| Код ТН ВЭД | 538116 |
Как аккредитованный завод по уплотнению лент Solvay SM5143, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.
| Упаковка | Solvay SM5143 Sealant Tape is packaged as 1/8 in. × 1/2 in. × 36 ft rolls, with 6 rolls per carton. |
| Погрузка контейнера (20-футовый контейнер) | Container Loading (20′ FCL) for Solvay SM5143 Sealant tape: fully palletized, secured, evenly distributed, and restrained for safe ocean transport. |
| Доставка | Solvay SM5143 Sealant Tape is generally shipped frozen/refrigerated, often with dry ice (UN1845, Class 9) to prevent curing. The sealant itself is typically not DOT-regulated. Use original packaging, keep cool/dry, and follow SDS and carrier requirements. |
| Хранение | Store Solvay SM5143 Sealant Tape in its original, unopened packaging in a cool, dry, well-ventilated area. Keep away from direct sunlight, heat, sparks, flames, moisture, and incompatible materials. Maintain the temperature range specified on the Solvay SDS/label, typically 5–30°C (41–86°F). Keep containers tightly sealed, use FIFO, observe shelf-life limits, and avoid temperature extremes. Follow all manufacturer storage instructions. |
| Срок годности | Shelf life is 12 months from date of manufacture when stored unopened at recommended temperature, typically 25°C (77°F). |
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Solvay SM5143 Sealant Tape is a one-part, thermosetting sealant tape supplied as a continuous roll on a release interleaf. The product is catalogued by Solvay Composite Materials under the legacy Cytec product code SM5143 and is used in aerospace composite fabrication for edge sealing, fillet filling, and controlled-thickness shim encapsulation. It is not a solvent-borne paste; it is a preformed, tacky, solid film at room temperature. The uncured tape is normally shipped in sealed polyethylene bags inside corrugated cartons, with roll widths and nominal thicknesses defined by the purchase order and the Solvay certificate of analysis. Manufacturer literature for SM5143 identifies recommended cure schedules of 1 h at 177 °C or 2 h at 121 °C; the final cure cycle selected on a production line must be validated against actual part thermal mass and autoclave pressure. Unlike PTFE thread-sealing tapes, SM5143 is formulated to crosslink during cure and to become a structural or semi-structural seal, rather than a deformable, noncuring gasket.
Solvent-borne paste sealants require a mixing step, a manual or pneumatic dispensing step, and a controlled flash-off period before bag closure. SM5143 eliminates the mixing and flash-off stages because it is supplied as a preformed, one-part film. In a production autoclave cycle at 0.62 MPa (90 psi) and 177 °C, residual solvent in paste sealants can produce volatile condensation on cool tool flanges; the low-volatile formulation of SM5143 reduces the probability of that failure mode, although volatile condensate mass should still be quantified by an internal gas chromatography–mass spectrometry method for a given bag configuration. Thickness control is also different: a paste fillet is governed by operator technique and nozzle translation speed, whereas SM5143 is applied as a tape of fixed nominal thickness. The tape form provides repeatable joint fill without a drawdown gauge. This difference is significant for edge sealing a honeycomb panel before liquid resin infusion; the fixed tape thickness prevents local overfill that would otherwise create hard resin edges after cure. The material does not require a static mixer, eliminating stoichiometry errors that are detectable only by differential scanning calorimetry after cure.
In typical autoclave processing, SM5143 is pressed into the edge of a preform with a hand roller or a pneumatic rolling tool. The tape should be released from its liner only after the substrate has reached ambient temperature to avoid condensation. For a curved CFRP spar edge, the tape is applied in a single continuous strip; butt joints are staggered by at least 25 mm in adjacent plies to avoid a leak path. Bag sidewall loading on a large tool—such as a 3 m × 1.5 m aluminium layup table—can exceed the initial tack capacity of the tape at the early stage of vacuum drawdown, so the seal path should be pressed with a roller at 0.1–0.2 MPa contact pressure immediately before bag closure. Once the bag is installed, a vacuum drop test should be performed at -0.08 MPa gauge pressure; a vacuum creep greater than 0.002 MPa over 10 min generally indicates a seal breach or contaminated tool flange. The specific vacuum decay threshold is often set by an internal OEM specification rather than by the tape manufacturer.
If the lower-temperature cure schedule is chosen to protect a temperature-sensitive core, the heat-up rate and dwell time become more critical. At a nominal 121 °C cure, the crosslink density of SM5143 may remain below the value obtained at 177 °C; the cured seal may therefore exhibit a lower glass transition temperature when measured by differential scanning calorimetry per ASTM D3418. Production records from autoclave-cured assemblies indicate that the 121 °C cycle is usually extended to 2 h and should be measured by a thermocouple placed inside the seal fillet, not by air temperature alone. If the part contains thick tooling and a lagging core thermocouple, the dwell time may need to be extended by 20–30 min; this is an engineering judgement and not a fixed value in the product data sheet. For parts with a processing window tighter than ±5 °C, the lower cure schedule is less tolerant of autoclave overshoot because the reaction rate is slower and undercure can appear as a tacky seal centre after demoulding. A stepped cure with an intermediate hold at 80 °C may allow the tape to coalesce and release entrapped air before final crosslink.
Surface preparation for SM5143 begins with solvent wiping using an aerospace-approved cleaning agent, followed by dry abrasion of metallic substrates. For aluminium, a phosphoric acid anodised surface is preferred; for unprepared metal, a light abrasion with Scotch-Brite abrasive and a final wipe is typical. The tape should be applied only when the surface energy of the substrate, as measured by a dyne pen set, is at least 38 dyn/cm; lower surface energy may cause seal edge peel during cure. Contamination from silicone aerosols or release agents must be excluded because a silicaceous monolayer can reduce adhesion and produce path leakage. The manufacturer does not control the substrate, so the user must verify adhesion by bonding a witness coupon and testing lap shear per ASTM D1002 or peel per ASTM D903 on the same surface preparation.
The uncured product is normally shipped at -18 °C or below in a sealed polyethylene bag. The thermal history of the tape is recorded on the label and is part of the certificate of conformance. Once the sealed bag is removed from frozen storage, it must be allowed to reach room temperature while still sealed to prevent condensation on the tacky surface. The typical out-life at 24 °C is 14 days; if the tape is returned to frozen storage, the remaining out-life is reduced by the time spent at room temperature. A cold tape should not be applied to a metal tool because water condensation on the seal surface can generate voids and reduce peel adhesion. In humid production cells above 60 % RH, the thawed roll should be kept inside a desiccated container until immediately before application.
Rheological evidence from uncured tape over its out-life shows an increase in storage modulus and a decrease in probe tack. If the tape is used after the out-life limit, it may fail to wet a low-energy substrate or may slump inadequately into a vertical joint. Probe tack measured at 23 °C per ASTM D2979 is a useful internal release test; a drop below the agreed minimum, often 30 kPa, should trigger quarantine. The cure reaction itself may also be affected by out-time because the latent curative can be partially consumed by moisture ingress. Differential scanning calorimetry per ASTM D3418 can detect a reduced enthalpy of cure, but published data for SM5143 out-time effects are limited; therefore the user should not infer a safe out-life extension without a full qualification.
On aluminium leading edge assemblies, the difference in coefficient of thermal expansion between the metal and a cured epoxy seal can introduce tensile stress at the bondline during cooling from 177 °C. SM5143 tape should be applied in thicknesses that do not exceed the manufacturer’s recommended limit; if the joint is overfilled, the seal may crack at the fillet radius after several thermal cycles between -55 °C and 177 °C. Finite element modelling of a typical edge fillet shows that peak tensile strain concentrates at the fillet toe; specific modelling results for SM5143 are not published. The lack of public data means that serial production using SM5143 on aluminium-to-composite edges should include a thermal cycling test per a defined internal specification before release.
When SM5143 is compared as a preformed tape against a two-part epoxy fillet sealant, the differences in process control and mechanical performance are systematic. The tape eliminates mixing and assures consistent joint thickness; the paste allows easier shaping of complex fillets but introduces the risk of stoichiometry variation and entrapped air. An unfilled PTFE tape is different again: it is a noncuring, chemically resistant ribbon that seals by deformation, not by adhesion. The following table summarises those distinctions; the entries are qualitative and do not replace qualification data.
| Characteristic | SM5143 tape | Two-part epoxy fillet sealant | Unfilled PTFE tape |
|---|---|---|---|
| Cure requirement | Elevated temperature cure | Room-temperature or elevated cure after mixing | No cure |
| Mixing | Not required | Required; stoichiometric mix | Not applicable |
| Thickness control | Preformed nominal tape thickness | Manual tooling dependent | Nominal tape thickness; no crosslinking |
| Volatile content | Low; supplied solvent-free | Low to moderate depending on formula | None |
| Gap-fill behaviour | Conforms under vacuum and heat | Slumps unless thixotropic | Conforms but cold flows |
| Adhesion after cure | Structural or semi-structural to CFRP/aluminium | Structural after cure | Nonstructural sealing |
| Typical use | Composite edge sealing, fillets, shim encapsulation | Shim edges, fastener caps, complex fillets | Thread sealing, chemical joints, noncuring seals |
Procurement specifications for SM5143 often require a set of compliance statements rather than a single universal approval. The following table lists common documentation categories and their typical standards designations. The user should request a certificate of conformance from Solvay that references the specific lot number and the revision of the material specification. Absence of an REACH or RoHS statement does not mean noncompliance; it means the statement was not requested at purchase.
| Compliance area | Typical standard or reference | Documentation requirement |
|---|---|---|
| European chemical regulation | REACH EC 1907/2006 | SVHC declaration below 0.1 wt% per article |
| Restriction of hazardous substances | RoHS 2011/65/EU | Cd, Pb, Hg, Cr(VI) below threshold |
| Apparent lap shear after cure | ASTM D1002 | Lot-specific or qualification report |
| Probe tack of uncured tape | ASTM D2979 | Incoming lot release test |
| Glass transition temperature | ASTM D3418 | Qualification or receiving inspection |
| Durometer hardness after cure | ASTM D2240 | Qualification data when required |
For a production cell handling both prepreg edge sealing and metallic shim encapsulation, batch-to-batch consistency of SM5143 is monitored by incoming lot testing rather than by visual inspection alone. The receiving inspection typically includes a Fourier transform infrared scan to confirm the resin system, a differential scanning calorimetry scan to compare the exotherm envelope against the approved reference lot, and a probe tack measurement per ASTM D2979. If the lot passes these checks, it is released to frozen storage. If the lot fails one or more checks, the material is quarantined and the solvent-free tape is not issued to the layup floor. This procedure prevents the propagation of a defective seal into a completed autoclave bag, where the failure mode is often discovered only after cure as a vacuum loss during the bake cycle.
Replacing an unfilled PTFE thread tape with SM5143 in structural edge sealing is not a direct substitution. PTFE tape seals by cold flow and chemical inertness; SM5143 cures to a solid, permanently bonded seal. The PTFE material will not crosslink and will not retain structural load at elevated temperature; SM5143 can retain adhesion after cure within its service envelope. However, SM5143 should not be used as a thread sealant on hydraulic fittings, because its cured thermoset film is not designed for repeated disassembly and may fracture when fittings are backed off. For applications where exposure to amine-based additives is expected, compatibility must be confirmed by differential scanning calorimetry before use; premature crosslinking or cure inhibition can otherwise occur at the interface. Published data for this specific configuration is limited, so direct substitution without a qualification programme is not recommended.