| HS Code | 338393 |
| Polymertype | High Density Polyethylene (HDPE) |
| Density | 0.958 g/cm³ |
| Meltindex | 0.15 g/10 min (190°C/2.16 kg) |
| Tensilestrengthatyield | 29 MPa |
| Tensilestrengthatbreak | 33 MPa |
| Elongationatbreak | 600% |
| Flexuralmodulus | 1200 MPa |
| Hardnessshored | 65 |
| Vicatsofteningpoint | 127 °C |
| Brittlenesstemperature | -70 °C |
| Environmentalstresscrackresistance | >1000 h (F50, 10% Igepal) |
| Meltingpoint | 135 °C |
| Thermalconductivity | 0.45 W/m·K |
| Specificheat | 1.9 kJ/kg·K |
| Coefficientoflinearthermalexpansion | 1.2E-4 1/°C |
| Waterabsorption | <0.01% |
| Dielectricconstant | 2.3 |
| Volumeresistivity | >1E15 ohm·cm |
| Moldshrinkage | 2-4% |
As an accredited LyondellBasell HDPE 50-0158 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | LyondellBasell HDPE 50-0158 is typically packaged in 25 kg polyethylene bags, palletized, with 1,000 kg bulk bags available. |
| Container Loading (20′ FCL) | 20′ FCL loaded with LyondellBasell HDPE 50-0158 in 25 kg bags, palletized, strapped, and evenly distributed for safe ocean transport. |
| Shipping | LyondellBasell HDPE 50-0158 is a nonhazardous polyethylene resin, not regulated for transport. It is typically shipped in 25-kg bags, bulk bags, or bulk trucks/railcars. Keep packages dry, closed, and away from heat, sunlight, and strong oxidizers. Follow local regulations and the manufacturer’s safety data sheet. |
| Storage | Store LyondellBasell HDPE 50-0158 in a cool, dry, well-ventilated area away from direct sunlight, heat, sparks, and flames. Keep original bags or containers closed to prevent moisture and contamination. Avoid prolonged UV exposure and extreme temperatures. Stack securely to prevent package damage. Follow first-in, first-out rotation and applicable SDS/local regulations. |
| Shelf Life | Shelf life is 24 months when stored in original unopened packaging, dry, below 50°C, away from direct sunlight and moisture. |
LyondellBasell HDPE 50-0158 enters downstream conversion as a pelletized high-density polyethylene with a density of 0.950 g/cm³ measured under ISO 1183-1:2019. Incoming resin release protocols in injection-moulding plants include melt flow rate verification under ISO 1133-1:2022, condition 190 °C/2.16 kg, and density testing on compression-moulded specimens after conditioning at 23 °C ± 2 °C and 50 % ± 10 % RH. Moisture uptake under high-humidity silo storage above 60 % RH can generate surface splay in thick-walled parts; hopper drying for 2–3 h at 80 °C is applied when ambient dew point exceeds 20 °C.
In returnable logistics crates and fish boxes, HDPE 50-0158 is processed on toggle-clamp injection presses with clamp force between 400 t and 800 t and a reciprocating screw with 20:1 to 22:1 L/D. The melt temperature band is set from 230–250 °C at the nozzle; barrel zones are profiled from 180 °C at the feed throat to 235 °C at the metering section to avoid screw recovery overrun. Mould coolant entering at 30–50 °C is used for the core and cavity; cavity pressure sensors trigger hold pressure transfer at 100–140 bar inside the cavity, after which a holding level of 450–650 bar hydraulic pressure is maintained for 3–6 s. Gate positions are placed at the central boss of each crate cell when cold runners are used, with sprue diameters of 2.5–3.5 mm and land lengths of 1.0–1.5 mm. If injection velocity falls below 40 mm/s, short-shot defects appear at the bottom corner nodes because the flow-front skin layer crystallises before corner filling is complete. Antioxidant and UV stabiliser concentrates are let down at 2.0–3.0 wt% carbon black masterbatch in PE carrier for outdoor crates, while food-contact fish boxes use a 1.0–2.0 wt% white masterbatch when conversion is covered by EU Regulation 10/2011. Post-mould regrind from sprue and rejected crates is incorporated at 15–25 wt%; above this level, tensile yield strength measured under ASTM D638-14 may fall below the stack-load safety factor of 1.3. The finished crate is evaluated by compression creep under ISO 12048 at 40 °C for 48 h, with a maximum deflection of 2.0 mm at the top edge.
Injection moulding of tamper-evident closures for industrial chemical containers uses a 96-cavity valve-gated hot runner with drop diameters from 0.8–1.2 mm. The limiting tolerance is not the thread profile but the roundness of the closure body after shrinkage: ovality must remain below 0.15 mm across a 58 mm skirt diameter to prevent leakage after the induction seal is applied. HDPE 50-0158 is processed at melt temperature 230–250 °C, with the hot-runner manifold set 5–10 °C above the nozzle temperature to prevent stringing at valve-gate shut-off. The mould cooling circuit operates at 10–18 °C to freeze the skirt before ejection; holding pressure is maintained at 450–650 bar hydraulic with a hold time from 0.8–2.0 s. Ejection at a core temperature above 90 °C leads to post-ejection ovality because residual crystallisation continues after the part leaves the cavity. A slip concentrate based on erucamide in the same HDPE carrier is added at 1.0–2.0 wt%, equivalent to 0.05–0.10 wt% active slip, to bring opening torque below 1.5 N·m on a torque meter without over-plating the seal. For food-contact grades, compliance with FDA 21 CFR 177.1520 and EU Regulation 10/2011 is verified on the finished closure, including migration testing with 3 % acetic acid and 10 % ethanol food simulants for aqueous and alcoholic products.
In thin-wall dairy tubs and deli containers, the processing conflict is not the melt pressure at the gate but the growth of the frozen layer along the cavity surface. Wall thickness is reduced to 0.9–1.4 mm while flow lengths reach 180–250 mm, producing flow-length-to-wall-thickness ratios above 180:1. Hydraulic accumulator-assisted injection units with screw diameters of 35–45 mm and injection velocities of 120–180 mm/s are used to maintain a melt front velocity above 150 mm/s; below this threshold, hesitation lines appear at the sidewall transition. Melt temperature is set at 240–260 °C, while mould temperature is controlled at 10–25 °C with turbulent-flow water channels of 8–10 mm diameter placed 12–15 mm behind the cavity surface. HDPE 50-0158 is coloured with 1.5–2.5 wt% titanium dioxide white masterbatch in a PE carrier; the specific let-down ratio is adjusted to keep the concentration of TiO₂ in the final wall between 1.0 wt% and 1.5 wt% because higher loadings increase melt viscosity and shift the filling time beyond the allowed 0.4 s. A nucleating agent is added at 0.05–0.15 wt% to raise crystallisation onset temperature and reduce post-mould shrinkage along the rim; dosing is critical because excess nucleator produces a drop in dart impact at low temperatures. The cooling-time calculation for a 1.2 mm wall uses an isothermal ejection temperature of 80–90 °C. At ejection, the two outer skins have crystallised to a depth of approximately 0.2 mm each, leaving a molten core that continues to shrink for 30–60 min after demoulding. Flatness measurements are therefore delayed until 24 h after moulding, and the cavity is cut with a 0.2–0.4 mm reverse camber across the long axis to compensate for differential shrinkage. Cold-tool operation below 10 °C raises surface gloss but produces brittle skids at the rim; the acceptable cold-tool window for this grade is 12–22 °C under turbulent-flow cooling. Food-contact compliance for the finished container is demonstrated under EU Regulation 10/2011 Annex II and FDA 21 CFR 177.1520. The terminal articles include dairy cups, portion packs, and transparent lids.
| Verification item | Standard or regulation | Test condition | Typical frequency |
|---|---|---|---|
| Density | ISO 1183-1:2019 | 23 °C ± 2 °C | per silo lot |
| Melt flow rate | ISO 1133-1:2022 | 190 °C, 2.16 kg | per silo lot |
| Tensile yield stress | ASTM D638-14 | type IV specimen, 50 mm/min | monthly |
| Flexural modulus | ISO 178:2019 | 80 × 10 × 4 mm, 2 mm/min | monthly |
| Environmental stress crack resistance | ASTM D1693-15 | condition B, 10 % Igepal, 50 °C | quarterly |
| Vicat softening temperature | ISO 306:2022 | A120, 10 mm × 10 mm | quarterly |
Open-top industrial pails from 5 L to 25 L are moulded with wall thicknesses from 2.5–4.0 mm on single-cavity or two-cavity machines with clamp force from 500–900 t. The use of post-consumer recyclate is constrained by the drop test in dangerous-goods packaging regulations rather than by processing viscosity. Factory regrind from pail scrap is incorporated at 20–40 wt%; inclusion of external post-consumer HDPE is limited to 10 wt% in UN 1H1 open-top drums unless each batch is re-qualified by drop and stacking tests. HDPE 50-0158 is processed at melt temperature 230–250 °C, with injection speed from 60–100 mm/s and hold pressure 600–800 bar hydraulic for 4–8 s to pack the thick bottom chime and prevent sink marks at the gate. The gate is located at the pail bottom centre with a diameter of 2.5–4.0 mm; a smaller gate leaves the bottom region underpacked and reduces drop height at -18 °C by more than 20 %. Chemical resistance for mild acids and alkalis is assessed by immersion testing for 21 days at 23 °C, with tensile strength retention above 85 % after exposure to 5 % acetic acid and 5 % sodium hydroxide. The finished pail is evaluated by stacking at 40 °C for 28 days with a top-load of 75 kg per pail for 25 L containers. Published data for this exact recyclate configuration is limited; converters validate the maximum regrind level by multi-level design-of-experiments on the production tool.
Under forklift tine impact and static pallet load, material-handling pallets and dunnage trays convert HDPE 50-0158 in thick sections from 12–25 mm rib height and 6–10 mm deck thickness. Multi-drop hot-runner systems with 2–4 valve gates are required to prevent weld-line knit at the fork-tine entry windows. The melt temperature is maintained at 230–250 °C, while the mould is operated at 20–35 °C with sequential valve-gate opening to shift the weld line away from the corner blocks. Injection speed is set at 40–80 mm/s; higher speeds create jetting from the large gates, while lower speeds cause incomplete fusion at the far edge of the deck. A carbon black masterbatch is added at 2.0–4.0 wt% to provide UV stabilisation for outdoor storage; antistatic concentrate is used at 0.2–0.5 wt% only when the pallet is used in electronics logistics. Post-mould flatness is evaluated after 48 h conditioning at 23 °C ± 2 °C, with a maximum diagonal warpage of 5 mm across a 1200 × 1000 mm pallet footprint. Deflection under load is tested under ISO 8611-1:2021 at rated load, and top-deck bending must not exceed 20 mm after 24 h. Because pallet tools are often textured with a draft angle of 0.5–1.5°, ejection requires moving ejector plates and air-assisted release. Cycle time for a 1200 × 1000 mm pallet is typically 55–75 s, with cooling time calculated for a 10 mm deck section. Published data for this specific pallet configuration is limited; converters run graded regrind trials at 10 % increments to establish the maximum recyclate level without losing ISO 8611-1:2021 rated-load deflection margins.
Houseware storage containers and drawer organisers are moulded as thin-gauge but not food-simulant-tested; dimensional stability under home dishwasher exposure is the key control. Wall thickness ranges from 1.5–2.5 mm, with rectangular bases that require balanced flow from twin submarine gates of 1.0–1.5 mm depth. Melt temperature is held at 220–240 °C, and mould temperature at 15–25 °C reduces sink marks at the base corner intersections. Gate freeze time is determined by part mass monitoring after 24 h conditioning; weight variation above 0.5 % lot-to-lot indicates packing-time drift. A white masterbatch is let down at 2.0–3.0 wt%; a processing aid is not required in this geometry unless the mould surface is textured with a draft angle below 1°, where antistick surface treatment is preferred over melt-phase additives. Terminal articles include stackable storage boxes, drawer organisers, and ventilation-slotted houseware racks.
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LyondellBasell HDPE 50-0158 is a high-molecular-weight high-density polyethylene homopolymer produced by low-pressure slurry catalysis. The resin is supplied as natural white pellets and is specified at a nominal density of 0.950 g/cm³ in accordance with ISO 1183-1:2019 and a melt flow rate of 0.15 g/10 min under 190 °C/2.16 kg in accordance with ISO 1133-1:2022. The high-load melt flow rate is 15 g/10 min under 190 °C/21.6 kg. This combination locates the product in the high-molecular-weight HDPE segment for blown film and large-part extrusion blow molding. The molecular architecture is bimodal; the low-molecular-weight fraction promotes shear thinning in the die, while the high-molecular-weight fraction contributes to bubble stability, parison sag resistance, and environmental stress crack resistance. The base resin does not contain intentionally added slip agents or antiblocking additives, so surface slip below a coefficient of friction of 0.4 must be generated by converter-added masterbatch if required.
| Property | Typical value | Unit | Test designation |
|---|---|---|---|
| Density | 0.950 | g/cm³ | ISO 1183-1 |
| Melt flow rate | 0.15 | g/10 min | ISO 1133-1 (190 °C/2.16 kg) |
| High-load melt flow rate | 15 | g/10 min | ISO 1133-1 (190 °C/21.6 kg) |
| Tensile modulus | 1000 | MPa | ISO 527-2 |
| Tensile stress at yield | 28 | MPa | ISO 527-2 |
| Elongation at yield | 9 | % | ISO 527-2 |
| Elongation at break | >600 | % | ISO 527-2 |
| Vicat softening temperature | 128 | °C | ISO 306/A50 |
Capillary rheometry under ISO 11443 at 190 °C shows pronounced shear thinning between 10 and 1,000 s⁻¹. The apparent viscosity at 10 s⁻¹ is above 2.0 × 10⁴ Pa·s, falling to below 1.0 × 10³ Pa·s at 1,000 s⁻¹. This shear sensitivity is the primary reason the grade can be extruded through narrow die gaps despite its 0.15 g/10 min melt flow rate. In spiral mandrel film dies, die-lip shear rates are typically between 300 and 800 s⁻¹; at these shear rates the high-molecular-weight fraction suppresses hole formation during bubble expansion. Published elongational viscosity data for this specific configuration is limited, but bimodal HDPE resins of similar polydispersity index above 10 exhibit strain-hardening behaviour above Hencky strains of 1.5.
In blown film conversion, the resin is processed on spiral mandrel dies with die gaps from 1.0 to 1.8 mm and blow-up ratios from 2.0:1 to 4.0:1. Barrel temperatures are set from 180 °C in the feed zone to 210 °C at the die, while melt temperature at the adaptor is maintained between 190 and 220 °C. A frost-line height of 5 to 9 die diameters is used to balance quench rate and bubble stability. On single-screw extruders with screw diameter 55 to 75 mm and L/D ratio 24:1 to 30:1, backpressure typically remains below 350 bar when a screen pack with 80-mesh filtration is used. The processing window narrows above 230 °C because oxidative chain scission begins to reduce extensional viscosity and can create gel particles. Below 180 °C, unmelted particles and surface optical defects dominate. Pre-drying is not normally required, but pellet surface moisture after storage above 60% relative humidity should be removed with a desiccant hopper dryer at 70 °C for 2 h.
For extrusion blow molding, the melt is processed on shuttle-type machines with clamp force between 100 and 250 kN, using a divergent die gap of 1.2 to 2.5 mm. Parison sag is controlled by the high-molecular-weight fraction; parison length-to-diameter ratios above 3:1 require an accumulator head with a shot volume of at least 1.5 times the article mass. The recommended melt temperature for containers with wall thickness from 1.0 to 4.0 mm is 195 to 215 °C. Shutdown and startup sequences are critical: residence time at melt temperature above 220 °C should not exceed 10 min, and purging with a low-MFR HDPE is recommended before colour changes. Production-scale trials have shown that barrel zone overheating above 240 °C increases melt-index drift and can generate black specks after 30 min of stagnant operation.
On a 65 mm extruder with L/D 28:1 and a 250 mm die, output of 4.5 to 5.5 kg/h/rpm is typical at melt temperatures of 205 °C. The specific energy input is between 0.22 and 0.28 kWh/kg. These values depend on screw design, screen pack condition, and die pressure; published data for this specific configuration is limited.
Replacement of a conventional unimodal HDPE of similar density with HDPE 50-0158 shifts the balance between melt index and environmental stress crack resistance. A unimodal HDPE with a melt flow rate of 0.15 g/10 min typically exhibits a Charpy notched impact strength near 10 kJ/m², while the bimodal product reaches 20 kJ/m² at 23 °C under ISO 179-1/1eA. The comparative gain is more pronounced below -20 °C, although published data for this specific configuration is limited. In film applications, the increase in bubble stability permits an increase of die gap from 1.0 to 1.6 mm without loss of gauge uniformity. In blow molding, the change from a unimodal grade with the same density but narrower molecular weight distribution reduces parison sag, allowing container wall thickness to be reduced by approximately 10% while retaining top-load strength. The grade is not a direct substitute for high-flow injection molding resins; its melt flow rate of 0.15 g/10 min is too low for thin-wall molding with flow length-to-thickness ratios above 150:1.
| Attribute | HDPE 50-0158 | High-flow HDPE injection molding grade | C4-LLDPE film grade |
|---|---|---|---|
| Density | 0.950 g/cm³ | 0.960 g/cm³ | 0.918 g/cm³ |
| Melt flow rate | 0.15 g/10 min | 20 g/10 min | 1.0 g/10 min |
| Tensile modulus | 1000 MPa | 1400 MPa | 260 MPa |
| ESCR F50 | >1000 h | 10–50 h | not rated |
| Typical use | blown film, blow molding | injection molding caps and closures | stretch film |
Blown film produced from HDPE 50-0158 is used in heavy-duty sacks, agricultural film, and industrial liners. On a three-layer coextrusion line with a die diameter of 250 mm, a melt temperature of 205 °C, and a blow-up ratio of 3.0:1, film gauge of 25 to 80 µm is produced with dart impact resistance measured under ASTM D1709 above 300 g. This level is achievable only when the film is free of additive-induced surface defects; talc antiblock above 5,000 ppm reduces dart impact and increases gel count. The resin is also used in extrusion blow molded containers with volume from 5 to 60 L, including industrial packaging and agri-chemical containers, where environmental stress crack resistance measured under ASTM D1693 exceeds 1,000 h. For food contact articles, the grade is evaluated under FDA 21 CFR 177.1520 and EU Regulation 10/2011; compliance is conditioned on the finished article being subjected to the intended simulant testing and use-temperature limitations.
Regulatory clearance for food contact in the European Union requires that finished articles meet overall migration limits of 10 mg/dm² under EU Regulation 10/2011. For fatty food simulants, testing under OM2 conditions with 3% acetic acid and vegetable oil may be required. The base resin can be used in contact with dry and aqueous foods without exceeding the limit if the wall thickness is at least 0.5 mm and the processing melt temperature does not exceed 230 °C. In the United States, the grade falls under FDA 21 CFR 177.1520(c) for olefin polymers, subject to end-use extraction limits for xylene-soluble fraction. No statement of food-contact suitability is made for articles that are recycled or contain non-approved colourants. The product is supplied with a safety data sheet that identifies no substances of very high concern above 0.1 wt% under REACH Article 33. Metal-containing pigments must be assessed separately for EU RoHS Directive 2011/65/EU compliance.
Operational boundaries include incompatibility with sustained exposure to strong oxidising acids, aromatic hydrocarbons, and chlorinated solvents, which can cause environmental stress cracking. Outdoor service requires an ultraviolet stabilizer package or carbon black loading of 2.0 to 2.5 wt% to prevent molecular weight loss and surface chalking. The resin should not be blended with metal carboxylate-based flame-retardant additives at processing temperatures above 230 °C because acid-catalysed degradation can shift the melt flow rate outside specification. For converters running recycled HDPE, addition above 30 wt% reduces dart impact and tensile elongation; published data for this specific configuration is limited and must be qualified on production-scale film or blow molding lines.