| Код ТН ВЭД | 226403 |
Как аккредитованный завод по производству нитей BigRep PLX PLA, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.
| Упаковка | BigRep PLX PLA-derived Filament is packaged on a sealed 2.5 kg spool, vacuum-wrapped with desiccant in a labeled cardboard box. |
| Погрузка контейнера (20-футовый контейнер) | Container Loading (20′ FCL): chemical BigRep PLX PLA-derived Filament, palletized spools, moisture-protected, secured, non-hazardous, loaded in dry ambient container. |
| Доставка | Shipping Description: BigRep PLX PLA-derived Filament is not classified as dangerous goods under ADR/RID/IMDG/IATA/49 CFR. No UN number, hazard class, or packing group is assigned. It is a non-hazardous solid polymer filament. Transport as general cargo; avoid excessive heat, moisture, and direct sunlight. No special labels required. |
| Хранение | Store BigRep PLX PLA-derived Filament in its original sealed packaging with desiccant, in a cool, dry, well-ventilated area away from direct sunlight, heat, and ignition sources. Maintain low humidity (below 50% RH) and moderate temperature (15–25 °C). Keep spools dust-free and dry; reseal partially used spools or use airtight containers to prevent moisture absorption, brittleness, and printing defects. |
| Срок годности | Store sealed in dry, cool conditions away from moisture and UV; typical shelf life approximately 12–24 months for optimal print quality. |
Low-temperature thermoforming tooling for prototype packaging derives from the dimensional stability of the printed shell when subjected to repeated contact with heated sheet. The tool body is produced on a large-format fused filament fabrication system with a 0.8 mm hardened steel nozzle at a layer height of 0.6 mm; the build chamber is held at 30–45 °C where available, and the bed is maintained at 50–60 °C to control first-layer adhesion. The filament must be dried before processing if spools have been exposed to ambient relative humidity above 50 % RH; a desiccant dryer set to 60 °C for 4–8 h is standard practice because water in the melt hydrolyzes the polyester backbone and increases splay at the nozzle. Since unfilled PLA-derived materials commonly report heat deflection temperatures of 50–58 °C under ISO 75-2:2013 method B at 0.45 MPa, the mold surface must be held below 45 °C when forming polystyrene sheet at 120–140 °C. Vacuum holes are drilled after printing at 0.8–1.2 mm diameter along the tool draft, spaced at least 15 mm from sharp radii, and countersunk to reduce stress concentration. The shell is coated with a two-component epoxy or polyurethane system at 0.3–0.5 mm dry film thickness to reduce porosity and prevent release-agent migration into the printed substrate. Dimensional checks are performed against ISO 2768-1 class m, and shell wall strength is evaluated using tensile data from ASTM D638-14. The terminal output is a short-run vacuum-forming mold shell for packaging or interior-trim prototypes; production-scale thermal cycling is outside the operational boundary of PLA-derived tooling. Published data for PLX-specific creep under cyclic mold heating is limited, so pilot trials with embedded thermocouples are required before committing to tool builds.
Assembly fixtures for automotive and electronics manufacturing use the printed PLX body as a locating surface under repeated toggle-clamp or pneumatic-cylinder loads. The recommended print geometry includes 6 perimeters, 60–80 % rectilinear infill, and 0.3 mm layer height from a 0.4–0.6 mm nozzle to limit interlaminar void formation at the load-bearing holes. Flexural strength and modulus are referenced to ISO 178 or ASTM D790-17; the design stress should remain below the datasheet flexural yield value divided by a factor of at least 3 for repeated loads. Creep behavior under clamp force is assessed using ASTM D2990 tensile creep data, with the fixture tested at the intended operating temperature and humidity because PLA-derived resins are stress-sensitive in high-humidity environments. Heat-set threaded inserts are installed at 120–140 °C using a temperature-controlled insertion tool; insertion force should not exceed 30 N per insert to avoid local plastic flow. The terminal products are locating jigs, assembly fixtures, and check gauges for short- to medium-batch production. The operational boundary is set by the glass transition region: when ambient operating temperature exceeds 40 °C, fixture deflection must be revalidated under load. Published data for PLX-specific creep at elevated clamp loads remains limited, so pre-production fixture validation should include digital image correlation or dial-indicator deflection measurement.
Architectural and precast concrete formwork uses PLX to produce negative inserts for decorative panels, reveals, and one-off casting positives. The printed form is generated with a 0.5–0.6 mm layer height and 4–5 outer perimeters; internal infill is set to 20–30 % to reduce print time and resin consumption. Because fresh concrete exhibits an alkaline pore solution with pH in the range of 12.5–13.5, the PLA-derived surface must be sealed with a solvent-free epoxy or polyurethane coating at 0.4–0.6 mm dry film thickness to prevent alkaline hydrolysis and moisture ingress. The form insert is fixed to a rigid secondary backing frame so that hydrostatic formwork pressure is not carried solely by the printed shell; formwork pressure can be estimated under DIN 18218 for the specific concrete consistency and pour rate. Release agents are limited to water-based or polymer-based systems that are compatible with the cured seal coat; solvent-borne release agents should be avoided because they can soften PLA at the coating interface. Demoulding force is controlled by draft angles of 1–3° and by maintaining coating surface roughness below Ra 0.8 µm where smooth cast faces are required. The terminal product is a sealed form insert for pours typically limited to small architectural elements or test panels; repeated high-volume casting is outside the documented operational boundary. Published data for PLX-specific degradation in continuous concrete contact remains limited, so site trials should include coating adhesion checks after each demoulding cycle.
Foundry patternmaking uses the PLA-derived filament to produce hollow or internally latticed patterns for ceramic-shell investment casting. The pattern is printed with sparse infill of 8–15 % and a 0.3–0.4 mm layer height; the low infill allows the pattern to collapse inward during thermal expansion instead of cracking the primary ceramic coat. The primary slurry is selected for permeability compatible with the pattern decomposition products; a fine zircon or alumino-silicate primary coat is backed by coarser stucco layers to keep shell permeability above 0.5×10-12 m² where standard foundry practice requires gas escape. Burnout is performed in a vented furnace with a controlled ramp of 1–2 °C/min through the PLA decomposition range from 250 °C to 400 °C, followed by a hold at 600–750 °C to oxidize residual carbon. Thermogravimetric analysis under ISO 11358-1 and ash content under ISO 3451-1 should be obtained for the specific PLX lot because mineral fillers or nucleating agents alter residue levels. The terminal output is a fired ceramic mold used for nonferrous or ferrous metal pouring; metal quality depends on the absence of shell cracking and carbon residue, not on the mechanical strength of the printed pattern after burnout. Published data for PLX-specific burnout residue is limited, so foundries should run thermal profiles on sacrificial test prints before committing to production shells.
| Downstream track | Process window | Controlling variable | Primary standard |
|---|---|---|---|
| Thermoforming mold shell | layer 0.6 mm; surface < 45 °C | Heat deflection under load | ISO 75-2:2013 |
| Assembly fixture | infill 60–80 %; 0.3 mm layer | Creep under clamp load | ASTM D2990 |
| Concrete form insert | coating 0.4–0.6 mm; draft 1–3° | Alkaline hydrolysis | DIN 18218 |
| Investment casting pattern | ramp 1–2 °C/min; hold 600–750 °C | Burnout residue | ISO 11358-1 |
| Packaging development mockup | layer 0.2 mm; tolerance ±0.3 mm | Dimensional fidelity | ISO 2409:2020 |
| Medical usability model | infill 30–40 %; layer 0.2–0.3 mm | Surface finish and documentation limit | ISO 10993-1:2018 |
In packaging development, PLX is printed into bottle, jar, and closure mockups for ergonomic assessment, fill-volume visualization, and dimensional verification before steel blow-mold tooling is committed. The printed mockup is produced with a 0.2 mm layer height and a 0.4 mm nozzle to resolve neck and cap-thread features; internal support structures are removed mechanically or with water-soluble support where the printer configuration allows. Wall surfaces are wet-sanded and sealed with a solvent-free epoxy or acrylic filler to create a continuous surface for dimensional scanning. Dimensional accuracy is checked using optical scanning referenced to the CAD model with tolerance bands of ±0.3 mm for features above 50 mm, while smaller closure threads are post-machined or insert-molded to meet thread engagement requirements. These models are not food-contact articles; they are not evaluated under EU 10/2011 or FDA 21 CFR migration limits, and they must not be used as filling-line samples for hygienic validation. The terminal use is a visual and tactile packaging model that reduces the number of machined resin prototypes. Published data for PLX-specific surface finish retention through wet sanding is limited; adhesion of fillers and paints should be verified by cross-cut testing under ISO 2409:2020.
Bench-top usability models for medical device housings use PLX to represent grip geometry, display bezel placement, cable routing, and weight distribution before regulatory test units are produced. The housing shell is printed with a 0.2–0.3 mm layer height, 5 perimeters, and 30–40 % infill; external surfaces are filled and painted where surface gloss is required for user-interface evaluation. Mechanical evaluation is limited to tactile and ergonomic trials; load-bearing claims are referenced only to ISO 178 or ASTM D638-14 for comparative screening, not for design verification. The model is not implant-grade, tissue-contact, or skin-contact certified; biological evaluation under ISO 10993-1:2018 is not implied by the use of PLA-derived feedstock. Cleanroom compatibility is not assigned unless the specific PLX lot has been tested for particulate generation and surface microbial load under the facility operating procedure. The terminal output is a nonfunctional usability housing, a surgical instrument handle mockup, or a display console surrogate used during formative human-factors studies. Published data for PLX-specific biocompatibility is limited; any device contact application requires supplier documentation and additional testing before use.
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The BigRep PLX filament is a PLA-derived polymer compound supplied for large-format fused filament fabrication. The material is identified as a modified polylactic acid feedstock with a nominal filament diameter of 2.85 mm and a dimensional tolerance of ±0.10 mm on manufacturer spools. Processing data published by the material supplier place the extrusion temperature at 200 °C to 220 °C and the heated build plate at 50 °C to 70 °C. Packaged spools are available in weights commonly used for long-run large-format builds, including 2.3 kg and 4.5 kg configurations. Density is specified as 1.24 g/cm³ according to ISO 1183-1:2019. The resin base is polylactic acid; the exact compounding recipe is not disclosed in the public datasheet. Unlike standard PLA grades marketed for desktop systems, PLX is formulated to reduce part deflection on open or passively heated large-frame machines, but published compositional data is limited.
The filament must be stored in sealed bags with desiccant. Moisture uptake above 0.25 % by mass may alter extrusion viscosity and promote surface blistering. Published processing notes recommend pre-drying at 55 °C for 4 h in a forced-air dryer when spool exposure exceeds 24 h at relative humidity above 60 %. Large-format nozzle wear is moderate with hardened steel nozzles; brass nozzles are acceptable for short runs but exhibit faster bore erosion at the upper end of the temperature window.
Fused filament fabrication of PLX on a BigRep ONE or BigRep STUDIO G2 platform is constrained primarily by melt viscosity, interlayer diffusion, and drying state. At the specified extrusion temperature of 200 °C to 220 °C, the material flows through a 0.8 mm or 1.0 mm nozzle with sufficient volumetric output for layer heights between 0.3 mm and 0.6 mm. For a 1.0 mm extrusion width and 0.5 mm layer height, a print speed of 60 mm/s corresponds to a volumetric throughput of 30 mm³/s. Exceeding this throughput without raising the set temperature may create under-extrusion and weak interlayer bonding because the polymer melt cannot diffuse across the previous layer boundary before cooling.
Retraction behavior on direct-drive large-format extrusion heads differs from desktop Bowden setups. Retraction distances below 2 mm are usually sufficient but must be increased only after observing stringing. Excessive retraction pulls molten PLX into the cold zone, causing plugging. The manufacturer-published bed temperature range of 50 °C to 70 °C is lower than that required for many amorphous engineering polymers. On open-frame machines without a heated chamber, the first layer should be printed at the upper bed-temperature limit and with reduced fan speed to prevent edge contraction. Published processing data for PLX on actively heated chamber systems above 45 °C is limited.
Production-scale observations on large-format extrusion lines have shown that batch-to-batch melt viscosity variation is more noticeable when spool drying is inconsistent than when extrusion temperature is varied within the specified window. Spools stored in uncontrolled humidity tend to produce intermittent bubble defects at the nozzle, particularly at layer heights above 0.5 mm. Operators report that the use of a heated bed alone does not compensate for moisture-induced hydrolysis. The failure mode is a dull surface finish and reduced interlayer peel resistance, not necessarily catastrophic part collapse. Pre-drying is therefore treated as a fixed pre-production step when ambient relative humidity exceeds 60 %.
Moisture uptake in PLA-derived filaments follows Fickian diffusion at the spool surface. At 23 °C and 50 % relative humidity, unfilled PLA can absorb approximately 0.3 % moisture over 72 h; PLX with a proprietary compounding package may shift the saturation plateau but the manufacturer does not publish moisture equilibrium data. Because the extrusion temperature is above the boiling point of water, absorbed moisture flashes at the nozzle and disrupts the melt front. The visible defect signature is a periodic hissing at the nozzle and small split perforations in the deposited bead. These defects reduce interlayer fusion even when in-plane tensile coupons cut from the part retain datasheet values.
On a production line using a BigRep STUDIO G2 with dual extrusion, prepared PLX spools are typically dried in a circulation dryer before start-up and kept in a dry box during printing. The feed path from dry box to extruder should be sealed to prevent re-uptake. Exposed PTFE tubes longer than 300 mm may permit moisture ingress in humid conditions. A hardened steel nozzle of 0.8 mm diameter is preferred for deposited volumes above 500 cm³ because the compound is more abrasive than unfilled PLA, but published abrasion rates are not stated by the manufacturer.
Thermal degradation kinetics in the melt are not specified, but the narrow extrusion window suggests that residence time in the hot end should be minimized. Large-format prints with infill densities above 50 % extend the accumulated time at temperature. The material may shift from translucent to opaque yellow if held at 220 °C for more than 30 min. Processing notes therefore recommend purging the melt chamber after idle periods longer than 15 min at temperature. The purge should be run at 200 °C until the extruded bead is free of bubbles and color change.
| Property | Test method | Typical value |
|---|---|---|
| Density | ISO 1183-1:2019 | 1.24 g/cm³ |
| Tensile strength at break | ISO 527-2 | 47 MPa |
| Tensile modulus | ISO 527-2 | 3100 MPa |
| Elongation at break | ISO 527-2 | 3.8 % |
| Flexural strength | ISO 178 | 82 MPa |
| Flexural modulus | ISO 178 | 3200 MPa |
| Charpy impact strength notched | ISO 179-1/1eA | 4.5 kJ/m² |
| Heat deflection temperature, B | ISO 75-2/B | 55 °C |
| Extrusion temperature | Manufacturer | 200–220 °C |
| Bed temperature | Manufacturer | 50–70 °C |
| Drying conditions | Manufacturer | 55 °C, 4 h |
The values in the table are typical datasheet values, not guaranteed batch minimums. The thermal stability ceiling shown by the heat deflection temperature of 55 °C under 0.45 MPa flexural load identifies PLX as a low-to-moderate heat material, unsuitable for continuous under-hood automotive service or steam-sterilized tooling. The tensile modulus of 3100 MPa places the filament in the stiff, glassy regime typical of PLA-derived compounds. The notched impact value of 4.5 kJ/m² indicates limited crack propagation resistance. Load-bearing snap-fit features or impact-exposed edges should be sectioned with radii and not thin sections.
Mechanical response is anisotropic. Interlayer peel resistance is lower than in-plane tensile strength because the interface between printed layers is formed by thermal diffusion and is sensitive to cooling rate. When printed at the lower process temperature of 200 °C, bond strength may fall below the datasheet in-plane values. The manufacturer does not publish a Z-axis tensile value in the public datasheet, so full ISO 527-2 quantification of interlayer strength is not available. Published data for this specific configuration is limited. Cross-standard comparison between ISO 527-2 and ASTM D638-14 is not linear because specimen geometry and conditioning differ.
The modulus values in the table are generated on molded or pressed specimens, not printed specimens. Printed part properties are strongly influenced by raster angle, layer height, and void fraction. A part printed with 0.4 mm layers and 45°/−45° raster orientation typically retains a lower effective modulus than the datasheet value because of interlayer porosity. When mechanical certification is required, destructive testing of a printed coupon should follow ISO 527-2 for tensile response or ISO 178 for flexural response on specimens cut from the actual build orientation.
For thermoforming or low-pressure tooling, the thermal stability of PLX at 55 °C under load means that the tool can withstand short contact with warm sheet up to that range but not continuous contact with heated molds above 60 °C. If the process involves vacuum forming with sheet temperatures near 120 °C, the tool surface will soften and lose dimensional accuracy. In such applications, a higher-temperature polymer such as BigRep PRO HT should be considered. This limitation is thermal, not adhesion-driven.
Increasing the part cross-section beyond 20 mm alters the cooling profile and residual stress distribution. Large PLA-derived prints tend to fail by delamination along the layer plane when the differential between the heated bed and the ambient build environment is not managed. For PLX, the recommended bed temperature range of 50 °C to 70 °C maintains the first layers above the glass transition temperature of the PLA matrix, which is reported in the range of 55 °C to 60 °C for unmodified PLA but may shift with the proprietary compound. If the build chamber cools below 30 °C, the outer perimeter of a thick part contracts at a different rate than the still-warm core, producing corner lift on open-frame machines.
When section thickness exceeds 20 mm, process strategies include reducing infill density rather than increasing perimeter count. A dense interior introduces more cooling-induced shrinkage. The use of a raft or brim is recommended when the contact area is less than 150 cm² or the part aspect ratio exceeds 3:1. On large-format systems with dual extrusion, PLX can be paired with breakaway support materials, but the support interface should not be printed at layer heights below 0.3 mm because the PLA-derived matrix may fuse excessively and complicate separation.
Interlayer thermal diffusion is also a limitation. At extrusion temperatures above 220 °C, the PLX melt may undergo molecular weight reduction through thermal degradation, producing a caramel-like odor and lowered melt strength. The processing window is therefore relatively narrow, but not as narrow as some filled technical compounds. The optimal extrusion temperature is 210 °C; deviation below 200 °C increases viscosity and reduces layer bonding, while deviation above 220 °C may induce oxidative yellowing. Published data for this specific configuration is limited, so the operator should rely on in-line melt pressure monitoring if available.
Large jigs and fixtures produced from PLX are used in assembly operations where ambient temperatures remain below 35 °C and mechanical loads are static. The high stiffness of 3100 MPa allows thin-walled shells to resist bending under manual assembly forces. However, repeated impact or clamping loads exceeding 4.5 kJ/m² notched impact energy may propagate cracks from printed layer lines. Edge radii above 2 mm and solid top layers of at least 3 are recommended for clamping zones. The use of heat-set threaded inserts is possible if the insert temperature does not exceed the heat deflection temperature for more than a few seconds.
Tooling fixtures that require dimensional stability can be printed with a lower infill but an increased number of perimeters. Dimensional checks on a 500 mm long PLX fixture after 72 h at 23 °C have shown creep-driven deformation below 0.5 % under self-load; published data for this specific configuration is limited. For critical gauge fixtures, a conditioned stabilization period of 24 h at 23 °C and 50 % relative humidity is advisable before metrology. The coefficient of linear thermal expansion for PLA-derived materials is commonly cited in the range of 60–80 × 10⁻⁶ K⁻¹; PLX-specific CTE data is not stated in the public datasheet.
A direct substitution of PLX for unmodified PLA in an existing g-code library is not always valid. The melt viscosity and bed-adhesion behavior differ enough to require revalidation of retraction, temperature, and fan settings. Compared with standard PLA, PLX typically exhibits a slightly lower tensile strength but a more controlled warpage profile on large-format platforms. Unmodified PLA commonly prints at 190 °C to 220 °C and bed temperatures of 40 °C to 60 °C. The PLX requirement for a bed temperature up to 70 °C is higher, reflecting its modified melt-solidification behavior.
Against PETG-based feedstocks, PLX has a lower heat deflection temperature and higher stiffness. PETG typically exhibits a tensile modulus below 2200 MPa and a heat deflection temperature near 70 °C under 0.45 MPa load, depending on grade. PLX, at 3100 MPa in-plane tensile modulus, is stiffer but more brittle in notched impact. PLX also does not require the high extrusion temperatures of PETG, which typically range from 230 °C to 250 °C. The lower processing temperature reduces thermal stress on large-format extruder components but limits service environments to those below 55 °C under load.
Compared with BigRep PRO HT, a high-temperature engineering filament, PLX is not rated for extended service above 100 °C. PRO HT datasheets typically cite a heat deflection temperature above 100 °C under the same ISO 75-2/B method. PLX is therefore specified for ambient-temperature large-scale tooling, visual prototypes, and low-load assembly fixtures rather than oven-curing tools or under-hood components. The material does not claim flame retardancy under UL 94, and no food-contact certification under FDA 21 CFR 177.1520 is published in the manufacturer datasheet. Compliance documentation should be requested for REACH and RoHS declarations; the resin base is not classified as hazardous, but the filament contains proprietary additives.