| Код ТН ВЭД | 497760 |
Как аккредитованный завод 3M 4516 Foam Tape, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.
| Упаковка | |
| Доставка | |
| Хранение |
Конкурентоспособные цены на пеновую ленту 3M 4516, которые соответствуют вашему бюджету - гибкие условия и индивидуальные котировки для каждого заказа.
Для получения образцов, цен или более подробной информации свяжитесь с нами по адресу +8618136850665 или отправить по почте admin@ascent-chem.com.
Мы ответим вам как можно скорее.
Телефон: +8618136850665
Электронная почта: admin@ascent-chem.com
Гибкие условия оплаты, конкурентоспособные цены, первоклассное обслуживание — обращайтесь прямо сейчас!
3M 4516 Foam Tape is a double-coated, closed-cell polyethylene foam bonding product supplied with an acrylic pressure-sensitive adhesive on both faces. The nominal carrier thickness is 1.6 mm; the release liner is a red polyethylene film that remains in place through slitting, rotary die-cutting, and final application. The foam carrier is included to compensate for dimensional variation and to distribute stress across the bond line. This distinguishes the product from unsupported acrylic transfer tapes, which provide a thin bond line but no meaningful gap-filling capacity. Published values for peel adhesion and static shear are qualified under ASTM D3330 and ASTM D3654; current numerical ranges should be taken from the manufacturer’s technical data sheet because values vary with the test panel, dwell time, and conditioning method.
In a rigid adhesive transfer tape, stress concentrates at the outer edge of the bonded area under peel or bending loads. In 3M 4516, the 1.6 mm closed-cell foam interlayer moves the neutral axis and broadens the peel front. The result is a more uniform shear field when the assembly is loaded in tension. This behavior is significant in mounting extruded plastic profiles to powder-coated sheet metal, where mismatch in thermal expansion can exceed 1 mm/m over a seasonal temperature swing. The foam carrier absorbs a portion of that movement without delamination. The polyethylene foam carrier, however, has lower cohesive strength than a solid acrylic foam carrier; therefore, 3M 4516 is not a direct substitute for 3M VHB acrylic foam tapes in structural glazing or high dynamic wind-load applications. Published creep-rupture data for continuous load on this specific foam carrier are limited; end-use qualification under the expected temperature and static load is required.
When 3M 4516 is converted on rotary die-cutting equipment, the red polyethylene liner should be treated as a functional release surface rather than scrap. Anvil depth and blade bevel affect edge collapse of the foam; excessive compression at the die edge can produce a sealed or crushed boundary that reduces initial tack. Slitting of log rolls is typically performed in the 20 °C to 25 °C range, because cold foam releases stress unevenly and may produce curl after liner removal. Lamination to paper, foil, or nonwoven backings requires controlled nip pressure below the foam compression set threshold. Production lines that laminate at high speed should monitor roll tension to prevent necking of the foam, which changes the exposed adhesive area and can create a trapezoidal cross-section after die cutting. Preconditioning of rolls for 24 h at 50 % RH is used to stabilize moisture equilibrium before precision converting.
Incoming lots of 3M 4516 are evaluated against a limited battery of pressure-sensitive adhesive test methods. The table below lists test designations used in technical data sheets and quality agreements. Values are not tabulated here because release-specific results and test panel preparation affect the reported ranges.
| Measurement | Standard designation |
|---|---|
| Total tape thickness | ASTM D3652 |
| 180° peel adhesion to stainless steel | ASTM D3330 |
| Static shear holding power | ASTM D3654 |
| Loop tack | ASTM D6195 |
| Foam carrier apparent density | ISO 845 |
Procurement specifications commonly require the converter to record lot number, date of manufacture, and roll condition. Receiving inspection should verify that the liner is intact and that the roll has not been stored near direct heat. Because the acrylic adhesive is pressure-sensitive, no cure cycle is required; however, ultimate adhesion builds over a dwell time that is surface-energy dependent. On high-surface-energy substrates such as aluminum or stainless steel, initial wet-out may be sufficient for handling, but final properties are measured after a dwell period of 72 h at 23 °C under 2 kg weight when following common comparison protocols. Published rate-of-bond-increase data for this product are limited.
Surface preparation for 3M 4516 is governed by the same wetting criteria applied to other acrylic pressure-sensitive foam tapes. The substrate should be cleaned with a solvent that does not leave a residue: isopropanol or a heptane-based cleaner is used after removing gross oil and particulate. A water-break-free surface is necessary but not sufficient; surface energy should be checked with dyne solutions per ASTM D2578. For untreated polypropylene and polyethylene, corona discharge or plasma treatment is required. A minimum surface energy of 38 dyn/cm is commonly specified for acrylic adhesives, though performance improves above 42 dyn/cm. Application below 10 °C is not recommended because the adhesive cannot flow into surface asperities rapidly enough. On low-energy plastics, an adhesion promoter may be used; compatibility must be confirmed with the substrate to avoid plasticizer migration or stress cracking.
Application of 3M 4516 onto three-dimensional parts is performed with pressure from a laminating roller or pneumatic press. A uniform pressure of 10 N/cm² to 15 N/cm² over the bond area is used to wet out the adhesive; excessive pressure can crush the foam and reduce its gap-filling ability. The tape should be applied at a peel angle as close to 90° as possible during manual assembly to avoid stretching the foam. When bonding large panels, the liner is removed progressively to prevent the exposed adhesive from trapping air. On powder-coated surfaces, a two-stage wet-out process is used: an initial light tacking pass followed by a dwell period of 15 min and a final high-pressure pass. These process windows are substrate-dependent and not universal; lamination trials should be run with production-grade parts.
On high-volume manufacturing lines, two failure modes are observed with polyethylene foam tape assemblies. Insufficient surface energy on low-energy polyolefins produces interfacial delamination even when the bond appears uniform immediately after lamination. Liner removal on cold rolls can cause the adhesive to split unevenly from the liner and leave a discontinuous adhesive deposit. On high-gloss painted metal, trapped air at the bond line appears as a visible blister; this is mitigated by roll application from center to edge. Batch-to-batch variation in foam density can change compression set and alter the final bond line thickness; incoming thickness and density data from the converting lot should be compared with the qualified range before release to production.
Relative to thinner double-coated polyethylene foam tapes in the same product family, 3M 4516 provides a thicker bond line and greater gap compensation. Relative to adhesive transfer tapes, 3M 4516 introduces a compressible foam layer that reduces edge-peel stress concentrations and cancels minor surface waviness. Relative to 3M VHB acrylic foam tapes, 3M 4516 uses a polyethylene foam carrier; the acrylic foam construction has higher cohesive strength and is generally more resistant to continuous load and high temperature, while the polyethylene foam construction offers easier die-cutting and lower applied cost per unit area in nonstructural interior mounting. Published direct comparison data under identical substrate conditions are limited; product substitution should be validated under the final application conditions.
3M 4516 is intended for applications where the primary stress is compressive or short-duration peel. Under a sustained dead load, crosslinked polyethylene foam can undergo creep. The adhesive layer itself may also flow under shear, leading to displacement over time. This behavior is measured by static shear tests at elevated temperature, often reported as minutes to failure under a 1 kg load at 70 °C. For 3M 4516, exact published shear-failure times for specific lots are not part of this document. If the assembly is subjected to continuous shear, the bond area must be increased or a secondary mechanical fastening system must be used. The foam carrier contributes to viscoelastic creep at ambient temperatures above 40 °C; below that threshold, failure is more likely at the adhesive-substrate interface when the surface preparation is marginal. Designers should not use this product to support overhead loads without a factor of safety derived from end-use testing.
Chemical exposure limits for 3M 4516 are defined primarily by the acrylic adhesive and the polyethylene foam. The product should not be specified for continuous immersion in water, fuels, or strong polar solvents. Plasticizer migration from flexible vinyl substrates can plasticize the adhesive and reduce peel adhesion over time; if bonding to plasticized PVC, a laminating adhesive or barrier layer is typically required. The foam is also sensitive to prolonged ultraviolet exposure, so the bond line should be shaded or protected when used outdoors. In applications with intermittent exposure to automotive fluids, compatibility testing should be performed per ISO 16750-4 or the relevant OEM specification. The working temperature window for the adhesive is narrower than that of the foam; published data for this specific configuration is limited, and thermal cycling from -30 °C to 80 °C should be qualified on the actual substrate pair before series production.
Unconverted rolls should be stored in original packaging at 21 °C and 50 % RH, away from direct sunlight; shelf life is specified by the manufacturer and depends on the adhesive formulation.