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Clariant PA6/66-GF20 FR LS Using Exolit Flame Retardant Nylon 3D Printing Filament

    • Название продукта: Clariant PA6/66-GF20 FR LS Using Exolit Flame Retardant Nylon 3D Printing Filament
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    Как аккредитованный завод Clariant PA6/66-GF20 FR LS с использованием Exolit flame retardant nylon 3D printing filament, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.

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    Применение Clariant PA6/66-GF20 FR LS с использованием экзолитной пламенозадерживающей нейлоновой 3D-печатной нити

    In aircraft cabin interior refurbishment programs where original injection-moulded bracket tooling has been retired, fused filament fabrication of Clariant PA6/66-GF20 FR LS using Exolit is used because the printed parts are exposed to the same fire, smoke and toxicity requirements as moulded polyamide 6/66 components. FAR 25.853(a) Appendix F Part I vertical burn tests on parts extracted from cabin bin structures require an average burn length not exceeding 152 mm and average afterflame time not exceeding 15 s, while ASTM E662 smoke density testing imposes a four-minute maximum specific optical density limit depending on the cabin zone and aircraft certification basis. The compound is formulated with 20 wt% glass fibre reinforcement and 14–18 wt% Exolit OP 1312 in a PA6/66 copolymer matrix, with heat stabilisation below 1 wt% to avoid shifting the phosphorus concentration outside the range needed for UL 94 V-0 at 0.8 mm. Downstream production uses a 1.75 mm filament dried to ≤0.10% moisture at 80 °C for 4–6 h, extruded through a hardened tool steel nozzle of 0.40 mm at 285–300 °C, with a 90–100 °C bed and 70–80 °C chamber temperature, followed by post-print annealing at 120 °C for 2 h in forced air to reduce frozen-in stress at bolt lands. Terminal part types include cabin harness tie-down brackets, overhead bin hinge spacers, air duct flange adaptors and cabin divider latch housings. On production runs of large duct flanges, edge lift exceeding 0.5 mm is observed when chamber temperature falls below 60 °C; the accepted corrective sequence is a heated chamber ramp to 70 °C before the second layer and annealing under a constraining tool.

    Representative PA6/66-GF20 FR LS base formulation window
    ComponentTypical proportionFunctionControl method
    PA6/66 copolymerbalance 61–66 wt%matrixintrinsic viscosity ISO 307
    Glass fibre20 ± 2 wt%mechanical reinforcementash content ISO 3451-1
    Exolit OP 1312/131414–18 wt%halogen-free flame retardantphosphorus XRF verification
    Heat stabiliser and process aids≤1 wt%melt stabilitycapillary melt viscosity ISO 11443

    Why EN 45545-2 R22 Smoke-Density Limits Narrow the Material Choice for Rail Interior Components

    Rail vehicle interior components tested under EN 45545-2 differ from generic electrical enclosures because the decisive parameter is not oxygen index but smoke-density response measured according to EN ISO 5659-2 at 25 kW/m² without pilot flame. Brominated flame-retardant alternatives can raise visible smoke yield in the 4-minute integration window, while the phosphorus-based Exolit OP 1312 system in a 20 wt% glass-filled PA6/66 matrix is selected to keep Ds(max) and VOF4 values within the vehicle hazard-level envelope specified for interior surface sets R22 and R23. The compounding ratio for rail interior parts remains within 14–18 wt% Exolit OP 1312 and 20 wt% chopped glass, with the lower end applied only where final wall thickness exceeds 2.0 mm and the higher end used for thin-walled seat shell lattice structures. Processing is carried out on a fused filament fabrication machine with a 0.6 mm hardened nozzle for 0.2 mm layer height at 290–305 °C, a 100 °C build plate and 70 °C closed chamber; after printing, large flat seat-back insert frames are annealed at 120 °C for 2 h under a flat granite plate to prevent concave bow. Terminal components include under-seat HVAC sound enclosure frames, passenger information display mount plates, cable tray retention brackets and seat-back insert frames. Field inspection shows that z-axis tensile strength measured on printed coupons according to ISO 527-2 declines by 15–25% relative to xy-plane values, and the decline is aggravated by chamber humidity above 60% RH unless the filament is re-dried in a desiccant dryer with a dew point of -40 °C or below.

    Low-voltage switchgear and controlgear assemblies require internal partition components, arc-suppression barriers and busbar supports that retain dielectric spacing under thermal stress. Printed parts from PA6/66-GF20 FR LS are tested to UL 94 V-0 at 1.6 mm and to IEC 60695-2-11 glow-wire at 960 °C, with comparative tracking index measured according to IEC 60112 to confirm that the Exolit phosphinate chemistry does not reduce surface resistance below the 600 V class required for internal current-carrying separators. The formulation for electrical enclosure parts uses 20 wt% glass fibre and 15–17 wt% Exolit OP 1312 in PA6/66, with the narrower addition range maintained because glow-wire ignition at 960 °C is more sensitive to local phosphorus dispersion than the UL 94 vertical burn test. Production is performed by fused filament fabrication at 0.15 mm layer thickness with a 0.40 mm hardened nozzle at 280–290 °C, followed by face machining on contact surfaces because as-printed roughness in the range of Rz 12–18 µm changes creepage distance measurements under IEC 60664-1. Terminal output includes busbar support insulators, arc chute end plates, terminal block housing covers and cable entry plates for control cabinets. Operational boundaries are defined by the maximum continuous service temperature: the glass-reinforced PA6/66 matrix is limited to 120 °C in dry environments; above that, oxidation embrittlement reduces elongation at break and increases the probability of stress cracking at screw bosses.

    Processing envelope for Clariant PA6/66-GF20 FR LS filament
    ParameterRangeMeasurement method
    Filament diameter1.75 ± 0.05 mm / 2.85 ± 0.05 mmlaser micrometer
    Drying80 °C for 4–6 hmoisture analyser ≤0.10%
    Nozzle temperature280–305 °Cthermocouple at heater block
    Bed temperature90–100 °Csurface thermocouple
    Chamber temperature60–80 °Cenclosure air thermistor
    Layer height0.10–0.20 mmprinter z-axis calibration
    Annealing120 °C for 2 hforced-air oven, constraining jig

    When 0.8 mm Wall Thickness Becomes the Design Constraint in Battery Module Spacers

    Battery module cell spacers and high-voltage connector retainers printed from PA6/66-GF20 FR LS are driven by the need for UL 94 V-0 at 0.8 mm rather than 1.6 mm, because thin walls reduce cell-to-cell pitch and increase volumetric energy density. At 0.8 mm, afterflame time in a vertical burn test is more sensitive to layer bonding than at 1.6 mm; a single under-extruded perimeter can create a flame path along the interlayer interface. The compound therefore uses the upper end of the Exolit OP 1312 addition window, 16–18 wt%, with 20 wt% glass fibre and 0.3–0.5 wt% heat stabiliser, and phosphorus dispersion is verified by X-ray fluorescence on each compounding lot. Downstream production is by fused filament fabrication using 0.10 mm layer height, 0.30 mm hardened nozzle diameter, 295–305 °C extrusion temperature and 70 °C chamber temperature; perimeters are printed at 45 mm/s and infill at 60 mm/s to keep melt residence time in the heated zone short enough to avoid phosphinate decomposition volatilisation. After printing, battery spacers are annealed at 120 °C for 2 h under a constraining jig to remove anisotropic shrinkage and then subjected to a 1000 h heat-ageing trial at 85 °C and 85% RH according to IEC 60068-2-78 before dielectric and flammability re-testing. Terminal part types include cell-to-cell insulating spacers, module endplate protectors, high-voltage cable clamp blocks and HV connector retention brackets. The limiting processing constraint is that printing at chamber temperatures below 65 °C increases z-direction shrinkage near the 0.8 mm wall, producing a dimensional error of +0.15 mm on the cell pitch and causing interference during module stacking. Published data for this specific filament configuration in 0.8 mm housings is limited; qualification is therefore conducted on printed plaques and not transferred from moulded coupons.

    Heated-Chamber Printing of Automotive Underbonnet Cable-Routing Brackets

    When annual production volumes remain below 1000 units per design iteration, automotive underbonnet cable-routing brackets are produced from PA6/66-GF20 FR LS because design changes render injection mould tooling uneconomic. Compliance for engine bay parts is anchored to UL 94 V-0 at 1.6 mm and heat deflection temperature measured according to ISO 75-2 method A at 1.8 MPa, with continuous dry-service temperature capped at 120 °C. The base formulation remains 20 wt% glass fibre and 14–16 wt% Exolit OP 1312 in PA6/66; no brominated synergist is added, which avoids acidic decomposition products in contact with engine-bay wiring. Production uses a 0.40 mm hardened steel nozzle at 285–295 °C, 90 °C bed and 65–70 °C chamber, with 0.15 mm layer height. Terminal parts include injection harness routing brackets, ECU mounting standoffs, sensor connector retainers and high-temperature cable guide channels. The primary production limitation is moisture regain between drying and printing: exposure to 60% RH for more than 30 min raises filament moisture to 0.15% and generates visible surface roughness at the nozzle-exit surface, requiring a dry feed system with desiccant cartridges at the printer inlet.

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    Clariant PA6/66-GF20 FR LS using Exolit flame retardant nylon 3D printing filament is a fused filament fabrication grade composed of a polyamide 6/66 copolymer matrix, 20 wt% short glass fibre reinforcement, and a halogen-free organophosphorus flame-retardant package. The filament is supplied in 1.75 mm and 2.85 mm diameters. Intended applications include electrical enclosure prototypes, structural brackets, battery module fixtures, and components requiring stiffness above unfilled flame-retardant polyamide, lower shrinkage than unreinforced nylon, and self-extinguishing behaviour after removal of the ignition source. The material differs from conventional brominated or chlorinated flame-retardant nylon by replacing gas-phase radical-quenching chemistry with a condensed-phase char-forming phosphorus system, thereby eliminating the need for antimony trioxide synergists and reducing the density contribution of the flame-retardant package. Because the matrix is a PA6/66 copolymer, the melt peak is broadened relative to PA66 homopolymer; this improves diffusion across layer interfaces but reduces the maximum crystallinity achieved during cooling.

    Drying is not optional. Polyamide absorbs water rapidly; above 0.05 wt% moisture content the steam pressure generated in the nozzle creates voids and irregular filament flow, while hydrolytic chain scission reduces weld strength and can cause audible popping or nozzle drool. A dry-air oven at 80 °C for 4–8 h is adequate for sealed spools opened at 60 % RH; production cells should use desiccant dryers with a dew point of −40 °C or lower. The print temperature is typically 255–275 °C at the nozzle, with a heated bed at 80–100 °C. Because the glass fibre is abrasive, a hardened steel nozzle of 0.4 mm minimum bore or a wear-resistant nozzle such as ruby or PCBN is required; brass nozzles degrade rapidly. For parts larger than 100 mm in the X-Y plane, an enclosed chamber held at 45–60 °C reduces differential crystallisation and corner lift.

    Melt viscosity is higher than unfilled flame-retardant nylon because the glass fibre increases shear viscosity at low shear rates. Direct-drive extruders with an all-metal heat break and a melt zone shorter than 4 mm perform better than long PTFE-lined hot ends, which soften above 250 °C and can lose extrusion path concentricity. The volumetric flow limit near 10–12 mm³/s for a 0.4 mm nozzle prevents underheating and steam backflow; higher flow rates call for larger nozzle bores or operation near the upper end of the nozzle temperature range without exceeding 275 °C.

    What Limits Continuous Operating Temperature in Exolit-Containing PA6/66-GF20?

    The upper continuous-use limit is not set by the heat distortion temperature alone. Under ISO 75-2:2013 Method A at 1.8 MPa, injection-moulded coupons of 20 wt% glass-filled flame-retardant PA6/66 class materials typically fall between 185 °C and 210 °C. Printed specimens frequently give lower values because layer boundaries and void content act as stress concentrators. Continuous exposure at 120–140 °C can initiate oxidative degradation of the polyamide, beginning as yellowing and surface microcracking, particularly in low-infill parts where oxygen can permeate internal channels. The Exolit phosphorus species can interact with thermal stabilisers at prolonged high temperature; therefore any application above 110 °C should be validated with retention of tensile impact or notched Charpy after 1,000 h ageing in air, using ISO 179-1/1eA:2010 and ISO 527-2:2012 specimens printed at 100 % infill.

    The Exolit system operates through phosphate ester decomposition to polyphosphoric acid species during combustion. These species catalyse dehydration and char cross-linking in the polyamide matrix, increase the residue fraction, and reduce heat release rate. This is different from gas-phase halogenated systems, which interrupt free-radical oxidation but do not produce the same char yield. As a result, PA6/66-GF20 FR LS can be rated UL 94 V-0 at 1.6 mm in supplier-moulded plaque data, but published data for this exact filament configuration is limited for printed parts thinner than 1.5 mm. Printed wall thickness, infill density, and raster orientation must be validated by UL 94 vertical burning or IEC 60695-2-12 glow-wire testing on final parts before regulatory acceptance.

    In contrast to unfilled flame-retardant PA6/66, the 20 wt% glass fibre reduces isotropic mould shrinkage and lowers equilibrium moisture uptake, but creates anisotropic tensile properties. Raster-aligned tensile modulus can exceed transverse modulus by 15–30 %, and notched impact strength in the Z direction is typically only 40–60 % of XY values. Users moving from unfilled flame-retardant nylon should therefore avoid locating snap-fit hooks or threaded insert bosses in the build direction. Compared with a 20 wt% glass-filled non-flame-retardant PA6/66, the Exolit package increases melt viscosity and lowers elongation at break; the nozzle temperature is often raised by 10–20 °C to maintain melt flow. Against a halogenated flame-retardant PA66-GF20, the Exolit grade eliminates halogen-related stress cracking in polycarbonate contact points and reduces smoke density measured under cone calorimetry according to ISO 5660-1:2015.

    Compared with flame-retardant PA12, the PA6/66 matrix offers higher stiffness and lower creep at elevated temperature, but higher moisture absorption and lower Z-direction impact resistance. Compared with flame-retardant polycarbonate, the nylon grade provides better resistance to aliphatic hydrocarbons and weak alkalis but requires stricter drying and is not suitable for transparent applications. These differentiators are material-class comparisons; final selection must be based on printed-part testing under the exact electrical, thermal, and mechanical load spectrum.

    Comparative propertyPA6/66-GF20 FR LS using ExolitUnfilled flame-retardant PA6/66Halogenated PA66 GF20
    Density, ISO 1183-1:20191.28–1.32 g/cm³1.16–1.20 g/cm³1.30–1.35 g/cm³
    Tensile modulus, ISO 527-2:20125,500–6,500 MPa2,800–3,400 MPa5,000–6,200 MPa
    Tensile strength, ISO 527-2:201285–110 MPa55–70 MPa80–105 MPa
    Elongation at break2.5–4.0 %4.0–10.0 %2.0–4.0 %
    UL 94 at 1.6 mmV-0V-0V-0
    Recommended nozzle temperature255–275 °C245–260 °C245–260 °C

    Table values are representative supplier datasheet ranges for extruded or injection-moulded coupons; printed part values depend on raster angle, infill, chamber temperature, and moisture content and should be verified by lot-specific certificates.

    The material’s halogen-free formulation allows simplified documentation under IEC 61249-2-21 for halogen content in components adjacent to printed circuit boards and under RoHS 2011/65/EU annex II, which restricts lead, mercury, cadmium, hexavalent chromium, PBB and PBDE. Compliance must still be confirmed against lot-specific documentation because glass fibre surface sizing and heat stabilisers may contain trace restricted substances. REACH Regulation EC 1907/2006 requires declaration of any substance of very high concern above 0.1 wt%; for most production lots of this grade no SVHC declaration is expected, but incoming material should be checked for harmonised classification.

    Where the 3D Printed Layer Boundaries Constrain Flame-Retardant Certification

    A common failure occurs when datasheet flame ratings obtained on injection-moulded plaques are transferred to additively manufactured parts without examining void content or interlayer fusion. The layer boundary acts as a low-density plane and can serve as a wicking path for molten polymer during vertical burning, causing drips that lead to UL 94 failure even when the base resin is inherently V-0. Electrical enclosure prototypes should therefore be printed at 100 % infill with alternating rectilinear raster angles separated by 45 °, at least 4 perimeter walls, and perimeter overlap of 0.1 mm or greater. The cooling fan after the first layer should be limited below 30 % to allow interlayer diffusion; excessive cooling produces fine spherulites and weak boundaries.

    Printed articles exposed to continuous electrical current require dielectric strength verification according to IEC 60243-1. The glass fibre lowers volume resistivity relative to unfilled material because moisture condenses at the fibre-matrix interface, and conditioning under ISO 291 at 23 °C and 50 % RH for 48 h is required before testing. Just-printed parts may contain less than 0.1 wt% moisture and give misleadingly high dielectric values. In contrast to flame-retardant polycarbonate filament, this nylon grade retains resistance to aliphatic hydrocarbons and weak alkalis but is attacked by strong mineral acids, glycol ether coolant concentrates, and aqueous zinc chloride; such service conditions require sealing or substitution.

    Moisture, Fibre Orientation, and Post-Print Annealing

    Equilibrium moisture uptake at 23 °C and 50 % RH for a 20 wt% glass-filled PA6/66 typically falls between 1.0 wt% and 1.5 wt%, below unfilled PA6 because the glass phase excludes water but above PA12, which absorbs approximately 0.5–0.8 wt%. Conditioned parts expand by 0.2–0.4 % in the XY plane and 0.4–0.7 % in the build direction, because fibre orientation is least effective across layer boundaries. Post-print annealing at 120 °C for 2 h in dry air can increase crystallinity and relieve residual stress, but unconstrained parts may shrink by 0.5–1.0 %; critical dimensions therefore require annealing fixtures.

    The trade-off between flame retardancy and strength is most pronounced at the Z-axis. When bars are printed on edge with the long axis perpendicular to the build platform, ultimate tensile strength can fall below supplier values by 30–50 % because the interlayer weld is the weakest plane. Snap-fit features or clips that must survive repeated assembly should be built in the XY plane and without supports where possible. Annealing improves interlayer strength but reduces impact ductility; for impact-sensitive parts, conditioning at 70 °C for 1 h may be more suitable.

    Control itemStandard or regulationVerification condition
    Vertical flammabilityUL 941.6 mm plaque or printed wall at 100 % infill
    Glow-wire ignitionIEC 60695-2-12Final part thickness and enclosure geometry
    Tensile propertiesISO 527-2:2012Conditioned 23 °C, 50 % RH
    Heat deflectionISO 75-2:20131.8 MPa, at 120 °C/h heating rate
    DensityISO 1183-1:2019Water displacement or gas pycnometry
    Restricted substancesRoHS 2011/65/EULot-level XRF and wet chemical confirmation

    The table is a verification matrix for incoming material and printed-part qualification, not an exhaustive regulatory certificate.

    In production cells fitted with direct-drive extruders, hardened steel nozzles of 0.4 mm minimum bore, and actively heated chambers maintained at 50 °C, the dominant failure modes are mechanical rather than thermal: filament buckling when the spool pay-off radius is below 100 mm, and nozzle bore enlargement due to glass-fibre abrasion after 200–300 h of continuous extrusion. Brass nozzles are not suitable for this grade and can wear measurably within 20 h. Layer heights below 0.1 mm are not recommended because short fibre clusters can temporarily bridge the nozzle and produce stochastic clogging. The material is also incompatible with prolonged immersion in aqueous zinc chloride, glycol ether-based coolant concentrates, and strong mineral acids; mechanical fasteners or seals should be specified for these environments.

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