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3M 5490 PTFE Extruded Film Tape is a single-sided pressure-sensitive tape composed of an extruded polytetrafluoroethylene film backing and a silicone adhesive layer. The product is supplied without a separate release liner because the low-surface-energy PTFE backing acts as the release surface in roll form. Slit widths are commonly converted from 12.7 mm to 304.8 mm, with longer log rolls available for in-line converting. The tape is specified for release, low-friction, and dielectric functions in thermal processing equipment. The extruded backing provides higher elongation and greater conformability than skived PTFE film, while the silicone adhesive determines the continuous operating ceiling of 260°C (500°F). The following sections state construction parameters, application boundaries, and differentiation from adjacent PTFE tape grades.
Manufacturer-published typical values for the tape include a total thickness of 0.13 mm (5.2 mil) measured according to ASTM D3652/D3652M. The extruded PTFE backing contributes 0.09 mm (3.7 mil) and the silicone adhesive contributes 0.04 mm (1.5 mil). Room-temperature peel adhesion to stainless steel is 2.2 N/10 mm (20 oz/in) when tested under ASTM D3330/D3330M. Tensile strength at break is 3.9 N/mm (22 lb/in) and elongation at break is 225% under ASTM D3759/D3759M. Dielectric breakdown voltage is 10,000 V under ASTM D149, with the caveat that breakdown is influenced by backing thickness, electrode geometry, and humidity conditioning. The continuous service temperature range is -54°C to 260°C (-65°F to 500°F). These values are typical and do not constitute a lot-release specification; the current 3M technical data sheet should be consulted for lot-level acceptance criteria.
| Property | Typical value | Test basis |
|---|---|---|
| Backing type | Extruded PTFE | Manufacturer construction |
| Adhesive type | Silicone pressure-sensitive adhesive | Manufacturer construction |
| Total thickness | 0.13 mm (5.2 mil) | ASTM D3652/D3652M |
| Backing thickness | 0.09 mm (3.7 mil) | ASTM D3652/D3652M |
| Adhesive thickness | 0.04 mm (1.5 mil) | ASTM D3652/D3652M |
| Adhesion to stainless steel | 2.2 N/10 mm (20 oz/in) | ASTM D3330/D3330M |
| Tensile strength at break | 3.9 N/mm (22 lb/in) | ASTM D3759/D3759M |
| Elongation at break | 225% | ASTM D3759/D3759M |
| Dielectric breakdown voltage | 10,000 V | ASTM D149 |
| Continuous service temperature | -54°C to 260°C (-65°F to 500°F) | Manufacturer thermal rating |
Dielectric breakdown in particular is a function of electrode geometry, backing thickness, and relative humidity. Multiple wraps increase the dielectric barrier but reduce thermal conduction from the platen to the sealing interface. Published data for this specific configuration is limited.
Application on rotary band sealers, impulse sealers, and continuous pouch machines uses the tape as a replaceable barrier between the heated platen and the thermoplastic film. The PTFE surface exhibits a dynamic coefficient of friction below 0.10 against polished steel under ASTM D1894, which reduces film drag and prevents molten polyethylene, polypropylene, and coated films from adhering to the jaw. The silicone adhesive transfers heat from the platen while retaining peel strength after repeated cycling in the 120°C to 230°C range.
Platen preparation requires wiping with isopropanol or methyl ethyl ketone and full evaporation before tape application. Firm roller pressure over the entire tape width removes air pockets; a residual air layer acts as a thermal insulator and creates localized hot spots that cause edge lifting. A longitudinal seam overlap of 3 mm to 6 mm prevents resin ingress under the tape edge. On platen radii below 12.7 mm, the extruded backing conforms without creasing, but room-temperature dwell of 20°C to 30°C for 24 h is commonly used to develop adhesive wet-out before the first heat cycle. Published data for the radius-dependent dwell requirement is limited; the value is a converting practice rather than a 3M specification.
A process conflict arises in intermittent impulse sealing because the silicone adhesive has a lower initial room-temperature tack than acrylic systems. If the jaw cycles before adhesive wet-out, edge lift can occur. Conversely, extended exposure above 260°C degrades the silicone adhesive and can leave residue on the platen. The PTFE backing may begin to evolve decomposition products above 280°C, so uncontrolled heater zones must not exceed the adhesive rating. For single-layer dielectric use, the reported breakdown voltage of 10,000 V applies at room temperature; multiple wraps increase the dielectric barrier but reduce heat transfer and must be qualified under end-use voltage and temperature profiles.
The low critical surface tension of PTFE, approximately 18 mN/m at 20°C, is the mechanism by which the backing resists wetting by molten polyolefins and reactive resins. This surface property remains stable over the tape’s service range, but it also means that printing, coating, or secondary bonding to the backing is not feasible without sodium-etch or plasma treatment. The silicone adhesive side is the only bondable surface. In continuous form-fill-seal equipment, replacement interval is a production variable controlled by seal temperature, film type, and filler content; no universal interval is published.
For wire-harness bundling, coil-wrap release, and capacitor winding, the tape is applied as a low-tension outer wrap because the extruded PTFE backing exhibits cold flow under sustained tensile load. A continuous tensile load above 10% of breaking strength over repeated thermal cycles can produce permanent elongation and loosening. The tape is not a substitute for polyimide pressure-sensitive tape where dimensional stability under high tensile load is required. In coil-wrap release applications, the silicone adhesive holds the tape to the tool during lay-up while the PTFE surface prevents resin adhesion. Release behavior is resin-dependent; epoxy anhydride systems generally separate cleanly, whereas amine-cured systems may generate higher peel forces. Published data for this specific configuration is limited.
Skived PTFE film is machined from a sintered PTFE billet and has a higher tensile modulus, lower elongation, and greater cut-through resistance than the paste-extruded and calendered backing used in 3M 5490. The extruded backing provides 225% elongation at break under ASTM D3759/D3759M and conforms to small-diameter rollers without creasing. Skived tape may show edge lift on a tight radius but offers better creep resistance and dimensional stability. For high-pressure tool release or abrasive sliding contact, a skived PTFE tape should be evaluated instead. Published data for direct cut-through comparison between these two backing structures is limited.
Compared with an extruded PTFE tape carrying an acrylic adhesive, such as 3M 5491, the silicone adhesive of 3M 5490 extends the continuous service ceiling to 260°C (500°F) but reduces room-temperature peel adhesion to polar substrates. Acrylic-adhesive versions are generally limited to continuous service near 177°C (350°F) and provide higher initial tack on stainless steel and painted surfaces. Silicone adhesive maintains flexibility at low temperatures, whereas acrylic adhesives may stiffen below -40°C. Selection is therefore driven by platen temperature, substrate surface energy, and the requirement for low-temperature flexibility. On silicone rubber and fluoropolymer substrates, silicone adhesive alone may provide limited adhesion; surface priming or mechanical fastening may be required.
The 3M 5490 product also differs from PTFE-coated fiberglass tapes in that it has no woven reinforcement. The absence of reinforcement yields a thinner profile and greater conformability but reduces tensile strength and cut-through resistance. Where repeated abrasion from filled polymer films or metal edges is present, a reinforced PTFE-coated fabric tape may outlast the extruded film tape even though the reinforced tape has a higher total thickness and lower elongation. Published data for direct abrasion comparison between these product classes is limited.
Surface preparation imposes a practical boundary on the silicone adhesive. The tape must not be applied over silicone oil, hydrocarbon grease, or fluoropolymer mold-release residues; these materials reduce peel adhesion to near zero. Light oils are removed with isopropanol, while methyl ethyl ketone or acetone may be required for wax and heavier hydrocarbon films. Solvent compatibility with the platen coating must be confirmed before cleaning. The tape is not recommended for direct contact with liquid oxygen or strong fluorinating agents. PTFE is resistant to most acids, bases, and solvents but is attacked by molten alkali metals and fluorine compounds at high temperature.
Food-contact suitability must be verified for the specific roll configuration under FDA 21 CFR 177.1550 and relevant migration limits; the silicone adhesive requires separate regulatory review. RoHS compliance under Directive 2011/65/EU and REACH compliance under Regulation (EC) No 1907/2006 should be confirmed through the current 3M regulatory data sheet for the specific stock number. Storage in original packaging at 10°C to 32°C and 40% to 60% relative humidity reduces the risk of adhesive blocking and roll telescoping. If the tape has been stored below 10°C, it should be conditioned at room temperature for 24 h before application to prevent brittle handling damage.
In composite bonding tool release, 3M 5490 is applied to tool faces and caul plates to prevent epoxy resin adhesion during autoclave or oven cure. The silicone adhesive must remain below 260°C throughout the cure cycle. At autoclave pressures above 0.7 MPa (100 psi), the extruded PTFE backing may cold-flow and thin over sharp tool edges; a skived PTFE tape or a harder release film should be considered. The tape is compatible with epoxy and bismaleimide prepreg release operations but must not be used with resin systems that contain fluorinated solvents or silicone-sensitive adhesion promoters without prior evaluation. Published data for this specific configuration is limited.