| HS Code | 386309 |
| Density | 0.958 g/cm³ |
| Melt Flow Rate 190 C 2 16 Kg | 0.35 g/10 min |
| Tensile Modulus | 1200 MPa |
| Tensile Stress At Yield | 28 MPa |
| Tensile Strain At Yield | 9% |
| Tensile Strain At Break | 600% |
| Flexural Modulus | 1200 MPa |
| Charpy Notched Impact Strength At 23 C | 40 kJ/m² |
| Vicat Softening Temperature | 126 °C |
| Heat Deflection Temperature At 0 45 Mpa | 75 °C |
| Shore D Hardness | 62 |
| Water Absorption | 0.01% |
| Volume Resistivity | 1E15 ohm·cm |
| Dielectric Constant At 1 Mhz | 2.3 |
| Melting Temperature | 130 °C |
| Thermal Conductivity | 0.42 W/m·K |
As an accredited LyondellBasell HDPE H6011 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | LyondellBasell HDPE H6011 is typically supplied in 25 kg polyethylene bags or 1,000 kg bulk bags. |
| Container Loading (20′ FCL) | LyondellBasell HDPE H6011 is loaded in a 20′ FCL container, typically 25 metric tons in 25kg bags, palletized and shrink-wrapped. |
| Shipping | LyondellBasell HDPE H6011 is shipped as non-hazardous polyethylene resin pellets in 25-kg bags, 1000-kg jumbo bags, or bulk trucks/railcars. Store dry, shaded, and away from direct heat or UV. No special hazard classification; handle with standard industrial packaging and dust-control precautions. |
| Storage | Store LyondellBasell HDPE H6011 in a cool, dry, well-ventilated warehouse, away from direct sunlight, heat, sparks, flames, and strong oxidizers. Keep original packaging sealed, palletized, and off the floor to prevent moisture, dust, and contamination. Avoid prolonged high temperatures and UV exposure. Store at ambient temperature, preferably below 50°C. Follow supplier SDS and local regulations. |
| Shelf Life | LyondellBasell HDPE H6011 has a two-year shelf life when stored unopened in a cool, dry, well-ventilated area away from sunlight. |
LyondellBasell HDPE H6011 is specified for injection molding lines where the melt flow rate tested per ISO 1133-1:2022 is reported at 11 g/10 min under 2.16 kg and 190 °C, with a density of 0.960 g/cm³ per ISO 1183-1:2022. The grade is converted in downstream sectors requiring rapid mold filling, short solidification time, and reproducible post-mold dimensions; the scenarios below exclude extrusion-grade applications such as blown film and monolayer blow molding because those process windows require higher melt strength than the injection-grade rheology of HDPE H6011 provides.
Across thin-wall food packaging lines running HDPE H6011 at cycle times below 8 s, the governing production risk is warpage after demolding in rectangular dairy tubs with wall thickness between 0.5 mm and 0.8 mm. On multi-cavity hot-runner stack molds with up to 72 cavities, the polymer is processed with barrel settings from 190 °C at the feed throat to 225 °C at the nozzle, and the mold is cooled to 10–30 °C by turbulent-flow water circuits with flow meters on each cooling loop. Compliance for food contact requires that the finished article meet FDA 21 CFR 177.1520(c) 2.1 olefin polymer specifications and, for EU placing on the market, Regulation (EU) No 10/2011 with overall migration below 10 mg/dm² under the intended simulant and time-temperature conditions. In practical formulation terms, HDPE H6011 remains at 97–99 wt%, a polyolefin-carrier color masterbatch is added at 1–2 wt%, and a food-approved processing lubricant is dosed at 0.05–0.10 wt%; external mold release spray is avoided because it introduces migration risk and batch-to-batch surface tension variance. The downstream conversion process on electric injection molding machines with screw L/D of 20:1 to 22:1 and check-ring non-return valves uses injection velocities of 180–250 mm/s and hold pressures of 40–60 MPa; hold time is limited to 0.5–1.5 s because prolonged pressure transmits into the low-rigidity thin wall and generates gate-area stress whitening. Terminal finished product types include dairy cups, margarine tubs, deli containers, and snap-on lids, with wall-thickness-dependent cooling times of 3–7 s per 0.6 mm nominal thickness in water-cooled molds with beryllium-copper core pins on hot spots.
| Requirement | Standard/regulation | Numerical threshold or test method | Verification source |
|---|---|---|---|
| Density | ISO 1183-1:2022 | 0.960 g/cm³ nominal | Batch certificate |
| Melt flow rate | ISO 1133-1:2022 | 11 g/10 min at 190 °C/2.16 kg | Batch certificate |
| US food contact | FDA 21 CFR 177.1520(c) 2.1 | Olefin polymer compliance | Supplier declaration |
| EU food contact | Regulation (EU) No 10/2011 | Overall migration < 10 mg/dm² | Migration test report |
| Packaging heavy metals | EU Directive 94/62/EC | Total Pb+Cd+Hg+Cr6+ < 100 ppm | Masterbatch XRF screening |
The critical constraint in high-speed beverage closure production is not melt delivery but thread-size stability after ejection and room-temperature equilibration. HDPE H6011 is converted in 48–96-cavity closure molds on electric toggle presses with clamp force per cavity of 25–35 t, where the gate diameter is held between 0.6 mm and 1.0 mm to maintain shear heating above 1,000 s⁻¹ at the gate. The formulation contains an antioxidant package at 0.05–0.15 wt% and color masterbatch at 1–2 wt%; slip agents such as erucamide are kept below 0.05 wt% because their migration to the thread surface can reduce removal torque below the specified 1.5–2.5 N·m range on 38 mm closures. Regulatory compliance for polyolefin closures in food and beverage applications is established under FDA 21 CFR 177.1520 and Regulation (EU) No 10/2011, with packaging heavy-metal limits aligned to EU Directive 94/62/EC requiring total lead, cadmium, mercury, and hexavalent chromium below 100 ppm by weight. Downstream production uses injection-compression molding with a compression stroke of 0.3–1.0 mm applied after the cavities are 90–95% filled; this sequence reduces internal stress at the tamper-evident band hinge and lowers cracking risk after continuous cap tightening torque is applied. Finished article types include single-piece and two-piece beverage closures for carbonated soft drinks, bottled water, and dairy beverages, with cap diameters from 28 mm to 38 mm and hinge-segment tensile properties measured per ASTM D638-14 on micro-tensile bars cut perpendicular to the hinge axis.
In mold validation, the relationship between hold pressure and thread outside diameter is recorded on cavity-pressure curves from flush-mounted sensors behind the gate. If cavity pressure at the moment of switch-over exceeds 60 bar, thread cores deflect and produce an out-of-round condition above 0.15 mm across the cap diameter; if switch-over occurs below 30 bar, short-shot threads and incomplete tamper-evident band bridges are observed on the first components of each run. Therefore the machine-specific switch-over pressure is set after 10–20 consecutive shots are measured with a non-contact vision system; batch-to-batch fluctuation in melt flow rate within ±0.5 g/10 min shifts the switch-over point by approximately 2–4 bar, which is corrected by closed-loop melt-pressure control.
For rigid storage containers and logistics crates, the processing window is defined less by melt fluidity than by part mass and demolding geometry. HDPE H6011 is used at 100 wt% natural resin or with a UV stabilizer masterbatch at 0.2–0.5 wt% when the crate is exposed to outdoor yard storage; black color masterbatch is added at 2–3 wt% for opaque logistics articles. Under REACH Regulation (EC) No 1907/2006 Annex XVII restrictions and Directive 2011/65/EU RoHS recast, converters must document that lead, cadmium, and phthalates remain below applicable thresholds in the final molded article; for general housewares, no food-contact declaration is made unless separately validated under FDA 21 CFR 177.1520. The downstream process on large horizontal injection molding machines with clamp force from 500 t to 1,500 t uses a melt temperature of 200–230 °C and mold temperature of 15–40 °C. The screw is typically a general-purpose polyolefin geometry with compression ratio 2.5:1 to 3.0:1 and a check-ring non-return valve; injection is pressure-limited at 80–120 MPa to avoid flashing along the parting line on deep-draw crates. Mold designers apply a post-mold shrinkage allowance of 1.5–2.0% for unfilled HDPE H6011, increasing to 2.0–2.5% across thick boss areas because differential cooling between the wall and boss generates sink marks and core deflection. Terminal products include stackable storage totes, ventilated crates, retail display bins, and shelving frames; these parts typically carry textured surfaces achieved with VDI 24–30 mold surface finishes to reduce visible flow lines on large flat panels.
When toy components are submitted to EN 71-3:2019+A1:2021 migration of elements testing, the heavy metal release from HDPE H6011 depends less on the base resin and more on the pigment and processing stabilizer package carried into the mold. Formulation control is therefore set at 1–3 wt% organic or inorganic color masterbatch that has been pre-screened against the soluble element limits for antimony, arsenic, barium, cadmium, chromium, lead, mercury, and selenium, while HDPE H6011 occupies 97–99 wt%. The use of release agents is restricted because release spray residues can create a surface layer that increases chromium or lead migration during assay procedures; if mold release is unavoidable, semi-permanent silicone-free agents are applied below 0.05 mg/dm² film thickness. Compliance also references ASTM F963-23 for US toy safety, ISO 8124-3:2020 for international harmonization, and REACH Regulation (EC) No 1907/2006 Annex XVII entries 51 and 52 for phthalate restrictions in child-use articles. The downstream molding process must keep melt temperature below 220 °C at the nozzle and residence time below 5 min because thermal oxidation during processing generates low-molecular-weight carbonyl compounds that increase odor in end-use sniff tests; differential scanning calorimetry of molded samples per ISO 11357-3:2018 typically shows recrystallization onset in the 112–118 °C interval, which requires mold cooling under 20 °C for cycle-time control without inducing high crystallinity gradients. Injection is performed on low-compression screws with L/D 18:1–20:1, using mold temperatures of 10–25 °C to shorten cooling time. Terminal finished products include building blocks, construction panels, outdoor play equipment components, and ride-on toy body parts, with wall thicknesses between 1.5 mm and 4.0 mm to maintain impact resistance at 23 °C per ISO 179-1/1eU without elastomer modification.
Industrial pail conversion on accumulator-assisted injection units introduces a different failure mode: low-temperature drop impact at the molded handle lugs and base corners. HDPE H6011 is formulated with linear low-density polyethylene at 5–10 wt% to raise low-temperature crack resistance, plus UV stabilizer at 0.25–0.4 wt% and antioxidant at 0.05–0.1 wt%. For UN-certified packaging under UN Model Regulations, Chapter 6.1 and 49 CFR 178.509, the molded pail must pass a 1.2 m drop test at −18 °C without rupture or leakage, a stacking test at 40 °C for 28 days, and a hydrostatic pressure test at 100 kPa for 30 min, as applicable; compatibility screening follows ISO 16101:2018 for polyethylene packagings that carry liquid dangerous goods. Production is performed on accumulator-assisted injection molding machines with shot capacity in excess of 2,000 cm³ and clamp force above 800 t; melt temperature is held at 200–220 °C, and mold temperature is controlled at 10–20 °C with conformal cooling channels in the handle lip. Wall thickness is maintained at 2.5–4.0 mm for the pail body and 4.0–6.0 mm in the rim and handle lugs, with ultrasonic thickness mapping on the first five shots of each batch to detect core shift caused by the internal core pin. Terminal finished products include open-head and tight-head pails from 5 L to 25 L, UN-rated containers for hazardous solid and liquid transport, and non-UN utility buckets, with batch-specific date stamps molded into the sidewall. Published data for HDPE H6011 in exactly this low-temperature drop configuration is limited, so a product-specific drop validation schedule is required for each new pail geometry.
| Process parameter | Thin-wall container 0.5 mm wall | Industrial pail 3.0 mm wall | Measurement method |
|---|---|---|---|
| Barrel melt temperature | 190–225 °C | 200–220 °C | Infrared melt probe / machine thermocouple |
| Mold temperature | 8–30 °C | 10–20 °C | Mold thermocouple array |
| Injection velocity | 180–250 mm/s | 50–120 mm/s | Screw position derivative / flow sensor |
| Hold pressure | 40–60 MPa | 60–100 MPa | Hydraulic pressure transducer |
| Total cycle | 6–12 s | 35–55 s | Production timer |
In thin-wall disposable food service packaging, the technical consequence of HDPE H6011 is the ability to shorten hold profile after gate freeze. The melt is injected at 215–230 °C into stack molds with cavitation from 16 to 48; mold temperature is kept at 8–20 °C because sink-mark depth is governed by outer-skin freezing time, not by total part thickness. The formulation is limited to HDPE H6011 at 98–99.5 wt% with a polyolefin carrier masterbatch at 0.5–2 wt%; no external lubricant is added because food-contact approval under FDA 21 CFR 177.1520 is maintained with a single-polymer system. Compliance under Regulation (EU) No 10/2011 requires that the overall migration be below 10 mg/dm², and specific migration of primary aromatic amines is not applicable because the polyolefin masterbatch is selected without azo pigments. The downstream process uses injection velocity controlled by cavity-pressure sensors placed behind the gate and near the flow front; the machine switches from velocity to hold when cavity pressure reaches 40–60 bar above the pre-fill pressure, and hold time is set to 0.3–1.0 s after the gate freezes, determined by gate seal time studies on each cavity bank. Terminal products include disposable cups, takeaway boxes, and compartment trays with wall thickness 0.4–0.7 mm, in high-humidity distribution environments where dimensional change is controlled by post-mold conditioning at 23 °C and 50% RH for 24 h before case packing. Published data for HDPE H6011 at 0.4 mm wall thickness in valve-gated stack molds is limited; process validation with cavity-pressure curves from each hot-runner nozzle is therefore the basis for hold-time reduction.
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LyondellBasell HDPE H6011 is a high-density polyethylene injection moulding grade supplied as natural pellets. The resin is differentiated by a nominal melt flow index of 11 g/10 min when determined at 190 °C under a 2.16 kg load in accordance with ISO 1133-1:2022, and by a density of 0.960 g/cm³ when measured under ISO 1183-1:2019. These values place HDPE H6011 in a high-flow, medium-to-high-stiffness segment of the commercial HDPE injection moulding range. The melt flow index is substantially higher than the 0.2–0.7 g/10 min range typical of high-molecular-weight blow moulding and blown-film grades, while the density remains close to the practical homopolymer ceiling near 0.965 g/cm³.
The grade is specified for multi-cavity thin-wall packaging, caps and closures, overcaps, appliance components, housewares, and injection moulded food-service articles where short cycle times and long flow lengths govern tool design. It is not intended for applications requiring sustained environmental stress-crack resistance, pressure-bearing container walls, or high notched impact resistance below 0 °C. The high melt flow index reflects a comparatively low molecular weight and lower chain entanglement density, which reduces injection pressure and improves mould filling but lowers melt strength and stress-crack resistance relative to lower-flow HDPE grades.
| Property | Typical value | Test method |
|---|---|---|
| Melt flow index, 190 °C/2.16 kg | 11 g/10 min | ISO 1133-1:2022 |
| Density | 0.960 g/cm³ | ISO 1183-1:2019 |
| Tensile yield stress | 25–27 MPa | ISO 527-2:2012 |
| Tensile strain at yield | 7–9 % | ISO 527-2:2012 |
| Tensile strain at break | >50 % | ISO 527-2:2012 |
| Flexural modulus | 1150–1250 MPa | ISO 178:2019 |
| Charpy notched impact strength, 23 °C | 3.5–4.5 kJ/m² | ISO 179-1:2010 |
| Shore D hardness | 67–69 | ISO 868:2003 |
| Vicat softening temperature, A50 | 124–127 °C | ISO 306 |
| Heat deflection temperature, B | 65–69 °C | ISO 75-2:2013 |
The above values are lot-dependent and must be revalidated against the current supplier certificate of analysis before tooling or compliance decisions. Some datasheets report an ASTM-based equivalent for melt flow index under ASTM D1238; the value is method-comparable but not numerically identical across laboratories.
The polymer is processed by conventional screw injection moulding. Because of the 11 g/10 min melt flow index, the resin exhibits pronounced shear thinning during filling, permitting reduced injection pressure and improved mould packing in sections below 1.2 mm. A practical melt temperature measured at the nozzle falls between 190 °C and 230 °C. Sustained exposure above 240 °C accelerates thermo-oxidative chain scission, raises yellowness index, and may generate volatile degradation products that condense on cavity surfaces. Tool temperature is generally maintained between 10 °C and 40 °C; water-cooled cores and hot sprue bushings are standard on multi-cavity closure tooling.
On a 1500 kN toggle-clamp injection moulding machine fitted with a 28 mm general-purpose PE screw with an L/D ratio of 20:1 and compression ratio of 2.0:1–2.5:1, short shots in thin-wall H6011 articles are frequently corrected by increasing injection velocity rather than by raising melt temperature. Capillary rheometry of high-melt-flow HDPE at 190 °C indicates a flow behaviour index below 1, which means that apparent viscosity declines as shear rate rises; however, published data for this specific configuration is limited, and tool validation remains mandatory. Hold pressure is typically set between 50 % and 70 % of peak injection pressure to compensate for crystallisation shrinkage without overpacking the gate region. Back pressure should remain below 1.5 MPa to avoid excessive shear heating and loss of viscosity control.
Screw recovery is rapid because of the low melt viscosity, but shot-to-shot mass variation can increase if back pressure is set below 0.3 MPa or if the non-return valve is worn. Production-scale field experience indicates that melt cushion control below 2.0 mm is critical for caps and closures, where inconsistent cushion transfer causes gate-seal variation and dimensional drift in the sealing inner diameter. Pre-drying is not normally required for sealed dry pellets; if condensation has occurred during cold storage, surface moisture may be removed by heating at 80 °C for 1–2 h in a desiccant dryer.
Compared with a general-purpose HDPE injection grade having a melt flow index near 4 g/10 min, HDPE H6011 fills thinner sections at lower injection pressure and permits reduced cycle time through faster plasticising and earlier gate freeze. The trade-off is reduced notched impact strength and lower environmental stress-crack resistance because the lower molecular weight reduces the concentration of tie molecules between crystalline lamellae. The practical processing difference is most visible in multi-cavity tools: H6011 may fill 8–16 cavities of a thin-wall cap with balanced hot-runner valve gates at pressures that would short shot a 4 g/10 min grade in the same tool.
A comparison with high-molecular-weight HDPE film grades is instructive. Film grades with melt flow indices below 1 g/10 min possess high melt strength, a broad molecular weight distribution, and sufficient extensional viscosity to stabilise a blown-film bubble. HDPE H6011 does not exhibit sufficient melt strength for unsupported blown-film processing; its value lies in injection moulding, where the same low viscosity that prevents film bubble stability becomes an advantage for filling long thin flow paths.
Mechanically, the high-flow grade develops a typical flexural modulus near 1200 MPa, which supports rigid part walls, but its notched Charpy impact at 23 °C is commonly 3.5–4.5 kJ/m², lower than values reported for many lower-flow blow moulding grades. Environmental stress-crack resistance, assessed under ASTM D1693 or ISO 22088-3, is therefore sensitive to gate geometry, moulded-in stress, and post-moulding annealing. Moulded-in stress from aggressive gate designs or excessive packing can reduce stress-crack resistance below the supplier-published typical range in aggressive surfactant environments. For cap liners and overcaps exposed to detergents, the gate should be positioned away from the sealing surface, and sharp corners should be radiused to a minimum of 0.25 mm to avoid stress concentration.
The differences between HDPE H6011 and other products are therefore defined by molecular weight, not density alone. A blow moulding grade at the same 0.960 g/cm³ density may have a melt flow index of 0.3 g/10 min, higher ESCR, and higher impact, but it cannot fill a thin-wall injection tool at comparable pressure. Conversely, a high-flow grade with MFR 18–25 g/10 min may reduce cycle time further but sacrifices stiffness and toughness to a degree that narrows the operating envelope. HDPE H6011 occupies an intermediate position that balances processability with stiffness for technical thin-wall parts.
Dimensional stability is controlled by crystallisation shrinkage, mould temperature uniformity, and packing history. HDPE H6011 typically exhibits mould shrinkage between 1.5 % and 2.5 % along the flow direction and slightly lower values across flow, depending on wall thickness and gate geometry. In thin-wall caps with wall sections from 0.5 mm to 1.0 mm, differential shrinkage across the part causes ovality if cooling is non-uniform. Cooling circuits should be drilled as close to the cavity surface as practical, with coolant supply temperatures monitored within a ±2 °C band. Production-scale observations show that intermittent coolant flow or unbalanced manifold temperatures create cap deformation that is not corrected by adjustment of holding pressure alone.
The material should not be blended with amine-based additive masterbatches or halogenated flame retardants without verifying compatibility, because such additives can alter thermo-oxidative stability and colour. Natural HDPE H6011 is resistant to many aqueous environments but is not intended for continuous contact with strong oxidising acids, aromatic hydrocarbons, or chlorinated solvents at elevated temperature.
Food-contact status is determined for the natural pellet as supplied. FDA 21 CFR 177.1520 covers olefin polymers used in contact with food, subject to density and extractables limitations. European food-contact assessment under EU No 10/2011 applies to the finished article; specific migration testing depends on the final additive package, part geometry, and time-temperature exposure. The resin as supplied is generally considered compliant with the polymer requirements of REACH (EC) No 1907/2006 and is not formulated with substances of very high concern as intentionally added components. RoHS screening is applied to finished articles, where X-ray fluorescence may be used to verify lead below 1000 mg/kg, cadmium below 100 mg/kg, mercury below 1000 mg/kg, and hexavalent chromium below 1000 mg/kg in homogeneous materials.
| Regulatory standard | Scope | HDPE H6011 position |
|---|---|---|
| FDA 21 CFR 177.1520 | Olefin polymers for food-contact articles | Natural grade supplier-confirmed; final article responsibility remains with converter |
| EU No 10/2011 | Plastic food-contact materials | Compliance depends on additives, migration testing, and food simulant conditions |
| REACH (EC) No 1907/2006 | Registration and chemical safety | Polymer preparation subject to registration obligations; no SVHC intentionally added |
| RoHS 2011/65/EU | Electrical and electronic equipment | Not directly applicable to bulk resin; screened on finished homogeneous materials by XRF |
The processing and compliance envelope for HDPE H6011 is therefore bounded by melt temperature, tool temperature, gate geometry, and additive selection rather than by moisture sensitivity or unusual drying requirements.