Продукты

3M 435 Vibration Damping Tape

    • Название продукта: 3M 435 Vibration Damping Tape
    • Сайт Factroy: Округ Юду, Ганьчжоу, Цзянси, Китай
    • Запрос цены: admin@ascent-chem.com
    • Производитель: Ascent Petrochem Holdings Co., Limited
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    Спецификации
    Код ТН ВЭД 615755

    Будучи аккредитованным заводом 3M 435 для амортизации вибраций, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.

    Упаковка и хранение
    Упаковка 3M 435 Vibration Damping Tape packaging: one 1-inch x 36-yard roll per cardboard carton, with nine rolls per case.
    Погрузка контейнера (20-футовый контейнер) Container Loading (20′ FCL): 3M 435 Vibration Damping Tape loaded palletized into 20-foot FCL, secured, dry, compliant with transport regulations.
    Доставка 3M 435 Vibration Damping Tape is shipped as a non-hazardous article. It is not regulated for transport by DOT, IATA, or IMDG. No UN number, hazard class, packing group, or marine pollutant designation is required. Transport in original packaging, keep dry, and avoid excessive heat or direct sunlight.
    Хранение Store 3M 435 Vibration Damping Tape in original sealed packaging in a cool, dry, well-ventilated area. Keep away from direct sunlight, heat, sparks, open flames, moisture, and incompatible materials. Maintain 15–30°C (59–86°F) and 40–60% relative humidity. Do not freeze. Protect from dust and damage. Use first-in, first-out; let tape equilibrate before use.
    Срок годности Shelf life is 24 months from date of manufacture when stored in original packaging at 70°F (21°C) and 50% relative humidity.
    Бесплатная цитата

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    Запрос

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    Более подробное введение

    3M™ Vibration Damping Tape 435 is a constrained-layer damping material supplied as a dead-soft aluminum foil carrying a filled viscoelastic polymer and an acrylic pressure-sensitive adhesive. The rolled product is protected by a silicone-coated release liner and is converted into slit rolls, sheet form, and die-cut parts for application to thin-gauge metal panels, stamped enclosures, and formed sheet-metal assemblies. The designation 435 identifies a specific combination of foil thickness, damping-core formulation, and adhesive system within the 3M damping tape range; it is distinguished from 3M 434 by a different thickness/adhesion balance and from foam or mastic dampers by its use of an integral aluminum constraining layer. The material is applied to the interior surface of a vibrating panel, where the aluminum foil constrains the viscoelastic core and converts flexural deformation into shear strain in the damping polymer. This conversion provides mechanical energy dissipation in the 100–1000 Hz range without the mass of bitumen pads and without the curing or solvent-venting steps of sprayable damping compounds.

    What Limits the Damping Response of 3M 435 at Low and High Service Temperatures?

    The damping core is a viscoelastic polymer whose storage modulus and loss factor depend on temperature, frequency, and strain amplitude. According to the manufacturer’s published service data, 3M 435 is rated for continuous panel temperatures from -29°C to 121°C (-20°F to 250°F). Below -29°C, the polymer stiffens and shear deformation is reduced; above 121°C, the acrylic pressure-sensitive adhesive loses cohesive strength and the aluminum constraining layer can separate from the substrate under sustained load. The damping effectiveness is measured using ASTM E756, in which a coated steel beam is excited in flexure and the composite loss factor is calculated from the measured frequency response. Published composite loss factor values for a specific substrate configuration are limited; the loss factor is not a fixed material property because it depends on substrate thickness, bending stiffness, temperature, and mode shape.

    Physical properties used for incoming inspection are determined according to ASTM D3652/D3652M for tape thickness and ASTM D3330/D3330M for 180° peel adhesion to stainless steel after a 15-minute dwell. 3M 435 is supplied at a nominal total thickness of 0.25 mm (0.010 in) without liner; the dead-soft aluminum carrier yields at low bending loads, permitting the tape to conform to seams, beads, and curved panel surfaces without lifting. Standard rolls are available in widths from 12.7 mm (0.5 in) to 152.4 mm (6 in), with custom slitting and die-cutting performed by 3M-approved converters. The acrylic adhesive develops handling strength immediately after roller pressure, but full adhesion develops over 24–72 h at 21°C (70°F). At substrate temperatures below 10°C (50°F), the adhesive does not consistently wet out oxidized steel or abraded aluminum; the panel or roll should be conditioned to 15–25°C before application.

    Typical construction and application boundaries for 3M 435
    PropertyPublished valueTest method or condition
    Nominal total thickness without liner0.25 mm (0.010 in)ASTM D3652/D3652M
    Constraining layerDead-soft aluminum foilVisual and tensile-yield verification
    Damping coreFilled viscoelastic polymerDynamic mechanical analysis
    Adhesive typeAcrylic pressure-sensitiveASTM D3330/D3330M
    Continuous service temperature-29°C to 121°C (-20°F to 250°F)Manufacturer technical data sheet
    Minimum application temperature10°C (50°F)Substrate wet-out criterion
    Standard roll widths12.7 mm to 152.4 mmCustomer-specific slitting
    Peel adhesion to stainless steelSubstrate-dependent; current technical data sheet requiredASTM D3330/D3330M, 180°, 15 min dwell
    Comparison of vibration damping methods
    MaterialDamping mechanismTypical thicknessProcessing requirement
    3M 435Constrained-layer shear via aluminum foil0.25 mm (0.010 in)Pressure consolidation; no cure
    Bitumen padMass loading and extensional damping1.5–3.0 mmHeat-softening for conformability
    Sprayable masticExtensional damping1.0–3.0 mm wet filmRobotic spray and oven cure
    Foil-free viscoelastic sheetExtensional damping unless secondary constraining layer is bonded0.5–2.0 mmPressure or lamination

    The 435 designation should not be interchanged with 3M 434 or 3M 401 without reviewing the technical data sheets. 3M 434 is reported as a thinner damping tape for lower-mass applications where constrained-layer damping is required in a reduced-clearance envelope; 3M 401 is an unbacked viscoelastic polymer for applications where the substrate itself or an existing rigid cover provides the constraining layer. The 435 tape differs from foam tapes in that the aluminum foil does not provide thermal insulation or gap filling; it is not intended for use in joints requiring movement accommodation or as a barrier adhesive.

    For low-frequency structural resonances below 50 Hz, 3M 435 provides limited damping because the shear strain in the thin core is small and the aluminum constraining layer does not add sufficient mass. In those cases, tuned mass dampers, stiffening ribs, or thicker constrained-layer systems are required. Within the 100–1000 Hz band, the tape is most effective on panels with thicknesses from 0.6 mm to 1.5 mm; outside that range, the constraining-layer stiffness is mismatched and edge peel stresses increase.

    Numerical prediction of the composite loss factor uses modal strain energy methods in which the viscoelastic core is assigned a complex shear modulus. The damping contribution is proportional to the fraction of strain energy stored in the core times its loss factor. For a 0.8 mm steel panel with 0.25 mm of damping tape, the first bending mode damping is dominated by shear in the core under the foil; published finite element correlations to ASTM E756 beam tests show that panel size, boundary conditions, and added trim mass can change the resulting loss factor by more than 50%. Design verification should therefore use the actual stamped geometry, not a flat beam coupon alone.

    On a production line for powder-coated appliance side panels, 3M 435 is die-cut to a rectangular geometry and applied after the panel has passed the cure oven and cooled below 35°C. A 50-durometer rubber pressure roller exerting 10–15 N per centimetre of tape width is used to consolidate the tape and remove entrained air. For HVAC compressor wrappers, the tape is applied to the flat wrapper blank before rolling and clinching; the dead-soft foil remains intact through the wrapper bead radii if the tape temperature is above 18°C. In vehicle door inner panels, the tape is positioned after electrophoretic coating and before trim installation, keeping the trim attach points accessible. No thermal cure is required; the bonded panel can enter the next assembly station immediately after consolidation.

    Rheological Indicators of Damping-Core Performance in the 100–1000 Hz Band

    For incoming lot evaluation, a dynamic mechanical analyzer operating in shear sandwich mode is used to measure the viscoelastic core’s shear storage modulus G’ and loss factor tan δ across -40°C to 150°C at 1 Hz and 10 Hz. The filled viscoelastic core is formulated so that the glass transition is broad, avoiding a sharp drop in damping around a narrow temperature. In constrained-layer damping, the aluminum foil stiffness is selected relative to the substrate bending stiffness; if the foil is too stiff for a thin substrate, the bond line is subjected to peel stress at the tape edges, while if the foil is too soft, the core is not sheared sufficiently. The dead-soft aluminum foil used in 3M 435 has a low yield strength, which prevents stored elastic energy in the foil from dominating the panel response. Published G’ and tan δ curves from the manufacturer’s dynamic mechanical analysis are the appropriate comparator when substituting products; published data for this specific configuration is limited.

    If Cold-Rolled Steel Panels Are Damped Below 10°C or at Relative Humidity Above 60%

    Low-temperature application reduces the pressure-sensitive adhesive’s ability to flow into surface asperities, while adsorbed moisture on hydrophilic steel surfaces forms a weak boundary layer. At relative humidity above 60%, the substrate should be pre-dried with forced air at 40°C for 5 minutes or until no condensation is visible. The bond surface should be cleaned with a 70:30 by volume isopropanol/water solution or a low-residue hydrocarbon such as heptane, followed by a 60-second flash-off. A dyne test using 36 dyn/cm (0.036 N/m) wetting solutions confirms adequate surface energy after cleaning. The adhesive is incompatible with uncured silicone release agents, amine-cured epoxy surfaces, and migratory low-molecular-weight plasticizers; if these species are present, shear resistance under sustained load can decrease. For painted substrates, adhesion should be verified by a cross-cut tape adhesion test according to ISO 2409 or ASTM D3359 after 72 hours at 21°C.

    Batch-to-batch variation in liner release force is a known processing variable; values are typically controlled between 0.02 N/25 mm and 0.05 N/25 mm to allow automated liner removal without tearing the dead-soft foil. Slitting blades must be kept sharp; dull blades generate burrs on the foil edge that can initiate corrosion on zinc-coated steel panels. During automated die-cut application, the liner is peeled at a controlled 45° angle to avoid stretching the dead-soft foil beyond 2% elongation, which can thin the viscoelastic core and shift the damping frequency. A vacuum end-effector with 20 kPa differential pressure is used to pick the part without creasing, and optical fiducial placement maintains a position tolerance of ±0.5 mm on stamped panels.

    Die-cutting is performed on flatbed or rotary presses with kiss-cut tooling through the tape and liner. Because the dead-soft foil work-hardens at low strain, rotary cutting speeds are limited to avoid burr formation; converted dimensions are typically held to ±0.5 mm for width and length. The liner is retained to prevent adhesive contamination until application. In automated placement, a peel plate with a 45° take-off angle separates the part from the liner, and the vacuum end-effector carries the part by the foil face to prevent adhesive-side creasing.

    The acrylic pressure-sensitive adhesive is selected for resistance to plasticizer migration from flexible PVC and for retention of peel strength after heat aging. Unlike rubber-based adhesives, the acrylic system does not require a solvent primer and does not generate acid species on copper or aluminum surfaces. The adhesive is not conductive; grounding continuity across the tape is not provided, so metal-to-metal contact or a separate bonding strap is required when the tape is applied across an electrical ground path. The peel adhesion on low-surface-energy coatings below 36 dyn/cm is insufficient; plasma or corona treatment may raise the surface energy but must be validated for the specific coating.

    Because the dead-soft aluminum foil is electrochemically active, direct contact with stainless steel or copper can create a galvanic cell in the presence of a continuous electrolyte. On zinc-coated steel, the foil is generally compatible, but salt spray exposure per ASTM B117 can produce white corrosion products at the edges if the cut edge is not sealed. For outdoor or high-humidity enclosures, the tape edges can be sealed with a compatible acrylic edge sealer or positioned away from exposed cut edges. These constraints are specific to aluminum foil damping tapes and are not relevant to bitumen or polymer-only damping sheets.

    The product is supplied with regulatory documentation for the European Union and North American markets. Compliance is assessed against RoHS Directive 2011/65/EU and REACH Regulation (EC) No 1907/2006; the current Safety Data Sheet and regulatory data sheet should be consulted for substance-level declarations. The tape does not contain intentionally added asbestos, lead, or cadmium. For aerospace applications, the flammability rating is application-specific and must be confirmed against the applicable airworthiness requirement; published data for 3M 435 under 14 CFR 25.853(a) is limited and should not be assumed.

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