| Код ТН ВЭД | 254587 |
Будучи аккредитованным заводом по производству нитей для аддитивного производства Essentium PCTG-Z, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.
| Упаковка | Vacuum-sealed foil bag in a black cardboard box, containing one 1.75 mm, 750 g spool of Essentium PCTG-Z filament. |
| Погрузка контейнера (20-футовый контейнер) | 20′ FCL container loading: non-hazardous Essentium PCTG-Z additive manufacturing filament, palletized, shrink-wrapped, secured for ocean transport with shipping documents. |
| Доставка | Essentium PCTG-Z Additive Manufacturing Filament is shipped as a non-hazardous, non-regulated article. It requires no UN number, hazard class, or packing group. Each spool is sealed in a moisture-barrier bag with desiccant, then boxed. Transport by ground, air, or sea is acceptable under normal dry, cool conditions. |
| Хранение | Store Essentium PCTG-Z Additive Manufacturing Filament in its original sealed package or an airtight container with fresh desiccant. Keep in a cool, dry, well-ventilated area away from direct sunlight, heat, moisture, and ignition sources. Reseal promptly after use. Avoid high humidity; if moisture is absorbed, dry according to manufacturer instructions before printing. Rotate stock and label clearly. |
| Срок годности | Shelf life: 24 months when kept in original sealed packaging, cool and dry, away from moisture, heat, and sunlight. |
Essentium PCTG-Z Additive Manufacturing Filament is processed on direct-drive fused filament fabrication equipment when polycarbonate is rejected because of bed adhesion instability or brittle failure in thin sections. The filament is dried in a desiccant dryer at 65 °C for 4 h to 6 h until moisture content falls below 0.02 % by weight. Residual moisture above this threshold generates microbubble haze and interlayer delamination because water vapor expands at the nozzle exit. A direct-drive extruder with a 0.4 mm brass nozzle is maintained at 250 °C to 270 °C. The build platform is held at 70 °C to 80 °C. For optical inspection covers, a layer height of 0.15 mm and an extrusion multiplier of 1.00 are used. Print speed is limited to 60 mm/s because higher speeds introduce melt starvation at the nozzle tip and reduce interlayer weld strength. The terminal part is a clear snap-fit cover for electronics inspection stations, but as-printed transparency is not equivalent to injection-molded PCTG. Haze measured on injection-molded plaques according to ASTM D1003-21 is not reproduced on printed walls because each layer boundary acts as a refractive interface. Annealing at 80 °C for 2 h in a convection oven reduces stress birefringence, yet creates dimensional drift of 0.2 % to 0.5 % along the printing direction. A compliance consideration is that the filament is not certified for medical device use. Published data for the specific configuration is limited.
Food-contact processing aids can be fabricated from Essentium PCTG-Z only after batch-level verification against EU Regulation (EU) No 10/2011 and FDA 21 CFR 177.1240. A dry-contact chocolate mould insert or biscuit lane divider is printed with a 1.0 mm nozzle and a 0.4 mm layer height to reduce the total linear length of crevices per unit area. The part is built at 100 % infill with a rectilinear raster angle of 0° relative to the contact surface. No mineral filler is added because dispersed particulates increase surface porosity and reduce cleanability. The extruder temperature is set to 265 °C and the build plate to 75 °C. After printing, the surface is cleaned with 70 % isopropanol and dried at 50 °C for 24 h. Migration testing is carried out using EN 1186-1:2002 and EN 13130-1:2004. Repeated cleaning with hot water above 60 °C is not recommended because thin walls may warp. The terminal products are dry-fill hopper liners and conveyor side guides. A principal limitation is that layer lines provide mechanical retention points for food soils, and polished surfaces do not remove all internal voids. No published dataset for this exact application was identified.
The automotive sector substitutes PCTG-Z for ABS in interior bracket prototypes when styrene odor during long print runs becomes a nuisance. Test specimens printed flat and conditioned at 23 °C and 50 % relative humidity for 40 h are evaluated according to ISO 527-2:2012. Interlayer tensile strength is typically lower than in-plane tensile strength by 20 % to 30 %. A chamber temperature of 50 °C narrows this gap but increases the risk of heat-creep in extruders without liquid cooling. Corner lift is controlled below 0.5 mm by setting the first layer height to 0.25 mm and applying a polyvinyl acetate bed adhesive. An extrusion temperature of 270 °C improves layer adhesion at the cost of small-hole fidelity in vent grilles. Fogging candidates are conditioned for 24 h at 80 °C then tested according to DIN 75201:2011. The terminal components include map pocket retaining clips, wiring harness guides, and dashboard vent prototypes. Exterior trim is excluded unless a UV-stable topcoat is applied. Published data for this specific configuration is limited.
| Application category | Nozzle diameter | Layer height | Extruder temperature | Build plate temperature | Chamber temperature |
|---|---|---|---|---|---|
| Clear functional prototyping | 0.4 mm | 0.15 mm | 250 °C to 270 °C | 70 °C to 80 °C | ambient to 40 °C |
| Automotive interior brackets | 0.6 mm | 0.25 mm | 270 °C | 75 °C | 50 °C |
| Food-contact dry guide | 1.0 mm | 0.4 mm | 265 °C | 75 °C | ambient |
Pharmaceutical handling trays printed from PCTG-Z are used for tablet sorting and instrument covers where cleaning with 70 % isopropanol or 3 % hydrogen peroxide is required. The process uses a 0.4 mm stainless steel nozzle, a layer height of 0.12 mm, and 5 perimeters to limit solvent ingress. Infill is set to 80 % gyroid so that drainage is not blocked after washing. Annealing at 75 °C for 4 h reduces residual stress. Steam autoclave exposure at 121 °C produces permanent deformation because the heat deflection temperature of PCTG-type copolyester at 0.455 MPa is typically below 75 °C. The filament is not certified as USP Class VI unless the supplier certificate explicitly states so. Cytotoxicity screening is performed on finished printed parts according to ISO 10993-5:2009, not on pellets or filament, because extrusion residues alter leachables. End products are tablet sorting trays, laboratory instrument covers, and sample holders. Solvent exposure to acetone or methylene chloride must be avoided; stress cracking can occur within minutes under load. Published data for this specific configuration is limited.
| Normative reference | Scope | Application to printed PCTG-Z |
|---|---|---|
| FDA 21 CFR 177.1240 | Food-contact copolyester resin | Resin compliance must be confirmed by supplier batch documentation; printed surface is not automatically compliant |
| EU Regulation (EU) No 10/2011 | Plastic food-contact materials and articles | Finished printed article requires migration testing per EN 1186-1:2002 and EN 13130-1:2004 |
| ISO 10993-5:2009 | In vitro cytotoxicity | Testing is conducted on finished printed and post-processed parts, not raw filament |
| ISO 527-2:2012 | Tensile properties of plastics | Used for layer-bond strength comparison under FFF orientation |
| DIN 75201:2011 | Fogging behavior of interior materials | Applied to automotive interior trim candidates after thermal conditioning |
Robotic gripper jaws and assembly fixtures made from PCTG-Z are printed when vision systems need transparent windows to verify part seating. The jaw body is built with 6 perimeters and 50 % triangular infill. Brass threaded inserts are installed with a soldering tip set to 240 °C. The boss hole is designed 0.4 mm smaller than the insert outer diameter. Cyclic clamp force of 250 N requires a boss wall thickness above 3 mm; below that value insert retention torque degrades after repeated loading. Dimensional inspection is conducted after conditioning at 23 °C ± 2 °C and 50 % ± 5 % relative humidity for 40 h according to ASTM D5947-18. A linear thermal expansion coefficient near 80 × 10⁻⁶ K⁻¹ requires compensation when the fixture moves between a 20 °C inspection room and a 40 °C assembly line. Terminal components include gripper jaws for automotive connectors, press-fit locating plates, and soldering masks. Contact with ketones or chlorinated solvents is incompatible. No published dataset for this exact fixture configuration was identified.
Transparent fluidic manifolds and leak-test fixtures made from PCTG-Z serve low-pressure aqueous applications where polycarbonate is rejected due to detergent sensitivity. The manifold is printed with a 0.6 mm nozzle and a 0.3 mm layer height at 260 °C. Internal channels are oriented to avoid support material; where a sacrificial support is unavoidable, the channel is drilled and brushed after printing. The part is annealed at 70 °C for 2 h and then pressure-tested with water at 0.5 bar to 1.0 bar. Leakage from layer boundaries is mitigated by a 0.2 mm wall offset that is machined or reamed back to nominal. The terminal products are dialysis prototype manifolds, water distribution blocks for laboratory instruments, and bubble inspection fixtures. The material is not suitable for continuous exposure to hot ethylene oxide above 50 °C or to chlorinated hydrocarbons. Published data for this specific configuration is limited.
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Essentium PCTG-Z Additive Manufacturing Filament is an amorphous, glycol-modified copolyester feedstock for fused filament fabrication. The product is supplied as a natural transparent monofilament in 1.75 mm and 2.85 mm diameters on 750 g spools. The polymer backbone is a terephthalate copolyester containing cyclohexanedimethanol; this substitution inhibits crystallization and produces a material with lower retained residual stress than semicrystalline polyester alternatives. The amorphous morphology is relevant to part performance because it permits deep interlayer diffusion without the crystallization-rate limitations that affect PET and PLA. The glass transition temperature of PCTG-class resins places the service ceiling above PETG and below polycarbonate, while the melt viscosity remains low enough for use on conventional direct-drive and Bowden extruders.
Compared with PETG, the higher cyclohexanedimethanol content in PCTG shifts the glass transition and reduces the tendency for strain-induced crystallization at the nozzle. This difference is observed on large flat parts as reduced plate-side curl and as more uniform filament diameter after retraction. Published data for the exact Z formulation are limited; however, the manufacturer positions the Z designation as a processing variant with lower residual stress accumulation and improved interlayer fusion relative to standard PCTG. Operators should confirm the current datasheet for the specific lot because pigment and regrind levels can move the crystallization onset and melt flow rate.
Against unmodified PCTG, the primary practical difference claimed for the Z grade is a broader temperature window between the onset of melt flow and the onset of thermal degradation. In production terms, that window reduces the frequency of cold-layer delamination on thin-walled parts and permits higher volumetric throughput before the extruder motor current becomes unstable. The material should not be treated as a direct drop-in replacement for PETG in all fixtures, because its thermal expansion and solvent response differ enough to require revalidation of interference fits and chemical cleaning protocols.
Fluid-contact manifolds, valve bodies, and custom pump housings are prepared from PCTG-Z when service conditions include dilute acids, alcohols, or aliphatic hydrocarbons. The copolyester backbone exhibits better hydrolysis resistance than amorphous PLA and lower environmental stress cracking than acrylic in the presence of isopropanol. The upper continuous-use temperature remains below the glass transition; exposure above 65 °C under load can produce creep in threaded connections and compression fittings. Aromatic solvents, ketones, and chlorinated hydrocarbons may plasticize or craze the material, so compatibility testing according to ASTM D543 is required before any process fluid is approved.
Moisture absorption by PCTG is lower than that of polyamide but sufficient to generate hydrolytic degradation at melt temperature. Before processing, the filament should be dried at 65 °C for 4 h to 6 h in a forced-air or vacuum dryer. At ambient relative humidity above 60%, a dry-box feed with desiccant or an active dew-point controller set below -20 °C is recommended for continuous operation. Injection-molded copolyester data show that moisture contents above 0.03% by weight reduce melt strength and produce surface splay; in fused filament fabrication, the equivalent defects are bubble formation, nozzle drool, and weak layer boundaries.
Storage of partially used spools should be in sealed containers with fresh desiccant. If a spool has been exposed to ambient air for more than 24 h in an uncontrolled print cell, drying is repeated before returning to service. Drying temperature must not exceed 75 °C because spool deformation and filament tacking may occur above that range.
Extrusion of PCTG-Z is typically performed between 240 °C and 270 °C, with the higher end reserved for large nozzles and high volumetric rates. Build plate temperature is normally set at 70 °C to 80 °C on glass, polyetherimide, or carbon-fiber-reinforced build surfaces. Small sections below 100 mm may be printed on unheated flexible polyester build sheets if a copolyester-compatible primer is applied and the chamber is shielded from drafts.
For a 0.4 mm nozzle, the practical upper volumetric throughput is near 12 mm³/s. Above this rate, the residence time in the nozzle is insufficient for molecular diffusion across the layer interface, and the resulting part shows reduced transverse tensile strength. Wall thickness should be kept above 1.2 mm for pressure-bearing fluid parts; the perimeter count and infill density are then selected to maintain a continuous fused shell rather than a porous core. Layer heights from 0.10 mm to 0.25 mm are acceptable, but the deviation from nominal filament diameter should be monitored with a laser micrometer because ovality above 0.05 mm produces downstream flow-rate variation on Bowden systems.
Chemical resistance of PCTG is method-dependent rather than universal. In laboratory immersion tests, the material generally retains tensile strength after short-term exposure to dilute mineral acids and to aliphatic hydrocarbon fluids, but this does not imply compatibility with continuous solvent contact. Environmental stress cracking can occur when a stressed printed part is exposed to isopropanol, certain glycol ethers, or aggressive cleaning agents. Cracking is accelerated by residual stress at sharp corner radii and by excessive extrusion temperature that builds thermal contraction strain into the part.
Post-processing by machining is possible after printing, but the amorphous copolyester softens at relatively low cutting forces. Flood cooling should be avoided if the coolant contains ketones or aromatic solvents. Vapor polishing is not recommended because the solvent classes capable of smoothing the surface are also capable of inducing stress cracking. Annealing of PCTG-Z is generally less effective than annealing of PLA or semicrystalline polymers because the material does not crystallize to a significant extent; extended thermal cycling may only relieve a portion of the frozen-in orientation stress.
The following table summarizes manufacturer-published typical values for dried, unannealed PCTG-Z filament printed in the horizontal build orientation. Values are derived from a standard tensile bar rather than a production part geometry.
| Property | Test method | Typical value |
|---|---|---|
| Density | ASTM D792 | 1.23 g/cm³ |
| Tensile strength at yield | ASTM D638 | 50 MPa |
| Tensile modulus | ASTM D638 | 1600 MPa |
| Elongation at break | ASTM D638 | >150% |
| Flexural strength | ASTM D790 | 70 MPa |
| Flexural modulus | ASTM D790 | 1500 MPa |
| Notched Izod impact at 23 °C | ASTM D256 | 650 J/m |
| Heat deflection temperature at 0.455 MPa | ASTM D648 | 70 °C |
| Melt volume-flow rate at 230 °C, 2.16 kg | ASTM D1238 | 20 cm³/10 min |
| Water absorption, 24 h | ASTM D570 | 0.2% |
In production AM cells using direct-drive extruders with hardened steel nozzles, PCTG-Z runs at lower extruder motor current than polycarbonate and produces less plate-side curl than PETG on unheated perimeter zones. Batch-to-batch diameter variation is controlled through in-line laser measurement; operators should still verify ovality at spool changeover and record melt temperature during the first purge because thermistor calibration varies between printer brands. When a print farm transitions from PETG to PCTG-Z, the existing purge routine should be extended by at least 200 mm of filament or until the purge becomes optically clear, because cross-contamination with degraded PETG can create interfacial delamination in the next part.
Essentium supplies PCTG-Z with lot-level diameter and ovality data. For food-contact or skin-contact use, the base copolyester may meet certain requirements under FDA 21 CFR 177.1315 and EU Regulation No 10/2011, but the printed article must be evaluated separately. Fused filament fabrication introduces surface roughness, internal voids, and possible decomposition products at the nozzle; these factors are not addressed by raw-resin compliance statements.
Traceability documentation should retain the spool lot number, dryer temperature log, and hot-end temperature profile for each regulated part. If colorant masterbatch is added to natural PCTG-Z, the compliance status changes, and the full mixture must be reassessed under the intended use condition. Electrical and electronic applications are evaluated under RoHS 3 (EU 2015/863) for restricted substances, but the user is responsible for confirming that the final printed component meets any additional OEM-specific volatile organic compound limits.
The operational boundary for PCTG-Z is defined by temperature, solvent exposure, and sustained load. The material should not be used for load-bearing parts that exceed 60 °C in continuous service unless creep testing under ISO 899-1 has been performed. It is also unsuitable for direct contact with strong alkalis, ketones, esters, and chlorinated hydrocarbons. When a production application approaches these limits, published data for the specific configuration are limited and end-use validation under the relevant ASTM or ISO method is required.