| Код ТН ВЭД | 179581 |
Как аккредитованный завод Envalior Novamid ID 1030 Nylon 6/66, 3D Printing Grade, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.
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Under-hood thermal cycling and hydrocarbon contact render many unreinforced 3D printing polymers unsuitable for bracketry that must survive multiple engine heat-soak cycles. Envalior Novamid ID 1030 is specified at 100 wt% of the polymer feed for short-run engine-bay sensor brackets, brake fluid reservoir locating brackets and wiring harness clips; external lubricant, plasticizer and desiccant masterbatch addition are held at 0 wt% because low-molecular-weight additives migrate to the interlayer boundary and reduce tensile strength perpendicular to the build plane. Before melt processing, moisture content is reduced to below 0.15 wt% using a desiccant wheel dryer with a dew point no warmer than −30°C and a residence time of 6 h at 80°C. Filament extrusion for these automotive runs is performed on a co-rotating twin-screw line with an L/D ratio of 40:1; barrel zones are held between 230°C and 260°C, melt pressure is maintained below 80 bar, and the filament is cooled through a water bath at 40°C before diameter gauging to 1.75 mm ±0.05 mm. Fused-filament part production uses an enclosed cell with a hardened 0.4 mm nozzle, 250–260°C melt set point, 100°C borosilicate bed, and 45–55°C chamber air temperature to limit curl. Post-print components are restrained in a steel fixture and annealed in a recirculating oven at 90°C for 4 h, then conditioned at 23°C and 50% RH for 48 h before dimensional audit. Compliance alignment is governed by IATF 16949:2016 clause 8.4.2.3 for supplied-process validation, REACH Regulation (EC) No 1907/2006 Annex XVII, RoHS Directive 2011/65/EU, and mechanical acceptance under ISO 527-2:2012 and ISO 75-2:2013 method B. Published long-term hot-oil exposure data for printed parts at oil sump temperatures above 120°C is limited; fluid reservoir brackets are therefore constrained to non-pressurized, non-submerged installations.
Oil-mist environments in transfer lines demand replacement tooling materials that do not soften after contact with spindle lubricants, way oils or hydraulic fluid. Large-format additive manufacturing of Envalior Novamid ID 1030 provides end-of-arm robot gripper jaws, CNC fixture locators, assembly press nests and conveyor wear guides in which the polymer phase is charged at 100 parts by weight neat resin; external lubricants and desiccants are excluded at 0 parts by weight, while reprocessed trim from failed prototypes is limited to ≤5 wt% and only for non-locating conveyor guides because regrind can reduce Charpy notched impact and broaden melt viscosity. The production cell is a gantry-type pellet-fed extruder with a build volume of 500 mm × 500 mm × 500 mm, a 0.8 mm nozzle, melt temperature 260–270°C, heated bed at 90°C, and chamber temperature of 50°C. Layer height is set to 0.3 mm; clamp-contact faces are printed at 100% rectilinear infill with 4 outer shells, while non-contact zones are filled at 55% to reduce warpage-induced edge lift. After deposition, parts are annealed at 100°C for 4 h in a natural convection oven and then measured against the CAD reference with a coordinate measuring machine; holes are reamed to H7 tolerances instead of being printed to final size. Compliance references for these line-side aids include ISO 9001:2015 clause 8.5.1 for production control, ISO 175:2010 for resistance to machining fluids, ISO 62:2008 for moisture absorption, and the Machinery Directive 2006/42/EC for operator-contact equipment. Field behavior on high-volume machining lines shows that a 0.3 mm outer-shell offset reduces fit interference when printed parts are stored in unheated tool cribs during winter months, but pre-drying is still required when ambient relative humidity exceeds 60%.
Agricultural inspection covers and seed-metering housing covers exposed to dust, fertilizer dust and temperature swings require a polyamide that retains impact resistance after moisture equilibration. For seed-metering housing covers, hydraulic hose retaining brackets and inspection covers, Envalior Novamid ID 1030 is used at 100 wt% neat resin; carbon black masterbatch addition for outdoor UV resistance is held to ≤2 wt% because higher pigment loadings reduce melt elongation and may create voids at interlayer boundaries. Moisture is dried to 0.10–0.15 wt% before printing, and the filament or pellet feedstock is kept in a hopper dryer at 80°C during long runs. The fused filament process runs an enclosed printer with a 0.4 mm hardened nozzle, 265°C melt set point, 90°C bed, 20% part cooling fan, 6 outer shells, and 40% triangular infill; layer height is 0.2 mm. Pin bores and snap features are printed 0.15 mm undersized and then reamed after annealing to remove support nibs and compensate for regional shrinkage. Annealing is performed at 100°C for 3 h with the part restrained on a granite plate, followed by moisture conditioning at 23°C and 50% RH for 48 h to restore ductility before impact evaluation. Compliance acceptance for mechanical properties is based on ISO 527-2:2012 tensile stress at break and ISO 179-1:2010 notched Charpy impact at −20°C; chemical restrictions are aligned with REACH Regulation (EC) No 1907/2006 Annex XVII and RoHS Directive 2011/65/EU. Because agricultural components may contact pesticide carriers, exposure testing is conducted under ISO 175:2010 for 72 h before serial production is approved; published data for extended exposure to agricultural solvents in this specific printed configuration is limited.
Pipe-clamp halves, flange alignment fixtures, pump casing wear guides and instrument stand-off brackets in chemical processing plants require dimensional stability in humid, acidic or alkaline atmospheres without transferring metallic ions. Envalior Novamid ID 1030 is added at 100 wt% as the polymer matrix; glass-fiber concentrate is not blended into this grade because the unfilled PA6/66 feedstock is selected for ductility and layer fusion, and adding fiber would require a separate validated nozzle and feed path. The production process is fused filament fabrication with a 0.6 mm brass or hardened steel nozzle, 260°C melt temperature, 95°C bed, 55°C chamber air temperature, 0.3 mm layer height, 100% rectilinear infill for clamp-bearing surfaces, and 3 outer shells. Printed blanks are annealed at 110°C for 3 h in a nitrogen-purged oven to reduce frozen-in stress before machining the bolt-hole clearance and clamp-face flatness. Compliance references are ISO 175:2010 for chemical resistance after 7 d immersion, ISO 62:2008 for water-absorption mass gain, REACH Regulation (EC) No 1907/2006, and RoHS Directive 2011/65/EU; the Pressure Equipment Directive 2014/68/EU is not applied to non-pressurized support hardware. The material has known incompatibility with concentrated hydrochloric acid, formic acid, phenol and strong reducing agents; these attack the amide linkage and negate clamp-load retention. Published long-term immersion data for printed parts in hot brine above 80°C is limited, so pipe-clamp applications in hot salt-laden atmospheres require in-plant test coupons before release.
Bicycle pedal body prototypes and ski touring binding heelpieces are two recreational components where cold-temperature impact resistance and solvent resistance overlap. In this non-structural prototyping segment, Envalior Novamid ID 1030 is fed at 100 wt% neat filament; plasticizer addition is 0 wt%, and color masterbatch addition is kept at ≤1 wt% because the pigment carrier can reduce interlayer weld strength if allowed to exceed the melt-boundary volume fraction. The printing process is conducted on a desktop enclosed FFF machine with a 0.4 mm hardened steel nozzle, 250–255°C melt temperature, 90°C build plate, 50°C chamber temperature, 0.25 mm layer height, and 35% gyroid infill; the part cooling fan is limited to 0–10% to avoid skin undercooling that creates delamination in cold impact. After printing, pedal bodies and heelpiece housings are annealed at 90°C for 2 h, then conditioned at 23°C and 50% RH for 48 h before installation of threaded brass inserts at 80°C; the conditioning step restores ductility to the PA6/66 copolymer, which reduces notch sensitivity at −10°C. Mechanical acceptance uses ISO 527-2:2012 tensile properties and ISO 179-1:2010 notched Charpy at −10°C; regulatory alignment is with the General Product Safety Directive 2001/95/EC, REACH Regulation (EC) No 1907/2006 Annex XVII, and RoHS Directive 2011/65/EU. These grades are not permitted for load-bearing bicycle frames, helmet shells, fall-arrest components or ski bindings in serial production unless a separate certified release test under the applicable EN product standard has been completed.
Low-voltage control-panel housings printed in short runs during pre-production expose polyamide 6/66 to both heat aging and assembly torque. For prototype electronics enclosures, wire duct clips, terminal block retainers and cable gland brackets, Envalior Novamid ID 1030 is run at 100 wt% neat resin; halogenated flame-retardant masterbatch is excluded at 0 wt%, and any color masterbatch is limited to ≤1 wt% because dispersion unevenness around thin rib sections alters shrinkage. The fused filament process uses a 0.4 mm nozzle, 260°C melt temperature, 90°C bed, 30% fan speed, 0.2 mm layer height, and 5 outer shells; terminal block pockets are printed 0.2 mm undersized and then probed with a go/no-go pin gauge before insert installation. Brass heat-set inserts are installed at 80°C after pre-drilling or printing pilot holes, because direct melt-set at higher temperature can cause local surface whitening and microcrack formation in thin bosses. Annealing is performed at 90°C for 4 h in a recirculating oven, and parts are then conditioned at 23°C and 50% RH for 48 h to stabilize dimensions. Compliance evaluation for mechanical enclosure parts uses ISO 527-2:2012 and ISO 178:2019 flexural properties; electrical safety assessment references IEC 60664-1:2020 for insulation coordination and the Low Voltage Directive 2014/35/EU only when the printed housing is part of a CE-marked assembly. Published UL 94 V-0 data for this specific grade is limited, so the printed PA6/66 is not relied upon as a sole live-part barrier in high-humidity service; creepage and clearance distances are maintained by design and insert placement rather than by the unreinforced polymer alone.
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Envalior Novamid ID 1030 is a polyamide 6/66 copolymer supplied as a 3D printing grade for fused filament fabrication and large-format polymer deposition. The material is not a generic molding resin; it is specifically controlled for filament conversion and printed-part performance. The polymer architecture combines polyamide 6 repeat units with a smaller proportion of 6,6 repeat units, reducing the melting point and crystallization rate relative to PA6 homopolymer. Supplier literature reports a dry tensile modulus of approximately 1,800 MPa under ISO 527-2:2012 at 1 mm/min, a density of 1.07–1.09 g/cm³ under ISO 1183-1:2019, and a melting endotherm near 195 °C under ISO 11357-3:2018. These properties place the product between stiff, high-temperature PA66 homopolymers and flexible polyamide grades. The primary design purpose is to produce polyamide parts with low solidification shrinkage, reduced edge curl, and higher interlayer weld strength than highly crystalline nylons on heated or passively enclosed printing platforms.
In manufacturing environments where ambient relative humidity exceeds 60 %, the resin and filament must be dried before processing. Polyamide 6/66 absorbs water through hydrogen bonding with amide groups; filament stored at 23 °C and 50 % relative humidity can reach an equilibrium moisture content of approximately 2.5–3.0 wt% according to the sorption behavior measured under ISO 62:2008. Moisture contents above 0.1 wt% during extrusion or printing produce hydrolysis at melt temperatures, generate steam porosity at the nozzle, and reduce interlayer weld strength. A desiccant dryer with a dew point of −40 °C and a bed temperature of 80 °C for 4–8 h is the standard drying condition for polyamide filament; vacuum drying at 80 °C for at least 4 h is an alternative when a desiccant system is unavailable. In printed form, moisture acts as a plasticizer, lowering tensile modulus and raising elongation at break, so any quoted mechanical value must identify dry-as-printed or conditioned state. The same moisture affinity means that parts stored in high-humidity production halls can show dimensional growth that must be compensated in tooling tolerances.
The incorporation of 6,6 repeat units into the polyamide 6 chain interrupts the regularity of hydrogen-bonded sheets and reduces the equilibrium crystalline fraction. The supplier literature describes the product as a 6/66 copolymer rather than a physical blend of PA6 and PA66. This molecular architecture lowers the peak melting temperature from the 220 °C typical of PA6 homopolymer to roughly 195 °C. The differential scanning calorimetry endotherm is broad, and the crystallization exotherm shifts to lower temperatures during cooling, meaning the solidification front moves more slowly across a printed layer. For fused filament fabrication, slower crystallization extends the time during which polymer chains can diffuse across the weld line before spherulitic growth locks the interface. The result is a measurable improvement in interlayer tensile strength relative to a fast-crystallizing PA66 under the same print parameters. At the same time, lower crystallinity reduces volumetric shrinkage from the melt to the solid state, lowering edge curl and internal residual stress. The trade-off is that reduced crystalline order also lowers modulus and heat deflection temperature compared with PA66 homopolymer. Processors should therefore select this grade for toughness, dimensional stability during printing, and chemical resistance rather than for hot load-bearing service.
The supplier technical data sheet reports mechanical values on printed or molded test specimens under ISO 527-2:2012. Typical dry-state values include a tensile modulus of approximately 1,800 MPa, a tensile yield stress near 45 MPa, and a tensile strain at break above 80 %. The Charpy notched impact strength under ISO 179-1/1eA is commonly reported in the range of 8–12 kJ/m² for dry test specimens, while the unreinforced 6/66 backbone avoids the brittle failure mode associated with carbon-fiber-filled polyamides at low temperature. The melting temperature measured by ISO 11357-3:2018 is approximately 195 °C; the supplier specifies a density of 1.07–1.09 g/cm³ under ISO 1183-1:2019. Moisture conditioning at 23 °C and 50 % relative humidity reduces tensile modulus by roughly 20–35 % and increases strain at break, a plasticization response consistent with PA6 and PA66 homopolymers. Melt-volume-flow data under ISO 1133-1:2022 are used to control filament extrusion lot-to-lot variation; exact values should be obtained from the certificate of analysis for the lot because the grade is optimized for dimensional stability at the printer rather than for a narrow injection-molding viscosity window. Published data for long-term creep, fatigue, and ultraviolet aging of this exact grade are limited, so printed components exposed to sustained load should be validated on the target equipment.
On fused filament fabrication platforms with a heated build chamber or passive enclosure, the extrusion window for Novamid ID 1030 is typically set between 250 °C and 270 °C at the nozzle and 70 °C to 90 °C at the build plate. The optimum set point depends on hot-end thermocouple offset, layer time, and nozzle alloy; polyamide degradation accelerates above 280 °C, while insufficient melt temperature below 240 °C produces poor interlayer wetting and delamination at sharp corners. Build chamber temperatures of 30–50 °C are normally adequate for small parts, but larger tooling with wall thickness above 8 mm may require a chamber temperature at the upper end of that range to reduce edge curl. The use of a 0.4 mm hardened steel nozzle is standard; brass nozzles are acceptable because the unfilled grade is not abrasive, but the higher thermal mass of steel can require a 5–10 °C set-point increase. A layer height of 0.15–0.25 mm and a line width of 0.4–0.5 mm provide a balance between interlayer contact pressure and build time. Cooling fans should be disabled or limited to 20–30 % of maximum speed; forced-air cooling of PA6/66 quenches the interface before chain interdiffusion is complete, producing a distinct weld line under optical microscopy. Adhesion to a glass plate at 80 °C is generally insufficient without a polyamide-specific adhesive or coated build surface; the material bonds more reliably to a clean polyetherimide sheet or to a polyamide film applied over the build plate. Print speeds are limited by volumetric flow capacity; standard extruders with a 0.4 mm nozzle can maintain stable melt delivery up to approximately 10 mm³/s, beyond which under-extrusion and porosity become measurable.
Batch-to-batch filament geometry remains a major processing variable in production. Filament extruded from Novamid ID 1030 is typically controlled to a diameter of 1.75 mm ± 0.05 mm or 2.85 mm ± 0.05 mm, with ovality below 0.05 mm; deviations above this range produce uneven feed pressure in the extruder drive and visible surface texture in printed walls. In-line laser diameter gauges connected to closed-loop take-up speed are the standard method for maintaining this tolerance on extrusion lines with L/D ratios of 24:1 to 30:1. The melt temperature at the die is usually kept between 230 °C and 245 °C; lower temperatures generate melt fracture, while higher temperatures can oxidize the melt even under nitrogen purge. Water-bath cooling is generally avoided for the 6/66 copolymer because rapid quenching locks in a high amorphous fraction and can produce filament that is too flexible for reliable spooling; air cooling with controlled tension is preferred. Production-scale failures with this grade are most commonly traced to insufficient drying rather than polymer variability: a single wet pellet entering the hopper can generate a 20–40 mm long foamed filament segment that later causes a print head blockage. For that reason, hopper dryers on the filament line are often set to maintain a −40 °C dew point and a residence time of at least 4 h before extrusion.
The material is selected when a functionally load-bearing polyamide part must be printed with low warpage and without the brittleness of highly crystalline PA66. Compared with PA6 homopolymer, this grade lowers the melting point by roughly 25 °C and reduces the crystalline enthalpy, so a heated chamber is less critical for warp control. Compared with PA66 homopolymer, the grade carries a lower heat deflection temperature and lower dry tensile modulus, which makes it unsuitable for continuous service in an 85 °C hot jig under load unless the stress is low. In return, it offers slower crystallization and improved interlayer diffusion, which on unheated or passively heated printers translates into fewer interlayer delamination failures in impact tests such as ISO 179-1. The chemical resistance of the 6/66 backbone remains broadly similar to that of PA6 and PA66: it resists aliphatic hydrocarbons, mineral oils, and common machine-shop coolants, but it is attacked by strong acids, phenol, and concentrated formic acid. Dimensional stability during printing is the primary differentiator; production experience on large-format machines shows that a PA66 homopolymer jig of the same geometry can lose flatness at the edges, while this copolymer maintains contact with the build sheet through the final layer. The supplier technical datasheet should still be consulted for exact lot-specific data, because minor changes in 6/66 ratio and nucleating agent content can shift the crystallization onset by several degrees.
For systematic comparison with adjacent polyamides, the following matrix is based on typical unfilled dry-state values from public supplier data sheets and does not reflect anisotropic printed properties in the Z direction.
| Property / test method | Novamid ID 1030 | PA6 homopolymer | PA66 homopolymer |
|---|---|---|---|
| Melting temperature, ISO 11357-3 | ~195 °C | ~220 °C | ~260 °C |
| Density, ISO 1183-1 | 1.07–1.09 g/cm³ | 1.13–1.15 g/cm³ | 1.13–1.15 g/cm³ |
| Dry tensile modulus, ISO 527-2 | ~1,800 MPa | ~2,600 MPa | ~3,000 MPa |
| Dry tensile yield stress, ISO 527-2 | ~45 MPa | 70–80 MPa | 80–90 MPa |
| Dry tensile strain at break, ISO 527-2 | >80 % | 40–80 % | 20–50 % |
| Moisture absorption at 23 °C / 50 % RH, ISO 62 | 2.5–3.0 % | 2.8–3.2 % | 2.5–2.8 % |
| Observed warp tendency on unheated printer | Low | Moderate | High |
For end-use parts governed by food-contact, potable water, or electrical insulation standards, the final printed article—not the raw pellet—defines compliance. The base polyamide 6/66 chemistry may be assessed under EU Regulation (EU) No 10/2011 for plastics intended for food contact, but specific migration limits for caprolactam and 6,6 salt components depend on printed density, surface roughness, and food simulant; no generic certification can be transferred from the resin supplier to a porous printed part without migration testing under DIN EN 1186-1 or equivalent. Under REACH, the polymer itself is generally exempt from registration as a substance, but monomers and additives in the formulation must be registered. The grade is not inherently UV-stable; unpainted parts exposed to sunlight for more than a few hundred hours will embrittle unless stabilized in a secondary coating or compounded with carbon black. Storage life is finite and moisture-dependent: a previously opened filament spool stored without a desiccant at 60 % relative humidity will require re-drying before printing, and repeated drying cycles above 90 °C can oxidize the surface and shift color without restoring full interlayer strength. Machining of printed blanks is possible with carbide tooling, but the low glass transition temperature of PA6/66—typically 45–55 °C—means that coolant is required for close-tolerance boring or tapping operations. Prior to production, the processor should verify the lot-specific certificate of analysis for melt flow, moisture, and tensile modulus, because the material is manufactured as a 3D printing grade with wider latitude for crystallization behavior than injection-molding nylons.