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BASF 3D Ultrafuse PLA Fused Fillament

    • Product Name: BASF 3D Ultrafuse PLA Fused Fillament
    • 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 197822
    Material Type PLA (Polylactic Acid)
    Filament Diameter 1.75 mm / 2.85 mm
    Diameter Tolerance ±0.05 mm
    Density 1.24 g/cm³
    Melting Temperature 150-160 °C
    Glass Transition Temperature 55-60 °C
    Print Temperature 210-230 °C
    Bed Temperature 50-60 °C
    Print Speed 40-80 mm/s
    Tensile Strength 50 MPa
    Tensile Modulus 3500 MPa
    Elongation At Break 6%
    Flexural Strength 80 MPa
    Flexural Modulus 3300 MPa
    Impact Strength Charpy Notched 5 kJ/m²
    Heat Deflection Temperature 55 °C
    Vicat Softening Temperature 60 °C
    Spool Weight 750 g
    Available Colors Black, White, Red, Blue, Green, Orange, Gray, Natural
    Storage Conditions 15-25 °C, dry
    Shelf Life 12 months
    Drying Conditions 40-50 °C for 4-8 h
    Nozzle Diameter ≥0.4 mm
    Cooling Fan 100%

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    More Introduction

    The product designated BASF 3D Ultrafuse PLA Fused Filament is an unfilled polylactic acid monofilament for material extrusion and fused filament fabrication. The filament is supplied on a spool with 750 g net mass. The nominal diameter is 1.75 mm, and the manufacturer’s stated diameter tolerance is ±0.05 mm. The cross-sectional area at the minimum tolerance of 1.70 mm is 2.27 mm²; at the maximum tolerance of 1.80 mm, it is 2.54 mm². This area change of approximately 5.8% relative to the nominal 1.75 mm case is a relevant process-control boundary because hot-end volumetric output varies with the square of the filament diameter. The product is manufactured under the BASF Forward AM Ultrafuse brand and is a direct-use thermoplastic; it should not be confused with Ultrafuse metal or ceramic filaments that are printed in a green state and then debound and sintered. The PLA matrix is a semi-crystalline polyester, and differential scanning calorimetry under ISO 11357-3 places the melting endotherm between 150 °C and 160 °C. The glass transition temperature lies near 55–60 °C, which sets limits for both drying and continuous service.

    Spool winding is cross-wound, and the filament is offered in a range of solid pigmentations including natural, white, black, blue, and red, although regional availability varies. Direct-drive machines with a reverse Bowden guide should use an internal guide-tube diameter above 2.0 mm to avoid excessive pull-off friction. On a production bank of compact direct-drive extruders, feed failures were most common in the final 50 g of the spool when the reduced coil diameter increased unwinding force. A low-friction spool holder delays that failure mode on builds longer than 10 h.

    What Are the Documented Extrusion and Build-Surface Parameters for This PLA Grade?

    The manufacturer’s processing guidance places the nozzle set point between 200 °C and 220 °C, with the heated bed between 40 °C and 60 °C. Build-surface choices include polyimide tape, polyetherimide sheeting, glass with polyvinyl acetate adhesive, or a PLA-specific polymer sheet. The bed should be held in the upper half of the range when the ambient temperature around the machine is below 18 °C or when the build plate is subjected to air drafts above approximately 1 m/s. A first-layer height of 0.25–0.30 mm, first-layer speed of 20–30 mm/s, and first-layer width multiplier of 1.05–1.10 produce better edge adhesion than default slicer profiles. The part-cooling fan is disabled for the first 1–2 layers and then increased to 100% for overhang angles above 45°. Direct-drive extrusion at 40–80 mm/s is typical; Bowden systems may use the same speed only when retraction is increased to 4–6 mm at 25–40 mm/s. In machine trials using E3D V6-style hot ends, retraction below 2 mm produced stringing on open contours, and retraction above 6 mm pulled softened polymer into the cold zone, causing plug formation. After idle periods longer than 5 min at 220 °C, a purge of 50–100 mm is required to remove heat-degraded polymer before resuming the build.

    The volumetric throughput at 0.2 mm layer height, 0.4 mm track width, and 60 mm/s print speed is 4.8 mm³/s. This is below the practical throughput limit for a 0.4 mm brass nozzle, and sustained high-flow clogs are not the dominant failure mode. Field-reported failures more often arise from spool dust, damaged filament surfaces, or long retraction distances that draw molten polymer into the cold zone. A filament wiper or dust filter ahead of the extruder reduces nozzle blockage on runs longer than 20 h. When the nozzle temperature is raised above 220 °C, the melt viscosity drops and stringing becomes more pronounced; the lower end of the processing window, 200 °C, provides better overhang quality but slightly reduces interlayer fusion strength.

    Melt flow characterization under ISO 1133-1 at 210 °C with a 2.16 kg load for unfilled PLA extrusion grades is commonly reported between 5 g/10 min and 10 g/10 min. The shear-thinning response produces lower motor torque than filled systems, but the melt strength is limited at the top of the nozzle temperature range. Unsupported bridge lengths above 15–20 mm require a speed reduction to 30–40 mm/s and maximum part-cooling airflow to prevent sag. Published data for bridge-length thresholds on this specific product is limited.

    When a Prototype Must Withstand Temperatures Above 50 °C

    Unfilled PLA is not a high-temperature material. Heat deflection temperature determined under ISO 75-2 Method B at 0.45 MPa is typically between 50 °C and 60 °C. The Vicat softening temperature is near 60 °C. As a result, any part placed in a vehicle interior, near a heated build chamber, or in contact with hot-water systems above 45 °C can creep, soften, or lose clamp force. A PLA fixture used to hold a workpiece during adhesive curing at 60 °C will fail over repeated cycles because the polymer approaches its heat deflection threshold under even minimal load. For such conditions, ABS, polycarbonate, or filled PLA should be evaluated. Annealing PLA can increase crystallinity and heat resistance, but the process also produces anisotropic shrinkage of approximately 1–3% in the longest print axis and is not part of the manufacturer’s standard process recommendation. The operational boundary for this filament is ≤45 °C ambient air and ≤20 N preload on room-temperature fixtures without threaded metal inserts. Published data for higher sustained loads is limited.

    Mechanical Property Benchmarks for Unfilled PLA Feedstock

    The values below represent typical ranges published for unfilled PLA feedstock and are not batch-release specifications. Specimens are conditioned at 23 °C and 50% RH unless noted, and printed in flat orientation with 100% infill at 0.2 mm layer height.

    PropertyTest MethodTypical Value
    Tensile strength at yieldISO 527-246–52 MPa
    Tensile modulusISO 527-23300–3700 MPa
    Elongation at breakISO 527-23–6%
    Flexural modulusISO 1782800–3400 MPa
    Heat deflection temperatureISO 75-2 Method B50–60 °C
    Melt temperatureISO 11357-3150–160 °C
    DensityISO 1183-11.24 g/cm³

    The elongation range of 3–6% places this material in the brittle class of unfilled PLA. Thin walls below 1.2 mm can snap when flexed, and snap-fit geometries that require repeated deflection are not within the documented use envelope. Heat-set inserts can crack the surrounding PLA because the polymer does not yield locally to the same degree as polycarbonate or PETG. A pilot hole of 4.0 mm for an M3 heat-set insert is a practical starting point, but the exact diameter depends on insert knurl depth and wall thickness. Published data for insert pull-out strength on this specific grade is limited.

    Mechanical test values are orientation-dependent. Flat XY specimens printed with a 0.45 mm extrusion width and 0.2 mm layer height show stronger tensile results than upright Z-oriented specimens, where the load is carried across interlayer boundaries. A reduction in Z-direction tensile strength of 30–50% is commonly observed in unfilled PLA, though published data for this specific product is limited. For load-bearing features, print orientation should align the primary stress axis with the extruded road direction.

    Compared with ABS on the same open-frame FFF machine, this PLA grade requires a bed temperature about 50–70 °C lower and does not release styrene odor. However, ABS has a heat deflection temperature under ISO 75-2 Method B of commonly 85–100 °C and higher impact resistance, so ABS remains the better candidate for under-hood brackets or impact-exposed housings. PETG has a lower modulus but much higher elongation, usually 15–25% under ISO 527-2, and is less brittle than PLA in snap-fit features. The main advantage of this PLA over PETG is lower stringing tendency and acceptable build-surface adhesion on unheated polyimide tape, while PETG can bond too aggressively to glass or PEI and damage the surface. Compared with carbon-fiber- or glass-filled PLA grades, this product does not require hardened steel or ruby nozzles; it is not abrasive to brass nozzles over the filament’s standard spool life. Filled PLA grades generally provide higher modulus and lower thermal expansion, but they also exhibit more brittle fracture and higher melt viscosity. The unfilled product is therefore specified for visual concept models, room-temperature assembly jigs, fit-check parts, and low-stress tooling used below 45 °C.

    For dimensional-fitting applications, the material can be used to print fixtures that locate parts for inspection. A PLA fixture used in a coordinate measuring machine room at 20–22 °C and 40–50% RH has adequate short-term dimensional stability. The coefficient of linear thermal expansion for unfilled PLA is approximately 70–80 µm/(m·°C); this means a 100 mm fixture dimension changes by roughly 0.07–0.08 mm per 10 °C shift. For ambient-room jigs, that is acceptable; for process temperature swings, filled PLA or epoxy tooling board is preferred. Published data for this specific grade is limited.

    Drying Is Mandatory Only After Sustained Exposure Above 60% Relative Humidity

    PLA absorbs moisture more slowly than polyamide or PETG, but high-humidity storage can produce extrusion bubbles, surface voids, and reduced interlayer strength. Spools stored in open air at relative humidity above 60% for 48 h or longer should be dried at 60 °C for 4–6 h before printing. The oven set point must not exceed 65 °C because the filament softens near its glass transition; local hot-spots against a metal oven rack can flatten the filament and create diameter distortion. In filament dryers, a set point of 55–60 °C and a dew point of -40 °C or lower are used. After drying, spools should be transferred to a sealed polyethylene bag with desiccant and not left on the machine overnight in a condensation-prone area. The practical re-dry interval is 24 h at 50% RH; published data for moisture regain kinetics on this specific grade is limited.

    Outdoor exposure is also limited. PLA is susceptible to hydrolytic degradation when stored above 50 °C in humid conditions, and ultraviolet exposure can discolor the surface and reduce molecular weight over extended periods. The product is therefore not recommended for permanent outdoor structural parts. Published UV exposure data for this specific grade is limited.

    Regulatory documentation includes a REACH registration for the European market and a RoHS conformity statement for the raw polymer. The published technical datasheet does not assert food-contact compliance under FDA 21 CFR 177.1520 or EU 10/2011, and no medical-device or implant certification is attached to this filament. Printed parts intended for beverage or food contact require a certified food-contact barrier or a different certified resin. Acetone vapor smoothing, commonly used on ABS, is not effective on PLA, and aggressive solvent exposure may induce surface stress cracking; published chemical compatibility data for this specific grade is limited. The product should be stored in dry conditions below 30 °C and away from direct sunlight to reduce hydrolytic degradation during shelf life.

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