Продукты

3M 4318 Single-Coated Foam Tape

    • Название продукта: 3M 4318 Single-Coated Foam 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 681045

    Как аккредитованный завод 3M 4318 с однопокрытием, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.

    Упаковка и хранение
    Упаковка 3M 4318 Single-Coated Foam Tape is packaged in cartons containing 12 individually wrapped rolls, each clearly labeled.
    Погрузка контейнера (20-футовый контейнер) 20′ FCL container loading for 3M 4318 Single-Coated Foam Tape: palletized, shrink-wrapped, securely braced; non-hazardous and stable for ocean freight.
    Доставка 3M 4318 Single-Coated Foam Tape is not classified as dangerous goods for transportation. It ships as a general commodity by ground, air, or ocean, with no UN number, hazard class, packing group, or special labels required. Store cool and dry; follow normal handling and local regulations.
    Хранение Store 3M 4318 Single-Coated Foam Tape sealed in its original packaging in a clean, dry, well-ventilated area. Maintain 16–27°C (60–80°F) and 40–60% relative humidity. Protect from direct sunlight, heat, moisture, dust, oils, and ignition sources. Avoid freezing, prolonged extreme temperatures, strong solvents, and sharp objects. Store away from incompatible materials. Rotate stock; follow SDS/local regulations and shelf-life guidance.
    Срок годности Shelf life is 24 months from date of manufacture when stored at 70°F (21°C) and 50% relative humidity.
    Бесплатная цитата

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    Запрос

    Получите бесплатную сметуAscent Petrochem Holdings Co., Limited

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    Сертификация и соответствие требованиям
    Более подробное введение

    3M™ 4318 Single-Coated Foam Tape is assembled from a dark-grey open-cell polyurethane foam carrier with a pressure-sensitive acrylic adhesive coated on one face. The reverse face is left exposed. The nominal foam thickness is 1.6 mm (0.063 in), and standard roll widths are available from 6.4 mm to 610 mm depending on converting configuration. The open-cell polyurethane carrier has a nominal density of 320 kg/m³. The supplier publishes a continuous service range of −40 °C to 104 °C; short-term excursions to 121 °C are accepted only at zero shear loading. The acrylic adhesive is protected by a release liner, and log rolls are typically slit to a width tolerance of ±0.8 mm for rotary die-cutting. Peel adhesion is tested by ASTM D3330 180° peel on stainless steel; supplier data for production lots typically fall within 30–40 N/100 mm after a 20 min dwell at 23 °C and 50 % relative humidity. The foam is open-cell, so the product functions as a cushioning and gasketing material, not as a hydrostatic liquid barrier. In production, the tape is applied to enclosures, display panels, HVAC dampers, and light-duty vibration isolation mounts where dry compression and conformability are required.

    When a Single Adhesive Face Is Favourable for Gasket Channel Retention

    Single-coated tape is selected when the adhesive must fix the foam into a channel, while the opposite face must remain free to slide during compression. Double-coated constructions add a second adhesive interface on the working face, which can produce tensile tearing of the foam during maintenance opening. The single-side geometry also removes one adhesive film thickness from the tolerance stack; a transfer adhesive layer is commonly 0.05–0.13 mm, which becomes significant when compression stops are designed for 20–30 % foam strain. In automated gasket placement, pick-and-place heads use the liner side as the vacuum surface; the exposed polyurethane face remains dry and conformable at final closure. The single adhesive face also simplifies liner-removal time because only one release liner is removed at assembly.

    In enclosure face seals, the exposed foam face can be compressed against a painted or plated cover without adhesive transfer. If double-coated tape is used, the second adhesive layer can leave residue on the cover after prolonged thermal ageing. The single-sided format reduces this contamination risk, but the retention of the foam in the channel is entirely dependent on the one adhesive interface; channel width should provide 0.2–0.5 mm compression on the adhesive side to prevent in-service roll-out under vibration. Vibration testing is usually performed according to IEC 60068-2-6 at 10–500 Hz, and adhesive shear strength is rechecked after 500 h of heat ageing at 70 °C.

    Flatbed die-cutting of 3M 4318 is performed with the silicone-coated release liner intact. The kiss-cutting knife is set to cut through the polyurethane foam and the adhesive without perforating the liner; strike depth is controlled by micrometer-adjusted platen height, and a Shore A 70–90 polyurethane anvil is used to avoid premature blade dulling. On rotary equipment, kiss-cutting speed is typically limited to 15–25 m/min when a liner residual thickness above 0.08 mm is required; higher speeds increase web tension variation and can cause adhesive ooze at the cut edge. The open-cell foam compresses under die pressure, so die ejection rubber must be set to prevent foam cells from collapsing during high-speed reciprocating cutting. After conversion, parts should be stored flat at 18–25 °C and 40–60 % relative humidity for at least 24 h before use to allow dimensional stabilisation.

    Lamination of the foam tape to rigid substrates is carried out at 18–25 °C with a squeeze-roll pressure of 0.2–0.4 MPa. The open-cell foam compresses reversibly under short-duration roll pressure, but pressures above 0.7 MPa can permanently densify cell walls and reduce compression recovery. Adhesive wet-out after lamination is improved when substrates are cleaned with a 70:30 isopropanol/water mixture and allowed to flash off for 3 min before bond formation. Plasma or corona treatment of nonpolar substrates before lamination raises the surface energy to 42–48 mN/m, which promotes adhesive flow into surface asperities. When 3M 4318 is converted by laser cutting, the open-cell polyurethane exhibits a slightly wider kerf than dense PVC foams; laser settings must be adjusted to avoid char formation that would reduce the exposed foam face’s conformability.

    Compression Recovery and Gasket Loading at 25% Deflection

    Under gasket loading, the open-cell polyurethane carrier is compressed to a defined strain, typically 25 % of original thickness, and the load required is recorded as compression force deflection. Supplier technical literature for 3M 4318 reports a nominal compression force deflection at 25 % strain in the range of 35–70 kPa; because foam cell size and density vary between production lots, the lot certificate of analysis should be used for final tolerance calculations. Compression set is evaluated according to ASTM D1056; open-cell polyurethane of this density class typically recovers more than 90 % of its original thickness after 22 h compression at 70 °C when released at 23 °C for 30 min. The exposed foam face is the primary wear surface, and its abrasion resistance is lower than that of solid elastomers; cyclic sliding against a painted cover should be limited to 10 000 cycles or a fluoropolymer slide coating should be applied.

    Stress relaxation under constant compression is an additional design input. At 23 °C and 25 % initial strain, the foam may retain approximately 70–80 % of the initial compression force after 24 h; at 70 °C, retention may fall to 50–60 % over the same interval. This relaxation should be included in gasket load calculations for weather-sealed enclosures. Dynamic mechanical analysis at 1 Hz shows a rising loss factor above 50 Hz, which supports vibration damping in sheet-metal enclosures but does not provide low-frequency isolation. For low-frequency isolation below 40 Hz, a thicker closed-cell or microcellular polyurethane grade is generally required.

    Adhesion to low-surface-energy substrates such as polypropylene, polyethylene, or powder-coated sheet metal determines the failure mode of the single adhesive interface. Without pretreatment, acrylic pressure-sensitive adhesives exhibit lower wet-out on substrates with surface energy below 36 mN/m, and peel adhesion may fall below 10 N/100 mm. Air plasma or corona discharge treatment before tape application raises the substrate surface energy to 42–48 mN/m, which is sufficient for the acrylic adhesive to achieve full contact. On anodized aluminium, solvent wiping with isopropanol followed by a 3 min open-time at 22 °C removes process oils but does not modify the oxide morphology; adhesion values then remain close to the supplier’s stainless-steel reference. Polycarbonate and acrylic enclosures require compatibility checks because acrylic adhesive plasticiser migration can, over 500 h at 60 °C, produce microcracking in stressed polycarbonate edges; an adhesive-free foam compression strip is preferred for those designs.

    When bonding to zinc-plated steel, the adhesive builds adhesion over 24–72 h at 23 °C; full bond strength should not be assumed immediately after placement. Overtaping with silicone rubber or EPDM gaskets may require a primer on the foam side because the exposed polyurethane face is not adhesive-coated. Primer selection is based on the mating surface’s surface energy and the expected thermal cycle; for outdoor enclosures with −40 °C low-temperature exposure, primer systems should be validated after 10 thermal shock cycles from −40 °C to 85 °C per IEC 60068-2-14.

    What Chemical and Thermal Exposures Constrain Long-Term Service?

    The open-cell structure limits the product’s use as a barrier. Continuous contact with liquid water or condensation above 80 % relative humidity leads to moisture uptake and can reduce adhesive shear strength after 72 h by 20–30 %; desiccant protection is required in sealed enclosures. The polyurethane foam resists mineral oil and common aliphatic hydrocarbons but swells in ketones, esters, and aromatic solvents; immersion in methyl ethyl ketone for 4 h typically produces irreversible cell-wall softening, so solvent exposure during in-field cleaning should be avoided. At 104 °C, the foam oxidises slowly; after 1 000 h, hardness may increase and peel adhesion may fall by 10–20 %. At −40 °C, the foam stiffens and compression force deflection increases approximately 2–3 times relative to 23 °C, which must be included in closure force calculations for outdoor enclosures.

    Ultraviolet exposure degrades the polyurethane cell walls when the foam face is not covered by the housing. Unprotected outdoor exposure for more than 90 days can produce surface powdering and thickness loss. The adhesive itself is not UV-stable and should not be kept in direct sunlight prior to application. If the foam tape is used in an engine-compartment gasket, it must be shielded from continuous hydrocarbon aerosols and from exhaust temperatures above the short-term limit.

    Substitution assessments against closed-cell PVC, closed-cell EPDM, and silicone foam tapes are based on cell structure, density, temperature range, and moisture behaviour. The ranges below are general industrial values; 3M 4318 lot-specific values should be confirmed from the manufacturer’s certificate of analysis before release testing.

    Foam type Cell structure Nominal density range Continuous temperature range Water behaviour Typical gasket use
    3M 4318 single-coated polyurethane Open-cell 320 kg/m³ nominal −40 °C to 104 °C Moisture vapour permeable Cushioning, dust seal, vibration damping
    Closed-cell PVC foam Closed-cell 80–160 kg/m³ −20 °C to 70 °C Low water absorption Hydrostatic seal, draft gasket
    Closed-cell EPDM foam Closed-cell 70–150 kg/m³ −40 °C to 100 °C Very low water absorption Weatherseal, outdoor enclosure gasket
    Silicone foam Open- or closed-cell depending grade 160–480 kg/m³ −60 °C to 200 °C Low water absorption if closed-cell High-temperature gasket, food/medical sealing

    The primary differences are compression recovery and sealing. 3M 4318 is open-cell, so it does not maintain a hydrostatic water seal; closed-cell PVC or EPDM tapes are used where a water column or immersion condition exists. Compared with silicone foam, 3M 4318 has a lower continuous temperature limit but higher tear resistance and lower per-linear-metre cost in typical electronic enclosure gasketing. Compared with double-coated polyurethane foam of the same density, the single-sided version eliminates adhesive contamination on the mating surface and permits dry assembly of serviceable covers. The exposed polyurethane face also has a higher coefficient of friction than a low-friction silicone surface, which can be beneficial for channel retention but may require a cover compression force increase of 10–20 % due to surface drag during closure.

    Regulatory documentation for 3M 4318 normally includes REACH article declarations and RoHS 2011/65/EU compliance for the product as supplied; the adhesive does not contain intentionally added phthalates, brominated flame retardants, or heavy metals at reportable thresholds. The product is not designed for permanent implantable medical devices; any food-contact application requires separate migration testing under EC 1935/2004 because the open-cell foam structure can retain process aids. Aerospace customers commonly request outgassing data; published data for this specific configuration is limited, so lot-specific testing per ECSS-Q-ST-70-02C is required before use in optical or vacuum systems. For UL-recognised assemblies, the tape is normally evaluated as a component within the end-product enclosure; no standalone UL yellow card is assigned.

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