Продукты

Clariant Polylactic Acid Red 3D Printer Filament

    • Название продукта: Clariant Polylactic Acid Red 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 755537

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

    Упаковка и хранение
    Упаковка
    Доставка
    Хранение
    Применение Clariant Polylactic Acid Red 3D Printer Filament

    Clariant Polylactic Acid Red 3D Printer Filament is dried at 45–55 °C for 4–6 h in a desiccant dryer before the anatomical-model printing campaign. A direct-drive extrusion head with a 0.40 mm brass nozzle is used. The nozzle is held at 205–215 °C. The bed is set to 55–65 °C. The first layer is printed at 15–20 mm/s to lock corner geometry. Subsequent layers are printed at 40–50 mm/s with a layer height of 0.12–0.16 mm. Part cooling is enabled at 100% after the second layer. The red pigment introduces a slight melt viscosity shift relative to natural PLA, so nozzle pressure is monitored for signs of over-extrusion at low layer heights. Supports are removed with flush cutters. The surface is sanded with 120–240 grit abrasive paper. A water-based polyurethane topcoat is applied as supplied or thinned 5–10% with deionized water to seal the printed surface for repeated handling. The printed model is not a finished medical device under ISO 13485:2016. Biocompatibility evaluation per ISO 10993-5:2009 must be performed on finished printed coupons if the model is used for intraoperative reference. Steam autoclave processing is not permitted because PLA softens above 50–60 °C. Ethylene oxide or hydrogen peroxide gas plasma may be considered only after dimensional stability testing. Published data for this specific red pigmented configuration under gas plasma is limited. Terminal products include patient-specific anatomical teaching models, vascular pathology replicas, and pre-surgical planning prints.

    When Red Pigment Dispersion Affects Interlayer Adhesion in Assembly Jigs

    On automotive and electronics production lines, red PLA assembly jigs serve as visual-control items where lost-tool detection requires strong contrast against ESD mats and workstation surfaces. The filament is dried at 45–55 °C for 4 h. Printing is performed in a closed or enclosed chamber at 20–25 °C ambient and 40–50% RH to limit moisture regain. Nozzle temperature is kept between 210–220 °C. Bed temperature is 55–65 °C. Layer height is 0.16–0.20 mm. Print speed is 40–60 mm/s. A minimum of 4 perimeters and 30% rectilinear infill is used to resist clamp loading and repetitive part placement. Interlayer adhesion can drop when red pigment masterbatch is poorly dispersed. A 0.40 mm hardened steel nozzle is preferred over a worn brass nozzle to maintain uniform melt temperature and avoid pigment agglomerate blockage. For electronics assembly, ESD-safe performance is not provided by unfilled PLA. The surface resistivity typically remains above 1012 Ω. Jigs used in EPA areas must meet IEC 61340-5-1 or ANSI/ESD S20.20. A carbon-filled acrylic coating can bring surface resistivity below 109 Ω, but the coating thickness must be verified on printed coupons. Annealing at 80–90 °C for 30–60 min in a constrained fixture raises heat deflection temperature but can produce shrinkage of 0.3–0.8%. Parts should be scaled by 1.003–1.008 before slicing if annealing is used. Terminal parts include go/no-go gauges, drilling templates, connector press-in nests, and FOD-sensitive visual inspection trays.

    ParameterAssembly jigPackaging mockupArchitectural model
    Nozzle temperature210–220 °C200–210 °C210–225 °C
    Bed temperature55–65 °C50–60 °C55–60 °C
    Layer height0.16–0.20 mm0.08–0.12 mm0.20–0.28 mm
    Print speed40–60 mm/s25–35 mm/s50–70 mm/s
    Drying45–55 °C for 4 h45–55 °C for 6 h50 °C for 6 h

    When thin-walled packaging mockups are required for bottle and closure shape verification, the red PLA filament is printed with wall thicknesses of 1.2–2.0 mm. The nozzle diameter is reduced to 0.25 mm for fine sealing lips and thin closure skirts. Nozzle temperature is 200–210 °C. Bed temperature is 50–60 °C. Layer height is 0.08–0.12 mm. Print speed is 25–35 mm/s to minimize corner lifting and overhang sag. Part cooling is run at 100% from the second layer. Spiral vase mode is used for round bottle bodies to eliminate Z seams. Vacuum sag is the primary process conflict in thin bottoms. A first-layer flow of 95–100% and a bed adhesion layer of polyvinyl acetate adhesive reduce warpage without excessive bottom flash. Red material absorbs more radiant heat than white or natural PLA, so the build plate is kept at the lower end of the given range. Printed packaging mockups are not food-contact articles. Migration testing under EU Regulation (EU) No 10/2011 is required on the finished printed article before any food-contact simulation. Published data for the red pigmented printed article under this regulation is limited. The parts are sanded with 240–600 grit paper. A water-based acrylic primer is thinned 10–15% with water to build a smooth surface, followed by a solvent-free acrylic lacquer. Terminal products include cosmetic bottle mockups, sanitary closure prototypes, personal-care tube testers, and retail display packaging blanks.

    Architectural Concept Models: Thermal Expansion and Window Sash Fit

    Large-format red facade panels require prints that resist indoor thermal cycling and fluorescent lighting drift. The red PLA filament is dried at 50 °C for 6 h. A 0.60 mm nozzle is used for faster building massing. Nozzle temperature is 210–225 °C. Bed temperature is 55–60 °C. Layer height is 0.20–0.28 mm. Print speed is 50–70 mm/s. The build plate is clamped or vacuum-held because large rectangular panels develop corner lift. Window sash openings are printed with 2 perimeters and 10–15% infill to reduce mass while keeping edge definition. The linear coefficient of thermal expansion of PLA is typically in the range 60–80 × 10-6 K-1. A 1 m long facade strip can expand by 0.6–0.8 mm across a 10 °C temperature swing. Clearance fits for window sash pockets should not be set below 0.5 mm on any side. Red chroma fades under prolonged fluorescent and UV exposure. A UV-protective clear coat applied at 15–25 µm dry film thickness slows chroma shift but does not eliminate it. The finished models are stored below 40 °C to avoid creep at roof overhangs and thin canopies. Terminal products include facade cladding mockups, master plan massing models, interior color-block studies, and daylight-study blocks.

    In engineering teaching laboratories, red PLA tensile bars are printed with a 0.40 mm nozzle at 200–210 °C. The bed is set to 50 °C. The chamber is not heated. The specimen is printed flat with 100% infill and rectilinear raster orientation. Layer height is 0.12–0.16 mm. Print speed is 30–40 mm/s. The test geometry follows ASTM D638-14 Type IV for thickness compatibility. Tensile properties are orientation-dependent. Flat-oriented PLA tensile strength is in the range 45–65 MPa, and tensile modulus is 3.0–3.5 GPa when tested per ISO 527-2:2012. The red pigmented grade may show a slight reduction in elongation at break compared with natural PLA, but published data for this specific Clariant red filament is limited. Test coupons should be conditioned at 23 ± 2 °C and 50 ± 5% RH for 40 h before testing according to ISO 291:2008 or ASTM D618. Failure surfaces are documented with a stereomicroscope to compare interlayer delamination, while the red color improves contrast for crack detection. Terminal parts include lab dog-bone specimens, kinematic linkage models, anatomical dissection guides, and mechanical training fixtures.

    Creep and Snap-Fit Insertion Failures in Consumer Product Prototypes

    When consumer product prototypes require red brand color matching before injection molding, the PLA filament is dried at 45–50 °C for 4 h. Printing is performed with a 0.40 mm nozzle at 205–215 °C. Bed temperature is 50–60 °C. Layer height is 0.12–0.16 mm. Print speed is 35–45 mm/s. Snap-fits are printed with 4–6 perimeters and 40% cubic infill. The hinge root is filleted with a minimum radius of 0.8 mm. Pigment agglomerates in red masterbatch can act as stress concentrators. A cantilever snap-fit printed in the Z direction shows lower insertion durability than an XY-oriented snap. Insertion force is measured with a force gauge at 10 mm/min. Cracking at the hinge root is documented after 20–50 insertion cycles if the strain at the root exceeds the yield strain of the red PLA. Heat-stake inserts are installed at 200 °C with a dwell time of 5–8 s. Higher temperatures cause melt flash and local discoloration. Creep under constant clamp load is evaluated at 23 °C and 50% RH for 72 h. The part is measured before and after load to determine creep deflection. For toys or children’s products, heavy-metal migration must be verified per EN 71-3. RoHS compliance is limited to the base polymer and pigment; the printed part must be evaluated under Directive 2011/65/EU for the final assembly. Terminal products include hand-held product mockups, button panel prototypes, wearable band test shells, and appliance fascia models.

    Which Post-Processing Routes Preserve Red Chroma in Trade Show Display Parts?

    For trade show and point-of-sale display parts, wet sanding with 400–1000 grit paper is used to avoid overheating the red surface above 40–45 °C. Nozzle temperature is 210–220 °C with a 0.60 mm nozzle for large display panels. Bed temperature is 55–60 °C. Layer height is 0.20–0.28 mm. Print speed is 50–60 mm/s. Large flat panels are printed with 5 perimeters and 15% gyroid infill. Vapor polishing with ethyl acetate or methyl ethyl ketone is not recommended for PLA because solvent attack can swell the surface and shift red chroma. Filled seams are primed with a water-based acrylic primer. A two-component aliphatic polyurethane topcoat is mixed according to the coating manufacturer’s technical data sheet, typically between 2:1 and 4:1 by volume, and applied at 25–35 µm dry film thickness. This topcoat preserves red chroma better than single-component acrylic lacquer under halogen lighting. Color is measured before and after 100 h exposure using a spectrophotometer and the CIELAB procedure of ISO 11664-4:2008. Delta E values above 2.0 are considered visible in display lighting. Flammability is a constraint in exhibition halls. Unmodified PLA typically achieves only UL 94 HB when tested at 1.5 mm thickness. If the display enclosure requires UL 94 V-0, the red PLA is not appropriate without a flame-retardant coating. Storage and transport must remain below 50 °C; closed vehicles in summer can exceed this threshold and warp unsupported panels. Terminal products include trade show housing shells, point-of-sale risers, brand-color product plinths, and exhibition model components.

    Бесплатная цитата

    Конкурентные цены Clariant Polylactic Acid Red 3D Printer Filament, которые соответствуют вашему бюджету - гибкие условия и индивидуальные котировки для каждого заказа.

    Для получения образцов, цен или более подробной информации свяжитесь с нами по адресу +8618136850665 или отправить по почте admin@ascent-chem.com.

    Мы ответим вам как можно скорее.

    Телефон: +8618136850665

    Электронная почта: admin@ascent-chem.com

    Запрос

    Получите бесплатную сметуAscent Petrochem Holdings Co., Limited

    Гибкие условия оплаты, конкурентоспособные цены, первоклассное обслуживание — обращайтесь прямо сейчас!

    Сертификация и соответствие требованиям
    Более подробное введение

    Clariant Polylactic Acid Red 3D Printer Filament is supplied as a red-pigmented polylactide monofilament for fused filament fabrication equipment operating at ambient chamber temperatures. Because regional toll converters may execute final extrusion from Clariant-branded masterbatch, the spool label material code and lot-specific certificate of analysis are the controlling identification documents; no single universal model designation should be assumed across packaging generations. The product is generally offered in 1.75 mm or 2.85 mm diameter with a roundness tolerance of ±0.05 mm or tighter, on 750 g or 1 kg spools. The red colour is achieved by addition of a dispersed organic or inorganic red pigment concentrate at typical let-down ratios of 1–3 wt% in the melt phase. Published data for this specific red-pigmented configuration is limited; the numerical ranges that follow are drawn from comparable PLA feedstock evaluations and must be checked against the supplier’s lot data.

    Material Identification and Feedstock-Dependent Supply Chain Considerations

    The base polymer in the product is a semicrystalline poly(L-lactic acid)-rich polylactide. Differential scanning calorimetry under ISO 11357-2:2020 typically places the glass transition temperature between 55 °C and 60 °C, while the melt endotherm is commonly observed between 150 °C and 165 °C, depending on D-lactide content and annealing history. The red pigment may function as a heterogeneous nucleant or as an inert dispersed phase depending on its surface treatment and particle size distribution; laser diffraction per ISO 13320:2020 is used in masterbatch quality control to reject agglomerates above 5 µm. Melt flow rate measured at 210 °C with a 2.16 kg piston in accordance with ISO 1133-1:2022 is expected to fall within the typical unfilled PLA range of 6–15 g/10 min, but a red concentrate can reduce melt flow rate by up to 15% relative to natural PLA if the pigment increases shear heating or filler-particle interaction. The melt-compounding step is often executed on a co-rotating twin-screw extruder with an L/D ratio of 32:1 to 44:1; batch-to-batch variation in pigment dispersion remains a processing bottleneck when screw speed, feed rate, and barrel temperature are not controlled within narrow limits. Accumulation of pigment fines in vacuum vent ports is an observed production issue when the vacuum pull exceeds −0.08 MPa, and it can generate streak defects in the filament. Because polylactide is susceptible to hydrolytic degradation during compounding, pre-drying of PLA pellets at 50 °C for 4 h to a moisture content below 250 ppm is a common quality gate before masterbatch dilution.

    Because the red pigment is dispersed in a semicrystalline polyester matrix, dimensional feed reliability depends on ovality control, winding tension, and spool traverse consistency. A dual-axis laser micrometer is used to record filament diameter at sampling rates of at least 100 Hz, and acceptance limits are commonly ±0.03 mm for 1.75 mm feedstock and ±0.05 mm for 2.85 mm feedstock. Ovality, defined as maximum diameter minus minimum diameter, should remain below 0.03 mm for 1.75 mm filament to avoid intermittent under-extrusion through a 0.4 mm nozzle. Winding tension is controlled below 0.5 N to prevent cold flow and spool collapse. A 1 kg spool of 1.75 mm PLA at a density of 1.24 g/cm³ corresponds to approximately 335 m of usable filament; actual length should be confirmed from the spool label.

    On fused filament fabrication systems with direct-drive or Bowden extruders, the product is processed most repeatably with a 0.4 mm hardened steel or stainless steel nozzle; brass nozzles may show accelerated wear if the red pigment contains iron oxide. The nozzle setpoint is normally 200–220 °C, the bed setpoint 40–60 °C, and the first layer height 0.20–0.25 mm at 20–30 mm/s. Subsequent print speeds of 30–60 mm/s with a 0.2 mm layer height are common; the part cooling fan is held off for the first two layers and then ramped from 50% to 100% duty. Build surface adhesion is acceptable on polyetherimide at 40–60 °C, polyimide tape, or a PLA-specific adhesion film; uncoated glass can support small parts but may fail on long rectilinear runs because the red pigmented grade can generate slightly higher melt viscosity at the die. Drying is required after exposure to relative humidity above 60% for 48 h; a forced-air or vacuum dryer at 50 °C for 4 h is the typical intervention. Moisture uptake above 0.3% by weight, measured gravimetrically according to ISO 62:2008, is associated with bubble formation and interlayer weld loss. The filament should not be left in a hot nozzle above 230 °C for more than 15 min because lactide regeneration and pigment degradation can raise die pressure and discolour the weld line. For mechanical test coupons, print each specimen with 100% infill, 0.2 mm layer height, and alternating ±45° raster orientation at a chamber temperature of 23 °C and 50% RH after conditioning under ISO 291:2008 class 2.

    Because red pigment tends to accumulate in melt channels, a cleaning filament or low-cost purge resin should be run at 220 °C for 5 min after use. Discoloured residue in a translucent next print indicates incomplete purge; a purge tower of 15 mm width and 20 mm height is usually sufficient when transitioning to natural PLA. When using a dual-extruder or tool-changer, assign dedicated hot ends for pigmented materials where possible. In single-nozzle multi-material work, the red pigment’s rheological offset can shift the pressure advance setting by 0.02–0.05 s; retraction distance may need to increase by 0.5–1.0 mm relative to natural PLA. These are starting adjustments; published data for this specific Clariant configuration is limited.

    When Red Pigment Dispersion Modifies Crystallization and Interlayer Adhesion

    The addition of a red concentrate to PLA changes the thermal history and weld strength of the printed part. In a differential scanning calorimetry trace run at 10 K/min under ISO 11357-3:2018, the cold-crystallization peak of pigmented PLA can shift by 2–6 °C relative to natural PLA. The direction of shift depends on whether the pigment acts as a nucleant or as an inert diluent. Nucleating pigments can raise the degree of crystallinity during the annealing that occurs in a heated build chamber, but they can also embrittle the interlayer boundary if crystallites form before the next layer wets the previous surface. Published z-axis tensile data for this specific red Clariant configuration is limited; comparable pigmented PLA literature reports interlayer strength between 50% and 80% of the bulk XY tensile strength, while unfilled PLA often retains 70–90% under identical print settings. The reduction originates from lower molecular diffusion at the weld interface when pigment platelets or agglomerates restrict chain-end mobility. In practice, layer adhesion is improved by raising the nozzle temperature within the 200–220 °C window, lowering print speed to 30–40 mm/s, and disabling part cooling fan for the first three layers. Flexural specimens tested per ISO 178:2019 at 2 mm/min may show modulus retention above 90% relative to unfilled PLA, but elongation at break tested per ASTM D638-14 Type V at 5 mm/min may be lower because agglomerates above 5 µm act as stress concentration points. The material therefore differs from natural PLA less in stiffness and more in defect-limited tensile ductility and interlayer fracture mode. Users should reject spool batches that exhibit surface roughness greater than ±0.03 mm diameter variation, as this is an indicator of pigment agglomeration and can produce intermittent clogging in 0.4 mm nozzles.

    How Does the Product Differ from Unpigmented PLA, ABS, and PETG Filaments?

    The red-pigmented PLA grades occupy a narrow processing window between natural PLA and PETG in several respects. The table below lists representative published ranges for FFF-grade commercial feedstocks; the values are not lot-specific to the Clariant red product but provide a baseline for comparison. In the table, red PLA figures are compiled from comparative studies in which a 0.5–2 wt% red masterbatch was added to a natural PLA base; published data for this specific Clariant configuration is limited.

    PropertyNatural PLARed-pigmented PLAPETGABS
    Density (ISO 1183-1:2019)1.24–1.26 g/cm³1.24–1.26 g/cm³1.26–1.29 g/cm³1.04–1.08 g/cm³
    Tensile strength (ASTM D638-14, Type V)48–63 MPa45–60 MPa45–55 MPa33–45 MPa
    Tensile modulus (ASTM D638-14)3.1–3.6 GPa3.0–3.5 GPa2.0–2.7 GPa1.8–2.4 GPa
    Elongation at break (ASTM D638-14)2–7%2–5%15–30%10–25%
    Heat deflection temperature (ASTM D648-18, 0.455 MPa)50–55 °C50–54 °C64–70 °C85–95 °C
    Moisture sensitivitymoderatemoderate to highhighlow to moderate
    Fume profilelow lactide odourlow lactide odour with potential pigment volatiles above 230 °Clowstyrene monomer

    Compared with natural PLA, the red-pigmented version is not defined by a large change in heat deflection temperature but by a trade-off in melt viscosity, optical opacity, and defect-sensitive ductility. Compared with PETG, the product has lower elongation at break and lower moisture-induced clouding but also a lower continuous-use temperature ceiling. Compared with ABS, the product avoids styrene exposure and performs with less warp on large flat parts, but it has roughly 35–40 °C lower heat deflection temperature and cannot be post-processed effectively with acetone vapour smoothing. In applications where red colour is mandatory, the pigment itself can mask stress-whitening that would otherwise indicate incipient fracture in natural PLA, so inspection programmes should use destructive lot testing of z-axis specimens rather than visual inspection alone.

    Drying at 50 °C for 4 h Is Not a Universal Fix for Wet Spools

    The recommended drying protocol of 50 °C for 4 h applies to spools that have been opened under normal room conditions below 60% RH. If a spool has been exposed to 80% RH for several days, longer drying of 8–12 h is required, and the filament should be processed from a dry box with a dew point below −20 °C. Drying plastic-spooled filament above 55 °C may cause spool deformation and dimensional drift; metal-spool or polycarbonate-spool versions can tolerate 60 °C but not 70 °C without risk of filament tacking. The moisture target for processing is below 250 ppm; a moisture analyser using loss-on-drying at 105 °C may be used for rapid batch checks, but the reference method is Karl Fischer titration after desorption. Unopened spools should be stored at 20–25 °C and below 50% RH in sealed barrier packaging with desiccant. Ultraviolet exposure should be minimised because organic red pigments in PLA can fade under continuous UV, although inorganic red iron oxide grades are more stable. The red layer should not be printed beside clear PLA in a multi-material print without purge towers, because pigment carryover can contaminate clear regions and create variable light transmission.

    Regulatory Compliance and Safety-Related Use Boundaries

    The base polylactide polymer can be ordered under REACH Regulation (EC No 1907/2006) and RoHS Directive 2011/65/EU compliant grades. However, compliance of the finished red filament depends on the pigment concentrate and its heavy metal content, which must be verified against RoHS Annex II limits for cadmium 0.01% by weight and lead 0.1% by weight in homogeneous material. Toys or childcare articles require migration testing under EN 71-3 for elements such as barium, cadmium, chromium, lead, and mercury. Food-contact use is not automatic for red-pigmented PLA; the polymer and all colorants must be cleared under applicable food-contact regulations such as FDA 21 CFR 174.5 or EU 10/2011, and the final material must pass overall migration limits of 10 mg/dm² for food-contact plastics. Industrial compostability claims are valid only if the complete red-pigmented formulation meets EN 13432 disintegration, biodegradation, and ecotoxicity criteria; a neat PLA certification does not transfer to a pigmented variant. During printing, maintain local exhaust ventilation because thermal degradation of PLA above 230 °C can release lactide, acetic acid, and colour-specific decomposition products. The product is not validated for implantable medical devices unless processed under a quality system conforming to ISO 13485:2016 and evaluated per ISO 10993-1:2018. When disposal is required, do not incinerate in uncontrolled conditions; follow local municipal plastic waste or industrial composting regulations only after confirming the compostability status of the coloured spool.

    ТОП