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Clariant Natural Color Polyethylene Terephthalate Glycol 3D Printer Filament

    • Название продукта: Clariant Natural Color Polyethylene Terephthalate Glycol 3D Printer Filament
    • 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 661334

    Как аккредитованный завод Clariant Natural Color Polyethylene Terephthalate Glycol 3D Printer Filament, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.

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    Применение Clariant натурального цвета полиэтилен терефталат гликол 3D принтер нити

    In a low-volume medical device development cell, natural-color glycol-modified polyethylene terephthalate filament is converted into anatomical reference models and surgical training fixtures derived from segmented CT or CBCT DICOM data. The unfilled resin avoids colorant-related surface energy shifts that can interfere with silicone overmolding and adhesive bonding during device mockup assembly. Pre-drying at 65°C for 4–6 h to a residual moisture content below 0.03 wt% is documented as the primary line-control point; hydrolysis at extrusion temperatures above 240°C produces splay and localized embrittlement that cannot be corrected downstream. On a commercial-grade fused filament fabrication cell equipped with a 0.4 mm hardened nozzle, a layer height of 0.12–0.16 mm and a linear print speed of 30–40 mm/s are used for cortical bone segment reproductions where z-axis stair-step artifacts must remain below the tolerance of the surgeon-training evaluation rubric. Bed temperature is held at 75°C on textured PEI, and a passive enclosure reduces ambient draft-driven curl at part edges. Dimensional verification is performed against the original DICOM model using a contact surface scanner with a registration tolerance of ±0.25 mm; published data for z-axis accuracy of this specific Clariant natural-color product is limited, and each print cell must generate a calibration artifact before patient-specific geometry is released. Under ISO 13485:2016 documentation controls, these models are classified as non-patient-contacting training and planning aids, not as medical devices under EU MDR 2017/745. When the model is used in a surgical simulation with prolonged skin contact, the printed part is sealed with a biocompatible conformal coating and subjected to cytotoxicity screening under ISO 10993-5:2009 at the responsible site. Terminal finished goods in this segment are rigid mandibular and orbital floor reconstruction practice models, thermoformed splint trimming bases, and low-fidelity vascular access trainers where translucency is exploited to visualize internal channel routing.

    What Limits Dimensional Stability in Fluid-Handling Prototypes?

    When unfilled PETG is printed as a pump casing mockup or a manifold for aqueous reagent distribution, the dominant failure mode is not bulk tensile yield but anisotropic shrinkage induced by internal stress gradients between perimeters and infill. The onset of distortion is measurable after printing when parts are removed from a heated bed before the substrate temperature has fallen below 50°C; operators on large-format machines report warping values of more than 1 mm across a 300 mm unsupported flange if the part is released immediately. To suppress this, the bed is ramped down at 5°C/min from 75°C to 30°C before release, and the part is left constrained by vacuum-formed hold-down clamps during cooling. For pressure-containing transparent test cells, the extrusion temperature is set at 235±5°C because excursions above 250°C accelerate chain scission and increase the concentration of low-molecular-weight species that can migrate into circulating buffer solutions. The melt volume-flow rate of PETG extrusion grades tested under ISO 1133-1:2022 at 250°C with a 2.16 kg piston load commonly lies between 8 cm³/10 min and 15 cm³/10 min; this specific natural-color filament may fall within a narrower band, and lot-to-lot MVR drift should be checked because it alters pressure advance settings on direct-drive extruders. Post-process annealing is performed at 60°C for 2 h under nitrogen or in a convection oven with the part fixtured on a granite surface plate; free-state annealing causes non-uniform relaxation and saddle-shaped distortion. Chemical exposure trials under ASTM D543-20 are recommended for each fluid formulation, with mass change logged at 24 h, 7 days, and 28 days. Documented incompatibilities include methyl ethyl ketone, methylene chloride, ethyl acetate, and strong alkalis at elevated temperature; continuous exposure to 10% sodium hydroxide at 40°C can produce environmental stress cracking at printed layer interfaces within 72 h. The terminal deliverables are clear flow-visualization manifolds, eductor housings, and reagent distribution blocks used in pilot-scale water treatment evaluations.

    Low-Volume Injection Molding Workholding and Nesting Fixtures

    Injection molding plants with short-run production cells replace aluminum soft jaws with printed PETG nesting fixtures when the clamping force per part is below 3 kN and the operational temperature at the tool interface does not exceed 50°C. The unfilled filament is selected over reinforced nylons because its lower shrinkage and natural translucency permit vision-system confirmation of part presence through the fixture wall. For a fixture body, a 0.6 mm brass nozzle is operated at 245–250°C with a layer height of 0.3 mm, three perimeter walls, and a triangular infill density of 55–65%. Infill below 45% creates localized compliance that degrades coordinate measuring machine repeatability, while solid infill increases print time without proportional gain in short-cycle stiffness. Bed adhesion is maintained on a polyetherimide sheet at 78°C; the sheet is scuff-sanded with 600-grit abrasive to prevent over-adhesion that can delaminate glass-fiber-filled PEI when fixtures are removed. Tensile and flexural response are verified on each material lot under ASTM D638-14 and ASTM D790-17 using printed specimens annealed at 60°C for 90 min. Impact resistance is characterized by ASTM D256-23 notched Izod; unfilled PETG typically exhibits notched Izod values in the 7–10 kJ/m² range, but published data for this specific Clariant formulation is limited and should not be assumed for structural safety calculations. Mating surfaces are post-machined with a single-flute end mill at 12,000 rpm to remove the wavy as-printed surface, then inspected to ISO 21920-2:2021 roughness parameters before release to production. Terminal components include end-of-arm gripper fingers for sprue pickers, press-side assembly nests, and CMM staging plates that are re-qualified every 250 cycles for dimensional drift.

    When Optical Clarity Drives Packaging Ergonomics Validation

    For a bottle preform handle repositioning study or a cap closure finger-access mockup, natural-color PETG is printed as a hollow shell with wall thicknesses between 1.2 mm and 2.0 mm and then clear-coated to fill interlayer grooves. Uncoated FDM sidewalls scatter light at layer interfaces; visible light transmittance through a 2 mm printed wall may fall below 60% even though the base resin sheet under ASTM D1003-21 typically exceeds 85%. The design target for backlit evaluation of fill-level visibility is therefore a surface roughness after coating of Ra < 0.8 µm on external faces, measured by a stylus profilometer. In this application the extrusion multiplier is raised to 1.02–1.05 to reduce void volume between adjacent roads, and the nozzle temperature is held at 240°C to promote interlayer diffusion. A heated chamber at 45°C further slows quench-induced amorphous density gradients that generate hazy boundaries. Compliance for packages intended for repeated contact with non-fatty, aqueous, or acidic foods is evaluated under the resin listing in FDA 21 CFR 177.1315 and under EU Regulation (EU) No 10/2011, with migration testing according to EN 1186-1:2002; however, as-printed FDM surfaces are porous and are not considered cleanable food-contact surfaces without a continuous food-grade barrier coating. Photoelastic stress mapping under ASTM D4093-14 is used to locate residual stress concentrations in snap-fit geometries before drop testing; regions exceeding 2 fringe orders are redesigned with a larger root radius. Terminal finished goods are bottle ergonomics mockups, dosing cup fitment trials, and child-resistant closure torque fixtures where the unpigmented wall permits direct observation of engagement features.

    Dental laboratory workflows that move from intraoral scan data to physical arch models use unfilled PETG filament when the printed stone replacement must remain dimensionally stable in wet grinding and disinfectant wipe-down cycles. The copolymer is less prone to warp than amorphous PLA and does not require the ventilation controls needed for ABS, but its surface hardness is lower than die stone; marginal accuracy assessments must account for layer-driven scalloping. For a full-arch model, a 0.4 mm nozzle with a 0.12 mm layer height and extrusion temperature of 230°C is standard; the bed is set to 70°C and the printing chamber is held at 35–40°C to reduce arch distortion during overnight builds. Infill is set to 100% with a rectilinear pattern because sparse infill transmits local deformation into the occlusal surface during repeated seating of thermoformed appliances. The printed arch is not subjected to temperatures above 60°C during disinfection because the heat deflection temperature of unfilled PETG tested under ISO 75-2:2013 method A at 1.8 MPa is often in the 65–72°C band; published data for this specific natural-color product is limited, but lot-specific HDT should be verified before forced-air drying cabinets are used. Dimensional inspection follows the same target as stone models, with a reference sphere spacing error not exceeding ±0.2 mm across the arch. Chemical compatibility for disinfection includes quaternary ammonium compounds and 70% isopropanol wipes, but prolonged immersion in alcohol-based cleaners can accelerate environmental stress cracking at the printed layer interfaces. Terminal goods in this segment are diagnostic cast substitutes, aligner trim guides, bracket-positioning templates for orthodontic training, and implant-planning verification models where the natural translucency allows the clinician to correlate the planned osteotomy with the printed bone surface.

    Wet-Line Fixtures Demand Ketone-Free Solvent Protocols

    On a wet bench used for dilute hydrochloric acid neutralization, methanol rinse steps, and sodium hypochlorite wipe-downs, unfilled PETG fixtures are installed after the solvent cabinet is audited to ensure that acetone, methyl ethyl ketone, ethyl acetate, tetrahydrofuran, and methylene chloride are stored outside the immediate work zone. A single accidental exposure to methylene chloride will craze and delaminate the fixture within minutes, with failure propagating along perimeter boundaries because those interfaces contain the highest residual stress. For chemical immersion brackets and pH probe stands, the parts are printed with 100% infill, four perimeters, and no top-layer ironing because ironing creates a densified skin that can seal in solvent molecules and later cause blistering. The extrusion temperature is set at 235°C and the bed at 75°C; after printing, the fixture is annealed at 60°C for 2 h while bolted to a flat aluminum plate to reduce stress concentration at mounting holes. Chemical resistance is evaluated under ASTM D543-20 using end-use fluids at service temperature; weight change, dimensional change, tensile property retention, and visual stress cracking are documented at 24 h and 168 h intervals. PETG generally withstands dilute mineral acids, neutral salt solutions, aliphatic hydrocarbons, and short-term methanol contact, but it is not specified for concentrated oxidizing acids or chlorinated solvents. Threaded brass inserts are installed with thermal insertion equipment set below 230°C because overheated insertion tips degrade the polymer and reduce pull-out force. Terminal deliverables include pH electrode holders, burette clamps, drain pan brackets, and labeling jigs that are replaced after 1,000 h of wet-line exposure or upon visual onset of stress whitening, whichever occurs first.

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    Clariant Natural Color Polyethylene Terephthalate Glycol 3D Printer Filament is an unfilled glycol-modified polyethylene terephthalate copolymer supplied as round monofilament. The product is identified by its polymer chemistry—poly(ethylene terephthalate-co-1,4-cyclohexanedimethanol terephthalate)—rather than by a single universal article number across all distribution regions. Where a manufacturer-specific item code is required, the procurement specification should list “PETG natural” as the material descriptor together with diameter and spool mass. The natural-color configuration contains no carbon black, titanium dioxide, or organic colorant in the melt stream, so the extruded filament retains the intrinsic translucency of the copolymer. Regional packaging for this product class commonly includes 1.75 mm and 2.85 mm diameters, a diameter tolerance of ±0.05 mm, a roundness deviation of ≤0.03 mm, and net spool masses of 750 g or 1 kg. Because colorant carriers can alter melt flow and crystallization nucleation, the unpigmented grade is often used as a process-qualification baseline for downstream filament extrusion and printability trials. Lot-specific dimensions, moisture content, and melt flow are controlled by the certificate of analysis; published data for the exact Clariant natural-color configuration is limited, and the following technical discussion uses unfilled PETG copolyester data that must be verified against the lot-specific document.

    What Is the Role of Cyclohexanedimethanol in Suppressing PET Crystallization?

    The copolymer contains 1,4-cyclohexanedimethanol units that replace a portion of ethylene glycol. The cycloaliphatic ring disrupts chain packing and reduces the rate of spherulitic crystallization that otherwise embrittles polyethylene terephthalate during slow cooling from the melt. Differential scanning calorimetry of unfilled PETG in this class typically shows a glass transition temperature near 78–80 °C and no sharp melting endotherm, whereas a semi-crystalline PET filament may exhibit a peak melting temperature near 245–260 °C. The result is an amorphous natural-color filament that can be printed with lower volumetric shrinkage than semi-crystalline PET and with a wider processing window than unmodified PET. The natural color is not merely aesthetic: because no pigment particles are present, the solidification front does not encounter nucleating surfaces that can trigger local crystallinity and haze. However, the absence of pigment also removes a source of melt stiffness; unpigmented PETG may string more readily than pigmented grades at the same nozzle temperature. For applications where translucency is secondary, a pigmented PETG can be selected to alter the flow behavior, but that changes the comparison basis against this natural-color product.

    In fused filament fabrication, the material is processed at a nozzle setpoint of 230–250 °C and a bed setpoint of 70–80 °C. The melt volume rate of unfilled PETG in this product class is typically 8–15 cm³/10 min at 250 °C under 2.16 kg load per ISO 1133-1:2022, but the actual melt temperature inside a hot end may differ from the setpoint by ±5 °C depending on thermistor calibration and heater block geometry. This offset is operationally significant because the processing window is narrow: below 230 °C, melt viscosity rises enough to reduce interlayer diffusion and produce delamination; above 255 °C, the natural-color melt may generate acetaldehyde and shift from water-white to yellow if the residence time exceeds 20–30 min. The result is a practical processing window of ±5 °C around the optimal setpoint on many bench-scale printers. For 1.75 mm filament, a direct-drive extruder typically uses retraction of 1.5–3.0 mm at 30–40 mm/s, while a Bowden feed path may require 4–6 mm at 25–35 mm/s. Part-cooling fan speed is held between 20% and 50% after the first layer; higher fan speeds can freeze the strand surface before interlayer welding is complete, lowering Z-axis tensile strength. Layer height between 0.10 mm and 0.20 mm and print speed between 40 mm/s and 80 mm/s are common for unfilled 1.75 mm PETG, but the acceptable range depends on hot-end heat capacity and nozzle orifice diameter. A 0.4 mm brass nozzle works for short runs; a hardened steel nozzle may require a 5–10 °C higher setpoint due to lower thermal conductivity. With a 0.25 mm nozzle, the extended shear stress can generate local melt temperatures above the setpoint, so the practical speed ceiling drops to 30–50 mm/s on unvented hot ends. Batch-to-batch variance in melt flow rate of unfilled PETG can be ±1.5 cm³/10 min; this matters when reproducing identical tool paths across spools. If a new spool shows stringing at the previously validated retraction settings, the first corrective action is to dry the filament and verify the actual hot-end temperature with an external probe. On a production-scale twin-screw extrusion line with L/D 40:1, the transition from pigmented to natural-color PETG can shift the melt-pressure reading at the die by 5–10% because pigment particles alter wall slip and shear heating. Filament producers compensate by adjusting barrel zones 2–4 rather than by changing the die. In printing, this upstream variance may appear as spool-to-spool differences in die swell and stringing. Published data for this specific Clariant configuration is limited; therefore, the values given here are not a substitute for a printer-specific process qualification.

    If a Moisture-Laden Spool Is Loaded Directly into a Bowden Extruder, Hydrolytic Degradation Can Begin Before the Melt Leaves the Nozzle

    Unfilled PETG absorbs enough atmospheric moisture to generate extrudate voids when the moisture content exceeds 0.04 wt%. Pre-drying at 65 °C for 4–6 h in a desiccant dryer with a dew point below −30 °C reduces moisture to ≤0.02 wt% as determined by ISO 15512. In a Bowden system, the long feed path delays the escape of water vapor and increases the probability of back-pressure fluctuations at the melt zone. Hydrolysis cleaves ester linkages, lowering molecular weight and reducing interlayer fracture resistance even when visible bubbles are absent. The failure mode can be non-obvious: a wet spool may print with acceptable visual quality but show a measurable drop in Z-axis tensile strength. Storage above 60% relative humidity without a sealed container or desiccant defeats the drying intervention. If a spool has been exposed to ambient air for more than 24 h at 50–60% RH, re-drying is required before a critical print. A hopper dryer with a dew point above −20 °C may leave the filament at 0.05 wt% moisture, which is outside the recommended envelope. Do not use a kitchen oven without closed-loop temperature control; local radiant over-temperature can deform the spool core or fuse adjacent strand turns.

    Differences from other unfilled filament classes are summarized below. The values are representative ranges for natural-color PETG, general-purpose PLA, and general-purpose ABS; they are not lot-specific certificates for the Clariant product.

    PropertyTest method / conditionNatural-color PETGPLAABS
    DensityISO 1183-11.27 g/cm³1.24 g/cm³1.04 g/cm³
    Tensile yield strengthISO 527-245–50 MPa55–65 MPa40–45 MPa
    Tensile modulusISO 527-21800–2100 MPa3000–3500 MPa2100–2400 MPa
    Elongation at breakISO 527-215–25%3–8%10–20%
    Flexural modulusISO 1781500–1900 MPa2800–3300 MPa1800–2200 MPa
    Charpy notched impactISO 179-1/1eA8–12 kJ/m²2–4 kJ/m²15–20 kJ/m²
    Heat deflection temperatureISO 75-2/B, 0.455 MPa68–72 °C50–55 °C95–100 °C
    Vicat softening temperatureISO 306/A5080–85 °C60–65 °C100–105 °C
    Typical heated-bed temperatureOpen-frame fused filament fabrication70–80 °C20–60 °C90–110 °C
    Printed bar deviation from CADMethod-dependent, printed bar0.2–0.5%0.2–0.4%0.7–1.0%

    Compared with PLA, natural-color PETG has lower tensile yield strength but higher elongation at break and a higher heat deflection temperature. Compared with ABS, PETG has lower heat deflection temperature but can be printed at lower bed temperature and without styrene odor. The absence of styrene and the lower printed-bar deviation are primary reasons PETG is selected over ABS for open-frame printers. Compared with semi-crystalline PET, the glycol comonomer prevents the rapid crystallization that can cause warpage and interlayer opacity in PET printing.

    Print-chamber Ventilation, Bed Adhesion, and Fan-speed Conflicts

    An enclosed chamber is not mandatory for natural-color PETG. When chamber ambient temperature rises above 40 °C with the bed at 80 °C, thin vertical features may soften, and heat creep in an inadequately cooled hot-end throat can cause filament swelling and intermittent feed. A chamber temperature of 30–40 °C is usually sufficient for stress relief in structural prints. The part-cooling fan should not be disabled entirely for bridging: a fan speed of 20–30% after layer 2 reduces curl while preserving interlayer diffusion. On a glass bed coated with PVP, adhesion may be excessive; a release layer of water-soluble adhesive is recommended because PETG can pull glass chips from the build plate if the bed is not cooled to below 45 °C before part removal. On textured PEI, bed temperatures of 70–80 °C are sufficient; on bare glass, the upper end of the bed range is used with an adhesive interface. Spool-to-spool variation in melt flow can require a 5 °C bed adjustment when the fan speed remains constant.

    Application contexts include transparent functional prototypes printed on open-frame fused filament fabrication machines, where the as-built material is expected to retain a tensile yield strength of 45–50 MPa and elongation at break of 15–25% under ISO 527-2. Electronics assembly fixtures and jigs are specified where the heat deflection temperature of 68–72 °C at 0.455 MPa under ISO 75-2/B defines the upper continuous-use boundary. Snap-fit enclosures require a minimum elongation at break above 10%; natural-color PETG typically satisfies this condition while PLA may not. The natural-color grade is also used for process qualification because the absence of colorants removes pigment-related nucleation and melt flow shifts. It is not an optical substitute for injection-molded PETG or polycarbonate; printed layer lines scatter light, and as-built haze is higher than a polished transparent molding. The material should not be specified for load-bearing food-contact articles or implant housings without written regulatory-grade evidence. For living-hinge applications, PETG is not equivalent to polypropylene; repeated flexing at a sharp notch can initiate stress cracking, especially when the print direction places layer boundaries perpendicular to the hinge axis.

    Natural-Color PETG Does Not Automatically Inherit Food-Contact Status from Generic PET

    The absence of carbon black or organic colorant is not proof of food-contact compliance. General-purpose unfilled PETG may contain stabilizers, catalysts, or process aids that are not evaluated under FDA 21 CFR 177.1630 or EU Regulation (EU) No 10/2011. For industrial use, documentation generally follows REACH Regulation (EC) No 1907/2006, Article 33 SVHC communication, and Directive 2011/65/EU as amended by (EU) 2015/863. The table below lists the usual compliance framework for general-purpose unfilled PETG filament; a lot-specific safety data sheet and certificate of conformance remain the controlling documents.

    Compliance areaStandards / methodsTypical status for unfilled natural PETG
    RoHS restricted substancesIEC 62321-5:2013, IEC 62321-8:2017Below homogeneous-material limits for Pb, Hg, Cd, Cr6+, PBB, PBDE, DEHP, BBP, DBP, DIBP; verify lot
    REACH SVHCEU 1907/2006, Article 33No SVHC above 0.1 wt% in typical safety data sheet; lot-specific declaration required
    Chemical inventoryREACH, TSCA, DSLPolymer may be listed; confirm regional SKU and monomer status
    Food contactFDA 21 CFR 177.1630, EU 10/2011Not automatically compliant; grade-specific written evidence required

    The operational envelope is defined by moisture, melt temperature, and bed temperature. Avoid blending the natural-color filament with amine-based colorants or additives not formulated for copolyesters because amine-functional species can accelerate ester cleavage at processing temperatures. If a print job is paused with the hot end held above 250 °C for more than 30 min, purge 20–30 mm of filament before resuming to remove heat-affected material. Natural-color PETG may adhere to polycarbonate build plates and can cause surface damage if part removal is forced before the bed cools to 45 °C. For bonded assemblies, solvent welding with methyl ethyl ketone or dichloromethane may be possible on annealed surfaces, but tensile shear data for this specific Clariant configuration is limited. When documented tensile impact, Charpy notched impact, or UV weathering performance is required, request a lot-specific external test report; generic PETG datasheets do not cover every printed geometry. The product should not be used in continuous service above the heat deflection temperature of 68–72 °C under 0.455 MPa load without a mechanical support strategy.

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