| HS Code | 838110 |
| Brand | Clariant |
| Product Name | Polylactic Acid White 3D Printer Filament |
| Material | Polylactic Acid (PLA) |
| Color | White |
| Filament Diameter | 1.75 mm |
| Diameter Tolerance | ±0.05 mm |
| Net Weight | 1 kg |
| Approximate Length | 330 m |
| Spool Material | Plastic |
| Printing Temperature | 190°C to 220°C |
| Bed Temperature | 0°C to 60°C |
| Density | 1.24 g/cm³ |
| Tensile Strength | 50 MPa |
| Elongation At Break | 6% |
| Flexural Modulus | 3.5 GPa |
| Melting Temperature | 160°C to 180°C |
| Glass Transition Temperature | 60°C |
| Biodegradable | Yes |
| Renewable Resource Based | Yes |
| Packaging | Vacuum-sealed with desiccant |
| Storage Conditions | Cool and dry environment |
| Compatibility | FDM 3D printers |
As an accredited Clariant Polylactic Acid White 3D Printer Filament factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | |
| Shipping | |
| Storage |
Competitive Clariant Polylactic Acid White 3D Printer Filament prices that fit your budget—flexible terms and customized quotes for every order.
For samples, pricing, or more information, please contact us at +8618136850665 or mail to admin@ascent-chem.com.
We will respond to you as soon as possible.
Tel: +8618136850665
Email: admin@ascent-chem.com
Flexible payment, competitive price, premium service - Inquire now!
The Clariant Polylactic Acid White 3D Printer Filament is a pigmented polylactic acid monofilament supplied in 1.75 mm and 2.85 mm nominal diameters; no separate numerical model identifier is published in the supplier technical datasheet, so the product is ordered by polymer type, color, and diameter. The white coloration is achieved with a titanium dioxide masterbatch, typically rutile TiO₂ with alumina or silica surface treatment, dispersed in a PLA carrier resin. The masterbatch loading is proprietary, and published data for this exact Clariant configuration is limited. The following baseline values are drawn from publicly available data for unfilled PLA extrusion grades and from general white masterbatch compounding literature; lot-specific certificates of analysis supersede these ranges for production use.
| Property | Test method | Typical range |
|---|---|---|
| Melt volume rate, 210°C/2.16 kg | ISO 1133-1:2022 | 6–15 cm³/10 min |
| Tensile yield strength | ISO 527-2 | 50–60 MPa |
| Tensile modulus | ISO 527-2 | 3.2–3.5 GPa |
| Elongation at yield | ISO 527-2 | 2.5–4.0% |
| Charpy notched impact strength | ISO 179-1/1eA | 2–5 kJ/m² |
| Heat deflection temperature, 0.45 MPa | ISO 75-2/B | 50–60°C |
| Vicat softening temperature | ISO 306/B50 | 55–65°C |
| Density | ISO 1183-1 | 1.24–1.26 g/cm³ |
Melt volume rate should be monitored after drying because PLA is hydrolytically sensitive. An increase in melt volume rate greater than 20% relative to the lot-specific baseline after storage or drying indicates molecular weight reduction from hydrolysis or thermal chain scission. The filament diameter and ovality should be verified with a two-axis laser micrometer; typical production tolerances are ±0.05 mm for 1.75 mm filament and ±0.10 mm for 2.85 mm filament, but the spool label and certificate of analysis control the release specification.
White pigment loading is not a dilute inert addition. Inorganic TiO₂ particles increase the low-shear melt viscosity of PLA and alter the pressure profile through the hot end. At equivalent melt temperature, a 3–5 wt% TiO₂ masterbatch addition can raise melt pressure at the screen pack by 5–15% relative to unfilled PLA on single-screw filament extrusion lines with L/D 24:1 to 30:1. The Pigment surface treatment is critical: untreated rutile can agglomerate, produce brightness variation, and increase melt filtration pressure on 80 mesh or 120 mesh screen packs. Twin-screw compounding with L/D 40:1 and side-fed masterbatch at a barrel temperature profile of 170–190°C across zones 1–5 and a die temperature of 190–200°C is generally preferred to achieve uniform pigment dispersion and avoid die plate-out.
In desktop printing through a 0.4 mm brass nozzle, the volumetric flow demand at 60 mm/s print speed is approximately 7.5 mm³/s, based on nozzle cross-sectional area of 0.126 mm² and linear velocity of 60 mm/s. For a 0.4 mm line width and 0.2 mm layer height, the simplified bead cross-section is 0.08 mm², giving a volumetric demand near 4.8 mm³/s. White PLA compounds with pigment loadings above 3 wt% may require the lower half of the print speed range when the hot end cannot maintain melt temperature during high-flow segments. Rutile TiO₂ has a Mohs hardness of 6–7, so prolonged campaigns with a brass nozzle can accelerate bore wear; hardened steel or ruby orifice nozzles are appropriate when dimensional accuracy must be retained beyond 500 h of cumulative print time.
Moisture uptake in PLA-based filament is not a passive storage concern. At 23°C and 50% RH, unfilled PLA can reach 0.2–0.4 wt% moisture within 24–48 h; at 60% RH and above, moisture ingress is rapid enough to affect extrusion quality. Hydrolysis during melt processing shortens molecular weight, lowers melt strength, and produces steam voids at the nozzle. The white masterbatch carrier resin can contribute additional moisture if the masterbatch is not pre-dried. For open spool processing, a desiccant dryer with a dew point of −30°C to −40°C is recommended. Drying at 60–80°C for 4–6 h typically reduces residual moisture below 0.025 wt% (250 ppm). Spools should not remain in ambient air when relative humidity exceeds 60%; storage in sealed barrier bags with silica gel or in a dry cabinet maintained below 30% RH is the standard post-drying condition.
PLA is polycondensation-reversible and thermally sensitive. At hot end temperatures above 230°C, random chain scission and cyclization to lactide and oligomers become measurable within 10 min of static residence time. The practical extrusion window for unfilled PLA is commonly 190–220°C; for white-pigmented PLA, the window may narrow to 195–215°C when pigment loading is above 3 wt% because shear heating and increased melt viscosity extend residence time. A narrow processing window of ±5°C is not unusual when coloration and melt viscosity interact in low-diameter hot ends. Published thermal degradation kinetic studies for PLA report activation energies in the range of 120–160 kJ/mol under nitrogen, which means that temperature excursions above 230°C produce a disproportionate increase in degradation rate relative to 200°C operation.
All-metal hot ends are strongly preferred over PTFE-lined hot ends when the process requires the upper end of the PLA envelope. PTFE begins to decompose above 240°C, releasing fluorinated degradation products and forming surface residues. In all-metal hot ends, idle time should still be minimized; a maximum idle period of 5–10 min at 220°C is a conservative operational boundary. If the printer must pause, the hot end temperature should be reduced to 120–140°C or the material should be purged with unfilled natural PLA at 190°C before the idle period. Re-extrusion after idle should purge until the extrudate is clear of yellow or brown discoloration; yellowing is an early indicator of lactide formation and oxidative chromophores in the pigment carrier.
White PLA adheres to smooth polyetherimide sheet with a bed temperature of 50–60°C and a first-layer nozzle temperature of 210–220°C. The first layer is typically printed at 0.20 mm height with 0.40–0.50 mm line width and 20–30 mm/s linear speed to maximize contact area on the build surface. Bed temperatures below 50°C can produce corner lifting on rectangular parts longer than 100 mm; bed temperatures above 65°C can soften the first printed layers and produce an elephant-foot defect. On soda-lime glass, a polyvinyl alcohol adhesive or a treated adhesion sheet is required because clean uncoated glass does not provide reliable bond strength for PLA at room temperature. Spring steel sheets with PEI or powder-coated PEI are suitable when the sheet is demagnetized after printing; if the sheet is flexed too early, delamination occurs at the interface between the first layer and the coating rather than within the printed part.
No single ISO or ASTM method currently defines FFF build plate adhesion, so peel force comparisons must be made on identical substrate, first-layer squish, and bed temperature. Empirically, PEI at 60°C provides higher peel force than unheated glass with polyvinyl alcohol adhesive. Large flat parts with a footprint greater than 150 mm × 150 mm frequently require a brim of 8–15 mm or a raft to prevent corner separation during the lower-temperature regions of the print cycle. Chamber heating is not required for white PLA; an ambient temperature of 20–25°C is sufficient, but drafts and cooling fans should be shielded during the first 3–5 mm of build height to avoid differential shrinkage.
Relative to an unfilled natural PLA filament, the white TiO₂-loaded variant shifts the melt viscosity upward and reduces notched Charpy impact strength by approximately 5–10% at equivalent pigment loading, based on public PLA compound literature. The pigment acts as an opacifier and stress concentration site rather than a reinforcing filler. Compared to ABS, white PLA exhibits higher tensile modulus but lower impact toughness and lower heat deflection temperature. General ABS grades have tensile modulus of 1.8–2.4 GPa, elongation at break of 10–30%, and heat deflection temperature of 85–100°C at 0.45 MPa under ISO 75-2/B. White PLA will not tolerate service environments approaching 80°C without annealing or structural support.
Compared to PETG, white PLA has a higher tensile modulus and lower elongation at break. General PETG grades have tensile modulus of 1.8–2.2 GPa, elongation at break of 15–25%, and heat deflection temperature of 65–75°C at 0.45 MPa under ISO 75-2/B. PETG also absorbs moisture but is less hydrolytically sensitive than PLA during printing; however, PETG requires higher nozzle temperatures, typically 230–250°C, and is more prone to stringing. The white PLA filament therefore occupies a low-warpage, high-stiffness position at the cost of impact strength and thermal service range.
| Property | White PLA baseline | ABS | PETG |
|---|---|---|---|
| Tensile modulus, ISO 527-2 | 3.2–3.5 GPa | 1.8–2.4 GPa | 1.8–2.2 GPa |
| Tensile yield strength, ISO 527-2 | 50–60 MPa | 35–45 MPa | 45–55 MPa |
| Elongation at break, ISO 527-2 | 2–6% | 10–30% | 15–25% |
| Charpy notched impact strength, ISO 179-1/1eA | 2–5 kJ/m² | 15–30 kJ/m² | 8–20 kJ/m² |
| Heat deflection temperature, 0.45 MPa, ISO 75-2/B | 50–60°C | 85–100°C | 65–75°C |
The principal operational difference between white masterbatched PLA and dry-blended or natural PLA is dispersion quality and color consistency. Dry pigment at equal TiO₂ loading can form agglomerates that block nozzle orifices below 0.4 mm and produce visible streak defects. Masterbatch systems are generally preferred in production-scale compounding because they reduce die plate-out and melt filtration pressure spikes. Published data for the exact Clariant white PLA filament configuration is limited; therefore printed-part coefficients of thermal expansion, flexural creep modulus, and fatigue resistance must be generated for the specific layer height and infill geometry in use. Regulatory documentation should be checked against the supplier safety data sheet and the current REACH and RoHS declarations for the specific lot before use in food-contact or medical applications.