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Solvay Flashtape 1R Adhesive tape

    • Название продукта: Solvay Flashtape 1R Adhesive tape
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    Код ТН ВЭД 640874

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    Solvay Flashtape 1R is a single-side adhesive-coated skived polytetrafluoroethylene (PTFE) film supplied in roll form for continuous application in electrical insulation, wire harness wrapping, heat-seal release, and non-stick surface protection. The 1R designation identifies the product configuration within the Flashtape family; the carrier is produced by skiving a sintered PTFE billet rather than by expansion or extrusion, yielding a dense fluoropolymer layer with reduced void content and uniform thickness. The adhesive system is a silicone pressure-sensitive adhesive applied to one face, selected for adhesion retention at elevated temperature and for compatibility with low-surface-energy fluoropolymer surfaces. In specification terms, the construction places the adhesive continuous-use limit below the PTFE melting point of approximately 327 °C; the skived backing itself can sustain short-term thermal excursions to 260 °C and continuous service in inert environments below that threshold, whereas the silicone PSA is the limiting layer in most oxidative service conditions. The product is differentiated from transfer adhesive tapes by the presence of a dimensionally stable carrier, and it differs from direct-etched PTFE films by eliminating the mixed adhesive/etching deposition step before lamination. Typical production configurations include slit widths from 10 mm to 100 mm; exact thickness, adhesion, and roll length values require lot-specific certification because skived film gauge and adhesive coat weight are process-dependent variables. In application, the tape is unwound under controlled tension, applied to a cleaned substrate, and consolidated with a pressure roll; initial adhesion build occurs within minutes, with final adhesion stabilization after 24 h at 23 °C and 50 % relative humidity. Because the backing is hydrophobic and chemically resistant, it prevents moisture ingress and resists solvent attack in mineral acid and alkali exposure except for extreme oxidizers or alkali metal environments.

    Why Does a Skived PTFE Carrier Perform Differently from Expanded PTFE or Polyimide Tapes?

    Skived PTFE is cut from a sintered billet under controlled blade pressure; the resulting film is dense and non-fibrillating, unlike expanded PTFE, which is stretched to introduce microporosity. Under ASTM D257, dense skived PTFE typically exhibits a volume resistivity in the range of 1015–1018 Ω·cm, while the porous structure of expanded PTFE can lower dielectric strength and permit contamination ingress. Under ASTM D149, dense skived PTFE films are usually characterized by dielectric strengths in the range of 30–60 kV/mm for thicknesses near 0.05 mm, although the value is thickness-dependent and lot-specific. Polyimide tapes, by comparison, provide higher tensile strength and are frequently rated as class 200 or 220 insulation under IEC 60085, but their dielectric constant is higher and their surface energy is less suitable for release applications. The fluoropolymer surface of Flashtape 1R has a coefficient of friction commonly reported under ASTM D1894 in the range of 0.05–0.10, which supports release in heat-sealing fixtures and prevents adhesive transfer from molten packaging films. The silicone PSA differentiates the product from acrylic and rubber adhesive tapes; acrylic adhesives generally degrade by depolymerization above 150–180 °C, and natural rubber adhesives soften below 100 °C, while silicone systems maintain cohesive strength over a broader thermal range. On a rotary heat-sealing jaw operating at 190 °C, a polyester-backed tape can embrittle and split, whereas the skived PTFE carrier resists thermal distortion and continues to release polyolefin sealants. The product thus occupies a narrow selection band: it is chosen when dielectric isolation, low surface energy, and thermal tolerance are required simultaneously.

    Surface preparation alters initial peel force more than adhesive coat weight within the normal production range. For stainless steel substrates, solvent degreasing with isopropanol or methyl ethyl ketone is followed by a final wipe with a lint-free cloth; surface roughness below 0.2 µm Ra gives reproducible adhesive wet-out, while roughness above 3.0 µm Ra can trap air at the adhesive interface and create peel discontinuities. On copper busbar surfaces, a mild abrasive cleaning with 600-grit silicon carbide paper produces a matte finish that improves initial anchorage without promoting galvanic corrosion. The tape is applied using a pressure roll at a nominal durometer of 60–70 Shore A; a consolidation force of 25 N per 25 mm is sufficient to achieve contact, after which dwell at 23 °C for 24 h increases ultimate peel force as measured by ASTM D3330 Method A. On anodized aluminum, adhesion can be lower because the oxide layer presents a low-energy surface and the pore structure can absorb moisture; a preheat at 120 °C for 10 min is sometimes used on production lines to remove interfacial water before tape application. When applying the tape to a wire harness at a 50 % overlap, the winding head should maintain unwind tension in the range of 0.5–4.0 N per 25 mm; tension above this range stretches the skived PTFE film and reduces local dielectric thickness, while tension below the lower bound causes misalignment and telescoping of the roll. The processing window is therefore defined by edge tracking at the low-tension end and by permanent elongation at the high-tension end, a balance observed on split-width roll slitting and harness wrapping equipment.

    When Continuous Operation Approaches the Silicone Adhesive Upper Limit

    Continuous operation above 200 °C shifts the failure mode from backing degradation to silicone adhesive migration and cohesive loss. In a heat-sealing line with chrome-plated sealing jaws cycling at 210 °C and 0.35 MPa jaw pressure, the skived PTFE backing remains dimensionally stable, but the silicone PSA can begin to flow from the tape edges after repeated dwell periods. This failure is influenced by temperature, dwell time, and substrate surface roughness; at 190 °C for 10 s dwell, edge migration is generally low, while at 210 °C for the same dwell, adhesive transfer to the jaw face can occur. The PTFE layer itself does not melt below 327 °C; however, the adhesive/backing interface can be weakened by oxidation if the silicone PSA is pushed beyond its rated continuous service. Dielectric integrity also depends on the remaining film thickness after elongation or abrasion. Under ASTM D149, the breakdown voltage of a 0.05 mm skived PTFE film is typically specified at 3–5 kV depending on electrode geometry and rate of voltage rise; localized thinning from over-tensioning reduces this value. For electrical insulation applications, the finished tape should be evaluated as a complete adhesive/film system under the relevant equipment standard, such as UL 746A for polymeric insulating materials, rather than using backing-only data. Published data for this specific configuration is limited; qualification under the intended thermal cycle and dielectric stress is required before production release. Failure to control the processing window can produce batch-to-batch variation in release force and dielectric strength, particularly when adhesive coat weight is at the lower specification limit or when liner removal speed exceeds 30 m/min on automatic applicators.

    In high-speed converting, liner-induced static and adhesive ooze interact with die-cutting and slitting. Slit edges can exhibit adhesive flow during storage at 35 °C if the roll is wound too tightly; this condition produces interlayer adhesion and web breaks at unwinding. To avoid edge blocking, converted rolls are typically wound at less than 2 N per 25 mm on the final spindle and are not stored in vertical orientation above 25 °C for extended periods. On automated wrapping machines, the tape path should include a low-inertia dancer and a closed-loop tension controller; the controller should be tuned to reject tension spikes when the roll diameter changes at splices. Web breaks during trial runs have been observed when splice bands are taped with excessive thickness, resulting in an abrupt caliper increase and localized peel force concentration. The skived PTFE film itself has a low tensile modulus relative to polyester and will not tolerate high acceleration; accelerations above 5 m/s² on a stop-and-go dispenser can induce permanent elongation if tension is not coordinated. These process limits are production-scale observations and should be verified with lot-specific release and tensile data.

    In practice, the comparison set for Flashtape 1R includes unsupported silicone transfer tapes, expanded PTFE tapes, polyimide tapes with silicone adhesive, and glass cloth-backed PTFE laminates. Unsupported transfer tapes lack a carrier and are limited in width and tension during application; they also require a release liner that can introduce static charge. Expanded PTFE tapes offer conformability and lower density but have higher void volume and reduced dielectric strength under ASTM D149. Polyimide tapes with silicone adhesive provide excellent dielectric strength and class 200 or 220 thermal classification but are more rigid and have higher moisture absorption than the fluoropolymer backing. Glass cloth-backed PTFE tapes have higher tensile strength and tear resistance but are thicker and less conformable on small-radius wire harnesses. Flashtape 1R is therefore specified where a dense fluoropolymer surface, electrical isolation, and a silicone adhesive are required in a single-layer construction. The product is not considered an equivalent drop-in for polyimide tape where UL-listed insulation systems demand a specific class designation, nor is it recommended for continuous flexing against sharp edges because skived PTFE has low cut-through resistance. In sealing applications, the release surface prevents molten polyethylene, polypropylene, and copolyester sealants from building up on the jaw; in wire harness wrapping, it provides dielectric isolation without the use of liquid conformal coatings. The adhesion requirement for each substrate should be determined by ASTM D3330 peel testing; values below 3 N/25 mm may be acceptable for release layers, while electrical harness applications often require at least 5 N/25 mm after dwell.

    Representative material-class reference values for dense skived PTFE film, not lot-specific Flashtape 1R certification.
    PropertyTest methodDense skived PTFE typical range
    Specific gravityASTM D7922.13–2.22
    Tensile strengthASTM D88220–35 MPa for 0.05–0.25 mm film
    Elongation at breakASTM D882200–400 %
    Dielectric strengthASTM D14930–60 kV/mm for 0.05 mm film
    Volume resistivityASTM D2571015–1018 Ω·cm
    Coefficient of frictionASTM D18940.05–0.10 static
    Water absorptionASTM D570<0.01 %
    Melting pointASTM D4591323–327 °C

    Skived PTFE, ePTFE, and Polyimide Are Not Directly Interchangeable in Dielectric Service

    Dielectric constant and dissipation factor differentiate these carriers in high-frequency and high-voltage service. Dense skived PTFE has a dielectric constant near 2.1 over a broad frequency range, with a dissipation factor often below 0.0003 at 1 MHz; these values are used in printed circuit and wire insulation applications but are not direct product specifications. Expanded PTFE has a lower effective dielectric constant due to air in the porous structure, but partial discharge behavior is less predictable under high electric fields because voids alter the field distribution. Polyimide films have a dielectric constant near 3.4 and a dissipation factor higher than that of PTFE, which may be significant in controlled-impedance designs. In a high-voltage termination, the tape is wrapped with 50 % overlap; the number of layers required depends on the system voltage and the dielectric strength of the tape. A single layer of 0.05 mm skived PTFE is not sufficient for insulation coordination above 1 kV without additional layers or an insulation system approval. The adhesive layer also contributes to the total thickness and can affect heat dissipation; under sustained voltage, interfacial voids at the adhesive/substrate interface can become partial discharge initiation sites. Production inspections therefore include visual examination for entrapped air and continuity of the adhesive under IPC-A-610 or equivalent acceptance criteria. Flashtape 1R is not a substitute for an approved insulation system when safety standards require system-level testing; it is an engineered tape layer that must be evaluated with the mating equipment and operating voltage.

    For roll handling on automated applicators, the product is typically slit to width and wound on phenolic or plastic cores; liner release force should be measured after conditioning at 23 °C and 50 % relative humidity for 24 h. High liner release at low temperature or excessive liner release after aging can cause tape tearing during high-speed dispensing. If the liner is removed at a rate above 30 m/min, static charge may be generated on the fluoropolymer surface; static elimination with ionizing bars is recommended for solvent-containing operations. The product should be stored in the original packaging at 10–25 °C and 30–60 % relative humidity, away from direct ultraviolet light. Storage outside these conditions can alter the silicone adhesive crosslink density and change peel values. The tape is not intended for continuous immersion in strong oxidizing acids at elevated temperature, nor for direct contact with molten alkali metals, metallic sodium, or fluorine gas; these environments attack PTFE and can generate hazardous decomposition products. For food-contact applications, the adhesive system and backing must be separately certified under the relevant regulation, such as 21 CFR 177.1550 for the PTFE component; no blanket food-contact designation applies to the finished tape. Processing trials on production equipment should include adhesion as a function of liner removal speed, dielectric strength after 50 % overlap wrapping, and release performance after 200 cycles on the target heat-seal jaw. Because the skived film gauge varies along the production length more than cast or extruded polymer films, roll-to-roll tension control should be verified with edge sensors; a tension variation of ±0.5 N per 25 mm is a reasonable process alarm band for avoiding permanent deformation. The product is supplied under quality documentation that includes lot traceability for the skived PTFE batch and the silicone adhesive batch; users should retain certificates of conformance for each production lot to reconcile tape lot changes with adhesion and dielectric test data.

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