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Ensinger TECAFIL PA6 GF30 black - 1,75 mm - Filament Nylon 6, 30% Glass Fiber Reinforced

    • Product Name: Ensinger TECAFIL PA6 GF30 black - 1,75 mm - Filament Nylon 6, 30% Glass Fiber Reinforced
    • Factroy Site: Yudu County, Ganzhou, Jiangxi, China
    • Price Inquiry: admin@ascent-chem.com
    • Manufacturer: Ascent Petrochem Holdings Co., Limited
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    Specifications
    HS Code 226107
    Manufacturer Ensinger
    Product Name TECAFIL PA6 GF30 black
    Material Polyamide 6 (Nylon 6) with 30% glass fiber reinforcement
    Color Black
    Filament Diameter 1.75 mm
    Density 1.36 g/cm³
    Glass Fiber Content 30%
    Tensile Strength 165 MPa
    Tensile Modulus 9500 MPa
    Elongation At Break 3%
    Flexural Strength 240 MPa
    Flexural Modulus 8000 MPa
    Charpy Impact Strength Notched 10 kJ/m²
    Charpy Impact Strength Unnotched 45 kJ/m²
    Melting Temperature 220 °C
    Heat Deflection Temperature 1 8 Mpa 200 °C
    Moisture Absorption 23 C 50 Rh 2.1%
    Water Absorption At Saturation 6.5%
    Printing Temperature 260-280 °C
    Bed Temperature 80-100 °C
    Drying Temperature 80 °C
    Drying Time 4-12 h
    Recommended Nozzle Hardened steel
    Printing Technology FDM/FFF

    As an accredited Ensinger TECAFIL PA6 GF30 black - 1,75 mm - Filament Nylon 6, 30% Glass Fiber Reinforced factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Ensinger TECAFIL PA6 GF30 black 1.75 mm filament, 30% glass-fiber reinforced nylon, in sealed moisture-barrier packaging, 1 kg spool.
    Container Loading (20′ FCL) 20′ FCL loading for Ensinger TECAFIL PA6 GF30 black 1.75 mm filament, glass-fiber-reinforced Nylon 6, securely palletized for ocean transport.
    Shipping Shipping: Non-hazardous; not regulated for transport (no UN number, hazard class, or packing group). Supplied on 1.75 mm spools, vacuum-sealed with desiccant in moisture-barrier bags, then boxed. Protect from heat, moisture, and UV. Handle as general cargo; no special transport requirements. Store dry until use.
    Storage Store Ensinger TECAFIL PA6 GF30 black filament in its sealed, moisture-barrier packaging or a dry cabinet at 15–25 °C, away from direct sunlight, heat, dust, and chemicals. Keep relative humidity below 30% using fresh desiccant. Reseal promptly after use and avoid prolonged air exposure. If moisture absorption occurs, dry according to manufacturer guidelines before printing.
    Shelf Life Shelf life: 12 months when stored dry in sealed original packaging with desiccant; protect from moisture, heat, and UV light.
    Application of Ensinger TECAFIL PA6 GF30 black - 1,75 mm - Filament Nylon 6, 30% Glass Fiber Reinforced

    Replacement of die-cast aluminium sensor brackets and coolant-line retaining clips in pre-production underhood assemblies with 30 wt% glass-fibre-reinforced polyamide 6 deposited from 1.75 mm TECAFIL PA6 GF30 black begins with moisture control, not machine settings. A forced-air dryer set at 80 °C for 4 h to 6 h reduces residual moisture below 0.03 %; without this step, the filament surface develops splay and the polymer-gas interface at the nozzle produces microbubbles that become delamination nuclei along the Z-axis. The terminal condition is printed on a high-temperature FFF platform using a hardened steel nozzle of 0.4 mm bore, a nozzle temperature of 260 °C to 280 °C, a glass-reinforced polyamide bed setpoint of 100 °C to 120 °C, and a chamber held at 70 °C to 90 °C. Layer height is restricted to 0.15 mm to 0.20 mm; at 0.3 mm layer height the fibre bundles orient strongly in the raster plane and the clamp-load transfer across the part thickness drops below the design envelope. The finished bracket is printed with 4 perimeters, 0.8 mm top and bottom shells, and 40 % gyroid infill because a solid cross-section amplifies crystallisation shrinkage and warps the gasket face. Mating bores are printed 0.2 mm undersized and reamed to final diameter. In dry-as-printed condition, tensile specimens cut parallel to the deposition plane and tested under ISO 527-2 often retain 70 % to 85 % of the dry-state injection-moulded 30 % glass-filled PA6 tensile strength reported on the filament data sheet; the Z-axis value is substantially lower because interlayer cohesion is matrix-dominated. Thermal ageing at 120 °C for 100 h in an air-circulated oven produces surface discolouration but does not necessarily cause gross embrittlement if the part is kept below 0.5 % moisture uptake. The primary incompatibility is exposure to hot ethylene glycol-water coolant. Above 90 °C, glycol plasticises the polyamide matrix and accelerates hydrolysis; continuous immersion in a thermostat housing is therefore excluded, while dry or splash-contact zones such as engine-bay clip rails and connector brackets are within the demonstrated operational envelope. For flame-compliance documentation, the base injection-moulding compound is generally classified UL 94 HB at 1.6 mm thickness; a printed article cannot inherit this designation unless component-scale testing under the same method is performed on production-representative specimens. No REACH or RoHS-restricted phthalate is introduced by the glass fibre or polyamide 6 matrix, but the black masterbatch must be confirmed against the IEC 63000 technical documentation checklist for the specific batch. The torque retention of the bracket after thermal shock is evaluated under ISO 16750-4, with the printed PA6 GF30 part clamped to an aluminium block and cycled between −40 °C and 125 °C for 500 cycles; published data for this specific configuration is limited, so the first article is batch-tested for insert loosening.

    Where Does Interlayer Cracking Initiate in Glass-Filled PA6 EOAT Bodies When Exposed to Repeated Pneumatic Shock?

    End-of-arm tooling for multi-axis palletising cells operates under a combination of bending, impact, and clamp retention that exposes the weakest plane in a printed glass-filled nylon 6 body: the layer interface. The 30 wt% glass loading raises the in-plane flexural modulus to approximately 6000 MPa to 8000 MPa under ISO 178, but the glass bundles act as stress concentrators where adjacent rasters coalesce incompletely. On an open-enclosure machine with ambient temperature below 45 °C, the interlayer coalescence window narrows to ±5 °C around 275 °C. Below 270 °C the melt viscosity is too high for the glass bundles to penetrate the previous layer, producing elongated voids at fibre ends; above 280 °C the surface oxidises before the next pass and weakens the bond line. A heated chamber at 80 °C to 90 °C widens this window and permits the use of a 0.6 mm hardened nozzle, 0.25 mm layer height, 35 mm/s to 45 mm/s print speed, and 3 perimeters with 50 % triangular infill. The servomotor-driven gripper jaw is post-processed with thermal brass inserts at 180 °C to avoid thread cutting in the brittle glass-filled substrate. In service, the failure mode recorded on production lines is not filament fracture but delamination initiating at a fibre-rich boundary layer near the insert boss after approximately 2 × 10⁴ pneumatic actuation cycles at 6 bar supply pressure. The design response is to orient the raster direction parallel to the principal bending axis and to increase the number of perimeters around the insert pocket from 3 to 6. Interlayer shear testing under ASTM D5379 is used only as a comparative metric because the Iosipescu notch interacts with the fibre orientation tensor and does not isolate the matrix-dominated layer interface. Published data for this specific printed configuration under dynamic pneumatic loading is limited; component validation therefore relies on in-house cycle testing at the end-effector assembly level rather than extrapolation from dry-state tensile coupons. The 30 % glass-to-polyamide ratio also makes brass nozzle wear visible after 500 g to 1 kg of throughput, and the extruder must be fitted with an abrasion-resistant drive gear to prevent filament grinding during rapid retractions.

    Thermal configurationNozzle setpointBed setpointChamber/ambientSpeed windowLayer heightDominant process defect
    Open enclosure with draft shield260 °C–270 °C90 °C–100 °C35 °C–45 °C25 mm/s–35 mm/s0.15 mmInterlayer void at fibre bundles
    Heated chamber, PID-controlled270 °C–280 °C100 °C–110 °C60 °C–70 °C35 mm/s–50 mm/s0.20 mmWarp at thin-walled bosses
    High-temperature chamber280 °C–290 °C110 °C–120 °C80 °C–90 °C45 mm/s–60 mm/s0.25 mmCorner lift on squared bases

    Because the coefficient of linear thermal expansion of 30 wt% glass-fibre-reinforced PA6 is anisotropic and governed by the raster orientation tensor, a large-format assembly jig changes dimension between morning and afternoon shifts in a non-climate-controlled plant. A fixture used to locate a 450 mm long machined gearbox cover may exhibit 0.3 mm to 0.6 mm length variation between 18 °C and 28 °C if the dominant raster is perpendicular to the reference edge. The jig is printed on a high-temperature machine with a 0.6 mm hardened nozzle, 0.25 mm layer height, 40 mm/s deposition speed, and a chamber held at 70 °C. The base is printed with 100 % rectilinear infill but divided into 50 mm square cells to interrupt the global shrinkage gradient. After printing, the fixture is annealed at 100 °C for 2 h in a forced-air oven, then allowed to cool inside the oven at 0.5 °C/min. The terminal product is a CNC drilling fixture for glass-filled polyamide gearbox covers, fitted with hardened steel dowel bushes pressed into reamed pockets. Dimensional stability is verified after 24 h at 23 °C and 50 % RH under ISO 291. Moisture uptake after 168 h at 50 % RH typically reaches 1.0 % to 1.5 % by mass, which plasticises the matrix and reduces the dry-state tensile modulus but stabilises the part against further dimensional drift from short-term humidity fluctuations. The principal production defect is corner lift exceeding 0.8 mm when the chamber drops below 60 °C during the first 20 layers; the resulting stress gradient cannot be fully corrected by surface grinding because material removal releases locked-in warp. The use of unfilled nylon 6 would reduce warping but would not deliver the 6000 MPa class flexural modulus required to maintain clamp load at the locating datum; the 30 % glass-to-polyamide ratio is therefore a compromise between stiffness and flatness. Where final dimensional tolerance is tighter than ±0.1 mm, the as-printed fixture is sent to a five-axis machining centre for reaming, spot-facing, and edge straightening.

    If a Printed PA6 GF30 Housing Is Annealed to Destress Weld Lines, What Compensating Offset Must Be Applied to Mating Pin Holes?

    Annealing a printed motor-housing shell made from TECAFIL PA6 GF30 black at 110 °C for 1 h in a circulating air oven reduces the residual stress that otherwise causes delayed cracks at weld lines and insert bosses. The process produces anisotropic shrinkage because the glass fibres restrain the polymer matrix in the raster direction but not in the Z-direction. As a result, X-Y features shrink by approximately 0.3 % to 0.8 % and Z features shrink by 1 % to 2 % relative to the as-printed geometry, depending on infill density and raster pattern. Mating pin holes are therefore modelled with a positive offset of 0.3 mm per 100 mm in the X-Y plane before printing and then reamed after annealing. The shell is printed with 0.15 mm layer height, 3 perimeters, 45 % triangular infill, a nozzle temperature of 280 °C, and a chamber temperature of 80 °C. The terminal product is a brushless power-tool handle shell where the 30 wt% glass loading supplies the vibration-resistant stiffness demanded by the motor mounting bosses. The annealed part is conditioned at 23 °C and 50 % RH for 48 h before flexural testing under ISO 178; dry-state values are not used for final acceptance because PA6 absorbs water and the conditioned modulus can drop by 20 % to 30 % relative to the dry as-printed coupon. The limitation is thermal exposure in air: annealing above 130 °C causes visible yellowing and surface oxidation without further improvement in crystallinity sufficient to justify the loss in Charpy impact strength under ISO 179-1/1eA. Closed-hole ribs around the motor mount should not be removed from the annealing fixture until the part has cooled below 60 °C; premature demoulding from the support plate can lock in a skewed geometry that cannot be recovered by reaming. The offset values given are empirical starting points derived from production-level shrinkage studies; part-specific verification is required because the shrinkage field changes with raster density and chamber thermal history.

    ConditionX-Y dimensional shiftZ dimensional shiftAcceptance testProcess limit
    As-printed, no annealingreferencereferenceISO 291 conditioningResidual stress cracks at bosses
    Annealed 110 °C, 1 h−0.3 % to −0.8 %−1 % to −2 %ISO 178 flexural modulusSurface oxidation threshold 130 °C
    Annealed 130 °C, 1 h−0.5 % to −1.0 %−1.5 % to −2.5 %ISO 179-1/1eA Charpy impactVisible yellowing, impact loss

    A material substitution audit for cable gland bodies and conduit fittings in rail rolling-stock interiors under EN 45545-2:2020 HL2 starts with smoke density and toxic gas release data, not with the mechanical stiffness of the 30 % glass-fibre-reinforced PA6. The black pigmentation and the glass content reduce the visible surface temperature rise of the base resin but do not automatically confer a flame-retardant classification; unfilled and glass-filled PA6 grades are typically classified UL 94 HB at 1.6 mm, which is insufficient for many rail interior electrical enclosures unless the raw material is modified with an intumescent or halogen-free flame-retardant package. If the printed component is to be placed in a low-voltage cable-routing zone, the application gate is dielectric strength and comparative tracking index. The 30 wt% glass loading lowers the surface resistivity relative to unfilled PA6 but the material remains electrically insulating; component-level testing under IEC 60243-1 and IEC 60112 is required because printed interfaces and moisture ingress alter the tracking path. Processing for a conduit fitting is performed on a high-temperature FFF machine with a 0.4 mm hardened nozzle, 0.15 mm layer height, 270 °C nozzle temperature, 90 °C bed temperature, and 70 °C chamber temperature. The part is printed solid with 6 perimeters and 100 % infill to avoid internal voids that act as capillary pathways for moisture. After printing, the thread section is chased with a tap rather than cut directly into the printed thread because the glass fibres tear out and leave an irregular flank surface. The terminal product is a cable gland body for a low-voltage control cabinet in a rail vehicle interior, but approval under EN 45545-2:2020 is not inherited from the polymer supplier; the final assembly must be tested by a notified body as a complete component. Mechanical pull-out and ingress protection are evaluated under EN 62444 and IEC 60529 for the assembled gland, with the printed body required to withstand sealing-ring compression without cracking. The 30 % glass-to-polyamide ratio provides the hoop stiffness required to resist cable strain, but the main incompatibility is continuous exposure to saline aerosols in the vehicle underframe; hydrolytic degradation of the PA6 matrix at 80 °C and high humidity limits service life unless a protective coating is applied.

    Dry-Sliding Wear Pads and Low-PV Bushings in Packaging Line Guides

    Glass-fibre-reinforced PA6 in dry-sliding service is selected for the stiffness of the 30 wt% filler rather than for intrinsic abrasion resistance. The glass bundles increase the specific wear rate against stainless steel counterfaces because the harder fibre ends score the mating surface, while the surrounding polyamide matrix transfers heat poorly and can soften at the contact interface. The application gate is therefore a low-PV sliding condition below 0.2 MPa·m/s continuous and 0.4 MPa·m/s intermittent, as reported for heterogeneous PA6 glass-filled tribo-compounds under ASTM G133 reciprocating ball-on-flat configuration; published data for the specific TECAFIL PA6 GF30 black filament is limited, so component validation on the actual blister-line guide is mandatory. The wear pad is printed with a 0.4 mm hardened nozzle, 0.10 mm layer height, 5 perimeters, and 100 % infill. Rasters are aligned parallel to the sliding direction; this orientation reduces the number of exposed fibre ends at the contact surface and decreases counterface abrasion. The part is then flattened by light surface grinding with 120-mesh silicon carbide paper under water to remove the as-printed ridge structure without embedding abrasive particles into the PA6 matrix. The terminal product is a guide rail pad on a beverage packaging conveyor, where the pad is clamped into a stainless steel channel and replaced at scheduled maintenance intervals. The 30 % glass loading provides the compressive stiffness needed to prevent the pad from extruding out of the channel under clamp loads of 2.5 kN, but the pad must not be used as a food-contact surface because the black masterbatch and fibre reinforcement are not approved under FDA 21 CFR 177.1500 or the corresponding European migration framework unless separately tested. For dimensional verification, the pad is measured after 48 h at 23 °C and 50 % RH; moisture uptake during service can increase the pad thickness by 1 % to 2 %, which must be accommodated in the channel clearance. The critical failure mode on high-speed lines is not abrasive wear but heat-induced surface melting when a blocked bottle stops the conveyor and local PV spikes; for this reason the glass-filled PA6 pad is used only where the guide is actively cooled by line airflow and where the steel counterface surface roughness is held below 0.4 µm Ra on 316L stainless steel.

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    Certification & Compliance
    More Introduction

    The product designated Ensinger TECAFIL PA6 GF30 black, 1.75 mm filament, is a nylon 6 fused filament fabrication grade compounded with a nominal 30% by weight chopped glass fibre reinforcement. The filament is supplied in black and is dimensioned for small-format FFF machines that accept 1.75 mm nominal diameter with controlled ovality and diameter tolerance. The glass fibre is melt-dispersed into the polyamide matrix rather than applied as a surface powder, producing a mineral-filled filament with visible stiffness and measurable abrasive action on brass feed components. Because the base polymer is nylon 6, the material is hygroscopic and absorbs atmospheric moisture. Unconditioned filament processed above approximately 0.05% residual moisture by weight undergoes hydrolysis in the hot end, generating steam, surface defects, and a significant loss of interlayer strength. The product is therefore handled as a dry-process material requiring active drying and sealed storage.

    The 30% glass fibre loading changes the mechanical character of nylon 6 from a semi-ductile material with high elongation to a stiff, low-elongation compound. Compared with unfilled PA6, the reinforced grade exhibits a tensile modulus roughly two to three times higher when measured on compound-level specimens under ISO 527-2. The glass fibre also reduces isotropic shrinkage and the associated warpage of large flat printed sections. The trade-off is a lower elongation at break and a measurable reduction in Z-direction layer bonding because fibres oriented in the X-Y plane do not bridge the layer interface. Reported application classes for this product include assembly fixtures, drilling and inspection jigs, end-of-arm tooling, gear prototypes, lightweight housings, and structural brackets in which unfilled nylon 6 would deflect or creep under mechanical load.

    These applications are evaluated under recognised test methods: ISO 527-2 for tensile properties, ISO 178 for flexural properties, and ISO 179-1/1eA for Charpy impact. Printed-part results are orientation-dependent and should not be assumed to match injection-moulded datasheet values for the same base compound.

    What Processing Conditions Minimise Hydrolysis and Fibre Clogging?

    Nylon 6 absorbs ambient moisture rapidly. The filament is dried at 80 °C in a desiccant dryer or vacuum dryer until the residual moisture falls below 0.05% by weight; the required residence time is commonly 4 h to 12 h, depending on the starting moisture level and dryer air flow. A material lot left at >60% relative humidity for more than 8 h after drying is re-dried before processing. Moisture content is checked by a coulometric Karl Fischer method such as ISO 15512-1 or by a calibrated moisture analyser with equivalent resolution. Failure to dry the material produces hydrolysis-related viscosity loss, which appears as rough extrudate, weak interlayer adhesion, and occasional nozzle spitting.

    The equilibrium moisture content of unfilled nylon 6 at 23 °C and 50% relative humidity is approximately 2.5–3.0% by weight; the glass-filled grade absorbs proportionally less water because the glass phase is non-hygroscopic. Drying at 80 °C is selected because it raises the diffusion rate without approaching the onset of oxidative degradation of the polyamide. Sealed spools with desiccant maintain a low-moisture condition, but a partially used spool exposed to shop air can regain unacceptable moisture within hours, which is why online dry-feed boxes are used for long prints.

    The printing window is selected to maintain melt viscosity high enough for good bead shape but low enough to permit interlayer diffusion. An all-metal hot end is operated at 260 °C to 280 °C; the heated bed is held at 80 °C to 100 °C, and an enclosed build chamber at 30 °C to 45 °C reduces warpage on parts with wall thickness above 10 mm. Print speed is normally limited to 30 mm/s to 60 mm/s, with lower speeds on the first layer and overhangs. Retraction distance and speed are reduced relative to unfilled PA6 because repeated retraction moves the glass-filled melt into the cold zone above the heat break, increasing the risk of plugging.

    The abrasive nature of the glass fibre makes a hardened steel or ruby nozzle necessary. Brass or plated-brass nozzles develop an enlarged orifice after several hours of extrusion, causing loss of dimensional control and uneven bead width. A nozzle orifice of at least 0.5 mm is specified to reduce blockage from fibre agglomerates; smaller orifices can work but require shorter fibres and are less robust in long production runs. Hardened steel has lower thermal conductivity than brass, so the heater set point may require an offset of 5–10 °C to maintain the actual melt temperature.

    Processing variableSet point or rangeControl detail
    Drying temperature80 °CDesiccant or vacuum dryer; time 4–12 h
    Residual moisture<0.05% by weightISO 15512-1 or calibrated moisture analyser
    Nozzle temperature260–280 °CAll-metal hot end
    Bed temperature80–100 °CEnclosure recommended
    Print speed30–60 mm/sFirst layer at lower speed
    Nozzle orifice≥0.5 mmHardened steel or ruby to limit abrasive wear

    Build-plate adhesion is achieved with polyamide-specific adhesive films or PVA-based glues on glass, polyetherimide, or spring-steel build plates. The adhesive chemistry is less critical than the control of bed temperature and chamber environment. If the bed is allowed to drop below 80 °C on a thick-walled part, the Z-direction stress exceeds the interlayer bond strength and delamination initiates at the corners or at the interface between the first layer and the build plate adhesive. A brim of 8–12 mm is used for large rectangular parts; for tall parts, a raft may be required but increases post-processing time and bottom-surface roughness.

    When conditioned at 23 °C and 50% relative humidity under ISO 291, the compound-level mechanical profile of PA6 GF30 is higher in stiffness and lower in ductility than that of unfilled PA6. The table below presents typical literature ranges for injection-moulded compounds; FFF printed values are lower and depend on raster angle, air gap, melt temperature, and interlayer bonding. The reduction in printed-part tensile modulus relative to injection-moulded data can be 30–50% in some build orientations because of void content and incomplete interlayer molecular diffusion.

    PropertyUnfilled PA6PA6 GF30PA6 CF30 referenceTest method
    Density1.13–1.14 g/cm³1.32–1.38 g/cm³1.25–1.30 g/cm³ISO 1183-1
    Tensile modulus2,800–3,200 MPa7,000–9,000 MPa12,000–16,000 MPaISO 527-2
    Tensile strength70–80 MPa100–120 MPa120–160 MPaISO 527-2
    Elongation at break40–100%2–4%1.5–2.5%ISO 527-2
    Notched Charpy impact5–10 kJ/m²6–8 kJ/m²4–6 kJ/m²ISO 179-1/1eA
    HDT/A under 1.82 MPa60–70 °C190–210 °C200–215 °CISO 75-2

    The data in the table illustrate the difference between glass-fibre and carbon-fibre reinforcement. Carbon fibre produces a higher modulus and lower density than glass fibre, but it also increases melt viscosity and can make the printed part electrically conductive or attenuating. Glass fibre is preferred where a moderate stiffness increase is sufficient and the part must remain electrically insulating. The glass-filled grade also exhibits better flow and lower cost than most carbon-fibre-filled PA6 filaments, although it has higher density. In FFF specimens, Z-direction tensile strength can be 40–60% of X-Y strength for glass-filled nylon because fibres align preferentially in the build plane and do not bridge the layer interface. Components with out-of-plane loading therefore require design revisions, such as thicker walls or reorientation of the primary stress vector into the X-Y plane.

    The difference between PA6 GF30 and unfilled PA6 filament is also visible in the melt. The glass-filled compound thins less at high shear and produces a more matte, rougher surface after solidification. This affects top-layer appearance and the ability to print fine details. The mineral-filled surface also has lower gloss and may show fibre orientation lines parallel to the print direction. Dimensional accuracy is improved relative to unfilled PA6, but the cooled part is harder to machine; cutting and drilling require carbide tooling because glass fibres rapidly dull high-speed steel edges.

    Thermomechanical Limits and Chemical Exposure Boundaries in Service

    The continuous service temperature of a PA6 GF30 part is not the short-term HDT/A value. The base compound typically shows a heat deflection temperature under 1.82 MPa in the range of 190 °C to 210 °C when measured by ISO 75-2, but that value describes a short-term softening point under a defined stress. In air, continuous exposure above approximately 120 °C causes progressive oxidation and embrittlement of the nylon matrix, and printed parts with void content may degrade faster than injection-moulded stock shapes. For load-bearing applications, long-term thermal ageing is evaluated separately; published data for this specific filament configuration is limited, and the operational ceiling should be confirmed by part-level testing under the actual service environment.

    Chemical resistance follows the known behaviour of polyamide 6. Strong acids, strong bases, oxidising agents, and hot polar solvents attack the matrix; prolonged contact with hot water or steam causes hydrolysis. Room-temperature water uptake is reversible and reduces the tensile modulus while increasing toughness, a conditioning effect described by ISO 1110. The glass fibre does not protect the matrix from hydrolysis and only lowers the dimensional swelling associated with moisture absorption. The material shows acceptable short-term compatibility with many aliphatic hydrocarbons, mineral oils, greases, neutral aqueous solutions, and automotive coolants at moderate temperatures, but specific fluid additives can act as stress-cracking agents. Chemical compatibility is confirmed by immersion testing of printed specimens under the service temperature and strain.

    The filament itself is stiff and relatively brittle. Long Bowden tubes with tight radii can fracture the strand before it reaches the extruder; direct-drive feed systems with a relaxed filament path are preferred. If the ambient relative humidity exceeds 60%, the spool is kept in a sealed feed box with desiccant and the material is dried before each print. The black pigmented, glass-fibre-reinforced grade is not automatically food-contact compliant; any use under FDA 21 CFR 177.1500 or equivalent food-contact legislation requires separate supplier certification for the specific pigment and fibre package used in the final article.

    On production FFF cells using direct-drive extruders, the two observed failure modes are interlayer delamination on thick parts and fibre clogging at the nozzle. Delamination occurs when the bed temperature is below 80 °C and the chamber is unheated; the part remains dimensionally intact but splits along the Z-axis after cooling. Clogging occurs when the nozzle orifice is below 0.5 mm and the retraction distance exceeds 4 mm, because the glass-rich melt resolidifies in the cold transition zone. Both failure modes are controlled by reducing retraction, maintaining bed and chamber temperature, and avoiding long dwell times at melt temperature, which degrade the nylon 6 matrix and shift the viscosity outside the process window.

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