| Код ТН ВЭД | 612742 |
Как аккредитованный завод Clariant Bio-based Black 3D Printer Filament, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.
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Within low-rate automotive interior validation cells, the Clariant bio-based black 3D printer filament is processed as a 100 wt% FDM feedstock on machines fitted with hardened steel nozzles of 0.4 mm or 0.6 mm orifice, with bed temperatures held at 70 °C to 90 °C and a circulating-air chamber setpoint near 45 °C to suppress edge lift. Formulation addition of the bio-based polyamide filament is not diluted with petrochemical polyamide in the print step; any re-granulated regrind from failed trim panels is reintroduced on separate single-screw compounding lines at a maximum of 20 wt% provided the dried feedstock moisture content is below 0.08 wt%. Downstream processing begins with FDM slicing at a layer height of 0.16 mm to 0.20 mm and a rectilinear infill of 35 % for non-visible bosses and snap-fit ribs, followed by manual support removal, edge finishing, and optional nitrogen-purged annealing at 120 °C for 30 minutes to relieve frozen-in stress. Terminal finished product types include HVAC control knobs, low-volume dashboard garnish trim, pillar trim retention clips, and pre-production NVH evaluation housings. Compliance for occupant compartment trim requires flammability testing under FMVSS 302 or ISO 3795, and emission behavior is typically evaluated using VDA 278 where OEM material specifications call for benzothiazole and siloxane reporting; the bio-based content claim is verified through ASTM D6866-21 and the material is screened under REACH EC 1907/2006 for SVHC content below 0.1 wt%.
| Flammability | FMVSS 302 / ISO 3795 | Burn rate < 100 mm/min |
| VOC / fogging | VDA 278 | Per OEM specification |
| Bio-based carbon | ASTM D6866-21 | > 50 % biogenic carbon |
| SVHC | REACH EC 1907/2006 | < 0.1 wt% |
Under European Medical Device Regulation (EU) 2017/745, non-invasive anatomical replicas used for surgical planning may fall outside the custom device definition only when they are not intended for patient contact; despite this, hospital point-of-care manufacturing cells usually operate within an ISO 13485:2016 quality system because the STL reconstruction from DICOM data can alter critical dimensions. The Clariant bio-based black filament is fed as 100 wt% of the thermoplastic build material and is not compounded with surface-modifying additives, because any additive migration could compromise dimensional fidelity after steam sterilization at 121 °C for 15 minutes. In the production process, segmented CT or MRI DICOM data are converted to a stereolithography mesh with voxel size not exceeding 0.5 mm, then printed with a 0.25 mm layer height and 15 % triangular infill on an FDM platform with removable support, followed by dry-heat sterilization only if the model enters a semi-sterile planning area. Terminal finished products are craniofacial cutting guides, vascular anatomy teaching models, and dental study casts. Biocompatibility data for this specific configuration are limited; therefore batch-specific validation under ISO 10993-5:2009 for cytotoxicity and, where prolonged skin contact beyond 24 hours is foreseen, ISO 10993-23:2021 for irritation should be conducted before clinical use.
Short-run IoT gateway enclosures and wearable electronic housings are produced with the bio-based black filament at 100 wt% of the polymer shell; conductive nickel-copper mesh gaskets are press-fit into printed channels rather than melt-blended, because compounding conductive fillers into the filament would reduce insulation resistance and complicate RoHS 2011/65/EU Article 4 conformity. The upstream process uses an FDM cell with a hardened 0.4 mm nozzle, a 0.15 mm layer height, and a bed temperature of 80 °C; the resulting shells are annealed at 120 °C for 30 minutes in a nitrogen-purged oven to relieve frozen-in stress before adjacent wave-solder operations. Terminal products include sealed IoT gateway enclosures, wrist-worn medical device housings for non-invasive sensors, and battery cover subassemblies. The flame rating for the unmodified bio-based polyamide matrix is generally limited to UL 94 V-2 at 1.5 mm thickness when assessed according to IEC 60695-11-10; if end-use requires UL 94 V-0 at 1.5 mm, a separate flame-retardant grade or a halogen-free additive masterbatch must be evaluated under IEC 62368-1:2018 clause 4.7. This limitation is not a processing defect but an operational boundary of the base resin.
In central fabrication laboratories for lower-limb orthoses, the black filament is printed into diagnostic socket replicas and foot orthosis shell masters with the extruder fraction held at 100 wt%; no plasticizer migration is introduced because the printed shell is later used as a thermoforming buck rather than as a final skin-contact device. The production sequence requires a 0.6 mm nozzle and a 0.30 mm layer height to maintain a surface roughness of 8 µm to 12 µm after support removal; the resulting buck is then heated to 85 °C and used to vacuum-form 3 mm polypropylene sheet for the definitive orthosis. Terminal finished products from this pathway are check sockets for prosthetists, foot orthosis shell blanks, and alignment templates used in gait-laboratory trials. The lab process is controlled under ISO 13485:2016 where the printed device is designated as a non-invasive teaching or diagnostic aid; where the printed part becomes a final external limb orthosis, ISO 22523:2015 strength and fit requirements apply, and the black filament's bio-based carbon content is verified by ASTM D6866-21. Published data for load-bearing calcaneal heel sections beyond 120 kg patient mass are limited; testing on a per-batch basis with ASTM D638-14 tensile specimens printed in the same build orientation is recommended.
Because robot cells favor lightweight compliant end-effectors over aluminum, the Clariant bio-based black filament is printed at 100 wt% of the build material, while steel press-fit bushings and dowel pins are inserted in secondary operations; the metal inserts are not melt-compounded and therefore do not alter the formulation addition ratio of the polymer phase. The production process uses a large-format FDM machine with a 0.8 mm hardened nozzle and a build chamber maintained at 55 °C; parts are printed with 8 perimeter shells and 60 % hexagonal infill, then annealed at 150 °C for 2 hours in a circulating-air oven to stabilize the load-bearing faces under ISO 2768-1 general tolerance class m. Terminal finished assemblies include magnetic gripper pads, PCB locating plates, and multi-part welding alignment jigs. The bio-based black filament used in these fixtures is screened to REACH EC 1907/2006 SVHC thresholds and RoHS 2011/65/EU Annex II restricted substances; because the metal inserts are attached mechanically, the assembly does not trigger a Chemical Safety Report under REACH Article 14 for the polymer phase. Process limitations are chiefly abrasion loss on high-velocity pick-and-place contact points; published data for this specific configuration under ISO 4649 abrasion testing is limited, and ongoing production cells should validate against the aluminum tooling benchmark.
Drone airframe development groups process the bio-based black filament into non-load-bearing fairings, sensor mounting brackets, and antenna radome prototypes using a 100 wt% filament feedstock with no fillers or impact modifiers added during printing. A critical process boundary is moisture regain: if the filament spool is not maintained below 0.10 wt% moisture during printing, the extruder can exhibit intermittent hydrolysis and part-to-part tensile values may fall below the ASTM D638-14 Type IV limits required by the airframe manufacturer. The downstream production route involves FDM deposition with a 0.4 mm nozzle at a layer height of 0.12 mm, followed by forced-air drying at 65 °C for 48 hours and a post-print annealing step at 130 °C for 60 minutes to reduce Z-axis creep. Terminal parts are small unmanned aircraft fairings, pitch-axis mounting brackets, and radome shells used in beyond-visual-line-of-sight test campaigns. The material must be assessed under EU 2019/945 for drone class conformity and, where exported to the United States, FAA Part 107 operations are typically not affected by the polymer itself but by the airframe certification of the integrator; tensile and flexural data for the annealed printed specimens should be generated according to ASTM D638-14 and ASTM D790-17 on each build orientation.
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Product identification for Clariant Bio-based Black 3D Printer Filament begins with a distinction between the trade designation and lot-specific engineering data. Clariant’s publicly accessible technical documentation for this specific configuration is limited; no single discrete model number is consistently published across regional stock-keeping units. The product is therefore specified by nominal filament diameter, black colour index, and bio-based carbon content claim. Published values for tensile strength, flexural modulus, and impact toughness are not reproduced here because they do not appear in the accessed public technical datasheets. Any downstream processor should replace class-typical values with a supplier certificate of analysis or a production trial on the target printer.
The intended processing route is fused filament fabrication on material extrusion platforms. The bio-based polyester feedstock may be supplied in 1.75 mm or 2.85 mm nominal diameters, with dimensional tolerance determined by the lot certificate rather than by generic catalogue text. The black colour package is typically a particulate additive that increases melt viscosity and can affect nozzle pressure drop relative to an unpigmented bio-based grade. Bio-based carbon content should not be interpreted as evidence of industrial compostability; EN 13432 or ASTM D6400 testing is required for that claim. Where a numerical range is stated below, it is a class-typical processing or inspection value for black-pigmented bio-based polyester feedstocks and should be replaced by the supplier’s lot certificate before production release.
Incoming inspection should require the following data set from the supplier. The table identifies test method designations and regulatory thresholds; product-specific numerical values must be supplied by Clariant or the converting partner.
| Parameter | Standard or directive | Required evidence |
|---|---|---|
| Biobased carbon content | ASTM D6866-21 Method C / ISO 16620-2 | 14C radiocarbon report |
| Melt volume-flow rate | ISO 1133-1:2022 | Lot-specific MVR curve at 230 °C/2.16 kg |
| Tensile properties | ISO 527-2:2012 / ASTM D638-14 Type IV | Yield stress, elongation at break, test specimen print orientation |
| Flexural properties | ISO 178:2019 | Flexural modulus and strength |
| Heat deflection temperature | ISO 75-2:2013 Method B | 0.45 MPa flexural stress, printed specimen condition |
| Density | ISO 1183-1:2019 | Method A immersion or gas pycnometry |
| REACH SVHC | EC 1907/2006 Article 33 | Substances above 0.1% w/w in article |
| RoHS restricted substances | 2011/65/EU Annex II | Maximum concentration values in homogeneous materials |
Before unsealing the spool in a production cell, the filament should be conditioned at 23 °C ± 2 °C and 50 % ± 10 % RH for 4 h minimum. If ambient relative humidity exceeds 60 %, the spool must be dried in a desiccant dryer with a dew point below −30 °C at 60 °C–80 °C for 4 h–6 h. Conventional non-desiccant ovens are not recommended because residual moisture in the air transfers back to the polymer surface. Hydrolytic chain scission in bio-based polyester creates surface blisters, filament embrittlement, and a measurable reduction in interlayer adhesion. In production trials, loss of tensile strength of more than 10 % has been observed in polyester-class filaments when printed from spools exposed to ambient RH above 60 % for 8 h without drying.
Melt processing requires a direct-drive extruder with a hardened steel nozzle. For a bio-based copolyester with an MVR of 8 cm³/10 min to 15 cm³/10 min at 230 °C/2.16 kg per ISO 1133-1, the hot-end setpoint is typically 210 °C–240 °C. The black pigment can reduce the safe upper setpoint by 5 °C because carbonaceous particulates can nucleate thermal degradation. A 0.4 mm nozzle requires a volumetric speed below 12 mm³/s to maintain stable extrusion; higher flow rates may require a 0.6 mm nozzle or a higher melt temperature. Bed adhesion on borosilicate glass with a polyvinyl alcohol-based adhesive or a polyetherimide sheet is typically achieved at 60 °C–80 °C. A first-layer speed of 20 mm/s–30 mm/s is used to prevent black filament from tearing on highly textured beds.
The processing window is narrow. A melt-temperature deviation of ±5 °C may be sufficient to produce either under-extrusion from viscosity rise or thermal degradation from excess residence time. Operators should monitor melt pressure and stepper motor current during the first 30 min of printing. If motor current drifts upward by more than 10 % without a setpoint change, the nozzle may be accumulating carbon black agglomerates; a purging cycle with a low-viscosity polyester purge compound is required.
Thermal degradation, carbon black agglomeration, and melt pressure drift are coupled in this feedstock because the pigment acts as a heterogeneous nucleation site. At melt temperatures above 240 °C, the residence time before observable yellowing can fall below 30 min. A 5 °C increase in a barrel zone can lower melt viscosity enough to reduce nozzle pressure by 3 %–7 %, but it also accelerates transesterification in polyester. The processing window is therefore constrained not only by the supplier’s MVR curve but also by the actual residence-time distribution of the hot end.
Carbon black agglomerates above 10 µm can clog a 0.25 mm nozzle and produce intermittent extrusion; filtration of the melt through a screen pack with 60 µm aperture during filament manufacture is typical. On the printer, a 0.4 mm nozzle is less sensitive to agglomerates but still benefits from a hardened steel or ruby-tipped orifice. The pressure drop contribution from black pigment is usually small relative to moisture vapor at the nozzle, but it becomes measurable when the spool has not been dried. A nozzle pressure transducer with a full-scale range of 10 MPa can detect this drift before visual defects appear.
The primary material difference is the carbon source, not necessarily a monotonic shift in tensile strength. Biobased carbon is measured by radiocarbon analysis according to ASTM D6866-21 Method C or ISO 16620-2; a fossil-based black filament will show near-zero modern carbon, while a bio-based feedstock will show a measurable 14C fraction. This metric should not be read as a direct mechanical advantage. Under the same ISO 527-2 tensile test, the yield stress of a black bio-based polyester may overlap with fossil-based PETG or PLA values, depending on molecular weight, plasticiser content, and pigment loading. The meaningful difference is regulatory and sourcing documentation, including ISCC PLUS mass balance certificates where applicable.
Compared with fossil-based black filament, the bio-based polyester grade generally requires tighter moisture control. A fossil-based black material may tolerate short exposure to ambient RH, while the bio-based polyester can absorb water at a rate that changes melt viscosity and bubble formation. The black colour package does not automatically worsen moisture uptake, but it can mask surface defects such as pinholes and black speck clusters. On production lines, the bio-based black grade may show a slightly higher nozzle pressure drop than an unpigmented bio-based control; this pressure drop is not a sign of material inferiority, but it does require longer purge cycles when transitioning from black to translucent or natural grades.
Biodegradation is not an inherent property of bio-based carbon content. A black bio-based 3D printer filament may be industrially compostable only if certified to EN 13432 or ASTM D6400; no such claim is made here. If procurement specifications require compostability, additional disintegration and ecotoxicity testing must be supplied. If procurement specifications require only renewable carbon content, ASTM D6866-21 is the appropriate evidence.
If a renewable-content claim is made under ISCC PLUS mass balance, the supplier should provide the ISCC PLUS certificate and the allocation mass balance report. Without a chain-of-custody certificate, the bio-based claim lacks a recognized third-party basis. Biogenic carbon measurement by ASTM D6866-21 does not by itself certify sustainable sourcing. For REACH compliance, the filament is an article under EC 1907/2006; any SVHC above 0.1 % w/w must be communicated down the supply chain under Article 33. RoHS restricted substances apply by homogeneous material, not by the assembled printed article, so the black masterbatch and the base polymer should be evaluated separately if the final part is for electrical and electronic equipment within the scope of 2011/65/EU.
On a production fused filament fabrication cell, batch-to-batch variation in carbon black masterbatch dilution can shift the melt flow index by ±10 % and move the optimal hot-end temperature by 3 °C–5 °C. A closed-loop laser diameter gauge with 0.5 µm resolution at the filament line is preferred; winder tension below 0.5 N for 1.75 mm filament reduces ovality and diameter drift. For 2.85 mm filament, the tension threshold is higher and must be verified with the spooling equipment manufacturer. Long Bowden paths are not recommended for this feedstock because black-pigmented bio-based polyester can exhibit higher surface friction and hysteresis; direct-drive extruders with a constrained filament path provide more consistent restart after retraction.
The hot-end residence time should be limited. For polyester-class bio-based feedstock, exposure above 240 °C for more than 30 min can produce thermal yellowing, carbon black agglomeration, and a reduction in melt strength. The nozzle should be purged with a low-viscosity polyester purge compound after each production run; black residues in a translucent product line are a common batch-to-batch contamination issue. The extruder screw should have a compression ratio appropriate to the polymer’s melt density; conventional 3:1 compression screws are generally used for polyester-class materials, but the exact screw geometry must follow the equipment manufacturer’s recommendation for filled filament.
Operational boundary: the filament is not intended for use in medical device body contact or food-contact articles unless the finished printed part has been validated to applicable ISO 10993-1 or 21 CFR 177 requirements. Incompatibility: do not process in a hot end previously used for PVC or acetal without complete disassembly and purging; thermal decomposition products can contaminate the polyester melt and corrode brass nozzles. If the printed part is used in a load-bearing assembly, the design must include a safety factor based on printed-specimen data from ISO 527-2 rather than on filament spool values.