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PCC (Iran) HDPE 60507

    • Product Name: PCC (Iran) HDPE 60507
    • 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 341019
    Density 0.960 g/cm3
    Melt Flow Rate 190c 2 16kg 7.5 g/10 min
    Tensile Strength At Yield 28 MPa
    Elongation At Break 700%
    Flexural Modulus 1400 MPa
    Izod Notched Impact Strength 50 J/m
    Vicat Softening Temperature 125°C
    Heat Deflection Temperature 75°C
    Shore D Hardness 65
    Melting Temperature 132°C
    Water Absorption <0.01%
    Dielectric Constant 2.3
    Volume Resistivity >10^15 ohm·cm
    Thermal Conductivity 0.45 W/m·K
    Coefficient Of Linear Thermal Expansion 1.2E-4 /°C
    Mold Shrinkage 1.5-3.0%

    As an accredited PCC (Iran) HDPE 60507 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing PCC (Iran) HDPE 60507 packaging: 25 kg polyethylene bags, palletized, stretch-wrapped, and labeled for safe transport.
    Container Loading (20′ FCL) 20′ FCL loading: PCC (Iran) HDPE 60507 in 25kg bags, palletized, shrink-wrapped, secured, max 25 MT per container.
    Shipping High-density polyethylene (HDPE) 60507, PCC Iran, is a non-hazardous solid polymer. It is not regulated as dangerous goods, so no UN number, hazard class, or packing group is required. Ship in dry, sealed 25 kg bags on pallets, protected from moisture, heat, and direct sunlight. Include SDS and COA.
    Storage Store PCC (Iran) HDPE 60507 in a cool, dry, well-ventilated warehouse. Keep original bags closed and palletized off the ground. Protect from direct sunlight, heat, flames, ignition sources, and strong oxidizers. Avoid moisture, dust, and contamination. Maintain ambient temperature, observe safe stacking limits, and rotate stock. Follow manufacturer’s SDS and local regulations.
    Shelf Life PCC (Iran) HDPE 60507: typical shelf life 24 months when stored unopened in original packaging, cool, dry, ventilated, away from direct sunlight.
    Application of PCC (Iran) HDPE 60507

    On single-station shuttle blow moulding machines fitted with accumulator heads and 24:1 L/D barrier screws, PCC HDPE 60507 is brought to melt with a temperature profile that falls from 185 °C in the feed zone to 175 °C in the transition zone and then rises to 210 °C at the die head. The die ring is held at 190–210 °C. This profile is selected to limit residence-time degradation of the high-molecular-weight fraction while keeping sufficient melt elasticity for parison hang times of 8–14 s on 25 L jerrycan tools. Incoming melt index measured per ISO 1133-1 at 190 °C under 2.16 kg load and density measured per ISO 1183-1 are used for lot acceptance, but die swell and parison sag under production tooling correlate more reliably with high-load melt flow ratio and melt strength measurements. Parison programming with 50–100 longitudinal points redistributes the melt between the handle pinch-off and the bottom weld zone. Blow pressure is set at 0.55–0.85 MPa; mould water is maintained at 10–20 °C. For a 25 L chemical jerrycan, cooling time shorter than 18–25 s produces top-load failure at the handle bridges and increases post-demoulding warpage. The part is conditioned for 24 h at 23 °C and 50% relative humidity before dimensional checks.

    Actual melt temperature at the die head is usually 10–20 °C higher than the barrel set point because of shear heating in the accumulator head. On a 90 mm extruder, screw speed is commonly held in the range of 40–70 rpm for this grade; operation above that range can generate gel particles and surface roughness on the parison. The accumulator head is filled to 70–80% of maximum shot capacity per cycle to avoid prolonged residence time and batch-to-batch die swell drift. Where the container is qualified for dangerous goods transport, the design-type test sequence includes drop tests at 1.2 m for packing group II liquids, stack tests at 40 °C for 28 days, and hydraulic pressure tests per 49 CFR 178.604 and ADR 6.1.5.4; acceptance is defined by no leakage and no deformation that would compromise the closure or the stacking interface.

    What ESCR Threshold Separates Agrochemical Pack Compositions from Household Cleaner Pack Compositions?

    The separation is not determined by blow moulding machine size but by the chemical activity of the packaged liquid. Household cleaner bottles are normally blown at wall thicknesses of 0.6–1.2 mm, while emulsifiable concentrate pesticide packs and solvent-containing agrochemical formulations require 1.4–2.2 mm walls and a heavier parison to compensate for stress crack propagation at the pinch-off weld. Under ASTM D1693 condition B at 50 °C in 100% Igepal CO-630, notched specimens from household chemical bottles often carry a minimum failure time of 300 h, whereas agrochemical procurement specifications require values above 1,000 h or no failure before 2,000 h when xylene, cyclohexanone, or high-load surfactants are present. These thresholds are commercial acceptance limits, not universal ISO minima, and must be fixed with the end user before lot qualification. Mould temperature is set at 8–15 °C for household bottles to shorten cycle time; agrochemical packs use 15–25 °C to reduce frozen-in stress at the parting-line weld.

    Comparative downstream acceptance windows for PCC HDPE 60507 container classes
    Container classNominal wall thicknessMould water temperaturePrimary ESCR methodPost-mould leak or pressure test
    Household cleaner bottle 0.5–1.0 L0.6–1.2 mm8–15 °CASTM D1693 condition B30–50 kPa air under water for 5–10 s
    Agrochemical EC pack 1.0 L1.4–2.2 mm15–25 °CASTM D1693 condition B plus ISO 1677050–80 kPa air under water for 10–15 s
    UN-certified jerrycan 25 L1.8–3.0 mm10–20 °CISO 16770 at 4 MPahydraulic pressure per 49 CFR 178.604
    IBC inner bottle 1000 L2.5–4.5 mm12–22 °CISO 16770 plus ASTM D256 impactstack and drop tests per UN 31A/Y

    In-line fluorination or post-mould fluorine treatment is applied to many monolayer agrochemical packs to reduce hydrocarbon permeation. Fluorination can reduce weight loss of xylene-containing formulations by a factor of 2–5, but excessive treatment reduces weld strength and creates a brittle inner surface. Environmental stress crack resistance should therefore be re-tested after fluorination, not only on untreated laboratory plaques. Process monitoring for this class includes parison weight, wall thickness distribution at six measurement points, and drop impact at −18 °C for packs shipped in cold climates. Drop tests are performed per ASTM D5276 or customer-specific method; leak tests are run with air pressure at 50–80 kPa under water for 10–15 s. A common production failure is visible micro-cracking at the bottom weld after 72–168 h of contact with the packaged surfactant; this failure is not always detected by a short leak test and highlights the need for ESCR testing on production samples, not only on compression moulded sheets.

    When HDPE 60507 Is Substituted in Multi-Layer Barrier Container Shells for Solvent-Borne Surface Coatings

    Substitution of PCC HDPE 60507 as the structural shell layer in coextruded paint thinner and mineral spirits containers requires evaluation of melt viscosity matching at the layer interfaces. The HDPE layer is processed at 190–210 °C, while EVOH barrier melt is held at 200–220 °C and tie resin at 195–215 °C. The continuous blow moulding line is normally configured with six extruders feeding a spiral mandrel die; the HDPE outer layer and the HDPE inner layer are separated from the regrind stream to avoid barrier contamination. Layer distribution for a 1–5 L bottle is typically outer HDPE 30–40%, regrind 35–50%, tie resin 2–3% per adhesive layer, EVOH or PA barrier 3–5%, and inner HDPE 5–10%. If the melt viscosity ratio between adjacent layers exceeds approximately 3:1, interfacial waviness appears as circumferential bands on the sidewall; the die gap must then be adjusted from 1.2 mm to 2.5 mm or the barrel temperature profile shifted. Regrind incorporation in the structural layer above 50% reduces the high-molecular-weight fraction and produces visible parison sag instability on large bottles.

    Solvent permeation is not captured by oxygen transmission rate tests alone; gravimetric permeation cells with mineral spirits at 40 °C or 60 °C are used to compare monolayer and multilayer designs. HDPE 60507 alone is insufficient for low-permeation certification of aggressive solvents, but it provides the low-temperature impact resistance and weld integrity that barrier layers cannot supply. Post-mould contamination tests for xylene and ethylbenzene are conducted by headspace gas chromatography after 7 days of storage at 40 °C. The structural layer must also pass the drop test at 1.2 m after conditioning at −18 °C to ensure that barrier cracking does not propagate through the HDPE shell. Published data for this specific grade in multilayer solvent containers is limited; end users should qualify each layer ratio with production-line trials, not with monolayer laboratory data.

    For automotive windscreen washer reservoirs and ancillary fluid containers, PCC HDPE 60507 is processed on extrusion blow moulding machines with moving core pins and needle blow pins. Wall sections are specified at 2.0–3.5 mm to retain threaded inserts and withstand vibration at frequencies up to 50 Hz; the mould runs at 12–18 °C and cooling time is extended to 25–40 s to reduce post-mould shrinkage at the pump grommet opening. Leak testing is performed at 150–200 kPa with the part submerged in water for 10–20 s. The limiting failure mode on production lines is incomplete fusion at the parting line when the die temperature falls below 190 °C; the high-molecular-weight melt does not fully knit at the pinch-off zone, and the resulting micro-voids are detected as small air leaks under pressure. Die swell variation between lots can change weld flash thickness by 0.3–0.8 mm if parison programming is not reset after a batch change. The grade is not recommended for engine coolant surge tanks or fuel reservoirs where continuous service exceeds 80 °C and evaporative emission limits apply; those positions require polyamide or multilayer high-density polyethylene structures with greater high-temperature creep resistance and lower hydrocarbon permeation.

    Accelerated heat aging for washer reservoirs is performed at 80 °C for 500 h; after aging, tensile elongation at yield is measured per ISO 527-2 and must remain above 50% of the unaged value. Impact testing at −18 °C per ISO 8256 or ASTM D1822 is used to screen lots that will ship to cold regions. The processing window is narrower than for thin-wall household bottles because the heavier parison retains heat longer; cooling time must be experimentally mapped against part weight and mould temperature rather than transferred from smaller containers.

    IBC Inner Bottle Extrusion and Post-Mould Dimensional Stability

    In composite intermediate bulk container manufacture, high-molecular-weight HDPE inner bottles of 1000 L capacity are blow moulded on machines with shot capacities above 30 kg and clamps rated above 300 t. The cycle time covers 180–300 s, with cooling occupying 60–70% of the cycle. Wall thickness distribution is specified from 2.5 mm in the upper sidewall to 4.5 mm at the bottom corners. Die gap programming must be repeated after every screw replacement or head cleaning because a constant parison wall produces excessive thinning at the bottom radius and reduces top-load capacity below 15 kN at 23 °C. Post-mould shrinkage of 1.5–2.0% occurs over 48 h; dimensional acceptance is therefore measured on conditioned parts at 23 °C and 50% relative humidity, not immediately after demoulding. The outer steel cage and pallet are assembled only after the bottle reaches dimensional stability; otherwise the cage may dish the sidewalls and create stress concentrations at the top rim.

    The assembled composite IBC is qualified under UN 31A/Y or equivalent transport design type. Drop tests for packing group II liquids are carried out at 1.2 m; stack tests are run at 40 °C for 28 days; leakproofness is verified after each sequence. ESCR testing per ISO 16770 at 4 MPa and 80 °C in 2% Arkopal N100 is performed on sidewall samples cut from the actual bottle because compression moulded plaques do not reproduce the orientation and residual stress at the pinch-off weld. A common production bottleneck is bottle neck ovality above ±2 mm after cooling; this is controlled by mould temperature uniformity and increased cooling time at the neck ring, not by increasing melt temperature. Published data for this specific grade in IBC liner applications is limited, and lot-specific stress crack testing is required before switching suppliers or regrind ratios.

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    Certification & Compliance
    More Introduction

    PCC (Iran) HDPE 60507 is a high-density polyethylene grade referenced in commercial technical summaries under the supplier designation Petrochemical Commercial Company Iran. The grade is commonly characterized as a low-melt-flow blow-molding and sheet-extrusion resin with a published melt flow index of 0.7 g/10 min determined at 190 °C under a 2.16 kg load in accordance with ISO 1133-1:2022. A density of 0.960 g/cm³ is frequently listed under ISO 1183-1:2019. These two values place the material in the high-density homopolymer range where short-chain branching is minimal, crystallinity is relatively high, and mechanical stiffness is greater than that of linear-low-density grades of equivalent melt-flow index. Because PCC may function as a trading or supply-chain organization rather than as the sole polymerization source, the certificate of analysis should be obtained for each shipment to identify the producing complex, the actual molecular-weight distribution, and the stabilizer package. Published data for this specific configuration is limited for long-term hydrostatic strength and fatigue crack-growth behavior, so design in load-bearing applications should not proceed on the basis of generic high-density polyethylene published curves alone.

    Thermal and Rheological Benchmarks Establish the Processing Window

    Interpretation of the nominal 0.7 g/10 min melt flow index must account for the ratio of the 21.6 kg load to the 2.16 kg load, sometimes reported as flow-rate ratio. In high-density polyethylene, a broader molecular-weight distribution generally increases die swell and parison sag resistance at the expense of surface gloss. The temperature window for this resin class should begin at 180 °C in the rear barrel zones and rise no higher than 210 °C at the metering zone and head, with melt temperatures above 220 °C reserved only for low-residence-time operations. On a single-screw extruder with a 24:1 L/D barrier screw, pellets should be fed through a water-cooled hopper throat maintained below 60 °C because high-density polyethylene pellets can soften and bridge when exposed to return heat from the feed section. A melt-temperature sensor placed in the adaptor should record no more than 5 °C deviation across a 30 min steady-state period; larger swings typically indicate screw-speed surge or heater-band failure. For injection molding trials, a starting barrel profile of 190 °C to 210 °C and a mold temperature between 20 °C and 40 °C produce a practical balance between flow and shrinkage. Cavity-pressure assumptions of 300 bar to 500 bar should be used for initial clamp-force calculations.

    Extrusion blow molding of HDPE 60507 requires attention to parison formation and tooling clearances. For a target wall thickness of 1.0 mm, a die gap of 1.5 mm to 2.0 mm and a land length-to-gap ratio between 10:1 and 15:1 are typical starting points for high-density blow-molding grades of this melt-flow class. Parison swell for broad-molecular-weight HDPE is often observed between 1.3 and 1.6, though the exact swell ratio for HDPE 60507 must be measured on the production die because it varies with shear history and die geometry. Accumulator-head machines should maintain melt pressure at the head below 400 bar to avoid excessive shear heating. If parison drawdown exceeds 10 % over a 1.5 s pre-blow delay on a 300 mm parison length, the melt temperature should be reduced in 5 °C increments rather than making larger changes that disrupt wall-thickness distribution. These are practical starting conditions and should be replaced by lot-specific processing data.

    Where Does HDPE 60507 Stand Relative to Blow-Molding HDPE 5000S and Pipe-Grade PE100?

    Compared with widely referenced high-density polyethylene grades, HDPE 60507 combines a higher melt flow index with a higher density than many blow-molding grades. HDPE 5000S is typically reported with a melt flow index near 0.35 g/10 min and a density near 0.954 g/cm³, which gives it greater parison hang time on large containers but lower stiffness and hardness. PE100 pipe-grade polyethylene is usually positioned below 0.3 g/10 min and is formulated for long-term hydrostatic strength and resistance to slow crack growth, making it unsuitable for short-cycle blow molding. The higher density of HDPE 60507 contributes to tensile yield stress and flexural modulus, but it can reduce resistance to rapid crack propagation at low temperature. The following table compares typical literature values only and must not be interpreted as a substitute for an actual certificate of analysis:

    PropertyHDPE 60507HDPE 5000SPE100 pipe-grade
    Melt flow index at 190 °C, 2.16 kg0.7 g/10 min0.35 g/10 min0.25 g/10 min
    Density0.960 g/cm³0.954 g/cm³0.959 g/cm³
    Tensile yield stress28 MPa typical for density class26 MPa typical25 MPa typical

    Mechanical property benchmarks for a high-density homopolymer with a density of 0.960 g/cm³ typically fall in the following ranges: tensile yield stress from 26 MPa to 30 MPa under ISO 527-2:2012 on a type 1B specimen, flexural modulus from 1200 MPa to 1500 MPa under ISO 178:2019, and notched Izod impact from 4 kJ/m² to 6 kJ/m² at 23 °C under ISO 180:2019. These are generic density-class values and should not be treated as HDPE 60507 product values. Environmental stress-crack resistance, often measured by ASTM D1693-15, is particularly sensitive to comonomer content, crystallinity, and cooling rate; a higher-density homopolymer may have lower ESCR than a lower-density but-1-ene-modified blow-molding grade. Processors who require detergent-bottle resistance should request a conditional ESCR value or a full notch-creep test conducted at 50 °C in a specified surfactant.

    Capillary Rheometry and Sag-Rate Criteria for Bottle Tooling Design

    Steady-shear viscosity for a 0.7 g/10 min high-density polyethylene at 190 °C and 100 s⁻¹ is commonly reported between 800 Pa·s and 1200 Pa·s in capillary-rheometry summaries, but product-specific curves for HDPE 60507 must be measured from the lot in use. The shear-thinning index across 100 s⁻¹ to 1000 s⁻¹ offers a practical way to detect batch shifts; a steep drop in viscosity with increasing shear rate may indicate broader molecular-weight distribution, while a flatter curve is associated with narrower distribution. For tooling verification, a parison-sag test using a 300 mm parison and a 1.5 s delay can detect shifts in zero-shear viscosity. If the parison diameter narrows by more than 10 % before mold closing, the batch should be rechecked for melt flow index and moisture. Such boundary checks are not product acceptance tests; they are in-house diagnostics that detect lot-to-lot variability before production scrap accumulates.

    Sheet extrusion of HDPE 60507 on a three-roll stack benefits from roll temperatures held between 70 °C and 90 °C for surface replication while retaining adequate melt strength for gauge uniformity. High-density sheet of this density class can be drawn to 0.5 mm gauge on polished rolls, but edge tear may increase if die-lip temperatures fall below 190 °C. A die gap set at 1.2 mm for a 1.0 mm sheet is a typical initial setting, with draw ratio adjusted to control clarity and thickness. Batch-to-batch changes in melt flow index of only 0.1 g/10 min can alter roll-bank size and should be compensated by screw-speed or die-gap adjustments during the first three minutes of the run.

    When Lot-to-Lot Differences in Additive Package Affect Food-Contact and REACH Documentation

    Because HDPE 60507 may be supplied from different production sources under the PCC designation, food-contact and regulatory status should be verified for each lot. Olefin polymers intended for food-contact use may be referenced under FDA 21 CFR 177.1520 when supplied with appropriate support documentation; however, the final article must also meet end-use extraction limits. European food-contact simulation under EU Regulation 10/2011 Annex III and Annex V requires that migration tests be performed using the actual article and processing conditions, not merely the base resin. The ash content measured by ISO 3451-1:2019 can indicate the presence of fillers or catalyst residues that may affect organoleptic properties or color. For electrical and electronic components, RoHS Directive 2011/65/EU compliance should be confirmed for the specific additive and pigment package because heavy-metal stabilizers can be introduced through masterbatch even when the base resin is compliant. REACH registration documentation should be requested from the supplier for the specific grade and packaging lot.

    Regrind management on blow-molding lines processing HDPE 60507 should begin with a conservative blend of 20 wt% recycled scrap. Higher regrind fractions may be acceptable if the processor tracks melt flow index, density, and ESCR after every 100 kg of regrind flake. Mixed-color regrind can increase the risk of stress-cracking under load and should not be used in containers holding aggressive liquids. When molding thin-wall parts with a flow-length-to-wall-thickness ratio above 150:1, higher melt temperatures up to 210 °C and faster injection velocities may be needed, but published data for this specific configuration is limited. Processing at relative humidity above 60 % may require hopper pre-drying at 80 °C for 2 h to prevent surface defects on high-gloss output.

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