| Код ТН ВЭД | 137256 |
Как аккредитованный завод Clariant White Polycarbonate 3D Printer Filament, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.
| Упаковка | Packaged as a sealed 1 kg spool in vacuum foil bag with desiccant, labeled Clariant White Polycarbonate 3D Printer Filament. |
| Погрузка контейнера (20-футовый контейнер) | Container Loading (20′ FCL): Clariant White Polycarbonate 3D Printer Filament, palletized, shrink-wrapped, and secured for safe overseas chemical transport. |
| Доставка | Clariant White Polycarbonate 3D Printer Filament ships as a non-hazardous, non-regulated article. Each spool is vacuum-sealed with desiccant in a moisture-barrier bag and packed in a sturdy box. Store and transport at ambient temperature, away from direct sunlight, heat, and humidity. No special dangerous-goods documentation required. |
| Хранение | Store Clariant White Polycarbonate 3D Printer Filament in a cool, dry, dark place at 15–25°C and below 30% relative humidity. Keep sealed in an airtight container or vacuum bag with fresh desiccant. Protect from moisture, heat, UV light, dust, and solvents. Rotate stock and dry before use if moisture absorption is suspected. |
| Срок годности | 12 months when stored in original sealed packaging in a cool, dry place, away from moisture, heat, and direct sunlight. |
Clariant White Polycarbonate 3D Printer Filament is treated in the following application scenarios as a white-pigmented amorphous polycarbonate FFF feedstock. The exact pigment loading, additive package and melt flow classification must be confirmed against the raw material certificate and safety data sheet before any of the processing windows below are used for production. Published data for this specific configuration is limited where indicated; the numerical ranges are drawn from publicly available pigmented PC filament technical bulletins and high-temperature FFF equipment documentation.
Moisture control, rather than melt temperature, is the limiting variable when white polycarbonate filament is converted into industrial control panel covers and terminal block guards. The filament is dried in a dry-air spool dryer at 80 °C for 4–6 h until the residual moisture content is below 0.02 wt%. Above that threshold, hydrolysis degrades the polycarbonate backbone during the melt stage and generates surface splay on vertical walls. A direct-drive high-temperature FFF system with a hardened steel nozzle is operated with a nozzle set point between 295 °C and 315 °C. The bed temperature is maintained at 110–120 °C. The chamber temperature is held at 70–90 °C. The first layer is printed at 0.25 mm height on a polyetherimide sheet or ceramic glass plate to reduce edge lift. The production layer height is fixed at 0.20 mm. Wall thickness is generated with 6 perimeters at 0.4 mm extrusion width, yielding a nominal wall of 2.4 mm except at corners, holes and boss transitions. The part is then annealed in a recirculating-air oven at 120 °C for 2 h and cooled at 0.5 °C/min to below 70 °C before removal. The resulting enclosures are intended for DIN-rail terminal covers and pushbutton station guards where the white substrate improves contrast for laser-marked labels. However, the printed article must be verified against the mechanical-strength and protection requirements of IEC 60204-1:2016 clause 13.3 because FFF-walled covers cannot be assumed to behave like their injection-moulded counterparts.
The table below lists the outer verification boundary for the control-panel application. Each row is a mandatory check when the printed white PC cover is placed in a machine control cabinet. Published data for this specific configuration is limited because UL 94 ratings are assigned to laboratory specimens at defined thicknesses, usually 1.5 mm or 3.0 mm. A printed cover with 6 perimeters at 0.4 mm can show edge effects that are not captured in the resin datasheet. The part should therefore be designed with a minimum wall section of 2.4 mm if the intended rating is to be traced to the raw material.
| Application boundary | Standard or directive | Examination required for printed white PC |
|---|---|---|
| Control panel operator guard | IEC 60204-1:2016 clause 13.3 | Impact resistance, direct-contact protection and degree of enclosure protection |
| Fire behaviour | UL 94 vertical burn section 8 | Verify whether the printed wall thickness reproduces the rated specimen thickness |
| Restriction of hazardous substances | RoHS Directive 2011/65/EU Annex II | Pb, Cd, Hg, CrVI, PBB, PBDE content in the pigmented masterbatch |
| REACH SVHC | EC 1907/2006 Article 33 | SVHC concentration below 0.1 wt% per supplied lot |
| Insulation coordination | IEC 60664-1:2020 | Tracking index and creepage distance in the actual layer orientation |
The substitution is not a direct geometry exchange because polycarbonate and nylon 6 differ in moisture uptake, thermal expansion and notch sensitivity. Machined nylon 6 absorbs roughly 2.5–3.0 wt% water at 23 °C equilibrium, whereas amorphous polycarbonate absorbs less than 0.35 wt% under ISO 62:2008. The printed white PC jig therefore does not swell in the same way after coolant mist exposure. That change is beneficial for drill-bushing centre distances and inspection nests, but the PC part requires a heated chamber above 70 °C for parts longer than 120 mm. If the chamber temperature falls below 70 °C, the newly deposited layer cools below the glass transition temperature before the next layer is applied, and delamination occurs under drilling torque. The tool is printed at 0.2 mm layer height with a 0.4 mm hardened steel nozzle and an extrusion width of 0.5 mm. Volumetric speed is kept between 6–10 mm³/s. Layer time below 20 s produces heat accumulation and smears near vertical walls. The jig body is built with 50% triangular infill and 8 perimeters. After printing, the critical datum faces are machined flat to remove 0.3 mm of surface material. The finished parts are used as drill bushings, gauge nests, robot gripper fingers and assembly pallets. Tensile properties of printed PC are direction-dependent. Z-oriented specimens commonly retain 40–60% of XY tensile strength when printed at 0.2 mm layer height with a chamber at 80 °C. The value must be measured on each printer using ASTM D638-14 Type IV specimens because the nominal resin datasheet cannot predict the interlayer interface.
In vacuum-forming shops, white pigmented polycarbonate is printed into plug-assist bodies, clamp frames and vacuum box adapters where tool surface temperature remains below 120 °C during short-cycle polystyrene or PETG sheet forming. The sidewalls are built with 8 perimeters and 60% rectilinear infill to resist deformation under vacuum load. The upper surface is printed with a 0.15 mm layer height to reduce post-machining time. The tool is then mounted on a CNC router and skimmed at 0.3 mm depth to remove extrusion ridges. The clamp faces are sealed with a two-component epoxy that is allowed to cure for 24 h at 23 °C before use. Because polycarbonate is attacked by chlorinated and aromatic solvents, the tool must not be cleaned with acetone, dichloromethane or methyl ethyl ketone. A mild aliphatic hydrocarbon cleaner is used instead. Published data for the solvent resistance of this specific white pigmented PC compound is limited, so a seven-day immersion check in the actual cleaning fluid is recommended before the tool enters production. The terminal articles in this application are low-volume forming tools, vacuum box collars and set-up masters for sheet placement.
Directly beneath the terminal screws, a printed white PC barrier must maintain creepage distance and withstand local heating from a loose connection. The part is printed with 100% infill and 0.15 mm layer height. The nozzle set point is 300 °C. The chamber is held at 80 °C after a 4 h dry-air spool dryer pre-dry at 80 °C. The printed barrier is annealed at 120 °C for 2 h to reduce residual stress. Injection-moulded PC datasheets often list dielectric strength at 20–35 kV/mm for 1 mm specimens under IEC 60243-1. A printed sample with 0.15 mm layers may show a lower value because of interfacial microvoids and first-layer surface irregularity. Consequently, a safety factor of 1.5 on creepage distance is applied unless a batch-specific breakdown test is performed. The terminal-end components are busbar supports, phase barriers and terminal shields in low- and medium-voltage control assemblies. The white PC substrate is used for high-visibility phase identification and for laser-marked conductor numbers. The component is evaluated under pollution degree 2 in IEC 60664-1:2020, with the printed layer stack oriented parallel to the creepage path. The application boundary is electrical insulation. It does not replace the certified insulation system of the equipment. Published data for the specific Clariant white PC filament in printed busbar barriers is limited, so the first article of every new print orientation must be subjected to comparative tracking and breakdown testing.
Because polycarbonate is physically attacked by aromatic hydrocarbons, ketones and esters, solvent vapour smoothing with acetone or dichloromethane is excluded from coolant manifold finishing. The manifold is printed with 0.10 mm layer height and 100% infill to reduce internal voids. The nozzle is set at 305 °C. The bed is held at 110 °C. The chamber is kept at 85 °C. After printing, the manifold is annealed at 120 °C for 2 h and then tested hydrostatically at 2.5 bar with a water-ethylene glycol mixture of 50 vol% ethylene glycol in deionised water. The service envelope is limited to pH 6–8, fluid temperature below 70 °C and no free chlorine. Above that temperature, hydrolysis of polycarbonate accelerates at the layer interfaces. The manifold is used as a coolant distribution block, purge manifold or filter housing in CNC machine-tool plumbing. The thin internal ribs between channels are the highest-risk zone because residual stress from the print trajectory and the sharp notch geometry combine to promote environmental stress cracking under ISO 22088-2. The fluid must be inhibited against corrosion. Silicated antifreeze may deposit a film that reduces the sealing force on printed threads. The terminal product is a low-pressure non-critical manifold. It is not rated as a pressure accessory under pressure equipment directives because the printed wall-stock and fitting retention are not comparable to machined or injection-moulded manifolds. A batch tensile test on the first article in the XY and Z directions using ISO 527-2:2012 is required before service.
A 45° snap-fit hook with a root radius below 0.5 mm is a critical feature for printed white polycarbonate linkage assemblies. The hook is oriented so the bending axis follows the XY plane rather than the Z axis. Parts are printed at 0.10 mm layer thickness with 100% infill and 10 perimeters. The nozzle set point is 300 °C, and the chamber is held at 80 °C. Annealing is performed at 125 °C for 1 h, not to raise tensile strength but to lower residual stress in the root radius. Under reverse bending, a stress-relieved PC hook shows lower crack propagation at the root. However, annealing may change elongation at break in ways that vary across PC FFF datasets. A proof test of 500 actuation cycles is applied to each printed lot. The unfilled PC tensile modulus is around 2.3–2.4 GPa, and the yield stress is around 60–65 MPa under ISO 527-2:2012. The interlayer bond in the root region is the limiting property, not the bulk resin value. The terminal parts are battery holder latches, inspection door fasteners and small machine-guard retention clips. The white pigment loading can shift melt strength and extrusion back-pressure, so the first article of a new filament batch must be checked for die swell at the selected extrusion multiplier. Batch-to-batch variance in titanium dioxide dispersion can create micro-voids that act as crack-initiating sites at the hook root. Published data for this specific configuration is limited.
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Clariant white polycarbonate 3D printer filament is an amorphous, unfilled thermoplastic strand supplied for material extrusion platforms operating under the terminology of ISO/ASTM 52900. The product is based on bisphenol A polycarbonate, generic CAS registry 25037-45-0, and is pigmented with an inorganic white colorant system that provides opacity before printing and after post-processing. Spooled formats are nominally 1.75 mm or 2.85 mm diameter, with industrial lots normally inspected to a diameter tolerance of ±0.05 mm and ovality of ≤0.03 mm. The material is selected when service temperature, stiffness, and toughness requirements exceed the capabilities of PETG, PLA, or ABS. Because this is an unfilled polycarbonate rather than a compounded flame-retarded or carbon-fiber-reinforced grade, the processing window is dominated by moisture control, chamber temperature, and the need for a stable glass transition state during cooling. The exact Clariant grade code, production date, and lot-specific certificate of analysis on the spool label remain the authoritative source for compliance and property data.
The spool is generally supplied in a sealed polymer barrier bag containing a desiccant sachet and a humidity indicator card. Upon receipt, the package should be inspected for puncture; a breached moisture barrier invalidates the dry state and requires drying before processing. Unopened spools stored below 30 °C and 50 % RH retain their packed moisture level, but once opened the filament begins to equilibrate with ambient humidity. At 23 °C and 50 % RH, unfilled polycarbonate reaches an equilibrium moisture content of 0.12–0.20 wt% according to ISO 62. At relative humidity above 60 %, open-spool exposure longer than 4 h is sufficient to raise moisture above the safe extrusion threshold in many industrial environments. The material should therefore be returned to a desiccant chamber or dried before the next build cycle.
Drying is the controlling operation. Residual moisture must be below 0.020 wt% before the polymer enters the hot end; above this boundary, heterogeneous hydrolysis at melt temperature generates bubbles, reduces interlayer fusion, and produces brittle or silvered side surfaces. Desiccant drying at 80–100 °C for 4–8 h with a dew point below -40 °C is the standard industrial method. Convection ovens may be used only with forced air and a vented spool support, because localized conduction to a solid tray can soften the hub or expand the wound core unevenly. Verification is performed with a moisture analyzer or coulometric Karl Fischer titration on a sacrificial length of filament. After drying, the spool is transferred to a sealed dry box maintained below 10 % RH and fed through a PTFE or reverse-Bowden tube to limit moisture re-entry.
Extrusion parameters are machine-specific but fall within a narrow band. The hot end must be all-metal and capable of sustained operation at 270–300 °C; white pigmentation may require the upper part of this range because titanium dioxide raises melt viscosity and reduces visible melt transparency. Nozzle diameters from 0.4 mm to 0.6 mm are appropriate, with layer heights of 0.15–0.25 mm for a 0.4 mm nozzle. The platen is held at 90–110 °C, and a chamber temperature of 60–80 °C is recommended for parts with long continuous perimeters. On open-frame machines without a chamber, warpage is controlled by reducing part size, using a brim of 8–15 mm, and preventing draft currents. First-layer speeds are limited to 20–30 mm/s, while outer perimeters can be printed at 30–60 mm/s. Direct-drive retraction of 0.5–1.5 mm at 20–40 mm/s or Bowden retraction of 4–6 mm at 30–50 mm/s prevents stringing without introducing extrusion stalls. Melt residence should be minimized: at 300 °C, a static hot end above 5 min causes molecular weight loss and local yellowing of the white pigment. If the machine is idle, the nozzle is purged with fresh polycarbonate before resuming the build.
Build plate surface selection is a process conflict. Float glass without an interlayer is insufficient at bed temperatures above 90 °C because adhesion develops only when the polycarbonate wets a high-energy polymer surface; PEI sheets, polyimide tape, or polycarbonate adhesive films are preferred. A fixed polycarbonate sheet can be used when the platen is cleaned with anhydrous isopropanol and maintained at 100–110 °C. If first-layer corners peel during the first 5 mm of build height, the thermal gradient at the bottom of the part is too high; corrections are to raise the chamber temperature, reduce the first-layer extrusion width below 120 % of nozzle diameter, or enclose the machine to limit convective loss.
White PC is sensitive to cross-contamination from lower-temperature thermoplastics. Residual PLA or PETG in the hot end can degrade at PC processing temperatures and form carbonaceous inclusions; a purge sequence with natural PC or a commercial purge compound at 270–300 °C is required before building white parts. The white pigment also makes contamination visible as dark specks, so the feed path from dry box to extruder should be sealed and free of abraded polymer dust.
Table 1 lists class-typical values for unfilled white polycarbonate under standardized test protocols. Values are not lot-specific and must be superseded by the Clariant certificate of analysis for the exact grade. Published data for this specific configuration is limited, particularly for printed XY properties, because raster build orientation, air gap, and chamber thermal history produce different mechanical outcomes than injection-moulded test specimens.
| Property | Test method | Indicative value | Process limitation |
|---|---|---|---|
| Density | ISO 1183-1 | 1.19–1.21 g/cm³ | White pigment may shift density within this band |
| Melt volume-flow rate | ISO 1133-1 at 300 °C, 1.2 kg | 8–12 cm³/10 min | TiO₂ pigmentation may reduce MVR by 5–15 % |
| Tensile yield stress | ISO 527-2 | 60–65 MPa | Injection-moulded; printed XY values are lower |
| Tensile elongation at break | ISO 527-2 | 50–80 % moulded; 8–30 % printed XY | Raster boundaries dominate printed ductility |
| Flexural modulus | ISO 178 | 2300–2400 MPa | Moulded value; printed stiffness is build-orientation dependent |
| Heat deflection temperature, HDT/A | ISO 75-2/A | 124–130 °C | Printed parts may show lower depending on residual stress |
| Vicat softening temperature, B50 | ISO 306/B50 | 145–150 °C | Heating rate 50 °C/h |
| Moisture equilibrium | ISO 62 | 0.12–0.20 wt% | At 23 °C, 50 % RH |
| Required dry target | Moisture analyzer or Karl Fischer titration | ≤0.020 wt% | Mandatory before extrusion |
| Coefficient of linear thermal expansion | ISO 11359-2 | 65–70 × 10⁻⁶ K⁻¹ | Relevant to warp and clearance design |
Application temperature limits follow the heat deflection and Vicat data. Unreinforced white PC is appropriate for internal housings and fixtures exposed to transient temperatures up to 115 °C, but continuous service above 120 °C is not recommended because creep and dimensional relaxation accelerate near the glass transition. The material should not be used with strong alkalis, ammonia-based cleaning agents, esters, ketones, chlorinated solvents, or aromatic hydrocarbons under stress. Polycarbonate is susceptible to environmental stress cracking; ISO 22088-2 and ISO 22088-3 test methods are relevant when specifying parts for chemical exposure. If a printed part contains internal stress from differential cooling, annealing at 100–110 °C for 1–2 h may reduce cracking in service, but dimensional change during annealing must be compensated in the part design.
In electrical enclosures, the primary advantage over polyamide is lower moisture uptake and better dimensional stability in humidity swings up to 50 % RH. The comparative tracking index of any specific white PC is grade-dependent; before specifying for live parts, the data sheet’s CTI, dielectric strength, and UL 94 rating must be reviewed. Unmodified polycarbonate is not automatically flame-retarded, and the white unfilled product should not be assumed to satisfy V-0 requirements unless a yellow card or IEC 60695-11-10 classification is cited for that exact grade. Flame-retarded polycarbonate variants from Clariant, where applicable, differ from this unfilled white product by the addition of flame-retardant packages that can reduce impact strength and narrow the processing temperature window.
Selection against PETG is driven by heat resistance and stiffness. PETG typically exhibits a heat deflection temperature of 64–70 °C at 1.8 MPa and lower flexural modulus, whereas the unfilled white PC values in Table 1 are approximately 60–70 % higher for flexural stiffness and nearly double the HDT/A. PETG prints with lower chamber requirements and less warp, but it is not a substitute when the part will be held at 100–115 °C during use.
Selection against PC-ABS is driven by rigidity and maximum service temperature. PC-ABS blends show better flow, reduced warp, and less printing difficulty in large thin-walled sections, but tensile yield and HDT/A are typically lower than unfilled polycarbonate. The trade boundary occurs at parts with wall thickness below 2.5 mm and build volumes above 200 mm; these favor PC-ABS for dimensional control, while thick-section heated fixtures favor white PC.
Selection against glass- or carbon-filled polycarbonate is based on ductility and surface finish. Filled grades offer lower thermal expansion and can reduce warpage, but they are abrasive, often require hardened nozzles, and produce lower elongation at break. Unfilled white PC retains higher printed ductility and is not abrasive to standard brass nozzles. Conversely, it has higher shrinkage and cannot be expected to match the dimensional accuracy of filled PC on large flat parts.
Shrinkage of unfilled PC after cooling from melt is anisotropic in fused filament fabrication. The coefficient of linear thermal expansion is 65–70 × 10⁻⁶ K⁻¹ per ISO 11359-2; if the part cools from 140 °C to 25 °C, an isotropic linear strain of approximately 0.7–0.8 % can be generated. In printed parts, the strain is constrained by the platen adhesion and layer deposition path, so it appears as curl, corner lift, or interlayer residual stress rather than uniform shrinkage. Dimensional compensation factors of 0.3–0.5 % in the X and Y planes and 0.2–0.4 % in the Z plane are sometimes applied to CAD data for close-fitting parts, but the actual values depend on chamber temperature and raster angle. Published data for this specific configuration is limited; dimensional qualification should be performed on a test coupon before committing a full build.
Compliance status for a white unfilled polycarbonate filament is not a single certificate; it is a matrix of substance, article, and application-specific requirements. Table 2 summarizes the standards that should be requested from the supplier or evaluated on the printed article.
| Item | Standard or regulation | Scope and grade-specific note |
|---|---|---|
| REACH | Regulation (EC) No 1907/2006 | SVHC candidates under Article 33; lot-specific declaration required |
| RoHS | Directive 2011/65/EU Annex II | Homogeneous-material testing per EN 62321 series; pigment package disclosure required |
| Food contact | FDA 21 CFR 177.1580, EU Regulation 10/2011 | Resin compliance does not grant food-contact status to printed article; migration testing is part-specific |
| Flammability | UL 94, IEC 60695-11-10 | Unmodified PC may be V-2 or V-0 depending wall thickness; grade-specific yellow card required |
| Additive manufacturing terminology | ISO/ASTM 52900 | Material extrusion category; process parameters are printer-specific |
| Biocompatibility | ISO 10993 series | Not presumed; printed article and cleaning protocol require evaluation |
In a production run for a white polycarbonate electrical enclosure, the spool is dried for 6 h at 90 °C, loaded into a dry box, and printed on a PEI-laminated platen at 105 °C with a chamber at 70 °C. The toolpath uses a 0.4 mm nozzle, 0.20 mm layer height, outer perimeter speed of 40 mm/s, and a brim of 10 mm. After removal, the part is annealed at 105 °C for 1 h and allowed to cool in still air. Threaded brass inserts are installed with a controlled-temperature soldering tip, and pre-tension is avoided at sharp boss edges to prevent stress cracking. This build sequence addresses the two dominant failure modes: hydrolysis from residual moisture and warpage-induced corner lift.