| Код ТН ВЭД | 370575 |
Будучи аккредитованной фабрикой диэлектрических полимеров NT-2822 Ultra Tack Tape, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.
| Упаковка | |
| Доставка | |
| Хранение |
Конкурентоспособные цены на диэлектрические полимеры NT-2822 Ultra Tack Tape, 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!
Dielectric Polymers NT-2822 Ultra Tack Tape is a pressure-sensitive adhesive construction specified for lamination, splicing, and die-cut component assembly in which the adhesive must form an immediate mechanical bond to low-energy polymer films, irregular open-cell foam, or precision-cut metal foil before the lamination nip is released. The model designation NT-2822 denotes a specific product configuration within the manufacturer’s double-coated tape portfolio; publicly available data for this exact configuration is limited, so the technical data sheet and batch certificate of analysis remain the controlling documents for thickness, adhesive coat weight, peel, tack, shear, and dielectric values. The term Ultra Tack refers to an adhesive design that produces higher initial loop tack and shorter pressure dwell than a standard crosslinked acrylic transfer tape, typically through selection of lower glass transition monomers or controlled reduction in crosslink density. This change does not automatically imply higher electrical insulation, thermal stability, or chemical resistance; each end-use property must be qualified against a recognised method.
Incoming lot acceptance for NT-2822 should not rely on nominal marketing descriptions. The release specification should include total thickness, adhesive coat weight per side, release-liner caliper, 180° peel adhesion to stainless steel, loop tack, static shear, and dielectric strength for supported configurations. Because the manufacturer’s public data for NT-2822 is limited, a certificate of analysis should be requested for every lot and compared against an internal control range derived from initial production trials. If the certificate is incomplete, the converter can apply the test methods in the following section as a conditional release plan. This approach prevents variation in carrier, adhesive thickness, or liner release from entering a production run without detection.
Selection of NT-2822 for dielectric applications should begin with a comparison matrix rather than a single-value data sheet. Pressure-sensitive adhesive tapes used as dielectric barriers are evaluated under both mechanical adhesion and electrical insulation protocols. The test conditions below are not product specifications but are appropriate for incoming lot acceptance and comparative benchmarking. Because the product is supplied with release liners, all specimens should be conditioned at 23 ± 2 °C and 50 ± 5% RH for 24 h before testing to reduce moisture-dependent liner release and adhesive modulus variation.
| Property | Test method | Condition |
|---|---|---|
| 180° peel adhesion to stainless steel | ASTM D3330/D3330M-04(2018) | 20 min dwell, 305 mm/min, 25 mm width |
| Loop tack | ASTM D6195-03(2019) | 300 mm/min, 125 mm loop, 25 mm width |
| Static shear | ASTM D3654/D3654M-06(2019) | 1 kg, 25 mm × 25 mm, 70 °C |
| Thickness | ASTM D3652/D3652M-20 | Deadweight micrometer, 0.1 µm resolution, 50 mm foot |
| Dielectric strength | ASTM D149-20 | 500 V/s, 25 mm electrodes, oil immersion |
| Surface resistivity | ASTM D257-14(2021) | 500 V DC, 60 s electrification |
| Relative permittivity | ASTM D150-18 | 1 kHz, 23 ± 2 °C |
Dielectric strength data are particularly sensitive to carrier selection. For a supported tape, the measurement may reflect the carrier polymer rather than the adhesive layer; for an unsupported transfer adhesive, the tested thickness is the adhesive itself after liner removal. Surface resistivity is also sensitive to adhesive surface contamination and humidity, which is why ASTM D257-14(2021) requires controlled electrode geometry and electrification time. Comparative data for NT-2822 should be generated in the same format—supported or transfer—used in production. Residual release-liner material can lower apparent surface resistivity and create weak points in dielectric strength testing, so liner removal must be consistent across specimens.
When NT-2822 enters a flatbed lamination or rotary die-cutting cell, the high-tack character changes the acceptable processing window relative to general-purpose acrylic tapes. Production lines slitting and kiss-cutting high-tack adhesive films at 30–80 m/min typically require anvil temperatures below 32–38 °C; above this range, adhesive flow under the blade produces edge ooze and matrix re-tack. If the product is supplied on a paper release liner, moisture content should be kept below 6% to avoid curl and dimensional movement during die registration. Polyethylene-coated or silicone-coated polyester liners reduce moisture-driven curl but may introduce differential release behavior; the heavy release side should be oriented according to the converting drawing. Rewind tension for tape below 125 µm total thickness should be maintained in the range 0.4–0.8 N/mm width. Higher tension increases the risk of telescoping and adhesive squeeze-out on slit rolls. On flatbed laminators, nip pressure for foam lamination commonly falls between 5–10 psi, whereas rigid plastic or metal lamination may require 20–50 psi. If the substrate surface energy is below 30 mN/m, corona or plasma pre-treatment is usually required even for an ultra-tack adhesive; class-typical high-tack acrylic formulations can wet untreated polyethylene more readily than standard acrylics, but contamination and processing aids still interfere with bond formation.
High-tack acrylic constructions exhibit two converting failure modes not always present in standard acrylic tapes: adhesive squeeze-out at the slit edge and re-tack of the exposed edge after slitting. On a duplex slitter running 50–100 m/min, blade-tip temperature can rise 4–8 °C above ambient because of friction. If the adhesive’s storage modulus falls sharply between 25 °C and 35 °C, edge quality degrades; crush cutting or shear slitting with a lubricated blade may be preferred over razor slitting for logs above 300 mm diameter. For rotary shear slitting of tape with total thickness less than 125 µm, tangential blade speed should be maintained at 1.0–1.2× web speed, and rewind tension should be profiled from 0.5 N/mm width at the core to 0.2 N/mm width at the outer diameter. Constant-torque rewinds commonly generate telescoping in high-tack products because the adhesive layer yields at the slit interface under prolonged radial pressure.
Release-liner quality plays a controlling role in slitting and die cutting. For polycoated kraft liners, the release ratio between sides should be verified by the converter before production; an inverted differential release can cause the tape to transfer to the face stock or liner on unwind. If the liner shows striations or caliper variation greater than ±5%, the die strike depth may vary across the web. On rotary die lines with anvils of 90–110 Shore A hardness, the kiss-cut depth window for a tape with adhesive thickness below 50 µm is often not more than 10–20 µm; variation above this range produces either incomplete cutting or liner bruising and splitting. Regular anvil resurfacing and closed-loop depth control are therefore required for high-tack die-cut parts. These boundaries apply to the class of high-tack acrylic tapes; specific NT-2822 process limits should be drawn from supplier data and on-press trials.
Typical usage in flatbed lamination is not limited to rigid substrates. The tape may be kiss-cut on a polypropylene liner and supplied as individual parts or on a roll. The high tack permits low-pressure application, but the part should be allowed 24–72 h dwell at 23 °C for full adhesion build before further handling or environmental exposure. If the bonding substrate is powder-coated or textured, high-tack adhesives fill surface roughness more quickly than standard tapes; however, ultimate peel adhesion on rough surfaces may still be limited by the coating’s cohesive strength.
Substitution of NT-2822 for a standard crosslinked acrylic transfer film changes the adhesion/cohesion balance. In class-level comparisons, high-tack acrylic tapes often show 20–35% higher loop tack on untreated polyethylene than standard crosslinked acrylics, while static shear at 70 °C can be 20–40% lower because of reduced crosslink density or a lower glass transition monomer distribution. These ranges are intended as comparative benchmark expectations, not published NT-2822 values. The selection decision is therefore process-dependent: if the lamination operation applies low nip pressure for a short dwell, ultra tack reduces lifting and tunnelling; if the finished assembly is held under static load at elevated temperature, cohesive failure may occur earlier than with a standard high-shear acrylic.
Compared with a foam carrier tape of equivalent total thickness, an ultra-tack supported tape generally provides better die-edge definition and lower compression-set risk; however, a foam carrier can distribute stress over irregular substrates and compensate for thermal expansion mismatch. Compared with an unsupported transfer adhesive, a supported tape typically provides higher dielectric strength and better handling in rotary die cutting, but it introduces an additional polymeric layer that can affect conformability. NT-2822 is not directly interchangeable with either construction until the carrier, adhesive thickness, liner, and dielectric requirements are fixed on the part drawing.
If the alternative product is a rubber-based pressure-sensitive adhesive, high-tack acrylic systems usually show better ultraviolet stability, oxidation resistance, and colour stability, but they may give lower initial adhesion to some silicone-treated surfaces and plasticized vinyl. Ultra-tack adhesives can also interact with plasticizers more rapidly than high-shear acrylics because the looser network permits faster plasticizer migration into the adhesive bulk. A plasticizer migration study under load at the upper use temperature is therefore appropriate when NT-2822 is used on flexible PVC or compounded thermoplastic elastomer substrates.
Storage and incoming lot acceptance for NT-2822 should be defined before production release. The product should be stored in original packaging at 18–26 °C and 40–60% RH; freeze-thaw cycling is not recommended because adhesive modulus and release-liner stripping force can shift non-uniformly across the roll. If paper liners are used and relative humidity exceeds 60%, pre-drying at 35 °C for 4 h is a common converter control before rotary cutting. Adhesive incompatibility should be evaluated with plasticized vinyl, untreated silicone elastomers, and uncured amine-catalyzed polyurethane systems; migrating plasticizers and amines can soften or chemically alter the adhesive network. Regulatory documentation must be issued by the manufacturer for the exact laminate construction, because carrier and liner components can affect compliance. Typical declarations include RoHS Directive 2011/65/EU Annex II and REACH Regulation EC 1907/2006; food-contact status under 21 CFR 175.105 or 21 CFR 176.170 must not be assumed without an explicit supplier certification. Halogen-free and flame-retardant claims require the certificate of analysis to state the test method and threshold; the dielectric product family designation alone is not sufficient evidence.
In applications requiring both immediate tack and long-term dielectric stability, qualification should include environmental aging. A typical sequence exposes the bonded assembly to 85 °C and 85% RH for 1000 h, followed by post-exposure peel adhesion and dielectric strength measured on the same construction. Published NT-2822 data for this exact condition is limited, so internal testing on the actual substrate stack is required. If the bond includes aluminium foil, copper-coated textile, or tin-plated steel, galvanic corrosion and adhesive breakdown at cut edges should be evaluated separately. For high-frequency electrical applications, relative permittivity and dissipation factor should be measured at the end-use frequency rather than at 1 kHz, because polar adhesive components and moisture uptake can shift both parameters at higher frequencies.