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3M 420 Lead Foil Tape

    • Название продукта: 3M 420 Lead Foil Tape
    • Сайт Factroy: Округ Юду, Ганьчжоу, Цзянси, Китай
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    Спецификации
    Код ТН ВЭД 929517

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    3M 420 Lead Foil Tape is a pressure-sensitive adhesive masking tape constructed with an embossed lead foil backing of 4.0 mil (0.10 mm) and a rubber-based adhesive layer that produces a total tape thickness of 6.5 mil (0.165 mm). The product is supplied in roll form, commonly in widths from 6 mm to 305 mm and standard lengths of 33 m (36 yd), although slit and die-cut configurations are produced to line-specific dimensions. The model designation 3M 420 distinguishes this construction from acrylic-adhesive lead foil tapes and from aluminum foil tapes, particularly with respect to density, plastic deformation, chemical resistance, and electrical conductivity.

    Under ASTM D3330/D3330M, the rubber adhesive typically develops a 180° peel adhesion to steel of 25 oz/in width (27 N/100 mm). The tensile strength at break is approximately 20 lb/in width (350 N/100 mm), with elongation at break of 10% when measured under ASTM D3759/D3759M. Because the backing is lead, the foil itself has a density of 11.34 g/cm³, giving the backing a mass per unit area of roughly 1.15 kg/m². The total product mass is therefore higher than an equivalent-thickness aluminum foil composite, which affects roll handling, cutting force, and high-speed dispensing on automatic taping heads.

    In electroplating and anodizing operations, the tape is applied to clean, dry substrates and burnished along its edges to create a mechanical barrier against solution ingress. The lead foil is soft enough to conform to fillets, threads, and recessed areas without splitting. Because the backing is electrically conductive, the tape can be used as a temporary mask in electrolytic processes where a non-conductive polymeric mask would interfere with current distribution. Published data for current-density effects across the tape surface in specific bath chemistries is limited; tank-scale validation is required before production release.

    Measured Property Set and Applicable Test Standards

    The values in the following table are manufacturer-published representative values for the standard construction. They are not batch-specific certificate values. Production lots should be verified against the current 3M technical data sheet and the applicable internal material specification before release to a process line.

    Representative physical property values for 3M 420 Lead Foil Tape
    Property Published typical value Test method or rating basis
    Backing thickness 4.0 mil (0.10 mm) ASTM D3652/D3652M
    Total tape thickness 6.5 mil (0.165 mm) ASTM D3652/D3652M
    Peel adhesion to steel 25 oz/in width (27 N/100 mm) ASTM D3330/D3330M
    Tensile strength at break 20 lb/in width (350 N/100 mm) ASTM D3759/D3759M
    Elongation at break 10% ASTM D3759/D3759M
    Intermittent service temperature 225°F (107°C) Manufacturer rating
    Continuous service temperature 180°F (82°C) Manufacturer rating

    These values should be interpreted as lot-typical and not as independent safety limits. The tensile property reflects the lead backing; when the tape is dispensed under high-tension automatic equipment, the yield point of lead produces permanent elongation before break. Operators should therefore set unwind tension below the tensile limit and avoid driven nip pressures that produce necking of the foil.

    What Process Conditions Challenge the Rubber-Based Adhesive?

    The rubber-based adhesive develops high initial tack on steel, aluminum, and many plated surfaces, but its upper temperature limit is constrained by oxidative softening and peel-resistance loss. At bath temperatures above 82°C (180°F) under continuous exposure, adhesive creep can allow edge lifting in agitated tanks. Intermittent exposure to 107°C (225°F) is tolerated only when the tape is not under external peel or shear load. In spray lines, impingement pressure can exploit the softened adhesive at lower temperatures and initiate edge lifting.

    Chemical compatibility is substance-specific. Lead resists sulfuric acid and many alkaline solutions but is attacked by nitric acid, concentrated organic acids, and aqua regia. The rubber adhesive is not compatible with ketone-rich or aromatic solvent streams at elevated temperature. Solvent penetration through the adhesive bond line may cause channeling and undercutting. On high-rack-density nickel plating lines, rejects from edge lift are most often traced to inadequate surface preparation or failure to burnish the tape edge after racking.

    Application to surfaces above 80% relative humidity or below 10°C (50°F) may reduce initial wet-out and is not recommended. For porous substrates such as castings or flame-sprayed coatings, cleaning with isopropanol before tape application is used to displace oil and moisture. The tape has no food-contact listing and must not be used in direct food-contact applications.

    On a production electroplating line, 3M 420 is applied after vapor degreasing or alkaline cleaning. The tape is laid in overlapping strips when coverage widths greater than 100 mm are required, and each overlap is burnished with a rigid polyethylene squeegee to avoid capillary gaps. Parts are then racked, and the tape edges are inspected for lifted foil. Any lifted edge is trimmed or resealed before immersion. In nickel sulfamate plating at 55°C and current densities from 2 A/dm² to 10 A/dm², the conductive foil does not produce the same edge-effect current crowding observed with thick polymeric stop-off materials.

    Chemical milling of aluminum aircraft skins uses lead foil tape as a hard mask in repair areas or where selective etch protection is required. The foil is applied to a clean surface, then cut along scribe lines with a rounded blade to avoid scratching the substrate. The rubber adhesive is not the principal etch barrier; the burnished lead edge and overlapping foil are. Process validation should include cross-section inspection for undercut at 10X magnification after the maximum bath dwell time.

    When 3M 420 Replaces Aluminum Foil or Polyester Masking Tapes

    Substitution is justified where density, plastic deformation, and gamma shielding dominate. Aluminum foil tapes are lighter and have higher tensile strength, but they do not burnish permanently into surface grain and provide negligible low-energy gamma attenuation. Polyester masking tapes offer higher dielectric strength and elongation but soften and cavitate in strong alkaline or oxidizing bath chemistries. The lead foil tape is selected for applications where the mask must survive impingement and where the substrate cannot tolerate adhesive residue after removal.

    The lead backing’s electrical conductivity also differs from polyester in electrolytic cells. A conductive foil alters current distribution around the masked zone and may suppress hydrogen gas blistering under the mask. Compared with acrylic-adhesive lead foil constructions, the rubber adhesive in 3M 420 generally provides higher tack at ambient temperature but lower solvent resistance and a lower continuous-use temperature limit.

    Compliance status must be evaluated carefully because the product contains lead at concentrations above the 0.1% threshold for homogeneous materials under RoHS 2011/65/EU. Electrical and electronic equipment applications would require a specific exemption. Under REACH, lead metal is subject to candidate-list communication and notification duties on articles when present above 0.1% w/w.

    For radiographic shielding and temporary masking of detector edges, attenuation should be calculated from the mass attenuation coefficient for the specific source energy. The 0.10 mm foil thickness will produce calculable but not complete attenuation for low-energy gamma sources. Gaps at overlaps become leakage paths, and the adhesive does not contribute to shielding. Survey-meter verification is required after installation because source geometry and scatter dominate the measured dose-rate reduction.

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