| HS Code | 726296 |
| Product Name | LyondellBasell HDPE 50-2053 |
| Manufacturer | LyondellBasell |
| Trade Name | Alathon |
| Grade | 50-2053 |
| Polymer Type | High Density Polyethylene (HDPE) |
| Density | 0.950 g/cm³ |
| Melt Flow Rate | 20 g/10 min at 190°C/2.16 kg |
| Melting Point | 130 °C |
| Tensile Strength At Yield | 24 MPa |
| Tensile Strength At Break | 24 MPa |
| Elongation At Break | 1000 % |
| Flexural Modulus | 1000 MPa |
| Vicat Softening Point | 120 °C |
| Heat Deflection Temperature | 65 °C at 0.45 MPa |
| Shore D Hardness | 65 |
| Water Absorption | <0.01 % |
| Thermal Conductivity | 0.45 W/m·K |
| Thermal Expansion | 1.2E-4 cm/cm/°C |
| Volume Resistivity | >1E15 ohm·cm |
| Dielectric Strength | 20 kV/mm |
| Dielectric Constant | 2.3 |
| Processing Temperature | 200-260 °C |
| Mold Temperature | 20-60 °C |
As an accredited LyondellBasell HDPE 50-2053 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | LyondellBasell HDPE 50-2053 is typically packaged in 25 kg polyethylene bags, palletized and wrapped, with 1,000 kg per pallet. |
| Container Loading (20′ FCL) | Standard 20′ FCL dry container loaded with LyondellBasell HDPE 50-2053 resin bags, palletized, stretch-wrapped, and secured for containerized ocean shipment. |
| Shipping | LyondellBasell HDPE 50-2053 is a non-hazardous polyethylene resin. It is typically shipped in 25 kg bags, 1,000 kg supersacks, or bulk trucks/railcars. Packaging is palletized and protected from moisture. Store dry, cool, away from sunlight and contamination. Not classified as dangerous goods for transport. |
| Storage | Store LyondellBasell HDPE 50-2053 in a cool, dry, well-ventilated warehouse, away from direct sunlight, heat, flames, and strong oxidizers. Keep original bags sealed and palletized to prevent moisture, dirt, and contamination. Avoid prolonged UV exposure and excessive stacking. Maintain moderate temperatures, follow local regulations, and practice first-in, first-out stock rotation. Keep away from incompatible materials. Ensure good housekeeping and inspect containers regularly. |
| Shelf Life | LyondellBasell HDPE 50-2053: stable under normal storage conditions; no defined shelf life. Keep dry, cool, away from direct sunlight. |
LyondellBasell HDPE 50-2053 is specified for thin-wall injection-molded dairy and delicatessen containers where the converter requires a nominal density of 0.950 g/cm³ (ISO 1183-1:2019) and a melt flow rate near 20 g/10 min at 190 °C under 2.16 kg load (ISO 1133-1:2022). Incoming resin lots are checked against producer certificate values before silo transfer; if the as-received moisture content exceeds 0.05% by weight, hopper drying at 75 °C for 2 h prevents splay and surface pits on container sidewalls. Mold filling is carried out with melt temperatures of 180 °C to 230 °C and mold wall temperatures of 10 °C to 40 °C, using injection speeds that produce a fill time of 0.15 s to 0.35 s for containers with sidewall thickness from 0.6 mm to 1.2 mm. The gate is a hot-edge film gate with a land length not exceeding 0.8 mm, and the runner system is sized to maintain shear rates below 50,000 s−1. At shear rates above this threshold, converter process audits have recorded unstable pressure curves and occasional flash in thin-wall tools with cavity counts from 4 to 16. Packing pressure is set at 55–75% of peak injection pressure, and gate-seal time is verified by cavity-pressure sensors positioned at the last point to fill; demolding before cavity pressure has decayed below 12 MPa increases rim bowing and post-mold ovality. For food-contact containers, the resin satisfies FDA 21 CFR 177.1520(c) for olefin polymers, provided that end-use migration testing under Commission Regulation (EU) No 10/2011 demonstrates overall migration not exceeding 10 mg/dm² for the assigned food simulant. The converter maintains color masterbatch dosage between 1.0 wt% and 2.5 wt% using a polyethylene carrier; higher loadings can shift effective melt flow rate and alter container drop-impact response measured by ASTM D5276-19. Hot-runner manifold balance in multi-cavity dairy tub tools is controlled so that temperature variation across drops does not exceed ±5 °C, because cavity-to-cavity fill imbalance in this grade class produces visible weight variation and inconsistent lid fit after shrinkage.
| Regulation/Standard | Clause or Test Method | Condition | Limit |
|---|---|---|---|
| FDA 21 CFR 177.1520 | Olefin polymer food-contact clearance | Use below polymer softening point | Good manufacturing practice |
| EU 10/2011 | Overall migration | Dairy simulant or 50% ethanol alternative | 10 mg/dm² |
| GB 4806.7-2016 | Total migration | 70 °C, 2 h | 10 mg/dm² |
| REACH Annex XVII | Cadmium and lead in packaging | Article placed on market | Harmonized heavy-metal restrictions |
Weld-line integrity in high-flow HDPE closure molding is determined less by short-term tensile yield stress than by gate geometry and the packing history of the area where melt fronts rejoin behind thread-core pins. Closure bodies with external thread diameters from 24 mm to 38 mm are produced in multi-cavity tools of 48 to 96 cavities, with valve-gated hot runners delivering melt into the center of the top plate. The melt is processed at 200 °C to 235 °C, and mold temperature is controlled between 15 °C and 30 °C to stabilize post-mold shrinkage. Melt splits around the thread-core pins and rejoins on the opposite side of the shell, creating a circumferential weld line that becomes the controlling feature for crack initiation under hoop stress. Environmental stress crack resistance is evaluated on notched specimens using ASTM D1693-15, condition B, with undiluted 100% Igepal CO-630 at 50 °C. A failure time below 24 h in this test is commonly interpreted as a risk for stress cracking when closures are applied at high torque on bottle necks. Closure molders compensate by adopting a profiled injection speed: a fast initial fill of 250–350 mm/s to the weld-line position, followed by a decelerated advance of 80–120 mm/s through the weld-line region. This sequence increases melt pressure ahead of the flow front and improves molecular chain overlap at the recombining fronts. Holding pressure is maintained for a gate-seal time estimated from cavity-pressure sensors; premature gate freeze before weld-line packing raises the standard deviation of radial shrinkage measured by ASTM D955-08. End-use performance for beverage and dairy closures requires a linerless sealing feature that meets torque retention and leakage testing. Closure application torque is typically 1.8–2.8 N·m, measured with a digital torque tester having a resolution of 0.1 N·m. Regulatory compliance follows FDA 21 CFR 177.1520(c) and EU 10/2011, with the additional requirement that organoleptic evaluation under ISO 13302:2003 shows no detectable taint or odor in exposed water at 40 °C for 24 h. An operational boundary for this resin class in closure applications is continuous contact with chlorinated sanitizers above 60 °C, because stress cracking accelerates in the tamper-evident band hinge and thread engagement zones.
Injection molding of 20 L open-head pails for industrial liquid concentrates and detergent packaging uses this high-flow HDPE at a shot weight of 920–1,100 g per cavity. The machine selected for a single-cavity pail body mold is usually a toggle or two-platen press with clamping force between 6,000 kN and 9,000 kN, depending on projected area and cavitation. Melt temperature is maintained at 200 °C to 235 °C, with screw back-pressure set at 0.5–1.5 MPa to homogenize masterbatch dispersion without excessive shear heating. Core temperature is held at 15 °C to 35 °C. The pail body is filled through a direct central sprue gate at the base; the resulting radial flow orientation raises tensile hoop strength at the sidewall when tested by ASTM D638-14, with typical yield strength near 26 MPa and elongation at break above 300% for this density class. The base attaches to a lid using a gasket-free compression seal; the seal groove is dimensioned with a sealing depth of 2.0–3.5 mm and an interference of 0.3–0.7 mm, because HDPE creep under stack loading reduces sealing force over time. Stacking-load testing is carried out at 40 °C for 28 days under a top load corresponding to 200 kg on the bottom pail in a three-high stack, using the method principles of ASTM D2659-16 or an internal transport simulation. Drop impact is tested after conditioning at -18 °C for UN-certified shipments of aggressive liquids; the pail must withstand a drop from 1.2 m without leakage when tested under UN 6.1.5.3. Leakproofness is verified at 30 kPa internal air pressure under UN 6.1.5.4. Wall-thickness transition from the base to the sidewall should not exceed 25% of the adjacent section thickness, because abrupt steps create sink marks that reduce top-load performance. For chemical contents, the resin is not suitable for packaging aromatic hydrocarbon concentrates, certain ester-based solvents, or oxidizing acids above ambient temperature, because these agents reduce environmental stress crack resistance and can initiate cracking around the handle pin. For such contents, the converter should evaluate alternative barrier coatings or specify a higher-molecular-weight HDPE with preconditioning per ASTM D543-20 for chemical immersion resistance.
| Test | Standard Clause | Conditions | Pass Criterion |
|---|---|---|---|
| Drop impact | UN 6.1.5.3 | -18 °C, 1.2 m drop | No leakage |
| Leakproofness | UN 6.1.5.4 | 30 kPa air pressure | No leakage |
| Stacking load | ASTM D2659-16 | 40 °C, 28 days, 200 kg | No seal loss or instability |
| Environmental stress crack resistance | ASTM D1693-15 | Condition B, 50 °C | Internal threshold based on content class |
Consumer housewares produced from this high-flow HDPE span medium-thickness storage bins with snap-on lids, drawer organizers, clothes hangers, cutlery trays, and storage baskets with nominal wall sections from 1.5 mm to 4.0 mm. The injection molding process uses a melt temperature of 180 °C to 220 °C and a mold temperature of 10 °C to 40 °C. Cycle time is governed by the cooling time of the thickest rib-to-wall intersection; if the part is demolded before the temperature at the center of the thickest section drops below the crystallization range, post-mold warpage appears after 24–72 h. Dimensional stability is checked according to ISO 294-4:2018 after conditioning at 23 °C and 50% relative humidity for 48 h. Color masterbatch addition is limited to 2.0–3.0 wt%; higher loadings of inorganic pigments can reduce impact resistance at the gate area and produce visible flow lines. Screw speed is maintained at 80–120 rpm during colored material conversion, because excessive screw shear raises melt temperature and creates streaking. Vent depth is limited to 0.02–0.04 mm, since this grade class will flash through deeper vents at the high injection velocities used for thin-wall housewares. For articles intended for children, the formulation is verified against the heavy metal migration limits of EN 71-3:2019 and the phthalate restrictions of REACH Annex XVII; the HDPE base polymer is produced without phthalate plasticizers, but the converter must confirm that the masterbatch carrier and pigment package are also compliant. Dishwasher exposure is assessed by repeated cycles in a residential dishwasher with a maximum water temperature of 70 °C and a detergent dose corresponding to 0.5 g/L carbonate hardness. After 100 cycles, dimensional change and stress whitening are measured; HDPE parts with thick flat bases show lower top-surface distortion when mold shrinkage is controlled within 1.2–1.8%. The operational boundary for this resin class in housewares is continuous exposure above 70 °C, where part modulus declines and clamping interfaces can creep open. In such cases, a higher-crystallinity HDPE or polypropylene alternative is evaluated using ISO 75-2:2020 heat deflection temperature comparisons.
Returnable crates and logistics trays place different demands on high-flow HDPE because the part geometry includes a grid base, vertical sidewalls, and thick corner columns. Flow distances from a single central gate in a crate with a base footprint of 600 mm × 400 mm can exceed 300 mm at a nominal wall thickness of 3.5–6.0 mm. With a single gate, the advancing flow front cools below the no-flow temperature before the cavity has filled, producing short shots or high injection pressure spikes. Sequential valve gating is therefore used with hot-runner nozzles positioned along the long axis; the first valve opens at the geometric center, and downstream valves open when the advancing melt front reaches a position 20–40 mm before the next nozzle. The timing is controlled by cavity-pressure sensors embedded in the mold near the valve-gate positions; if the downstream valve opens 0.2–0.4 s late, hesitation lines appear at the junction of the two flow fronts and reduce impact resistance in drop tests. Melt temperature for crate molding is kept at 210 °C to 240 °C, and the mold walls are cooled to 15 °C to 35 °C. Injection pressure at transfer is typically in the range of 90–120 MPa, and the machine clamp force for a single crate cavity is selected at 8,000–12,000 kN depending on projected area. Ejector pin placement is critical in the grid base; pins smaller than 10 mm diameter can punch through the thin floor if the part is ejected before the floor temperature falls below 75 °C. Part weight is controlled to a tolerance of ±0.5% across cycles, because drift in shot weight changes post-mold shrinkage and creates variable stacking alignment. Drop impact and cold-temperature toughness are tested at -20 °C using a 5 kg striker per ISO 6603-2:2020; for outdoor cold-chain distribution crates, converters may set an acceptance threshold of no brittle failure at 20 J impact energy, but published data for this specific configuration is limited and must be validated on the final mold. The end products are returnable distribution crates for fresh produce, dairy, and cold-chain logistics, where repeated washing with alkaline detergents at 60 °C and UV exposure require a formulation with adequate stabilization. Long-term UV performance is assessed by ISO 4892-2:2021 cycle 1 exposure; without a UV stabilizer package, tensile impact retention may fall below 50% after 2,000 h in high-irradiance conditions, creating brittleness and reducing return-trip service life.
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LyondellBasell HDPE 50-2053 is introduced as a high-flow high-density polyethylene homopolymer intended for injection molding. The product is defined by two primary indices: a nominal density of 0.950 g/cm³ determined by ISO 1183-1:2019 or ASTM D1505-18, and a melt mass-flow rate of 20 g/10 min measured at 190 °C with a 2.16 kg load per ISO 1133-1:2022 or ASTM D1238-20. These values place the grade above conventional 12 g/10 min injection HDPE in flow and below 0.3 g/10 min blow-molding grades in melt strength. The material is therefore not assigned to extrusion blow molding, pipe extrusion, or blown film; its stated conversion envelope is injection molding of thin-wall and moderately thick parts.
Lot release data are supplied on the certificate of analysis and may include melt flow rate, density, tensile yield stress, and visual contamination. The nominal values in this document are not specification limits. Receiving inspection should include a melt flow rate check and pellet contamination assessment before material is introduced into a closed-loop dosing system. A shift of more than 5 % in MFR against the validated process baseline can indicate contamination with LLDPE film scrap or polypropylene; both contaminants modify solidification rate and can create layer delamination in thick sections.
The table below summarizes typical physical and mechanical values from public grade data. Values should be verified against the current certificate of analysis.
| Property | Test standard | Typical value | Unit |
|---|---|---|---|
| Density | ISO 1183-1:2019 / ASTM D1505-18 | 0.950 | g/cm³ |
| Melt mass-flow rate (190 °C/2.16 kg) | ISO 1133-1:2022 / ASTM D1238-20 | 20 | g/10 min |
| Tensile stress at yield | ISO 527-2:2012 / ASTM D638-14 | 24–27 | MPa |
| Tensile strain at yield | ISO 527-2:2012 / ASTM D638-14 | 8–10 | % |
| Flexural modulus | ISO 178:2019 / ASTM D790-17 | 1000–1100 | MPa |
| Notched Izod impact at 23 °C | ISO 180:2019 / ASTM D256-23 | 3–5 | kJ/m² |
| Deflection temperature under load (0.45 MPa) | ISO 75-2/B:2013 / ASTM D648-18 | 65–75 | °C |
In thin-wall lids and overcaps with nominal wall thickness between 0.8 mm and 1.5 mm, melt front hesitation is the primary process failure mode. On production-scale equipment, injection velocity below 25 mm/s can generate premature solidification and short shots before the packing phase compensates. A melt temperature between 210 °C and 240 °C and a mold temperature between 10 °C and 40 °C generally provide stable filling in multi-cavity tools of 16 to 32 cavities when available clamp force is at least 3.0 kN/cm² of projected area.
Screw configuration influences this window. A general-purpose polyolefin screw with L/D of 20:1 to 24:1 and compression ratio of 2.5:1 to 3.5:1 is adequate. Back pressure should be maintained at 0.5–1.0 MPa; higher back pressure raises melt temperature through viscous dissipation and can drive the mass temperature above 250 °C, increasing aldehyde formation and plate-out on cavity vents. The check ring should be inspected for leakage because high-MFR HDPE flows backward more easily than lower-MFR grades during screw decompression.
Moisture is a secondary but real variable. HDPE is not hygroscopic, but surface moisture from storage above 60 % relative humidity for more than 4 hours can produce splay at the gate. Pre-drying at 80 °C for 2 hours removes free water. Mold temperature uniformity is critical for flatness: a cavity-to-cavity variation of more than 5 °C can warp lids with wall thickness below 1.0 mm, especially when final flatness must remain within 0.05 mm. Tools with thermally conductive inserts above 100 W/m·K or conformal cooling are required to hold that tolerance at cycle times below 12 seconds.
A thermal and shrinkage description is required for tool sizing. After demolding, semicrystalline HDPE shrinks anisotropically. For a 0.950 g/cm³ homopolymer, linear mold shrinkage measured by ASTM D955-08 or ISO 294-4:2018 is commonly 1.5–2.5 % in the flow direction and 1.5–2.0 % transverse to flow after 24 hours at 23 °C. Shrinkage after annealing at 80 °C for 24 hours can add 0.3–0.5 %. Warpage in thin-wall lids is governed primarily by differential cooling, not absolute shrinkage; therefore mold temperature uniformity is more significant than absolute mold temperature.
Rheological information beyond the single-point MFR is required for accurate mold-filling simulation. Oscillatory shear measurements under ISO 6721-10:2015 or ASTM D4440-15 at angular frequencies from 0.01 rad/s to 100 rad/s show that a 20 g/10 min HDPE displays pronounced shear thinning; the viscosity ratio between 10 s⁻¹ and 100 s⁻¹ is typically in the range 4:1 to 6:1. Zero-shear viscosity at 190 °C is commonly below 1000 Pa·s; published data for this specific configuration is limited, and the converter should request the specific shear-viscosity curve used in simulation software rather than infer behavior from MFR alone.
For pails, crates, and industrial totes with wall thickness between 2.0 mm and 3.5 mm, the high flow of 20 g/10 min reduces injection pressure and gate blush relative to a 12 g/10 min grade, but it lowers the viscosity threshold for flash. Clamp force must be evaluated against peak cavity pressure, not shot weight, because thin-wall packing can require cavity pressures near 50–70 MPa. When hot-runner systems are used, valve gates are preferred over open hot runners; the low melt strength of the melt can produce stringing between shots if the nozzle tip temperature is not held 5–10 °C below the front barrel zone.
For overcaps and tamper-evident closures, the grade’s high flow permits filling of intricate gasket retention grooves and thin hinge regions. The low melt strength requires adequate gate size: pin gates below 0.6 mm can cause melt fracture or gate blush; edge gates or tab gates with land length between 0.8 mm and 1.2 mm are preferred. In-mold labeling is possible but may require corona or flame treatment because the nonpolar surface has a low wetting tension under 38 mN/m measured by ASTM D2578-23.
The following table compares the product with class-level property windows for a traditional 12 g/10 min injection HDPE and a 0.3 g/10 min extrusion blow-molding HDPE. The data are assembled from public technical literature and class-level datasheets; they are intended for material selection and not for final tool design.
| Property | HDPE 50-2053 | 12 g/10 min injection HDPE | 0.3 g/10 min blow-molding HDPE |
|---|---|---|---|
| Melt mass-flow rate (190 °C/2.16 kg) | 20 g/10 min | 12 g/10 min | 0.3 g/10 min |
| Density | 0.950 g/cm³ | 0.950–0.953 g/cm³ | 0.949–0.955 g/cm³ |
| Tensile yield stress | 24–27 MPa | 26–28 MPa | 27–30 MPa |
| Flexural modulus | 1000–1100 MPa | 1000–1250 MPa | 1100–1300 MPa |
| Notched Izod at 23 °C | 3–5 kJ/m² | 4–6 kJ/m² | 8–15 kJ/m² |
| Primary conversion route | Injection molding | Injection molding | Extrusion blow molding |
Distinction between the three product classes is not driven by density alone. Using a capillary pressure drop model for a 1.0 mm strip at an apparent shear rate of 1000 s⁻¹, the 20 g/10 min grade yields approximately 10–20 % lower pressure drop than the 12 g/10 min grade. In contrast, the 0.3 g/10 min blow-molding grade exhibits greater impact resistance and slower shear thinning but cannot fill thin-wall injection molds at production-relevant cycle times. The lower molecular weight of the high-flow grade also lowers environmental stress crack resistance; for detergent and surfactant packaging, ESCR should be measured by ASTM D1693-21 in 10 % Igepal CO-630 at 50 °C. Published data for this specific configuration is limited, so pail and bottle insert producers must conduct application-specific testing.
Food-contact articles produced from this high-density polyethylene may fall under 21 CFR 177.1520 in the United States and EU Regulation 10/2011 as amended in the European Union. The converter must verify end-use compliance because the final article includes colorants, processing stabilizers, and possible recycled content that are not covered by the base resin listing alone. The manufacturer’s product stewardship report should be consulted for supported food types, time-temperature conditions, and migration test data. Industrial and consumer goods may require documentation under REACH and RoHS 2011/65/EU; these obligations fall on the finished-article producer.
The grade is not automatically cleared for medical or pharmaceutical packaging. In such applications, extractables and leachables testing under ISO 10993-1:2018 or container closure integrity under USP <671> must be performed on the finished sterile or non-sterile package. No claim of biocompatibility should be inferred from the base resin certification.
Operational limitations include continuous exposure above 65 °C for load-bearing parts, contamination with polypropylene above 3 wt%, and use with external lubricant concentrates that reduce melt strength. Under those conditions, the grade may exhibit warpage, delamination, or gate drool. The product is not a drop-in substitute for a high-molecular-weight HDPE pipe grade or a medium-density polyethylene with higher environmental stress crack resistance; those applications require different molecular architecture and should be qualified separately.