| Код ТН ВЭД | 852596 |
Как аккредитованный завод Clariant Bio-based Color 3D Printer Filament, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.
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For the Clariant Bio-based Colored 3D Printer Filament, moisture uptake in the polyester-based matrix proceeds through bulk hydrolysis when the spool is exposed to relative humidity above 60%. Spools are therefore dried in a desiccant dryer at 60°C for 4 h and held at a dew point below -30°C before printing. The material is processed through a 0.4 mm hardened steel nozzle at 210°C, with a borosilicate glass bed set to 55°C and a first layer height of 0.16 mm. Published data for this specific colored bio-based formulation are limited; the intended medical use is restricted to anatomical models, not implantable or tissue-contact devices. Cytotoxicity testing under ISO 10993-5:2009 and surface-contact classification under ISO 10993-1:2018 are used only for internal material screening because printed parts are not supplied sterile. Tensile qualification specimens printed with 0.2 mm layer height and 100% rectilinear infill are tested according to ASTM D638-14 Type I in the X-Y orientation. Colorant thermal stability at the nozzle requires an all-metal hot end and a residence time below 15 min; idle periods above this limit are managed by purging with uncolored feedstock. Models derived from CT scans are hollowed to 3 mm wall thickness, filled with a 20% gyroid infill, and segmented into build volumes below 250 mm in Z height. Sterilization by gamma irradiation or autoclave is not recommended because autoclave cycles at 121°C or 134°C exceed the glass transition range of a PLA-based matrix, which is typically 55–60°C when measured by differential scanning calorimetry under ISO 11357-2:2020. Low-temperature hydrogen peroxide gas plasma at 45°C has been used for handling models in clinical teaching, but compatibility with the specific masterbatch has not been fully validated.
Rigid packaging prototypes such as dispensing closures, compact cases, and single-use bottle preforms require snap-fit clearances of 0.05–0.10 mm. The filament is printed at 215°C nozzle temperature and 60°C bed temperature, with the part cooling fan set to 80% after layer 5. Shrinkage measured on printed plaques conditioned for 48 h at 23°C and 50% relative humidity under ISO 291 is typically 0.3–0.7% in the X-Y plane and 0.8–1.2% in the Z axis; the slicer scale factor is set at 100.8–101.2% in X, Y, and Z to compensate. Spiralized vase mode at 0.8 mm extrusion width and 0.25 mm layer height reduces seam-induced leak paths for non-pressurized display packaging. Biobased carbon content is verified using ASTM D6866-22 Method B; typical PLA-based feedstocks report 95% biobased carbon, but the exact carbon-14 value for the colored product must be obtained from the supplier because inorganic pigments and masterbatch carriers can shift the ratio. Compostability claims must satisfy EN 13432, requiring 90% biodegradation within 180 days under industrial composting and 12 weeks disintegration; printed prototypes are not certified to this standard unless the full pigmented formulation is tested. Food-contact evaluation is not performed on the printed prototypes because FDM surfaces are porous and no validated cleaning protocol exists for EU 10/2011 or FDA 21 CFR §177.1520. Closure torque testing is limited to fit and feel studies; functional child-resistant certifications require ISO 8317:2015 and are performed only on injection-molded production resins.
Custom low-load orthotic shells are printed from the bio-based colored filament in 0.12 mm layer increments with alternating 0° and 90° raster orientations. The bed is maintained at 55°C, the nozzle at 205°C, and the part cooling fan is reduced to 60% after the first 0.3 mm of vertical build to improve interlayer fusion. Patient limb scans are offset by 2.5 mm and printed without soluble supports, using a wall thickness above 3.0 mm and a 20% cubic infill. Published data for this specific colored formulation in loaded orthopedic applications are limited; the material is therefore restricted to wrist-hand orthoses, finger immobilization splints, and toe protectors, not high-load lower-limb devices. Tensile properties are measured according to ISO 527-2:2012, and flexural properties according to ASTM D790-17; PLA-based bio-based filaments are frequently reported with flexural modulus between 2.8 and 3.4 GPa, but batch-to-batch changes in pigment dispersion can shift this range by ±0.3 GPa. Post-print annealing at 60°C for 60 min in a forced-air oven raises heat deflection temperature under ISO 75-2:2013 Method B from approximately 52°C to 61°C, while producing anisotropic shrinkage of 0.5–1.0% in the Z direction and 0.2–0.4% in the X-Y plane; parts are therefore printed with a 1.0% global oversize and heat-set on ceramic beds to control distortion. Repeated flexural loading is not recommended above 5,000 cycles without fatigue data generated under ASTM D7774-17. Long-term skin contact and body-proximate temperatures can induce creep relaxation in the PLA matrix; fit retention should be assessed over a 14-day wear trial for each patient-specific shape because published creep data for this colored printed configuration are limited.
In consumer electronics development, housing prototypes are printed at 215°C nozzle temperature, 60°C bed temperature, and 0.15 mm layer height to reproduce boss, clip, and rib details. Annealing is conducted at 58°C for 45 min with printed parts supported by ceramic blocks; this reduces residual stress but can induce Z-axis shrinkage of up to 1.0%. Heat deflection temperature under ISO 75-2:2013 Method A at 1.8 MPa remains below 55°C for unannealed PLA-based feedstock and rises to 60–65°C after annealing, which is insufficient for continuous exposure to lithium-ion charging temperatures above 70°C. The filament is therefore limited to enclosure mock-ups, display shells, and short-term fit checks, not thermally stressed functional modules. Conductive shielding paint compatibility is evaluated by cross-cut adhesion according to ISO 2409:2020 after surface preparation with 400-grit abrasion and isopropanol degreasing; the coating system is an acrylic-based copper-nickel spray applied at 20±2°C and 45±5% relative humidity. REACH compliance for the colored formulation requires confirmation of substances of very high concern below 0.1 mass% per article under Regulation (EC) No 1907/2006, Annex XVII. RoHS compliance is assessed against Directive 2011/65/EU Annex II limits for lead, mercury, cadmium, hexavalent chromium, PBB, PBDE, and four phthalates; certificates should reference IEC 62321-5:2013 for cadmium and IEC 62321-6:2015 for PBDE. Flammability classification under UL 94 must be retested at 1.5 mm or 3.0 mm thickness for the specific pigmented formulation because colorants and nucleating agents can alter dripping and ignition. Snap-fit insertion force simulations use tensile modulus data from ISO 527-2, but printed surface roughness of Ra 10–15 µm measured by ISO 21920-2 may increase insertion friction and reduce repeatability relative to polished mold flow simulations.
| Requirement | Standard or method | Critical limit |
|---|---|---|
| REACH SVHC | Regulation (EC) No 1907/2006 | <0.1 mass% per article |
| RoHS cadmium | IEC 62321-5:2013 | <100 mg/kg |
| RoHS lead | IEC 62321-5:2013 | <1000 mg/kg |
| Cross-cut adhesion | ISO 2409:2020 | Class 1 or 2 for shielding paint |
| UL 94 flame class | UL 94 | HB or V-2 at 1.5 mm depending on formulation |
Large-scale exhibition components with a footprint above 350 mm × 350 mm are printed in segments with interlocking tongue-and-groove joints. A heated enclosure set above 40°C lowers thermal stress but risks softening the bio-based colored filament if the part remains in the lower build zone while the ambient chamber probe reads a higher setpoint. The processing limit is therefore 35°C enclosure temperature, 210°C nozzle temperature, and 60°C bed temperature for parts with a Z height below 250 mm. Above 250 mm, the bed temperature is reduced to 55°C and the chamber is held at 30°C to prevent creep under the part's own mass. A 72 h print run requires filament drying at 55°C for 6 h in a regenerative desiccant dryer with a dew point below -30°C. If the relative humidity at the spool exceeds 20% during printing, surface blistering and lower interlayer peel strength appear on sections with layer times above 45 s. Peel strength is recorded by printing a 25 mm wide strip with a 0.5 mm nozzle and pulling at 90° on a universal testing machine; no ISO standard exists for this specific FFF peel geometry, so the data are used only for comparative process control. End products include modular display walls, dimensional lettering, and semi-structural shelving with a maximum static load of 2 kg per 100 mm span at 30% gyroid infill. Color stability under exhibition lighting is assessed by accelerated weathering per ASTM G154 Cycle 1 for 250 h; color difference measured by ISO 11664-4 under D65 illuminant should remain below ΔE 2.0 for indoor applications, but extended UV exposure can cause surface chalking of the bio-based polymer.
Within university laboratories and maker-space printer farms, batch-to-batch color consistency is verified at incoming inspection before multiple direct-drive Cartesian printers are loaded. The filament is processed at 200°C nozzle temperature and 50°C bed temperature, with a 0.4 mm nozzle and 0.2 mm layer height; enclosure temperatures are not required for parts below 150 mm in Z height. Melt volume-flow rate measured according to ISO 1133-1:2022 at 210°C and 2.16 kg is often reported between 8 and 12 g/10 min for PLA-based feedstocks, but the colored product must be controlled against the supplier's own lot certificate. Color difference is measured on printed plaques using ISO 11664-4:2011 under D65 illuminant and 10° observer angle; a tolerance of ΔE 2.0 or tighter is applied across spool lots when visual uniformity matters in design reviews. Mechanical qualification uses five specimens per lot printed in 0/90° raster and tested under ASTM D638-14 Type IV; tensile strength and elongation values are tracked against the supplier's baseline to catch heat-history shifts. Diameter ovality above 0.05 mm on a two-axis laser micrometer triggers extruder feed-gear slip, which appears as periodic under-extrusion on parallel printer farms. For educational settings involving children under 14 years, final parts that may be mouthed or handled for prolonged periods should be screened against EN 71-3:2019+A1:2021 migration limits for 19 elements, although this standard applies to toy materials and not to routine design-school prototypes. Typical end products include architectural study models, ergonomic hand-held mock-ups, and packaging design artifacts that are stored in dry cabinets at 20–25°C and 30–40% relative humidity to limit post-print moisture uptake.
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Clariant supplies a bio-based colored 3D printer filament family intended for fused filament fabrication equipment. The product is composed of a bio-derived polyester matrix—predominantly polylactic acid or a related bio-based polyester—compounded with Clariant color concentrates and processing stabilizers. The product designation is order-specific and generated from base-resin type, color code, and filament diameter. No single public model number covers all variants; requests for technical data should cite the lot code on the spool label. The base-resin selection and colorant let-down ratio determine final rheological, mechanical, and thermal properties. Renewable carbon content is quantified using ASTM D6866-21 Method B. PLA-based feedstocks typically exceed 95% renewable carbon before pigment addition; the final renewable carbon fraction depends on the mass fraction of petroleum-derived pigments and additives. Published data for the exact Clariant colored formulation is limited; comparative performance should be established on printed specimens according to ISO 527-2:2012, ISO 178:2019, and ISO 75-2:2013 rather than on injection-molded test bars. The material is not a single universal compound; it is a compounded filament family in which color concentrate loading and base-resin grade are matched to the print application. Dimensional, color, and moisture data are issued on a lot-specific certificate of analysis. The presence of bio-based carbon does not classify the product as biodegradable or industrially compostable without separate certification to EN 13432:2000.
Commercial filament is available in nominal diameters of 1.75 mm and 2.85 mm. Industrial roundness specifications commonly require diameter deviation no greater than ±0.05 mm; optimized tolling lines using dual-axis laser gauges report lot capability down to ±0.03 mm at 3 sigma. Dimensional data must be taken from the certificate of analysis because pigment loading and base-resin crystallization shift die swell. Melt volume-flow rate for PLA-based compounds is measured under ISO 1133-1:2022 at 210°C and 2.16 kg; typical printing-grade PLA feedstock values fall between 6 g/10 min and 15 g/10 min. Color masterbatch let-down ratios from 1 wt% to 4 wt% can alter MVR by ±2 g/10 min across a production campaign. Capillary rheometry at 190–210°C reveals a shear-thinning pseudoplastic response with power-law index between 0.4 and 0.7 for pigmented PLA compounds; this range indicates that lower print speeds may reduce melt-pressure fluctuation in unheated hot-end configurations. On a co-rotating twin-screw extruder with L/D 40:1 and screw diameter of 25 mm, a barrel profile of 160–190°C is used to disperse organic pigments without exceeding the lactide reformation threshold. Higher shear rates above 1000 s⁻¹ in the printing nozzle may generate viscous heating and reduce melt viscosity by 5–10%, which alters extrusion width in long toolpaths.
Starting parameters for PLA-based bio-based colored filaments commonly span nozzle set points of 190°C to 220°C, bed temperature of 20°C to 60°C, and linear print speed of 30 mm/s to 60 mm/s. A hardened steel or stainless nozzle with internal diameter of 0.4 mm is recommended when inorganic pigments or mineral fillers are present; brass nozzle wear can alter effective extrusion width within 500 g of abrasive filament throughput. Enclosed build chambers are not mandatory, but ambient air temperature above 30°C can reduce cooling-driven dimensional control. Part cooling fans should remain off for the first two layers and then operate at 50–100% depending on overhang geometry. The first-layer height should be maintained at 0.15 mm or greater when colored grades exhibit higher zero-shear viscosity than natural feedstock. Build plate adhesion on unheated glass requires a polyvinyl acetate adhesive film or a dedicated polymer adhesive; heated glass beds above 60°C can cause localized annealing and dimensional drift in tall PLA parts.
In bio-based colored filament, the pigment and dispersant package influences melt viscosity, surface energy, and weld-line strength. Printed specimens tested under ISO 527-2:2012 often show tensile strength reductions of 5–15% relative to uncolored PLA feedstock when pigment agglomerates exceed 5 µm. High-shear dispersion on a twin-screw extruder with L/D 40:1 reduces agglomerate size below 2 µm, which limits stress concentration. Interlayer adhesion is evaluated by tensile testing perpendicular to layer lines; ISO 527-2 Type 1B specimens printed flat show lower strength than injection-molded bars, and the reduction is more severe for heavily pigmented grades. Nozzle temperature should be increased by 5–10°C within the 190–220°C window when switching from a natural to a colored bio-based compound because colorants raise viscosity. The same effect can reduce oozing and stringing but can also cause under-extrusion if the first-layer height is below 0.15 mm. Weld strength at the layer interface depends on reptation and interdiffusion across the polymer-polymer boundary; higher pigment loading reduces the effective contact area. Additives that migrate to the filament surface can also lower surface energy and reduce adhesion to build plates. A surface energy below 40 mN/m on the printed surface may indicate excessive slip-agent or dispersant bloom.
Thermal degradation of PLA-based compounds is governed by chain scission, lactide regeneration, and colorant decomposition. Residence times above 5 min at nozzle temperatures above 240°C are not recommended. At 230°C, the apparent viscosity of PLA compounds decreases over time; capillary rheometry shows a reduction of up to 15% after 10 min of static residence, leading to over-extrusion at the start of toolpaths. Print jobs requiring nozzle standby periods longer than 3 min should use retraction and nozzle wipe routines to purge degraded melt. Thermogravimetric analysis at 10 K/min under nitrogen typically shows 1% mass loss near 300°C, but the onset shifts lower by 10–20°C when organic red and yellow pigments are present. Processors encountering intermittent nozzle clogging should reduce the retraction distance to 2 mm or less and verify that the heat break cooling fan is operating within specification.
On single-screw filament extrusion lines, melt-pump suction pressure should remain below 50 bar; excursions above this threshold indicate pigment agglomerate filtration or insufficient screw feed. A screen pack of 60/80/60 mesh is typical for colored compounds, but mineral pigments may require a deeper filter to avoid pressure rise. Spool winding tension of 0.5–1.0 N is typical for 1.75 mm filament; higher tension creates memory and can cause dimensional loss during printing. Batch-to-batch variance in colorant dispersion is observable in MVR shift even when the same masterbatch ratio is used, which is why certificate-of-analysis review is required before production runs.
PLA-based colored filaments are hygroscopic; storage at relative humidity above 60% for periods exceeding 24 h can raise moisture content above 0.4 wt%. Moisture degrades printed surface finish and can create microvoids at layer boundaries. Moisture content is determined by Karl Fischer titration under ISO 15512:2019. Pre-drying in a desiccant dryer at 45°C for 4–6 h is recommended before printing if the spool has been stored outside a sealed bag. Vacuum drying at 60°C for 2–4 h is an alternative, but the temperature should not exceed 65°C to prevent spool core softening. The use of a filament dryer with a dew point below −20°C maintains low moisture during long prints. Operators should not rely on heated build chambers to remove moisture from filament; the residence time is too short for effective drying.
Moisture uptake follows non-Fickian diffusion in PLA at room temperature, with the initial mass gain proportional to the square root of time. A spool exposed to 25°C and 70% RH can absorb 0.1 wt% within 4 h. The moisture plasticizes the polymer and lowers the glass transition temperature by approximately 2–5°C, which shifts the optimal bed temperature. Drying at 45°C removes surface moisture within the first 2 h, but core moisture in the filament spool requires longer residence. Re-drying is advised after every 8 h of open-bay exposure. The use of desiccant packs inside a sealed bag with a moisture indicator is insufficient for rewet spools; active drying is required.
Compared with petroleum-based ABS filament, a PLA-based bio-based colored filament typically exhibits higher tensile modulus, lower heat deflection temperature, and lower notched impact strength. Representative literature values place PLA-based compound tensile modulus at 3000–3500 MPa under ISO 527-2:2012 and petroleum ABS at 2000–2600 MPa; HDT B under ISO 75-2:2013 Method B is commonly 50–60°C for PLA-based compounds and 85–100°C for ABS. These values are not Clariant grade-specific but establish the mechanical trade space. Bio-based carbon content should not be confused with compostability: the presence of color concentrates, mineral fillers, or non-PLA impact modifiers can invalidate EN 13432:2000 industrial compostability certification. Renewable carbon is assigned by ASTM D6866-21 Method B, while end-of-life behavior is governed by separate standards. Compared with natural uncolored PLA, the colored grade may require a 5–10°C higher nozzle set point and may produce a measurable decrease in tensile strength. The use of a color masterbatch also reduces the renewable carbon fraction by the mass percentage of petroleum-derived carrier resin and pigment. This trade-off is not visible in a simple bio-based label.
| Property | Test method | Bio-based PLA compound range | Petroleum ABS compound range |
|---|---|---|---|
| Renewable carbon content | ASTM D6866-21 Method B | >90% for PLA feedstocks; colored grades lot-dependent | 0% |
| Density | ISO 1183-1:2019 | 1.24–1.26 g/cm³ | 1.03–1.07 g/cm³ |
| Melt volume-flow rate | ISO 1133-1:2022 | 6–15 g/10 min at 210°C/2.16 kg | 5–20 g/10 min at 220°C/10 kg |
| Tensile strength | ISO 527-2:2012 | 45–65 MPa | 35–50 MPa |
| Tensile modulus | ISO 527-2:2012 | 3000–3500 MPa | 2000–2600 MPa |
| Heat deflection temperature B | ISO 75-2:2013 | 50–60°C | 85–100°C |
| Notched Izod impact | ISO 180:2019 Method A | 2–5 kJ/m² | 15–30 kJ/m² |
Each lot should be accompanied by a certificate of analysis that states diameter tolerance, melt flow rate, moisture content, and CIELAB color coordinates. Color difference is measured under ISO 11664-4:2008; a ΔE*ab value below 1.0 is a typical industrial release limit for matched colors. Compliance records for EU REACH and RoHS are maintained by the supplier. Bio-based carbon claims require ASTM D6866-21 documentation. The verification matrix below lists the minimum analytical package for industrial qualification.
Color concentrates based on heavy-metal pigments are not compatible with RoHS restricted applications. The supplier declaration should certify that cadmium is below 0.01 wt%, while lead, hexavalent chromium, mercury, polybrominated biphenyls, and polybrominated diphenyl ethers are below 0.1 wt% in homogeneous materials under EU 2011/65/EU Annex II. For REACH, communication under Article 33 is mandatory when a substance of very high concern exceeds 0.1 wt% in an article. These thresholds are regulatory limits, not performance limits.
| Parameter | Standard or regulation | Required document |
|---|---|---|
| Bio-based carbon content | ASTM D6866-21 Method B | Supplier certificate |
| Melt volume-flow rate | ISO 1133-1:2022 | Certificate of analysis |
| Tensile properties | ISO 527-2:2012 | Technical bulletin |
| Flexural properties | ISO 178:2019 | Technical bulletin |
| Heat deflection temperature | ISO 75-2:2013 | Technical bulletin |
| Moisture content | ISO 15512:2019 | Certificate of analysis |
| Color difference | ISO 11664-4:2008 | Certificate of analysis |
| Heavy metals restriction | EU 2011/65/EU Annex II | Supplier declaration |
| SVHC communication | EU REACH Article 33 | Supplier declaration |
Processors should not assume that a bio-based label implies industrial compostability or food-contact status. Colorants and processing aids must be reviewed case-by-case. The filament should be kept away from amine-based additives and strong alkaline cleaning agents because PLA can undergo hydrolytic chain scission. Published data for this specific Clariant configuration is limited; qualification trials on the actual FFF machine and nozzle geometry remain the only reliable method for setting production parameters.