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Clariant Acrylonitrile Butadiene Styrene Red 3D Printer Filament

    • Product Name: Clariant Acrylonitrile Butadiene Styrene Red 3D Printer Filament
    • Factroy Site: Yudu County, Ganzhou, Jiangxi, China
    • Price Inquiry: admin@ascent-chem.com
    • Manufacturer: Ascent Petrochem Holdings Co., Limited
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    Specifications
    HS Code 616796
    Product Name Clariant Acrylonitrile Butadiene Styrene Red 3D Printer Filament
    Brand Clariant
    Material Acrylonitrile Butadiene Styrene (ABS)
    Color Red
    Filament Diameter 1.75 mm
    Diameter Tolerance ±0.05 mm
    Net Weight 1 kg
    Printing Temperature 230-250 °C
    Heated Bed Temperature 100-110 °C
    Nozzle Size 0.4 mm
    Print Speed 40-80 mm/s
    Density 1.04 g/cm³
    Tensile Strength 40 MPa
    Flexural Strength 60 MPa
    Elongation At Break 20-30%
    Glass Transition Temperature 105 °C
    Shrinkage 0.4-0.7%
    Moisture Absorption 0.2-0.4%
    Cooling Fan Off or low
    Storage Cool, dry place

    As an accredited Clariant Acrylonitrile Butadiene Styrene Red 3D Printer Filament factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

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    More Introduction

    Clariant Acrylonitrile Butadiene Styrene Red 3D Printer Filament is a styrenic terpolymer monofilament produced for material extrusion platforms that operate with a heated bed and enclosed build chamber capability. The material consists of a continuous styrene-acrylonitrile copolymer containing 20–35 wt% acrylonitrile and a dispersed polybutadiene rubber phase with particle diameters typically between 0.2 µm and 1.0 µm; the red appearance is obtained with an organic red pigment formulation dispersed in an SAN-compatible carrier. The product is not a surface-coated filament, and the colorant is distributed throughout the filament cross-section. The supplier’s current public datasheet does not disclose a separate sub-model for this red product; the designation should be read as an ABS-based FFF filament in red, not a polycarbonate alloy or impact-modified ASA. The product is offered in nominal diameters of 1.75 mm and 2.85 mm, with net spool weights of 750 g and 2.2 kg depending on distribution region. The spool is sealed in a moisture-barrier film with desiccant. Product-specific numerical data for this red configuration are limited, so process limits and mechanical ranges below are drawn from Clariant ABS reference data, supplier bulletins, and standard ABS extrusion-grade behavior where direct values are not published.

    Diameter stability is controlled by closed-loop dual-axis laser micrometry; the acceptable diameter tolerance is ±0.05 mm, and ovality should remain at or below 0.06 mm over a 100 m run. Larger excursions produce volumetric flow variation, underfill at nozzle pressures below 10 MPa, and visible banding at layer transitions. The red pigment loading is typically in the range of 2–4 wt%; pigments are milled to a median particle size below 5 µm to prevent accumulation in 0.4 mm nozzles. A lower pigment concentration would require higher layer opacity and could allow thin walls to appear translucent at 0.10–0.25 mm layer heights. Filament ovality above 0.06 mm on a 2.85 mm line can create an effective diameter above the Bowden tube clearance if the tube internal diameter is 3.0 mm.

    Thermal behavior is amorphous. The glass transition temperature of ABS extrusion grades is normally between 95 °C and 105 °C when measured by differential scanning calorimetry at 10 °C/min under ISO 11357-2:2020. No crystalline melting endotherm is expected. This absence of crystallinity reduces solvent resistance and large-scale creep resistance but allows relatively low die swell and consistent filament roundness. Linear mold shrinkage after cooling from 240 °C to 23 °C is approximately 0.5–0.8% per ISO 294-4:2018; fused-filament parts may show build-plane contraction of 0.3–0.7% and through-thickness expansion depending on raster angle and chamber temperature. Thermogravimetric analysis under nitrogen shows decomposition onset for ABS near 350 °C, with 5% mass loss around 350–380 °C depending on butadiene content; processing above 260 °C is below this region but still high enough to release styrene monomer.

    Processing Window and Bed Adhesion Limits for Small-Format Fused Filament Fabrication

    Recommended processing for the red ABS filament uses an all-metal hot end with active part cooling. The nozzle set point should be held between 230 °C and 250 °C; PTFE-lined hot ends are limited to 240 °C because liner off-gassing begins near 250 °C. The heated bed is maintained at 90–110 °C for cast acrylic, polyimide, or PEI surfaces; a warpage mitigation slurry of natural ABS dissolved in methyl ethyl ketone is used where adhesion remains insufficient. The build chamber should stabilize between 55 °C and 75 °C for prints with a longest in-plane dimension above 80 mm. At chamber temperatures below 45 °C, corner lifting is observed on rectangular cross-sections. Print speeds are typically 30–60 mm/s, with first-layer speed reduced to 15–25 mm/s and first-layer height 0.20–0.25 mm. Layer heights between 0.10 mm and 0.25 mm are permissible with a 0.4 mm nozzle; nozzles below 0.4 mm require the pigment dispersion to be confirmed free of agglomerates retained on a 10 µm screen. Retraction distances of 0.8–2.0 mm are used for direct-drive extruders, and 3–6 mm for Bowden systems. Cooling fan output should remain below 30% after the first 3–5 layers to avoid interlayer delamination. Material changes from polyamide or polycarbonate to this red ABS require purging with unreinforced natural ABS until the purge strand is free of black or foamed contamination. Temperatures above 260 °C accelerate depolymerization of the styrene-acrylonitrile phase, increasing styrene monomer release and darkening the red hue; an enclosed printer with activated carbon fume extraction is required for continuous operation.

    Extrusion pressure in a standard 0.4 mm nozzle at 230 °C is typically 8–15 MPa for ABS filaments at 30 mm/s; the red pigment phase can raise pressure drop by 10–20% compared with natural ABS from the same resin family. A hardened steel nozzle is not required for an organic red pigment, but brass nozzle wear increases if the colorant contains finely divided inorganic fillers such as silica or titanium dioxide. Clariant’s red masterbatch typically uses organic pigments, but batch data should be reviewed for a specific article number.

    Mechanical performance of the red ABS filament should be evaluated on annealed FFF test coupons because as-printed tensile strength is strongly influenced by raster angle and interlayer bonding. Table 1 lists published reference values for pigmented ABS, natural ABS, and a PC-ABS reference. Direct product-specific values for the Clariant red ABS are not completely published; ranges marked with a footnote reflect formulation-class data rather than certified batch release limits.

    Property Test method Clariant ABS Red FFF filament⁽ᵃ⁾ Natural ABS FFF filament PC-ABS reference
    Density at 23 °C ISO 1183-1:2019 1.051.09 g/cm³ 1.031.07 g/cm³ 1.121.18 g/cm³
    Tensile strength at yield, 50 mm/min ISO 527-2:2012 3844 MPa 4045 MPa 5258 MPa
    Tensile modulus ISO 527-2:2012 20002300 MPa 20002400 MPa 23002600 MPa
    Notched Izod impact at 23 °C ISO 180/A 1524 kJ/m² 1827 kJ/m² 3565 kJ/m²
    Heat deflection temperature, 1.8 MPa ISO 75-2:2013 90100 °C 92100 °C 105120 °C
    Melt flow rate, 220 °C / 10 kg ISO 1133-1:2022 614 g/10 min 816 g/10 min 612 g/10 min

    ⁽ᵃ⁾ Product-specific Clariant red ABS values are not fully published; these ranges refer to supplier reference compounds for colored ABS FFF filament. Direct datasheet values should be obtained for critical production qualification.

    Interlayer adhesion in FFF ABS depends on diffusion time and melt temperature at the weld interface. For this red ABS, a nozzle temperature below 230 °C reduces interfacial polymer chain diffusion, producing tensile strength below 30 MPa across the Z-axis and brittle fracture near the build plate. Impact failure in pigmented ABS is controlled by both the polybutadiene rubber content and stress concentration at pigment-polymer interfaces; dispersed pigment agglomerates above 10 µm can reduce notched Izod impact by more than 15% relative to the same base resin unpigmented. The red additive should not be interpreted as an impact modifier; the product is not a PC-ABS compound.

    What separates a red ABS monofilament from natural ABS or ASA in long-term service?

    The difference is not limited to color. Pigmented ABS grades contain 2–4 wt% of dispersed organic pigment that increases melt viscosity slightly; when switching from natural ABS to this red ABS, operators may need to raise nozzle temperature by 5–10 °C to maintain consistent extrusion pressure below 15 MPa. In dry, indoor applications, the mechanical property range of red ABS overlaps natural ABS, but impact toughness can shift downward because pigment particles act as local stress concentrators. For outdoor or UV-intense service, the comparison with ASA is more relevant. ASA replaces the polybutadiene rubber with polyacrylate rubber and has better retention of gloss and impact under ISO 4892-3:2016 weathering; red ABS is not recommended for continuous exterior use unless sheltered from direct sunlight. PC-ABS offers higher heat deflection and notched Izod impact than red ABS, but it requires higher nozzle and bed temperatures. Compared with polylactic acid, the red ABS filament has a higher heat deflection temperature under 1.8 MPa load, but it also has a wider processing-temperature demand and higher styrene vapor exposure. PLA is not a drop-in replacement because its glass transition is near 55–60 °C, while ABS retains dimensional stability up to 90–100 °C under load. Direct product-specific weathering data for this red Clariant filament are not published, so outdoor service life must be confirmed through end-use testing.

    When the red ABS filament is stored at ambient relative humidity above 60%

    At relative humidity above 60%, the filament begins to adsorb surface moisture. Although ABS is less hygroscopic than polyamide or PETG, water uptake above 0.2 wt% measured by ISO 15512:2019 Karl Fischer method can generate steam bubbles at the nozzle. The result is surface splay, reduced interlayer welding, and audible steam at the extruder. Spools left in an open printer for more than 12 h at 60% RH should be dried at 80 °C for 4 h in a forced-air desiccant dryer with a dew point of −40 °C. Drying above 85 °C risks spool softening and pigment darkening. If the spool has a polypropylene core or foam side flanges, the filament should be transferred to a metal or dried polycarbonate spool before oven drying. Dried filament should be stored below 30% RH in a sealed container with desiccant.

    Regulatory documentation for the Clariant red ABS filament is summarized in Table 2. The product should not be assumed to meet food-contact requirements; styrene migration and polymer degradation products are not controlled under EU 10/2011 for this filament. Flammability is expected to be HB under IEC 60695-11-10, but the product is not a flame-retardant grade. Operators should use fume extraction at nozzle temperatures above 250 °C and avoid skin contact with hot extrudate.

    Regulation / standard Test or clause Status
    REACH EC 1907/2006 Annex XVII and SVHC Candidate List SVHC content below 0.1 wt% per substance; no notified restriction expected
    RoHS 2011/65/EU Annex II Pb 1000 ppm; Cd 100 ppm; Hg 1000 ppm; Cr(VI) 1000 ppm; PBB/PBDE 1000 ppm expected
    Flammability IEC 60695-11-10 HB expected; no UL Yellow Card certified rating unless stated on spool
    Food contact EU 10/2011 Not evaluated; not intended for food-contact use
    Toy safety migration of colorants EN 71-3:2019+A1:2021 Not certified unless batch certificate supplied

    Batch release documents should be requested from the supplier for the specific article number, because regional spool configurations may differ in pigment loading, diameter tolerance, and desiccant packaging.

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