| Код ТН ВЭД | 362527 |
Как аккредитованный завод по маскированию диэлектрических полимеров NT-8511-2, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.
| Упаковка | Each 2-inch by 36-yard roll is individually wrapped; supplied in a case of 24 rolls. |
| Погрузка контейнера (20-футовый контейнер) | 20′ FCL container loaded with Dielectric Polymers NT-8511-2 Masking Tape, securely palletized, evenly distributed, and braced for safe ocean transport. |
| Доставка | Dielectric Polymers NT-8511-2 Masking Tape is shipped as non-hazardous, non-regulated goods. Use clean, dry, securely sealed packaging to prevent contamination or damage. Transport at moderate temperatures, away from direct sunlight and moisture. Follow all applicable local, state, federal, and international shipping regulations. |
| Хранение | Store in a cool, dry, well-ventilated area, away from direct sunlight, heat, sparks, and oxidizing materials. Keep rolls in original packaging, sealed, clean, and dry. Maintain 15–25°C (59–77°F) and moderate humidity. Avoid excessive stacking, moisture, solvents, dust, and physical damage. Store separately from incompatible chemicals, label clearly, rotate stock, and follow the manufacturer’s SDS/local regulations. |
| Срок годности | Shelf life is 12 months from date of manufacture when stored at 21°C (70°F) and 50% relative humidity in original packaging. |
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Dielectric Polymers NT-8511-2 Masking Tape is a polyester-film-backed, silicone pressure-sensitive adhesive masking product supplied in log rolls and converted slit widths for high-temperature coating and finishing operations. The construction combines a dimensionally stable polyester carrier with a crosslinked silicone adhesive layer; no release liner is present in the standard single-sided configuration. Manufacturer technical literature positions NT-8511-2 for temporary surface protection during powder coating, electrocoating, anodizing, thermal spray, and short-cycle cure processes where the mask must survive peak metal temperatures and remove without adhesive transfer. The polyester backing contributes tensile strength, tear resistance, and dimensional stability during slitting, die cutting, and removal, while the silicone adhesive provides high-temperature release behavior and lower outgassing relative to rubber-based masking adhesives. The product is specified for intermittent service at temperatures up to 260°C; published continuous thermal endurance data for this specific construction is limited, and process validation under actual oven load conditions is required before full production use.
In powder coating applications, NT-8511-2 is applied to mask holes, threaded bosses, bearing journals, grounding pads, and mating faces before parts enter the electrostatic spray booth and curing oven. Application may be manual or automated through die-cut appliqué equipment. Because the backing is a polyester film rather than crepe paper, the tape resists paint strike-through and fiber tear at the mask edge. In electrostatic spray booths, the tape edge must be pressed firmly along the perimeter to prevent powder ingress at wrinkles or lifted edges. Oven dwell conditions for powder coating typically range from 10 to 30 minutes at 160°C to 220°C; the silicone adhesive in NT-8511-2 is designed to remain stable during these short-cycle exposures. However, process engineers should verify that the measured part surface temperature, not the oven air setpoint, remains below the tape’s maximum intermittent service temperature. Infrared cure systems can produce faster surface temperature rise than convection ovens, and local hot spots on thin-wall stampings or aluminum castings may exceed the adhesive’s release stability limit even when the oven air temperature is within specification. After cure and cooling, the tape is removed by peeling at an angle of 90° or 180°; removal at elevated temperature is not recommended because softened adhesive can leave residue on the substrate.
For electrocoat and anodizing operations, the tape is applied before immersion in aqueous coating baths or acid/alkaline cleaning solutions. The polyester backing resists water absorption and maintains adhesion under immersion conditions that would soften paper masking products. In anodizing baths containing sulfuric acid at concentrations typically near 150 g/L to 200 g/L, the tape edge seal must be continuous; any lifted edge allows acid penetration and underfilm etching. The silicone adhesive is formulated to resist the oxidizing condition of the anodize bath, but prolonged immersion beyond the process window can cause adhesive edge degradation and leave residual contamination on the masked surface. For e-coat lines, the tape must withstand alkaline cleaner stages, rinse stages, and oven cure; adhesion to cold-rolled steel and aluminum should be checked at the expected bath temperature because peel values decline as the substrate temperature increases.
When the tape is used in thermal spray masking, the polyester backing resists particle impact at glancing angles but not direct high-velocity plasma spray impingement. For plasma spray cells using a 40 kW gun and standoff distances of 100 mm to 150 mm, the tape is suitable for masking adjacent areas that receive overspray, not areas directly under the plume. Direct plume impact erodes the polyester film within seconds. The tape is therefore positioned outside the primary spray cone or protected by metallic mask overlays. In composite bonding and autoclave cure, NT-8511-2 is used as a flash-breaker tape on tooling and bagging films. The silicone adhesive leaves no residue on release films, but use on uncured composite prepreg should be avoided because silicone contamination can interfere with epoxy wetting and interlaminar shear strength. lap shear testing per ASTM D1002 or interlaminar fracture testing per ASTM D5868 can be used to validate that no silicone transfer occurred after incidental contact.
The release behavior of NT-8511-2 is governed by the crosslinked polydimethylsiloxane adhesive network. Silicone adhesives exhibit lower surface energy than acrylic or natural-rubber adhesives, which allows wet-out on low-energy substrates such as polyethylene and powder-coated surfaces while retaining removability after thermal cycling. Unlike acrylic adhesives, which can build peel adhesion with time and temperature through further polymer chain entanglement, silicone adhesives generally show flatter adhesion build curves over short-term high-temperature exposure. Rubber-based masking adhesives tend to soften and leave residue above 120°C; acrylic adhesives can tolerate higher temperatures but may leave ghosting on sensitive painted surfaces after thermal cure. The silicone system in NT-8511-2 is selected to avoid the aggressive adhesion build associated with high-solids acrylic transfer tapes. Comparative peel measurements are typically performed against stainless steel per ASTM D3330; published data for NT-8511-2 places 180° peel adhesion in the range of 4.0 N/25 mm to 6.0 N/25 mm, depending on test surface, dwell time, and application pressure. This range is not a release specification for every substrate; painted surfaces with low surface energy, textured e-coat films, and oxidized metals produce significant variation.
| Property | Test Method | Typical Value |
|---|---|---|
| Backing thickness | ASTM D3652 | 0.025 mm |
| Total thickness | ASTM D3652 | 0.055 mm |
| Peel adhesion to stainless steel, 180° | ASTM D3330 | 4.0 N/25 mm to 6.0 N/25 mm |
| Tensile strength at break | ASTM D3759 | Minimum 40 N/25 mm |
| Elongation at break | ASTM D3759 | Minimum 80% |
| Dielectric breakdown voltage | ASTM D149 | 4 kV to 6 kV per layer |
| Intermittent service temperature | Manufacturer data | -73°C to 260°C |
The test values in the table are not process release specifications. Peel adhesion, tensile strength, and elongation are measured under controlled laboratory conditions on standard surfaces; actual performance on production parts depends on surface geometry, edge treatment, oven air velocity, part mass, and cooling time before removal. Silicone adhesives are particularly sensitive to low-molecular-weight siloxane contamination on substrates; solvent cleaning before tape application should use solvents that leave no nonvolatile residue. Isopropyl alcohol and acetone are commonly used, but final selection must be validated because aggressive solvents can extract plasticizers from painted surfaces or oxidize active metal surfaces.
Solvent exposure limits for NT-8511-2 are determined by the polyester backing and the crosslinked silicone adhesive. The backing resists short-term contact with aliphatic hydrocarbons, ketones, and esters used in wiping and cleaning operations, but prolonged immersion in chlorinated solvents may cause dimensional change and edge lift. The silicone adhesive is not recommended for continuous exposure to strong acids or bases above ambient temperature. In abrasive blast masking applications, the tape is used to protect polished sealing faces and optical surfaces during grit blasting; the polyester backing provides abrasion resistance that exceeds paper tape but is lower than glass cloth or polyurethane film tape. For heavy grit blasting with aluminum oxide at pressures above 0.5 MPa, an additional protective layer or a thicker composite mask may be required. Thermal limits are similarly bounded: the product withstands short-cycle cure ovens, but continuous exposure at 200°C for periods longer than the manufacturer’s validated window can cause adhesive crosslink density to increase, backing embrittlement, and residue transfer on removal. Qualification trials should include post-removal surface energy measurement and coating adhesion cross-cut tests per ISO 2409 or ASTM D3359.
| Product Class | Maximum Intermittent Temperature | Adhesive System | Masking Removal Characteristics |
|---|---|---|---|
| Dielectric Polymers NT-8511-2 | 260°C | Silicone | Clean removal after short-cycle cure |
| Crepe paper masking tape | 120°C | Rubber | Fiber tear and residue at elevated temperature |
| PVC vinyl masking tape | 150°C | Acrylic or rubber | Plasticizer migration; conformable but temperature-limited |
| Polyimide masking tape | 400°C | Silicone | Higher temperature capability, higher cost, thinner backing |
| Glass cloth masking tape | 250°C to 300°C | Silicone or rubber | Abrasion-resistant, potential heavy adhesive residue |
Production experience with NT-8511-2 on powder coating lines indicates that part geometry and oven load have a greater influence on tape performance than the oven temperature setpoint alone. In a convection cure oven processing cast aluminum housings with wall thickness of 2 mm to 4 mm, the part surface temperature can lag the air setpoint for the first portion of the dwell cycle, then overshoot during the final stage. If the tape is applied to a thin flange rather than a thick boss, the rate of temperature rise is higher and the local adhesive temperature can exceed the removal limit even though the oven air temperature remains at 200°C. This is a common process conflict in mixed-load coating lines. The remedy is not necessarily a higher-temperature tape but a process adjustment such as reducing oven setpoint, increasing line speed, or repositioning parts on the rack. Batch-to-batch variance in silicone adhesive thickness can also shift release behavior; adhesive coat weight variations of ±10% are typical in pressure-sensitive tape coating and can produce visible differences in edge lift and residue after thermal cycling. For this reason, incoming tape rolls should be sampled and tested against a retained reference. The tape should not be used in powder coating ovens operating above 260°C metal temperature or in e-coat ovens where the part dwell exceeds the validated time at temperature.
Dielectric Polymers NT-8511-2 Masking Tape differs from general-purpose paper masking tapes in backing type, thermal resistance, and adhesive release chemistry. Paper masking tapes use creped paper carriers and rubber-based adhesives; they conform well to curved surfaces but fail above 120°C and can leave fibrous debris. Polyvinyl chloride tapes offer high elongation and conformability but contain plasticizers that can migrate to the substrate and interfere with subsequent coating adhesion. Polyimide tapes provide higher thermal stability but are stiffer, more expensive, and often harder to remove in long runs from complex geometries. Glass cloth tapes provide abrasion resistance but can leave heavy adhesive residue after high-temperature exposure. NT-8511-2 targets the intermediate process window: temperatures beyond paper and PVC limits, lower cost than polyimide, and cleaner removal than glass cloth in short-cycle cure. The product is supplied in log rolls and can be slit to narrow widths or die-cut into custom mask shapes. Compliance documentation should be confirmed with the manufacturer for RoHS 2011/65/EU and REACH 1907/2006; standard tape constructions of this class generally do not intentionally contain restricted phthalates or heavy metals, but the absence of substances of very high concern must be verified for the specific lot. Users should store the tape at 10°C to 27°C and 40% to 60% relative humidity, away from direct sunlight, to preserve adhesive release properties.