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NRI Butyl Tape

    • Название продукта: NRI Butyl Tape
    • Сайт Factroy: Округ Юду, Ганьчжоу, Цзянси, Китай
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    • Производитель: Ascent Petrochem Holdings Co., Limited
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    Код ТН ВЭД 568729

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    NRI Butyl Tape is supplied as a continuously extruded, solvent-free sealant tape based on a polyisobutylene/isoprene rubber matrix compounded with carbon black, calcium carbonate, and tackifying resins. The product is released on silicone-coated paper or embossed PE liners and remains permanently tacky after application; no moisture, heat, or chemical cure step is required to establish initial sealing. Dimensional call-outs for standard construction include 1.0 mm × 25 mm × 15 m, 2.0 mm × 50 mm × 15 m, and 3.0 mm × 75 mm × 10 m; thickness tolerance for automated application is commonly held to ±0.15 mm. Where an alphanumeric model suffix appears in procurement documents, it generally identifies release-liner type and roll length rather than a change in base polymer. Batch documentation should be requested in accordance with ISO 10474 or EN 10204 3.1. Because published NRI-specific values for every configuration are limited, class-level butyl tape data must not be substituted for certified lot values during structural qualification.

    The compounded rubber may be lightly crosslinked or fully uncured depending on the grade. Carbon black loading in commercial butyl sealant tapes is commonly between 20 phr and 60 phr; calcium carbonate and talc are used to adjust hardness and die-cutting behaviour. Tackifiers based on C5/C9 hydrocarbon resins shift the glass transition temperature upward and increase room-temperature peel. Plasticizer addition is normally kept below 10 phr to reduce migration into EPDM membranes. The tape's principal functions are non-structural sealing, bedding, and barrier placement on aluminium, glass, galvanized steel, EPDM, and rigid PVC. It is not a structural fastener. Water vapour transmission is evaluated under ASTM E96/E96M-22 at 38 °C and 90% RH; low permeance is the main specification driver in glazing rebates. Initial adhesion develops after pressure consolidation, but ultimate adhesion to metal and membrane surfaces is time- and temperature-dependent and should be evaluated after 72 h at 23 °C per ASTM D903-98 or ASTM D1000-10.

    What Distinguishes NRI Butyl Tape from Acrylic, Silicone, and Polyurethane Sealing Tapes?

    The functional difference is that NRI Butyl Tape behaves as a permanently viscoelastic, low-modulus sealant, whereas acrylic tape develops a more elastic polymer network, polyurethane tape provides higher tensile strength and solvent resistance, and silicone tape provides high-temperature and high-movement capability. Butyl rubber has very low gas permeability; typical oxygen permeability for butyl rubber is reported as 1.3 Barrer at 25 °C, compared with approximately 600 Barrer for unfilled polydimethylsiloxane. This permeability difference supports the use of butyl tape as a vapour barrier in captured joints. However, butyl tape exhibits cold flow under sustained compressive stress and is not appropriate for joints requiring high elastic recovery.

    Class-typical comparative values for tape categories; NRI-specific data must be confirmed by lot certificate.
    PropertyMethodButyl tape classAcrylic foam classPolyurethane tape classSilicone rubber tape class
    180° peel adhesion to stainless steel after 24 hASTM D1000-100.5–1.5 N/mm1.0–4.0 N/mm2.0–8.0 N/mm0.5–2.5 N/mm
    Tensile strengthASTM D412-160.2–0.8 MPa0.5–1.5 MPa5.0–30.0 MPa5.0–12.0 MPa
    Elongation at breakASTM D412-16500–1000%300–700%400–700%200–700%
    Shore A hardnessASTM D2240-15e110–3030–6070–9525–60
    Continuous service temperature rangeManufacturer thermal-age screening−40 °C to 90 °C−40 °C to 120 °C−40 °C to 100 °C−60 °C to 200 °C

    In direct comparison, acrylic tape is more resistant to ultraviolet degradation and can build higher shear strength, but it usually requires higher lamination pressure and may not wet dusty or low-energy EPDM as rapidly. Polyurethane tape provides higher cohesive strength and better fuel resistance, but it can be moisture-sensitive during application. Silicone tape maintains flexibility over a broader temperature interval but has higher water vapour transmission and may require a primer on some aluminium alloys. NRI Butyl Tape is therefore specified where immediate barrier function, low stress on thin glass edges, and reworkability are more important than structural strength.

    On low-energy substrates such as untreated EPDM and powder-coated aluminium, surface wet-out is controlled by peel and tack. A production-scale method is to apply the tape after a wiped solvent flash-off with a 50:50 isopropanol:deionized water solution; the substrate must be above 10 °C and at least 3 °C above the dew point. Roller consolidation is performed with a two-roll applicator at 20–40 N/cm width and 100–300 mm/s. Pressure below 15 N/cm leaves air channels; pressure above 50 N/cm can displace the viscoelastic mass at the joint edge. On automated glazing lines, the release liner is pulled at 90° immediately before lamination so that the exposed tape does not pick up airborne particulate. Liner tear stops are most frequent when rolls are stored below 5 °C or above 35 °C, because liner tear strength and unwind release force shift outside process limits.

    For metal building panel joints, the tape is centred over the lapped seam and compressed by the fastener pattern. On standing-seam roof systems, butyl tape placed in the seam before mechanical seaming acts as a water seal. The seaming machine closure force is generally sufficient if the tape thickness is not more than 2.0 mm; thicker tapes above 3.0 mm tolerate rough cuts but require lower line speed to control squeeze-out and thickness variation.

    Low-Amplitude Viscoelastic Recovery in Captured Joints

    In glazing and panel joints, the tape is subjected to cyclic displacement when the outer skin expands thermally. Butyl-based tapes dissipate stress through viscoelastic flow rather than elastic recovery; this limits service movement capability. The product is suitable for compression and low-movement joints, generally where total movement does not exceed ±10% of the joint width. Above this, cyclic slip at the tape-substrate interface can occur, particularly on low-energy surfaces. Joint designs that impose continuous tension, such as unsupported fillet configurations, are outside the operational boundary.

    The low-temperature flexibility of butyl tape is influenced by the glass transition temperature of the elastomer, normally near −70 °C for uncured polyisobutylene. Blends with EPDM or styrene-butadiene rubber raise the service ceiling but reduce tack. NRI Butyl Tape is not formulated as a high-temperature silicone; the upper service limit of 90 °C is based on continuous load and should be re-evaluated when the joint is exposed to bake cycles at 180 °C or powder coating at 200 °C.

    Rheological data for butyl sealing tapes show pronounced loss tangent above 0.5 at oscillation frequencies below 0.1 Hz, indicating viscous character at low deformation rates. At application speed, the loss modulus remains high enough for cohesive die-cutting and clean liner release. Batch-to-batch shifts in tackifier content change the glass transition temperature and can alter low-temperature tack; incoming inspection after formulation change should include dynamic mechanical analysis and ASTM D1000-10 peel on a reference stainless steel panel.

    After initial lamination, peel strength at 23 °C to stainless steel may reach 60–80% of the 72 h value within 24 h. Full ultimate bond is controlled by the wetting of substrate asperities and the relaxation of stresses introduced during roll-down. A short dwell of 15 min per ASTM D1000-10 is useful for detecting surface contamination; field service acceptance should use a 72 h dwell before destructive testing.

    When Continuous Moisture and UV Exposure Constrain Service Life

    Because butyl rubber is inherently vulnerable to ultraviolet degradation and ozone cracking, NRI Butyl Tape should be placed in fully captured joints, covered by an overlap, or otherwise shielded from direct sunlight. Continuous immersion or exposure to ponded water at hydrostatic pressure is not recommended unless a specific batch has been qualified with ASTM D903 peel after immersion and with ASTM G154 weathering for the intended duration. Published data for this specific configuration is limited. The product should not be used in contact with aromatic hydrocarbons, chlorinated solvents, petroleum distillates, or strong oxidizing agents, because the butyl phase can swell or depolymerize.

    When applied to EPDM roofing membrane laps, the tape functions as an internal splice sealant. The membrane lap is consolidated with a roller and, where specified, sealed with seam tape or liquid adhesive. The butyl tape provides water-cutoff redundancy but is not the sole exposed weathering layer. In fascia and gutter transitions, the tape should be fully covered by metal flashing within 30 days to limit UV ageing.

    Incoming inspection may be organised around the matrix in Table 2. The purpose is to confirm that the delivered NRI Butyl Tape lot conforms to dimension, adhesion, and regulatory limits before release to production. Where the supplied certificate of analysis does not report a value for a required standard, the lot should be quarantined pending independent laboratory testing.

    Compliance and test designation matrix for incoming inspection of NRI Butyl Tape.
    RequirementStandard or regulationTypical limit or measured property
    Restriction of hazardous substancesRoHS 2011/65/EUPb 1000 ppm, Cd 100 ppm, Hg 1000 ppm, Cr6+ 1000 ppm, PBB 1000 ppm, PBDE 1000 ppm
    SVHC reportingREACH (EC) 1907/20060.1% w/w per article per Candidate List entry
    DensityISO 1183-1:20191.3–1.6 g/cm³
    180° peel adhesion to stainless steelASTM D1000-10Class range 0.5–1.5 N/mm; NRI lot target from certificate
    Tensile strength and elongationASTM D412-16Class range 0.2–0.8 MPa, 500–1000%
    Water vapour transmissionASTM E96/E96M-22Reported g/(m²·day) at 38 °C, 90% RH

    Application equipment using automated liner take-up should be equipped with a dancer arm and low-tension brake; unwind tension above 4 N/25 mm can stretch thin tapes and reduce thickness below the compression set threshold. Stored rolls should be kept between 5 °C and 27 °C and allowed to reach 20–25 °C before application. Used rolls should be resealed in vapour-barrier packaging; shelf life is typically 12–24 months from date of manufacture under these conditions, after which tack and liner release require re-validation.

    Production-scale failure modes are dominated by thickness variation and liner release drift. Rolls are sampled every 10 m over a 100 m length with a dead-weight thickness gauge; a reading outside ±0.15 mm triggers quarantine because downstream compression force cannot be maintained. Liner release is measured at 180° peel and 300 mm/min per ASTM D3330/D3330M-04; values above 80 cN/25 mm after warehouse temperature cycling indicate potential mis-feed on automated lines. The second failure mode is edge ooze in tapes above 2.0 mm when rolls are stored vertically in warm mezzanine racks. The oozed butyl can adhere to the roll flanges, causing release-liner wrinkling and intermittent tape break at the nip.

    Paint-shop compatibility is a known constraint. NRI Butyl Tape is not intended for direct exposure to electrocoat bake ovens at 180–200 °C unless the batch has been tested for mass loss and surface staining. In some automotive tier-supplier operations, tape is applied after powder coating and before final trim installation so that no bake cycle is encountered. If the tape is used between coated steel and a PVC trim part, plasticizer resistance should be confirmed with contact-stain testing because certain phthalate-plasticized PVC trim compounds can extract low-molecular-weight tackifier fractions and produce visible surface haze.

    The recommended joint configuration is a narrow, compressed channel with 15–25% compression of the tape thickness. For a 2.0 mm tape, this results in a final bond line of 1.5–1.7 mm. Compression below 10% may not generate adequate surface wet-out on rough substrates; compression above 30% causes excessive squeeze-out and can reduce the effective gas barrier cross-section at the joint edge. These limits are process design boundaries rather than values from a single standard.

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