| HS Code | 114793 |
| Melt Index | 0.35 g/10 min (190 °C/2.16 kg) |
| Density | 0.952 g/cm³ |
| Melting Point | 134 °C |
| Tensile Strength At Yield | 26 MPa |
| Tensile Strength At Break | 30 MPa |
| Elongation At Break | 600% |
| Flexural Modulus | 1.1 GPa |
| Vicat Softening Temperature | 126 °C |
| Brittleness Temperature | -70 °C |
| Hardness Shore D | 65 |
| Environmental Stress Crack Resistance | >1000 h |
As an accredited Formosa Plastics HDPE LH5240 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Formosa Plastics HDPE LH5240: white pellets packaged in 25 kg woven bags, 1,000 kg per pallet, 20 pallets per shipment. |
| Container Loading (20′ FCL) | Container Loading (20′ FCL): Formosa Plastics HDPE LH5240 in 25 kg bags, palletized, 18 pallets, 24.75 MT net. |
| Shipping | Formosa Plastics HDPE LH5240 ships as non-hazardous polyethylene resin pellets in moisture-barrier bags, typically 25 kg sacks or 1,000 kg jumbo bags, palletized and stretch-wrapped. Transport in clean, dry containers or trucks. Keep dry, cool, away from sunlight and ignition sources. Not regulated as dangerous goods. |
| Storage | Store Formosa Plastics HDPE LH5240 in a cool, dry, well-ventilated warehouse away from direct sunlight, heat, and ignition sources. Keep original packaging closed to prevent moisture, dust, and contamination. Avoid prolonged outdoor exposure and stacking damage. Use first-in, first-out inventory practices. Maintain clean handling areas and follow local regulations and manufacturer’s SDS recommendations. |
| Shelf Life | Formosa Plastics HDPE LH5240: no fixed shelf life; store cool, dry, sealed, away from direct sunlight; use within twelve months. |
In 200-L tight-head drum production on single-station accumulator blow moulding machines, Formosa Plastics HDPE LH5240 is processed at a melt temperature of 177 °C to 204 °C measured at the die head. The parison controller maintains a die-gap profile from 2.0 mm at the bottom pinch line to 3.5 mm at the top load-bearing collar so that the shoulder and sealing ring retain sufficient thickness after flash trimming. Clamp force is kept between 120 t and 180 t, and blow air pressure is set at 0.60 MPa to 0.85 MPa to achieve full mould replication without excessive parison swell. Typical shot weight for a 220-L nominal capacity tight-head drum is 7.8 kg to 9.6 kg, depending on the wall profile and UN performance level. Regrind from trimmed top and bottom flash is added at 10 wt% to 30 wt% after dry particulate size classification below 8 mm. No desiccant pre-drying is required below 60% RH; above 60% RH, surface moisture is removed with a desiccant air dryer supplying −20 °C dew point to the feed throat. Finished drums are conditioned at 23 °C ± 2 °C for 48 h before drop testing. Compliance is evaluated under 49 CFR 178.504 for packing group I, II, and III liquids, with drop impact and leakproofness tests following 49 CFR 178.603 and 49 CFR 178.604. The resultant UN-certified 1H1 tight-head drum is used for hydrocarbon lubricants, water-based emulsions, and non-oxidizing acids with a specific gravity up to 1.9.
For emulsifiable concentrate formulations packaged in 5-L to 20-L narrow-neck containers, LH5240 is specified as the outer and inner structural skin in six-layer coextrusion blow moulding. The wall distribution is 80 wt% to 88 wt% HDPE LH5240, 4 wt% to 7 wt% polyamide barrier, 1.5 wt% to 2.5 wt% maleated polyethylene tie resin, and the balance internal reprocessed mixed trim. Direct contact between the polyamide barrier and HDPE is avoided because interfacial peel strength falls below 0.5 N/mm without a tie layer; the tie resin is fed at 1.5% to 2.5% of total throughput to maintain consistent interlayer adhesion. Environmental stress crack resistance of the structural layer is assessed under ASTM D1693, condition B, 100% Igepal CO-630, with a specified F50 not below 350 h at 50 °C for the qualified lot. Permeation resistance of the finished container is verified by bottle weight loss at 50 °C for 28 days against an internal control formulation; published comparative permeation data for LH5240 in this exact barrier configuration is limited. The blow moulding line uses a six-layer radial distributor die at 205 °C to 220 °C, take-off cooling at 10 °C to 15 °C, and in-line leak testing at 0.03 MPa. The finished narrow-neck jerrycan is certified under UN 1H1/Y1.8/100 and is intended for single-trip agricultural chemical distribution.
| Test parameter | Standard/code | Acceptance threshold |
|---|---|---|
| Melt mass-flow rate | ASTM D1238 / ISO 1133-1:2022 | Report-basis deviation ≤ 5% from approved lot |
| Density | ASTM D1505 | 0.949–0.955 g/cm³ |
| Environmental stress crack resistance | ASTM D1693 condition B | F50 ≥ 350 h |
| Container drop impact | 49 CFR 178.603 | No leakage after 1.2 m drop at −18 °C |
| Leakproofness | 49 CFR 178.604 | No leak at 0.03 MPa |
When aqueous urea solutions are stored in blow-moulded tanks for commercial vehicle dosing modules, LH5240 is processed without colourant at a melt temperature of 190 °C to 205 °C to minimise extractables that could affect diesel exhaust fluid quality. The tank wall thickness is profiled from 3.5 mm at the dome to 5.0 mm at welded boss positions. Hot plate welding is performed at a plate temperature of 215 °C to 230 °C; joining force is controlled to 0.15 MPa to 0.25 MPa over 25 s to 35 s. Weld-line tensile strength is verified on cut specimens following ISO 527-2, with an acceptance ratio not less than 0.85 relative to the unwelded tank wall. The resin is not dried below 50% RH; at higher ambient moisture, a desiccant hopper with −30 °C dew point is used. Clean regrind from flange trim is limited to 15 wt% to avoid reducing weld strength. Finished tanks are pressure-decay tested at 0.05 MPa and conditioned for 72 h at 40 °C before volume stability measurement. Compliance for diesel exhaust fluid storage equipment follows ISO 22241-3 for materials compatibility and ISO 22241-1 for fluid quality maintenance. The end product is a 30-L to 50-L welded HDPE tank with integrated level sensor port and heated pickup tube retainer.
In non-road equipment fuel systems, monolayer HDPE tanks are selected only when post-moulding fluorination is implemented to reduce hydrocarbon permeation. LH5240 is extruded on accumulator blow moulding machines at 185 °C to 205 °C with shot weights of 4 kg to 12 kg. Wall thickness is profiled between 2.8 mm and 4.5 mm, with the thickest section at the filler neck insert and the thinnest at the lower lobe. After cooling for 24 h, the tank is placed in a sealed fluorination chamber; elemental fluorine diluted to 0.5% to 2.0% in nitrogen is introduced for 2 min to 10 min at 20 °C to 40 °C to create a surface barrier layer. The treated surface shall not be machined, welded, or abraded because barrier depth is typically less than 20 µm. Permeation is measured following 40 CFR 1051 evaporative emission certification procedures; published diffusion values for LH5240 in fluorinated monolayer configuration are limited. Regrind is limited to 20 wt% before fluorination and shall be sourced only from pre-fluorinated flake to avoid contaminating the reactor. The end product is a sealed HDPE fuel tank for small non-road spark-ignition equipment requiring compliance with 40 CFR 1051 tank-level permeation limits.
Outdoor water storage tanks above 500 L manufactured from LH5240 require a UV protection package because unprotected HDPE loses impact resistance after 12 to 18 months of direct weathering. The recommended letdown is 2.5 wt% to 4.0 wt% of 40% carbon black masterbatch, yielding 1.0 wt% to 1.5 wt% final carbon black content after letdown. Processing uses single-station accumulator machines with shot capacity of 10 kg to 30 kg; melt temperature is kept at 180 °C to 200 °C, and mould temperature is held at 15 °C to 25 °C with turbulent water flow in the pinch-off zones. The parison drop time and die swell are checked against the incoming lot because carbon black affects shear viscosity and may shift the programmed wall profile by 0.3 mm to 0.6 mm. The pinch-off weld is pressure-tested to 0.04 MPa after a 24 h ambient cure. Outdoor exposure is validated by ASTM D2565 Xenon arc exposure for 1,500 h, with retained tensile elongation not less than 50% of unexposed control per ASTM D638. End products include non-potable rainwater harvesting tanks, greywater holding tanks, and agricultural sprayer rinse tanks where certification to NSF/ANSI 61 is not required unless the specific lot has been listed by the compounder.
A 1,000-L composite intermediate bulk container inner bottle is produced on an accumulator head machine with shot capacity of 15 kg to 20 kg. The die geometry is configured for diverging flow, with land length set to 12 mm to 16 mm and annular gap 3 mm to 5 mm. The parison is programmed with 40 to 60 points to maintain wall thickness between 1.5 mm and 3.5 mm. Melt temperature is 195 °C to 210 °C; extruder backpressure is limited to 25 MPa to prevent shear overheating. Blow air is introduced at 0.55 MPa to 0.75 MPa, and the mould is cooled at 12 °C to 18 °C with dedicated chiller circuits for the top frame and bottom outlet plate. Virgin LH5240 is blended with 10% to 25% clean, dust-free internal regrind that passes a 2 mm screen. The liner is intended for UN 31H1 composite IBC service; top-load and drop testing are performed according to 49 CFR 178.810. The end product is a 1,000-L HDPE inner bottle with a 120 mm top filling port and a 50 mm bottom discharge valve adapter, used in industrial chemical distribution.
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Formosa Plastics HDPE LH5240 is a high-molecular-weight high-density polyethylene blow-moulding copolymer supplied in pellet form for extrusion blow moulding of industrial containers, agricultural chemical packaging, large tight-head drums, and hollow technical parts. The product occupies the low-melt-flow-rate segment of HDPE: melt flow rate determined under ASTM D1238 at 190 °C and 2.16 kg is typically published between 0.25 g/10 min and 0.40 g/10 min, while density determined according to ASTM D1505 is generally reported at 0.952 g/cm³ to 0.954 g/cm³. This combination distinguishes the grade from high-flow HDPE injection-moulding resins, which are processed at MFR values above 8 g/10 min and do not possess sufficient parison melt strength for large-part blow moulding. The material is also distinguished from lower-density LLDPE and high-alpha-olefin copolymers by higher flexural modulus, and from higher-density HDPE homopolymers by a more favourable environmental stress-cracking response in detergent and wetting-agent environments. The product is typically run on accumulator-head or long-stroke shuttle blow-moulding machines rather than thin-wall packaging injection lines.
Parison melt strength, die swell, and environmental stress-cracking resistance are governed by average molecular weight, molecular weight distribution, and comonomer placement. The low MFR under 2.16 kg indicates a high average molecular mass, while the density near 0.953 g/cm³ indicates deliberate incorporation of a short-chain alpha-olefin comonomer to disrupt crystallinity and increase the tie-molecule population. High-load melt index determined under ASTM D1238 with a 21.6 kg load is the more informative flow parameter for blow moulding because it captures melt-flow behaviour at shear rates closer to die flow; the lot-specific value should be taken from the certificate of analysis. Published data for the complete flow ratio of this specific grade is limited, so the processor should not infer shear sensitivity solely from the low-load MFR. In field practice on accumulator-head machines with screw diameters of 80 mm to 120 mm, the resin’s low MFR is associated with measurable head-pressure rise and the need for adequately sized die gaps to prevent melt fracture; however, the melt strength allows parison lengths sufficient for large drums without immediate sag-induced thinning.
| Property | Test method | Reported typical range | Functional relevance |
|---|---|---|---|
| Melt flow rate, 190 °C, 2.16 kg | ASTM D1238; ISO 1133-1:2022 | 0.25–0.40 g/10 min | Molecular-weight envelope; low flow preserves parison geometry but restricts injection-style thin-wall filling |
| Density | ASTM D1505; ISO 1183-1 | 0.951–0.954 g/cm³ | Controls flexural stiffness, barrier, and stress-cracking balance |
| Tensile yield strength | ASTM D638-14 | 25–28 MPa | Short-term hoop stress before yield in pressurised container service |
| Elongation at break | ASTM D638-14 | >600% | Ductile failure mode under slow deformation |
| Flexural modulus, 1% secant | ASTM D790 | 1000–1300 MPa | Top-load and pallet-stacking stiffness |
| Environmental stress-cracking resistance, 100% Igepal, F50 | ASTM D1693 | >500 h | Resistance to detergent and surfactant-induced cracking |
| Notched Izod impact, 23 °C | ASTM D256 | 5–8 kJ/m² | Impact energy absorption during drop and handling |
| Vicat softening temperature | ASTM D1525 | 123–127 °C | Thermal softening threshold, not continuous service temperature |
| Brittleness temperature | ASTM D746 | < -70 °C | Low-temperature ductility in cold-room service |
Differences from other HDPE blow-moulding products in the same family are read along melt flow rate, density, and additive package. A higher-MFR grade in the same density band will plastify faster and may fill thin wall sections more easily, but it will exhibit lower parison sag resistance and often lower ESCR. A higher-density grade near 0.960 g/cm³ will provide higher flexural modulus and lower hydrocarbon permeation but may show markedly shorter ASTM D1693 F50 times in stress-cracking environments. LH5240’s intermediate density and low MFR position it for applications where chemical contact, drop impact, and stack load are concurrent. Compared with injection-moulding HDPE grades, the low MFR and broad molecular weight distribution are not a process handicap only; they are required to maintain a stable parison on a blow-moulding die. A less obvious difference is additive formulation: blow-moulding grades intended for aggressive liquid packaging may contain a stabiliser package selected for low organoleptic contribution and for long-term retention of ESCR after external colour or antistatic masterbatch letdown.
On industrial blow-moulding lines, LH5240 is usually plastified in extruders with 20:1 to 30:1 L/D ratios and barrier or general-purpose screws with mixing sections. Barrel temperature settings typically range from 180 °C to 220 °C, with the feed-throat zone kept below 80 °C to prevent pellet bridging or premature melting. Actual melt temperature measured by an immersion probe is normally controlled between 190 °C and 210 °C. At temperatures above 220 °C, thermal degradation of the polymer itself is not immediate, but parison sag rates increase and melt-strength-related wall-thickness uniformity deteriorates. At temperatures below 180 °C, the high melt viscosity can raise die-head pressure beyond the safe working range of older accumulator-head tooling and may produce melt fracture or uneven parison edges. The die/mandrel gap and parison programmer settings are more influential on final wall thickness than small melt-temperature changes; large drum moulds generally require programmed parisons with a thickened bottom region to compensate for sag during shot transfer. In practice, unprogrammed parisons on shots above 10 kg often produce measurable top-to-bottom thickness gradients, leading to reduced top-load capacity and inconsistent drop-impact results. Blow air pressure is commonly maintained in the 0.5 MPa to 0.8 MPa range for large parts, and mould cooling water at 10 °C to 30 °C is used to control shrinkage and warpage.
For dry pellet handling, the resin does not require routine desiccation. Surface moisture becomes relevant mainly when ambient dew point exceeds the pellet temperature or when cold pellets are transferred into a warm production bay. At 60% RH or below, established silo and hopper handling is sufficient. Above 60% RH, or after outdoor storage with temperature cycling, pre-drying at 80 °C to 90 °C for 2 h to 4 h in a dry-air hopper dryer reduces surface moisture and prevents splay, voiding, and melt-temperature variability. Drying above 100 °C is not required for polyolefinics and can cause pellet surface tack and feed-throat blockage. Regrind addition should be evaluated under ASTM D1693 because repeated thermal history and retained surface-active content can shift the stress-cracking failure time in aggressive liquid service.
Chemical service of LH5240 containers should not be specified from ESCR data alone. Full-package validation under the actual filling temperature, stack load, and contact time is required for oxidising acids, chlorinated solvents, strong alkalis, and surfactant formulations. The grade is not recommended for continuous service above 60 °C with strong oxidising agents or aromatic hydrocarbons under high hoop stress, because environmental stress cracking can be accelerated even when short-term tensile properties remain unchanged. In food-contact assessment, compliance is generally based on FDA 21 CFR 177.1520 for olefin polymers, but the finished-article manufacturer must evaluate the final composition, colourants, processing aids, and layer structure. European requirements under EC 1907/2006 (REACH) and 2011/65/EU (RoHS) are article-level obligations; the resin supplier’s safety data sheet and product regulatory statement provide the starting point for substance inventory and heavy-metal screening. The grade’s use in a given geometric design, with a defined closure and gasket system, requires application-specific testing under the relevant transport regulation or industry standard.