| Код ТН ВЭД | 613628 |
Как аккредитованный завод LyondellBasell Beon3D PP-GF 2295G NATURAL, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.
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In hard-chrome electroplating lines, anode spacer frames and tank-to-tank transfer racking printed from LyondellBasell Beon3D PP-GF 2295G NATURAL are placed in direct contact with 10–20 vol% sulfuric acid at 40°C. The natural grade is produced without carbon black, which simplifies post-machining inspection of interlayer fusion lines but removes outdoor UV stabilization; unpainted fixtures are therefore restricted to indoor chemical service. The parts are extruded on a pellet-fed large-format machine with a screw L/D ratio of at least 24:1 and a compression ratio of 2.5:1 to 3.5:1. A nozzle diameter of 6 mm and a layer height of 3 mm are used to maintain a layer-to-nozzle ratio of 0.5, which reduces interlayer void coalescence along the z-axis. After printing, 2 mm of machining allowance is retained on each face because as-built surfaces show porosity at the layer interfaces. The fixtures are annealed at 90°C for 2 h to relieve residual thermal stress before CNC reaming of mounting holes. Chemical resistance is assessed in accordance with ISO 175:2010 and ASTM D543-20. The material shows mass change below 1.0% after 14 d immersion in 20% sulfuric acid and below 0.5% in 10% sodium hydroxide. However, continuous contact with 10% chromic acid at 50°C causes surface oxidation and stress cracking at clamping bosses; such fixtures must be limited to intermittent contact or protected with a fluoropolymer liner. End products include anode spacer frames, mask support rails, and tank immersion racks.
| Medium | Concentration | Temperature | Duration | Observed response |
|---|---|---|---|---|
| Sulfuric acid | 20% | 40°C | 14 d | Mass change below 1.0%; no surface cracking |
| Sodium hydroxide | 10% | 40°C | 14 d | Mass change below 0.5%; no delamination |
| Chromic acid | 10% | 50°C | 7 d | Surface oxidation; stress cracking at fastener bosses |
| Sodium hypochlorite | 5% | 23°C | 14 d | Slight discoloration; tensile retention not fully verified |
| Toluene | 100% | 23°C | 24 h | Swelling above 5%; not suitable for service |
Tool inserts for vacuum forming of ABS and HIPS sheet are printed from PP-GF 2295G NATURAL because the material has lower thermal mass than machined aluminum and can survive repeated exposure to sheet surface temperatures up to 110°C. Vacuum holes are not printed; they are drilled after CNC surfacing, because the as-printed wall contains microscopic capillary channels at the z-layer boundaries that would leak vacuum. The printed blank is heated to 100°C for 1.5 h before final machining to reduce thermal spring-back. Layer height is set between 2.5 mm and 3.5 mm for a nozzle diameter of 5 mm to 8 mm, maintaining a layer-to-nozzle ratio of 0.4 to 0.5. Ratios above 0.6 produce under-extrusion at direction changes and leave open void channels; ratios below 0.3 increase interlayer fusion but reduce geometric accuracy and require additional machining stock. The tool face is sealed with a two-component epoxy and machined to a flatness tolerance of 0.3 mm/m. Continuous service above 120°C is not recommended because creep of the PP matrix under vacuum clamping load alters the tool surface profile. This application does not require food-contact compliance, but the supplier’s REACH and EU RoHS Directive 2011/65/EU conformity declarations are retained for equipment documentation. Finished components are vacuum forming tools, clamping frames, and plug assists for thin-gauge packaging lines.
End-of-arm gripper jaws and cell alignment nests are printed from Beon3D PP-GF 2295G NATURAL for use in lithium-ion battery assembly where metal tooling would mar cell casings or create short-circuit risk. The printed blanks are annealed at 95°C for 2 h and then CNC-machined on the gripping faces to a flatness of 0.1 mm over 200 mm. Tensile properties in the XY print plane are evaluated according to ISO 527-2; the expected tensile modulus for glass-coupled PP in this class is in the 4,000–5,500 MPa range, but the specific datasheet value for the Beon3D grade must be used for finite-element simulation. Flexural creep is assessed under ISO 899-2 because the gripper jaws experience sustained clamping stress at 23°C to 40°C. The material is limited to uniaxial clamp loads that produce surface stress below 25 MPa; higher continuous stress causes stress relaxation and loss of dimensional control over a 12 h production shift. Print orientation is specified so that clamping forces act in the XY plane, not the Z interlayer direction, because z-axis tensile strength in large-layer extrusion is typically 35–60% of XY strength. Fastener bosses use stainless-steel threaded inserts installed with a minimum edge distance of 12 mm to prevent splitting along fiber orientation. The material is not suitable for direct contact with lithium hexafluorophosphate electrolyte; any electrolyte exposure requires immediate rinsing with dry cloth and isopropyl alcohol. End products include gripper plates, cell alignment trays, and transport cassettes for prismatic cell modules.
Submerged clarifier weirs, launder plates, and scum baffles in municipal wastewater treatment are printed from the same PP-GF 2295G NATURAL compound and installed in channels where the water pH ranges from 5.5 to 9.0 and the temperature does not exceed 40°C. The parts are printed with 8 mm walls and 15 mm outer corner radii; the internal honeycomb infill is not used because wastewater biofouling would colonize open voids. Instead, the model is designed with solid perimeters and a sparse infill below 25%, and all exposed surfaces are sealed with a two-component polyurethane coating that is compatible with the PP matrix but requires a plasma or flame pretreatment to raise surface energy above 45 mN/m. The glass fiber in the compound increases flexural stiffness in weir plates compared with unfilled PP, reducing deflection under a 750 N/m² hydraulic load to less than L/200, where L is the unsupported span. Continuous immersion in water at 40°C does not hydrolyze the polypropylene matrix; however, the fiber sizing at exposed cut surfaces can delaminate if the components are abraded by grit in the wastewater stream. Therefore, all cut edges are sealed. The material is resistant to sodium hypochlorite at 5% for intermittent cleaning, but continuous wet contact with chlorinated solvents or gasoline must be avoided because swelling exceeds 5% in 24 h at 23°C. End products include clarifier weirs, baffle plates, and channel covers.
Reusable formwork panels and column collars for cast-in-place concrete are printed from Beon3D PP-GF 2295G NATURAL and exposed to fresh concrete with a pore-water pH above 12. The PP matrix resists alkali-induced hydrolysis, unlike ester-based polymers, and the glass fiber reinforcement raises the flexural modulus so that panel deflection under casting pressure of 50 kPa stays below 2 mm over a 1 m span. The printed face is CNC-machined to a roughness of Ra 3.2 µm; this surface does not require release oil for standard Portland cement mixes if the draft angle is at least 3°. However, the natural grade has no UV stabilizer package, and outdoor storage between placements causes surface chalking and fiber bloom within 6–12 months unless the panels are coated with a UV-blocking polyurethane. Formwork panels are printed in sections of 1.2 m × 0.6 m with a wall thickness of 10 mm; the sections are joined with stainless steel through-bolts and sealed at the back face to prevent concrete slurry from entering the hollow core. The melt temperature during printing must not exceed 230°C; barrel residence times above 30 min at 230°C produce chain scission in the PP matrix, which lowers dart impact resistance and creates granules in the printed wall. End products are column caps, rebar spacer templates, and reusable edge formwork for low-alkali architectural concrete.
Manifold plenums, duct adapters, and access doors for chemical fume extraction are printed from PP-GF 2295G NATURAL for service with acids and solvents at room temperature. The pressure boundary is designed for a maximum operating pressure of 500 Pa negative differential; the printed wall thickness is 6 mm and flange sealing faces are machined flat within 0.2 mm to seat a closed-cell neoprene gasket. Leak testing is performed with a water manometer at 1,000 Pa for 15 min; pressure drop greater than 10 Pa/min indicates interlayer porosity and the part is rejected or sealed with a solvent-free epoxy. The grade is not flame retardant; at 3 mm thickness it is expected to comply with UL 94 HB only, and it must not be specified where V-0 or V-2 classification is required by building codes. The natural PP-GF compound is suitable for intermittent contact with formaldehyde vapors and dilute hydrochloric acid at room temperature, but continuous exposure to concentrated nitric acid or strong oxidizing media above 40°C must be avoided. Because the material contains glass fiber, cutting operations generate respirable fiber dust; enclosures must be machined with local exhaust ventilation and operators must use NIOSH-approved particulate filtration. End products are manifold sections, damper frames, and inspection doors for wet-bench exhaust systems.
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LyondellBasell Beon3D PP-GF 2295G NATURAL is a pelletized glass-fiber-reinforced polypropylene compound supplied for large-format additive manufacturing, specifically for direct granulate extrusion systems rather than filament-fed desktop machines. The NATURAL designation identifies an uncolored base compound without carbon black or organic pigment loading. The product belongs to the Beon3D polypropylene portfolio, which was developed for tooling, jigs, fixtures, and low-volume industrial parts requiring warp control, chemical tolerance, and low moisture uptake. Because the compound is delivered in pellet form, its melt path differs from filament-based AM: pellets enter a single-screw or twin-screw extrusion head, are melted under controlled shear, and are deposited through a large-diameter nozzle. This supply form permits higher mass throughput than spooled filament but requires machine hardware configured for pellet feed.
The grade designation PP-GF denotes polypropylene modified with short glass fiber; the numeric suffix 2295G is an internal LyondellBasell rheology and modification code rather than a direct translation of filler percentage. Public product literature places the material in a chemically coupled filled-polypropylene property class, meaning the fiber-matrix interface is treated to improve stress transfer. The NATURAL grade is not automatically a food-contact or medical grade; regulatory status must be confirmed against the supplier’s product compliance statement. Requests for quotation should specify whether the final part is subject to EU 10/2011, FDA 21 CFR 177.1520, or electrical or automotive subsystem requirements.
From a polymer physics standpoint, neat polypropylene has a useful chemical resistance profile but high volumetric shrinkage and rapid crystallization. During large-format deposition, these characteristics generate curl, corner lifting, and delamination at the part perimeter. The addition of short glass fiber modifies both the elastic response and the thermal expansion anisotropy. A chemically coupled interface, commonly based on silane-functional glass sizing or maleic anhydride–grafted polypropylene, enhances tensile and flexural stiffness by increasing the load transfer efficiency at the fiber-matrix boundary. The practical result is a lower coefficient of linear thermal expansion, reduced post-deposition warpage, and increased room-temperature creep resistance. Property shifts are evaluated under ISO 527-2 for tensile modulus, ISO 178 for flexural modulus, and ISO 75-2/B for heat deflection temperature.
Compared with unfilled polypropylene feedstock, the filled product also shows higher melt viscosity and greater sensitivity to residence time. Glass fibers are abrasive and can undergo progressive fiber-length reduction if the extruder maintains excessive shear or if the melt is recirculated. In pellet-fed AM, fiber-length attrition is minimized when the extruder uses low-compression screw geometry or distributive mixing sections, and when nozzle pressure is kept within the machine builder’s recommended envelope. Because the compound is semicrystalline, the cooling rate after deposition controls both crystallinity and interlayer strength. A rapid quench produces smaller crystallites and lower shrinkage but can freeze the weld interface before molecular interdiffusion is complete. A slow cool improves fusion but can allow spherulitic growth and differential contraction. The processor therefore controls the build envelope within a narrow thermal window, typically above 80 °C and below 110 °C for filled polypropylene unless otherwise specified for the grade.
Material handling and drying requirements must not be inferred from filament-drying practice. Polypropylene does not hydrolyze, but glass-fiber sizing and the pellet surface can adsorb moisture during warehouse storage. At relative humidity above 60%, condensation can create steam bubbles at deposition temperatures. Pellets stored in open containers should be dried with desiccant air at 80 °C for 2–4 hours before feeding; hopper dryers with insulated feed throats prevent re-condensation. If the material is processed wet, surface voids and nozzle spatter are early indicators. Moisture content can be verified with ISO 15512 or an equivalent Karl Fischer coulometric method for polyolefins; the practical acceptance criterion is machine-specific.
Nozzle and barrel metallurgy should account for glass-fiber abrasion. Hardened tool steel, wear-resistant nitrided barrels, and screw-tip inserts are standard for production rates above a few hundred grams per hour. Brass or aluminum melt-path components are unsuitable for sustained runs. Machine operators should log extruder current, melt pressure, nozzle temperature, and layer time across at least 5 consecutive build hours to capture drift in melt quality. Batch-to-batch variation in glass content, pellet geometry, or sizing chemistry may require adjustments in feed rate rather than temperature changes. A two-zone feed throat with a cooling jacket prevents pellet bridging, especially in humid environments where glass-filled pellets exhibit reduced flow through small hopper angles.
Machine selection for pellet-fed printing of this compound should account for extruder drive torque, barrel heating capacity, and nozzle geometry. Industrial systems with L/D ratios from 24:1 to 40:1 are capable, but low-compression screw profiles should be specified to reduce glass-fiber breakage. Mixing sections should be low-shear distributive rather than high-shear dispersive. The nozzle orifice should be at least 2.0 mm for large-layer toolpaths; smaller orifices increase pressure drop and may limit mass throughput. Build envelopes without active temperature control require heated beds at minimum, but closed-cell foam insulation or a heated enclosure is preferable for parts with footprints above 500 mm because convective cooling at edges is non-uniform.
During deposition, bead spacing and overlap should be set to avoid both voids and excessive lateral squeeze. A deposited bead of 2.0 mm width with 1.6 mm pitch produces a nominal overlap of 20%; the optimal value depends on nozzle diameter, layer height, and melt viscosity. Too much overlap causes edge flashing and high residual stress at bead boundaries; too little overlap leaves troughs and voids. The process should be adjusted by measuring cross-sectional void area on a trial block rather than by visual appearance alone.
Applications for this product are typically selected after screening chemical exposure, thermal load, and dimensional tolerance. The compound is suitable for short-run production of assembly jigs, robotic end-effector bases, fluid-handling covers, and large vacuum-forming tools where the part is exposed to water, dilute acids, alkalis, or polar solvents but not to strong oxidizing acids, aromatic hydrocarbons, or chlorinated solvents at elevated temperature. Because the base polymer is polypropylene, the printed part retains a density below that of glass-filled polyamides and glass-filled styrenics, which reduces fixture mass but also reduces surface hardness. For snap-fit or bearing surfaces, localized metallic bushings or wear strips are required. The material is not a direct replacement for aluminum tooling plate in high-load applications; creep testing under ISO 899-1 or a designed fixture-load test should be used to validate long-term deflection.
The product is often considered for vacuum-forming tools, lift-assist jigs, and robotic gripper bases because the combination of low density and moderate modulus reduces moving mass. For vacuum tools, porosity must be controlled because vacuum retention depends on surface sealing. Unsealed printed surfaces are porous and will lose vacuum; a two-part epoxy seal coat or thermal post-fusing should be specified. For fluid-contact covers, the printed part should avoid horizontal blind pockets where liquid can accumulate and promote stress cracking.
Specification sheets for glass-filled polypropylene compounds are normally organized around injection-molded specimens rather than printed specimens. This creates a gap between datasheet values and additively manufactured part properties. The datasheet provides a controlled comparison of polymer matrix quality, but printed-part performance depends on void content, weld lines, fiber orientation, and layer time. Table 1 lists the standard methods used to compare Beon3D PP-GF 2295G NATURAL with other filled feedstocks. The current technical datasheet, certificate of analysis, and a statement of lot-to-lot glass content should be obtained before qualification.
| Specification Category | Standard Method | Reporting Condition |
|---|---|---|
| Density | ISO 1183-1 | 23 °C, immersion or gas pycnometry |
| Melt mass-flow rate | ISO 1133-1 | 230 °C, 2.16 kg |
| Tensile modulus and tensile stress | ISO 527-2 | Type 1A specimen; modulus at 1 mm/min |
| Flexural modulus and flexural strength | ISO 178 | Three-point bend; 2 mm/min, 16:1 span-to-thickness ratio |
| Charpy notched impact | ISO 179-1/1eA | 23 °C, V-notch 0.25 mm radius, edgewise impact |
| Heat deflection temperature | ISO 75-2/B | 0.45 MPa flexural stress, flatwise loading |
| Residual ash content | ISO 3451-1 | Polyolefin furnace method |
Melt-flow values alone are insufficient for pellet-fed extrusion because they are obtained at low shear rates. A capillary viscosity curve under ISO 11443 should be requested when designing a new nozzle or screw. The MFR test is still useful as a lot-to-lot consistency check; a shift outside the agreed control band may indicate molecular-weight change or glass-content variation. Ash content under ISO 3451-1 verifies glass loading but does not distinguish fiber-length distribution or fiber orientation. If mechanical properties deviate, the investigation should include ashing, fiber-length measurement by image analysis after polymer removal, and differential scanning calorimetry according to ISO 11357-3 to compare melting peak and crystallinity.
The viscosity of chemically coupled glass-filled polypropylene is strongly shear-thinning. At low shear rates, the material exhibits high viscosity due to fiber-fiber interactions; at high shear, fiber alignment and matrix thinning reduce viscosity. This behavior is beneficial for extrusion but complicates flow simulation. A filled polypropylene melt may show wall slip at high shear, especially with worn nozzle surfaces. Capillary rheometry with round dies of 1 mm and 2 mm diameter can detect wall slip by comparing apparent viscosity at the same wall shear stress. If wall slip is present, the apparent flow curve overstates die swell and may require corrections.
Regulatory documentation for unfilled polypropylene can often meet FDA 21 CFR 177.1520 and EU 10/2011, but glass-fiber sizing and processing aids require grade-specific confirmation. The NATURAL designation does not imply that the product is free of organic processing stabilizers or release agents. For automotive interior or electrical applications, flammability and glow-wire ignition are component-level tests, not resin-level properties; the supplier should provide a UL yellow card or equivalent recognized statement only if available. Because additive manufacturing introduces voids and anisotropic surfaces, migration behavior can differ from injection-molded plaques. Extraction testing under EU 10/2011 should therefore be performed on actual printed specimens rather than assuming injection-molded compliance transfers to porous printed parts.
| Verification Area | Regulation/Standard | Documentation Boundary |
|---|---|---|
| Food-contact base resin | FDA 21 CFR 177.1520; EU 10/2011 | Grade-specific compliance letter; printed-part migration testing may be required |
| Hazardous substances | RoHS Directive 2011/65/EU; IEC 62321 series | Supplier declaration for homogeneous material; glass sizing and stabilizer package require confirmation |
| REACH SVHC | Regulation (EC) 1907/2006 | Article 33 communication for listed substances above threshold |
| Flammability for transport or electrical use | ISO 3795, FMVSS 302, or UL 94 as applicable | Thickness-dependent and component-level test required |
Specimens for mechanical testing should be conditioned for at least 40 h at 23 °C and 50% relative humidity in accordance with ISO 291 unless the application is specifically controlled by another conditioning environment. Polypropylene absorbs negligible moisture; however, the glass-fiber interface and oxidative stabilizers can show property drift when exposed to heat aging. For comparative testing, specimen orientation, layer height, infill pattern, and build location should always be reported.
The highest technical risk in large-format semicrystalline deposition is anisotropic strength. The XY plane benefits from continuous fiber orientation along the bead, but the Z axis depends on molecular diffusion across the layer interface. If the substrate layer cools below the crystallization temperature before the next bead lands, the deposited bead cannot entangle with the underlying crystallized surface. In glass-filled polypropylene, the fiber phase does not melt and therefore cannot contribute to Z-direction weld strength; the weld is carried entirely by the polypropylene matrix. Published work on filled polypropylene additive manufacturing has shown Z-direction tensile strength reductions of 30% to 50% compared with XY tensile strength, but the specific value for Beon3D PP-GF 2295G NATURAL must be established on the target machine because nozzle diameter, layer height, chamber temperature, and bead spacing all change the result.
Process validation should include at least three layer-time conditions, from short cycles that minimize heat input to long cycles that allow complete substrate cooling. Infrared thermography at the deposition point helps identify whether the layer temperature remains above the crystallization onset. Printed plaques machined into tensile specimens per ISO 527-2 should be drawn from multiple build locations, including near the build plate, mid-height, and top surface. Void content can be assessed by optical microscopy of polished cross-sections or X-ray computed tomography; void content above 2% by volume in a structural section generally warrants process correction. Fiber orientation in deposited beads is not equivalent to injection-molded flow orientation, so datasheet values cannot be used directly for finite-element analysis without anisotropic material card calibration.
Operational boundaries also include chemical exposure and temperature. Polypropylene swells in aromatic hydrocarbons and chlorinated solvents; glass-filled grades retain the chemical resistance of the matrix but lose stiffness if the matrix plasticizes. Strong oxidizing acids attack the polymer and, over time, the glass interface. Hot aqueous acids can leach ions from E-glass fiber if the part carries sustained load, leading to stress-corrosion cracking at the fiber-matrix boundary. The NATURAL grade contains no carbon black or UV-absorbing pigment, so exterior service requires a validated coating or UV stabilization masterbatch. If the part is used in cold environments, polypropylene retains good toughness above its glass-transition temperature but may exhibit brittle behavior below approximately −20 °C, depending on impact speed and notch severity.
Compared with glass-filled polypropylene supplied for injection molding, the Beon3D grade may include rheology modifiers or nucleating agents tailored for slower cooling and pellet-fed additive manufacturing. The exact package is proprietary and should not be assumed equivalent to an injection-molding grade with similar glass content. Process settings cannot be transferred directly from injection-molding datasheets; mold shrinkage values measured on injection-molded plaques under ISO 294-4 do not predict additive-manufacturing linear shrinkage because the flow and cooling histories differ.
Compared with other additive-manufacturing feedstocks, Beon3D PP-GF 2295G NATURAL sits between unfilled polypropylene and engineering thermoplastics. Against unfilled polypropylene, it offers lower warpage, higher modulus, and better room-temperature creep resistance, but lower elongation and higher nozzle wear. Against glass-filled PC-ABS or PETG, it offers lower density, lower moisture uptake, and superior resistance to many aqueous chemicals, but lower heat deflection temperature and lower surface hardness. Against glass-filled polyamides, it offers better hydrolytic stability and lower moisture absorption, but lower continuous-use temperature and lower impact strength. The material is most appropriate when the application demands a balance of dimensional stability, chemical tolerance, and mass reduction rather than a maximum in any single mechanical property.