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LyondellBasell HDPE 9307TC

    • Product Name: LyondellBasell HDPE 9307TC
    • Factroy Site: Yudu County, Ganzhou, Jiangxi, China
    • Price Inquiry: admin@ascent-chem.com
    • Manufacturer: Ascent Petrochem Holdings Co., Limited
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    VTB
    Specifications
    HS Code 987631
    Density 0.959 g/cm³
    Melt Flow Rate 0.25 g/10 min (190°C/5.0 kg)
    Tensile Strength At Yield 27 MPa
    Tensile Elongation At Break >600%
    Flexural Modulus 1200 MPa
    Charpy Notched Impact Strength At 23 C 15 kJ/m²
    Charpy Notched Impact Strength At 30 C 8 kJ/m²
    Vicat Softening Temperature 128°C
    Brittleness Temperature < -70°C
    Shore D Hardness 65
    Environmental Stress Crack Resistance >5000 h
    Carbon Black Content 2.0-2.5%
    Thermal Conductivity 0.4 W/m·K
    Coefficient Of Linear Thermal Expansion 1.5E-4 /°C
    Water Absorption <0.01%
    Dielectric Constant 2.3
    Volume Resistivity >1E15 ohm·cm

    As an accredited LyondellBasell HDPE 9307TC factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing LyondellBasell HDPE 9307TC is packaged as pellets in 25 kg polyethylene bags, with 55 bags per 1,375 kg pallet.
    Container Loading (20′ FCL) Container Loading (20′ FCL): LyondellBasell HDPE 9307TC, bagged, palletized, stretch-wrapped, secured in dry 20-foot FCL for standard ocean transport.
    Shipping LyondellBasell HDPE 9307TC is shipped as non-hazardous high-density polyethylene resin pellets in 25 kg bags, octabins, bulk trucks, or railcars. It is not regulated for DOT/IMDG/IATA dangerous goods transport. Store in cool, dry conditions, away from ignition sources, using standard industrial handling and dust control.
    Storage Store in original, sealed packaging in a cool, dry, well-ventilated warehouse. Protect from direct sunlight, UV, heat, moisture, and contamination. Keep away from ignition sources, strong oxidizers, and incompatible materials. Do not stack excessively; use first-in, first-out. Maintain ambient temperature and avoid prolonged storage above recommended limits. Ensure pallets are stable and bags undamaged.
    Shelf Life LyondellBasell HDPE 9307TC typically has a 24-month shelf life when stored in original, unopened packaging, cool, dry, and away from direct sunlight.
    Application of LyondellBasell HDPE 9307TC

    Extrusion blow moulding of UN-certified jerrycans from LyondellBasell HDPE 9307TC begins with the grade’s published data-sheet profile: nominal density 0.953 g/cm³ per ISO 1183-1, melt mass-flow rate 0.35 g/10 min under 190°C/5 kg and 12 g/10 min under 190°C/21.6 kg per ISO 1133-1:2022, flexural modulus 1300 MPa per ISO 178, and tensile yield stress 28 MPa per ISO 527-2. These values place the grade in the high-molecular-weight HDPE class, where high melt strength permits stable parison formation at shot sizes between 2 kg and 8 kg on shuttle or accumulator machines without excessive sag. Production-scale equipment behavior in this segment consistently shows that the dominant defect sources are not resin-related lot variation but tooling pinch-line geometry, mould temperature drift, and parison programming offset; when the 21.6 kg melt-flow rate shifts more than 15% from the first-article reference value, parison sag accelerates and the handle bridge wall thickness falls outside the minimum allowable thickness for drop impact survival.

    Typical production lines employ extruders with L/D ratio 24:1 to 30:1 and a compression ratio between 2.5:1 and 3.0:1, feeding a diverging die with mandrel diameter matched to the container neck; melt temperatures are maintained at 190–210°C at the die, and blow-mould cooling channels run at 15–30°C to limit crystallinity gradients. Parison programming is adjusted so that the top pinch-off region retains 3.5–5.0 mm wall thickness after mould close, while sidewall nominal thickness falls within 1.8–2.5 mm for a 20 L jerrycan. Blow pressure settings of 0.6–1.0 MPa and mould close speed of 250–500 mm/s are used to control pinch-seam integrity and air venting at the handle bridge. Routine process audits note that the largest batch-to-batch defect source is not resin MFR shift but mould temperature drift, which changes sidewall shrinkage by 0.3–0.6% and causes handle-flash misalignment; therefore, closed-loop mould cooling with temperature tolerance ±2°C is considered mandatory for stable UN drop-test outcomes.

    Formulation addition ratios for this segment are deliberately narrow. Carbon black masterbatch for UV stabilization is dosed at 2–3 wt%, and a process aid concentrate may be added at 0.1–0.3 wt% only when melt-pressure fluctuations exceed 1.0 MPa at the screen changer. Closed-loop regrind from trimmed flash and rejected containers is limited to 30 wt%; above this level, notch sensitivity increases and UN drop-test repeatability at −18°C becomes statistically inconsistent. The addition of calcium stearate-based lubricant masterbatch above 0.5 wt% is avoided because it can lower environmental stress-cracking resistance and increase the probability of stress whitening at pinch seams during hydraulic pressure testing. Amine-based antistatic packages are excluded from this formulation envelope because their exudation under long-term hydrocarbon contact degrades weld-line strength and creates local staining on the inner wall.

    Compliance requirements are governed by UN Model Regulations Chapter 6.1 for packing group II and III liquids, including hydraulic internal pressure 100–150 kPa for 5–30 min, stack load 75–180 kg for 28 days at 40°C, and drop impact from 1.2 m after conditioning at −18°C. Additional standards include ADR/RID packing instruction P001, ISO 16106:2020, and ASTM D1693 for environmental stress-cracking resistance. Terminal product types are 5 L, 10 L, 20 L, and 25 L jerrycans and tight-head containers for lubricants, agrochemical intermediates, and industrial cleaning formulations. The table below consolidates the primary certification test matrix applied to this application segment.

    Instrument / StandardTest ConditionRequirementFailure Mode Observed
    UN Model Regulations 6.1.5.2.2Drop impact 1.2 m at −18°CNo leakage or rupturePinch-line fracture at handle bridge
    UN Model Regulations 6.1.5.2.2Hydraulic internal pressure 100–150 kPa for 5–30 minNo rupture or wall collapseStress whitening at sidewall seams
    UN Model Regulations 6.1.5.2.2Stack load 75–180 kg, 28 days, 40°CNo more than 50% vertical compressionLower-radius buckling
    ADR/RID P001Transport packaging instructionLeakproof closure, venting as requiredClosure torque loss after vibration
    ISO 16106:2020Dangerous goods packaging performanceFull test batteryDrop and leakproofness inconsistency
    ASTM D1693100% Igepal CO-630F50 >600 hPremature cracking in high-regrind lots

    How does six-layer co-extrusion of fuel tanks shift regrind layer placement and EVOH continuity?

    In six-layer co-extrusion blow moulding for automotive fuel tanks, HDPE 9307TC functions as both outer skin and inner cap layers while a 40–50% regrind core is fed from a separate extruder. The EVOH barrier layer is buried between maleic anhydride-functionalized adhesive tie layers at 1.5–4% of total wall thickness by volume; each adhesive layer at 1–2%; inner HDPE layer 8–12%; outer HDPE layer 20–30%. This layer distribution is determined by permeation testing under ASTM D3985 at 40°C/0% RH and by evaporative emission limits in CARB LEV III. The regrind core is composed of co-extruded trim and rejected tanks that have been granulated, dried to 0.05% moisture or lower, and re-extruded; introducing this core shifts the overall melt rheology toward higher viscosity and requires a separate accumulator shot program because the first-article die gap setting for virgin HDPE no longer holds EVOH layer continuity.

    Production-scale machines for this segment are six-extruder co-extrusion blow moulding systems with total output 40–80 kg/h at L/D ratios of 25:1 to 30:1 per extruder and a cylindrical six-layer die head with diameter between 300 mm and 600 mm. Melt temperatures are controlled independently: HDPE layers at 190–210°C, EVOH at 200–220°C, adhesive at 200–210°C; die-head pressure drop is typically 5–12 MPa depending on line speed. Die gap adjustments of 0.5–1.0 mm are used to correct EVOH layer thinning at the pinch line, which is the most frequent production failure mode seen in pressure-decay testing after moulding. The critical operational boundary is the thermal distance between HDPE melt and EVOH degradation: if HDPE melt exceeds 225°C, EVOH thermally decomposes and creates black specks; if HDPE melt falls below 185°C, adhesion to the tie layer fails under ASTM D1876 peel testing. Published data for specific permeation rates in 9307TC-containing six-layer structures is limited at the grade level because fuel tank system certification is part-specific, but the layer continuity requirements above are directly verifiable by cross-section microscopy and oxygen transmission rate measurement.

    Formulation additions in the HDPE layers are limited to carbon black masterbatch at 1–2 wt% and an antioxidant package already stabilized at the resin production stage; no regrind is used in the inner fuel-contact HDPE layer unless its source is internal clean trims. The EVOH layer requires pre-drying to 0.05% moisture content at 80°C for 4–6 h to avoid hydrolytic degradation at processing temperatures. The table below summarizes the layer distribution and the test method used to verify barrier continuity.

    LayerThickness ShareVerification StandardObserved Failure Threshold
    Outer HDPE 9307TC20–30%ISO 1133-1:2022Surface melt fracture below 185°C
    Regrind core40–50%ASTM D1238MFR shift >15% from virgin reference
    Adhesive tie layers1–2% eachASTM D1876Peel strength below 3 N/15 mm
    EVOH barrier1.5–4%ASTM D3985Oxygen transmission rise >5%
    Inner HDPE8–12%ISO 527-2Tensile yield below 26 MPa

    Compliance is anchored to ECE R34 Annex 5 for fire resistance, EPA 40 CFR Part 86 for evaporative emissions as measured by sealed housing evaporative determination, CARB LEV III Article 6, ISO 6970:2021 for hydrocarbon permeation, and SAE J1737 for fuel system leak integrity. Terminal products include blow-moulded fuel tanks for passenger cars and light commercial vehicles, filler necks, and fuel filler pockets. In assembled fuel tank validation, the specific addition ratios of tie layer and EVOH are adjusted not by the HDPE supplier data sheet but by part-level permeation testing, because weld-line placement at the pinch point frequently produces a local EVOH gap that is the primary source of hydrocarbon escape.

    Unlike general-purpose container applications where the polymer wall itself provides sufficient barrier, containers for toluene, xylene, methyl ethyl ketone, and ester-based solvents require surface fluorination of HDPE 9307TC to reduce permeation. Inline fluorination during blow moulding exposes the parison interior to fluorine in nitrogen at 0.1–1.0 vol% for 0.5–3 s, forming a barrier layer with fluorine-to-carbon ratio 0.1–1.0 measured by X-ray photoelectron spectroscopy; the treatment lowers oxygen transmission by 70–95% compared with untreated HDPE and increases surface energy to 50–60 mN/m, which changes wetting and printability after filling. The main production bottleneck on inline fluorination is the reaction exotherm; if internal surface temperature exceeds 70°C, localized etching appears as white haze and reduces drop-impact strength, forcing line-speed reduction or fluorine partial-pressure correction.

    Production equipment for post-mould fluorination consists of sealed reactors operating at 30–60°C and 0.2–1.0 bar fluorine/air partial pressure; cycle times for 1 L bottles range from 3–15 min, with line speeds for inline systems between 600–1200 containers/h. Batch-to-batch variability is controlled by monitoring the fluorine-to-carbon ratio by X-ray photoelectron spectroscopy and by measuring barrier improvement factor through ASTM D3985 oxygen transmission at 23°C/0% RH. On production lines, the most commonly observed failure mode is non-uniform fluorine uptake at the lower pinch seam, where residual flash or incomplete mould cooling creates a locally thicker amorphous region; this can be mitigated by post-mould surface activation checks rather than by increasing fluorine concentration, which raises the risk of embrittlement.

    Formulation additions in this segment are minimized because nucleating or mineral additives create surface inhomogeneities that disturb fluorination uniformity. Carbon black masterbatch is dosed at 0.5–2 wt%, UV stabilizer at 0.3–0.8 wt% for outdoor storage, and antistatic additives are not recommended above 0.1 wt% because their exudation leads to pitting during fluorination. Amine-based antistatic packages are avoided because fluorine reacts with free amines, generating hydrogen fluoride and causing surface pitting. Regrind from fluorinated containers is isolated from non-fluorinated recycling streams and is not reintroduced into food-contact or high-purity service; in closed-loop agchem container production, regrind is limited to 25 wt% after verification that the fluorinated surface does not delaminate under ISO 16101:2004 compatibility testing.

    The applicable compliance package includes UN 6.1.5.2.3 for leakproofness, EPA 40 CFR 156.140 for pesticide containment, ISO 16101:2004 for compatibility testing of plastics packagings, and GHS transport labeling. Terminal products are 1 L, 5 L, and 10 L F-style containers for chlorinated solvents, agrochemical concentrates, and fuel additives. In this segment, operational boundaries are defined by fluorination chamber oxygen content; oxygen levels above 0.5 vol% during treatment create polar surface species that dewet the inner wall and produce visible ring stains after filling.

    When IBC inner bottle wall thickness falls below 2 mm under UN stacking tests

    On accumulator blow moulding lines producing 1000 L IBC inner bottles, HDPE 9307TC is processed at shot weights of 25–40 kg, clamp force 200–400 t, and extruder L/D 30:1. The melt temperature is held at 190–205°C, and parison programming sets wall thickness from 2.0–4.5 mm across the bottle body, with top and bottom pinch regions thickened to 4–6 mm; if the sidewall drops below 2 mm, stacking tests under ISO 12048 show buckling at the lower radius and the container no longer meets UN 31A type-approval. Production audits identify the main downstream bottleneck as flash removal at the pinch line; incomplete flash removal concentrates stress and triggers premature crack initiation during stack vibration, especially in containers that have undergone multiple reuse cycles.

    Formulation addition ratios for IBC service use UV stabilizer masterbatch at 0.5–1.0 wt% for outdoor exposure and processing aid at 0.1–0.3 wt% to suppress melt fracture at high shear in the accumulator die. Closed-loop regrind from IBC trims is restricted to 20 wt% for reusable UN-certified IBCs because higher regrind fractions reduce environmental stress-cracking resistance and increase creep under stacking load. Antistatic concentrates are not used unless surface resistivity must fall below 10^11 Ω per IEC 61340-2-3, and even then compatibility with the container’s environmental stress-cracking resistance is verified by ISO 16770. Heavy-metal-containing color concentrates are excluded from reusable IBC service because residual extractables may transfer into water-based intermediates after long-term contact at 40°C.

    Compliance standards in this segment include UN 31A for IBC type approval, ISO 15867:2003 for intermediate bulk containers, ISO 2247 for vibration, ISO 12048 for stack compression, and ASTM D256 for notched impact. Terminal products are 1000 L UN-certified IBC bottles, 220 L drum liners, and 120 L open-top heavy-wall industrial containers. The operational limit in this segment is reached when mould cooling time is shortened below 8–12 s/mm of wall thickness; faster cycles produce under-cooled outer surfaces that adhere to mould texturing and yield surface roughness outside the acceptable range for stack-load distribution.

    Oxidative induction time, chloride content, and surface pH in diesel exhaust fluid containers

    Diesel exhaust fluid containers blow moulded from HDPE 9307TC must satisfy ISO 22241-4:2023 material compatibility limits for chloride, calcium, magnesium, and aluminium extractables. The grade’s high molecular weight and low melt-flow rate reduce low-molecular-weight extractables into aqueous urea solution; oxidative induction time measured by ASTM D3895 at 200°C is used as a lot-release proxy for thermal stabilization. Production on shuttle blow moulding machines uses extruder L/D 24:1 to 30:1, melt temperature 190–210°C, and mould cooling water 10–20°C to accelerate crystallization and reduce surface roughness. Blow air is filtered to 0.01 µm to prevent oil droplets from contaminating the interior; rinse water after moulding is maintained at 6.5–7.5 pH to avoid leaving ionic residues that would fail extractables testing.

    The most frequent batch-release issue on production lines is not resin-related but arises from inadequate nozzle cooling, which causes spherulitic surface roughness and raises the measured particle count in the filled diesel exhaust fluid. Formulation addition ratios are limited to high-purity color masterbatch at 1–2 wt%; virgin 9307TC is used without post-consumer regrind because of ISO 22241-4 extractable limits. Lubricant concentrates containing calcium stearate are not added above 0.1 wt%, as calcium ion migration will exceed the specification limit of 0.5 mg/L in the finished fluid after 30 days at 40°C. Terminal products include 5 L, 10 L, and 20 L diesel exhaust fluid jugs and 1000 L IBC bottles for automotive and off-highway fluid distribution. Compliance is verified under ISO 22241-4:2023, UN 6.1.5.2.2 for liquid packaging integrity, and ASTM D3895 for oxidative induction time; the practical processing limit is reached when melt temperature rises above 210°C, which increases oxidized surface species and raises the probability of extractable failures at the 0.5 mg/L calcium threshold.

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    Certification & Compliance
    More Introduction

    LyondellBasell HDPE 9307TC is a bimodal polyethylene grade produced through the Hostalen ACP cascade polymerisation route and supplied for extrusion sheet, thermoforming, and blow-molding operations where melt strength, environmental stress-crack resistance, and moderate stiffness are required. The grade is processed on high-density polyethylene equipment, although its solid-state density places it near the HDPE/MDPE boundary. The product designation identifies a density/melt-flow envelope rather than a lot-specific certificate of analysis; production lots are controlled under ISO 1872-1:2010 and must be checked against the supplier’s technical data sheet before process qualification. The polymer architecture contains a high-molar-mass fraction that raises extensional viscosity and slow-crack-growth resistance, together with a lower-molar-mass fraction that provides shear thinning and reduces extruder torque.

    Table 1 lists representative values from the LyondellBasell technical data sheet. The values are not lot-release limits; production variation is permitted within the tolerances of ISO 1872-1:2010. Compression-moulded specimens and conditioned test pieces are used unless otherwise indicated.

    Table 1. Representative properties of LyondellBasell HDPE 9307TC
    PropertyTest methodTypical valueUnit
    DensityISO 1183-1:20190.930g/cm³
    Melt flow rate, 190 °C/2.16 kgISO 1133-1:20220.70g/10 min
    Tensile modulus, 1 mm/minISO 527-2/1B/1900MPa
    Tensile stress at yield, 50 mm/minISO 527-2/1B/5023MPa
    Elongation at yieldISO 527-2/1B/509%
    Charpy notched impact strength, 23 °CISO 179-1/1eA20kJ/m²
    Charpy notched impact strength, −30 °CISO 179-1/1eA8kJ/m²
    Environmental stress-crack resistance, 50 °C, 10 % Igepal CO-630, F50ASTM D1693-15 Condition B>1,000h
    Vicat softening temperature, A50ISO 306:2013127°C

    The density of 0.930 g/cm³ lowers flexural modulus compared with a 0.955 g/cm³ blow-molding HDPE. That reduction is intentional for thermoformed parts in which rigidity can be recovered through ribbing and geometry rather than crystallinity. The melt flow rate of 0.70 g/10 min under ISO 1133-1:2022 is low enough to retain sheet melt strength but high enough to avoid the screw torque and head pressure typical of fractional-melt HDPE grades. The environmental stress-crack resistance above 1,000 h under ASTM D1693-15 Condition B indicates slow-crack-growth performance superior to that of many 0.955 g/cm³ unimodal HDPE grades, which can fail before 150 h in the same test. The Vicat softening temperature of 127 °C under ISO 306:2013 method A50 limits continuous service in hot-fill or high-temperature industrial applications.

    Melt Flow Rate and Density Boundaries in the 9307TC Data Sheet

    The melt flow rate is measured under ISO 1133-1:2022 using a 2.16 kg piston at 190 °C. The 0.70 g/10 min value is a nominal point around which production lots are controlled. On a 90 mm single-screw extruder with a 30:1 L/D barrier screw and a Maddock mixing section, melt pressure at a die temperature of 210 °C typically stabilises between 180 and 240 bar depending on screw speed and screen pack. On a grooved-feed extruder, the pressure can rise by 25–30 % because the grooved barrel shifts the solids-conveying mechanism from drag-induced to force-induced. A gear pump downstream of the screw is recommended to reduce pressure fluctuation and limit shear heating.

    The solid-state density under ISO 1183-1:2019 method A is determined after 24 h conditioning at 23 °C and 50 % relative humidity. At 0.930 g/cm³, the lower crystalline fraction reduces tensile modulus to approximately 900 MPa when measured by ISO 527-2/1B/1. Processors replacing a 0.955 g/cm³ HDPE should expect a reduction in load-bearing capacity of 30–40 % for the same wall thickness. The design response is to increase wall thickness or add ribs; otherwise the part will show excessive deflection under top load.

    Molecular weight distribution is not captured by melt flow rate alone. The Hostalen ACP cascade process produces a bimodal distribution measurable by gel permeation chromatography. In capillary rheometry at 190 °C, the low-shear viscosity is elevated relative to a unimodal HDPE of the same melt flow rate, while the high-shear viscosity approaches that of a conventional 0.7 g/10 min grade. This shear-thinning behaviour allows 9307TC to maintain parison and sheet stability without generating excessive torque at high screw speeds. The effect is most visible at apparent shear rates above 100 s−1, where the melt enters the power-law region.

    Melt temperature on extrusion lines should be held between 190 and 220 °C. Below 185 °C, the high-molar-mass fraction remains partially unmelted, producing surface melt fracture and die lines. Above 230 °C, oxidative degradation accelerates and gel particles may appear after prolonged residence. Polyethylene is not hygroscopic, but surface moisture from uncontrolled storage can create splay in sheet. When relative humidity exceeds 60 %, a 70 °C hopper dryer for 1 h is sufficient. Desiccant drying is not required unless the regrind stream is contaminated with polar materials.

    What Processing Conditions Expose the Lower Melt Strength Limit?

    Thermoforming exposes the lower melt strength limit when sheet surface temperature exceeds 170 °C or when the draw ratio exceeds 3:1. In a plug-assisted forming cell with twin-side quartz heaters, the sheet surface temperature should be held at 150–170 °C. At 175 °C, sag on a 1.5 m sheet becomes measurable because the high-molar-mass fraction relaxes. Plug speed should be kept below 300 mm/s; higher plug speeds produce localised thinning and increase part-to-part gauge variation. Mold temperatures of 40–60 °C allow the sheet to release without excessive crystallinity build-up. At draw ratios above 3:1, wall thickness can fall below 0.8 mm in corner radii unless pre-stretch is optimised.

    Accumulator-head blow molding is feasible for small-to-medium containers, but the lower melt strength sets a sag limit. At a melt temperature of 210 °C, parison hang time should be limited to 8–12 s for a 20 kg shot; sag displacement exceeding 50 mm produces unacceptable wall thinning. Continuous shuttle blow molding with a parison programmer is preferred because the programmable die gap can compensate for sag and improve thickness distribution. Injection molding is restricted to large-gate, short-flow layouts; a melt temperature of 220–240 °C and a mold temperature of 30–50 °C are starting points, but high viscosity increases injection pressure and may require higher clamp force per unit cavity area.

    When Coextrusion Demand Exceeds the Thermal Stability of a 0.930 g/cm³ Grade

    Multi-layer coextrusion that pairs 9307TC with a higher-density cap layer creates an interfacial viscosity mismatch. When the cap layer has a density of 0.955 g/cm³ and an MFR of 0.30 g/10 min, the viscosity ratio at 210 °C can exceed 1.5 at shear rates below 50 s−1, causing interfacial waviness in polished-roll sheet. The mismatch is reduced by raising the 9307TC melt temperature to 220 °C or by designing the feedblock so that both melt streams arrive at matched shear rates above 100 s−1.

    Thermal stability is governed by the additive package. Prolonged melt residence above 240 °C accelerates peroxide decomposition and can shift the carbonyl index observed by FTIR. Acceptable residence time at 240 °C is typically 8–10 min; at 260 °C, gel particles may appear within 3–5 min as a result of localised oxidation. These limits are not product specifications but are operating boundaries observed on production lines. Regrind from thermoformed scrap may be re-introduced at 10–20 wt% without measurable loss in Charpy impact, provided the regrind is dry and free of labels. Above 30 wt%, gauge variation can increase because regrind particles alter melt viscosity and melt elasticity.

    Table 2. Comparison with representative polyethylene process families
    PropertyHDPE 9307TCConventional HDPE blow-molding gradeConventional HDPE injection-molding grade
    Density (ISO 1183-1:2019)0.930 g/cm³0.955 g/cm³0.960 g/cm³
    Melt flow rate (ISO 1133-1:2022)0.70 g/10 min0.30 g/10 min8.0 g/10 min
    Tensile modulus (ISO 527-2/1B/1)900 MPa1,500 MPa1,700 MPa
    ESCR (ASTM D1693-15 Condition B)>1,000 h150 h30 h
    Primary processextrusion sheet/thermoformingextrusion blow moldinginjection molding

    The comparison shows that 9307TC is not a drop-in replacement for either conventional HDPE family. A blow-molding grade with 0.955 g/cm³ density and 0.30 g/10 min MFR will have higher top-load strength and better hot-fill tolerance, but lower stress-crack resistance and lower thermoforming ductility. An injection-molding grade with 8.0 g/10 min MFR will fill multi-cavity tools at lower pressure, but its lower melt strength makes it unsuitable for sheet extrusion. The 9307TC position is therefore an intermediate processing window; the product is intended for non-pressurised large-part thermoforming, moderate blow molding, and profiles where slow-crack-growth resistance is more important than rigidity.

    Extrusion lines running 9307TC for outdoor storage bins, pallets, and automotive interior panels have reported stable output at screw speeds between 60 and 90 rpm on a 90 mm extruder, with melt temperatures at the die of 205–215 °C. The lower density reduces shipping weight but requires thicker walls to meet the same flexural modulus. Processors should validate each lot against the datasheet values in Table 1 rather than relying on the generic product designation. Food-contact applicability should be confirmed by the supplier under 21 CFR 177.1520; the presence of a product code does not itself constitute approval. For industrial non-food applications, compliance with REACH Article 33 and RoHS 2011/65/EU should be verified by lot-specific documentation.

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