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3M 8902 Polyester Tape

    • Название продукта: 3M 8902 Polyester Tape
    • Сайт Factroy: Округ Юду, Ганьчжоу, Цзянси, Китай
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    • Производитель: Ascent Petrochem Holdings Co., Limited
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    Код ТН ВЭД 412800

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    3M 8902 Polyester Tape is a single-coated pressure-sensitive adhesive tape with a 0.051 mm (2.0 mil) poly(ethylene terephthalate) backing and a 0.020 mm (0.8 mil) silicone adhesive layer. The nominal total thickness is 0.071 mm (2.8 mil) when measured according to ASTM D3652/D3652M. The backing is biaxially oriented polyester film that provides tensile strength, dimensional stability, and dielectric resistance; the adhesive is a silicone pressure-sensitive adhesive selected for elevated-temperature holding and for wetting low-surface-energy release surfaces. The product is supplied in log rolls, precision slit rolls, and die-cut parts for temporary masking, web splicing, and holding operations in thermal processes.

    Published property data for the 8902 construction are shown in the following table. Values are manufacturer-reported typical results; a production lot may be controlled against agreed upper and lower limits rather than the nominal values below. Test methods are ASTM D3652/D3652M for thickness, ASTM D3330/D3330M for peel adhesion to stainless steel, ASTM D3759/D3759M for tensile strength and elongation, and ASTM D149 for dielectric breakdown strength.

    Reported property data for 3M 8902 polyester tape
    PropertyTest methodPublished value
    Total thicknessASTM D3652/D3652M0.071 mm (2.8 mil)
    Backing thicknessASTM D3652/D3652M0.051 mm (2.0 mil)
    Adhesive thicknessASTM D3652/D3652M0.020 mm (0.8 mil)
    Peel adhesion to stainless steelASTM D3330/D3330M5.5 N/25 mm (20 oz/in)
    Tensile strengthASTM D3759/D3759M438 N/100 mm (25 lb/in)
    Elongation at breakASTM D3759/D3759M100%
    Dielectric breakdown strengthASTM D1495,000 V
    Continuous operating temperature rangeManufacturer rating-50°C to 204°C (-60°F to 400°F)

    What does a silicone pressure-sensitive adhesive change in a polyester tape construction?

    The silicone PSA in 8902 is based on a polydimethylsiloxane network that has a surface energy in the range of 22 dyn/cm to 24 dyn/cm. This is lower than the 38 dyn/cm to 40 dyn/cm typical of acrylic pressure-sensitive adhesives, which allows the adhesive to wet silicone-coated papers and films more effectively. The same low surface energy reduces initial adhesion to untreated polyolefins and heavily contaminated metal surfaces. The measured peel adhesion of 5.5 N/25 mm on stainless steel under ASTM D3330/D3330M therefore represents a specific clean-steel condition; values on silicone-coated liners, fluoropolymers, or low-energy plastics will differ.

    Above 150°C, silicone PSAs maintain holding force and resist thermo-oxidative chain scission better than many acrylic PSAs. Acrylic systems generally show acceptable performance below 120°C; oxidation and softening at powder coating temperatures can produce cohesive failure and adhesive residue. The 8902 construction is rated for continuous use to 204°C, but the polyester backing and silicone adhesive do not tolerate open-flame or direct-contact heating above 240°C. Silicone migration is a known contamination risk: extended dwell at high temperature can transfer low-surface-energy siloxane species to adjacent surfaces, and these residues are not reliably removed by alkaline cleaning. Surface verification by water-break testing or X-ray photoelectron spectroscopy is required before subsequent bonding or painting.

    In powder coating, 8902 is applied to threaded holes, bearing bores, grounding pads, and mating surfaces before spray deposition. The masked part passes through a convection oven where air temperatures are often 200°C to 220°C for 10 min to 20 min; the part surface may reach 190°C to 205°C. Infrared ovens can generate localized temperatures above the bulk air temperature, so a production oven profile with thermocouples on masked areas is required. The tape is removed after cure; removal at 50°C to 120°C generally reduces adhesive transfer to the substrate, but the specific temperature must be validated on production parts.

    Edge lift is the most common field failure in powder coating masking. It occurs when the tape is applied over dust, oil, or silicone contamination, or when the tape is forced around a radius smaller than the backing can sustain without lifting. The 0.051 mm backing is more resistant to tear than the 0.025 mm 8901 construction, but less conformable. If sharp radii are present, an adhesion promotion step such as solvent wiping or the use of a thinner construction may be required.

    When polyester replaces polyimide in high-temperature masking

    Polyimide masking tapes are commonly rated for continuous use up to 260°C and short-term excursions above 300°C in wave soldering. The 8902 construction is rated only to 204°C. The polyester backing has a melting onset near 250°C; exposure above 240°C can produce backing shrinkage, loss of tensile strength, and charring at the tape edge. In solder masking, the replacement of polyimide with 8902 is not appropriate for wave solder or reflow profiles that exceed 204°C on the tape surface.

    Where the process peak is below 204°C, the 8902 construction may be used as an alternative to polyimide in powder coating and low-temperature masking. Published direct comparative data between 8902 and specific polyimide tapes under identical oven profiles is limited; users typically evaluate edge definition, residue, and removal force on production-scale parts because laboratory coupons do not reproduce the thermal mass of a loaded powder coating line. The polyester backing also differs in optical clarity and stiffness, but optical and coefficient-of-friction data for this construction are not fully specified in current published literature.

    Within the 3M polyester tape family, 8902 is the 0.051 mm backing variant between 8901 at 0.025 mm and 8905 at 0.127 mm. The 8902 construction provides a tensile strength of 438 N/100 mm and a dielectric breakdown strength of 5,000 V; the thinner 8901 construction has lower tensile and dielectric capability but higher conformability around tight radii. The thicker 8905 construction is stiffer and better suited to straight-line masking of large flat panels. Compared with polyester tapes using acrylic pressure-sensitive adhesives, 8902 exhibits lower room-temperature peel on stainless steel but more stable holding at 150°C and above. Acrylic polyester tapes are generally selected for applications below 120°C where high initial tack and rapid wet-out dominate. The choice of 8902 over an acrylic polyester tape is driven by silicone release liner compatibility, thermal exposure above 150°C, and the requirement to avoid acrylic adhesive breakdown in high-temperature masking.

    Electrical and thermal operating boundaries for a 0.051 mm backing

    The reported dielectric breakdown strength of 5,000 V per ASTM D149 is a short-term breakdown value at ambient temperature. It corresponds to a nominal gradient of approximately 70 kV/mm across the 0.071 mm total thickness. This value does not establish a continuous working voltage rating. For insulation system qualification, thermal endurance and partial discharge behavior are evaluated under IEC 60085 or UL 1446, and the 8902 product is not certified as a standalone insulation system for line-voltage equipment. At elevated temperature, dielectric strength derates; published derating curves for this specific tape are limited.

    The continuous operating range is -50°C to 204°C. At the low-temperature end, the silicone adhesive does not crystallize and retains some tack below -40°C, but dynamic mechanical properties and peel force on cold substrates should be validated. At the high-temperature end, cumulative exposure matters. Poly(ethylene terephthalate) has a glass transition temperature near 70°C to 80°C and a melting peak near 250°C; oxidative embrittlement and hydrolysis can occur well below the melting point in humid environments. Published aging data for 8902 under 85% relative humidity at 85°C is limited.

    For splicing silicone-coated liner in web converting, the tensile strength of 438 N/100 mm provides a basis for estimating splice strength. A 25 mm wide splice has a calculated tensile capacity of approximately 110 N, but this is a uniform-load calculation that does not account for stress concentration at the butt edge or misalignment. Published data for specific line tensions and press speeds are limited; end-user splice tests are required on the actual converting line.

    Splicing silicone release liners without adhesive strike-through

    The 8902 adhesive wets silicone-coated surfaces because both adhesive and release liner are polysiloxane-based. In splice construction, the tape is applied to the leading edge of the new liner and the trailing edge of the expiring roll, with care taken to avoid stretching the polyester backing. The adhesive layer is 0.020 mm thick, which is generally insufficient to fill large roughness features or gaps; butt splices should be tight. If the splice passes through a coating head or vacuum nip, the tape edge can be a source of adhesive strike-through into the coated web. Strike-through is minimized by maintaining a clean slit edge and avoiding excessive web tension that may extrude the silicone PSA under nip pressure.

    Failure during splicing is more often caused by contamination of the release surface or by excessive line acceleration than by tensile failure of the tape. If the liner surface has been exposed to dust, fiber, or oil, the peel force may fall below the level required to hold the splice during acceleration. A wipedown with a solvent compatible with the release coating may be required, but the specific solvent must not swell or extract the silicone release coating.

    Compliance status for REACH Regulation (EC) No 1907/2006 and RoHS Directive 2011/65/EU is product and lot specific. Current safety data sheet and regulatory documentation should be consulted before production release. The tape is not intended for food contact, medical device, structural joining, or permanent insulation applications. Published data for outgassing under ASTM E595, bacterial resistance, and long-term UV weathering are not available for this construction. Because silicone PSA residues can interfere with subsequent coating adhesion, production trials on representative parts and full thermal profiling are required before substituting 8902 for another tape or before changing suppliers of backing film or adhesive.

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