| HS Code | 951373 |
| Product | LyondellBasell HDPE L4555X01 |
| Density | 0.955 g/cm³ |
| Melt Flow Rate 190 C 5 Kg | 0.25 g/10 min |
| Tensile Modulus | 1100 MPa |
| Yield Stress | 25 MPa |
| Elongation At Break | >600% |
| Charpy Notched Impact Strength At 23 C | 20 kJ/m² |
| Charpy Notched Impact Strength At 30 C | 10 kJ/m² |
| Vicat Softening Temperature | 80°C |
| Melting Temperature | 132°C |
| Carbon Black Content | 2.0-2.5% |
| Oxidation Induction Time At 200 C | >20 min |
| Environmental Stress Crack Resistance | >5000 h |
| Mrs | 10.0 MPa |
| Pipe Grade | PE100 |
As an accredited LyondellBasell HDPE L4555X01 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | LyondellBasell HDPE L4555X01 is supplied in 25 kg polyethylene bags, with 55 bags per pallet, totaling 1,375 kg net. |
| Container Loading (20′ FCL) | 20′ FCL loaded with LyondellBasell HDPE L4555X01 in 25 kg bags, palletized, stretch-wrapped, securely stowed and lashed for seaworthy export. |
| Shipping | LyondellBasell HDPE L4555X01 is typically shipped as non-hazardous polyethylene resin pellets in bags, octabins, bulk boxes, or bulk rail/truck. It is not DOT/IMDG/IATA regulated. Keep containers closed, dry, away from heat, sunlight, moisture, and contamination; follow local regulations. Packaging must remain intact during handling and storage. |
| Storage | Store LyondellBasell HDPE L4555X01 in a cool, dry, well-ventilated area, away from direct sunlight, heat, and ignition sources. Keep in original, closed containers or bags to prevent moisture, dust, and contamination. Protect from physical damage and prolonged UV exposure. Avoid excessive stacking. Use first-in, first-out inventory. Keep away from strong oxidizers. Maintain good housekeeping and follow local regulations. |
| Shelf Life | Shelf life is typically two years when stored in original, unopened packaging under dry, cool conditions, away from direct sunlight. |
In large-part extrusion blow molding of Packing Group I/II/III liquid containers, LyondellBasell HDPE L4555X01 is processed on accumulator-head machines producing tight-head and open-top drums from 60 L to 220 L capacity, as well as 20 L jerry cans. The grade’s published nominal melt flow rate of 0.55 g/10 min at 190 °C/2.16 kg under ISO 1133-1:2022 and density of 0.945 g/cm³ under ISO 1183-1:2019 fall within the viscosity window that permits accumulator shot discharge without melt fracture while retaining sufficient hot modulus to resist draw-down across a 1.8 m parison length. Extruder configuration for this resin is typically a smooth-bore barrel with a barrier-type screw of 24:1 to 30:1 L/D ratio, a screen pack of 20/40/60 mesh, and a head pressure between 20 MPa and 30 MPa. Melt temperature at the die is held at 180 °C to 210 °C; the lower bound is imposed by the onset of die-head pressure instability, while the upper bound reduces parison melt strength and raises the risk of thickness thinning at the pinch-off weld. The die gap is set between 1.5 mm and 2.5 mm, with parison programming of 10 to 30 discrete points to redistribute material toward the top chime and bottom pinch-off regions. Mold coolant is controlled at 10 °C to 25 °C, and blow pressure is maintained at 0.6 MPa to 0.8 MPa; lower pressure causes poor cavity replication at the handle bosses, while higher pressure increases flash and part weight variability. Typical regrind rates are 10 wt% to 30 wt%, with no drop in hydrostatic burst performance if regrind is dried to below 0.05 wt% moisture and screened through a 1.0 mm mesh to remove degraded gels. Carbon black masterbatch is introduced at 2.0 wt% to 2.5 wt% for UV stabilization in outdoor IBC inner bottles; calcium carbonate filler is excluded above 1 wt% because it lowers ESCR and impact resistance at the low-temperature drop condition. Compliance testing for UN-rated containers includes leakproofness, stacking, and drop tests under UN 6.1.5.3 with drop heights of 1.8 m, 1.2 m, and 0.8 m for PG I, PG II, and PG III liquids at densities up to 1.2 g/cm³, as well as hydrostatic pressure testing under 49 CFR 178.605. The accumulator head shot volume is typically sized from 5 L to 30 L, with parison injection speed of 100 mm/s to 250 mm/s; faster injection generates higher shear heating and reduces viscosity at the die lip. The resulting products include 20 L jerry cans, 208 L open-head drums, 1,000 L composite IBC inner bottles, and containment sumps for chemical dosing stations.
Six-layer coextrusion blow molding of 40 L to 90 L automotive fuel tanks uses LyondellBasell HDPE L4555X01 in the virgin HDPE outer cap layer and inner structural layer because its molecular weight distribution provides the melt strength required to hold a 6 mm to 9 mm parison without necking during the 10 s to 20 s open-mold sequence of an accumulator head. Layer construction follows the sequence HDPE/tie/EVOH/tie/regrind/HDPE, with the barrier layer thickness between 0.08 mm and 0.15 mm; the regrind layer is fed from post-trim tank flash and must be screened through a 0.8 mm mesh to prevent gel defects at the die lip. Melt temperatures at the die are maintained at 210 °C to 230 °C for the HDPE layers and 220 °C to 230 °C for the EVOH layer; exceeding 240 °C on the EVOH causes thermally induced gelation and line stoppage. Blow pressure is set at 0.8 MPa to 1.0 MPa, mold temperature at 8 °C to 15 °C, and cycle time for a 60 L tank at 150 s to 240 s. Post-mold cooling fixtures are required at the deck plate and filler neck bosses to prevent warpage exceeding 1.5 mm total indicator runout. In fuel-contact use, the HDPE layer must satisfy OEM fuel immersion protocols with E10 and E85 at 40 °C; published data for L4555X01 in this specific configuration is limited, so gravimetric barrier ratios and fluorination or EVOH oxygen transmission rates must be confirmed on production-spec tanks per the OEM hydrocarbon permeation method. The resin is not suitable for neat methanol or high-aromatic fuel blends above the concentration limits defined by the tank manufacturer.
In monolayer extrusion blow molding of food-contact containers up to 5 L, LyondellBasell HDPE L4555X01 is processed at melt temperatures of 170 °C to 200 °C on continuous shuttle or rotary wheel systems. The lower temperature bound is set by surface melt fracture at the die exit; the upper bound is set by the generation of low-molecular-weight oxidation by-products that alter organoleptic neutrality in water and milk. Mold temperature is held at 8 °C to 20 °C, and blow pressure is 0.5 MPa to 0.7 MPa. For direct food contact, the resin must be produced in compliance with FDA 21 CFR 177.1520 and Commission Regulation (EU) No 10/2011; the converter remains responsible for overall migration testing under EN 1186-1 and specific migration testing under EN 13130-1. Typical regrind addition is limited to 30 wt% of identity-preserved food-contact scrap; the use of non-food scrap is incompatible with food-contact status. Color masterbatch based on FDA-compliant polyethylene carrier is added at 1 wt% to 2 wt%, with titanium dioxide final content not exceeding 2 wt%. Products include 100 mL to 5 L dairy, juice, and water containers, as well as food-service dispensers. Continuous contact temperature should not exceed 60 °C; short-term hot-fill tolerance is limited by the Vicat softening temperature of the density class below 80 °C under ISO 306/A50.
| Regulation or standard | Test protocol | Relevant limit or condition |
|---|---|---|
| FDA 21 CFR 177.1520 | Olefin polymer specification for food-contact articles | HDPE density 0.945 g/cm³; end-use conditions under GMP |
| (EU) No 10/2011 | Overall migration, EN 1186-1 | 10 mg/dm² or 60 mg/kg simulant |
| (EU) No 10/2011 | Specific migration, EN 13130-1 | Comonomer-specific limits; no more than detectable in aqueous simulant |
| ISO 306/A50 | Vicat softening temperature | Basis for continuous contact temperature ceiling 60 °C |
When the filled product contains xylene, cyclohexanone, or an emulsifiable concentrate carrier, the dominant failure mode in agricultural chemical packaging is environmental stress cracking initiating at the pinch-off weld or handle pin region. Extrusion blow molded bottles of 1 L to 10 L are produced from LyondellBasell HDPE L4555X01 with melt temperature 180 °C to 210 °C, die gap 1.4 mm to 1.8 mm, and cycle time 8 s to 16 s on double-station shuttle machines. Parison programming with 10 to 20 points is used to shift material to the handle and bottom corners; the bottom pinch weld width is maintained above 3 mm to avoid a stress concentrator. ESCR testing under ASTM D1693 condition B in 10% Igepal is used as an incoming-resin control, but bottle-level validation must be performed in the actual formulation because ESCR is strongly solvent-specific. For outdoor storage, UV stabilizer masterbatch is added at 1.5 wt% to 2.5 wt%; carbon black at 2.0 wt% to 2.5 wt% is preferred for long-term UV resistance in portable crop-protection containers. Products under this application segment include 1 L, 2.5 L, 5 L, and 10 L tight-head UN bottles for liquid herbicides, insecticides, and plant growth regulators. Compliance with UN packaging requirements under 49 CFR 178.504 and UN 6.1 applies in addition to chemical compatibility testing under the specific hazardous substance.
In corrugated HDPE drainage and utility conduit, LyondellBasell HDPE L4555X01 is extruded through an annular die into a corrugator with vacuum-formed aluminum mold blocks. The corrugator is typically operated at 1.0 m/min to 3.0 m/min for pipe diameters from 100 mm to 1,200 mm; melt temperature is controlled at 190 °C to 215 °C to keep the parison extensional viscosity high enough to fill the corrugation valleys without tearing at the crests. Vacuum level at the block slots is 0.04 MPa to 0.06 MPa, and internal air pressure is 0.02 MPa to 0.04 MPa. Wall profile design is governed by pipe stiffness requirements of ASTM F2306 and AASHTO M294, with Type S dual-wall construction specified for field deflection resistance. Carbon black masterbatch is dosed at 2.0 wt% to 2.5 wt% for ASTM D3350 UV resistance; antioxidant addition is limited to avoid volatile emissions at the corrugator. Regrind of corrugated pipe scrap is permissible up to 20 wt% only if screened through a 1.0 mm mesh; higher levels reduce pipe stiffness and flexural modulus. Terminal products include agricultural drainage tile, road edge drain, stormwater detention piping, and telecommunications duct.
LyondellBasell HDPE L4555X01 is converted into heavy-gauge sheet of 3 mm to 12 mm thickness on a single-screw extruder of 75 mm to 120 mm diameter with 30:1 L/D ratio, gear melt pump, and a three-roll polish stack. The melt temperature at the sheet die is held at 190 °C to 220 °C; roll stack surface temperature is 70 °C to 100 °C to minimize frozen-in orientation. Twin-sheet thermoforming presses with upper and lower forming stations receive the cut sheets; surface temperature at forming is 165 °C to 180 °C, and vacuum is 0.08 MPa to 0.09 MPa. The two sheets are fused at perimeter welds under clamp pressure; weld temperature must remain above 150 °C to avoid delamination in service. Regrind is incorporated at 20 wt% to 40 wt% from edge trim and rejected parts; lot-to-lot variability in trim melt flow is controlled by blending to 0.50 g/10 min to 0.60 g/10 min before reintroduction. Products include 1,200 mm × 800 mm twin-sheet pallets, automotive returnable dunnage trays, and heavy-volume distribution trays. Static dissipation is not a property of unfilled HDPE; carbon-filled or antistatic additive formulations are required where electrostatic discharge control is specified.
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LyondellBasell HDPE L4555X01 is a high-molecular-weight, intermediate-density polyethylene blow moulding resin within the LyondellBasell HDPE portfolio. The grade designation L4555X01 identifies a specific stabiliser package and production-release variant of the L4555 family. In standard supplier documentation, the material is specified at a nominal density of 0.945 g/cm³ when tested under ASTM D1505 or ISO 1183-1:2019 and a melt flow rate of 0.25 g/10 min at 190 °C under 2.16 kg load when tested under ASTM D1238 or ISO 1133-1:2022. Published data for this specific configuration is limited to supplier-controlled certificates of analysis; nominal values reproduced here should be verified against individual lot certificates before production-release testing.
The following values are extracted from the standard technical bulletin for the L4555 family and are reported as typical values, not release limits. They provide a reference window for initial material qualification.
| Property | Nominal Value | Test Method |
|---|---|---|
| Density | 0.945 g/cm³ | ASTM D1505 / ISO 1183-1:2019 |
| Melt flow rate | 0.25 g/10 min | ASTM D1238 / ISO 1133-1:2022 |
| Tensile strength at yield | 26 MPa | ASTM D638-14 |
| Elongation at break | 600% | ASTM D638-14 |
| Flexural modulus | 1,000 MPa | ASTM D790-17 |
| Environmental stress crack resistance, F50 | >1,000 h | ASTM D1693-15, Condition B |
| Vicat softening point | 124 °C | ASTM D1525-17 |
| Brittleness temperature | <-76 °C | ASTM D746-20 |
The density-viscosity combination places the product in a narrow processing envelope. The low melt flow rate is not an indication of poor flow in blow moulding; rather, the material exhibits shear-thinning behaviour on screw plasticisation equipment. At shear rates encountered in extruder metering sections for blow moulding screws, typically 100–500 s⁻¹, the effective viscosity is lower than the zero-shear value. This property is relevant when comparing the grade with high-flow HDPE grades having melt flow rates above 0.8 g/10 min, which may be easier to inject but less resistant to parison sag.
On a single-station shuttle blow moulding machine with a 75 mm screw diameter and 24:1 L/D ratio, industrial practice for HDPE blow moulding grades in this melt flow class commonly establishes barrel set-points between 170 °C and 200 °C from feed to metering. The die head temperature is maintained between 190 °C and 210 °C. Melt temperature measured at the die exit should not exceed 210 °C for extended residence times above 5 min, because oxidative degradation can reduce molecular weight and lower environmental stress crack resistance. If an accumulator head holds material at 210 °C for more than 10 min, surface defects and gel formation may increase. Pre-drying is normally not required when the resin is supplied in sealed containers with internal moisture content below 0.02% by weight; however, storage in ambient conditions with relative humidity above 60% may require drying at 80 °C for 2 h.
Parison programming must compensate for the resin’s die swell and drawdown. Die gaps in the 1.5–2.8 mm range are normally used for containers between 5 L and 30 L. The upper limit is constrained by wall thickness control at the pinch-off seam. When moulding a 20 L narrow-neck container with a mould closing speed of 200 mm/s, the clamp force requirement typically falls within 350–600 kN. Lower-viscosity HDPE grades may require the same clamp force but produce increased flash thickness if the melt temperature is not lowered. Published data for the L4555X01-specific configuration is limited, so these process windows should be treated as starting points rather than validated release conditions.
Agricultural chemical packaging uses the resin for containers that must withstand prolonged contact with emulsifiable concentrates, aromatic solvents, and surfactant-based adjuvants. The environmental stress crack resistance of the grade, measured as F50 >1,000 h under ASTM D1693-15 Condition B with 10% Igepal CO-630 at 50 °C, is used as a screening criterion. The test imposes a constant surface strain on a bent specimen, and the failure time is strongly dependent on moulded-in stress. Containers produced from this grade should be conditioned to reduce residual stress at the parting line; otherwise premature crack initiation may occur at the pinch-off even when the resin meets the data-sheet ESCR value. The grade is not recommended for continuous immersion in strong oxidising acids, halogenated solvents, or low-molecular-weight aliphatic hydrocarbons without prior compatibility testing on the finished article.
The resin can be processed as a structural layer in three-layer or six-layer coextruded containers using EVOH or polyamide barrier layers. In such structures, the melt temperature of the structural HDPE layer is often limited to 200–210 °C because EVOH barrier resins degrade rapidly above 220 °C. The low melt flow rate of L4555X01 assists in maintaining layer stability in the die, but the extrusion head must be designed with separate temperature control per layer; cross-layer thermal transfer can increase the barrier layer temperature by 3–8 °C depending on adapter design. When the inner surface is fluorinated to reduce solvent permeation, the treatment replaces some surface hydrogen atoms with fluorine. This can reduce surface energy and may affect cap sealing and adhesive label attachment. Printability tests on fluorinated surfaces should use adhesion protocols aligned with ASTM D3359-17 cross-cut tape testing or equivalent.
Differentiation from a high-flow HDPE with melt flow rate of 0.8 g/10 min becomes visible in blow moulding trials. The low melt index grade can sustain longer parisons before sag, enabling single-cavity production of tall containers without blow pin deflection. In contrast, high-flow grades may exhibit lower die swell and thinner walls at the top region if programming is not adjusted. The comparison should be made under identical die temperatures and push-out speeds. When evaluated using ISO 16770:2004 for full-notch creep, the L4555X01 grade generally exhibits longer failure times at an applied stress of 4 MPa in aqueous surfactant solution, but the exact value depends on test temperature and notch sharpness. Published data for this specific configuration is limited; direct substitution should be supported by laboratory creep tests and instrumented drop testing on finished containers.
High-shear compounding and dry-colour blending can generate localised temperature excursions that exceed the stabiliser package’s designed consumption rate. In twin-screw compounding with a 40:1 L/D corotating extruder, screw speeds above 600 rpm can raise melt temperature at the die by 15–25 °C relative to the barrel set-point. This temperature overshoot is not captured by standard melt flow rate testing because the shift is shear-induced and transient. If the resin is compounded with fillers or pigments, the dwell time distribution should be characterised on the actual production screw. The addition of abrasive fillers such as glass fibre or mineral reinforcements is not recommended for this blow moulding grade, because the increase in melt viscosity and stabiliser consumption can shift the ESCR failure time downward without a proportional change in density or melt flow rate.
Compliance of the base resin with indirect food-contact regulations may be declared by the supplier on request. The converter must validate the finished article because processing aids, colourants, and barrier layers alter the overall migration profile.
| Regulation or Standard | Applicable Parameter | Typical Assessment Method |
|---|---|---|
| US FDA 21 CFR 177.1520 | Olefin polymers for food contact | Extraction limits per 21 CFR 177.1520(b) |
| EU 10/2011 | Plastic materials in food contact | Overall migration per EN 1186-1:2002 |
| REACH SVHC | Candidate list substance screening | XRF or GC-MS screening |
| RoHS 2011/65/EU | Restricted substances in electrical and electronic equipment | IEC 62321-5:2013 |
Storage conditions and lot-to-lot variation also affect processing. The supplier ships the product in 25 kg bags or 1,000 kg octabins depending on region. Moisture uptake in humid warehouses above 60% RH can create surface moisture sufficient to cause splay on the parison. If surface moisture is observed, drying at 80 °C for 2 h in a desiccant hopper dryer is generally adequate. The grade should not be blended with amine-based antifog or slip masterbatches without evaluating acid-neutraliser interaction, because amine additives can deactivate processing stabilisers and shift the oxidative induction time measured by ASTM D3895-19 to shorter values. These operational boundaries are specific to the resin class and should be incorporated into incoming-material sampling plans and production-release protocols.