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Essentium PA Additive Manufacturing Filament

    • Product Name: Essentium PA Additive Manufacturing Filament
    • 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 730516
    Material Polyamide (PA)
    Filament Diameter 1.75 mm
    Diameter Tolerance ±0.05 mm
    Spool Weight 1 kg
    Print Temperature 260-280 °C
    Bed Temperature 80-100 °C
    Tensile Strength 70 MPa
    Tensile Modulus 2.5 GPa
    Elongation At Break 15%
    Flexural Strength 100 MPa
    Flexural Modulus 2.2 GPa
    Notched Izod Impact Strength 5 kJ/m²
    Density 1.14 g/cm³
    Melting Temperature 220 °C
    Glass Transition Temperature 60 °C
    Heat Deflection Temperature 80 °C
    Color Natural

    As an accredited Essentium PA Additive Manufacturing Filament factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing One 1 kg spool of Essentium PA filament, vacuum-sealed in moisture-barrier foil with desiccant, packed in a labeled cardboard box.
    Container Loading (20′ FCL) Container loading: Essentium PA additive manufacturing filament is palletized, moisture-protected, and securely loaded into a 20′ FCL container.
    Shipping Essentium PA Additive Manufacturing Filament is a non-hazardous solid thermoplastic. Ship in sealed moisture-barrier packaging with desiccant, cushioned cartons, at ambient temperature. Protect from heat, sunlight, and moisture. Not classified as dangerous goods for air, sea, or ground transport; no UN number or hazard labels required.
    Storage Store Essentium PA Additive Manufacturing Filament in a cool, dry, well-ventilated area away from direct sunlight, heat, sparks, and incompatible chemicals. Keep it sealed in its original moisture-barrier packaging with desiccant. Maintain low humidity; recommended conditions are 15–25 °C and below 50% relative humidity. Reseal unused filament promptly to prevent moisture absorption, which can degrade print quality.
    Shelf Life Stable for 12 months when kept unopened in original packaging, in a cool, dry place away from moisture, heat, and sunlight.
    Application of Essentium PA Additive Manufacturing Filament

    Essentium PA Additive Manufacturing Filament is an unfilled polyamide feedstock used on fused filament fabrication equipment for functional prototypes and low-rate production components. Lot-controlled melt viscosity and moisture content are supplied with each spool. The application zones listed below are restricted to verified downstream sectors where the grade is processed as a 100 wt% unfilled feedstock without user-added fillers, flame retardants, or regrind. Any introduction of foreign masterbatches outside the supplier’s controlled formulation invalidates supplier-process data and is not recommended for these sectors. Melt temperature, bed adhesion, drying parameters, and post-print annealing differ by zone because downstream product geometry, environmental exposure, and certification burden shift the acceptable processing window. Comparative compliance and processing data are consolidated in the tables following the final application zone.

    Underhood PA-6 Family Processing Windows and Blow-By Fluid Exposure Limits

    Automotive underhood fluid-handling and retention applications use the unfilled filament for wiring harness clips, coolant expansion tank prototype sections, ECU mounting trays, and retaining brackets. Compliance baseline in this zone references ASTM D4066 for polyamide material classification, ASTM D638-14 for tensile property generation, ISO 75-2:2013 for heat deflection temperature at 0.45 MPa, and ISO 175:2010 for resistance to engine coolant and mineral-oil exposure. The feedstock ratio is 100 wt% unfilled polyamide; spool moisture must be ≤0.02 wt% by ISO 15512-B Karl Fischer titration before extrusion. The downstream process uses a heated chamber fused filament fabrication system with a 0.4 mm brass or hardened steel nozzle, nozzle setpoint 250–270 °C, bed setpoint 60–80 °C on a polyamide-specific build sheet, and chamber setpoint 45–60 °C to reduce warpage in flat ECU tray sections. Parts are annealed at 80 °C for 2 h in a circulating-air oven immediately after build to relieve interlayer stress before engine bay testing. Terminal product types include prototype coolant expansion bottle sections, wiring harness routing clips, ECU mounting trays, and retaining brackets for low-temperature underhood locations; sustained exposure to hot ethylene glycol above 90 °C requires application-specific validation because unfilled PA undergoes plasticization and stress relaxation in long-duration aqueous-glycol contact.

    Why Does Batch-to-Batch Moisture Intake Shift Crystallinity in Unpressurized Bay Bracketry?

    Unpressurized aerospace and UAV structural support applications require moisture-stable printing because batch-to-batch water uptake shifts melt viscosity and interlayer fusion in cable clamp brackets, payload mounting flanges, and ground support alignment fixtures. Compliance for this zone includes AS9100D lot traceability, ASTM D638-14 and ISO 527-2:2012 for tensile validation in XY and Z build orientations, ASTM D648-18 for heat deflection temperature, and RoHS 2011/65/EU with REACH SVHC screening on the raw resin. The feedstock ratio remains 100 wt% unfilled PA; the critical moisture threshold is ≤0.02 wt% because higher water content reduces melt viscosity and can promote hydrolysis at the nozzle. The production process is FFF in a heated chamber set to 50–60 °C with bed 70 °C and nozzle 255–270 °C; after build, parts are annealed at 80 °C for 4 h under a nitrogen purge to stabilize dimensions. Terminal components include unpressurized bay cable clamps, UAV payload brackets, and ground support calibration fixtures. This unfilled grade is not specified for occupied-cabin panels requiring 14 CFR 25.853(a) 60-second vertical burn certification or ASTM E662 smoke density testing; validation with a flame-retardant compound is required for those conditions.

    For CNC machining fixtures and robotic end-of-arm tooling, the filament is processed as a 100 wt% unfilled polyamide feedstock with a maximum spool moisture content of 0.02 wt% per ISO 15512-B. Compliance documentation in this zone is typically limited to ISO 9001:2015 lot traceability and incoming tensile curves generated to ISO 527-2:2012, because these tools are not installed on vehicles or patient-contact devices. The downstream production process uses a non-chamber FFF machine with a 0.4 mm hardened steel nozzle, nozzle setpoint 250–260 °C, bed setpoint 60–70 °C with a polyamide adhesive sheet, and grid infill from 40% for alignment blocks to 80% for gripper fingers; no post-print annealing is required for fixtures validated below 50 kg clamping load on the assembly fixture. Terminal product types include drill jig bushings, CMM clamping blocks, robotic gripper fingers, and conveyor guide rails. Batch-to-batch variation in moisture uptake is controlled by resealable storage in a ≤35% RH dry cabinet for 72 h before printing; spools exposed to ambient humidity above 60% RH for more than 8 h are re-dried at 80 °C for 4 h before use.

    Fluid-Contact Jigs in Sour-Gas Maintenance: A Conditional Use Case

    Flange protector plugs, corrosion coupon handling clamps, valve positioning templates, and alignment jigs represent the downstream terminal types in oil and gas field maintenance where limited hydrocarbon contact occurs. Compliance in this zone references ISO 23936-1:2022 for nonmetallic materials in hydrocarbon service, ISO 175:2010 for fluid-immersion evaluation in synthetic hydrocarbon and 3 wt% NaCl, and NORSOK M-710 for nonmetallic sealing material qualification where applicable. The feedstock ratio is 100 wt% unfilled PA; no plasticizer or external release agent is added because migration into the hydrocarbon interface would alter surface chemistry. The process is FFF with a heated chamber at 45–55 °C, nozzle 250–265 °C, and bed 70 °C; after printing, parts are annealed at 80 °C for 4 h in a nitrogen-purged circulating oven to relax residual stress before fluid contact. Published data for unfilled PA in high-partial-pressure sour-gas exposure is limited; these components are not rated as pressure boundary or permanent sour-gas sealing elements without immersion testing to ISO 23936-1:2022 and end-user validation.

    Non-implantable medical device enclosure fabrication runs the filament as a 100 wt% unfilled polyamide feedstock without colorants or processing aids because final-device validation under ISO 10993-5:2009 is simplified when no additive migration source is introduced. Compliance records for this zone include ISO 13485:2016 for device supply chain quality, RoHS 2011/65/EU, and REACH SVHC screening on the purchased resin. The downstream process uses a chamberless FFF machine with a 0.4 mm stainless steel nozzle, nozzle setpoint 250–260 °C, bed setpoint 60–70 °C on a polyamide build surface, and layer height 0.2 mm to balance sidewall smoothness and build speed. Post-print cleaning is limited to warm water and non-alkaline detergent; solvent polishing is avoided because nylon’s chemical resistance reduces controlled surface melting. Terminal product types include diagnostic cart housings, laboratory equipment handles, non-contact guards, and instrument fascia panels. The grade is not specified for patient-contact, implantable, or tissue-contacting components; biocompatibility certification is the responsibility of the device manufacturer and is based on the final assembled device.

    When Voltage Creepage and Snap-Fit Assembly Converge

    When voltage creepage and snap-fit assembly converge in low-voltage electronics, the filament is used for enclosure shells, cable strain-relief clips, battery holder mockups, and dust covers. Compliance in this zone maps to UL 94 HB horizontal burn classification on unfilled PA, IEC 60664-1:2020 for insulation coordination, ASTM D638-14 for tensile modulus and elongation, ASTM D256-10(2018) for notched Izod impact, and RoHS 2011/65/EU. The feedstock ratio is 100 wt% unfilled PA; user-added flame-retardant masterbatches are not permitted with this grade, and any UL 94 V-0 requirement requires substitution with a validated flame-retardant PA compound rather than dry blending additives into the filament. The production process uses FFF on a heated chamber machine at 50–60 °C chamber, 65–70 °C bed, and 250–270 °C nozzle; snap-fit geometries are printed with 0.15–0.20 mm layer height and an outer shell count of 3–4 perimeters to produce sufficient beam elasticity. After printing, parts are annealed at 80 °C for 2 h to stabilize the snap-fit retention force across daily thermal cycling. Terminal finished products include low-voltage enclosure shells, cable strain-relief clips, battery holder mockups, and snap-fit dust covers. Mechanical anisotropy between XY and Z build axes is quantified per lot using tensile bars built in both orientations; designers apply a derating factor to interlayer bond strength rather than using bulk polyamide resin values.

    Application zonePrimary standards or methodsBoundary condition
    Automotive underhoodASTM D4066, ASTM D638-14, ISO 75-2:2013, ISO 175:2010, ISO 15512-BMoisture ≤0.02 wt%; sustained hot ethylene glycol above 90 °C requires validation
    Aerospace/UAV ground supportAS9100D, ASTM D638-14, ISO 527-2:2012, ASTM D648-18, RoHS 2011/65/EU, REACH SVHCNot for occupied-cabin panels requiring 14 CFR 25.853(a) or ASTM E662 unless FR-grade validated
    Industrial toolingISO 9001:2015, ISO 527-2:2012No vehicle installation; no patient-contact service
    Oil and gas field maintenanceISO 23936-1:2022, ISO 175:2010, NORSOK M-710Not pressure boundary or permanent sour-gas sealing; high-H₂S data limited
    Medical enclosuresISO 13485:2016, ISO 10993-5:2009, RoHS 2011/65/EU, REACH SVHCNot patient-contact or tissue-contacting
    Electronics enclosuresUL 94 HB, IEC 60664-1:2020, ASTM D638-14, ASTM D256-10(2018), RoHS 2011/65/EUUL 94 V-0 not achieved with this base grade
    Application zoneFeedstock ratioDrying thresholdNozzle setpointBed setpointChamber setpointPost-print treatment
    Automotive underhood100 wt% unfilled PA≤0.02 wt%250–270 °C60–80 °C45–60 °C80 °C for 2 h
    Aerospace/UAV ground support100 wt% unfilled PA≤0.02 wt%255–270 °C70 °C50–60 °C80 °C for 4 h under nitrogen
    Industrial tooling100 wt% unfilled PA≤0.02 wt%250–260 °C60–70 °CNot requiredNone below 50 kg clamp load
    Oil and gas field maintenance100 wt% unfilled PA≤0.02 wt%250–265 °C70 °C45–55 °C80 °C for 4 h under nitrogen
    Medical enclosures100 wt% unfilled PA≤0.02 wt%250–260 °C60–70 °CNot requiredWarm water and non-alkaline detergent wash
    Electronics enclosures100 wt% unfilled PA≤0.02 wt%250–270 °C65–70 °C50–60 °C80 °C for 2 h
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    Certification & Compliance
    More Introduction

    Essentium PA Additive Manufacturing Filament is an unfilled aliphatic polyamide-based thermoplastic feedstock for fused filament fabrication and high-speed extrusion equipment. The product is supplied in desiccant-sealed spools; production formats include 1 kg and 4 kg spools, and the nominal filament diameter is 2.85 mm with an allowable deviation of ±0.05 mm. A 1.75 mm diameter option is specified only for low-throughput printers. The melt processing envelope is 250 °C to 270 °C at the nozzle, with a heated bed between 70 °C and 90 °C. When an actively controlled build chamber is used, a setpoint of 40 °C to 60 °C is required to manage warp. The feedstock is intended for direct-drive extruders and all-metal hot ends; bowden-tube feed paths are not recommended because polyamide softens and increases feed friction above 60 °C. Essentium PA differs from carbon- and glass-filled Essentium nylon grades because no fibre reinforcement is present, preserving ductile behaviour and eliminating the need for abrasion-resistant nozzle materials.

    What Moisture Control Limit Governs Melt Stability?

    Moisture is the limiting process variable rather than print speed or nozzle diameter. At 23 °C and 50% RH, unfilled PA6/6 reaches an equilibrium moisture content of approximately 2.5 wt% within 72 h when exposed to ambient air. Melt-phase moisture above 0.20 wt% hydrolyses the amide linkage at processing temperatures above 240 °C, producing viscosity loss, die swell instability, delamination, and spherical void formation in printed roads. Drying must be performed in a desiccant dryer at 80 °C for 4 h to 6 h, or in a vacuum oven at 100 °C for 4 h, to bring moisture below 0.02 wt%. The dry-state threshold is verified by Karl Fischer titration per ASTM D6869-03 or by thermogravimetric moisture analysis. Production experience on twin-screw extruders with L/D 32:1 shows that wet feedstock can be processed without visible splay only when devolatilization is available; fused filament machines do not provide devolatilization, so incoming spool dryness is required.

    Moisture uptake and loss are diffusion-limited. For a 2.85 mm filament at 80 °C, the half-time for moisture desorption is typically between 30 min and 90 min; therefore, the 4 h drying cycle is deliberately conservative to account for spool packing density and dryer airflow. In production areas above 60% RH, an opened spool can exceed 0.08 wt% moisture within 2 h. This requires point-of-use dryers or sealed feed canisters on machines with extended idle periods. The moisture hysteresis of polyamide means that drying to 0.02 wt% does not permanently prevent re-absorption once the spool is returned to humid air.

    When Controlled Enclosure Temperatures Are Unavailable, What Changes?

    Polyamide crystallization generates volumetric shrinkage of 8% to 14% during cooling from the melt to room temperature. Without an enclosure at 45 °C to 60 °C, the temperature differential across a tall part creates a stress gradient that exceeds the yield stress of the partially crystallized layer, producing corner lifting and wall curl. Parts with length-to-width ratios above 3:1, or continuous spans longer than 150 mm, require a brim or raft even on heated glass. Field data from enclosed industrial printers indicate that a build chamber at 50 °C, combined with a bed at 80 °C, reduces corner lifting on unfilled polyamide to less than 2 mm on a 200 mm rectangular fixture; open-frame machines under identical bed conditions often exceed 5 mm of curl. If an enclosure is not available, part geometry should be restricted to low aspect-ratio sections, and infill density above 60% should be avoided because the larger frozen stress volume intensifies warpage.

    Anisotropy is the dominant mechanical characteristic. With 0.2 mm layer height, four perimeters, and 45°/−45° raster on XY-oriented specimens, unfilled polyamide class materials produce tensile strength between 40 MPa and 60 MPa when tested to ASTM D638-14 in the dry-as-printed condition. Z-oriented tensile strength is typically 20 MPa to 35 MPa because interlayer fusion is incomplete and failure initiates at weld interfaces. Flexural modulus per ISO 178:2019 ranges from 1.2 GPa to 1.7 GPa. Conditioned specimens at 23 °C and 50% RH absorb moisture and can show notched Izod impact above 5 kJ/m² per ASTM D256-10, but tensile modulus may decrease by 15% to 25% relative to dry specimens. These combined properties support snap-fit arms, cable guides, and assembly fixtures that experience intermittent bending rather than continuous tensile creep. Continuous load-bearing applications exceeding 60 °C are better served by filled or high-temperature polyamide grades because unfilled PA enters the creep-sensitive regime.

    Unfilled Polyamide Versus Carbon-Fibre and Glass-Filled Feedstocks

    Essentium PA is differentiated from reinforced grades primarily by the absence of fibre. This absence allows use of brass or hardened steel nozzles; in carbon fibre-filled PA, the chopped fibre content causes rapid bore wear in brass nozzles and mandates hardened steel or ruby nozzle inserts. The mechanical consequence is toughness: unfilled PA retains elongation at break of 10% to 30% dry as printed, whereas carbon-filled PA typically falls below 3% and glass-filled PA below 5%. Stiffness moves in the opposite direction. Carbon-filled PA with 15 wt% chopped carbon fibre can reach tensile modulus of 8 GPa to 12 GPa, while 20 wt% glass-filled PA reaches 4 GPa to 7 GPa. Heat deflection temperature under 0.455 MPa is also lower for unfilled PA, commonly 60 °C to 80 °C per ASTM D648-18; carbon-filled PA may exceed 120 °C at the same stress. Therefore, Essentium PA is the appropriate unfilled polyamide selection when impact deformation and material flow are more important than absolute stiffness or high-temperature dimensional stability.

    Comparative material-selection properties for FFF polyamide classes
    PropertyTest methodUnfilled PA (Essentium PA class)PA-CF 15 wt%PA-GF 20 wt%
    Tensile strength, XY dryASTM D638-1440–60 MPa80–110 MPa70–100 MPa
    Tensile modulusASTM D638-141.5–2.5 GPa8–12 GPa4–7 GPa
    Elongation at breakASTM D638-1410–30%1–3%2–5%
    Heat deflection at 0.455 MPaASTM D648-1860–80 °C120–150 °C90–120 °C
    Moisture uptake at 23 °C, 50% RHISO 62:20082.0–2.5 wt%1.0–1.5 wt%1.5–2.0 wt%
    Nozzle requirementBrass or hardened steelHardened steel or rubyHardened steel

    Crystallinity and solidification behaviour reinforce these differences. Unfilled polyamide develops a semi-crystalline microstructure with melting point near 255 °C to 265 °C; the cooling-rate control from a heated chamber affects the degree of crystallinity and subsequent moisture uptake. Rapid cooling suppresses crystalline order and lowers initial hardness but can improve interlayer toughness. In carbon-filled and glass-filled systems, fibres act as heterogeneous nucleation sites and increase the effective stiffness of the solidified road, but they also increase melt viscosity and reduce the processing window. This is why unfilled Essentium PA can be run through 0.4 mm nozzles at lower pressure than filled grades.

    Solvent Exposure and Creep Boundaries Set the Upper Service Temperature

    Unfilled polyamide swells and loses molecular weight in strong acids, phenols, chlorinated solvents, and certain aqueous salt solutions. Short-term contact with automotive fluids such as motor oil and grease at room temperature is generally tolerated in ASTM D543-21 immersion screening, but continuous immersion in hot water above 70 °C causes progressive hydrolysis. In dry service up to 50 °C, unfilled PA parts can retain more than 80% of initial tensile strength; above 80 °C, the design-limiting property becomes creep under sustained load. A moisture increase of 1.0 wt% can increase linear dimensions by 0.2% to 0.4% in unfilled PA, which must be accounted for when inspecting parts after conditioning. For dimensional control, parts should be stabilized at 23 °C and 50% RH per ISO 291 for 48 h before final measurement, or a scale factor based on the service humidity should be applied.

    In applications where dimensional tolerance is tighter than ±0.2 mm, absorbed moisture is the largest source of non-repeatability. The coefficient of hygroscopic expansion for unfilled PA is on the order of 0.0025 mm/mm/%H₂O to 0.0040 mm/mm/%H₂O; therefore, a 1 wt% moisture change across a 100 mm feature produces a dimensional shift of 0.25 mm to 0.40 mm. This is not acceptable for precision assembly without humidity control.

    Throughput is governed by shear-thinning melt behaviour. Capillary rheometry at 260 °C on unfilled PA6/66 shows apparent viscosity from 200 Pa·s to 500 Pa·s at 100 s-1, falling to 40 Pa·s to 100 Pa·s at 1000 s-1. The melt-flow index measured at 260 °C under 2.16 kg load according to ISO 1133-1:2022 is commonly between 10 g/10 min and 30 g/10 min for dry unfilled polyamide. Higher values after drying suggest molecular weight reduction from previous melt cycles. On a 0.4 mm nozzle, stable deposition is typically limited to volumetric rates below 10 mm³/s; increasing to 0.8 mm nozzles permits rates up to 30 mm³/s only when hot-end temperature is maintained at the upper range of 260 °C to 270 °C. Above 35 mm³/s, melt fracture and die swell are observed on direct-drive extrusion systems unless the material is dried below 0.02 wt% moisture and the melt residence time is kept below 15 min.

    Processing and validation checklist for unfilled polyamide FFF feedstock
    ParameterRequirementReference method or equipment
    Incoming filament diameter2.85 mm ± 0.05 mmDual-axis laser micrometry
    Spool moisture< 0.02 wt%ASTM D6869-03
    Drying cycle80 °C, 4–6 hDesiccant dryer or vacuum oven at 100 °C
    Nozzle temperature250–270 °CCalibrated thermocouple
    Bed temperature70–90 °CPID-controlled aluminum build plate
    Chamber temperature40–60 °CActively controlled build chamber
    XY tensile strength40–60 MPaASTM D638-14
    Notched Izod impact> 5 kJ/m²ASTM D256-10 after conditioning

    These setpoints are not independent. Raising the nozzle temperature to 270 °C without raising chamber temperature increases the thermal gradient and can make curl worse, even though melt viscosity decreases. Conversely, increasing chamber temperature above 60 °C may soften the print too early and cause sagging in unsupported overhangs. The processing window is therefore a coupled balance between melt temperature, chamber temperature, and deposition rate. Published data for this specific Essentium PA configuration is limited; production qualification should include a full factorial build at the three corner points of the processing envelope before transfer to manufacturing.

    Storage and regrind policy affects lot-to-lot consistency. Sealed spools with desiccant retain process dryness for 12 months at 15 °C to 25 °C; opened filament should be consumed within 7 days or kept in a desiccant cabinet at 10% RH or lower. Regrind from printed purge shields and support structures is not recommended for direct re-extrusion into filament because polyamide undergoes thermal oxidative chain scission during repeated melting. If production economics require regrind, it should not exceed 15 wt% addition, and the melt should be filtered through a 200 µm screen pack on a compounding extruder with L/D 32:1. Because published data for this specific configuration is limited, each resulting lot must be qualified by tensile testing to ASTM D638-14 and impact testing to ASTM D256-10 before release for load-bearing fixtures.

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