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Clariant Natural Color Bio-based 3D Printer Filament

    • Название продукта: Clariant Natural Color Bio-based 3D Printer Filament
    • Сайт Factroy: Округ Юду, Ганьчжоу, Цзянси, Китай
    • Запрос цены: admin@ascent-chem.com
    • Производитель: Ascent Petrochem Holdings Co., Limited
    • Свяжитесь сейчас
    Спецификации
    Код ТН ВЭД 949425

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

    Упаковка и хранение
    Упаковка Supplied as a 1 kg vacuum-sealed spool in a recyclable cardboard box labeled Clariant Natural Color Bio-based 3D Printer Filament.
    Погрузка контейнера (20-футовый контейнер) 20' FCL containing palletized Clariant Natural Color Bio-based 3D Printer Filament, shrink-wrapped, strapped, and loaded under dry, ambient, non-hazardous conditions.
    Доставка Clariant Natural Color Bio-based 3D Printer Filament ships as a non-hazardous solid on spools, sealed in moisture-barrier bags with desiccant and boxed. Transport at ambient temperature; no special DOT, IATA, or IMDG requirements. Protect from heat, humidity, and direct sunlight; store dry. Keep spools secured to prevent unwinding during transit.
    Хранение Clariant Natural Color Bio-based 3D Printer Filament should be stored in a cool, dry, well-ventilated area away from direct sunlight, heat, sparks, and incompatible materials. Keep it in original sealed packaging or an airtight container with desiccant to prevent moisture absorption. Maintain room temperature, avoid UV exposure, and rotate stock. Follow manufacturer SDS and label instructions.
    Срок годности Typically 12 months if unopened, stored cool and dry, protected from moisture, heat, and UV; reseal after use.
    Применение Clariant Natural Color Bio-based 3D Printer Filament

    When patient-specific anatomical models are required outside a hospital cleanroom, the Clariant natural-color bio-based 3D printer filament is processed on a fused filament fabrication platform equipped with a 0.25 mm brass nozzle and a borosilicate glass bed set to 60 °C. The spool is pre-dried in a desiccant dryer at 45 °C for 4 h with a dew point below -40 °C, because PLA-rich bio-polyester filament hydrolyses at processing temperatures when moisture exceeds approximately 250 ppm. Build chamber relative humidity is kept below 30 % RH. Slicing parameters are fixed at 0.10 mm layer height, 40 mm/s print speed, and 3 perimeters. The natural- color base permits direct visual inspection of translucency variation that indicates insufficient interlayer fusion under 1000 lux inspection lighting. Post-printing, the surface is smoothed with 600-grit wet abrasive and cleaned with 70 % aqueous ethanol. Dimensional control is performed against ISO 2768-1 medium class for linear tolerances. Sterilisation is limited to hydrogen peroxide gas plasma at chamber temperatures not exceeding 55 °C; steam autoclave cycles under ISO 17665-1:2006 are excluded because the heat deflection temperature of unfilled PLA-rich natural grades under ASTM D648-18 Method B typically lies between 50 °C and 60 °C at 0.455 MPa. Published data for this specific Clariant grade under repeated sterilisation exposure is limited, so lot-specific validation is required before clinical use.

    How Does the Filament Perform in Dry Food Packaging Mockups Subject to Drop Testing?

    Drop testing of dry-food package prototypes printed from the Clariant natural-color bio-based filament is conducted under ASTM D5276-19 with a loaded carton mass of 2.0 kg ± 0.05 kg released from 1.2 m onto a steel plate. Impact resistance of printed side walls is governed by interlayer adhesion, not bulk polymer impact alone; therefore test specimens are printed in the same orientation as packaging walls. Tensile and flexural properties are measured on coupons prepared to ISO 527-2:2012 Type 1BA and ISO 178:2019 at 23 °C and 50 % RH after conditioning to ISO 291. Stacking strength is evaluated under ASTM D642-20 with a 100 mm/min crosshead speed until 10 % deformation. The filament is printed with a 0.6 mm brass nozzle, 0.20 mm layer height, 3 outer perimeters, and 25 % gyroid infill to reduce internal porosity. Internal corner radii are held at 0.25 mm minimum to limit stress concentration at layer interfaces. Direct food-contact use is not automatically granted by the bio-based designation. When food-contact approval is required, the processor must obtain an EU Commission Regulation (EU) No 10/2011 overall migration certificate and, for PLA-rich grades, verify FDA 21 CFR 177.1520 conditions of use. Published data for overall migration of this specific Clariant natural-color grade under 10 % ethanol at 40 °C for 10 days is limited; a third-party migration study is necessary before commercial packaging release.

    When Cabin Air Quality Standards Prohibit Styrene Emissions from ABS

    In automotive interior fixture development, styrene emissions from ABS mockups conflict with cabin air quality targets. Under VDA 277:2020, total VOC emissions from ABS pellets can exceed the 100 µgC/g target commonly referenced in OEM material specifications, and styrene monomer is restricted by GC-MS. The natural-color bio-based filament is evaluated as a substitute for non-heat-exposed interior mockups such as clip retainers, HVAC vane models, and trim alignment jigs. Printing is performed in a heated chamber at 30 °C to reduce edge lift, with a 0.4 mm brass nozzle and a 60 °C bed. The nozzle temperature must be set within a narrow processing window; if the grade is PLA-based, temperatures below 190 °C produce under-extrusion and above 230 °C cause molecular weight reduction and fuming. Drying temperature must not exceed 55 °C because spool core softening can cause filament deformation; below 40 °C requires drying beyond 8 h. Melt mass-flow rate under ISO 1133-1:2022 at 210 °C with 2.16 kg is used to confirm lot consistency. Bio-polyester feedstock batch-to-batch variation can shift melt viscosity enough to require a nozzle temperature trim of ± 5 °C to maintain the supplier’s stated melt index range. Fixture stiffness is measured by ISO 527-2:2012; published data for this exact natural-color bio-based grade is limited, so mechanical values from the supplier certificate must be compared against part requirements. Continuous service temperature should not exceed 50 °C; automotive cabin surfaces can reach 80 °C under solar load, making this material inappropriate for upper dashboard or decklid placements. Creep resistance under ISO 899-1:2017 at 40 °C and 10 MPa stress is required before load-bearing clips are approved.

    Consumer electronics assembly jigs printed from the Clariant natural-color bio-based filament are restricted to ambient-temperature operations in PCB placement, wire harness layout, and adhesive dispensing. The filament is not suitable for solder reflow pallet service because peak reflow temperatures above 245 °C exceed the heat deflection range of unfilled bio-polyester grades. Jig geometry is printed with a 0.4 mm brass nozzle, 0.16 mm layer height, 4 perimeters, and 40 % triangular infill to improve wear resistance. Dimensional stability is verified after conditioning to ISO 291 for 48 h at 23 °C and 50 % RH. Hole-to-hole positional accuracy is checked on a coordinate measuring machine with a tolerance of ± 0.25 mm over a 200 mm span; because polymer shrinkage is anisotropic, X and Y shrinkage compensations are applied in the slicer using values from the supplier technical data sheet. Surface cleaning with isopropanol is acceptable; acetone and methyl ethyl ketone cause solvent attack and must not be used. The natural color improves optical contrast against matte black PCB carriers under 1000 lux inspection lighting. Published data for high-cycle abrasion resistance of this specific Clariant bio-based filament is limited; for jig runs exceeding 500 placements per week, a wear pad insert or post-print polyurethane coating is recommended.

    PropertyTest StandardConditionDocumentation Required
    Bio-based carbon fractionASTM D6866-24 Method BAccelerator mass spectrometryThird-party certificate
    Tensile strength at yieldISO 527-2:2012 Type 1BA23 °C, 50 % RHSupplier lot report
    Flexural modulusISO 178:20192 mm/min, 23 °CSupplier lot report
    Melt mass-flow rateISO 1133-1:2022210 °C, 2.16 kg for PLA-rich gradesLot certificate
    Heat deflection temperatureASTM D648-18 Method B0.455 MPaSupplier lot report
    Moisture content after dryingKarl Fischer titration45 °C, 4 hIn-house log
    Food-contact migrationEU 10/2011, FDA 21 CFR 177.1520Simulant and time per intended useThird-party migration study

    Moisture-Induced Warpage in Architectural Study Models Stored Above 60% RH

    Architectural study models printed from the natural-color bio-based filament are typically large, thin-shell builds with internal honeycomb supports. Warpage during storage is driven by moisture uptake when ambient relative humidity exceeds 60 % RH. Filament spools are dried at 45 °C for 4 h before printing, and printed shells are sealed with a waterborne polyurethane coating if the model is intended for display in non-climate-controlled exhibition halls. The printing platform is a large-format FFF machine with a 0.8 mm brass nozzle, 0.30 mm layer height, and a vacuum bed set to 60 °C. Edge lift on parts longer than 100 mm is controlled by a polyvinyl acetate adhesive layer on the bed, with bed temperatures below 50 °C producing edge displacements above 0.5 mm. Atmospheric contamination and UV yellowing are evaluated by QUV exposure under ISO 4892-3:2016 Cycle 1. Published data for this exact Clariant natural-color grade under QUV is limited; however, natural PLA-rich bio-polyester without light stabiliser typically shows visible yellowing after approximately 96 h of exposure. For models required to retain dimensional registration across moving parts, accelerated conditioning at 30 °C and 85 % RH for 96 h followed by dimensional scanning is performed before fabrication of production facade prototypes.

    Evaluating Low-Energy Disperse Dye Uptake on Printed Fasteners

    Printed fasteners, buttons, and wearable connectors are produced from the natural-color bio-based filament because the absence of added pigments allows controlled shade matching during subsequent batch dyeing. Disperse dye exhaustion is carried out in a temperature-controlled bath at 90 °C for 30 min at a liquor ratio of 1:20; disperse dyes penetrate the amorphous regions of PLA-rich bio-polyester, while reactive dyes do not bond. Colour fastness to washing is tested under ISO 105-C06 A2S at 40 °C. Printed fasteners are annealed at 70 °C for 2 h in a circulating-air oven before dyeing to stabilize shrinkage that would otherwise distort hole spacing. The printing is performed with a 0.25 mm brass nozzle, 0.10 mm layer height, and 6 perimeters to minimise dye penetration variations caused by void channels. CIELAB colour values are measured under D65 illuminant with a 10° observer, and a Delta E tolerance is agreed between the dyehouse and the manufacturing site. Published data for the colour yield of this specific Clariant natural-color bio-based filament is limited; a pilot dye lot with a 1.0 kg printed-part mass is advised before bulk colour matching. The dyed parts are not suitable for continuous skin contact without additional biocompatibility testing under ISO 10993-5 and ISO 10993-10, because dye residues and processing aids may migrate.

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    Сертификация и соответствие требованиям
    Более подробное введение

    Clariant Natural Color Bio-based 3D Printer Filament is a fused filament fabrication feedstock in which the polymer phase is derived from renewable carbon sources and no synthetic colorant or carbon black has been added to the melt stream. The product designation does not include a separate numeric model identifier; traceability is tied to lot-specific certificates of analysis and the batch-compounded bio-based resin. The natural-color designation removes pigment-related melt filtration and nozzle abrasion variables, but it also leaves lot-to-lot optical variation dependent on feedstock origin, nucleating agent content, and residual catalyst residues. Typical presentation formats for this product class are spooled monofilaments of 1.75 mm or 2.85 mm nominal diameter, although published data for the exact spool geometry, net mass, and diameter tolerance of this Clariant configuration is limited and must be confirmed against the current commercial datasheet.

    Primary usage includes visual prototypes, low-load jigs, form-and-fit models, and components intended for downstream coloration. The product is not intended for medical implants, direct food contact, or high-voltage electrical insulation unless independently validated for those end uses under the relevant regulatory framework. In raw form, the material behaves as a hygroscopic thermoplastic polyester. Moisture uptake is a primary process variable because ester linkages undergo hydrolytic scission in the melt. Published data for bio-based polyester FFF feedstocks indicate that surface defects and interlayer adhesion losses become measurable when moisture exceeds 0.25 wt% as determined by ASTM D7191-18. A conservative class-level starting condition is therefore vacuum drying or desiccant drying at 60°C to 80°C for 4 h to 6 h with a dew point at or below -40°C. Product-specific moisture limits for this Clariant filament are not disclosed in the supplied identifier.

    What Drying and Print Parameter Bounds Are Documented?

    For unfilled bio-based polyester filaments in this category, the extrusion temperature window generally lies between 190°C and 220°C, with a bed temperature of 50°C to 60°C. The processing window is narrow because the upper bound is controlled by thermal degradation and the lower bound by incomplete interlayer fusion. At nozzle setpoints above 220°C, random chain scission and monomer reformation can generate volatile aldehydes and reduce molecular weight. A continuous printing stability window of roughly ±5°C is therefore observed in class-level processing studies, not an indefinite operating range. On Bowden-extruder machines, retraction distances of 3.0 mm to 5.0 mm at 40 mm/s to 60 mm/s and print speeds of 40 mm/s to 60 mm/s are used for class materials. Direct-drive systems require lower retraction distances, commonly 0.8 mm to 1.2 mm at 30 mm/s to 40 mm/s. These parameter sets are equipment-specific and should be verified by purge-and-print trials.

    Dryer selection influences molecular weight retention. Vacuum drying at 80°C for 4 h is more aggressive than desiccant drying and may be used for heavily exposed spools, but it can drive off low-molecular-weight additives and alter surface tack. Circulation ovens without desiccant are not recommended when ambient relative humidity exceeds 60% because polyester can re-adsorb moisture during heat-up. Dry spools should be transferred to a sealed holder with a desiccant bed and processed within 2 h of drying. The melt flow rate after drying should be checked against the supplier’s target using ISO 1133-1:2022 at 210°C with a 2.16 kg load if lot acceptance testing is performed.

    Hot-end control should include a calibrated resistance temperature detector and a silicone boot to reduce heat loss. When nozzle temperatures fluctuate by more than ±3°C, the melt viscosity changes enough to produce visible seam variation and inconsistent top surfaces. Retraction settings must be tuned after nozzle temperature changes because the molten plug length is temperature-dependent. The natural-color formulation may also require a lower nozzle temperature than dark-pigmented versions of the same polymer because pigment and carbon black alter heat absorption and wall slip. Operators should record actual nozzle temperature rather than setpoint when transferring parameters between machines.

    Table 1. Extruder parameter reference for class-level bio-based polyester FFF feedstocks.

    Extruder type Nozzle diameter Retraction distance Retraction speed Print speed
    Direct drive 0.4 mm 0.8–1.2 mm 30–40 mm/s 40–60 mm/s
    Bowden 0.4 mm 3.0–5.0 mm 40–60 mm/s 40–60 mm/s

    Published data for the exact Clariant natural-color bio-based configuration is limited; the table represents class-level ranges and must not be used as a product certificate.

    Compared with pigmented petrochemical FFF feedstocks, the absence of synthetic colorant in the Clariant natural-color bio-based product reduces 2 production issues: colorant-induced melt filtration pressure rise and abrasive nozzle wear from metal-oxide pigments. In long-run printing on 0.4 mm brass nozzles, carbon-black-filled PETG and ABS materials can exhibit bore diameter growth of 0.02 mm to 0.04 mm after 50 h to 100 h of cumulative extrusion. An unfilled natural-color formulation delays this wear, although the bio-based polymer may still contain silica-containing nucleants. Because published data for this specific Clariant configuration is limited, wear rate should be tracked with precision pin gages or optical profilometry.

    Rheologically, bio-based polyester filaments of this class exhibit shear-thinning behavior in the nozzle. Capillary rheometry at 200°C and apparent shear rates of 100 s-1 to 1000 s-1 typically yields apparent melt viscosities from 200 Pa·s to 600 Pa·s. These values are sufficient for extrusion through 0.4 mm brass or hardened steel nozzles without requiring a high-temperature all-metal hot end. At the upper processing limit, viscosity decreases sharply, but residence time should be kept below 15 min to limit thermo-oxidative molecular weight loss. Product-specific viscosity data for the Clariant natural-color configuration is not disclosed in the supplied identifier; established purge protocols should be used when changing from filled nylons or high-temperature polycarbonates.

    Table 2. Comparative class-level property matrix for bio-based polyester versus unfilled petrochemical ABS.

    Property Test method Bio-based polyester class Unfilled petrochemical ABS
    Bio-based carbon content ASTM D6866-21 90%–100% 0%
    Tensile strength ISO 527-2:2012 45–60 MPa 35–45 MPa
    Elongation at break ISO 527-2:2012 3%–6% 5%–15%
    HDT B ISO 75-2:2013 50–60°C 85–100°C
    Nozzle setpoint Process reference 190–220°C 230–250°C
    Bed setpoint Process reference 50–60°C 90–110°C

    The values in Table 2 are class-level literature ranges; the Clariant lot certificate provides the only product-specific acceptance values. Differences from other bio-based FFF products arise mainly from feedstock origin and additive package. Some bio-based polyamide filaments retain higher service temperatures, while polyhydroxyalkanoate filaments may exhibit faster biodegradation but narrower processing latitudes. The Clariant natural-color configuration occupies a pigment-free part of the portfolio, intended for applications where downstream colorant addition or optical clarity is more critical than high-temperature mechanical strength.

    Diameter Tolerance and Ovality Control in Fused Filament Fabrication

    Dimensional consistency determines volumetric flow stability in FFF. Class-level precision filaments are typically held to a diameter tolerance of ±0.05 mm and an ovality below 0.05 mm using three-axis laser micrometry. A positive diameter deviation of 0.05 mm on a nominal 1.75 mm filament increases cross-sectional area by approximately 5.8%, shifting the extrusion multiplier and causing localized over-extrusion if no compensation is applied. For the Clariant natural-color product, the supplier’s released diameter and ovality tolerance should be applied at receiving inspection, and incoming lots should be sampled at a minimum of 5 points per spool. In high-volume production, spool winding tension and moisture-related dimensional relaxation are 2 sources of batch-to-batch variance. Laser micrometer data from analogous bio-based polyester filaments show that tightly wound inner spool layers can develop compressive set, increasing local ovality after extended storage at elevated ambient temperature; this is a known failure mode in long-distance Bowden feed paths. Published data for this specific Clariant configuration is limited.

    Interlayer adhesion remains the limiting mechanical variable in FFF. Z-axis tensile strength is typically 40% to 60% of x-y strength for bio-based polyester class materials because the melt-solid interface does not reach full chain entanglement during rapid cooling. Higher nozzle temperatures within the stable window improve interlayer diffusion, but they reduce the safe residence time. Annealing at 80°C to 100°C for 30 min to 60 min can increase crystallinity and HDT in some PLA-based materials, but it also causes anisotropic shrinkage of 0.2% to 0.5% along the print axes. The Clariant natural-color product should be prototyped at the intended final part size before committing to post-process annealing because warpage corrections are geometry-specific.

    For build surface preparation, bio-based polyester filaments in this category are commonly processed on an unheated or 50°C to 60°C heated bed with a polymer film or a glass plate prepared with a compatible adhesion promoter. Polyethylene terephthalate films provide adequate adhesion for small footprints, while polyetherimide plate surfaces may require a release agent or lower bed temperature because excessive adhesion can peel the first layer. The use of a brim or raft is often necessary when the part footprint exceeds 100 mm in any axis due to low shrinkage and differential cooling. Product-specific adhesion-promoter compatibility for this Clariant filament should be tested before long runs because natural-color bio-based polyester can be sensitive to solvents used in adhesion slurry.

    When Natural-Color Bio-Based Polyester Is Substituted for Nylon or PC in Structural Prototypes

    Substitution of this filament for polyamide or polycarbonate in load-bearing or thermally exposed prototypes requires attention to heat deflection temperature and interlayer anisotropy. Under ISO 75-2:2013 method B, bio-based polyester class materials commonly exhibit HDT B in the range of 50°C to 60°C, whereas polyamide and polycarbonate retain modulus at service temperatures above 100°C. Continuous exposure above the HDT B should be excluded unless the component is externally cooled or shielded. Tensile testing under ASTM D638-14 also shows significant print-orientation anisotropy in FFF parts; z-axis tensile strength is typically 40% to 60% of x-y values for class materials. The product is therefore suited to low-load fixtures, form-and-fit prototypes, and non-structural housings rather than thermally stressed brackets. Chemical exposure must also be screened: hot alkaline solutions and amine-based adhesion promoters can attack bio-based polyester backbones and cause premature chain scission. Combination with amine-containing surface treatments or hot aqueous alkali cleaning stages should be avoided.

    Regulatory Compliance and Bio-Based Carbon Verification

    For a product of this class, biogenic carbon content is measured by ASTM D6866-21 or EN 16640:2017. Class-level values typically fall between 90% and 100% of total organic carbon; the Clariant-specific value must appear on the lot certificate and must not be inferred from the product name alone. RoHS evaluations should confirm that homogeneous-material concentrations of lead, cadmium, mercury, hexavalent chromium, polybrominated biphenyls, and polybrominated diphenyl ethers do not exceed the limits in Directive 2011/65/EU Annex II. REACH registration obligations for the polymer and any processing aids are supply-chain specific. No food-contact claim is implied unless the supplier provides a written declaration under the applicable national or regional framework. During heated processing above 220°C, local exhaust ventilation should be maintained because low levels of aldehydes and lactide may be released; workplace monitoring under ISO 16000-6 or local occupational exposure limits is the appropriate verification route. Documentation should include lot number, date of drying, measured diameter, and printer parameters; this supports traceability in ISO 9001:2015 environments.

    Sealed spools should be kept below 30°C and below 60% relative humidity. After opening, desiccant storage is required because bio-based polyester can re-adsorb atmospheric moisture within 24 h in a humid environment. Long-term storage above 35°C may accelerate physical aging and embrittlement. The product should not be stored in direct sunlight or near ozone-generating equipment.

    Support material selection should be tested with the natural-color base polymer. Polysaccharide support filaments and breakaway supports typically adhere adequately, while some water-soluble polyvinyl alcohol supports may require higher bed temperature and careful drying because moisture from the support can plasticize the bio-based polyester interface. Published data for this specific Clariant configuration is limited, so a printed peel test on the target geometry is the appropriate qualification method.

    In continuous manufacturing environments, batch-to-batch feedstock variation exerts more influence than formulation data sheets alone. For bio-based polyester FFF feedstocks, lot-to-lot melt flow rate shifts of 2 g/10 min to 5 g/10 min are observed when renewable monomers are sourced from different crop cycles; that variation alters pressure drop in a 0.4 mm nozzle and can require extrusion multiplier adjustments of 2% to 5%. In-line dimensional scanning, moisture analysis, and periodic tensile bar printing under ASTM D638-14 are therefore required for robust production qualification. Pressurized drying systems with nitrogen purge are preferred over ambient-air holding at relative humidity above 60%. End-use qualification lots should be tested for interlayer adhesion and HDT before transfer to production.

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