Products

SIBUR HDPE HD12443FE

    • Product Name: SIBUR HDPE HD12443FE
    • Factroy Site: Yudu County, Ganzhou, Jiangxi, China
    • Price Inquiry: admin@ascent-chem.com
    • Manufacturer: Ascent Petrochem Holdings Co., Limited
    • CONTACT NOW
    VTB
    Specifications
    HS Code 661860
    Product Name SIBUR HDPE HD12443FE
    Polymer Type High Density Polyethylene (HDPE)
    Density 0.944 g/cm³
    Melt Flow Rate 12.0 g/10 min (190°C/2.16 kg)
    Tensile Stress At Yield 28 MPa
    Tensile Strain At Yield 9%
    Tensile Stress At Break 20 MPa
    Tensile Strain At Break 500%
    Flexural Modulus 1300 MPa
    Charpy Notched Impact Strength At 23c 5 kJ/m²
    Charpy Notched Impact Strength At Minus 20c 3 kJ/m²
    Vicat Softening Temperature 125°C
    Melting Temperature 132°C
    Shore D Hardness 60
    Water Absorption <0.01%
    Volume Resistivity >10^16 Ω·cm
    Dielectric Constant At 1mhz 2.3
    Dissipation Factor At 1mhz 0.0005
    Thermal Stability >220°C
    Environmental Stress Cracking Resistance >1000 h

    As an accredited SIBUR HDPE HD12443FE factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Packaging: SIBUR HDPE HD12443FE supplied in 25 kg polyethylene bags, stacked on pallets; 55 bags per pallet (1,375 kg).
    Container Loading (20′ FCL) SIBUR HDPE HD12443FE in 25 kg bags, palletized and secured in a 20′ FCL container for dry, moisture-protected ocean shipment.
    Shipping SIBUR HDPE HD12443FE is typically shipped as non-hazardous polyethylene resin in 25 kg PE bags, palletized and stretch-wrapped. Transport in dry, covered trucks or containers at ambient temperature. Keep packaging sealed, avoid moisture, sunlight, contamination, and ignition sources. Not regulated for transport. Store cool and dry.
    Storage SIBUR HDPE HD12443FE should be stored in a cool, dry, well-ventilated warehouse, away from direct sunlight, heat, flames, and strong oxidizers. Keep bags or packages sealed, palletized, and off the floor to prevent moisture and contamination. Avoid prolonged high temperatures and UV exposure. Maintain stable stacks and good housekeeping. No special ventilation is normally required. Store in original packaging.
    Shelf Life Shelf life: Typically 12 months from manufacture when stored dry, in original packaging, away from direct sunlight at ambient temperature.
    Application of SIBUR HDPE HD12443FE

    In extrusion blow moulding of monolayer bottles with a brimful capacity range of 0.5 L to 5 L, the resin is fed directly from silo storage into a grooved-feed extruder with a length-to-diameter ratio of 24:1 to 30:1. Published datasheet values for this grade list a melt mass-flow rate of 0.43 g/10 min at 190 °C under a 5 kg load in accordance with ISO 1133-1, and a density of 0.959 g/cm³ in accordance with ISO 1183-1. The resulting melt strength permits a continuous shuttle blow moulder to extrude a wall-thickness-controlled parison without measurable drawdown at a melt temperature of 180 °C to 210 °C. Barrel zone temperatures are set to 170 °C, 180 °C, 185 °C, and 185 °C from the feed throat to the adapter, while the die head is held at 185 °C to 195 °C. The blow mould is maintained at 10 °C to 20 °C, and blow air pressure is set to 6 bar to 8 bar. For a 1 L bottle on a single-station shuttle machine, cycle time is typically 12 s to 18 s, with parison pre-blow at 0.2 bar to 0.5 bar and main blow at 7 bar to 8 bar. The bottle must pass the production environmental stress-crack-resistance screen conducted under ASTM D1693-B in 10% Igepal CO-630 at 50 °C, with an acceptance threshold of at least 40 h for low-surfactant household cleaners and 60 h for concentrated agricultural surfactant systems. Pre-drying is not routinely required when resin is stored at relative humidity below 55%, but after outdoor storage in cold climates or at relative humidity above 60%, the resin is dried at 70 °C to 80 °C for 2 h to 3 h in a dehumidifying hopper dryer to prevent condensation-induced surface pitting on the parison.

    For an opaque agrochemical bottle, a representative starting formulation is 98.0 wt% HD12443FE, 1.5 wt% white titanium dioxide masterbatch containing 60 wt% TiO₂, and 0.5 wt% fluoropolymer processing aid masterbatch. The processing aid is reduced to 0.1 wt% when the extruder is equipped with a high-shear mixing screw because excess processing aid can reduce interlayer adhesion in flash regrind. The finished containers are used for bleach, hand dish-wash, and agricultural adjuvant concentrates, with an expected wall thickness distribution from 0.4 mm at the shoulder to 0.8 mm at the base pinch-off.

    What governs the drop-impact threshold for UN-certified lubricant jerrycans?

    For industrial jerrycans in the 5 L to 20 L range, the limiting variable is not melt flow but pinch-off weld integrity under low-temperature drop testing. The finished containers are typically certified to UN 3H1/Y for Packing Group II liquids, requiring a drop height of 1.2 m after conditioning at −18 °C. Production-scale accumulator-head blow moulders with screw diameters from 80 mm to 120 mm and 25:1 to 30:1 L/D are used. The parison is programmed with a die gap ranging from 1.2 mm at the neck and pinch-off regions to 2.8 mm in the centre wall section. Melt temperature is held between 185 °C and 205 °C, while the blow mould runs at 8 °C to 15 °C to quench the pinch-off zone and reduce post-mould shrinkage. Blow air is staged at 3 bar to 4 bar pre-blow followed by 8 bar to 10 bar main blow. A representative formulation for a UV-stable black jerrycan is 97.5 wt% HD12443FE, 1.0 wt% carbon black masterbatch, 0.8 wt% hindered amine light stabilizer masterbatch, and 0.7 wt% processing aid masterbatch. Regrind from flash and rejected bottles is blended at no more than 20 wt% unless specific UN performance tests are repeated with the exact regrind ratio. The critical defect is a weak slot weld at the bottom pinch-off; moulds with a 0.3 mm to 0.6 mm flash gap and a 15 °C pinch-off insert produce a densified weld that survives the drop test when the melt temperature is not allowed to exceed 205 °C. At melt temperatures above 210 °C, low-molecular-weight fractions can volatilise and lead to visible neck-in at the parison, producing thin sidewalls and lower drop resistance. The resulting 5 L, 10 L, and 20 L containers are used for lubricating oils, hydraulic fluids, and oil-based agricultural adjuvants.

    ScenarioStandard or certificationTest method or clauseNumerical acceptance criterion
    Monolayer detergent bottlesASTM D1693-B10% Igepal CO-630 at 50 °CF50 40 h to 60 h
    UN-certified jerrycansUN 3H1/YDrop test at −18 °CDrop height 1.2 m
    Pharmaceutical and personal care bottlesUSP <661.1>, FDA 21 CFR 177.1520, EU 10/2011Extractables migration and organoleptic testingOverall migration below 10 mg/dm²; n-hexane extractables below 2.6%
    Barrier coextrusionASTM D3985Oxygen transmission at 23 °C, 50% RHBelow 1.0 cm³/(m²·day·atm)
    Coolant expansion tanksASTM D638-14, ASTM D790-17Tensile and flexural testing after glycol immersionAcceptance by part-specific validation

    When the same resin is converted into pharmaceutical or personal care bottles, the dominant control shifts from mechanical impact to extractables and organoleptic behaviour under USP <661.1>, FDA 21 CFR 177.1520, and EU 10/2011. The processing window is narrowed deliberately: melt temperature is held at 180 °C to 195 °C to avoid thermal degradation products that are organoleptically detectable. The die head is chrome-plated and polished to 0.1 μm Ra. Blow mould temperature is set at 15 °C to 20 °C. A representative formulation contains 99.0 wt% HD12443FE and 1.0 wt% pharmaceutical-grade white masterbatch based on a polyethylene carrier with low UV absorber content; amide-based slip and antistatic additives are excluded because polar additives can increase extractables and alter the taste profile of liquid oral dosage forms. Regrind is not used in the inner contact layer. The finished containers are 100 mL to 500 mL high-density polyethylene bottles for liquid oral syrups, topical antiseptics, and low-viscosity personal care products. If the resin is stored in a non-clean-room warehouse at relative humidity above 60%, pre-drying at 75 °C for 2 h is applied before entering the clean-room feed station. The packaging must also pass an organoleptic panel per USP <661.1> with no detectable odour or taste at 40 °C for 10 days.

    Coextruded HDPE–EVOH–HDPE barrier structure for oxygen-sensitive consumer formulations

    In a six-layer coextrusion blow moulding line, HD12443FE is used as the outer skin and the food-contact inner skin, typically comprising 80 wt% to 85 wt% of the total bottle mass. The adhesive tie layers account for 3 wt% to 4 wt% and the ethylene vinyl alcohol copolymer barrier layer accounts for 3 wt% to 6 wt%, depending on the oxygen transmission target. For a 500 mL bottle, the oxygen transmission rate is tested under ASTM D3985 at 23 °C and 50% RH, with a target below 1.0 cm³/(m²·day·atm). The HDPE skin layers are processed at 180 °C to 200 °C, the anhydride-modified polyethylene tie layers at 190 °C to 210 °C, and the EVOH layer at 195 °C to 215 °C. The die head is purged with HD12443FE after every shutdown because EVOH degrades and crosslinks if held at temperature for more than 60 min without flow. EVOH must be dried to below 0.08 wt% moisture at 90 °C to 110 °C for 4 h to 8 h before coextrusion; the HDPE layer requires pre-drying only if silo condensation is observed. Regrind from bottle flash and edge trim is added to the barrier layer or to a dedicated regrind layer at no more than 30 wt% of total bottle weight to prevent gel formation and barrier microcracks. The finished containers are used for oxygen-sensitive juice concentrates, cosmetic emulsions, and veterinary liquid formulations requiring a shelf life of 9 months to 18 months at ambient temperature. The main incompatibility is with amine-based processing aids and certain phenolic barrier additives, which can accelerate EVOH discolouration and should not be combined in the same coextrusion run without purge validation.

    If the blow-moulded part must retain weld strength in a coolant expansion tank at 95 °C

    Technical blow-moulded parts such as automotive coolant expansion tanks, windscreen washer reservoirs, and hydraulic fluid tanks are processed on accumulator-head machines with parison wall-thickness programming and robot-assisted parison transfer. The HDPE melt is extruded at 185 °C to 210 °C and blown at 8 bar to 10 bar into an aluminium mould held at 8 °C to 14 °C. Filler necks and sensor bosses are joined by hot-plate welding at 220 °C to 235 °C or by infrared welding with a 15 s to 25 s cycle after demoulding. The critical process conflict is that increasing mould temperature above 16 °C improves weld elongation but extends cycle time and increases distortion of flat sealing faces. A representative formulation for a black engine compartment part is 98.0 wt% HD12443FE, 1.2 wt% carbon black masterbatch, and 0.8 wt% long-term thermal stabilizer masterbatch. The grade must demonstrate tensile yield stress in accordance with ASTM D638-14 and flexural modulus in accordance with ASTM D790-17 after 1,000 h of immersion in a 50/50 vol% ethylene glycol-water mixture at 95 °C. Published data for this specific configuration is limited; part validation therefore uses production-scale burst testing and thermal cycling between −40 °C and 100 °C rather than relying only on resin-datasheet values. The finished parts range from 1.5 L to 5 L and must pass a 0.3 bar air-leak test before assembly. Avoid copper-based colourants and halogenated flame-retardant additives in coolant-contact layers because these can promote oxidative degradation of the HDPE surface after long-term thermal cycling.

    For 20 L to 30 L blow-moulded monolayer containers intended for alkaline construction admixtures, the compliance issue is not migration but stress-cracking resistance under high-pH exposure. The resin is processed at 185 °C to 200 °C with blow mould temperature at 10 °C to 16 °C. A representative formulation includes 98.2 wt% HD12443FE, 1.0 wt% white masterbatch, and 0.8 wt% calcium carbonate masterbatch to improve surface stiffness. The containers are filled with superplasticizers and water-reducing admixtures having a pH above 12. The stress-crack resistance is evaluated under ASTM D1693-A after 7 days of immersion in a 10% sodium hydroxide solution at 60 °C. No pre-drying is required below 55% RH; above that threshold, drying at 70 °C for 2 h prevents surface haze. The terminal products are 20 L and 30 L open-top containers with tamper-evident screw caps for use in construction chemical supply chains.

    Free Quote

    Competitive SIBUR HDPE HD12443FE 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

    Inquiry

    Get Free Quote of Ascent Petrochem Holdings Co., Limited

    Flexible payment, competitive price, premium service - Inquire now!

    Certification & Compliance
    More Introduction

    SIBUR HDPE HD12443FE is a high-density polyethylene extrusion grade supplied as natural pellets for blown film production. The designation HD12443FE identifies a medium-viscosity HDPE with a melt mass-flow rate of 1.2 g/10 min at 190 °C and 2.16 kg under ISO 1133-1:2022, and a base density of 0.944 g/cm³ under ISO 1183-1. The density places the grade below high-rigidity HDPE film resins in flexural modulus but above linear low-density polyethylene in tensile strength and water-vapour barrier. HD12443FE is not a pipe compound and does not contain the carbon black loading or sustained-pressure stabilisation required for PE 80 or PE 100 pressure-pipe service.

    The grade is intended for thin-gauge blown film at thicknesses typically between 15 µm and 80 µm. Applications include dry-food packaging, retail carrier bags, laminated films, hygienic overwrap, industrial liners, frozen-food bags, and protective film. The controlled molecular weight distribution supports stable high-stalk bubble extrusion and consistent drawdown on HDPE film lines. Film surfaces can be corona-treated for printing or lamination, but the treatment level should be verified against the ink or adhesive specification because surface energy decays during storage.

    Typical physical properties for HD12443FE are listed below.

    PropertyTest methodTypical value
    Melt mass-flow rate, 190 °C, 2.16 kgISO 1133-1:20221.2 g/10 min
    DensityISO 1183-10.944 g/cm³
    Tensile stress at yieldISO 527-222 MPa
    Tensile strain at breakISO 527-2>600 %
    Flexural modulusISO 178800 MPa
    Vicat softening temperature, A50ISO 306121 °C
    Charpy notched impact strength at 23 °CISO 179-1/1eA>25 kJ/m²
    Melting peak temperatureISO 11357-3128 °C

    The values are lot-average figures and do not constitute a specification. Lot-specific certificates of analysis should be obtained from the resin supplier and verified against ISO 1183-1, ISO 1133-1:2022, and ISO 527-2 before production release.

    The melt flow rate of 1.2 g/10 min corresponds to a medium-viscosity HDPE. Under typical blown-film shear rates of 100 s⁻¹ to 500 s⁻¹, the apparent viscosity permits high throughput while retaining enough high-molar-mass species to stabilise the high-stalk bubble. The ratio of high-load melt flow rate at 21.6 kg to the standard melt flow rate is commonly used as an indirect index of shear thinning; most film-grade HDPE resins in this density class show a flow-rate ratio between 15 and 25. Bubble sag or stalk oscillation is usually better corrected by improving melt-temperature uniformity than by raising barrel temperature, because non-uniform melt temperature reduces melt strength and increases thickness variation.

    Gel formation in HD12443FE film can be separated into oxidised gel, unmelted gel, and contamination. Oxidised gel particles are amber or brown and typically result from dead spots, overheated screen packs, or residence times at melt temperatures above 230 °C. Unmelted gels appear as clear or white specks and often originate from poorly blended reclaim or cold pellets entering the metering section. Screen packs of 20/60/120 mesh are common for thin film; replacing the screen pack before differential pressure exceeds 15 MPa reduces resin residence time and gel formation.

    What Limits the Melt Processing Window in Blown Film Extrusion of HD12443FE?

    The upper thermal boundary is set by the stabiliser package and by the grade’s medium molecular weight distribution. Sustained melt temperatures above 230 °C accelerate oxidation and can generate gel particles, while temperatures below 180 °C increase melt pressure and produce surface roughness known as sharkskin. On a grooved-barrel extruder with 25:1 to 30:1 L/D, the barrel profile is typically 170 °C to 200 °C in the feed section, 190 °C to 210 °C in the compression section, and 200 °C to 220 °C at the adapter and head. Melt temperature at the die entry should be controlled to 195 °C ± 5 °C for thin-film stability.

    HD12443FE is usually run in a high-stalk bubble configuration rather than a pocket-bubble configuration. The stalk height, measured from die face to frost line, is typically 6 to 10 die diameters. A die gap of 0.8 mm to 1.2 mm and a blow-up ratio of 3:1 to 4:1 balance gauge uniformity against transverse-direction tear resistance. Insufficient stalk cooling produces ductile fold edges and inconsistent roll profile, while excessive frost-line height reduces bubble stability and can cause collapse-side wrinkling on wide-web lines.

    Pellets should be stored in closed hoppers. If bags are opened in a high-humidity environment, surface condensation on cold pellets can introduce microbubbles during extrusion. Pre-drying at 80 °C for 2 h is recommended when pellets are transferred from storage below 0 °C into a warm production hall at relative humidity above 60 %. Melt temperatures above 240 °C and reclaim addition above 20 mass % should be avoided unless the reclaim is clean, dry, and of known heat history.

    Film Mechanical Performance and Gauge Control

    At 30 µm thickness, blown film from HD12443FE typically shows tensile stress at yield near 22 MPa and elongation at break above 500 % under ISO 527-3. Dart drop impact, measured by ISO 7765-1, is commonly specified between 100 g and 180 g depending on frost-line height and blow-up ratio. Higher stalk orientation increases machine-direction stiffness but lowers dart impact because the film becomes anisotropic. Elmendorf tear values measured under ISO 6383-2 usually lie between 15 N/mm and 35 N/mm, with transverse-direction tear exceeding machine-direction tear at blow-up ratios above 3:1.

    Gauge control depends on die centering, air-ring stability, and haul-off speed. Thickness variation across the layflat should be held within ±5 % of the target gauge to prevent weak bands in heat-sealed bags. Haze and gloss are sensitive to die-lip cleanliness and cooling rate. Haze values under ISO 14782 for 30 µm film are generally below 20 %, and 45° gloss under ISO 2813 is generally above 30. These values are not lot guarantees and must be established on the production line because frost-line height and air-ring flow have first-order effects on optical properties.

    Heat-seal performance is acceptable for hot-bar and impulse sealing across a jaw-temperature window of 130 °C to 160 °C. Seal strength should be tested under ISO 527-3 after conditioning at 23 °C and 50 % relative humidity. Because the density is 0.944 g/cm³, the melting range is sharper than that of LLDPE; sealing jaws must be maintained at uniform temperature to avoid burn-through at the upper end of the window.

    For food-contact use, the final package should be evaluated under EU 10/2011 and, where applicable, 21 CFR 177.1520. Specific migration limits depend on film thickness, food type, contact time, and temperature. A migration study is required for fatty foods above 40 °C. The resin does not contain intentionally added per- and polyfluoroalkyl substances and is suitable for clean post-industrial film recycling, but post-consumer recycled content must be qualified separately.

    Blending with linear low-density polyethylene at 20–30 mass % lowers modulus but increases dart impact and tear resistance. Dispersion is best achieved by dry blending in a low-shear hopper or by dosing LLDPE into the feed throat. A separate mixing section is not required if the extruder uses a barrier screw. Calcium carbonate masterbatch addition above 5 mass % is not recommended for thin film because the filler increases density and interferes with heat-seal strength under ISO 527-3.

    When HD12443FE Replaces High-Rigidity HDPE or PE80 Pipe Stock

    When a converter considers HD12443FE as a replacement for high-rigidity HDPE film resin with density 0.954–0.958 g/cm³, the primary change is a reduction in tensile modulus and an increase in dart impact and tear resistance. The flexural modulus of HD12443FE is approximately 800 MPa, whereas high-rigidity film grades may reach 1000 MPa or more. The trade-off is acceptable for bags and sacks that value puncture resistance over stiffness, but not for stand-up pouches or down-gauged rigid packaging requiring maximum top-load resistance.

    Comparative product positioning is shown below.

    DimensionHD12443FEHD03580SBHigh-rigidity HDPE film grade
    Product classNatural HDPE film extrusionBlack PE80 pipe compoundNatural HDPE film extrusion
    Density0.944 g/cm³Not published for film use0.954–0.958 g/cm³
    Melt mass-flow rate1.2 g/10 min at 190 °C/2.16 kgLow-MFR pipe resin0.5–1.0 g/10 min
    Carbon blackAbsentPresent, 2.0–2.5 %Absent
    Main useBlown film, bags, laminationPressure pipe under ISO 4427 and ISO 4437High-stiffness film and sacks

    On a blown-film line, replacement should begin with a purging sequence using low-density polyethylene, followed by HD12443FE. The first production run should be sampled after 30 min of stable output to allow the temperature profile to equilibrate. If gauge variation exceeds ±5 %, check die-lip gap centering and air-ring venturi alignment before adjusting melt temperature.

    Storage life for unopened bags is typically 24 months from dispatch when stored below 40 °C and protected from direct sunlight. Opened bags should be reclosed to prevent dust and moisture uptake. Material from damaged bags can be used only after visual inspection for contamination. Fines accumulation in the hopper should be removed because fines can melt prematurely and form gel streaks.

    HD12443FE is not suitable for rotational moulding, thin-wall injection moulding, or pressure-pipe service under ISO 12162. The low melt flow rate limits spiral-flow length in injection moulds, and the absence of carbon black and pipe-grade stabilisation means it should not be used for buried pipe exposed to long-term ultraviolet radiation. For cast film, processability may require melt temperatures at the upper end of the window and a wider die gap to prevent draw resonance; published data for this specific configuration is limited.

    Top