| HS Code | 287789 |
| Manufacturer | LyondellBasell |
| Brand | Beon3D |
| Grade | PPG 2290S2 |
| Color | Anthracite |
| Material Type | Polypropylene (PP) with glass fiber reinforcement |
| Density | 1.04 g/cm³ |
| Melt Flow Rate | 20 g/10 min (230°C/2.16 kg) |
| Glass Fiber Content | 20% |
| Tensile Modulus | 4000 MPa |
| Tensile Strength | 60 MPa |
| Elongation At Break | 3% |
| Flexural Modulus | 3500 MPa |
| Charpy Notched Impact Strength | 5 kJ/m² (23°C) |
| Heat Deflection Temperature Hdt A | 100°C (1.8 MPa) |
| Heat Deflection Temperature Hdt B | 140°C (0.45 MPa) |
| Vicat Softening Temperature | 130°C |
| Water Absorption | 0.02% |
| Filament Diameter | 1.75 mm |
| Printing Temperature | 240-270°C |
| Bed Temperature | 100-120°C |
As an accredited LyondellBasell Beon3D PPG 2290S2 Anthracite factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Packaged as a 1 kg (2.2 lb) spool of Anthracite 3D printing filament, vacuum-sealed with desiccant in a cardboard box. |
| Container Loading (20′ FCL) | 20′ FCL container loaded with palletized LyondellBasell Beon3D PPG 2290S2 Anthracite chemical, securely stowed for ocean transport. |
| Shipping | LyondellBasell Beon3D PPG 2290S2 Anthracite is typically shipped as non-hazardous polypropylene pellets in sealed 25-kg bags, octabins, or bulk trucks. Transport in dry, clean conditions, away from moisture, heat, and UV. Generally not regulated for transport. Store between 15–30°C. Follow SDS and local regulations. |
| Storage | Store LyondellBasell Beon3D PPG 2290S2 Anthracite in a cool, dry, well-ventilated area, away from direct sunlight, heat, sparks, and flames. Keep containers tightly closed in original packaging. Protect from moisture, dust, and contamination; use desiccant if appropriate. Avoid prolonged UV exposure and follow the supplier’s SDS and local regulations. |
| Shelf Life | Shelf life approximately 24 months when stored in original sealed packaging in a cool, dry place away from sunlight. |
Thermoforming tool bodies are deposited from LyondellBasell Beon3D PPG 2290S2 Anthracite on a pellet-fed large-format additive manufacturing cell with a single-screw deposition head of 20 mm to 40 mm diameter and screw L/D from 24:1 to 30:1. The tool build uses a layer height of 0.8 mm to 1.0 mm, a nozzle exit temperature within the supplier's published melt-temperature window, and a heated build surface held at 80–100°C; when relative humidity exceeds 60%, the pellet feed is dried in a desiccant dryer at 80°C for 4 h to below 0.05% moisture. After deposition, the blank is stress-relieved at 100°C for 2 h in an air-circulating oven before five-axis machining. The forming surface is sealed with a two-component epoxy sealer rated for continuous service at 110°C; adhesion is checked on a witness coupon per ISO 2409:2020 before first-article approval. Vacuum channels are finish-machined with a 4 mm carbide end mill and inspected against ISO 2768-1 tolerance class m. Because a semicrystalline polyolefin tool body expands more than an aluminium subframe, mounting points are slotted along the long axis using the linear thermal expansion coefficient measured per ISO 11359-2:2021; a 1,200 mm polyolefin tool length moving between 15°C and 35°C workshop ambient requires a slot allowance calculated from the lot-specific expansion value rather than a generic PP value. First-article verification includes point-cloud comparison against the CAD model, not a single-width caliper check, because draft-angle error and residual stress relaxation can shift the tool face after the first forming cycles. Published data for this exact grade under repeated contact with 200°C HIPS sheet is limited; production trials should start with short forming runs and inspect the tool surface for interlayer crack growth under 10× magnification.
In high-repetition assembly fixtures, the limitation is creep under clamp load rather than short-term stiffness. The short-term tensile modulus reported by ISO 527-1:2019 is not sufficient for a fixture that must hold a datum face for more than a year; the calculation uses creep modulus obtained per ISO 899-1:2017 at 1,000 h and 23°C, with service stress kept below 20% of the lot tensile yield stress. As-printed near-net blanks are bored for pressed-in steel dowel bushings; the bearing pressure in the printed boss is limited to 12 MPa at 5 N·m clamp torque on an M6 fastener. Boring is performed dry on a three-axis machining centre to avoid water-based coolant absorption into interlayer porosity. Continuous service on load-bearing fixture geometries should not exceed 80°C unless the heat deflection temperature of the specific lot is verified by ISO 75-2:2013 Method B and a reduced design stress is applied. Washing with dilute alkaline degreaser is acceptable; injection-moulded polypropylene coupons tested per ASTM D543-21 in 5% potassium hydroxide at 40°C for 7 days typically show no significant mass change, but machined glass-fibre ends may surface-whiten. If critical dowel bores are printed parallel to the z-axis, interlayer fusion must be first confirmed on a witness coupon by short-beam flexure per ASTM D2344/D2344M; otherwise, dowel bosses are oriented horizontally and finish-bored after printing. Published creep data for this exact pigmented, glass-reinforced configuration is limited, so a full-scale fixture mock-up should be strain-gauge instrumented during the first 1,000 h of production use.
In electroplating and anodising cells, returnable dunnage and racking frames are printed as hollow-section beams with internal drain channels to reduce solution carry-over between baths. The glass-reinforced polyolefin matrix is selected for resistance to 10% sulfuric acid and 10% sodium hydroxide at 23°C; ASTM D543-21 immersion of polypropylene coupons for 7 days generally reports mass change below 0.5% and no environmental stress cracking. Because machined or drilled edges expose fibre-matrix interfaces, critical surfaces are sealed by hot-gas welding with a polypropylene weld ribbon to prevent acid wicking along glass fibres. Rinse-stage dunnage exposed to 80°C water must be recalculated for deflection using flexural modulus at temperature per ISO 178:2019, not room-temperature data. Continuous contact with chromic acid above 50°C or with fuming sulfuric acid is outside the compatibility boundary of polyolefin dunnage. For each production build, a witness coupon is immersed in the actual process solution for 7 days and inspected for mass change below 1.0%, no blistering at 10× magnification, and no hardness loss. Printed frames are annealed at 100°C for 2 h before final machining to reduce residual stress and prevent delayed stress cracking in aggressive wet baths.
Short-run concrete formwork panels are printed as shell-backed inserts with 6 mm to 10 mm facesheets and 20 mm ribs. The material is selected because water absorption after 24 h is below 0.6% by ISO 62:2008 for glass-reinforced polypropylene; the lot certificate value should be checked. Unlike timber formwork, the polyolefin shell does not swell under wet-cure conditions, but it loses stiffness at elevated concrete cure temperatures. Exothermic mixes that keep the form face above 70°C require backup framing at 300 mm maximum spacing to limit deflection under fresh-concrete hydrostatic pressure. A vegetable-oil-based mould release is preferred; petroleum-based form oil is acceptable for short runs, but aromatic solvent in wax removers must not remain on the printed surface overnight. For fair-face architectural concrete, the as-printed surface is sealed and polished to an average roughness Ra below 3 µm per ISO 4287:1997/Amd 1:2009; for nonvisual surfaces, an Ra of 10–25 µm improves air venting and demoulding. The number of reuses for this exact printed grade under production concrete pressure is not published; surface profile checks against a reference mould should be performed at intervals until site-specific life is established. Do not use solvent-based demoulding agents containing chlorinated hydrocarbons, as these can swell the polyolefin matrix at edge areas.
Exhaust plenums and scrubber risers produced from this material are restricted to nonfire-rated industrial ventilation because the grade is not a flame-retardant polyolefin. The selection rationale is resistance to acid-laden condensate from chemical scrubbers and metal-finishing hoods, not resistance to ignition. UL 94 classification for the printed wall thickness must be obtained from the lot certificate or by third-party testing before installation. Duct sections are printed as full-round segments in 600 mm lengths, flanged flat, and joined by hot-gas welding with polypropylene weld rod; adhesive bonding is not recommended at load-bearing seams. Weld seams are leak-tested to SMACNA leakage class 12 at twice the working static pressure, using soap-film indicators. When the inner wall temperature exceeds 90°C, dimensional stability is checked by ISO 75-2:2013 Method A, and hangers must be spaced to prevent sagging between supports. Outdoor sections should be lagged or coated because UV exposure embrittles polyolefins; salt-laden coastal air alone does not justify uncoated installation. For any installation subject to fire or smoke provisions, published data for this specific printed configuration is limited, and the authority having jurisdiction should be consulted. Do not expose the duct interior to ketone-heavy solvent exhaust without a liquid knockout drum because hot ketones attack the polyolefin matrix.
Marine panel enclosures printed from Beon3D PPG 2290S2 Anthracite require a coating strategy before outdoor salt-spray service because polypropylene undergoes photo-oxidative embrittlement even at moderate latitudes. The anthracite pigment may screen some ultraviolet radiation, but cut glass-fibre tips on machined surfaces act as local initiation sites for whitening and microcracking. Accelerated weathering under ISO 4892-2:2013 with a daylight xenon-arc filter at 0.35 W/m² at 340 nm shows that unstabilised polypropylene grades lose elongation at break within hundreds of hours; pigmented glass-coupled PP may delay but not eliminate the failure. For marine service, the printed shell is coated with a two-component aliphatic polyurethane topcoat with a minimum dry film thickness of 150 µm; adhesion is verified per ISO 4624:2016 with a minimum cohesive pull-off of 2 MPa on a witness panel. Salt-spray exposure under ASTM B117-19 for 500 h is not sufficient alone to qualify a deck-mounted polyolefin component because it does not reproduce combined UV, wet-dry cycling, and chlorinated pool water. Nonstructural electronics enclosures can use the material if through-hull penetrations are sealed with polyolefin-compatible gaskets, the continuous service temperature does not exceed 80°C, and contact with ester-based PVC cable-jacketing plasticizers is avoided; those plasticizers can migrate and soften the polyolefin surface within months. Published field data for this exact anthracite grade in marine atmospheres is limited, so board-level service trials are required for load-bearing brackets and exposed panels.
For non-energized enclosure bodies and cable duct covers, printed blanks are machined to final dimensions and fitted with brass threaded inserts. This grade is not suitable for live-terminal separation unless the printed wall thickness achieves a glow-wire classification under IEC 60695-2-11:2014 accepted by the end-product standard; polypropylene-HB materials typically do not meet the 650°C class without flame-retardant additives, so uninsulated live parts require a metal or mineral barrier. Environmental sealing is limited to IP54 per IEC 60529:1989/AMD2:2013 because thermal cycling of as-printed gasket faces may open gaps; higher IP ratings require a post-machined flange and continuous gasket compression. Cleaning with ketone-based solvents should be avoided because hot ketones attack the polyolefin matrix, especially at exposed glass-fibre ends.
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Pellet-fed large-format additive manufacturing cells operating at 5–30 kg/h deposition rates impose different melt-rheology requirements than filament-fed platforms. LyondellBasell Beon3D PPG 2290S2 Anthracite is positioned for this production environment as a glass-fiber-reinforced polypropylene compound with an anthracite color package. The grade carries the Beon3D portfolio identifier and is intended for extrusion-based large-format processing rather than conventional injection molding. Because open industrial documentation for this exact commercial designation is not consistently published, numerical values in this document are explicitly identified as class-typical values for short-glass-fiber-reinforced polypropylene compounds with equivalent reinforcement levels unless otherwise noted by the producer.
Short glass fiber modifies the thermal strain field and melt elasticity of polypropylene. Unfilled polypropylene homopolymer measured under ISO 294-4 commonly shows in-flow mold shrinkage between 1.2 % and 1.8 %. With 20 wt% short glass fiber, in-flow shrinkage typically decreases to 0.3 %–0.6 %, while cross-flow shrinkage may remain in the 0.8 %–1.2 % range because fiber orientation is anisotropic. This directional shrinkage differential is a primary cause of corner lifting in large beads. The tensile modulus of this reinforcement class under ISO 527-2 is commonly reported between 2,500 MPa and 4,000 MPa, depending on fiber length retention and coupling efficiency. These shifts reduce gross bead distortion but do not eliminate warpage.
In pellet-fed screw extrusion, glass-fiber reinforcement also increases low-shear viscosity and reduces melt slump after deposition. Unfilled PP beads can sag or level excessively at substrate temperatures above 120 °C. The reinforced compound class retains bead geometry more effectively, which is critical when printing unsupported spans larger than 40 mm. The trade-off is increased screw and barrel wear. Equipment fitted with bimetallic barrels and hardened screw elements is specified when running glass-filled PP continuously. Fiber attrition in the extruder reduces final modulus; screw designs with compression ratios of 2.0:1–2.5:1 and L/D ratios between 24:1 and 32:1 are commonly used to limit fiber-length degradation.
| Material system | Melt flow rate, ISO 1133-1 at 230 °C/2.16 kg, g/10 min | Tensile modulus, ISO 527-2, MPa | In-flow mold shrinkage, ISO 294-4, % | Moisture uptake, ISO 62, 24 h, % |
|---|---|---|---|---|
| Unfilled PP homopolymer | 4–20 | 1,200–1,800 | 1.2–1.8 | <0.05 |
| 20 wt% short-glass-fiber PP, equivalent class | 5–15 | 2,500–4,000 | 0.3–0.6 | 0.05–0.10 |
| 20 wt% talc-filled PP | 10–30 | 2,000–3,000 | 0.8–1.2 | 0.05–0.10 |
Class-typical property ranges are not grade-specific release values for LyondellBasell Beon3D PPG 2290S2 Anthracite. They provide a reference envelope for thermoplastic polyolefin compounds with comparable filler morphology. The producer’s certificate of analysis remains the controlling source for release limits.
The anthracite grade is selected over unfilled PP when lower shrinkage and higher creep resistance are required. Unfilled PP builds large tools with acceptable chemical resistance but often exhibits unacceptable dimensional drift under repeated load at elevated shop-floor temperatures. Short glass fiber reduces time-dependent creep strain under flexural load, although published data for this specific formulation are limited. Talc-filled PP offers some stiffness gain but has lower weld-line strength and may produce more surface fuzz during post-print machining than glass-fiber reinforcement.
Against mineral-filled grades, the glass-reinforced class typically demonstrates higher notched impact performance at temperatures below 0 °C. Izod notched impact values for 20 wt% short-glass PP under ISO 180/A are commonly reported between 8 kJ/m² and 15 kJ/m², whereas talc-filled PP often falls between 4 kJ/m² and 8 kJ/m². This difference matters in assembly fixtures that are handled with overhead cranes or subject to accidental edge impact. The anthracite color does not alter the base impact mechanism, but pigment dispersion quality can create local stress concentration sites if poorly processed.
Rheologically, glass-filled PP exhibits more pronounced shear thinning than unfilled PP. In a large-format extruder operating at screw speeds of 60–120 rpm with a 10 mm to 25 mm nozzle, melt viscosity under shear may be orders of magnitude lower than at rest. This shear-thinning profile aids pumping through long melt lines but requires careful control of nozzle backpressure. If backpressure drops below 20 bar, intermittent feed and short-shot beads are possible; if it exceeds 80 bar, fiber attrition and melt-temperature overshoot may occur on some single-screw configurations.
Compared with amorphous LFAM feedstocks such as ABS, polypropylene-based glass-filled compounds typically offer lower moisture sensitivity and better resistance to dilute acids and alkalis. Under ISO 175 immersion testing, unfilled and glass-reinforced PP class-typically show mass change below 1 % after 7 days in 10 % sodium hydroxide at 23 °C, whereas ABS can show surface attack and tensile strength loss. Against PETG and polycarbonate, polypropylene compounds have lower continuous service temperature and lower modulus, but their lower moisture uptake reduces steam-driven porosity during processing interruptions. The anthracite variant should not be assumed food-contact compliant without evaluating the pigment package against FDA 21 CFR 177.1520 or equivalent regional requirements.
Drying, screw geometry, and barrel temperature envelope are production controls, not optional pre-processing. Glass-fiber sizing absorbs moisture from ambient air. A desiccant dryer with dew point ≤ -40 °C and air temperature between 80 °C and 100 °C for 4 h is class-typical for coupled glass-filled PP. Drying above 110 °C risks degrading the fiber sizing and reducing interlayer adhesion. Hopper residence time should not exceed 8 h at elevated temperature for continuous operations. Material exposed to relative humidity above 60 % for more than 48 h should be re-dried before use.
Barrel profiles for glass-reinforced PP are commonly set from rear to front at 180 °C, 200 °C, 210 °C, 215 °C, and 220 °C. Melt temperature measured with an immersion thermocouple should be maintained between 210 °C and 230 °C. Below 200 °C, bead fusion is insufficient on production-scale parts with layer times longer than 60 s. Above 240 °C, thermo-oxidative degradation of unstabilized PP accelerates and may reduce molecular weight, lowering melt strength and interlayer fracture resistance. The practical working window is narrow enough to require closed-loop barrel control on gantry-mounted extruders.
Screw speed should be matched to layer time, not set as a fixed parameter. For a deposition rate of 10–15 kg/h, screw speeds between 60 rpm and 90 rpm are typical for a 45 mm single-screw extruder with 24:1 L/D. At layer times exceeding 120 s, localized cooling in the nozzle can create solidified skins that disrupt bead shape. Nozzle temperatures at 225 °C to 235 °C and substrate temperatures between 100 °C and 120 °C are commonly targeted for class-equivalent glass-reinforced PP. Interlayer adhesion is measured on specimen sections under ISO 178 flexural testing, where incomplete fusion appears as reduced flexural strength in the z-direction compared with the x-y plane.
Anthracite pigmentation affects non-contact thermal measurement more than most processing personnel expect. Infrared pyrometer readings on dark surfaces can differ from contact thermocouple values by 5–10 °C depending on emissivity settings. For this reason, process calibration should use surface-contact thermocouples or pyrometers calibrated against a drilled-probe reference. This operational boundary is not unique to the LyondellBasell grade, but the dark anthracite color makes emissivity compensation a required control on automated cells that use infrared feedback loops.
Direct machining of printed blanks made from glass-reinforced PP requires tooling geometry designed for abrasive mineral fiber. Solid carbide end mills with diameters from 6 mm to 12 mm, two or three flutes, and chip loads of 0.05–0.10 mm/tooth are commonly used in low-speed finishing. Water-based coolant is generally unnecessary for short passes but may be applied to control thermoplastic melting at surface speeds above 300 m/min. Surface fuzz from glass fiber can be reduced with down-milling passes and sharp cutting edges; dull tools smear the PP matrix and expose fiber strands.
The dark color package increases radiant energy absorption when printed parts are used outdoors or near infrared heating banks. Continuous surface temperatures above 80 °C may cause local creep under clamp loads in unfilled PP; the glass-reinforced class resists this better, but heat deflection temperature remains below that of polycarbonate. Heat deflection temperature under ISO 75-2/A at 1.8 MPa for 20 wt% short-glass PP is commonly reported between 100 °C and 130 °C. The anthracite variant should not be specified for continuous service above 110 °C without part-level deflection testing under actual mechanical load.
Chemical exposure limits follow general polypropylene chemistry. Strong oxidizing acids, chlorinated solvents at elevated pressure, and aromatic hydrocarbons above 50 °C can soften or swell the matrix. Dilute aqueous acids and alkalis at 23 °C are usually acceptable for short-term contact. The glass sizing is susceptible to hydrolysis under prolonged hot-water immersion above 60 °C, which may produce interfacial debonding and progressive loss of flexural modulus. This is a known limitation for glass-reinforced PP in wet service conditions and must be evaluated before the anthracite grade is used in water-tank tooling or steam-cleaned fixtures.
Storage stability is governed by antioxidant package and moisture exposure. Polypropylene compounds are generally resistant to hydrolysis in storage, unlike polyamide-based feedstocks, but the fiber sizing can retain moisture. Closed bags stored at 15–30 °C and below 60 % relative humidity maintain processability for extended periods. Opened bags should be consumed within 24 h or returned to sealed containers. If edge beads show surface porosity or steam marks at the nozzle, the feedstock should be dried and the hopper loader seals inspected for ambient air ingress.
| Standard or regulation | Application boundary | Typical test condition |
|---|---|---|
| ISO 527-2 | Tensile modulus and tensile strength of printed or molded specimens | 23 °C, conditioned per ISO 291 |
| ISO 178 | Flexural modulus and interlayer flexural strength in z-direction | 2 mm/min, 23 °C |
| ISO 180/A | Notched impact for edge-impact resistance | 23 °C and sub-zero as applicable |
| ISO 75-2/A | Heat deflection temperature at 1.8 MPa | Edgewise flexure, 120 °C/h heating rate |
| ISO 294-4 | Reference mold shrinkage for tool-path scaling | Molded plaque, 24 h after demolding |
| FDA 21 CFR 177.1520 | Base polyolefin compliance where food contact is claimed | Finished-article extraction testing required |
| REACH and RoHS | Substance restrictions for industrial equipment in the EU | Supplier confirmation for pigment and sizing package |
Tooling shells, robotic end-of-arm fixtures, and large vacuum-forming molds are common application areas for glass-filled PP in pellet-fed additive manufacturing. These components are machined or used as printed, often with local metal inserts for clamping surfaces. The anthracite color provides contrast for optical scanning and dimensional inspection, but the scanning system should be calibrated for dark, low-reflectance surfaces to avoid point-cloud dropout. In machine cells where printed parts are actively located with dowel pins, interference-fit retention in glass-filled PP is maintained more reliably than in unfilled PP because hole-size relaxation under repeated insertion is reduced by the fiber network.
Robotic trimming and drilling stations running glass-reinforced PP benefit from chip extraction to prevent conductive fiber dust from collecting on motor drives and limit switches. Extraction air velocities at the tool of 15–20 m/s are commonly specified. When the anthracite variant is used for large vacuum-forming tooling, the tool surface should be sealed with a solvent-resistant coating if the part is exposed to repeated contact with process water or release agents, because the glass-reinforced polypropylene surface is not intrinsically gas-tight across layer interfaces and may exhibit micro-voiding under vacuum.