| Код ТН ВЭД | 324578 |
Будучи аккредитованной компанией Rogers Corporation ARLON A3030-R012-12, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.
| Упаковка | Packaged as a cardboard case containing 12 rolls; each self-fusing tape roll is individually wrapped for protection. |
| Погрузка контейнера (20-футовый контейнер) | 20′ FCL loading: Rogers ARLON A3030-R012-12 self-fusing tape, palletized, shrink-wrapped, secured, kept dry, stowed per transport and safety regulations. |
| Доставка | Shipping description: Rogers Corporation ARLON A3030-R012-12 Self-fusing tape is not regulated as a hazardous material/dangerous good. No UN number, hazard class, or packing group required. Transport as non-hazardous cargo in secure packaging, protected from heat, moisture, and damage, per carrier and local regulations. |
| Хранение | Store Rogers Corporation ARLON A3030-R012-12 Self-fusing tape in a cool, dry, well-ventilated area in original packaging. Keep away from direct sunlight, heat, sparks, open flames, moisture, dust, and incompatible materials. Avoid extreme temperatures and maintain recommended storage limits. Keep containers closed when not in use. Rotate stock, use first-in, first-out, and follow SDS/label instructions. Store as per manufacturer. |
| Срок годности | Shelf life is 5 years from date of manufacture when stored in original packaging at 23°C (73°F) and 50% RH. |
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Rogers Corporation ARLON A3030-R012-12 is an unsupported, self-fusing silicone rubber tape supplied as a dry roll without a pressure-sensitive adhesive layer. The product is used as a primary or secondary electrical insulation wrap on cable harnesses, splices, termination bodies, and irregular connector transitions where a conformable dielectric shell must be built up in place. The part-number suffix encodes dimensional information: the R012 block corresponds to a nominal thickness class of 0.012 in (0.30 mm), while the trailing 12 is a roll width or length identifier whose exact value must be checked against the procurement specification. Self-fusing behavior means that the tape bonds only to itself when one convolution is pressed over another; it does not wet copper, aluminum, XLPE, or PVC substrate surfaces. The absence of an adhesive interphase removes tackifier migration and residual adhesive transfer, but it places stricter demands on wrap tension, surface cleanliness, and layer overlap. Published data for this specific configuration is limited; certified physical and electrical values should be obtained from the supplier lot certificate rather than from generic silicone-tape literature.
The tape is built on a filled silicone elastomer. The filler package influences tear resistance, surface finish, and the rate at which adjacent wraps become inseparable. In self-fusing tapes, the silicone matrix is compounded with a controlled degree of molecular mobility. When one layer is pressed against another, polysiloxane segments interdiffuse across the interface and entangle. Over time at room temperature, the boundary develops into a continuous elastomeric mass. Because the tape is unsupported, the resulting wall contains no woven scrim or film carrier; this permits high elongation but reduces cut-through and tear resistance relative to reinforced glass-cloth or film-backed tapes.
The fusion process is contamination-sensitive. A monolayer of fingerprint oil, release agent, dust, or cable-jacket plasticizer can produce a boundary that fails a voltage-withstand or peel check even after the outer surface appears fused. Production-scale observations on wrapped busbar and harness lines show intermittent fusion defects concentrated at the tape edges where handling is most frequent. Operators should handle the roll by the core or use nitrile gloves. If bare-hand contact occurs on an outer lap that will be slit from the finished build, the affected layer should be removed.
A single flat wrap of unsupported tape is not an insulation system until overlapping layers have fused into a continuous wall. In manual and semi-automatic application, the most common geometry is half-lapped: each revolution advances approximately 50% of the tape width, yielding two tape layers at every point. A four-layer build therefore requires eight half-lap passes. The final wall is not simply 4 × 0.012 in unless tension is controlled; excessive stretch reduces the thickness and width of each ply. The tape should be applied with enough tension to establish intimate contact but not enough to cause necking. Published process data for this specific configuration is limited; for general silicone self-fusing tapes of this gauge class, width reduction greater than 10–15% after a fixed wrap length is commonly used as a signal of excess tension. That figure is a process qualification starting point, not a certified manufacturer limit.
Entrapped air is a critical defect. Air pockets become low-density regions with lower dielectric strength and can separate the layers. A soft roller or manual burnish after each pass helps consolidate the wrap. On production machines, a compliant pressure wheel placed at the point of laydown improves contact without cutting the sheet. The wrap should be started after the roll has equilibrated to shop temperature; a cold roll may be less pliable and may fuse more slowly than a room-temperature roll.
Electrical acceptance is not determined by visual appearance. The fused assembly should be tested according to ASTM D149 for dielectric breakdown voltage or a device-level hipot standard. Because breakdown voltage is thickness-dependent, results are reported as volts per unit thickness or compared at a fixed build. A gentle peel check at a lateral overlap should not reveal the original tape surface; if it does, pressure was insufficient or the surface was contaminated.
Compared with adhesive-coated tapes, the self-fusing product shifts field failure modes from adhesive softening and ooze to fusion-boundary failure and cut-through. On wrapped motor connections located near varnish and winding potting compounds, adhesive tapes can soften because the adhesive layer has a lower continuous-use temperature than the backing. A self-fusing silicone wrap does not contain that adhesive complement and is selected for higher thermal exposure. The trade-off is that the tape cannot hold loose lead wires during assembly; an external tie or friction-tape stay is required until the wrap is consolidated. No pressure-sensitive adhesion is available for fixturing.
On semi-automatic taping heads, dancer-arm tensioning must be matched to the gauge of the product. A magnetic-particle brake cannot simply be copied from a PVC adhesive-tape process because the silicone tape has a different modulus and yield behavior. If the taping-head speed is increased without resetting tension, the roll may become uneven and folded at the edges. The drive roll should be inspected for wear; a worn drive roll can scuff the tape surface and create a contaminant line along each wrap. Cut-through and puncture resistance should be evaluated where the tape wraps over sharp solder splashes, cable-tie tails, or metal braid. A single layer of 0.012 in unsupported silicone is easily cut; the design should provide a build-up of at least two or three layers before contact with a sharp edge, or a separate abrasion tape should be used.
| Tape class | Bonding mechanism | Rework consequence | Primary test reference |
|---|---|---|---|
| Self-fusing silicone | Interlayer fusion under tension | Clean shell removal after slitting | ASTM D149, ASTM D412 |
| Adhesive-backed vinyl | Rubber-resin pressure-sensitive adhesive | Adhesive residue and possible jacket plasticizer migration | ASTM D1000 |
| Mastic | Cold-flow adhesive mass | Difficult to remove; scraping often required | ASTM D1000 or supplier specification |
| PTFE thread tape | Mechanical deformation, low friction | No fused shell; rework possible but no elastomeric wall | Supplier thread-seal specification |
| Ethylene-propylene rubber fusion tape | Dry interlayer fusion | Similar shell formation but different polymer chemistry | ASTM D412, ASTM D149 |
The comparative table is a selection guide, not a substitute for qualification. Exact values for dielectric strength, tensile strength, elongation, and fluid resistance depend on the lot and the test conditions. ASTM D149 dielectric tests should be conducted on the completed wrap thickness, not on a single unmounted strip, because layer fusion and air entrapment dominate field performance. Incoming inspection should condition the roll at 23 ± 2°C and 50 ± 5% relative humidity for at least 24 h before thickness or tensile measurements are compared with datasheet limits. Testing outside those conditions can introduce bias, especially in thickness and stiffness.
Cold storage increases the modulus and reduces the conformability of an unsupported silicone sheet. A roll removed from a low-temperature warehouse may be stiffer at the edges and may not lie flat on small-diameter cables. If the roll surface is below the ambient dew point, condensation forms when the bag is opened; the resulting liquid water can be trapped at the interface and prevent fusion. The roll should be equilibrated in a sealed bag before use. The warm-up interval depends on roll diameter and air velocity, and no universal time is valid. A practical rule is to hold the sealed roll in the application area until the surface temperature matches the room within 2–3°C; thermocouple or infrared measurement is preferred to time-based estimates.
Application under humid conditions above 50% relative humidity may require dry-air wiping of the substrate. The tape is not a moisture-cure system, so ambient moisture is not required for fusion; liquid water is detrimental. If condensation is present on a cable jacket or terminal body, the wrap should not be started until the surface is dry. The same restriction applies after solvent cleaning; isopropyl alcohol is frequently used, but it must evaporate fully before wrapping because residual solvent can become trapped in the build.
An adhesive-backed vinyl electrical tape bonds immediately to the substrate through a pressure-sensitive rubber-resin layer. It can be used for light-duty insulation and color coding, but the adhesive layer may soften at elevated temperature and transfer residue during rework. Plasticizers in vinyl backings can migrate into adjacent polymer jackets. A self-fusing silicone tape avoids those adhesive-related limitations but has no tack; it cannot be applied loosely and expected to remain in place before the first overlap is secured.
Mastic tapes are cold-flow adhesive masses used for sealing irregular connections and corrosion protection. They adhere aggressively to the substrate and are difficult to remove cleanly. A self-fusing silicone tape forms a separable elastomeric shell after slitting; the shell does not flow into crevices in the same manner as mastic. When void-filling and adhesion are required, mastic may be used beneath a silicone overwrap, but the two materials serve different functions.
PTFE tapes used for thread sealing rely on low friction and deformation to fill threads. They are not self-fusing and do not build an elastomeric insulation wall. Silicone self-fusing tape is used where a conformable dielectric covering is needed rather than a low-friction seal. For chemical exposure, PTFE has broader resistance to aggressive solvents and acids, while silicone may swell in fuels, aromatics, ketones, and chlorinated solvents. ASTM D471 immersion testing is the appropriate method for evaluating volume swell in candidate fluids.
Ethylene-propylene rubber self-fusing tapes are mechanically similar but chemically different. The choice between silicone and EPR is usually governed by thermal class, fluid compatibility, and mechanical abuse. Silicone systems retain useful flexibility over a wide temperature range and resist oxidative embrittlement, but they generally have lower cut and tear resistance than many heavy EPR tapes. The A3030-R012-12 product should not be selected for abrasion resistance without a specific wear test.
A common point of misuse is applying the tape as a sole fluid barrier in continuous immersion. Silicone elastomers can undergo substantial volume swell in nonpolar hydrocarbon fluids. If the application includes fuel or solvent contact, the construction should be qualified by ASTM D471 immersion testing at the service temperature. Where the tape is used as an outer wrap over a cable jacket, the jacket should be cleaned with a solvent that does not damage the elastomer. Roll storage should be in a sealed polyethylene bag at 20–25°C, away from ozone-generating equipment and direct sunlight. Partial reels should be kept sealed; contamination from handling cannot be washed off reliably without knowing the cleaner’s effect on the silicone surface.
Common process-derived defects include start-end lifting, fusion voids, thickness thinning, cut-through at sharp edges, and solvent-induced swelling. Each failure mode is traceable to a specific process variable:
Elastomeric materials are notch-sensitive. A nick at the edge propagates under tensile load. If the roll edge is damaged during transit, the damaged edge should be trimmed away. In production, rotary shears are preferred over manual knives for slitting because a scissor-cut edge can impart periodic points of weakness. The tape is insulating, not a stress-control or semiconductive material; electrical field grading at high-voltage terminations must be achieved with separate materials. Regulatory compliance statements for REACH and RoHS should be documented for the specific lot, and the tape should not be treated as a replacement for adhesive-lined heat-shrink tubing where an adhesive seal or a uniform factory-formed wall is required.