| HS Code | 230674 |
As an accredited LyondellBasell HDPE 50-5052 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | LyondellBasell HDPE 50-5052 is typically packaged in 25 kg bags or 1,000 kg bulk octabins, palletized for shipment. |
| Container Loading (20′ FCL) | 20′ FCL container loaded with LyondellBasell HDPE 50-5052 in 25 kg bags, palletized, shrink-wrapped, and secured for ocean freight. |
| Shipping | LyondellBasell HDPE 50-5052 is a non-hazardous high-density polyethylene resin, typically shipped as pellets in 25 kg bags, octabins, bulk trucks, or railcars. It is not DOT, IMDG, or IATA regulated, requires no hazardous placards, and should be kept dry, closed, and away from ignition sources during transport. |
| Storage | Store LyondellBasell HDPE 50-5052 in a cool, dry, well-ventilated area, away from direct sunlight, ignition sources, heat, and strong oxidizers. Keep original packaging closed, clean, labeled, and off the floor on pallets. Protect from moisture, contamination, and physical damage. Observe first-in, first-out stock rotation and avoid excessive stacking. Clean spills promptly to prevent slipping. Do not store near food or incompatible materials. |
| Shelf Life | 24 months from date of manufacture when stored in unopened containers at temperatures not exceeding 50°C, away from direct sunlight. |
Industrial chemical packaging made from LyondellBasell HDPE 50-5052 addresses aggressive cleaning agent concentrates, oxidising liquid formulations, and non-food household chemicals. The resin is converted on accumulator head blow moulding machines with a screw L/D ratio of 24:1 to 30:1, where barrel temperatures from feed to metering are controlled within 170–210 °C. Environmental stress cracking resistance is evaluated according to ASTM D1693-21 Condition B with a 10% Igepal CO-630 solution at 50 °C. For detergent and hypochlorite containers, converters routinely require failure rates below 20% after 100 h. Packaging for dangerous goods is certified under UN 3H1/Y specifications when the filled container is intended for road or rail transport. The container wall thickness at the top-load shoulder is typically 1.2–3.0 mm, and the base pinch-off is compressed to 0.5–0.8 mm to avoid weld-line leaks under hydrostatic test pressure of 20 kPa for 10 minutes. Typical compounding inputs include PE-based colour masterbatch at 0.5–2.0 wt% and in-house regrind at 15–20 wt%, provided the regrind is free of adhesive label residues. Surface fluorination reduces solvent permeation for aromatic hydrocarbons and methacrylate monomers. Without fluorination, high-purity xylene weight loss through the HDPE sidewall can exceed 0.1 g/h for a 5 L container at 40 °C. Incompatibilities include long-term contact with strong oxidising acids above 15% concentration and with halogenated solvents, which soften the resin and reduce top-load strength after 30 days of immersion.
Solvent permeation through HDPE sidewalls becomes the limiting design variable when pesticide formulations contain xylene, cyclohexanone, or petroleum distillates above 10 wt%. HDPE 50-5052 is used as the outer structural layer in three-layer or six-layer coextrusion blow moulding structures with polyamide or EVOH as the barrier core. The tie layers are anhydride-modified polyethylene grades with a maleic anhydride graft level between 0.5% and 1.0%, because hydrogen bonding between the tie layer and polyamide improves interlayer adhesion above 4 N/15 mm when tested by a peel method aligned with ASTM F904. In a six-layer die, individual extruder temperature settings for the HDPE layers are 180–210 °C, while the polyamide core is maintained at 230–250 °C to avoid interfacial viscosity mismatch. The layer distribution by total wall thickness is typically HDPE skins 90–95%, tie layers 2–4%, and barrier core 3–6%. Die design must maintain each layer thickness within ±10% of the programmed value; layer nonuniformity above this band creates thin spots where xylene permeability rises disproportionately. Containers are tested for solvent penetration according to ASTM D4754 or in-house gravimetric protocols at 40 °C for 28 days. Mass loss from the filled container is typically specified below 0.5% of total fill weight for a 1 L container. For highly aggressive emulsifiable concentrates, exterior label adhesives and closure liners are also qualification variables because solvent vapour can migrate through the unfluorinated closure area at rates higher than through the barrier sidewall. Published data for this specific six-layer HDPE 50-5052 configuration is limited; stack validation is therefore performed on the target tooling and closure assembly.
Windshield washer reservoirs, coolant recovery bottles, and non-pressurised hydraulic fluid vessels are blow moulded from HDPE 50-5052 when continuous fluid temperature remains below 60 °C. Parison sag becomes the primary defect at shot volumes above 1.5 L; the programme must create a wall thickness profile that compensates for draw-down and die swell. The clamp force for a 4 L reservoir is normally 250–450 kN, and mould cooling is maintained at 10–25 °C to freeze the pinch-off within 20 s. Burst pressure testing follows ASTM D1599 or OEM-specific protocols, with non-pressurised reservoirs commonly validated at 50–70 kPa internal air pressure for 5 minutes. Vibration weld joints on injection-moulded filler necks are qualified at a frequency of 200–240 Hz and amplitude of 1.0–1.5 mm; weld penetration depths below 0.8 mm produce tear propagation from the weld bead. The material is not specified for pressurised gasoline tanks or for continuous immersion in hot ethylene glycol above 85 °C. In those conditions, a higher-density HDPE with carbon black UV stabilisation or a thermoplastic polyolefin is specified. For underhood installations, carbon black masterbatch loading above 2.0 wt% is required for UV stability when the reservoir is exposed through wheel arch openings. Regrind addition is limited to 10 wt% maximum because repeated heat history lowers ESCR and increases the risk of weld-line cracking at the pinch-off.
| Parameter | Typical processing envelope | Qualification reference |
|---|---|---|
| Melt temperature, zone 2 to die head | 180–210 °C | ISO 1133-1:2022 for MFR verification |
| Parison die gap | 2.0–3.5 mm | Accumulator head tooling |
| Blow pressure | 0.6–0.9 MPa | Container burst test ASTM D1599 |
| Mould temperature | 10–25 °C | Cycle-time validation |
| Regrind addition, general rigid packaging | 10–20 wt% | Lot ESCR verification ASTM D1693-21 |
| Inline fluorination gas mixture | 0.5–2.0 vol% F₂ in N₂ | XPS surface fluorine measurement |
In personal care and liquid pharmaceutical packaging, HDPE 50-5052 is converted into mono-layer and coextruded squeeze bottles, laminated tubes, and travel-size containers. The injection-blow moulding route is limited to lots with melt flow rates at the upper end of the supplier’s release specification, because low-flow high-molecular-weight HDPE can exhibit incomplete core injection below 200 °C. The resin is applicable to aqueous and hydroalcoholic formulations up to 35% ethanol when the packaging is not intended for inhalation delivery. Organoleptic panel testing according to ASTM F1309 or equivalent sensory protocols is required for surfactants and fragrance compounds; off-taste contribution must remain below the panel threshold for the intended fill volume. Tamper-evident closures are produced from the same resin family or from high-flow HDPE with an MFR of 1.5–3.0 g/10 min to fill thin-wall caps. For pharmaceutical syrups, extractables testing follows USP chapter 661.1 and Ph. Eur. 3.1.3; values for total organic carbon and heavy metals are lot-dependent and must be verified against the certificate of analysis. Multi-layer structures with EVOH are used only when oxygen-sensitive active ingredients require an oxygen transmission rate below 0.5 cm³/(m²·day·atm) at 23 °C and 0% RH, because a mono-HDPE wall does not provide this barrier. Additive masterbatch levels for colour and antistatic control are typically 0.5–2.0 wt%, with active antistatic content in the range of 500–1,000 ppm.
HDPE 50-5052 can function as the structural skin in multi-layer packaging for edible oils, sauces, and concentrated syrup bases when food-contact compliance is documented under FDA 21 CFR 177.1520(c) and (EU) No 10/2011 for the specific additives present in the lot. Processors typically use three-layer or five-layer coextrusion to combine the HDPE skins with an oxygen-barrier core, but the oil contact layer may be a linear low-density polyethylene or ethylene-vinyl alcohol copolymer depending on taste panel requirements. For edible oil bottles, monomer extraction and overall migration are tested according to (EU) No 10/2011 with food simulant D1 for fatty foods at 40 °C for 10 days. The melt temperature of the HDPE skin is maintained at 190–220 °C; excessive residence time above 240 °C generates measurable aldehyde and ketone volatiles that are detectable in organoleptic tests. Injection moulded preforms used in injection-blow moulding of edible oil bottles are less common for this high-molecular-weight grade because the melt flow rate is normally insufficient to fill long core pins at low injection pressure. Extrusion-blow moulding is therefore the preferred route. In household chemical structures, post-consumer recycled HDPE can be interposed as a middle layer when its level does not exceed 40 wt%, provided the lot passes the same ESCR and top-load tests as virgin resin. The barrier core level is set by the required oxygen transmission rate; a core fraction of 3–6% is common for edible oil bottles where shelf life is defined by oxidative rancidity.
HDPE 50-5052 exposed to sodium hypochlorite at concentrations above 5% available chlorine is vulnerable to environmental stress cracking at moulded-in residual strain points and weld lines. Inline fluorination of the container inner surface is specified when the filled product is a bleach solution, pool sanitizer, or hard surface disinfectant. The fluorine gas is diluted with nitrogen to 0.5–2.0 vol% F₂ and introduced into the parison during blowing. Residence time is kept between 2 s and 10 s depending on container volume. Surface fluorine content measured by XPS is typically in the range of 0.5–1.5 atomic % for barrier packaging. This level reduces oxygen and chlorine permeation by formation of a fluorinated surface layer with lower permeability. Post-fluorination containers must be purged with air for 30–60 s to remove residual hydrogen fluoride. Qualification includes hydrostatic load, drop impact at -18 °C according to ISTA 1A or ASTM D2463, and cap torque retention after 30 days of bleach storage at 40 °C. Blends with nitrogen-containing additives are not used because fluorination by-products can form acidic species that accelerate closure liner degradation. In high-bleach service, regrind is excluded from the inner wall layer if post-consumer content cannot be verified for contact with oxidising media.
| Regulation / standard | Application boundary | Testing condition |
|---|---|---|
| UN 3H1/Y | Dangerous goods packaging for industrial liquids | Hydrostatic 20 kPa for 10 min |
| FDA 21 CFR 177.1520(c) | Food-contact HDPE articles | End-use condition and extractives per clause |
| (EU) No 10/2011 | Plastic food-contact materials in EU | Overall migration 10 mg/dm², simulant D1 |
| RoHS 2011/65/EU | Electrical/electronic equipment housings | Pb 1000 ppm, Cd 100 ppm, Hg 1000 ppm |
| ASTM D1693-21 | ESCR of chemical containers | 50 °C, 10% Igepal, 100 h |
| ASTM D2463 | Drop impact of blow-moulded containers | -18 °C or ambient, defined fill volume |
At melt temperatures below 175 °C, HDPE 50-5052 exhibits increasing extruder amps and elevated die pressure, which produces sharkskin melt fracture when wall shear stress exceeds the critical shear stress of approximately 0.14 MPa for linear high-density polyethylene. The processing window narrows when the accumulator head is operated at a die gap below 1.8 mm; intermittent parison surface defects and weld-line folds appear in containers with wall thickness below 0.9 mm. Die swell typically ranges from 20% to 40% depending on melt temperature and shear rate. Tooling designed for lower-swell polypropylene cannot be used without recutting the die and mandrel. The resin is not pre-dried under ambient conditions, but when stored in bulk silos at relative humidity above 80%, surface condensation must be removed by a hopper dryer set at 60–80 °C for 1–2 h if visible surface moisture is present. Recycled in-house tails and flash are added to the feedstock at up to 20 wt%, provided the regrind is free of paper labels and adhesive residue that promote black specks. On a grooved-feed extruder with L/D 30:1, the metering zone pressure should remain below 35 MPa. Pressure excursions above this limit indicate a blocked screen pack or insufficient barrel temperature in zone one. The material is not recommended for blown film or cast film applications because the molecular weight distribution and melt strength are configured for thick-walled rigid parts. Film converters using this grade have reported unstable bubble geometry at blow-up ratios above 1.8:1.
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