| HS Code | 259954 |
| Polymer Type | High Density Polyethylene (HDPE) |
| Molecular Weight Distribution | Bimodal |
| Density | 958 kg/m³ |
| Melt Flow Rate 190 C 2 16 Kg | 0.8 g/10 min |
| Melting Temperature | 134 °C |
| Crystallization Temperature | 116 °C |
| Vicat Softening Temperature A | 128 °C |
| Tensile Modulus | 1400 MPa |
| Tensile Stress At Yield | 30 MPa |
| Tensile Strain At Break | >500 % |
| Charpy Notched Impact Strength At 23 C | 12 kJ/m² |
| Charpy Notched Impact Strength At 30 C | 4 kJ/m² |
| Shore D Hardness | 65 |
| Water Absorption | <0.01 % |
| Moisture Content | <0.02 % |
| Thermal Conductivity | 0.4 W/(m·K) |
| Coefficient Of Linear Thermal Expansion | 1.5E-4 1/°C |
| Volume Resistivity | >1E14 Ω·cm |
| Dielectric Constant | 2.3 |
| Dielectric Strength | 20 kV/mm |
As an accredited Borealis HDPE FL5580 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Borealis HDPE FL5580 is typically packaged in 25 kg polyethylene bags, palletized at 1,000 kg per pallet for transport. |
| Container Loading (20′ FCL) | Container Loading (20′ FCL): Borealis HDPE FL5580 in 25 kg bags, palletized and shrink-wrapped, securely loaded for sea shipment. |
| Shipping | Borealis HDPE FL5580 is a non-hazardous high-density polyethylene supplied as pellets. It is typically shipped in 25 kg bags, big bags, or bulk containers/trucks. Keep dry, clean, and away from heat, moisture, and contamination. No dangerous goods classification or special shipping documentation is normally required; follow standard ADR/IMDG handling. |
| Storage | Store Borealis HDPE FL5580 in a cool, dry, well-ventilated area, away from direct sunlight, heat, flames, and strong oxidizers. Keep material in original sealed bags or containers on pallets, off the floor, to prevent moisture, dust, and contamination. Avoid prolonged UV exposure and excessive stacking. Maintain clean, odor-free conditions and use first-in, first-out stock rotation. Do not store outdoors. |
| Shelf Life | Borealis HDPE FL5580 has a shelf life of about 24 months under recommended dry, cool storage, away from direct sunlight. |
Borealis HDPE FL5580 is processed as a high-density, high-molecular-weight blown-film grade on conventional mono-layer lines equipped with grooved-feed extruders. Nominal density is 958 kg/m³ determined by ISO 1183-1:2019 Method A, and melt flow rate at 190 °C/2.16 kg is reported at 0.55 g/10 min by ISO 1133-1:2022 Procedure A. For T-shirt carrier bag film, practical thickness spans 12–20 µm. Die gaps of 1.4–1.8 mm, blow-up ratios from 3.5:1 to 4.5:1, and frost-line heights of 5–8 die diameters maintain bubble symmetry. The melt exhibits the expected high viscosity of a fractional-melt HDPE; stable extrusion therefore requires feed-zone temperatures beginning at 180 °C, metering-zone temperatures of 200–210 °C, and die temperatures held between 195 °C and 205 °C. On a 90 mm groove-fed extruder with 30:1 L/D, die-head pressure typically remains below 420 bar when melt temperature exceeds 200 °C. Screw speeds above 35 rpm without a fluoroelastomer processing aid can initiate sharkskin at the die exit; addition of 400–800 mg/kg polymer processing aid suppresses melt fracture and permits line speeds of 45–60 m/min at 15 µm. Tensile properties measured to ISO 527-3 on 20 µm film fall near 29 MPa yield stress in both machine and transverse directions. Elmendorf tear according to ISO 6383-2 is strongly anisotropic for this resin, with machine-direction values typically below 0.3 N and transverse-direction values near 1.5–2.5 N, which must be accounted for in perforation design and handle strength. Density above 0.950 g/cm³ also reduces water vapour transmission; published values for 25 µm HDPE film at 23 °C and 85% relative humidity by ISO 15106-3 typically range from 4.0 g/m²·day to 5.5 g/m²·day. Post-industrial regrind addition should not exceed 12 wt% without re-evaluating dart drop and tear strength, because the high-molecular-weight fraction degrades under repeated extrusion heat histories. Corona treatment to a surface energy of 38–42 mN/m after treatment at approximately 2 kW is normally adequate for flexographic water-based inks, but ink adhesion should be revalidated according to ASTM F2252-13 after any change in film age or corona power.
Melt fracture in blow-extruded FL5580 originates mainly in the die land when wall shear stress exceeds a critical threshold at insufficient melt temperature. Published extrusion studies on similar high-molecular-weight HDPE film grades report sharkskin onset when apparent wall shear rate in a spiral mandrel die with 1.2 mm gap exceeds roughly 450 s⁻¹; the exact threshold for FL5580 is not published, but plant trials on a 70 mm single-screw extruder with 28:1 L/D and a 300 mm die show that melt temperature below 195 °C at screw speeds above 28 rpm produces visible surface roughness. Raising the die set temperature from 180 °C to 205 °C increases melt temperature only 6–8 °C, because viscous dissipation in the metering zone remains moderate. A more effective intervention is widening the die gap from 1.2 mm to 1.6 mm, which reduces wall shear stress by approximately 35–45% at constant output. Alternately, addition of 500 mg/kg of a free-flowing fluoroelastomer-based processing aid masterbatch coats the die lip and postpones sharkskin to output rates 25–35% higher. The processing aid must be metered at the feed throat and pre-blended for 15 min in a low-shear tumble mixer; pellet segregation in the hopper causes intermittent surface defects. Die-lip purge cycles should be scheduled every 8 h, because oxidised low-molecular-weight species accumulating at the lip increase the onset of melt fracture. Screw geometry with a Maddock mixing section in the final third of a 25:1 barrier screw improves thermal homogeneity, but excessive shear heating can raise melt temperature above 220 °C, at which point gel particles and odour may develop. Stable sub-15 µm film production is achieved when the frost line is set 4–6 die diameters above the die exit and the collapsing frame maintains bubble symmetry; downstream web tension should not exceed 12 N per 100 mm width to avoid blocking of the soft HDPE surface. Melt pressure after PPA addition commonly drops 20–40 bar, which reduces motor load and permits a line-speed increase of 10–15%. Surface quality is verified by optical haze measurement according to ASTM D1003-21 and by tactile comparison against retained production standards from the previous run.
Blown film for frozen-food packaging uses FL5580 when the converter requires low-temperature puncture resistance and stiffness at −18 °C without shifting to an LLDPE-dominant structure. Compounding begins with 88–94 wt% FL5580, 5–10 wt% C₆-LLDPE with melt index 0.9 g/10 min, and 1–2 wt% slip/antiblock masterbatch carried in an LDPE base. The LLDPE fraction raises dart drop impact, measured to ISO 7765-1:2004 Method A on 30 µm film, from approximately 150 g for the neat grade to 220–260 g depending on comonomer type and skin-layer density. The compounding step is not the primary difficulty; the process bottleneck is bubble stability at reduced melt temperature. For frozen-food film, converters often lower melt temperature to 180–190 °C to reduce oxidative degradation and preserve low odour, but this narrows the operating window. Below 185 °C, the high-molecular-weight HDPE phase creates visible bubble chatter and an irregular frost line; addition of 10 wt% LLDPE improves melt strength and allows barrel settings 5 °C lower without bubble instability. Output per die circumference on a 250 mm die typically falls from 1.3 kg/h·mm at 210 °C to 0.9 kg/h·mm at 190 °C. Film properties after conditioning for 72 h at −20 °C are evaluated by ISO 7765-1 and by slow puncture resistance using a 20 mm hemispherical probe at 500 mm/min. Frozen-food gauges usually range from 25 µm to 40 µm; gauges below 20 µm show a sharp reduction in low-temperature dart drop because plane-stress fracture mechanisms favour crack propagation along the crystalline lamellae. Calcium carbonate anti-block should be kept below 1500 mg/kg, because mineral filler increases notch sensitivity at sub-zero temperatures and can reduce elongation at break measured by ISO 527-3 from 600% to below 450%. For direct food contact, the finished structure must meet overall migration limits under EC Regulation 10/2011, typically below 10 mg/dm², and the upstream resin grade should be covered by appropriate food-contact declarations. When printing is required, corona-treated surface wetting should be verified by ASTM D2578 before ink application.
In three-layer coextruded structures for dry cereal liners and modified-atmosphere packaging, FL5580 serves as the internal bulk and stiffness layer between outer LLDPE skins or EAA tie layers. The high density of 0.958 g/cm³ contributes to a moisture vapour barrier of 3.8–4.8 g/m²·day for a 25 µm internal layer measured by ISO 15106-3 at 23 °C and 85% RH. Layer distribution is controlled by gravimetric hopper blending and screw speed ratio; typical configurations are 15/70/15 outer LLDPE/FL5580/inner LLDPE or 20/60/20 when the outer layers are EVA-rich for heat sealing. The coextrusion die is commonly a 300 mm spiral mandrel die with 1.8 mm total die gap; layer-specific melt streams are maintained at 190 °C for LLDPE skins and 210 °C for the FL5580 core to reduce viscosity mismatch. Interfacial flow instability, visible as wave-like delamination lines in the bubble, occurs when the viscosity ratio between the core and skin melt exceeds approximately 2:1 at the same shear rate; selecting a C₆-LLDPE skin with MI 0.9 g/10 min and density 0.918 g/cm³ keeps the ratio within a stable range. Adhesion between the HDPE core and LLDPE skins without tie resin is sufficient for many applications because of co-crystallisation across the interface; peel strength measured by ASTM F88/F88M-21 may exceed 0.5 N/mm only if both melt streams remain above 190 °C at the die exit. When EAA or EMA skins are introduced for seal performance, a maleated polyethylene tie layer is required or EVA content must remain above 12 mol% to prevent delamination; published data for this specific resin combination is limited, and pilot-line peel tests are necessary before commercial runs.
The following table summarises test methods and typical values reported or industrially measured for 20–30 µm FL5580-containing blown film.
| Property | Test method | Typical result | Unit |
|---|---|---|---|
| Density | ISO 1183-1:2019 Method A | 958 | kg/m³ |
| Melt flow rate 190 °C/2.16 kg | ISO 1133-1:2022 Procedure A | 0.55 | g/10 min |
| Melt flow rate 190 °C/21.6 kg | ISO 1133-1:2022 Procedure A | 16–20 | g/10 min |
| Tensile stress at yield | ISO 527-3 type 2 | 29–31 | MPa |
| Dart drop impact 20 µm film | ISO 7765-1:2004 Method A | 120–160 | g |
| Water vapour transmission rate 25 µm film | ISO 15106-3 | 4.0–5.5 | g/m²·day |
Produce bag converters sometimes replace a portion of LLDPE with FL5580 in thin-gauge roll-stock to increase stiffness and reduce gauge without sacrificing tensile strength. The formulation shift is typically from a 100% C₈-LLDPE control to a blend of 60 wt% FL5580 and 40 wt% LLDPE. The basis is the higher modulus of HDPE; tensile modulus of FL5580 film is reported near 1100–1300 MPa compared with 200–400 MPa for typical LLDPE film, allowing a gauge reduction of 8–12% while maintaining machine-direction tensile strength. Tear resistance, however, declines sharply because HDPE has intrinsically lower tear propagation resistance in the machine direction. Elmendorf tear by ISO 6383-2 on 10 µm blended film often falls from 3–4 N for the LLDPE control to 0.5–1.0 N in the machine direction, a property cliff-edge that demands orientation control or redistributed die rotation. The process window narrows to approximately ±5 °C on the die zone when running 8–12 µm film, because bubble stiffness increases with HDPE content and the bubble becomes less tolerant of ambient air drafts. Frost-line height must be raised to 7–9 die diameters to delay crystallisation and reduce blocked-film defects. Screw speed on a 65 mm extruder with 30:1 L/D is limited to 25–35 rpm; above this range, transverse-direction thickness variation can exceed ±18% measured by online capacitance gauging. Surface friction is higher for HDPE-rich film, so slip additive concentration is typically raised from 800 mg/kg to 1200–1500 mg/kg erucamide or oleamide masterbatch to maintain film-to-film separation. Blown-film lines fitted with internal bubble cooling achieve more stable gauge profiles at lower frost-line positions and are preferred for this substitution; without IBC, ambient hall airflow should be reduced below 0.5 m/s. Final produce bags are often perforated by hot-needle systems; the higher melt orientation in HDPE-rich film causes less hole elongation, but the film may split more readily from the hole under transverse load. This failure mode is evaluated by slow tear testing at 23 °C and by ASTM D1922 Elmendorf after conditioning to ISO 291 Class 2. For food-contact produce bags, EC Regulation 10/2011 migration verification applies, and migration testing of the final blend under worst-case time-temperature conditions is required if the LLDPE source changes.
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