| HS Code | 317004 |
As an accredited Marun Petrochemical (Iran) HDPE 8007M factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Marun Petrochemical (Iran) HDPE 8007M: typically packaged in 25 kg polyethylene-lined PP woven bags, palletized and shrink-wrapped for export. |
| Container Loading (20′ FCL) | Container loading (20′ FCL) for Marun Petrochemical (Iran) HDPE 8007M: 18 MT net in 25 kg bags, typically 720 bags. |
| Shipping | Marun Petrochemical (Iran) HDPE 8007M is a non-hazardous high-density polyethylene resin. It is typically shipped in 25 kg PP bags or 1,000 kg jumbo bags, palletized and stretch-wrapped, in 20'/40' containers or bulk trucks. Keep dry, away from heat and direct sunlight. Not classified as dangerous goods for transport. |
| Storage | Store Marun Petrochemical HDPE 8007M in a cool, dry, well-ventilated area away from direct sunlight, heat, ignition sources, and oxidizing agents. Keep original packaging sealed to prevent moisture and contamination. Avoid prolonged UV exposure and extreme temperatures. Stack securely to prevent deformation or bursting. Use clean handling equipment; maintain good housekeeping. Consult the SDS for detailed local requirements. |
| Shelf Life | Stable under normal storage; shelf life typically 24 months in original unopened packaging, kept cool, dry, and away from sunlight. |
Marun Petrochemical HDPE 8007M, with a nominal melt flow index of 0.7 g/10 min at 190°C/2.16 kg per ISO 1133-1:2022 and a nominal density of 0.958 g/cm³ per ISO 1183-1:2019, is transferred as pellets into the hopper of a shuttle or accumulator-head blow-moulding line for industrial tight-head containers. The screw configuration on a 70–90 mm diameter extruder is a barrier design with a compression ratio between 3.0:1 and 3.5:1, an L/D of 28:1 to 32:1, and a grooved feed bushing that stabilises solids conveying at screw speeds from 35 rpm to 65 rpm. Barrel set points are profiled from 170–185°C in the feed zone to 195–205°C in the metering zone, with the accumulator head and die tooling held at 195–210°C; measured melt temperature before parison exit is normally 185–200°C. The accumulator programme controls axial wall thickness through a die gap that opens from 0.8 mm to 1.5 mm, while radial thickness uniformity is determined by die centering and land length. Mould cooling water is supplied at 12–18°C, blow air is applied at 6–8 bar, and a 20 L jerrycan typically cycles in 55–75 s on a single-station line. The grade does not require predrying in closed silo storage; however, if regrind is added above 30 wt% or stored in an unheated warehouse at relative humidity above 60%, surface moisture on flake can generate pockmarks and splay at the pinch-off zone.
The finished container is a tight-head jerrycan with a screw cap injection moulded from polypropylene and an EPDM or polyethylene foam gasket. The design type is approved under dangerous goods transport regulations; the marking is embossed as 3H1/Y1.5/100 or 3H1/Z1.8/100 depending on the packing group and liquid relative density. The walls, handle, and bottom chime are subjected to drop testing per the UN Model Regulations Chapter 6.1 and the Manual of Tests and Criteria, Part III, hydrostatic pressure testing per the design-type schedule, and stack compression after storage at 40°C for 28 days. Environmental stress-cracking resistance is assessed on compression-moulded plaques per ASTM D1693-15 Condition B with 100% Igepal CO-630 at 50°C; supplier documentation for 8007M gives a median failure time above 1000 h. For coloured containers, a carbon black or phthalocyanine blue masterbatch is metered at 1.5–3.0 wt% with a gravimetric additive feeder, and the concentrate carrier is matched to the base resin density to prevent local viscosity streaks.
Agricultural emulsifiable concentrate formulations based on aromatic hydrocarbon solvents create a specific failure mode in monolayer high-density polyethylene: the solvent plasticises the amorphous tie-chain regions, lowers sidewall modulus, and permits asymmetric inward deflection once headspace pressure falls. The 0.958 g/cm³ density of 8007M provides a moderate crystallinity barrier, but this alone is insufficient for oxygenated solvents such as cyclohexanone or alkyl-substituted aromatics. Inline fluorination is therefore applied during parison blowing, replacing surface carbon–hydrogen bonds with carbon–fluorine bonds to a depth of 0.1–0.5 µm without altering bulk mechanical properties. The fluorine is diluted in nitrogen at 0.1–2.0 vol% F₂ and injected into the parison through a dedicated gas panel with flow interlocks, double block-and-bleed valves, and continuous fluorine analyser sampling. The treatment converts the inner wall into a low-surface-energy barrier that reduces solvent migration and extends the time before visible paneling occurs.
On the blow-moulding line, the fluorination step forces the melt exit temperature toward the lower end of the window, generally 180–190°C, because trace oxygen or moisture at higher temperatures accelerates oxidative chain scission and parison hole formation. Die head cleanness is critical; buildup of fluorinated low-molecular-weight species on the mandrel produces longitudinal die lines that nucleate environmental stress cracks. Container permeation is validated by gravimetric coupon or bottle testing according to ASTM D2684-15 with the actual commercial formulation, not a single solvent surrogate. The finished product is a 1 L, 5 L, or 10 L tight-head container for crop protection liquids, carrying the same UN design-type marking as non-fluorinated containers. Closure selection must be considered independently: the fluorinated inner wall does not compensate for a polypropylene liner that swells in the specific solvent, and liner compression set after 90 days at 40°C is included in the approval matrix.
Automotive coolant reservoirs and windscreen washer bottles blow-moulded from 8007M require a different tooling and cooling strategy than thin-wall household containers because the part wall is typically 2.5–4.0 mm and the pinch-off flash is heavier. The melt is processed on a dual-station shuttle or accumulator line with cartridge-heated die heads and parison programming split into 10 to 20 axial points. For a reservoir with a shot weight of 350–800 g, barrel temperatures are set from 175°C to 205°C, the head is held at 195–210°C, and blow air is applied at 8–10 bar. Mould circulating water is maintained at 15–25°C to control flatness on the mounting face; lower mould temperatures improve cooling time but increase sink marks around ribs and inserts. Hot ethylene glycol–water coolant at 50–60 vol% glycol exerts swelling and stress-cracking loads, so the design must avoid sharp transitions at the tail pinch-off and at the parting line. Inserted quick-connect ports are held to ±0.10 mm internal diameter tolerance, which requires post-mould cooling fixtures rather than free shrinkage after ejection. The finished part is validated by thermal cycling between −40°C and 100°C with a 50 vol% glycol solution for a number of cycles defined in the end-user specification; published data for 8007M under a single OEM thermal-cycle protocol is limited, so first-article approval testing is required for each reservoir geometry.
Sodium hypochlorite solutions at 3–5 wt% available chlorine and pH 11.0–12.5 produce oxidative stress cracking at the pinch-off weld and at sidewall flex points in blow-moulded bottles. The long median failure time of 8007M in ASTM D1693-15 Condition B testing, above 1000 h, is necessary but not sufficient; bottle performance is controlled by the geometry of the tail flash and the cooling rate at the parting line. Moulds for bleach and alkaline detergent containers are built with a pinch-off land angle that compresses the flash to 0.3–0.6 mm without creating a knife-edge residual stress line. The parison is inflated at 7–9 bar, and the mould is cooled with water at 10–18°C to freeze the weld before the solidified flash is trimmed. For a 5 L bottle with a 38/21 mm neck finish, the cycle time on a shuttle line ranges from 18 s to 25 s. Post-mould conditioning is avoided where possible, because thermal annealing at temperatures above 70°C can reduce residual stress but also alters bottle volume and neck roundness.
The formulation is typically natural resin with a light-protective white masterbatch at 2–4 wt% titanium dioxide and a phenolic/phosphite stabiliser package already present in the base grade. No slip additive beyond 500 ppm is added because surface exudation into hypochlorite can increase oxidation initiation. Each production lot is sampled for ESCR after moulding by cutting panels from the sidewall and exposing them to 5 wt% NaOCl at 50°C for 90 days; published data for 8007M specifically in this configuration is limited, so comparative testing against a known ESCR reference is required for lot release. The finished product is a cylindrical or handled bottle with a vented closure, labelled for household or industrial cleaning, and marked with the resin identification code 2 in accordance with ISO 11469:2016.
| Application | Equipment configuration | Melt temperature range | Mould/cooling temperature | Blow pressure/vacuum | Cycle time |
|---|---|---|---|---|---|
| UN-certified jerrycans | Accumulator head, 70–90 mm barrier screw, L/D 28:1–32:1 | 185–200°C | 12–18°C | 6–8 bar | 55–75 s for 20 L |
| Fluorinated agchem containers | Shuttle or accumulator with F₂/N₂ inline gas panel | 180–190°C | 10–16°C | 6–8 bar | 25–45 s for 5 L |
| Coolant reservoirs | Dual-station shuttle, 10–20 point parison programmer | 185–200°C | 15–25°C | 8–10 bar | 35–55 s for 500 g shot |
| Hypochlorite bottles | Shuttle blow moulder, calibrated neck tooling | 180–195°C | 10–18°C | 7–9 bar | 18–25 s for 5 L |
| Sheet extrusion/thermoforming | 90–120 mm single screw + melt pump, 3-roll stack | 180–220°C barrel, 200–215°C die | 75–95°C roll, 20–40°C mould | −0.8 bar vacuum | Forming 10–30 s |
| Rotary-wheel home care bottles | 50–70 mm extruder, vertical wheel, central head | 180–200°C | 5–12°C blow pin | 0.2 bar leak test | 6–10 s for 500 mL |
Direct sheet extrusion of 8007M is run on a 90–120 mm single-screw extruder with a 30:1 to 33:1 L/D, a barrier screw, an 80–120 mesh screen changer, and a melt pump to reduce surge. The low melt flow index of 0.7 g/10 min supports thick sheet calipers above 2 mm because the melt exhibits limited draw-down sag between the die lip and the polishing stack. Barrel zone temperatures are set from 180°C to 220°C, the flexible lip die is held at 200–215°C, and the three-roll stack is operated at 75–95°C with roll gaps controlled by hydraulic pressure. Sheet thickness between 2 mm and 6 mm is measured by a scanning beta gauge and maintained to ±0.15 mm. Vacuum forming of the sheet is performed at a surface temperature of 150–170°C, using plug-assisted tools with vacuum at −0.8 bar gauge and mould cooling at 20–40°C. The formed tray is intended for returnable logistics and is designed with ribs and stack lugs to prevent sticking during multiple cleaning cycles. Food-contact compliance is evaluated under 21 CFR §177.1520(c) and Commission Regulation (EU) 10/2011 with specific migration testing according to the intended food type and contact time; the base grade is used only where the converter has issued a conformity declaration for the final article.
High-output rotary-wheel extrusion blow moulding of 250 mL to 1 L household cleaner bottles uses 8007M only when the formulation contains surfactants or mild solvents that rule out low-ESCR commodity grades. The wheel line is configured with a 50–70 mm extruder running at 180–200°C measured melt temperature, a screen pack of 40/60 mesh, and multiple clamped moulds rotating on a vertical turret. The melt is fed to a central distribution head, and each mould station clamps at 15–25 t. Bottle weight is controlled by parison wall thickness, and neck calibration is carried out with cooled blow pins at 5–12°C. Cycle time per station for a 500 mL bottle is typically 6–10 s; the limiting factor is bottle release rather than extrusion, because the grade retains heat in the pinch-off and neck areas. The finished bottle is flash-trimmed in the mould, leak-tested at 0.2 bar pressure, and packed immediately to avoid floor storage that can contaminate the neck. The application is confined to ambient-fill household detergents and fabric softeners; hot filling above 65°C is not recommended because the thick neck and base sections are not designed for elevated fill temperatures.
When a converter compounds 15–30 wt% clean post-consumer HDPE recyclate with 8007M for non-food industrial containers, the melt flow index of the blend moves and the die head pressure increases because the recyclate contains high-molecular-weight fractions and trace gels. Pre-compounding is carried out on a twin-screw extruder with an L/D of 30:1 to 36:1, a vacuum vent at −0.8 bar, and a 60/120 mesh screen pack. The compounder targets a pellet MFI within ±0.15 g/10 min of the virgin 8007M value, and the density is held between 0.950 g/cm³ and 0.960 g/cm³ to avoid floaters in the blow moulder feed. The pre-compounded material is then processed on the same accumulator-head lines used for UN packaging, but the melt temperature is reduced by 5–10°C and the barrel back pressure is increased to homogenise gel particles. Parison surface defects increase when the gel count in the blend exceeds approximately 100 ppm; therefore, recycled feedstock is limited to sorted natural or light-coloured container scrap with a melt filtration history and an oxidative induction time above 20 min at 200°C per ISO 11357-6:2018.
The finished containers are designated non-food and are used for technical products such as lubricants, greases, liquid detergents, or water treatment chemicals. UN design-type approval is only valid when the recyclate-containing formulation is included in the approval test series; a certificate issued for a virgin 8007M container does not automatically extend to the recycled blend. Compliance with REACH is required for each batch because post-consumer material may contain legacy substances, and the converter must document feedstocks and SVHC screening under Regulation (EC) No 1907/2006 and Directive 2008/98/EC. The final article is marked with the resin identification code 2 and, where required, the alphanumeric code for the recyclate content claim under ISO 14021:2016.
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