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Eastman Amphora™ FL6000 Flexible 3D Polymer

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    Код ТН ВЭД 640767

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    Применение гибкого 3D-полимера Eastman Amphora™ FL6000

    Ankle-Foot Orthosis Shell Fabrication and Custom Dynamic Splint Interlayer Fusion

    The fabrication of custom ankle-foot orthoses (AFOs) from Eastman Amphora™ FL6000 flexible 3D polymer occurs on fused filament fabrication (FFF) workcells equipped with direct-drive extruder heads. The published Shore A durometer of 65 Shore A per ASTM D2240-15 situates the printed shell between rigid polypropylene orthoses and soft polyurethane liners. A hardened steel nozzle with diameter 0.4 mm sustains processing temperatures from 240 °C to 250 °C without measurable polymer degradation over continuous print durations of 14 hours. The build plate is maintained between 45 °C and 55 °C on a polyetherimide or borosilicate glass surface. Layer heights of 0.15 mm to 0.20 mm produce interlayer weld zones of sufficient cross-sectional area for orthotic flexural loads. Volumetric flow is held below 8 mm³/s. Above 10 mm³/s, viscoelastic instabilities at the nozzle exit generate surface irregularities on peripheral walls, which act as stress concentrators during gait-cycle loading. Print speed is consequently limited to 25 mm/s to 35 mm/s on vertical wall segments and 40 mm/s on interior infill. The interlayer fusion window is critically narrow. Manufacturer technical guidance identifies 230 °C as the lower working limit; below this setpoint, molten filament leaves the nozzle at insufficient enthalpy to reheat the previously deposited layer, producing weak interfacial welds. Above 260 °C, the copolyester backbone undergoes thermal hydrolysis, releasing low-molecular-weight oligomers and reducing melt viscosity below the minimum required for stable strand deposition. Pre-drying of the filament spool at 60 °C for 4 hours in a regenerative desiccant dryer with a dew point below −40 °C is mandatory when ambient relative humidity exceeds 50 %. Absorbed moisture exceeding 0.04 wt% vaporizes within the hot end and produces steam-induced porosity at the interlayer boundary. Such voids reduce Z-axis tensile strength and initiate delamination under cyclic stance-phase loading. Post-printing, the orthotic device is annealed at 50 °C for 30 minutes in a forced-air convection oven to relieve residual thermal stress from the build process. The annealed shell is free of dimensional deviation exceeding 1.5 % relative to the CAD model when measured on a coordinate measuring machine.

    Biocompatibility requirements for patient-contacting orthoses are addressed under ISO 10993-1:2018, Clause 5.1, which requires a biological evaluation plan prior to device release. Cytotoxicity screening is performed on printed coupons per ISO 10993-5:2009 using the MTT assay with extraction ratios not exceeding 6 cm²/mL. Skin sensitization assessment follows ISO 10993-10:2021 with a 48-hour extract contact protocol on polar and non-polar leachates. Finished devices intended for U.S. distribution fall under FDA 21 CFR Part 880, specifically the class designation for external orthopedic appliances, provided no invasive fixation is employed. The raw polymer is manufactured under ISO 9001:2015 quality management and ships with lot-specific certificates that reference melt flow rate and Shore A hardness. Quality system documentation for medical device contract manufacturers references ISO 13485:2016 for process traceability from filament lot through printed device. Surface disinfection of the printed orthosis with 70 % isopropanol is compatible through 50 wipe cycles without measurable durometer shift. Sterilization by steam autoclave is contraindicated. Exposure to saturated steam at 121 °C for 20 minutes induces linear shrinkage exceeding 2 % and embrittlement of the copolyester matrix. Ethylene oxide sterilization may be evaluated on a case basis, but published data for this specific configuration is limited. The use of FL6000 in mucosal-contact or implantable devices is outside the validated scope of the material formulation.

    In diabetic footwear insert manufacture, Eastman Amphora™ FL6000 flexible 3D polymer is deposited as a gyroid lattice whose local density is modulated to match plantar pressure distributions captured by baropodometric scanning. The infill percentage is graded from 12 % in the metatarsal relief zones to 35 % under the heel and first metatarsal head. This density transition produces a Shore A durometer gradient from 50 Shore A to 65 Shore A at the load-bearing surface, per ASTM D2240-15. Lattice cell size is maintained between 4 mm and 8 mm to balance breathability against structural collapse under body-weight loading. Fabrication is performed at a nozzle temperature of 235 °C to 245 °C with a bed temperature of 40 °C to 50 °C. Layer height is held at 0.20 mm to 0.25 mm to reduce print time while preserving interlayer fusion. The printed insole is covered with a thin polyurethane top sheet or medical-grade nonwoven liner before patient delivery. This interface prevents direct polymer-skin contact during ambulation, reducing the burden of dermal sensitization testing. Where direct skin contact is unavoidable, patch testing per ISO 10993-10:2021 on extracted leachates is recommended. The polymer formulation is manufactured under REACH EC 1907/2006 with no Substance of Very High Concern above 0.1 wt% as defined in Annex XVII. Tensile elongation at break exceeds 400 % per ASTM D638-14 Type IV specimens, as published in the manufacturer technical data sheet. Compression set after 22 hours at 70 °C is evaluated per ASTM D395-18 Method B to verify elastic recovery after prolonged body-weight loading. Insole lifespan in daily-use diabetic foot care is assessed through cyclic compression testing at 500,000 cycles and 3 Hz on a servohydraulic test frame; published data for FL6000 in this exact configuration is limited, so lot-specific validation is recommended. The printed insole is unsuitable for continuous immersion in water or saline; extended exposure induces swelling at the gyroid strut surfaces and accelerates fatigue cracking.

    Digital workflow for these inserts begins with structured-light scanning of the plantar surface at 0.5 mm point spacing. The scan mesh is converted into a NURBS solid model, then sliced with a lattice-aware slicer that assigns density fields independently of perimeter shells. Print time for a size 42 EU insole at 0.20 mm layer height ranges from 8 hours to 12 hours on a single-extruder desktop professional printer. Support structures are not required for the gyroid architecture. Post-print surface treatment is limited to light flash removal with a scalpel blade and optional isopropanol wipe. No solvent smoothing is applied, since exposure to chlorinated solvents or ketones degrades the copolyester ester linkages.

    What Limits Print Speed for Flexible Copolyester Filament in Direct-Drive Extruder Systems?

    The governing constraint on print speed for a 65 Shore A copolyester filament of 1.75 mm nominal diameter is column buckling in the free-air gap between the drive gear and the melt zone entrance. The Euler buckling load for a flexible filament at this durometer is low; compressive feed forces exceeding 12 N cause lateral deflection and subsequent jamming in the extruder throat. This limitation establishes the practical print-speed ceiling of 40 mm/s for contour paths and 50 mm/s for straight infill runs on production-style FFF equipment. Direct-drive systems minimize the unsupported filament length to 5 mm or less, which raises the critical buckling force relative to Bowden tubes, where unsupported lengths exceed 150 mm. Bowden-based machines therefore cannot sustain reliable feeding of this material at volumetric outputs above 6 mm³/s. The second constraint is melt enthalpy. At 230 °C nozzle temperature, the copolyester exhibits a viscosity sufficient for stable bead formation but insufficient thermal energy to reheat the previous layer at speeds above 35 mm/s. Increasing nozzle temperature to 250 °C extends the interlayer fusion window but accelerates hydrolysis-induced viscosity loss, limiting continuous runs to 6 hours before sensory indicators of degradation appear. These two constraints interact nonlinearly: raising temperature improves flow but reduces the filament column's compressive modulus, lowering the allowable feed force by an estimated 15 % across the 230 °C to 250 °C window. Published data for this exact interaction in FL6000 is limited, and process validation on each printer model is recommended.

    In automotive wire harness grommet fabrication, these speed limits dictate production planning. A grommet of 40 mm outer diameter and 25 mm height printed at 0.15 mm layer height consumes 90 minutes to 120 minutes of machine time. The grommet is printed with 100 % perimeter density and a 40 % hexagonal infill to balance radial compliance against cut-through resistance from cable bundle exits. The material's 65 Shore A hardness permits snap-fit installation into sheet-metal apertures without additional fasteners. Chemical resistance of the copolyester matrix is adequate for intermittent exposure to engine-compartment vapors at temperatures not exceeding 80 °C. Continuous immersion in motor oil at 100 °C or in aromatic hydrocarbon fluids is not recommended, since solvent uptake softens the matrix and reduces mechanical integrity. Verification of automotive underhood performance is conducted per ASTM D471-16 immersion testing and ASTM D543-21 chemical resistance practice. Regulatory compliance for the automotive supply chain references ELV Directive 2000/53/EC for heavy metal restrictions and REACH notification requirements. Printable elastomer grommets produced from FL6000 are classified as prototype and low-volume replacement parts; serial production at volumes above 1,000 units/year may be more economically served by injection molding after mold commissioning.

    Application segmentNozzle temperature (°C)Bed temperature (°C)Print speed (mm/s)Layer height (mm)Infill architecture
    AFO shell240–25045–5525–35 contour / 40 infill0.15–0.2080–100 % rectilinear
    Footwear insole235–24540–5030–400.20–0.2512–35 % gyroid gradient
    Wire harness grommet240–25545–5525–400.10–0.15100 % perimeters / 40 % hexagonal core
    Robotic soft jaw235–24540–5020–300.10–0.2030–100 % gyroid transition

    For unmanned aerial vehicle gimbal isolation mounts, FL6000 flexible 3D polymer is printed as a variable-density lattice that attenuates transmitted rotor vibration before it reaches the camera payload. The mount body integrates a high-density perimeter shell at 70 % infill with a low-density core at 15 % gyroid infill. This architecture produces a dynamic stiffness gradient that shifts the first resonant frequency below the rotor excitation band of 120 Hz to 400 Hz. Damping characteristics are evaluated per ASTM D4065-20 dynamic mechanical analysis in tensile mode. The copolyester matrix stores less hysteresis energy than polyurethane elastomers at equivalent durometer, so damping ratio values measured for printed FL6000 isolators are typically lower than cast polyurethane counterparts. Designers compensate by increasing lattice wall thickness at mounting bosses and by selecting infill geometries that promote shear-dominated deformation. Print parameters for these isolation components use a nozzle temperature of 230 °C to 240 °C, a bed temperature of 40 °C to 50 °C, and layer height of 0.15 mm to 0.20 mm. Support structures are integrated into the mount geometry as sacrificial lattice webs that are trimmed post-build. The material does not require a heated build chamber for parts with a build envelope below 150 mm cube; larger parts may exhibit corner lifting on unheated beds, and a brim or raft is recommended for parts exceeding 100 mm in the X-axis. Weight of a typical gimbal isolation mount printed from this material is 35 % lower than an equivalent injection-molded silicone rubber mount of identical outer dimensions.

    The vibration response of printed elastomer mounts is measured using shaker-table excitation and accelerometer response per ISO 10846-1:2008 or the cantilever beam method of ASTM E756-05, which provides material loss factor data. For FL6000, material loss factor values reported in the technical literature for copolyester elastomers in this durometer class range between 0.05 and 0.15 at 23 °C. Published data for this specific formulation under UAV operating conditions is limited, so payload-specific testing is mandated before flight qualification. The printed mount is RoHS-compliant per 2011/65/EU Annex II with no restricted heavy metals above permitted thresholds. Operational temperature range for the mounted assembly is constrained by the copolyester glass transition onset at approximately −30 °C; below this temperature, the lattice embrittles and shock-loading capacity is reduced. Upper service temperature is 80 °C continuous, above which creep under static preload becomes measurable.

    Dampening Transmitted Vibration Through Variable-Density Elastomer Lattices in Robotic End-Effectors

    The integration of FL6000 flexible 3D polymer into robotic gripping systems targets low-force collaborative applications where contact compliance must be predictable and repeatable. Soft jaws are printed with a mounting interface at 100 % infill and a gripping surface at 30 % gyroid infill. This density transition distributes grip force over a contact area roughly 2.5 times larger than equivalent rigid jaws at the same actuator output, reducing point-loading damage on fragile workpieces. Grip force verification is performed with a six-axis force-torque sensor mounted between the robot wrist and the end-effector base. Contact force thresholds follow ISO/TS 15066:2016, which specifies maximum permissible pressure and force values for human-robot contact. The 65 Shore A durometer value per ASTM D2240-15 provides a contact stiffness sufficiently low to satisfy quasi-static collision criteria at speeds up to 0.5 m/s for forearm-contact geometries. Compliance of the printed jaw is anisotropic: geometric features along the Z-axis retain higher stiffness than XY-plane features because of the layered architecture. This anisotropy must be compensated by orienting grip surfaces largely parallel to the print bed plane when lateral force transmission is expected.

    End-effector components fabricated from FL6000 include passive suction cup adapters, workpiece pallet pins, and collision-absorbing perimeter bumpers. Each component category is printed with specifically selected parameters. Suction cup adapters use 0.10 mm layer height and 100 % infill to achieve vacuum-tight interfaces without secondary sealing. Workpiece pallet pins are printed at 0.20 mm layer height and 50 % triangular infill to balance dimensional stability against radial compliance. Collision bumpers use 0.25 mm layer height and 15 % gyroid infill to maximize energy absorption per unit mass. The copolyester material exhibits measurable tear resistance per ASTM D624-00 die C, though published data for FL6000 at this specific durometer is limited and lot-specific testing is recommended. Washdown compatibility is constrained: exposure to alkaline cleaning agents at pH above 10 for extended periods accelerates ester hydrolysis. Food-contact certification is not provided for this material formulation; robotic end-effectors intended for food handling must incorporate a food-grade barrier layer or select an alternative polymer. EU compliance for end-effector assemblies falls under the Machinery Directive 2006/42/EC with the printed elastomer component treated as a non-safety-critical consumption part.

    Printed compliant lattice structures inserted into consumer electronics enclosures are fabricated from FL6000 flexible 3D polymer to provide drop-impact absorption and vibration isolation for internal components. The lattice is generated as a triple-periodic gyroid structure with cell sizes from 3 mm to 6 mm and strut thicknesses from 0.6 mm to 1.2 mm. Nozzle temperature is set at 240 °C with a 0.4 mm nozzle diameter. Bed temperature is held at 45 °C. Layer height of 0.15 mm produces sufficiently small stair-step artifacts for unobtrusive internal component seating. Print speed is capped at 30 mm/s for the lattice interior to prevent stringing at dense strut intersections. The finished insert is placed into an injection-molded polycarbonate or ABS outer shell as a secondary operation. Compatibility of the copolyester insert with polycarbonate housings is mechanical only; no solvent bonding is attempted because methylene chloride and ketone-based solvents degrade the copolyester matrix. Mechanical retention is achieved through compression fit and molded rib interference. Drop testing of assembled devices is conducted per MIL-STD-810H Method 516.8, Procedure IV, with 26 drops onto plywood-covered concrete from 1.22 m. The printed elastomer lattice absorbs impact energy by strut buckling and subsequent elastic recovery; permanent set after 26 drops is evaluated per ASTM D395-18 to ensure consistent protection across repeated events. Material compliance with hazardous substance restrictions is demonstrated per RoHS 2011/65/EU Annex II using XRF screening and wet chemical confirmation per IEC 62321-8:2017 for phthalates. REACH registration coverage is maintained by the raw polymer manufacturer under EC 1907/2006 Article 33 communication requirements.

    Thin-wall perimeter sections for electronic cases are printed at 0.8 mm to 1.0 mm thickness with 100 % infill. These sections provide tear-out resistance for snap features and hinge anchors. The material's elongation at break exceeding 400 % per ASTM D638-14 Type IV specimens allows snap features to undergo repeated deflection without fracture. Tear strength per ASTM D624-00 die C is lower than equivalent durometer TPU, so snap features are designed with minimum fillet radii of 0.5 mm and no undercut depth exceeding 0.8 mm. The working temperature window for electronic enclosure inserts is −20 °C to 70 °C. Thermal aging at 70 °C for 1,000 hours in circulating air is recommended to verify long-term retention of Shore A hardness and tensile elongation for each device platform. UV exposure resistance is moderate; outdoor-use enclosures require a UV-stabilized coating or pigment addition in the outer shell material, since the unmodified copolyester yellows and embrittles after sustained direct sunlight exposure. Published data for UV aging of FL6000 under ISO 4892-2:2013 Xenon arc conditions is limited.

    When Sealing Plug Durometer Falls Outside 55–65 Shore A After 48-Hour Fuel Immersion

    Fluid-handling sealing plugs and drain plugs printed from FL6000 flexible 3D polymer are evaluated for dimensional stability and durometer retention after chemical immersion. The acceptance criterion is defined as a post-immersion Shore A value remaining within 55 Shore A to 65 Shore A per ASTM D2240-15 after 48 hours of immersion at 23 °C. Immersion media include ASTM reference fuel C, engine oil ASTM oil No. 3, brake fluid DOT 3, and 50 % aqueous ethylene glycol. Testing follows ASTM D471-16, which specifies specimen dimensions, media volume ratios, and reporting of mass and volume change. The copolyester matrix of FL6000 exhibits adequate resistance to aliphatic hydrocarbons and aqueous glycol solutions, with typical mass uptake below 2 % under the stated conditions. Exposure to aromatic hydrocarbons, ketones, esters, and chlorinated solvents produces measurable swelling, durometer decline, and eventual surface crazing. In sealing applications involving ASTM reference fuel C, the post-immersion durometer value occasionally falls below the 55 Shore A threshold when the printed part contains unfused interlayer voids that permit enhanced wicking of the fluid into the wall section. This failure mode is mitigated by printing sealing plugs at 100 % infill with 0.10 mm layer height, which reduces void density and slows solvent penetration. Nozzle temperature is held at 250 °C to promote complete interlayer fusion. Bed temperature is maintained at 50 °C. Post-print annealing at 60 °C for 1 hour in nitrogen is applied to relieve residual stress and stabilize dimensional tolerances.

    Manufacturing tolerance for sealing plug outer diameters is held to ±0.1 mm via extrusion multiplier calibration on a per-spool basis. Spool-to-spool variation in filament diameter from 1.70 mm to 1.80 mm alters volumetric output sufficiently to produce diameter deviations outside this tolerance. Inline diameter monitoring is performed with a dual-axis laser micrometer at 10 Hz sampling. Plugs are printed with an integrated O-ring groove designed for a standard nitrile rubber O-ring with cross-section 2 mm. The copolyester body does not itself serve as the primary sealing surface in dynamic applications; the O-ring provides the elastomeric sealing function, while the printed body supplies structural retention and thread engagement. Long-term environmental compliance for automotive fluid-handling components is documented under ELV Directive 2000/53/EC for the absence of lead, cadmium, mercury, and hexavalent chromium. Material safety data sheet documentation covers handling of filament during printing with respect to thermal decomposition products at temperatures above 260 °C. Continuous fuel-contact certification to ISO 16960 or SAE J30 requirements is outside the validated scope of this material formulation; printed FL6000 plugs are limited to short-term splash exposure and atmospheric vent pathways.

    Application segmentMechanical characterizationChemical / biocompatibility evaluationRegulatory framework
    AFO shellASTM D638-14, ASTM D2240-15ISO 10993-5:2009, ISO 10993-10:2021FDA 21 CFR Part 880, ISO 13485:2016
    Footwear insoleASTM D638-14, ASTM D395-18ISO 10993-10:2021 patch testREACH EC 1907/2006 Annex XVII
    Automotive grommet / plugASTM D471-16, ASTM D2240-15ASTM D543-21ELV 2000/53/EC, REACH
    UAV isolation mountASTM D4065-20, ASTM E756-05Immersion per ASTM D471-16RoHS 2011/65/EU Annex II
    Robotic end-effectorASTM D638-14, ASTM D624-00Alkaline cleaner exposure screeningMachinery Directive 2006/42/EC, ISO/TS 15066:2016
    Electronics enclosure insertASTM D638-14, ASTM D624-00IEC 62321-8:2017 phthalate screeningRoHS 2011/65/EU, REACH Article 33
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    Eastman Amphora™ FL6000 Flexible 3D Polymer is a copolyester-based thermoplastic elastomer supplied for fused filament fabrication and pellet-fed material extrusion. The product code FL6000 designates the flexible grade within the Amphora 3D polymer portfolio; rigid products under the same portfolio include AM1800 and AM3300. Filament is converted by extrusion houses from neat pellets and is available in 1.75 mm and 2.85 mm diameters. Nominal diameter tolerance is usually held to ±0.05 mm when measured at 23°C and 50% relative humidity with an in-line laser micrometer. Published typical specific gravity is 1.04 by ASTM D792. Published typical hardness is Shore A 95 by ASTM D2240. Tensile elongation at break is reported above 500% by ASTM D638 Type IV at 50 mm/min; this value is for compression-molded or injection-molded specimens unless otherwise noted. These values differentiate FL6000 from rigid copolyester grades that typically exhibit tensile elongation below 10% and hardness in the Shore D range.

    Mechanical data from printed parts are orientation-dependent. Tensile elongation and ultimate tensile strength decrease when tensile axes are perpendicular to layer interfaces; the reduction is attributed to incomplete interlayer chain diffusion and sporadic weld-line voids. Published data for FL6000 in the perpendicular build orientation are limited; therefore, printed test bars should be prepared under ISO 527-2:2012 with the intended layer height and infill pattern. Comparatively, rigid Amphora grades display higher tensile modulus but fail brittle at room temperature, whereas FL6000 maintains elastomeric recovery at room temperature but does not possess the high-temperature load-bearing stiffness of amorphous grades.

    What separates this copolyester elastomer from rigid Amphora grades and TPU?

    Unlike thermoplastic polyurethane, FL6000 is a copolyester thermoplastic elastomer and does not depend on phase-separated polyol and diisocyanate hard segments. This chemical difference removes isocyanate-related safety concerns during filament manufacturing and lowers moisture uptake relative to polyether TPU in some immersion environments; however, quantitative moisture diffusion coefficients are not publicly disclosed for FL6000. The polymer retains flexibility at room temperature without external plasticizer. In hydrolytic aging, copolyester systems can undergo acid-catalyzed chain scission at elevated temperature; immersion testing under ISO 1817 or ASTM D471 is required before replacing TPU in hot-water or acidic service.

    Pre-drying is required before filament extrusion and before printing when spool storage has exceeded 4 hours at ambient relative humidity above 60%. Pellets are dried at 65°C for 4 hours in a desiccant dryer with a dew point of -40°C or lower. Filament spools are dried at 60–65°C for 4–6 hours. Residual moisture is verified by Karl Fischer titration and maintained below 0.04%. Feed-throat humidity should be maintained below 10% relative humidity on production lines. If moisture exceeds 0.04%, the melt exhibits steam bubble formation at the die exit, diameter variation, and reduced weld strength because polyester hydrolysis lowers molecular weight. Drying temperatures above 75°C should be avoided because prolonged exposure can cause pellet blocking at the feed throat.

    Melt Rheology, Residence Time Limits, and Extrusion Hardware

    The melt-flow index of FL6000 is approximately 4 g/10 min at 230°C under 2.16 kg load when measured by ISO 1133-1:2022 or ASTM D1238; published manufacturer data should be checked for the specific production lot. The material is pseudoplastic, with viscosity decreasing under high shear. Capillary rheometry data at shear rates from 100 s⁻¹ to 1,000 s⁻¹ are needed for nozzle-flow modeling because melt-flow index is not a direct predictor of print performance. The melt-temperature window is narrow: below 210°C, melt viscosity is high and die swell increases; above 250°C, oxidative degradation reduces tensile elongation. Residence time in the hot barrel should not exceed 8 minutes. Thermal degradation products may become visible as yellowing and may generate die lip buildup on filament extruders.

    In production filament extrusion, a single-screw extruder with L/D 24:1 to 30:1 and a compression ratio of 2.5:1 to 3.0:1 is used with a general-purpose screw and a 60/80/60 screen pack. Zone temperatures are set with a feed zone at 180–200°C, compression at 210–230°C, metering at 225–240°C, and die at 230–245°C. Melt pressure is kept below 120 bar to limit shear heating. The filament is quenched in a water bath at 40°C, and a closed-loop laser diameter control adjusts puller speed. Batch-to-batch differences in melt flow can change filament diameter by ±0.03 mm if tension and pressure are not dynamically controlled. The material should not be blended with high-amine additives; polyester aminolysis produces chain scission and reduces tensile elongation at break.

    On a direct-drive fused filament machine with a 0.4 mm hardened nozzle, extrusion temperature is set between 220°C and 245°C. A bed temperature of 30–70°C is used depending on part size. Layer height may range from 0.10 mm to 0.25 mm; heights below 0.10 mm increase print time and do not improve interlaminar strength in most open-chamber machines. Print speed is kept at 20–40 mm/s. Higher speeds may lead to under-extrusion and weld-line splitting because the nozzle pressure drop increases. A direct-drive extruder is preferred over a Bowden tube because the elastomer deforms in long guide tubes. For large parts, a 0.6 mm nozzle reduces shear stress and print time, but a lower exterior-wall speed of 15–25 mm/s is recommended. A melt-temperature probe is required when print speeds or nozzle sizes are increased beyond these ranges to prevent shear heating above 250°C.

    Representative processing parameters for 1.75 mm filament on a direct-drive fused filament fabrication system
    ParameterValueEquipment or method
    Extruder temperature220–245°C0.4 mm hardened nozzle, direct-drive
    Bed temperature30–70°CPolyetherimide or glass bed
    Layer height0.10–0.25 mm0.4 mm nozzle diameter
    Print speed20–40 mm/sDirect-drive extruder, no Bowden tube
    Cooling fandisabled for initial 2 mm Z heightInterlayer weld retention
    Drying before printing60–65°C for 4–6 hForced-air or vacuum dryer

    When the Build Chamber Is Heated above 60°C and Cooling Fans Are Disabled

    Interlayer adhesion in FL6000 is limited by chain-end diffusion across the weld interface. If deposited melt temperature falls below 190°C, weld strength decreases because the interfacial diffusion time is shortened. Cooling fans are therefore disabled for the first 2 mm of Z height. A heated build chamber maintained at 60–70°C reduces warpage for envelopes larger than 100 mm × 100 mm; below 60°C, large thin sections lift from polyetherimide build sheets. Adhesion to polyvinylpyrrolidone-based glue stick and polyetherimide sheet is acceptable, but glass surfaces without adhesion promoter result in first-layer delamination during flexural loading. The build plate should not be removed for part extraction until bed temperature falls below 30°C to prevent elastic strain recovery from causing permanent deformation in thin walls. Flexural fatigue data for FL6000 printed parts are not fully specified in general product literature; testing per ASTM D7774 using the intended infill pattern is required for load-bearing fatigue analysis.

    Chemical compatibility is evaluated by ISO 175 or ASTM D543. Dilute inorganic acids and alkalis show short-term splash resistance. Ketones, esters, chlorinated solvents, and aromatic hydrocarbons cause swelling and strength loss. Concentrated sulfuric acid and some phenolic compounds are incompatible. The polymer is not recommended for continuous immersion in hot water above 60°C because copolyester hydrolysis accelerates. Post-printing solvent polishing with methyl ethyl ketone is not recommended because the polymer can craze under residual stress. Mechanical finishing by end milling or cryogenic deflashing is possible. Published data for tear strength after finishing are limited; tear strength is evaluated by ASTM D624 using die C, but the exact value depends on print orientation and should be measured for each lot.

    Regulatory Compliance and Safety Data Sheet Conditions

    Safety data sheets identify the product as non-hazardous under Globally Harmonized System criteria. The polymer is RoHS recast compliant for lead, mercury, cadmium, hexavalent chromium, PBB and PBDE. REACH SVHC content is below the communication threshold of 0.1 wt%. The material is not certified to USP Class VI or FDA 21 CFR food-contact standards based on published documentation. Ultraviolet stability is limited; outdoor use requires testing per ASTM G154 accelerated weathering. Electrical surface resistivity is not specified in the manufacturer’s general datasheet; printed parts are not to be used for electrical insulation unless tested to IEC 62631-3-2.

    Compliance matrix for Eastman Amphora™ FL6000 Flexible 3D Polymer
    RequirementCode or methodStatus
    Restriction of hazardous substancesRoHS 2011/65/EUBelow maximum allowed for listed substances
    SVHC communication thresholdREACH 1907/2006/ECBelow 0.1% by weight for Candidate List substances
    Food-contact certificationFDA 21 CFRNot specified in general datasheet
    BiocompatibilityUSP Class VINot certified
    Accelerated weatheringASTM G154Published data limited; UV exposure requires testing

    Compression set is an important selection criterion for gasket and seal applications. Measurement is performed by ASTM D395 Method B at 23°C and, if required, 70°C for 22 hours. Published compression-set values for FL6000 printed parts are limited; injection-molded values may overstate recovery because printed parts contain microvoids at layer interfaces. Therefore, compression-set testing should be performed on printed specimens with the same infill density, wall count, and build orientation intended for service. Gasket flanges clamped with 0.5 MPa or higher seating stress may undergo stress relaxation; relaxation is measured by ISO 3384 and should be reported for the expected service temperature.

    In orthotic and prosthetic prototyping, FL6000 is used for flexible hinges, padding interfaces, and dynamic orthoses where Shore hardness in the 90–95 range and high elongation permit repeated flexure during gait simulation. Validation follows ISO 22523:2006 for external limb prostheses and orthoses, but material-level fatigue data for FL6000 are limited; therefore, printed articles should be tested on a dynamic test rig at the intended flexion angle and number of cycles. The material may not replace pressure-distributing cushioning foams because its compression set and energy return differ from open-cell polyurethane foam.

    In electrical housings, FL6000 is not an electrical insulator. Surface resistivity is not specified in the general datasheet; testing per IEC 62631-3-2 is required if the printed article is used in electrical enclosures. The polymer is not flame-retardant; no UL 94 V-0 classification is claimed unless a specific compounded grade is supplied.

    Where do published data stop for high-rate printing?

    Published mechanical property values for FL6000 are typically generated from injection-molded or compression-molded test plaques rather than printed parts. For build rates above 50 mm/s with a 0.6 mm or larger nozzle, published data are limited. High-output melt pumps may produce melt temperatures that exceed 250°C due to shear heating; therefore, an in-line melt-temperature probe is required before high-rate extrusion. Print geometry influences weld strength: vertical flat walls retain higher elongation than short zigzag paths with frequent starts and stops because residence time at the weld interface is longer. Published data for FL6000 in pellet-fed large-format machines are limited; the material should be characterized on the specific system with standardized test plaques per ISO 527-2:2012 before production release.

    Because printed FL6000 parts are anisotropic, design stress must be reduced relative to isotropic material data. For tensile loading perpendicular to the layer plane, published data for this configuration is limited. End users should generate control data on the same printer, nozzle, filament batch, and chamber conditions used for production. The product datasheet values are not design allowables.

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