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Envalior Arnite ID 3040 PET, 3D Printing Grade

    • Название продукта: Envalior Arnite ID 3040 PET, 3D Printing Grade
    • Сайт Factroy: Округ Юду, Ганьчжоу, Цзянси, Китай
    • Запрос цены: admin@ascent-chem.com
    • Производитель: Ascent Petrochem Holdings Co., Limited
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    Спецификации
    Код ТН ВЭД 334598

    Как аккредитованный завод Envalior Arnite ID 3040 PET, 3D-печати, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.

    Упаковка и хранение
    Упаковка Envalior Arnite ID 3040 PET, 3D Printing Grade is supplied in 25 kg moisture-proof bags, palletized and shrink-wrapped for industrial shipping.
    Погрузка контейнера (20-футовый контейнер) 20′ FCL container loading: Envalior Arnite ID 3040 PET 3D Printing Grade in palletized bags, stretch-wrapped, secured, clean/dry, evenly distributed.
    Доставка Envalior Arnite ID 3040 PET, 3D Printing Grade, is shipped as non-hazardous, moisture-sensitive thermoplastic pellets in sealed foil bags, fiber drums, or lined cartons. Transport under cool, dry conditions, avoiding heat, moisture, and contamination. No UN number or special dangerous-goods classification applies for road, sea, or air freight.
    Хранение Store Envalior Arnite ID 3040 PET (3D Printing Grade) in a cool, dry, well-ventilated area, using tightly sealed original packaging. Protect from moisture, humidity, heat, direct sunlight, and ignition sources. Keep away from strong oxidizers and incompatible substances. If opened, reseal promptly with desiccant and follow first-in, first-out rotation. Avoid dust generation and physical container damage.
    Срок годности Shelf life is 12 months when stored dry, unopened in original packaging at room temperature, away from moisture and sunlight.
    Применение Envalior Arnite ID 3040 ПЭТ, 3D-печать класса

    After vacuum drying Arnite ID 3040 pellets or filament at 120 °C for at least 4 h to a residual moisture level of ≤0.015 wt% as determined by Karl Fischer titration, FFF deposition is carried out through a 0.4 mm hardened steel nozzle at 250–265 °C onto a 70 °C borosilicate glass build plate inside a chamber held at 40–55 °C. For electroplating and anodizing line masking fixtures, the first layer thickness is set to 0.14 mm with an extrusion width multiplier of 1.1; subsequent layers are deposited at 0.18 mm using 5 perimeter shells and 100 % concentric infill. Surfaces exposed to rinse-water splash or acidic mist are printed with no top-surface gaps and are sealed by ironing at 255 °C to close void channels. Water absorption of unfilled PET is typically below 0.5 % after 24 h immersion at 23 °C according to ISO 62, which reduces dimensional change in wet plating environments compared with PA6-based printed fixtures. The fixtures are restricted to alignment frames, insulating mask caps, and inspection staging nests that see short-term splash from dilute acid or ultrasonic rinse water; continuous immersion in hot chromic acid above 55 °C or in alkaline electro-cleaners above pH 12 is outside the hydrolytic stability boundary of unfilled PET. RoHS compliance is addressed under Directive 2011/65/EU Annex II substance restrictions, and REACH SVHC screening under Regulation EC 1907/2006 should be performed on the filament feedstock before release for industrial wastewater contact.

    What Limits Underhood Use of Unfilled PET Printed Parts?

    Automotive fit-check programs use this grade for cold-side air intake snorkel prototypes, wiring harness routing clips, sensor mounting bosses, and ECU enclosure mock-ups where the surface temperature does not exceed 85 °C in continuous operation. Printed sections are produced with a 40 % gyroid infill for airflow duct models to lower mass while retaining hoop stiffness; wiring clips use 60 % rectilinear infill with 4 perimeters. Hole-critical bosses are printed undersized and then reamed to H7 tolerance after an annealing cycle of 30 min at 110 °C under a flat aluminum restraining plate. The heat deflection temperature of dried unfilled PET is approximately 75 °C at 0.45 MPa by ISO 75-2:2013, which is the limiting factor for underhood deployment; above this threshold, creep in clamped joints becomes measurable on production line torque checks. Tensile modulus of dried unfilled PET typically falls in the range 2800–3100 MPa under ISO 527-2/1A/50 or ASTM D638, but this modulus does not offset the drop in clamped-joint load retention when local air temperature rises above the HDT boundary. Published data for Arnite ID 3040 specifically under an underhood thermal cycle from −40 °C to 85 °C is limited, so automotive validation requires in-vehicle thermocouple placement rather than substitution of datasheet values. These printed parts are therefore assigned to short-loop bench testing, airflow visualization, and dimensional sign-off of wire routing, not homologation or structural bracket duty. For comparison, the same housings in glass-filled PA66 or PPS are specified where continuous contact with cylinder head radiant heat exceeds 120 °C.

    Dense FFF-printed trays for automated optical inspection of PCB panels are built from vacuum-dried Arnite ID 3040 filament at a 0.12 mm layer height, 80 % triangular infill, and 4 top and bottom solid layers. The build plate is held at 75 °C and the chamber at 35 °C to reduce curl; after printing, the panel nests are fly-cut on a CNC mill to a flatness of 0.10 mm over a 200 mm span. Dielectric strength for unfilled PET is typically 16–20 kV/mm at 1 mm thickness under IEC 62631-3-1, but the printed surface roughness and internal voids reduce the reliable operating voltage envelope compared with injection-molded PET. Ionic contamination testing of the printed carrier is performed to IPC-TM-650 method 2.3.25 before the tray is introduced into a bare-board assembly line; if the result exceeds 1.56 µg/cm² NaCl equivalence, the carrier is rejected for direct board contact and assigned to stencil storage frames or conformal coating masking tasks. Thermal exposure is limited to selective soldering pallets where the PCB zone beneath the pallet remains below 120 °C; direct contact with 260 °C solder should not occur because localized melt-through and release of acetaldehyde become possible. The terminal use class covers AOI staging trays, stencil frame inserts, wave solder pallet stiffeners, and operator assembly kitting trays.

    If Vacuum Thermoforming Tool Inserts Must Operate at 120 °C

    When printed Arnite ID 3040 tooling is used for low-volume vacuum forming of PET or PP sheet at 120–135 °C, the primary failure mode is not instantaneous melting but creep under vacuum load and frame clamping. To operate within the grade’s limits, the insert is fabricated with internal conformal cooling channels printed at 0.20 mm layer height and 100 % infill, followed by a leak test at 0.4 MPa pneumatic pressure. Cooling water at 15–20 °C is circulated at 4–6 L/min through the channels; contact time between the hot sheet and insert surface is held below 10 s per cycle. A constrained annealing step at 110 °C for 60 min under a flat aluminum plate increases crystallinity and raises short-term dimensional stability, but it also produces linear shrinkage in the range of 0.8–1.5 % depending on wall thickness; the STL file is therefore scaled by the inverse of the measured shrinkage factor after a first trial print. Unannealed inserts exhibit lower shrinkage but greater time-dependent deformation when surface temperature exceeds 85 °C. Published data for this specific configuration is limited, so each tooling shop must record surface temperature with embedded thermocouples and reject inserts that exceed 90 °C for more than 60 s cumulative. Terminal products are development blister trays, APET blister mock-ups, and short-run medical tray formers.

    Insert conditionLinear shrinkage after thermal treatmentMaximum surface temperature during sheet contactRecommended process window
    Unannealed0.3–0.6 %85 °C5–8 s contact, chilled base plate
    Constrained annealed0.8–1.5 %90 °C10 s contact, conformal cooling 15–20 °C

    Orthotic Shell Vacuum-Forming Positives and Clinical Teaching Models

    Additive manufacturing from Arnite ID 3040 filament is applied to positive models used in vacuum forming of external orthotic shells from polypropylene or HDPE sheet. The positive is generated from a lower-limb 3D scan and is printed with 20 % gyroid infill, 3 perimeter shells, and 0.18 mm layer height; the build is oriented to keep the distal end on the build plate and to place support remnants on the posterior, non-load-bearing surface. After support removal, loaded surfaces are CNC-machined to Ra 1.6 µm to reduce vacuum-bag marking. The printed positive is inserted into a vacuum former at sheet temperatures of 110–130 °C; because unfilled PET has a heat deflection temperature near 75 °C under 0.45 MPa, the positive is wrapped in a single layer of polyester release fabric and cooled with forced air during the 5–8 s contact period. Cytotoxicity screening per ISO 10993-5 and irritation testing per ISO 10993-10 are only applicable after the final device is verified; the raw printed positive itself does not automatically meet medical-device biocompatibility requirements. Clinical use is therefore limited to teaching models, trial shell fabrication, and fitting prototypes, not long-term patient-worn components.

    Mechanical wear resistance on dry product contact rails after 100,000 cycles

    Bottling line guide rails and starwheel change parts are printed from this grade with 0.15 mm layer height, 95 % rectilinear infill, and 4 perimeters. The wear surface is not left in the as-printed state for dry product contact; it is face-milled to remove the outer 0.25 mm and then fitted with 1 mm UHMWPE adhesive tape where PET containers slide at line speeds up to 30 m/min. Under these conditions the PET rail functions as a dimensionally stable substrate, while the tape provides the sliding interface; direct PET-to-PET contact would generate dust and fine particulates. The substrate is compatible with dilute cleaning solutions and with alcohol-based wipe-downs, but not with aggressive solvent cleaning cycles above 50 °C because of environmental stress cracking risk. Compliance for these machine components is assessed under the Machinery Directive 2006/42/EC as standard industrial equipment parts, and the specific food-contact regulation EU 10/2011 does not apply because the printed rail is used outside the direct food contact zone. After 100,000 cycles of dry product simulation, published data for this specific configuration is limited; wear measurement should follow ISO 9352 or an internal line-trial footage standard. Terminal use is restricted to replacement change parts in depalletizing and unscrambling operations where contact pressure is below 0.2 MPa.

    Бесплатная цитата

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    Сертификация и соответствие требованиям
    Более подробное введение

    Arnite ID 3040 is an unfilled polyethylene terephthalate filament grade supplied by Envalior for material extrusion additive manufacturing. The product is offered in 1.75 mm and 2.85 mm diameters and is identified as a semi-crystalline polyester. The datasheet position lies between polylactic acid and polyamide in moisture uptake and thermal resistance. The material is dried to a residual moisture content below 0.02 % and processed through a heated nozzle. Published data for this specific configuration are less extensive than for polyamide filament grades; however, the product falls within the unfilled PET class at a density of 1.27 g/cm³ (ISO 1183), a tensile modulus range of 2,000–2,300 MPa (ISO 527-1/-2), and a melt volume rate near 15–20 cm³/10 min at 250 °C/2.16 kg (ISO 1133-1).

    What Structural Differences Separate Unfilled PET from Glycol-Modified PETG?

    Unfilled PET and PETG differ at the monomer level. Glycol modification introduces cyclohexanedimethanol units, which disrupt chain regularity and slow strain-induced crystallization during extrusion and cooling. Arnite ID 3040, as an unmodified PET, can develop crystallinity under slower cooling. The practical consequence is higher heat deflection temperature and lower creep under sustained load, but a narrower printability window. On a heated bed, a surface temperature of 70–80 °C is required to manage warp and to permit enough chain mobility for crystallization to nucleate; PETG typically processes at 60–70 °C. The higher crystallization tendency also reduces interlayer fusion if the melt temperature or chamber air temperature is insufficient, because previously deposited layers remain below the crystallization temperature while new material is applied.

    Typical unfilled filament-class property ranges for material extrusion; published range values, not specification limits
    PropertyArnite ID 3040 PETPETGPLAABS
    Density (ISO 1183)1.27 g/cm³1.23–1.27 g/cm³1.24 g/cm³1.04 g/cm³
    Tensile modulus (ISO 527-1/-2)2,000–2,300 MPa1,700–2,100 MPa3,000–3,500 MPa1,800–2,200 MPa
    Heat deflection temperature at 0.45 MPa (ISO 75-1/-2)70–80 °C60–70 °C50–55 °C90–100 °C
    Moisture saturation at 23 °C/50 % RH0.4–0.5 %0.3–0.5 %0.4–0.6 %0.2–0.4 %

    The data in the table place Arnite ID 3040 above PLA in thermal resistance and above PETG in stiffness retention under low load, while ABS remains higher in heat deflection temperature under the same condition. For load-bearing jigs and fixtures that must survive short excursions above 60 °C, PLA may soften and lose dimensional accuracy; unfilled PET does not, provided the part has been allowed to crystallize sufficiently. Compared with ABS, PET processing generates no styrene atmosphere, but ABS retains a wider low-temperature impact window and better resistance to alkaline cleaning agents in many cases. Compared with recycled PET filament, this grade is produced from controlled feedstock and delivered on moisture-resistant spools, but drying is still mandatory. Compared with PBT filament, the slower crystallization of PET allows a longer layer-fusion window before solidification, although bed temperatures must be held higher to prevent amorphous-phase warpage.

    Drying, Melt Viscosity, and Hydrolytic Stability Boundary Conditions

    Moisture control is the first critical step. PET undergoes hydrolytic chain scission at melt temperatures if residual moisture exceeds 0.02 %, because water attacks ester linkages and reduces intrinsic viscosity. The resulting melt loses melt strength, producing surface defects and interlayer delamination. Atmospheric exposure of a cold spool at 23 °C/65 % RH can raise filament moisture to 0.2–0.3 % within several hours; at these levels, steam bubbles and audible popping at the nozzle are observed on production-scale printers. A desiccant dryer set to 120 °C for 4–6 h with a dew point below -40 °C is required before extrusion. Spools should be returned to sealed containers with desiccant or stored below 30 % RH after use. For continuous production, a dry-air hopper or filament cabinet with dew-point monitoring is preferred to open-ambient feeding.

    Melt-processing conditions for this grade are bounded by thermal degradation on the upper side and poor interlayer fusion on the lower side. Nozzle temperatures between 240 °C and 260 °C are typical, with an all-metal hot end rather than a PTFE-lined barrel because thermal barrier liners degrade rapidly above 230 °C. The melt volume rate near 15–20 cm³/10 min (ISO 1133-1) indicates a medium-viscosity melt; at a 0.4 mm nozzle and 50 mm/s print speed, the apparent shear rate is high enough that melt viscosity drops significantly due to shear thinning. Residence time should be kept below 10 min at 260 °C to avoid acetaldehyde formation and yellowing. Build plate temperature should be held at 70–80 °C for the first layer and maintained throughout printing; chamber air temperatures of 35–50 °C are beneficial for large cross sections but not always mandatory.

    Field experience on twin-screw filament lines with an L/D ratio of 32:1 indicates that PET compounds are sensitive to barrel zone profile; a feed throat temperature below 40 °C is necessary to prevent pellet bridging. The melt temperature at the die is commonly maintained 10–15 °C below nozzle temperature to avoid premature crystallization in the filament. Filament diameter ovality should be kept below 0.05 mm; a laser micrometer immediately before the extruder detects batch-to-batch variation that can cause over- or under-extrusion in constricted or oversized nozzle bores.

    Chemical exposure can be a decisive selection factor. Unfilled PET is specified for dry mechanical parts, jigs, and fixtures that contact diluted acids, aliphatic hydrocarbons, alcohols, and aqueous solutions at temperatures below 60 °C. The aromatic ester backbone provides lower permeability to many organic solvents than ABS, but the polymer remains susceptible to hydrolysis in hot water above 70 °C, strong alkaline media, and concentrated oxidizing acids. Published data for this specific configuration under continuous chemical contact are limited; validation against ISO 175 is required for each fluid, temperature, and exposure interval. In electrical service, printed PET can provide high volume resistivity, but surface resistivity and comparative tracking index must be measured on the printed part according to IEC 62631-3-1 and IEC 60112 because void content and surface topography differ from injection-molded specimens.

    Mechanical anisotropy is an additional constraint. Z-direction tensile strength in PET-class filament prints is typically 40–70 % of XY-direction strength because of incomplete interlayer polymer diffusion and residual void coalescence at road interfaces. Published data for this specific grade are limited, so production parts should be tested in the actual build orientation. For static design cases, the Z-direction modulus should be derated by 20–40 % relative to the bulk material datasheet unless interlayer fusion has been demonstrated by tensile testing according to ISO 527-1/-2. Computed tomography scans of unfilled PET prints have shown spherical voids at road corners when the extrusion multiplier is below 0.98; increasing the extrusion multiplier to 1.02 reduces void content but can raise edge bulging. This process conflict is encountered on direct-drive extruders operating above 250 °C and must be resolved by adjusting speed and layer height rather than by increasing nozzle temperature alone.

    When Crystallization Must Be Controlled Across a Heated Build Interface

    Interlayer adhesion and part flatness are governed by the crystallization rate of PET. Under slow cooling, unmodified PET crystallizes fastest near 170–180 °C; isothermal crystallization half-times can fall in the range of 2–5 min. In a material extrusion process, the newly deposited layer cools rapidly, leaving a metastable amorphous state if the deposited road quenches too quickly. A heated bed at 75 °C and a passively heated chamber at 35–50 °C slow the cooling rate enough to permit crystallite formation without causing large spherulitic growth. If the chamber temperature is too low, part edges curl because the semi-crystalline phase shrinks more than the amorphous phase; this is most evident in builds with XY dimensions above 150 mm or with tall vertical walls.

    First-layer conditions are critical. A 0.20 mm first layer, an extrusion multiplier of 1.05–1.10 on the first pass, and a speed reduction to 20 mm/s improve wet-out on PEI, unperforated glass, or glass-fiber reinforced PET build surfaces. The cooling fan should remain off or below 30 % for the first three layers to avoid freezing the polymer before adhesion develops. Thin-wall sections below 1.0 mm can be printed with lower bed temperature if warpage is not limiting, but layer adhesion may decline because the material cools below the glass transition before chain interdiffusion completes. For thick sections, the same parameter set can create internal voids if extrusion temperature is below 240 °C; the melt must fill the profile completely before the previous layer solidifies.

    Parts made from this grade may be annealed at 110–130 °C for 1–2 h to increase crystallinity and heat deflection temperature; however, anisotropic shrinkage can occur, so fixtures must constrain the part during oven residence. Published data for annealing-induced shrinkage of this specific configuration are limited. Annealing can also cause a shift in Z-axis dimensions of 0.5–1.5 % depending on infill degree and part thickness, so a printed compensation factor should be validated on production geometry before use.

    The operational boundary of Arnite ID 3040 should be assessed against continuous service temperature, chemical contact, and mechanical load. Unfilled PET is not a replacement for polyamide in sub-zero impact or for polycarbonate in load-bearing service above 100 °C. The grade is incompatible with prolonged hot water above 70 °C, strong aqueous alkalis, and oxidizing acids. Vapor smoothing with aggressive solvents is not recommended. Filament spools exposed to ambient moisture above 50 % RH for more than 4 h require re-drying before printing; batch ovality should be measured with a laser micrometer and maintained below half the nozzle diameter to avoid transient over- and under-extrusion.

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