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Parker Chomerics CHO-FAB CRS Shielding Tape

    • Название продукта: Parker Chomerics CHO-FAB CRS Shielding Tape
    • Сайт Factroy: Округ Юду, Ганьчжоу, Цзянси, Китай
    • Запрос цены: admin@ascent-chem.com
    • Производитель: Ascent Petrochem Holdings Co., Limited
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    Спецификации
    Код ТН ВЭД 783892

    Как аккредитованный завод Parker Chomerics CHO-FAB CRS Shielding Tape, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.

    Упаковка и хранение
    Упаковка Parker Chomerics CHO-FAB CRS Shielding Tape: one roll per package, wound on a core, sealed in plastic and labeled.
    Погрузка контейнера (20-футовый контейнер) Parker Chomerics CHO-FAB CRS Shielding Tape, non-hazardous, palletized and securely loaded into a 20′ FCL container for ocean freight.
    Доставка Parker Chomerics CHO-FAB CRS Shielding Tape is a non-hazardous, non-regulated article for shipping. It requires no UN number, hazard class, or special labels under DOT/IATA/IMDG. Transport by ground, air, or sea in original packaging; keep dry, avoid extreme temperatures. No dangerous goods documentation is normally needed. Store away from moisture and direct sunlight.
    Хранение Store CHO-FAB CRS Shielding Tape in its original, sealed packaging in a cool, dry, well-ventilated area at room temperature (15–30°C). Keep away from moisture, direct sunlight, heat, ignition sources, and incompatible chemicals. Do not open until use; reseal partially used rolls to prevent contamination and adhesive degradation. Follow the manufacturer’s SDS and shelf-life guidance.
    Срок годности Typically 12 months from date of manufacture when stored in original packaging at 23°C (73°F) and 50% relative humidity.
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    Сертификация и соответствие требованиям
    Более подробное введение

    When specifying a conductive fabric tape for enclosure seam grounding, the Parker Chomerics CHO-FAB CRS Shielding Tape occupies a different material class from adhesive copper foil and silver-plated nylon ripstop products. The CRS designation refers to a corrosion-resistant steel wire fabric carrier, combined with a conductive acrylic pressure-sensitive adhesive. Supplier documentation lists total tape thickness at 0.102 mm, standard roll widths of 25.4 mm and 50.8 mm, and a roll length of 16.5 m. Measured surface resistivity is ≤ 0.1 Ω/sq under ASTM D257, and shielding effectiveness is approximately 60 dB at 1 GHz when tested under IEEE 299-2019 methodology. The product is supplied on a release liner and is intended for die-cut seam strips, slot grounding, and cable wrap applications where mechanical durability is required alongside RF shielding.

    Material Architecture and Conductive PSA Transfer Characteristics

    The carrier is a woven steel fabric with a corrosion-resistant surface treatment; the treatment is intended to limit oxide formation during storage and use. Unlike a continuous copper foil, the fabric has open interstices that allow the adhesive to flow through and create mechanical interlock during lamination. The conductive acrylic PSA contains a dispersed conductive filler; its through-plane electrical path is established only when the adhesive is compressed between mating conductive surfaces. Because the tape is not a structural bond, joint design must isolate mechanical load from the adhesive layer. Transfer resistance at a clamped seam is a function of flange flatness, bolt spacing, and tape width. Published manufacturer data for CHO-FAB CRS list use temperature from -40 °C to 150 °C; above 150 °C, adhesive softening and oxidation of the steel surface can degrade shielding stability. Storage at 23 °C ± 5 °C and 50 % RH ± 10 % RH is recommended to maintain liner release and adhesive tack. The steel fabric exhibits anisotropic conductivity because the woven wire directions and adhesive saturation are not identical in machine and cross-machine directions.

    PropertyRepresentative valueStandard / method
    Total tape thickness0.102 mmsupplier QAP
    Roll width25.4 mm, 50.8 mmsupplier tolerance
    Roll length16.5 msupplier QAP
    Surface resistivity≤ 0.1 Ω/sqASTM D257
    Operating temperature range-40 °C to 150 °Cthermal cycling
    Shielding effectiveness60 dB at 1 GHzIEEE 299-2019

    Die-cut processing on rotary kiss-cut lines introduces different blade wear than copper foil because the steel fabric is harder and can accelerate rotary die edge rounding. Production sites using flat-bed or laser cutting should adjust tool maintenance intervals; published data for this specific configuration is limited. The release liner is not a controlled adhesion system for all die geometries, so kiss-cut depth must be set to avoid adhesive ooze into the cut edge. Adhesive transfer to die blades is observed when liner release force drifts upward after storage at elevated temperature, particularly above 35 °C. Lamination onto plastic housings with low surface energy requires an adhesion promoter or corona treatment; silicone contamination is a known cause of bond failure. In automated tape laying, roll tension should be limited because the steel fabric has low elongation and can create wrinkles at step changes on the substrate. For manual application, finger pressure is often insufficient to achieve full conductive adhesive wet-out; a roller or press is recommended. The tape is not a replacement for conductive gaskets in joints requiring compression set and high deflection ranges.

    What Limits Shielding Effectiveness at Flange Seams Under Compression?

    Electromagnetic performance of a conductive fabric tape on an enclosure seam is governed by the contact impedance formed across the tape–flange interface. At frequencies below 100 MHz, seams behave as slot antennas; the conductive PSA and fabric must maintain continuous contact along the entire length. Any gap exceeding λ/20 at the highest operating frequency permits field leakage. For a 3 GHz upper bound, the gap threshold is approximately 5 mm, but practical seam gaps should remain below 1 mm to account for mechanical tolerances. When CHO-FAB CRS is compressed between zinc-plated steel flanges at typical closure pressures of 0.4 N/mm², the steel fabric provides a mechanically stable electrical path, while the adhesive fills microscopic surface roughness. The tape does not function as a continuous metal gasket; seam transfer impedance depends on flange flatness, bolt spacing, and the presence of paint. Paint must be removed under the tape or bridged with a conductive gasket to avoid insulating the adhesive. Published shielding effectiveness values near 60 dB at 1 GHz are obtained on flat, cleaned metal substrates under laboratory conditions; field values on painted or irregular surfaces may be materially lower. At higher frequencies, seam aperture effects and adhesive bond discontinuities dominate leakage, so enclosure testing under IEEE 299-2019 should be performed before production release.

    Adhesion measurements under ASTM D1000 on stainless steel substrates indicate peel values that are sensitive to dwell time and cleanliness. A 24 h dwell at 23 °C increases peel strength relative to immediate peel because the acrylic PSA wets the surface. Solvent wiping with isopropyl alcohol or heptane is required for production surfaces; oil films reduce peel and increase volume resistivity of the adhesive joint. On chromate-treated aluminum, adhesion is generally lower than on stainless steel; published data for CHO-FAB CRS on chromate conversion coatings is limited. The PSA is not intended for continuous immersion service and should be protected from aggressive solvents and plasticizers. Polycarbonate substrates may require compatibility testing due to plasticizer migration and stress cracking risk. For stainless steel and nickel-plated surfaces, a 70 % isopropyl alcohol / 30 % deionized water wipe is a common pre-treatment, but the tape supplier's process specification controls the final surface condition.

    Slot grounding on I/O brackets and card cages uses narrow tape strips because the steel fabric maintains dimensional stability under sliding insertion. In these applications, the tape is not compressed by linear force but by contact spring fingers; the conductive PSA bonds the strip to the bracket, and the exposed fabric surface becomes the wiper interface. Wear testing should be conducted because repeated card insertion can abrade the steel surface treatment and lower conductivity. The fabric weave can trap debris; in high particulate environments, the wiper side should be inspected at intervals of 500 cycles or fewer. The tape is not rated as a sliding contact material, so field replacement intervals should be established by qualification testing. The conductive adhesive alone cannot maintain a stable wiper contact; the steel fabric must be mechanically captured by the spring finger.

    When CRS Replaces Silver-Plated Nylon in Cable Harness Wrapping

    Silver-plated nylon ripstop tapes in the CHO-FAB family are selected for light weight and high conformability around cable bundles, but they have lower cut-through resistance than CRS steel fabric. In harness applications where the bundle is routed near sheet-metal edges or under clamp collars, the CRS product can be used as an outer wrap, provided the tape is not placed under a bend radius tighter than the steel fabric allows without wire fracture. The steel fabric increases the cable assembly mass and reduces flexibility; this trade-off is acceptable in fixed installations where abrasion resistance governs service life. Unlike copper foil, CRS has a fabric grain; longitudinal and transverse electrical paths are not isotropic, so spiral wrapping must maintain 50 % or greater overlap to avoid inductive gaps at overlaps. When soldering to the fabric, flux selection must be compatible with the corrosion-resistant surface treatment; published solderability data for this specific SKU is limited. The conductive adhesive on the backing is not a substitute for mechanical strain relief; separate clamps or tie wraps are required. In high-vibration installations, the wrap should be secured with outer harness tape or heat-shrink tubing to prevent unwinding and edge lifting.

    Environmental compliance documentation should be verified against the current supplier certificate. The product is represented as compliant with RoHS Directive 2011/65/EU and REACH Regulation EC 1907/2006; users must confirm that the specific roll lot does not contain substances above the applicable concentration limits. The tape is not listed as a medical-grade material and is not supplied with USP Class VI testing; applications requiring biocompatibility need independent evaluation. Halogen content and outgassing data are not consistently published across distribution channels; procurement for space or optical payloads should request lot-specific ASTM E595 data.

    Product classCarrierTypical thicknessSurface resistivityConformabilityGalvanic note
    CHO-FAB CRSCorrosion-resistant steel fabric0.102 mm≤ 0.1 Ω/sqLow to moderateTin-plated surface; evaluate against copper-based substrates
    CHO-FAB 1030Silver-plated nylon ripstop0.114 mm≤ 0.05 Ω/sqHighSilver–aluminum galvanic potential must be evaluated in moist environments
    Copper foil tapeRolled copper foil0.070 mm≤ 0.005 Ω/sqLowBare copper is aggressive toward aluminum during salt-fog exposure

    Galvanic Couples on Mixed-Metal Enclosure Flanges Shift Under Salt Fog

    The corrosion-resistant steel fabric is tin-plated or otherwise treated to reduce galvanic attack when mounted on aluminum or zinc-plated steel. Galvanic compatibility is determined by the electrochemical potential difference between the fabric surface and the substrate in the presence of an electrolyte. In salt-spray exposure per ASTM B117, a steel fabric on aluminum can form a galvanic cell if the surface treatment is breached; the conductive PSA is not a moisture barrier. Sealants or hydrophobic coatings should be applied over the tape edge where condensation is expected. When the tape is used on magnesium or zinc-rich primers, the potential difference may be greater; material coupons should be evaluated under actual environmental conditions. Published data for CHO-FAB CRS in mixed-metal galvanic series testing is limited. The manufacturer’s guidance to avoid continuous contact with copper-based substrates in outdoor enclosures follows standard galvanic series ordering; steel is anodic to copper but cathodic to zinc, so design must consider the substrate metal. Edge sealing also prevents conductive particles in the PSA from acting as a corrosion pathway under direct current bias.

    Production resistance verification is typically performed with a four-wire milliohm meter across the taped seam. A fixture that applies 0.2 N/mm² to 0.4 N/mm² uniform pressure should be used, because hand-held probe pressure is too variable. The acceptance limit must account for adhesive bond resistance and fabric contact resistance; published values for this assembled state are not available. For large enclosures, seam resistance should be mapped at intervals not exceeding 150 mm along the flange. Values above the acceptance threshold on one lot indicate adhesive voiding, surface contamination, or incomplete liner removal.

    For outdoor enclosures, tape edges should be sealed with a non-conductive acrylic or polyurethane conformal coating to prevent electrolyte wicking along the fabric interstices. The coating must not bridge the intended grounding path between flange and tape. In production, the tape is often applied after powder coating and before final assembly; if applied before coating, masking is required because the steel fabric and PSA can contaminate paint adhesion. On zinc-plated steel, a chromate or trivalent passivation layer improves corrosion performance, and the tape should be applied after passivation rather than directly on freshly machined steel surfaces. Thermal cycling between -40 °C and 85 °C can alter liner release and adhesive bond due to differential expansion; validation lots should be aged for 30 days at 35 °C before release to production. The steel fabric's electrical resistance may increase after severe abrasion, so installations where the tape is exposed to sliding contact require periodic resistance verification under ASTM D257.

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