| HS Code | 723952 |
| Density | 0.951 g/cm³ |
| Melt Flow Rate 190 C 2 16 Kg | 0.05 g/10 min |
| Tensile Strength At Yield | 26 MPa |
| Tensile Strength At Break | 35 MPa |
| Elongation At Break | 600% |
| Flexural Modulus | 1200 MPa |
| Izod Impact Strength Notched 23 C | 30 kJ/m² |
| Vicat Softening Temperature | 125°C |
| Brittleness Temperature | -70°C |
| Melting Point | 130°C |
| Thermal Conductivity | 0.40 W/m·K |
| Water Absorption | <0.01% |
| Dielectric Constant | 2.3 |
| Volume Resistivity | >10^16 Ω·cm |
| Bulk Density | 0.50 g/cm³ |
| Moisture Content | <0.05% |
| Ash Content | <0.05% |
As an accredited Iran Petrochemical HDPE HF5110 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Iran Petrochemical HDPE HF5110 is supplied in 25 kg PP woven bags, palletized and stretch-wrapped for secure transport and storage. |
| Container Loading (20′ FCL) | 20′ FCL loading for Iran Petrochemical HDPE HF5110: 25 kg bags, approx. 17–18 MT net, palletized or loose, dry container. |
| Shipping | Iran Petrochemical HDPE HF5110 is a non-hazardous high-density polyethylene resin shipped as solid pellets. Typical packaging is 25 kg PP bags or jumbo bags, palletized and stretch-wrapped. Transport as general cargo, not DG-regulated. Store dry, away from heat, sunlight, and moisture; handle with standard forklift equipment. |
| Storage | Store Iran Petrochemical HDPE HF5110 in a cool, dry, well-ventilated, covered area away from direct sunlight, rain, moisture, heat, sparks, and flames. Keep original bags sealed, clean, and off the ground on pallets. Avoid contact with strong oxidizers, acids, and solvents. Prevent dust and static buildup; stack safely to avoid package damage. Follow supplier SDS and local regulations. |
| Shelf Life | Iran Petrochemical HDPE HF5110 typically has a 24-month shelf life when stored in original packaging, cool, dry, ventilated, away from sunlight. |
In monolayer carrier-sack extrusion, Iran Petrochemical HDPE HF5110 is processed on a single-screw extruder with a 30:1 L/D barrier screw and a spiral mandrel die. Barrel set points from feed to metering are 180–220°C, while die temperature is maintained at 210–225°C. Die gap is held between 0.8 mm and 1.2 mm; narrowing the gap below 0.8 mm in this molecular weight range raises melt shear sufficiently to initiate surface melt fracture when die temperature falls below 205°C. Blow-up ratio is set between 3.5:1 and 5.0:1, with frost line height controlled at 6–10 die diameters using internal bubble cooling pressure of 40–120 Pa. For a 65 mm extruder producing 12 µm film on a 200–250 mm die, output is typically 120–180 kg/h at screw speed of 45–75 rpm. The grade is run neat or with slip/antiblock masterbatch at 1.5–3.0 wt%; masterbatch addition above 5 wt% reduces dart drop impact measured by ASTM D1709, and film below 10 µm in monolayer structures shows higher gauge variation unless an automatic air ring is installed. Compliance for food-contact carrier sacks is assessed under 21 CFR 177.1520 and EU Regulation No 10/2011, with overall migration limited to 10 mg/dm² or lower according to the converting declaration. Terminal products include vest carrier bags from 10–25 µm, with machine-direction tensile yield measured by ASTM D882 typically 20–28 MPa and elongation at break 400–650%.
At film gauges between 10 µm and 18 µm, Iran Petrochemical HDPE HF5110 is run against two limiting constraints: bubble stability at low gauge and melt cleanliness when post-consumer recyclate is introduced. In waste sack lines, post-consumer high-density polyethylene is added at 20–40 wt% to the extruder feed; this requires a continuous screen changer with filtration size of 100–150 µm to prevent gel defects and die lip build-up. Surface moisture carried by regrind is removed by a hopper dryer set at 70–80°C for 2–3 h when ambient relative humidity exceeds 60%. Melt temperature at the die is held at 215–225°C to reduce melt pressure, and bubble internal pressure is kept between 50–100 Pa; higher pressure destabilizes the bubble at gauges below 12 µm. Blow-up ratio is controlled at 4.0:1–5.0:1, and the frost line is lowered to 5–7 die diameters for faster cooling and reduced bubble wander. Mechanical requirements are verified with ASTM D1709 dart drop, where 15 µm waste sack film typically falls between 150–250 g, and with ASTM D5748 puncture resistance at 10–20 N. Regulatory compliance for packaging heavy metals is assessed under EU 94/62/EC, requiring the sum of lead, cadmium, mercury and hexavalent chromium not to exceed 100 ppm by weight; converters also report REACH SVHC content below 0.1 wt% per article. Terminal products include bin liners, can liners and industrial waste sacks in 10–25 µm gauge, where thickness uniformity is monitored by an online scanner with tolerance of ±5% around target.
The draw-down stability boundary in 8–10 µm produce bag film is governed by melt strength, die gap and cooling uniformity. For Iran Petrochemical HDPE HF5110, die gap is reduced to 0.7–0.9 mm to increase transverse orientation, but a gap below 0.7 mm raises melt shear beyond the critical range for this molecular weight distribution and causes visible melt fracture at standard output. Blow-up ratio is increased to 4.5:1–6.0:1 to improve film balance; high stalk height is maintained at 6–9 die diameters. A dual-lip air ring with internal bubble cooling at 60–120 Pa is required to stabilize the frost line, and die temperature is held at 220–230°C. Fluoropolymer processing aid is added at 400–800 ppm to delay die build-up and reduce extrusion pressure. Gel content of the feedstock is held below 100 mg/kg by melt filtration. Mechanical verification uses ASTM D1922 Elmendorf tear; on 10 µm produce bag film, machine-direction tear is typically 18–35 g/mm and transverse-direction tear is 25–45 g/mm. Food-contact suitability for uncut fresh produce is evaluated under 21 CFR 177.1520 and EU Regulation No 10/2011, with specific migration testing using food simulant A and C under 40°C/10 days conditions where applicable. Terminal products are star-sealed produce roll bags and high-speed automatic packing films, where the conversion line requires a coefficient of friction below 0.30 as measured by ASTM D1894.
Coextruded barrier structures employ Iran Petrochemical HDPE HF5110 as the moisture-barrier core or skin-layer component in three-layer and five-layer blown film lines. A representative three-layer dry-food liner uses a layer distribution of 50–65 wt% HF5110 in the core, 20–30 wt% adhesive tie resin, and 10–20 wt% barrier polymer or metallocene sealant skin; the exact ratio is adjusted to keep the HDPE core fraction above 45 wt% because lower core fractions reduce moisture barrier performance measured by ASTM E96. Extruder diameters for the HDPE layer are 65–90 mm with a 30:1 L/D barrier screw, and die set point is 215–230°C. The combining block and spiral mandrel are designed for melt viscosity differences; interfacial instability appears if the HDPE layer melt temperature is raised above 235°C or if the barrier polymer is run below its recommended melt window. Layer thickness is controlled by gravimetric feeders and validated by optical microscopy on cross-sections. Barrier test requirements for dry-food packaging call for water vapour transmission rate below 3 g/m²/day at 38°C and 90% RH. Regulatory compliance is documented under 21 CFR 177.1520 for olefin polymers, EU Regulation No 10/2011 with overall migration below 10 mg/dm², and REACH Article 33 communication where applicable. Terminal products include cereal liner bags, dry ingredient liners and high-moisture-barrier laminations that use the HDPE web as a sealing layer.
| Compliance requirement | Standard or regulation | Test condition | Limit / specification |
|---|---|---|---|
| Olefin polymer food-contact status | 21 CFR 177.1520 | End-use conditions A–H | Extractive limits per subpart |
| Overall migration in EU food contact | EU Regulation No 10/2011 | Simulant selection per food type | 10 mg/dm² |
| REACH SVHC communication | REACH 1907/2006 | Article threshold | 0.1 wt% per SVHC |
| Packaging heavy metals | EU 94/62/EC | Sum of Pb, Cd, Hg, Cr VI | 100 ppm |
| Density | ISO 1183-1 | 23°C | 0.950–0.954 g/cm³ |
| Melt flow rate | ISO 1133-1 | 190°C/2.16 kg | 0.08–0.12 g/10 min |
Heavy-duty industrial sacks produced at 50–120 µm use Iran Petrochemical HDPE HF5110 at 80–100 wt% with 0–20 wt% metallocene LLDPE to recover transverse tear lost in high-density film. Blow-up ratio is deliberately lowered to 2.5:1–3.5:1 to increase machine-direction stiffness, and die gap is widened to 1.2–1.6 mm to reduce melt fracture risk at high output. Melt temperatures are set at 200–220°C; lower feed temperatures of 180°C preserve the molecular weight of the high-viscosity grade. Dart impact of 50 µm film measured by ASTM D1709 method B is typically 400–650 g, while Elmendorf tear measured by ASTM D1922 remains 20–35 g/mm in machine direction and 40–70 g/mm in transverse direction. Secant modulus is measured at 1% strain by ASTM D882 and is typically 800–1,100 MPa. For sacks intended to hold construction rubble or aggregates, puncture resistance is verified by ASTM D5748 with values in the 25–50 N range at 50 µm. Production equipment includes a 90 mm grooved-feed extruder with 30:1 L/D and a 250–350 mm spiral mandrel die with internal bubble cooling. Terminal products are rubble sacks, FIBC liners and heavy-duty industrial packaging where the film must retain dimensional stability under stack load.
When Iran Petrochemical HDPE HF5110 is selected as the high-stiffness core in a stretch hood or lamination film, the converter runs the core extruder at 215–235°C and designs the layer ratio so that the HF5110 core represents 30–50 wt% of the total structure, with LLDPE skins at 50–70 wt% to provide puncture resistance and seal initiation below 110°C. A five-layer line with a 250–400 mm die and collapsing frame geometry suited to high neck height is used. Blow-up ratio is set at 4.0:1–5.0:1; frost line height is maintained at 7–10 die diameters to balance transverse orientation and core stiffness. The HDPE core raises secant modulus of the total film by 150–250 MPa relative to an all-LLDPE structure, but core fractions above 55 wt% decrease stretchability and increase elastic recovery stress. Stretch hood film performance is tested for puncture force by ASTM D5748, tensile yield by ISO 527-3, and tear by ASTM D1922. Compliance for industrial wrapping is maintained under REACH and EU Regulation No 10/2011 where the film contacts packaged goods indirectly. Terminal uses include high-stiffness stretch hood webs, transfer laminating layers, and protective collation shrink films where a printable high-density layer is required.
Competitive Iran Petrochemical HDPE HF5110 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!
Iran Petrochemical HDPE HF5110 is a pelletized high-density polyethylene resin intended for blown-film extrusion processes where high melt strength, stiffness, and moisture barrier are required in thin-gauge structures. The grade is distinguished from general-purpose HDPE blow-molding and injection-molding materials by a melt flow rate of 0.10 g/10 min at 190 °C/2.16 kg as determined by ISO 1133-1:2022, and a nominal solid density of 0.950 g/cm³ as determined by ISO 1183-1:2019. The low melt flow rate places the material in the high-molecular-weight film category, meaning that elongation in the bubble, neck stability, and extensional viscosity are prioritized over flow length. On production-scale converting equipment, this resin is typically processed in single-screw extruders with barrier-type screws and grooved feed sections; converter experience indicates that die pressure responds steeply to screw-speed increases below 20 rpm, requiring staged ramp-up protocols to avoid pressure excursions above the breaker-plate rating. In comparison with HDPE blow-molding resins having melt flow rates near 0.30–0.45 g/10 min, HDPE HF5110 supports a higher stalk and more stable bubble formation. Compared with injection-molding HDPE grades above 8 g/10 min, the product has a much shorter spiral-flow length and should not be specified for thin-wall injection molding.
The property values in the following table are compiled from producer-issued datasheets and represent typical values rather than lot-specific guarantees. End-use specifications for converted film should be verified against a certificate of analysis from the supplier because additive package, regrind content, and conversion conditions can shift final-film values.
| Property | Test method | Typical value | Unit |
|---|---|---|---|
| Melt flow rate, 190 °C/2.16 kg | ISO 1133-1:2022 | 0.10 | g/10 min |
| Density | ISO 1183-1:2019 | 0.950 | g/cm³ |
| Tensile stress at yield | ASTM D638-14 | 25 | MPa |
| Tensile elongation at break | ASTM D638-14 | >800 | % |
| Flexural modulus, 1 % secant | ASTM D790-17 | 1,100 | MPa |
The combination of low melt flow rate and moderate density is relevant for film converters because it controls both extruder backpressure and slit-seal temperature window. On blown-film lines with a die gap of 1.2–1.8 mm and blow-up ratio between 4:1 and 6:1, the material can produce thin-gauge webs without excessive sag because the high molecular weight increases bubble load-bearing capacity. Melt temperature at the die is usually maintained between 190 °C and 230 °C; sustained operation above 240 °C raises the probability of oxidative gel formation at the die lip, particularly when internal bubble cooling is absent. The resin is not hygroscopic in the same sense as polyamide or polyester, but surface condensation on cold pellets can occur when the ambient dew point exceeds 15 °C during silo-to-hopper transfer. In such cases, a hopper dryer set at 50 °C for 1 h is sufficient where moisture-related feed surging is observed.
The high molecular weight of HDPE HF5110 creates elevated shear stress in the die land region when output is increased rapidly. Melt fracture is a known operational limit in this product class because the long relaxation times restrict molecular orientation recovery inside short die lands. Die design has a direct effect on the upper output ceiling: technical literature for high-molecular-weight HDPE film extrusion recommends die land length-to-gap ratios of at least 10:1 to 15:1, polished chrome die surfaces, and spiral mandrel distribution channels with gradual clearances. On lines where the die pressure transducer is mounted in the mandrel ring, melt-pressure fluctuations greater than ±0.5 MPa are typically associated with gauge bands and bubble oscillation. The corrective sequence in production is to reduce screw speed, raise adapter temperature by 5–10 °C, or widen the die gap if the gauge target permits.
Field experience on high-stalk HDPE film lines shows that batch-to-batch variation in melt flow rate of ±0.01 g/10 min can shift the frost line position sufficiently to require manual adjustment on lines without automatic bubble control. The bubble is normally maintained with a frost line height of 6–10 die diameters above the air ring. Lower frost lines increase line speed but reduce transverse orientation; higher frost lines improve stalk stability but can reduce draw-down capability in very thin film below 15 µm. When the bubble enters a low-amplitude, high-frequency oscillation, the first diagnostic step is to verify internal bubble cooling pressure and lower the exhaust venturis, then to reduce the lower-lip cooling air velocity if the bubble neck shows a narrow contact ring. The material should not be processed through conventional spiral dies designed for low-molecular-weight LDPE without adjusting the die gap because the higher pressure drop can exceed the die body pressure rating.
HDPE HF5110 is used commercially in thin-gauge T-shirt grocery sacks, retail carry-out bags, trash liners, and freezer film where stiffness and moisture barrier are more important than elastic recovery. In side-seal bag conversion, the secant modulus of the film supports web tension at speeds above 120 m/min; below 15 µm, dart drop impact becomes the controlling specification and may restrict downgauging on some bag machines. The material differs from butene-LLDPE film resins in that it delivers higher modulus and lower water vapor transmission rate but lower puncture and dart impact values. Generic HDPE of 0.950 g/cm³ density typically exhibits water vapor transmission rate near 4–6 g·100 µm/(m²·day) at 38 °C and 90 % RH when tested according to ASTM F1249-20. In contrast, LDPE and butene-LLDPE films of equivalent gauge provide lower tear resistance in the transverse direction but higher machine-direction stretch and superior puncture toughness. The selection of HDPE HF5110 over those materials therefore depends on whether the converted article is governed by bag stiffness, stack height compression, and moisture protection, or by stretch-film load retention and puncture resistance.
Mechanical failure in HDPE HF5110 film is influenced by orientation, gauge, and temperature. Blown film produced at high blow-up ratios exhibits anisotropic properties: machine-direction tear strength is usually lower than transverse-direction tear strength because molecular chains are partially oriented in the take-up direction. Dart drop impact resistance应当按照 ASTM D1709-16a measured at 23 °C, and Elmendorf tear strength按照 ASTM D1922-15 are the primary converter-level quality indicators. Published data for low-temperature dart impact of this specific Iran Petrochemical HF5110 configuration is limited; converters specifying freezer-grade film should require parallel dart testing at -18 °C using the same gauge and blow-up ratio as full production because the orientation history changes the subambient failure mode. The brittleness boundary of HDPE film is not adequately described by density alone; dart impact failure at lower temperatures is sensitive to molecular weight, co-monomer distribution, and residual stress from bubble cooling. Where low-temperature toughness is critical, the converted film should be evaluated according to ASTM D1790-21 for subambient impact brittleness, and the supplier should provide lot-specific melt flow and density data before production release.
Regulatory compliance for food-contact applications is assessed at the resin and final-article levels. In the United States, the olefin polymer may be used as a food-contact substance provided it meets the applicable conditions of 21 CFR 177.1520, including density, melt index, and extraction limits. In the European Union, plastic materials intended for food contact are evaluated under Commission Regulation (EU) No 10/2011; overall migration must not exceed 10 mg/dm² under the prescribed simulants and test conditions. The resin producer’s compliance statement covers the base polymer; it does not automatically cover color masterbatches, slip agents, processing aids, or recycled dilution added by the converter. The material is not intended for medical implant use or for sustained service in contact with strong oxidizing agents. During line shutdowns, the extruder should not be purged with halogenated solvents or low-molecular-weight acetate compounds that can degrade at processing temperatures and generate corrosive decomposition products. Where regrind is used, the maximum addition should be determined by film appearance and physical property retention rather than by a nominal acceptable percentage alone.