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Как аккредитованный завод BigRep PA6/66 Filament, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.
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Production-scale assembly jigs machined from acetal or aluminum are replaced with large-format FFF parts when the part count is below 50 units and when design changes exceed 3 revisions/yr. The feedstock addition ratio is set at 100 wt% BigRep PA6/66 filament without polymer dilution, with an extrusion multiplier of 0.98–1.02 and infill adjusted between 80% rectilinear for alignment pockets and 100% solid under locating pins. Before printing, filament is dried in a desiccant dryer at 80 °C for 24 h to a moisture content below 0.10 wt%; when relative humidity exceeds 60%, printing is stopped unless the spool is fed from a sealed dry box with dew point below −20 °C. The production process uses a one-meter-class gantry FFF system with a 1,000 mm × 1,000 mm build plane, heated bed at 80–100 °C, and chamber held at 60–80 °C. Corner lift above 0.8 mm is observed when the chamber temperature drops below 60 °C on parts longer than 400 mm; this is controlled by a 10 mm brim and by reorienting the part diagonal to the gantry axis. The printed pockets for hardened steel dowels are reamed after printing to H7 tolerance because as-printed nylon holes shrink non-uniformly along the layer plane. Compliance for automotive plant tooling follows IATF 16949:2016 clause 7.1.3 for infrastructure and clause 8.5.1 for control of production and service provision, while material verification uses ISO 527-1/-2 for tensile properties, ISO 178 for flexural modulus, and ISO 75-1/-2 for heat deflection under load. REACH 1907/2006 SVHC screening and RoHS 2011/65/EU substance restrictions apply where the jig body is exported as a tool assembly. Terminal products include modular locating fixtures, go/no-go contour checking gauges, safety cover alignment brackets, and trim fixture bases used at final assembly stations.
After printing, the fixture body is moisture-conditioned at 23 °C and 50% RH for 48 h before reaming because holes machined in dry-as-printed nylon can close as moisture absorption proceeds. The supporting aluminium frame is assembled using fasteners torqued according to plant-specific work instructions; excessive torque on bosses around steel inserts produces creep in the printed nylon and is rejected by pre-production torque testing on a sacrificial boss. Datum pads are machined flat to 0.1 mm over 300 mm and verified on a coordinate measuring machine before the fixture is accepted for line trials.
In low-rate aerostructure development, composite layup tooling uses printed PA6/66 when autoclave cure cycles do not exceed 80–100 °C and when tool mass must remain below 35 kg to allow two-operator handling; this temperature ceiling is derived from the deflection temperature of dry unfilled PA6/66 under 1.8 MPa load, which is generally below 100 °C. The formulation addition ratio is a neat 100 wt% BigRep PA6/66 filament infill, set to 60% triangular in unsupported vacuum plenum zones and 100% solid around steel bushing pockets; no secondary polymeric phase, plasticizer, or impact modifier is compounded into the print because any additive shift in crystallization kinetics would invalidate supplier shrinkage data. The downstream process begins with printing the near-net mold surface at 0.4 mm layer height with a 0.8 mm hardened steel nozzle, then solvent wiping with isopropanol, then machining the sealing plane with a 6 mm single-flute carbide end mill at 12,000 rpm to improve vacuum bag contact. The printed tool is sealed with a two-component epoxy surface coat to eliminate layer porosity, then checked for vacuum leakage at −0.8 bar; leak-down greater than 5 mbar/min is rejected and the part is either re-sealed or scrapped. Because the epoxy coating is not electrically conductive, static discharge protection is not provided by the tool body. Standards include AS9100D clause 8.5.1 for sub-tier tooling production control, ASTM D638-14 for tensile property verification in XY and Z orientations, and ASTM D648-18 for deflection temperature of the printed tool under load. Terminal finished part types include layup mandrels for duct closeouts, vacuum-bag cure tool faces, trim fixture bases, and sacrificial router fixtures for carbon/epoxy panels.
Porosity at the printed tool surface is a known failure mode because the large nozzle path leaves micro-voids between extrusions. Epoxy sealing is applied at the coating manufacturer’s specified consumption; when shop temperature is below 15 °C, coating viscosity increases and wetting of the layer boundary becomes uneven. The result is vacuum bag bridging that may appear only after 3–5 autoclave cycles, so the leak-down test is repeated after the first cure cycle and after any subsequent surface repair.
Thermoforming operations expose the printed substrate to cyclic contact with heated sheet stock, so the critical limitation is not the peak material strength but the heat deflection temperature under the clamping load. The use ratio is 100 wt% BigRep PA6/66 filament, with infill limited to 70% gyroid to reduce thermal mass and accelerate cooling; local bosses for plug assist mounts are printed at 100% infill and machined after printing. The production method is large-format FFF, followed by sanding from 120 to 400 grit and sealing with a filled epoxy to close the layer lines. The tool surface is maintained below 90 °C because dry unfilled PA6/66 deflection temperature under 1.8 MPa load is generally below 100 °C; sheet contact above this threshold produces localized surface marking and loss of vacuum hole geometry. Governing standards include ISO 75-1/-2 for heat deflection temperature, ISO 291 for conditioning before test, and RoHS 2011/65/EU for restricted substances in the tool body. Terminal products include female vacuum forming tools, plug assists, clamping frame inserts, and shuttle tooling for cut-sheet machines.
Vacuum perforations are drilled after sealing and deburred to less than 0.2 mm because a burr on the mold side transfers shadow marks to the formed sheet. The tool body is not recommended for continuous sheet temperatures above 120 °C even for short cycles because local creep at hole edges reduces hole diameter and alters draw ratio.
Across electronics assembly lines, PA6/66 fixture bodies printed on one-meter-class equipment replace glass-filled epoxy tooling when the line produces fewer than 500 boards/day and when locating features must be changed for every prototype lot. The material input ratio remains 100 wt% BigRep PA6/66 filament but the substrate is not static dissipative; surface resistivity measured per IEC 61340-2-3 typically exceeds 1012 Ω/square, so the printed body is coated with a carbon-loaded polyurethane at 25–35 μm dry film thickness only where ESD control is required by ANSI/ESD S20.20-2021. The production process uses FFF extrusion with a 0.6 mm nozzle and 0.3 mm layer height for locating pocket accuracy, followed by drilling and reaming of hardened steel dowel holes to H7 tolerance. ESD coating adhesion requires a surface roughness of Ra 2.0–4.0 μm; smoother as-printed surfaces produce delamination at the coating interface. The uncoated PA6/66 surface is incompatible with solvent-based fluxes containing aggressive ethers, so compatibility tests follow ASTM D543-20. Terminal products include selective soldering pallets, board inversion fixtures, test rack bases, and stencil alignment frames.
Robotic end-of-arm tooling for machine tending and high-mix palletizing applies dynamic bending loads at clamping points and requires the printed nylon part to survive repeated impact against steel fixtures. The addition ratio is 100 wt% BigRep PA6/66 filament, with infill set at 60% triangular through the arm body and 100% solid on the gripper finger contact faces; steel threaded inserts are limited to 8 vol% of the local cross-section to avoid crack initiation at the insert wall. Printing is performed with a 0.8 mm nozzle at 0.5 mm layer height, and the part is annealed at 90–100 °C for 4 h under constraint before machining the mounting plane flat to 0.2 mm over 200 mm. The residual moisture after conditioning at 23 °C and 50% RH for 48 h reduces tensile modulus by 10–20% compared with dry-as-printed values, so gripper deflection is evaluated wet rather than dry. Relevant standards include ISO 10218-1/-2 for robot system integration and risk assessment, ISO 527-2 for mechanical strength, and ISO 178 for flexural modulus of the finger bodies. Terminal products include gripper fingers, vacuum cup holders, palletizing end-effector plates, and tool-change adapter brackets.
Insert installation torque is controlled according to the insert manufacturer’s published limits because pull-out failure in 100% infill nylon bosses initiates at the first load-bearing thread rather than in the steel fastener. A tool-change bracket printed with 60% infill must not exceed 8 vol% local steel insert volume or the wall section between insert and outer surface becomes the crack path under cyclic loading.
On short-run industrial replacement part orders for packaging machines, the printed PA6/66 replacement gear or guide rail is produced at 100% infill in the loaded tooth region and 60% infill in the hub, with no secondary material compounding. The part is printed vertically to preserve involute tooth geometry, then reamed and bushed; compliance uses ISO 527-2 and ISO 75-2. Terminal parts include guide rails, wear strips, gear blanks, and cable chain brackets. Published data for this specific configuration is limited; validation on the target machine is required.
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BigRep PA6/66 Filament is an unfilled polyamide 6/66 copolymer feedstock for large-format material extrusion. The product is supplied as a 2.85 mm diameter mono-filament with a dry density of approximately 1.13 g/cm³; common spool configurations are 2.5 kg and 4.5 kg. The copolymer architecture modifies crystallization relative to PA6 homopolymer: the 6/66 sequence lowers the crystalline melting point to a broad interval near 185 °C to 210 °C, reduces crystallinity, and moderates post-crystallization shrinkage in slow-cooled thick-section builds. Tensile property characterization is performed according to ISO 527-2, flexural stiffness according to ISO 178, and notched impact according to ISO 179-1/1eA. The material is intended for industrial jigs, fixtures, soft-jaw tooling, thermoforming aids, and short-run production parts on large-format fused filament fabrication machines with active chamber heating and polyamide-capable bed adhesion. Regulatory compliance documentation, including REACH and RoHS conformity certificates, should be obtained from the manufacturer for the specific lot before deployment.
Interlayer fusion is controlled by melt temperature, chamber temperature, layer height, and hot-end residence time. The supplier processing window typically specifies a nozzle set point of 260 °C to 290 °C, a build plate at 90 °C to 110 °C, and a chamber temperature of 60 °C to 80 °C where a heated enclosure is available. A 0.8 mm or 1.0 mm nozzle with layer heights between 0.3 mm and 0.4 mm and print speeds of 30 mm/s to 70 mm/s maintains the previously deposited surface above the dry glass transition temperature of approximately 50 °C. At melt temperatures below 260 °C, shear viscosity rises sufficiently to cause under-extrusion and incomplete wetting at the weld interface. At temperatures above 290 °C, chain scission and yellowing are observed when hot-end residence time exceeds 30 min. At a 0.35 mm layer height, 1.0 mm bead width, and 35 mm/s print speed, the volumetric throughput is approximately 12.25 mm³/s, which exceeds the continuous melting capacity of many small hot ends and justifies the use of high-flow large-format extruders. The extrusion multiplier should be calibrated with a single-wall flow test before production because batch-to-batch melt volume-flow rate variation is controlled but not eliminated. Auxiliary cooling fans should be disabled or limited to 30 % duty cycle; premature surface solidification reduces interfacial molecular interdiffusion.
On large-format systems with horizontal axes exceeding 1 m, edge lift and mid-part delamination are the dominant failure modes. PA6/66 exhibits total volumetric shrinkage from melt to solid on the order of 10 % to 14 %. A heated chamber at 60 °C to 80 °C reduces cooling rate and permits stress relaxation. For open platforms without active chamber heating, warping is controlled with a sacrificial raft having 10 mm to 12 mm offset and by keeping first-layer speed below 25 mm/s. The bed surface should be a polyamide-specific adhesive or polyamide sheet; standard PETG adhesive films do not provide adequate bond above 90 °C. The chamber should be cooled below 40 °C before part removal to limit dimensional springback in long axes.
Moisture absorption is the principal process-control variable. Nylon 6/66 reaches an equilibrium moisture content of approximately 2.5 % to 3.5 % by mass at 23 °C and 50 % relative humidity when assessed according to ISO 62. If undried filament enters the melt zone, water volatilizes into steam voids that cause intra-bead porosity, filament diameter swell, and reduced interlayer tensile strength. Drying at 80 °C for 4 h to 6 h in a forced-air desiccant dryer, or in a vacuum oven under reduced pressure, is mandatory after environmental exposure exceeding 24 h. The target residual moisture before extrusion is below 0.15 % by mass as measured by Karl Fischer titration according to ISO 15512. Open spools should be stored in sealed containers with molecular sieve desiccant or under a dew point below -20 °C; re-drying after 8 h of open handling is standard practice. On production-scale large-format printers with direct-drive extruders, inconsistent feed and drive-gear grinding are observed when undried filament is processed; the failure mode is traced to moisture-induced softening and diameter swell at the feeding zone.
For load-bearing assembly fixtures and soft jaws, PA6/66 is selected over PA12 when higher compressive modulus and better creep resistance at 50 °C to 80 °C are required. In the dry state, conditioned PA6/66 printed specimens tested according to ISO 527-2 at 23 °C commonly show tensile strength of 40 MPa to 55 MPa, tensile modulus of 1.5 GPa to 2.3 GPa, and elongation at break of 10 % to 30 %, with XY-oriented specimens generating the higher values. PA12 printed on similar large-format equipment usually shows tensile modulus near 1.3 GPa to 1.6 GPa and a lower heat deflection temperature, which reduces its suitability for heated jig environments. However, PA6/66 absorbs more moisture than PA12; conditioned tensile modulus and glass transition therefore shift downward in humid air, and holes or mating features should be compensated after moisture-conditioned dimensional characterization according to ISO 62.
| Property | PA6/66 | PA12 | PA6 homopolymer | PETG | Test method |
|---|---|---|---|---|---|
| Tensile strength (MPa) | 40–55 | 35–45 | 45–60 | 30–45 | ISO 527-2 |
| Tensile modulus (MPa) | 1,500–2,300 | 1,300–1,600 | 1,800–2,400 | 1,400–1,800 | ISO 527-2 |
| Notched impact (kJ/m²) | 5–10 | 8–15 | 4–8 | 3–7 | ISO 179-1/1eA |
| Heat deflection temperature, 0.45 MPa (°C) | 150–180 | 100–130 | 160–190 | 70–75 | ISO 75-2/B |
| Moisture uptake at 23 °C, 50 % RH (%) | 2.5–3.5 | 0.5–1.0 | 2.8–3.5 | 0.2–0.4 | ISO 62 |
The tabulated values are not specification limits; they represent typical published ranges for printed coupons and are influenced by raster angle, porosity, and moisture conditioning. Lot-specific batch certificates should be consulted before tolerance analysis.
Tensile anisotropy in PA6/66 prints is introduced by the raster path, the weld boundaries between adjacent beads, and residual cooling stress. For XY-oriented coupons printed with 0/90° raster and tested according to ISO 527-2, the tensile modulus commonly reaches 70 % to 90 % of dry injection-molded PA6/66 reference data. The z-direction tensile strength is substantially lower; values below 20 MPa are observed in coupons printed with layer heights greater than 0.4 mm or with chamber temperatures below 60 °C because incomplete interlayer diffusion leaves elongated micro-voids at the weld plane. Notched impact tests according to ISO 179-1/1eA on z-oriented specimens frequently fall 40 % to 60 % below XY-oriented values, and the fracture surface shows flat interlayer separation rather than ductile tearing. For structural inserts, compression limiters should be inserted into printed bosses, and through-thickness bolting should not rely on the z-axis tensile capacity of the printed wall.
Published fatigue data for large-format FFF PA6/66 under cyclic loading are sparse. In fused filament fabrication, fatigue life is dominated by the weld-line root radius between adjacent beads, which acts as a notch population. Under fully reversed bending, printed nylon parts may initiate crack growth from surface porosity and show a lower endurance ratio than injection-molded equivalents. For rotating jig components, a conservative design limit of 25 % of the monotonic yield strength is used when no component-level cycle data are available. Creep deflection at 60 °C and 5 MPa sustained load is measurable; continued load-bearing use should be validated with an instrumented static fixture for 100 h or more.
Chemical resistance follows polyamide behaviour. The material is resistant to aliphatic hydrocarbons, mineral oils, hydraulic fluids, and dilute alkaline cleaners, but it is attacked by strong mineral acids, phenol, cresols, and some chlorinated solvents. Stress cracking risk is elevated when loaded parts are exposed to methanol, glycol ethers, or zinc chloride solutions; compatibility testing according to ISO 22088-3 or ASTM D543 is required before production use. In applications where printed parts contact brake fluid or coolant, the service temperature must be derated because absorbed fluid plasticizes the polyamide and lowers its heat deflection temperature. Unfilled PA6/66 is electrically insulating and does not require the hardened steel nozzle specified for carbon-fiber-filled polyamides, but it offers lower stiffness and lower thermal conductivity than fiber-reinforced grades. Dielectric properties are not stable in humid environments because absorbed moisture increases surface conductivity and dissipation factor.
Short-term use in thermoforming molds and paint-shop fixtures is limited by heat deflection temperature and moisture content. Under the 1.8 MPa load of ISO 75-2/A, dry large-format PA6/66 specimens often exhibit heat deflection temperatures of 70 °C to 95 °C; under the lower 0.45 MPa load of ISO 75-2/B, values of 150 °C to 180 °C are typical. These values drop after conditioning to 50 % RH because water plasticizes the amorphous phase. A tool that survives 180 °C in the dry state may begin to creep at 120 °C after moisture conditioning. For thermoforming applications with surface temperatures above 100 °C, annealed PA6/66 builds with 0.3 mm layer height and high chamber temperature have been evaluated, but published data for this specific configuration is limited. A 4 h to 8 h thermal soak test under target load is recommended before committing to production tooling.
Compared with unfilled PETG and PLA on the same large-format platform, PA6/66 provides higher heat deflection temperature and better fatigue resistance in moving components, but it requires more stringent drying and bed adhesion control. Compared with PA12, PA6/66 provides higher stiffness and hardness but lower dimensional stability in humid air. Compared with carbon-fiber-filled PA6 grades, this unfilled material exhibits lower melt viscosity at equivalent melt temperatures, lower abrasiveness at the nozzle, and higher elongation at break, but lower tensile modulus and lower heat deflection temperature. For a flatness-critical thermoforming mold, post-print annealing at 100 °C for 4 h in a circulating oven with the part clamped between aluminium plates can reduce internal stress, but published data for this specific configuration is limited.