates a liquid water film that prevents adhesion entirely. For on-site HVAC work, substrate and tape should be stored at 15–25 °C (59–77 °F) and the tape should not be applied when the substrate temperature is within 3 °C (5.4 °F) of the dew point. ISO 13788 provides a useful calculation route for condensation risk on building envelope surfaces. Solvent cleaning should use only clean, lint-free wipes. Isopropyl alcohol and heptane are common cleaners; aromatics, ketones, and chlorinated solvents are not recommended because they can leave residues that affect the acrylic adhesive or attack the backing.

    Above ambient temperature, the processing boundary is not only the published upper service temperature but also the softening behaviour of the adhesive. During hot-weather applications to rooftop ductwork, surface temperatures may exceed 50 °C (122 °F). The tape should be applied without tension; stretching the foil backing during installation builds residual stress that later lifts the tape at discontinuities. Automatic tape dispensers on HVAC manufacturing lines should use unwind tension below the yield point of the aluminum foil. Pressure application should use a compliant roller; hard metal rollers can create pinpoint pressure and tear the foil, while soft rollers may fail to drive adhesive into surface texture. On spiral duct lines, the tape is typically applied to the longitudinal seam after the lockform seam is closed and cleaned.

    Aluminum foil and acrylic adhesive have substantially different thermal expansion coefficients; the foil expands at approximately 23 × 10⁻⁶ K⁻¹, while unfilled acrylic pressure-sensitive adhesives can expand at 100–200 × 10⁻⁶ K⁻¹. Under repeated thermal cycles from −20 °C to 70 °C, this mismatch can create micro-shear strains at the backing-adhesive interface. The dead-soft foil reduces the tendency for edge lifting because it can conform to the adhesive's dimensional changes without storing high elastic energy. Moisture ingress at the tape edge can initiate galvanic corrosion if the foil is in contact with carbon steel ductwork. The aluminum backing is anodic to carbon steel in a wetted galvanic couple, and the exposed cut edge can therefore corrode preferentially under prolonged condensation. This is an operational boundary in refrigeration and outdoor duct applications; edge sealing with a compatible mastic or over-taping is required where the assembly is exposed to liquid water.

    Thermal reflectance and moisture-vapour control are separate functions of the foil backing. Intact clean aluminum foil has a surface emittance below 0.10 when measured under ASTM C1371; this property is reduced by surface oxidation, dust, and oil residues. In HVAC systems, the tape is therefore used as a sealing layer rather than as a primary radiant barrier unless the foil surface is kept clean. Water-vapour transmission through intact foil is below the detection limit of practical cup tests conducted under ASTM E96/E96M; however, perforations from staples or scratches create local vapour paths. A continuous combination of mechanical fastening and foil tape is required where building codes require vapour-tight joints.

    When 431 Replaces General-Purpose Thinner Foil or Silicone-Adhesive Tape

    Selection between the 431 and other aluminum foil tapes is driven primarily by service temperature, surface condition, and cold-temperature conformability. Compared with general-purpose acrylic foil tapes at total thickness of 0.10–0.12 mm (3.9–4.7 mil), the 431 uses a heavier foil gauge and a higher adhesive thickness. This increases tensile strength and puncture resistance, but also increases bending stiffness; the tape may lift on complex profiles if not fully rolled. The foil’s dead-soft condition partially offsets the stiffness effect by reducing springback. For silicone-adhesive foil tapes, the dominant advantage is continuous temperature capability commonly above 200 °C (392 °F); however, silicone adhesives typically have lower initial room-temperature adhesion and are more surface-sensitive. Rubber-based foil tapes may show faster initial wet-out at low temperatures, but their thermal-oxidative stability is lower, and the adhesive can embrittle under repeated cycling.

    Operational boundaries include chemical incompatibility. The acrylic adhesive is softened by ketones, esters, chlorinated solvents, and aromatic hydrocarbons. Contact with these solvents should be avoided because the adhesive can swell at the bond line and lose shear resistance. Strong acids and alkalies can oxidize the foil backing and attack the adhesive. The exposed aluminum foil is electrically conductive across its surface, but the adhesive layer is not a reliable conductive path; grounding applications require mechanical contact to the foil surface, not pressure through the adhesive. In addition, anodized or painted aluminum facings are non-conductive; the tape's exterior foil remains conductive but cannot create continuity to an insulated substrate. The tape is not recommended for continuous immersion in water, for direct flame exposure, or for use as electrical insulation.

    Common roll widths include 48 mm, 72 mm, and 96 mm, with other widths produced by slitting operations. Storage should be in original packaging at 10–25 °C (50–77 °F) and 40–60% relative humidity. Extended storage at high humidity can oxidize foil edges; acrylic adhesive is less moisture-sensitive than rubber adhesives, but the aluminum backing can develop white corrosion products. Shelf life is typically 18–24 months from the date of manufacture when stored properly; the actual date should be taken from the roll label. On insulated duct systems, the tape performs as a vapor-sealing component only when the foil is not punctured and the adhesive is fully bonded to a clean, dry substrate. Where local codes require fire-rated materials, the project specification should reference UL 723 or ASTM E84 separately; published data for this specific configuration is limited. For batch acceptance, the lot certificate should be compared with the manufacturer's current technical data sheet and sample dimensions should be checked against ASTM D3652/D3652M.

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