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Dielectric Polymers NT-988-2 Overlap Splice Tape

    • Название продукта: Dielectric Polymers NT-988-2 Overlap Splice Tape
    • Сайт Factroy: Округ Юду, Ганьчжоу, Цзянси, Китай
    • Запрос цены: admin@ascent-chem.com
    • Производитель: Ascent Petrochem Holdings Co., Limited
    • Свяжитесь сейчас
    Спецификации
    Код ТН ВЭД 979745

    Как аккредитованная фабрика по перекрытию лент для диэлектрических полимеров NT-988-2, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.

    Упаковка и хранение
    Упаковка Dielectric Polymers NT-988-2 Overlap Splice Tape is packaged as one 2-inch by 36-yard roll per carton.
    Погрузка контейнера (20-футовый контейнер) 20′ FCL container loaded with chemical Dielectric Polymers NT-988-2 Overlap Splice Tape, palletized, braced, and secured for safe transport.
    Доставка Dielectric Polymers NT-988-2 Overlap Splice Tape is not regulated as hazardous material for transportation. It can be shipped by ground, air, or ocean without dangerous-goods paperwork. Store in a cool, dry, well-ventilated area away from direct sunlight and ignition sources. Follow applicable local, state, and federal shipping regulations.
    Хранение Store Dielectric Polymers NT-988-2 Overlap Splice Tape in original, tightly sealed packaging in a cool, dry, well-ventilated area. Protect from direct sunlight, heat, ignition sources, moisture, and incompatible materials. Keep containers clean, clearly labeled, and off the floor. Avoid temperature extremes, rotate stock, follow manufacturer’s SDS and shelf-life guidance, and use first-in, first-out inventory practices.
    Срок годности Shelf life is typically 12 months from manufacture when stored in original packaging at 70°F (21°C) and 50% relative humidity.
    Бесплатная цитата

    Конкурентоспособные диэлектрические полимеры NT-988-2 Цены на перекрывающуюся ленту, которая соответствует вашему бюджету - гибкие условия и индивидуальные котировки для каждого заказа.

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    Сертификация и соответствие требованиям
    Более подробное введение

    Dielectric Polymers NT-988-2 Overlap Splice Tape is classified as a converter-grade pressure-sensitive splicing product for zero-speed and flying roll changeovers on flexographic, rotogravure, and slitting equipment. The product designation identifies a dielectric polymer film carrier combined with a pressure-sensitive adhesive layer; the overlap geometry places the adhesive in direct contact with the expiring web tail and the incoming roll leader, producing a junction that traverses nip rollers, web guides, printing stations, and rewind accumulators without the caliper spike associated with a butt splice. Overlap splicing is selected where butt splicing is mechanically unsuitable because of low web stretch, registration-critical printing, or splice detection requirements. The manufacturer’s current technical datasheet and certificate of analysis remain the controlling documents for nominal thickness, adhesion, and electrical properties. Published data for this specific NT-988-2 configuration is limited; therefore, a converting-line qualification program should include adhesion build at 23 °C and 50% RH in accordance with ASTM D3330/D3330M, splice tensile survival per ASTM D3759/D3759M, and dielectric breakdown per ASTM D149. The absence of a metallic carrier distinguishes this dielectric polymer tape from aluminum foil splicing tapes in printed electronics and capacitor film applications.

    Dielectric Film Carrier and Adhesive Formulation: Material Selection Criteria

    The carrier is a dielectric polymer film, typically biaxially oriented polyethylene terephthalate, selected for uniform caliper, dimensional stability under unwind tension, and electrical isolation between conductive webs. In overlap splicing, the carrier must resist machine-direction tensile forces during automatic roll changeover without necking, because width loss at the splice changes web tracking and registration. The adhesive layer is a pressure-sensitive acrylic in the general converter-splice class; silicone adhesive systems are reserved for splicing silicone-coated release liners where acrylic systems may not wet the low-surface-energy coating. Formulation acceptance is based on dynamic shear resistance and peel adhesion under ASTM D3330/D3330M, with thickness measurement performed per ASTM D3652/D3652M. Compared with general-purpose electrical tapes, the overlap splice product is specified for lower total caliper and higher shear holding power at nip temperatures encountered in solventless lamination and flexo drying sections. The absence of a fibrous reinforcement layer reduces splice caliper but lowers tear resistance relative to glass cloth splicing tapes. The selection of polyester rather than polyimide produces a lower continuous-service temperature limit but improves dimensional compatibility in ambient converting processes.

    What Does ASTM D3759/D3759M Require for Splice Tape Elongation and Break Strength?

    The tensile test method evaluates a pressure-sensitive tape specimen under controlled gauge length and crosshead displacement until break. The standard specifies specimen preparation at 25 mm width and a gauge length of 100 mm; the testing speed is 300 mm/min. For converter-grade polyester splicing tapes, class-typical breaking strength falls in the range of 30–70 N/25 mm and elongation at break falls in the range of 15–40%. These values are not batch-release data for NT-988-2 and must be verified against the manufacturer’s certificate of analysis. In a splice acceptance test, the relevant failure mode is not low elongation alone but the combination of break strength and adhesive peel strength at the trailing edge. A splice that survives a tensile load of 2–3 times the normal unwind tension provides the operating margin required for start-stop cycles and web accumulation. Test specimens should be conditioned for 24 h at 23 °C and 50% RH before testing to reduce moisture-dependent film plasticization.

    Validation propertyTest standard designation
    Total tape thicknessASTM D3652/D3652M
    Peel adhesion to stainless steel, 180°ASTM D3330/D3330M
    Breaking strength and elongationASTM D3759/D3759M
    Dielectric breakdown voltageASTM D149
    Volume resistivityASTM D257
    Flame propagationUL 510 or ASTM D1000

    In a zero-speed splicing unit on a central impression flexographic press with a web width of 1,320 mm and a maximum speed of 300 m/min, the tape is applied to the incoming roll leader on a splicing table equipped with a pneumatically actuated nip roller. Controlled nip pressure between 0.3 MPa and 0.5 MPa is used to wet out the adhesive without inducing caliper reduction in the carrier. The expiring web tail is placed over the adhesive with the machine direction of the carrier aligned parallel to web travel; cross-web misalignment greater than 1 mm has been observed to produce infeed steering errors and intermittent registration variation on multi-color work. Splice evaluation on the press consists of 10–15 automatic changeover cycles, during which the splice must pass through dancer rollers, infeed tension transducers, printing units, and the rewind tension zone without web break or adhesive transfer. Peak splice tension recorded by an idler-roller load cell should remain below the tensile strength of the tape after aging. In slitting and rewinding applications, the overlap splice must also survive the lateral forces imposed by web guides and the compressive load at the rewind pressure roller.

    If NT-988-2 Is Applied at Low Web Temperatures, Which Adhesive Wet-Out Limits Emerge?

    Surface temperatures below 10 °C reduce the wet-out of acrylic pressure-sensitive adhesives on high-stiffness films, and lap shear adhesion may fall below the minimum required to resist unwind tension. Rolls stored in an unheated warehouse should be conditioned for 24 h at 20–25 °C and 45–55% RH before splicing. At relative humidity above 60% RH, condensation on the dielectric film carrier can lower adhesive anchorage and cause release-liner instability; pre-drying is therefore required when the roll surface has been exposed to high humidity. The tape is not recommended for splicing silicone-coated release liners if an acrylic adhesive system is supplied; for those substrates, a silicone adhesive overlap splice tape should be specified. Contact with aggressive solvent cleaners or plasticizer-rich films should be avoided because plasticizer migration can soften the adhesive and produce splice slippage after ageing. High-temperature operation above the polyester carrier’s continuous service limit, typically rated at 105–125 °C for class-typical materials, can cause shrinkage and embrittlement at the splice boundary. A maximum short-duration excursion of 150 °C may be tolerated in dryer sections only if the web path residence time is below 10 s and the splice is not under high tension.

    On corona-treated polyethylene and oriented polypropylene webs with surface energies between 38 dyn/cm and 46 dyn/cm, adhesion build after 20 min dwell can exceed the initial 180° peel value by 15–40% in class-typical acrylic systems. However, the splice strength at zero dwell must still meet the tension requirement during the first seconds after roll changeover; automatic splicers often apply a squeeze pressure for 1–3 s before the web accelerates. The wet-out process is influenced by the backing’s surface roughness and the adhesive thickness; thicker adhesive layers improve conformability on textured substrates but increase splice caliper. For films with high slip additive concentrations, surface contamination can create a weak boundary layer; wiping the splice area with an isopropanol solution dried before tape application restores predictable peel adhesion. This practice is followed on production lines where splice failures have been traced to additive bloom rather than adhesive catastrophic failure. The operator verification includes a manual peel test of the splice tail before the roll is loaded into the unwinder; the peel should be continuous across the full web width and free of adhesive transfer.

    Splice Failure Modes and Process Variables During Roll Changeover

    Edge lifting is the most common failure mode and occurs when the adhesive fails to wet the substrate under insufficient nip pressure or when the expiring web tail has a curl set from storage. Telescoping of the finished roll after splicing is usually caused by a splice caliper greater than 0.15 mm or by cross-web offset in the overlap. Adhesive ooze from heat exposure in dryer sections can transfer to idler rollers and print cylinders; high-shear adhesive selection is verified by shear adhesion failure temperature testing under ASTM D4498. Compared with glass cloth splicing tapes, the dielectric polymer tape has reduced tear resistance but lower splice caliper and improved electrical isolation. Compared with polyimide-backed splicing tapes, the polyester-backed class has a lower continuous temperature limit but is adequate for ambient converting processes. Compared with single-coated butted splice tapes, the overlap construction creates a stronger web-to-web bond because the adhesive contacts both web surfaces, but it also requires tighter cross-web alignment. The chosen product must therefore be validated on the target web path rather than selected solely on catalog data.

    Carrier classContinuous service temperature rangeRelative tear resistanceDielectric isolation
    Polyester film105–125 °CModerateHigh
    Polyimide film260 °C classModerateHigh
    Glass cloth150–180 °C classHighLow unless impregnated

    On coating and laminating lines handling charge-sensitive webs, the dielectric carrier of NT-988-2 contributes a surface insulation barrier that prevents splice-induced short circuits across metallized films. Surface resistivity for class-typical polyester film tapes is above 1 × 1013 Ω/sq when tested per ASTM D257. Static charge accumulation on the exposed carrier may occur under low-humidity conditions below 20% RH; conductive splicing tapes are preferred where active static dissipation is required. Corona treaters located downstream of the splice station can impose additional breakdown stress on the carrier; validation should include dielectric breakdown testing of the splice at the specified voltage and frequency. In cleanroom environments, low particulation and silicone-free construction are often required; the selection of a polyester-acrylic system avoids silicone migration that can contaminate coating and lamination surfaces. The product’s dielectric polymer construction must be confirmed for the specific NT-988-2 revision because changes in carrier or adhesive may alter surface resistivity and particulate behavior.

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