| Код ТН ВЭД | 547802 |
Как аккредитованная фабрика по производству двойной ленты для диэлектрических полимеров NT-141PLE, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.
| Упаковка | Dielectric Polymers NT-141PLE Double Liner Tape: one roll per package, sealed in protective wrap with identifying label. |
| Погрузка контейнера (20-футовый контейнер) | 20′ FCL container loaded with Dielectric Polymers NT-141PLE Double Liner Tape, palletized chemical cargo, properly secured for safe ocean transport. |
| Доставка | Shipping: Dielectric Polymers NT-141PLE Double Liner Tape is not classified as dangerous goods for transport. It is non-hazardous and not regulated by DOT, IATA, IMDG, or ADR. Ship in original sealed packaging at ambient temperature, protected from moisture, direct sunlight, and extreme heat. Follow local regulations. |
| Хранение | Store Dielectric Polymers NT-141PLE Double Liner Tape in original packaging, tightly closed, in a cool, dry, well-ventilated place away from direct sunlight, heat, sparks, and moisture. Maintain a moderate temperature, ideally 15–30°C, with low humidity; do not freeze. Keep away from incompatible substances. Rotate stock first-in, first-out, and avoid crushing, tearing, or deformation. Follow manufacturer’s storage instructions and local regulations. |
| Срок годности | Shelf life: 12 months from date of manufacture when stored in original packaging at 21°C (70°F) and 50% relative humidity. |
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Dielectric Polymers NT-141PLE Double Liner Tape is supplied as an unsupported pressure-sensitive adhesive web interposed between two release liners. The tandem-liner construction allows the adhesive layer to be transferred to a first substrate, the primary liner removed, and the opposite face exposed for a subsequent bonding step. Unlike a double-coated tape, no internal carrier is present; therefore, the bonded joint retains only the adhesive layer and the two substrates, producing a thin bond line with no added film or tissue stiffness. The product code NT-141PLE identifies a specific product configuration within the manufacturer’s range. Publicly available secondary data for this exact designation is limited; nominal adhesive thickness, liner caliper, release differential, and chemical composition should be taken from the manufacturer’s current technical datasheet and batch certificate rather than inferred from similar grades.
The absence of a carrier reduces the handling stiffness of the adhesive web. On a production laminator, adhesive transfer is therefore governed less by the tensile modulus of a carrier and more by the release force difference between the two liners. If the primary liner is not deliberately set to a lower release level than the secondary liner, the adhesive can split or transfer to the wrong surface during peel-away.
Compared with a single-liner transfer tape, the double-liner format provides the ability to convert the adhesive web into pre-cut shapes without exposing the second face prematurely. A single-liner transfer tape exposes the open adhesive surface after liner removal, which can contaminate the adhesive during storage or handling. The second liner also permits reel-to-reel processes in which the first face is laminated, parts are kiss-cut, and the release liner remains in place until final assembly. The trade-off is that the double-liner web is more sensitive to differential release and more expensive than a single-liner construction because of the additional liner.
Kiss-cutting through the adhesive and primary liner but not the secondary liner requires blade-depth control that matches the liner caliper and compressibility. On rotary converting equipment, the anvil and die cylinder clearance is typically adjusted in increments of 10 µm to 25 µm, and liner thickness variation from moisture or roll set can exceed that window. If the secondary liner is a densified kraft grade, caliper can increase by several percent after exposure to relative humidity above 60% RH, which directly changes kiss-cut depth. If the secondary liner is a polyester film, caliper is stable but the liner has higher tensile stiffness and may not absorb anvil deflection in the same way.
Clean edge formation is also influenced by the viscoelastic response of the adhesive at the die. Pressure-sensitive transfer adhesives cut more cleanly when conditioned to 20 °C to 25 °C before converting; cold adhesive can tear, while warm adhesive can flow and re-contact after slitting. In high-speed rotary lines, die strike pressure is set by the press load cell, and the kiss-cut target is verified by optical or laser profilometry on both web edges. Blade wear produces progressively deeper penetration; a shift of 25 µm can be enough to cut into the secondary liner and create liner fragments downstream.
High-speed die cutting of unsupported adhesive webs can also generate adhesive buildup on kiss-cut blades. Buildup changes the effective blade depth and can cause the adhesive to tear rather than cut. Fluoropolymer-coated blades or intermittent lubrication may be used, but the selected release agent must not migrate to the adhesive surface and reduce tack. On wide-web presses, blade-to-blade deviation across a rotary die is checked by cutting a full-width test strip and measuring kiss-cut depth with a laser displacement sensor at a minimum of five positions per metre of web width.
Roll changes and spliced rolls introduce periodic caliper discontinuities. A splice made with a butt-splice tape thicker than 50 µm may generate a kiss-cut depth spike and damage the die. Converters commonly mark splices and slow the line through the splice zone. Ultrasonic or optical splice detectors can be integrated into the unwind section to trigger an automatic slowdown.
For adhesion testing, bonded specimens are prepared after substrate cleaning and conditioned at 23 °C ± 2 °C and 50% ± 5% RH according to the conditioning provisions of ASTM D3654/D3654M. Peel adhesion is measured under ASTM D3330/D3330M using a constant-rate tensile tester with a 90° or 180° peel fixture, and reported in newtons per centimetre or ounces per inch. Substrate surface energy is a major uncontrolled variable; a change from stainless steel to a low-energy molded part can reduce reported peel substantially, but the exact reduction for NT-141PLE must be verified on production substrates rather than inferred from standard panels.
The following test matrix is used during incoming inspection and process qualification for double-liner transfer tape constructions. Product-specific acceptance limits are assigned by the quality specification for NT-141PLE; the methods provide the repeatable test base.
| Property or attribute | Method | Unit or condition | Process relevance |
|---|---|---|---|
| 180° peel adhesion to stainless steel | ASTM D3330/D3330M | N/cm | Controls bonding after dwell |
| Loop tack | ASTM D6195 | N | Controls deposition onto first substrate |
| Static shear holding power | ASTM D3654/D3654M | h at specified temperature and load | Controls creep under load |
| Dielectric strength of bonded stack | ASTM D149 | kV/mm | Verifies electrical insulation function when required |
| Liner release force | ASTM D3330/D3330M or internal method | gf/25 mm | Controls differential release |
| Surface energy | ASTM D2578 | mN/m | Checks liner and substrate cleanliness |
Incoming inspection uses a controlled laboratory to measure release force on both liners. The two values must remain separated by a defined ratio; if the ratio narrows, the adhesive can be pulled away from the primary liner too early. Release force is reported in grams per 25 mm width and is measured on a tensile tester at a 180° peel angle and a fixed speed. The appropriate speed for liner release testing is often 300 mm/min, but the quality agreement may specify a different speed for thin liners to avoid liner tear.
Adhesive coat weight is verified by solvent extraction or by differential weighing before and after liner removal. Coat-weight variation across the web affects both bond thickness and kiss-cut behavior. Wide-web coaters may show a transverse coating profile with lower coat weight at the edges; converters of narrow rolls should therefore avoid using the outer 10 mm to 15 mm of the master roll if edge profile data show thickness deviation beyond the quality limit.
The two liners are not functionally interchangeable. The primary liner is intended to be removed first and typically carries a lower release value than the secondary liner. If the adhesive web is unwound and the wrong liner is stripped, the unsupported adhesive can remain on the secondary liner, producing a mirrored construction and changing the orientation of the die-cut part. On production machines, liner-side identification is maintained by contrast mark, caliper difference, or printed side legend; no assumption should be made that the two liners are identical.
Moisture uptake alters paper-based liner dimensions and affects kiss-cut registration. In a converting room held at 23 °C and 50% RH, a densified kraft liner reaches equilibrium within 24 h to 48 h after removal from moisture-resistant packaging. However, if the liner is polyethylene-coated kraft, moisture sensitivity is lower but the lower release surface can be thermally sensitive during downstream exposure to adhesive curing temperatures above 80 °C. Polyester liners provide greater dimensional stability and die-cut registration, but static charge generated during high-speed liner removal may require ionization or grounded web paths.
Static charge generated by peeling polyester liners can attract airborne particulates to the exposed adhesive. Ionizing bars and grounded idler rollers are used on high-speed lines to suppress static before the nip. If the adhesive is exposed for more than a few seconds before bonding, a cleanroom classification of at least ISO 14644-1 Class 8 is advisable for particle-sensitive electronic assemblies.
The first-face transfer is generally performed on a nip roll laminator. The liner side facing the adhesive is removed immediately before the nip point, and the exposed adhesive is pressed against the cleaned substrate. Nip pressure, roll durometer, and line speed determine wet-out and air entrapment. High-hardness steel rolls may not conform to textured substrates; a rubber-coated nip roll with a Shore A hardness of 60 to 80 is common for pressure-sensitive transfer lamination, but the exact setting must be developed for the part geometry. Because the adhesive is unsupported, web tension is carried entirely by the remaining liner; excessive tension can elongate the adhesive and change part dimensions.
Air entrapment can be reduced by laminating with a slight wedge angle and by using a roll with a rubber blanket of 5 mm to 10 mm thickness. If the adhesive is temperature-sensitive, a heated nip set below 40 °C may be used, but the release liner must not embrittle or shrink at that temperature.
Pressure-sensitive transfer adhesives exhibit cold flow under constant load. Edges of die-cut parts can ooze if the adhesive is exposed to compressive stress during shipment or storage. Static shear testing per ASTM D3654/D3654M is used to rank cold flow, but part geometry and liner type also matter. Parts stacked in deep trays may show adhesive transfer to the liner of the part above if the adhesive is near its softening point.
Carrier-backed double-coated tapes include a polyester, polypropylene, tissue, or nonwoven carrier between two adhesive layers. The carrier reduces stretch, improves kiss-cut definition, and provides handling stiffness on manual assembly lines. NT-141PLE Double Liner Tape, by contrast, has no carrier; the bonded joint is thinner and can conform more completely into recessed features, but the adhesive web is more easily deformed during liner stripping. In manual operations, slow peel at an angle below 90° is preferred because it reduces tensile load in the adhesive and prevents transfer strings from lifting.
On low-surface-energy substrates, tape selection should be based on measured peel and fixture time rather than product category alone. Contact angle data generated under ASTM D7490 can screen surface energy, but it does not replace actual build trials. When a molded polypropylene gasket is laminated instead of a powder-coated metal frame, adhesion may fall because of lower surface energy and internal mold-release residues. Cleaning with a solvent acceptable to the molder followed by corona or plasma treatment can restore surface energy, but any treatment must be validated for stress-crack-sensitive polymers.
The unsupported adhesive should not be used where the bond requires tensile reinforcement or where the adhesive layer is exposed to continuous shear with large thermal cycles. Carrier-backed tapes maintain dimensional stability and can bridge gaps; an unsupported transfer tape will not bridge gaps and may craze under stress. For structural assemblies, a mechanical fastener or carrier-backed structural adhesive tape is required, and selection should be driven by lap-shear testing under ASTM D1002 or the appropriate structural bond standard.
Batch-to-batch variance is assessed by conditioning incoming rolls and retaining a control lot. A change in liner release force or adhesive coat weight can appear as premature liner stripping, adhesive transfer to the wrong surface, or variable kiss-cut depth across the web. Optical inspection systems with 100% web coverage are used on high-speed converting lines to detect liner fractures, adhesive voids, and particulate contamination. Because the adhesive web is unsupported, a liner fracture during unwinding can cause a catastrophic web break; splice butt rolls are therefore inspected for tape thickness and overlap before loading.
Rolls are normally stored in a clean, dry area at 20 °C ± 2 °C and 50% ± 5% RH. Rolls should remain in moisture-barrier packaging until the temperature of the roll reaches the converting room temperature to prevent condensation on liners. Shelf-life limits for pressure-sensitive transfer tapes are assigned by the manufacturer based on aging studies; a certificate of analysis should indicate the date of manufacture and the remaining shelf-life. Using material beyond the stated shelf life may increase liner release and reduce tack.
Compliance claims for electrical, electronic, and medical device applications should be confirmed against the manufacturer’s regulatory documentation. Typical document requests include REACH, RoHS, and FDA 21 CFR 175.105 where adhesive contact with food is limited to packaging lines; no product-specific conclusion for NT-141PLE should be inferred from similar grades.
For flex-circuit stiffener attachment, the unsupported adhesive is applied to a polyimide stiffener, then the second liner is removed and the stiffener is placed onto the circuit under a heat-assisted laminator. The heat-assisted cycle may improve wet-out and reduce trapped air, but it also accelerates adhesive flow. If the adhesive is too soft at lamination temperature, it can squeeze out from the bond periphery. The lamination setpoint is therefore established by measuring squeeze-out on a production-representative panel rather than by using the adhesive’s heat resistance alone.
When the tape is used in an electrical insulation stack, the voltage withstand of the complete laminate is the operative qualification parameter. Specimens are prepared with the adhesive layer between polyimide or polyester film and a conductive substrate, then tested under ASTM D149 at the specified voltage ramp. The dielectric performance is a property of the entire stack, not of the adhesive alone, and any voids introduced by entrained air or insufficient lamination pressure can reduce breakdown voltage. Production parts should therefore be subjected to 100% optical inspection for bubbles and thickness variation before the dielectric test lot is released.