| HS Code | 800649 |
| Density | 0.952 g/cm3 |
| Melt Mass Flow Rate 190 C 2 16 Kg | 4.0 g/10 min |
| Tensile Strength At Yield | 26 MPa |
| Tensile Elongation At Break | 1000% |
| Flexural Modulus | 1100 MPa |
| Notched Izod Impact Strength 23 C | 50 J/m |
| Shore D Hardness | 65 |
| Vicat Softening Temperature | 125 °C |
| Heat Deflection Temperature 0 45 Mpa | 75 °C |
| Melting Temperature | 130 °C |
| Coefficient Of Linear Thermal Expansion | 1.2E-4 cm/cm/°C |
| Water Absorption 24 H | <0.01% |
| Volume Resistivity | >1E15 ohm·cm |
| Dielectric Constant 1 Mhz | 2.3 |
| Thermal Conductivity | 0.3 W/m·K |
| Specific Heat Capacity | 1.9 kJ/kg·K |
As an accredited LyondellBasell HDPE L5040AS factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | LyondellBasell HDPE L5040AS is packaged in 25 kg polyethylene-lined bags, usually palletized for industrial handling and transport. |
| Container Loading (20′ FCL) | LyondellBasell HDPE L5040AS is loaded in 25 kg bags, palletized, 20 pallets per 20′ FCL, about 20 MT net. |
| Shipping | LyondellBasell HDPE L5040AS is a non-hazardous high-density polyethylene resin. It is not regulated for transport (no UN number, hazard class, or packing group). Typical shipping: 25-kg bags, octabins, or bulk trucks/railcars. Store dry, away from heat and prolonged UV exposure. |
| Storage | Store LyondellBasell HDPE L5040AS in a cool, dry, well-ventilated area away from direct sunlight, heat, sparks, and flames. Keep original containers tightly closed to prevent moisture and contamination. Avoid prolonged UV exposure and excessive stacking. Maintain moderate temperatures, ideally below 50°C. Ensure good housekeeping, keep away from strong oxidizers, and use first-in, first-out stock rotation. |
| Shelf Life | Stable under normal storage; recommended shelf life is 24 months from manufacture when kept in original packaging in a cool, dry area. |
Injection moulding of returnable industrial crates, perforated tote bins, and high-wall logistics containers with HDPE L5040AS is typically performed at melt temperatures of 210–230 °C and mould temperatures of 20–35 °C. The grade’s nominal melt flow rate of 4.0 g/10 min (ISO 1133-1:2022) and nominal density of 0.950 g/cm³ (ISO 1183-1:2019) place it in the medium-flow injection moulding window, where spiral-flow length is sufficient for sidewall thicknesses from 2.0 mm to 4.5 mm without excessive pack pressure at the screw tip. The formulation addition ratio most frequently used in converter trials is 10–20 wt% internally generated regrind and 2–3 wt% polyolefin-based color masterbatch; at regrind above 25 wt%, production-scale audits have recorded a non-linear reduction in Charpy notched impact strength (ISO 179-1:2010) and increased sidewall warpage after demoulding because the recycled fraction has a lower average molecular weight than the virgin material. Moulding equipment for this sector is usually a hydraulic or servo-electric injection moulding machine with clamp force between 400 t and 1,600 t, and hot runner valve gates are applied to reduce weld-line depth at the base-to-sidewall junction. Injection pressure at the nozzle is commonly 50–80 MPa, with hold pressure reduced to 40–60% of peak pressure to avoid overpacking at the gate boss; screw speed is limited to 40–80 min⁻¹ to prevent shear heating above 240 °C, which accelerates chain scission and viscosity loss. The downstream process is direct injection moulding followed by degating, forced-air cooling, flat-jig stabilization for 8–24 h, and optional in-line printing or laser marking. Terminal products include stackable logistics totes, automotive parts distribution crates, open-grid agricultural crates, and industrial bread-tray replacement containers. The finished crate is often evaluated under the load-bearing procedures of ASTM D4169-22 or the customer’s distribution-cycle protocol, while incoming resin lots are checked against ISO 1133-1:2022, ISO 1183-1:2019, and ISO 178:2019 for melt-flow stability, density, and flexural modulus.
Open-head pails produced from HDPE L5040AS are typically filled with water-based coatings, solvent-borne adhesives, joint compounds, or low-viscosity industrial chemicals. Where the pail is used as a dangerous-goods package, the converter certifies the finished pack under the UN packaging type 1H2 in accordance with Chapter 6.1 of the UN Model Regulations; the resin itself is not UN-certified. Formulation levels for this sector commonly include 20–30 wt% clean in-house regrind, 2–3 wt% pigment masterbatch, and 0.15–0.35 wt% UV stabilizer masterbatch when outdoor storage is specified. At regrind above 30 wt%, pail sidewall impact toughness measured by ISO 6603-2:2000 or ASTM D3029 may fall below first-generation material because the regrind has undergone an additional heat history and molecular-orientation loss at gate shear. The production process is accumulation-assisted injection moulding on a two-platen press with shot volume from 600 cm³ to 2,500 cm³ and a screw melt cushion maintained between 3 mm and 5 mm to avoid gas entrapment at the screw tip; mould-cooling water is held at 12–18 °C, and the cycle time is typically limited by the cooling requirement of the thick gate boss at the pail bottom annulus. Backpressure is held at 0.5–1.0 MPa to maintain shot-to-shot consistency without overworking the melt. Terminal products include 5 L, 10 L, 20 L, and 25 L open-top pails with wire or plastic handles, pour spouts, and gasketed lids. Finished-pack compliance commonly includes stack compression per ASTM D642-20, UN leakage procedures for dangerous-goods packs, and closure torque retention per ASTM D2063-12; post-consumer regrind should not enter this application without compatibility and contamination testing because the finished container may require certification under ADR, RID, or IMDG transport regulations.
| Standard designation | Parameter or scope | Typical application segment |
|---|---|---|
| ISO 1133-1:2022 | Melt mass-flow rate at 190 °C and 2.16 kg | Incoming resin lot verification |
| ISO 1183-1:2019 | Density of moulded samples | Resin density audit |
| ISO 179-1:2010 | Charpy notched impact strength | Crates, pails, pallets |
| ASTM D638-14 | Tensile yield strength and elongation at break | Thin-wall tubs and structural components |
| ASTM D2063-12 | Torque retention of continuous-thread closures | Caps and closures |
| UN 1H2 | Removable-head plastics drum certification | Open-head pails for dangerous goods |
| ISO 8611-1:2011 | Load-bearing test methods for flat pallets | Heavy-duty pallets |
| REACH EC 1907/2006 | Registration, evaluation, authorisation and restriction of chemicals | Consumer housewares and storage articles |
Injection-moulded continuous-thread caps and tamper-evident closures made from HDPE L5040AS exhibit a processing conflict between fill-point torque and egress torque after side-load compression. The nominal density of 0.950 g/cm³ gives converters a stiffness-to-stress-cracking balance that is exploited by moulding at the lower end of the HDPE melt-temperature range, typically 190–210 °C, to restrict post-mould crystallization and cap ovalization. Formulation addition levels for closures usually contain 2–4 wt% color or additive masterbatch and, where cap-shell friction is excessive, 0.05–0.15 wt% of an erucamide or oleamide slip concentrate; slip additions above 0.2 wt% have been associated in converter trials with print-adhesion loss and organoleptic transfer in lubricant packaging, and are therefore not used without downstream print-performance validation. The downstream process is high-cavitation injection moulding using hot-runner valve-gated tooling, typically from 32 to 96 cavities, with clamp force between 150 t and 350 t and cycle times below 8 s for thin-shell caps. Tool surfaces are polished to SPI A-2 to reduce knurl tearing, and the ejection stroke is set to avoid stress whitening at the tamper-band bridges. Hot-runner tips are maintained within ±5 °C of the manifold setpoint to prevent stringing and gate freeze-off. Terminal closure types include 28 mm, 38 mm, and 45 mm continuous-thread caps for agrochemical, detergent, and light industrial fluid bottles. Finished-cap quality is assessed by ASTM D2063-12 for torque retention, while resin melt-flow stability is verified by ISO 1133-1:2022 and density by ISO 1183-1:2019.
Houseware and storage-ware conversion is a large-projected-area, thin-rib injection moulding operation in which the antistatic additive package of HDPE L5040AS reduces surface dust attraction on moulded storage boxes and drawer units. Formulation practice in this sector starts with 2–3 wt% color masterbatch and 10–15 wt% in-house regrind; the grade is opaque, and filler or stiffness masterbatch additions above 4 wt% are not recommended without revalidation of weld-line strength at rib intersections and latch bosses. The downstream process uses multi-cavity cold-runner tools with tunnel gates, melt temperatures from 200 °C to 220 °C, and mould temperatures below 30 °C to maintain cycle times under 20 s; draft angles above 1.5° are required on deep drawer walls for consistent demoulding. Terminal products include stackable storage totes, parts-bin dividers, knock-down drawer systems, and ventilated cabinet organizers. Finished-article compliance is governed by the EU REACH regulation EC 1907/2006 and, where relevant, REACH Annex XVII restrictions for certain consumer articles; no food-contact clearance is claimed for this grade in this application.
At wall thicknesses below 1.0 mm and flow-to-thickness ratios above 150:1, thin-wall injection moulding of cylindrical industrial tubs and non-food paste containers subjects the HDPE L5040AS melt to high shear rates in the sprue and diaphragm gate. The melt temperature is raised to 220–240 °C and the injection speed is set to produce fill times of 0.15–0.35 s, preventing freeze-off at the gate before pack pressure transfers. The formulation for this sector starts with 0.1–0.2 wt% processing-aid or external mold-release masterbatch and 2–3 wt% colorant; regrind is held below 15 wt% because the viscosity reduction from the recycled fraction changes shot-size control in tools requiring a melt cushion of 1.5–2.5 mm. Production equipment is a high-speed hydraulic or hybrid moulding machine with accumulator assist; the tool is configured with a single sprue feeding a circular diaphragm gate to reduce gas entrapment at the tub base. Clamp force is selected from 250 t to 600 t depending on cavity number and projected area, while backpressure is lowered to 0.3–0.6 MPa to prevent gas loading in the melt. Terminal products include 0.5 L to 5 L cylindrical industrial tubs, paint mixing pots, and insert-moulded liner buckets for fiberboard drums. Finished-container evaluation typically references ISO 527-2:2012 for tensile yield and elongation, ISO 1133-1:2022 for incoming lot verification, and ISO 11469:2016 for polymer identification marking on the base.
The fork-entry openings in heavy-duty pallet and dunnage-platform tools create multiple melt fronts that weld together after flowing around steel core pins. With the nominal melt flow rate of 4.0 g/10 min, converters use sequential valve-gate sequencing or overflow wells to move the weld line from high-tensile locations into solid-web regions. The formulation addition ratio for this sector commonly includes 20–40 wt% clean post-industrial HDPE regrind and 1–2 wt% carbon-black or color masterbatch; oxidative stabilization is supplemented with 0.1–0.2 wt% antioxidant masterbatch when pallets are stored outdoors or exposed to repeated steam washing above 60 °C. Production is performed on large injection moulding machines with clamp force from 1,500 t to 3,500 t, or by low-pressure structural-foam moulding where density reduction and sink-mark control are specified; published data for this specific configuration is limited because pallet tool geometries, gating schemes, and cycle times are proprietary to individual mould-makers. Terminal products include export pallets, captive production-line dunnage trays, and interlocking logistics platforms. Compliance for the finished article is verified under ISO 8611-1:2011 for load-bearing performance; the resin is additionally monitored by ISO 1133-1:2022 and ISO 1183-1:2019 to maintain lot-to-lot consistency in this high-investment tooling sector.
Competitive LyondellBasell HDPE L5040AS prices that fit your budget—flexible terms and customized quotes for every order.
For samples, pricing, or more information, please contact us at +8618136850665 or mail to admin@ascent-chem.com.
We will respond to you as soon as possible.
Tel: +8618136850665
Email: admin@ascent-chem.com
Flexible payment, competitive price, premium service - Inquire now!
LyondellBasell HDPE L5040AS is a high-density polyethylene injection-moulding grade supplied as pelletized resin. The material occupies the moderate-flow segment of the HDPE portfolio, with a nominal melt mass-flow rate of 4.0 g/10 min measured at 190 °C under 2.16 kg load in accordance with ISO 1133-1:2022, and a nominal density of 0.954 g/cm³ determined by ISO 1183-1:2019. These values place it between fractional-melt blow moulding grades, which typically report MFR values from 0.2 g/10 min to 0.5 g/10 min, and high-flow injection moulding grades with MFR values at or above 7 g/10 min. The L5040AS grade is selected for caps and closures, crates, pallets, thin-walled containers, industrial pails, housewares, and related injection-moulded packaging where injection pressure, cooling time, and impact resistance must be balanced. The suffix AS indicates an antistatic additive variant; the surface modification reduces dust attraction and improves handling of moulded parts in packaging operations, although the exact surface resistivity should be confirmed from the supplier technical data sheet. Because published datasheets for this exact configuration vary by region and revision, the values in this document are typical published data and are not batch-release specification limits.
At the molecular level, the grade is designed to provide shear-thinning behaviour characteristic of linear high-density polyethylene. The moderate MFR of 4.0 g/10 min implies lower average molecular weight than fractional-melt HDPE, but higher than high-flow injection grades. This molecular-weight positioning affects solid-state properties, including stiffness, impact resistance, and environmental stress crack resistance. Publicly available supplier literature lists the tensile stress at yield as approximately 26 MPa when tested according to ISO 527-2/1A/50, with tensile strain at yield near 8 %. The flexural modulus is approximately 1,250 MPa under ISO 178:2019. The notched Charpy impact at 23 °C is approximately 5.0 kJ/m² according to ISO 179-1/1eA. These values are relevant to rigid packaging applications where panel stiffness and drop impact are evaluated simultaneously.
The primary difference is rheological. A fractional-melt HDPE with MFR near 0.3 g/10 min retains high melt strength and parison hang time, which is essential for extrusion blow moulding of large containers. However, the same high molecular weight limits flow length and increases injection pressures if used incorrectly in injection moulding. L5040AS is not intended for large-part extrusion blow moulding because its lower melt tension is insufficient for parison stability in heavy shot weights. Conversely, high-flow injection HDPE grades with MFR values above 7 g/10 min permit shorter filling time and thinner wall sections, but the lower molecular weight typically reduces notched impact strength and environmental stress crack resistance. L5040AS at 4.0 g/10 min occupies an intermediate position: the density of 0.954 g/cm³ yields high rigidity, while the moderate MFR retains sufficient molecular weight for toughness in service.
In comparative laboratory measurements, many fractional-melt blow moulding HDPE grades report tensile yield values in the range 23 MPa to 25 MPa and flexural moduli below 1,100 MPa, whereas high-flow injection grades can show notched Charpy values below 3.5 kJ/m². L5040AS therefore differs from those products by balancing stiffness and impact without requiring the elevated processing temperatures and injection pressures associated with low-MFR materials. This comparison is indicative only; final values depend on specimen preparation, conditioning, and test-machine calibration.
In cap and closure production, processing conditions for L5040AS begin with barrel temperature profiles ranging from 180 °C in the feed zone to 240 °C at the nozzle. Mould temperatures between 15 °C and 40 °C provide rapid solidification and reduce cycle time. The antistatic additive may create mild plate-out on mould surfaces during extended runs; mould maintenance intervals may be shorter than those used for non-antistatic HDPE grades. For thin-wall closures, fast injection speed is required to prevent premature gate freeze-off. Injection pressure typically falls between 60 MPa and 90 MPa, depending on wall thickness, flow path, and gate geometry. Hold pressure should be established by gate-seal studies using cavity pressure sensors, with initial hold pressure set at 50–60% of peak injection pressure. Screw rotation speed may be set between 50 min⁻¹ and 120 min⁻¹, with back pressure from 0.5 MPa to 1.5 MPa. Drying is normally unnecessary; if pellets are moved from cold storage into a humid manufacturing hall, condensation may occur. In that situation, pellet drying at 80 °C for 2 h with desiccant air having a dew point below -20 °C prevents surface splay and void formation.
| Property | Test method | Typical value |
|---|---|---|
| Melt mass-flow rate, 190 °C / 2.16 kg | ISO 1133-1:2022 | 4.0 g/10 min |
| Density | ISO 1183-1:2019 | 0.954 g/cm³ |
| Tensile stress at yield | ISO 527-2/1A/50 | 26 MPa |
| Tensile strain at yield | ISO 527-2/1A/50 | 8 % |
| Flexural modulus | ISO 178:2019 | 1,250 MPa |
| Charpy notched impact, 23 °C | ISO 179-1/1eA | 5.0 kJ/m² |
| Vicat softening temperature, A50 | ISO 306:2022 | 127 °C |
| Shore D hardness | ISO 868:2003 | 64 |
Published values represent typical injection-moulded specimens conditioned at 23 °C and 50 % RH for 24 h; they are not specification limits. Batch-to-batch variation is controlled by the producer, but public certificates of analysis should be requested for regulated applications. When validated on production-scale equipment, measured values may differ from the table because of mould temperature differences, gate design, packing pressure, and cooling rate.
The antistatic package in L5040AS modifies the surface of moulded parts by reducing static charge accumulation and dust attraction. Antistatic additives migrate to the polymer surface over time; their effectiveness depends on relative humidity, crystallinity, and post-moulding cooling history. At relative humidity below 15 %, surface resistivity may increase and static dissipation may be reduced. In dry packaging lines, users should verify compliance with company-specific electrostatic decay requirements, for example surface resistivity below 10¹² Ω or charge decay time per IEC 61340-2-3. Published surface resistivity data for this specific grade is limited in open literature; the supplier technical datasheet should be consulted for the exact antistatic classification. The additive does not replace conductive carbon-black compounds and is not intended for ATEX applications requiring volume resistivity below 10⁶ Ω·m.
Prolonged melt residence time should be avoided. The recommended melt temperature at the nozzle is 210 °C to 250 °C. Above 280 °C, thermal degradation of HDPE accelerates; oxidation produces chain scission, viscosity loss, discolouration, and odour. Purging with a low-MFR HDPE or dedicated purging compound should be performed after shutdowns and before colour changes. The hopper and feed throat should be kept below 45 °C to prevent pellet bridging and feed irregularity. Regrind from rejected moulded parts may be reintroduced, provided the regrind is free of oil, paper, metal, and polymer contaminants. For non-food applications, process experience indicates that up to 20 wt% clean regrind can be used without significant loss of impact resistance; for food-contact packaging, regrind use must satisfy migration limits under EU Regulation (EU) No 10/2011 and FDA 21 CFR §177.1520. Incompatible polymer contaminants include polyvinyl chloride, acetal, and ethylene-vinyl alcohol copolymers, which can degrade at HDPE processing temperatures and create surface defects, voids, or delamination.
Compliance with food-contact and product safety standards is application-dependent. The base polyethylene is typically manufactured to meet the requirements for olefin polymers in contact with food under FDA 21 CFR §177.1520 and EU Regulation (EU) No 10/2011; however, final article compliance depends on migration testing, additive migration, and use conditions. Relevant declarations are shown below.
| Regulation or standard | Scope | Typical status |
|---|---|---|
| FDA 21 CFR §177.1520 | Olefin polymers for food contact | Conforms for intended use when final article meets migration limits |
| EU Regulation (EU) No 10/2011 | Plastics in food contact | Compliance to be verified by migration testing per Annex I and Annex V |
| REACH Regulation (EC) No 1907/2006 | SVHC candidate list | No SVHC above 0.1% w/w according to supplier SDS |
| RoHS Directive 2011/65/EU | Restricted substances in electrical and electronic equipment | Not relevant to packaging unless incorporated into EEE; final part should be tested |
| IEC 61340-2-3 | Electrostatic decay | Verify with final part; antistatic grade is not specified as conductive |
For injection moulding machines, a general-purpose barrier screw with a compression ratio from 2.5:1 to 3.0:1 and L/D ratio of 20:1 to 24:1 is suitable. Shorter screws or excessive shear heating may produce local melt temperatures above 260 °C, leading to degradation even when nozzle setpoint is lower. The shot size should be between 30 % and 70 % of barrel capacity to maintain residence time within acceptable limits. When moulded on a 1,200 kN servo-hydraulic machine with a 40 mm diameter barrier screw, starting conditions of 220 °C melt temperature and 30 °C mould temperature provide consistent filling for medium-wall crates and containers; processors should verify these settings on their own tooling because gate geometry and hot-runner balance alter the pressure window.
When comparing L5040AS to non-antistatic HDPE grades of similar density and MFR, the antistatic additive may slightly reduce stiffness or impact resistance, but the change is usually within test reproducibility for the properties listed above. Users should evaluate critical-to-quality dimensions, drop impact, and surface resistivity together, because antistatic migration can be affected by corona treatment, printing, and hot-fill conditions. For applications requiring long-term hot water exposure or continuous service above 80 °C, the hydrostatic design basis should be evaluated separately; the grade is not a substitute for crosslinked polyethylene or medium-density pipe resins in pressure pipe service.
Published data for this specific configuration is limited in some respects, particularly regarding long-term creep and fatigue performance at elevated temperatures. For structural crates and pallets subjected to repeated impact at low temperatures, users should conduct application-specific tests according to ISO 22088-2 or equivalent ESCR methods, rather than relying solely on the standard property table. Verification of the current product data sheet is necessary for regulated applications.