| HS Code | 757863 |
| Density | 0.962 g/cm³ |
| Specific Gravity | 0.962 |
| Melt Flow Rate 190 C 2 16 Kg | 0.7 g/10 min |
| Melting Point | 132 °C |
| Vicat Softening Temperature | 125 °C |
| Tensile Strength At Yield | 28 MPa |
| Tensile Elongation At Break | >600 % |
| Flexural Modulus | 1200 MPa |
| Notched Izod Impact Strength 23 C | 20 kJ/m² |
| Hardness Shore D | 65 |
| Environmental Stress Crack Resistance Escr | >1000 h |
| Thermal Conductivity | 0.43 W/m·K |
| Water Absorption | <0.01 % |
| Mold Shrinkage | 1.5-3.0 % |
| Crystallinity | 70-80 % |
| Volume Resistivity | >10^15 ohm·cm |
| Dielectric Constant 1 Mhz | 2.3 |
| Dissipation Factor 1 Mhz | 0.0002 |
As an accredited PCC (Iran) HDPE BG-HD62N07 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | PCC (Iran) HDPE BG-HD62N07 is packaged in 25 kg polyethylene bags, 40 bags per 1,000 kg pallet (1 MT total). |
| Container Loading (20′ FCL) | 20′ FCL container: PCC (Iran) HDPE BG-HD62N07 packed in 25kg PE bags on pallets, stretch-wrapped, securely loaded for sea export. |
| Shipping | PCC (Iran) HDPE BG-HD62N07 is a non-hazardous high-density polyethylene resin. It is shipped in 25 kg PE bags, palletized and stretch-wrapped, typically in clean, dry 20- or 40-foot containers by sea. Store cool and dry; avoid moisture, heat, and direct sunlight. No UN dangerous-goods classification required. |
| Storage | Store PCC (Iran) HDPE BG-HD62N07 in a cool, dry, well-ventilated area away from direct sunlight, heat, and ignition sources. Keep original containers or bags tightly closed to prevent moisture, dust, and contamination. Avoid prolonged UV exposure and excessive stacking. Follow local regulations and manufacturer guidance. Use clean handling equipment; maintain good housekeeping. Store separately from incompatible substances, and ensure pallets are stable. |
| Shelf Life | Shelf life: typically 12 months when stored in original unopened packaging, in a cool, dry, ventilated area away from sunlight. |
PCC HDPE BG-HD62N07 is a high-density polyethylene blow molding grade with nominal density 0.962 g/cm³ as determined by ISO 1183-1:2019 and a high-load melt flow rate of 7.0 g/10 min at 190 °C under 21.6 kg as determined by ISO 1133-1:2022. The grade is processed on single-screw extrusion blow molding machines with screw diameters from 50 mm to 120 mm, barrel length-to-diameter ratios of 24:1 to 30:1, and die-head melt temperatures from 175 °C to 205 °C. Because the high crystallinity associated with a 0.962 g/cm³ density raises stiffness but reduces environmental stress crack resistance relative to lower-density blow molding grades, each downstream application must be qualified with the actual chemical fill under stress conditions using ASTM D1693-15 or equivalent bottle stress crack testing. The six applications below are limited to industrial and non-food packaging sectors where HDPE blow molding grades with this density and melt flow range are used in production.
At 190 °C and 21.6 kg, the high-load melt flow rate corresponds to a zero-shear viscosity range typical for HDPE of this density class, estimated between 18,000 Pa·s and 35,000 Pa·s; published data for this specific configuration is limited. Extruder temperature profiles from rear zone to die head are set at 160–175 °C, 175–190 °C, 185–200 °C, and 185–205 °C, with head pressure maintained between 15 MPa and 28 MPa to stabilize parison diameter. Mold temperatures are held between 5 °C and 25 °C depending on wall thickness and cycle time. The density level reduces water vapor transmission to a range typical for dense HDPE, approximately 0.02–0.05 g·mm/m²·day at 38 °C and 90% RH, measured by ASTM F1249-20. Flexural modulus for similar HDPE grades falls between 1.2 GPa and 1.6 GPa under ISO 178:2019; tensile yield strength is generally 24–32 MPa under ISO 527-2:2012. Where pellets are stored in unheated silos below 5 °C and transferred to humid production halls, surface condensation can occur; a hopper dehumidification cycle at 80 °C for 2 h is applied only when visible surface moisture is present.
| Application sector | BG-HD62N07 addition ratio | Melt temperature | Core compliance references |
|---|---|---|---|
| Household detergent | 80–100 wt% | 185–200 °C | EC 648/2004; ISO 8317:2015 |
| Lubricant oil | 80–90 wt% plus 10–20 wt% LLDPE | 190–205 °C | EU 94/62/EC; REACH 1907/2006; RoHS 2011/65/EU |
| Agrochemical jerrican | 100 wt% virgin, max 15 wt% regrind | 185–205 °C | UN Chapter 6.1; ADR 6.1; ISO 16103:2005 |
| Water-based adhesive | 90–100 wt% | 175–200 °C | EU 94/62/EC; REACH 1907/2006 |
| Water treatment chemical | 85–100 wt% | 180–200 °C | ISO 11357-6; ASTM D3895-19 |
| Personal care | 97–100 wt% | 180–200 °C | EU 1223/2009; ASTM D2659-16 |
On multi-cavity shuttle blow molding lines producing household detergent bottles, the dominant failure location is the base pinch-off weld, not the sidewall. The grade is monolayer-processed at die-head melt temperatures between 185 °C and 200 °C on extruders of 65–90 mm diameter with 24:1 to 28:1 L/D and barrier screws. Melt pressure upstream of the die is held at 18–24 MPa to control parison diameter variation; die gap is set at 1.6–2.8 mm for a 0.8–1.2 mm sidewall target. Blow air pressure of 0.5–0.7 MPa and mold cooling water at 8–18 °C are used to stabilize wall distribution and reduce post-mold shrinkage. Pinch-off land sharpness must be maintained; when the pinch edge radius exceeds 0.2 mm, weak weld lines form because the two melt fronts cool before sufficient interdiffusion occurs. The weld thickness at the base must be at least 1.6 times the adjacent sidewall, particularly in bottles filled with nonionic surfactant formulations and sodium hypochlorite solutions up to 5 wt% active chlorine.
In this application, the addition ratio is 80–100 wt% virgin BG-HD62N07 and 0–20 wt% clean in-house regrind; if regrind exceeds 20 wt%, environmental stress crack resistance and drop impact at low temperature decline. Color and functional masterbatches are dosed at 1.5–2.5 wt% at the feed throat. Regulatory compliance includes REACH (EC) No 1907/2006, the EU Detergent Regulation (EC) No 648/2004, and, for closures requiring child resistance, ISO 8317:2015. Finished containers are 0.5 L, 1 L, 2 L, and 5 L narrow-neck bottles with 28/410, 38/400, and 45/400 neck finishes, used for liquid laundry detergent, fabric softener, all-purpose cleaner, dishwashing liquid, and industrial descaling agents.
The principal process constraint in narrow-neck lubricant oil bottles is parison melt strength during handle bridge stretching. At a high-load melt flow rate of 7.0 g/10 min, the material retains sufficient melt strength for parison lengths up to 450 mm at 190 °C, but output on continuous extrusion blow molding machines with 75–100 mm extruders at 25:1 L/D can reach 180–260 kg/h, raising shear heat and reducing viscosity at the die bushing. Die-head pressure is maintained at 20–28 MPa; die gap is set to 1.6–2.4 mm, and parison programming with 8–12 points compensates for wall thinning at the handle bridge. Blow air pressure is 0.6–0.8 MPa, mold temperature 5–15 °C. The handle bridge must remain above 1.4 mm wall thickness because this zone experiences post-filling flexure during consumer handling and warehouse stacking.
Because high-detergency calcium sulfonate and long-chain ester additive packages in engine oils promote environmental stress cracking, monolayer formulations are adjusted to 80–90 wt% BG-HD62N07 and 10–20 wt% butene LLDPE with density 0.918–0.922 g/cm³; the LLDPE reduces ESCR sensitivity but also lowers top load, so the ratio must not exceed 20 wt% without retesting empty-bottle buckling under filled storage conditions. In coextruded constructions, a recyclate core of 20–30 wt% post-consumer HDPE may be used only in non-food industrial oil containers, provided the outer layers remain 100 wt% virgin BG-HD62N07. Regulatory references for non-dangerous engine oil bottles are EU Packaging and Packaging Waste Directive 94/62/EC, REACH (EC) No 1907/2006, and RoHS 2011/65/EU for colorant compliance; dangerous goods classifications require UN 3H1 qualification. End product types are 1 L, 4 L, and 5 L narrow-neck handled bottles with 28/410, 38/405, and 45/405 neck finishes and foil-sealed closures.
Because agrochemical containers carry UN drop-test obligations at low temperature, the base pinch-off weld and handle bridge become the highest-risk regions. UN-certified jerricans from 1 L to 20 L under packaging group II require drop testing from 1.2 m at -18 °C; packaging group I raises the drop height to 1.8 m, while packaging group III uses 0.8 m. Accumulator blow molding machines with shot sizes from 1.5 kg to 5.0 kg are used for 5–20 L jerricans; extruder diameters of 90–120 mm and 25:1 L/D are typical. The die gap is 2.0–3.5 mm, die-head melt temperature is 185–205 °C, blow air is 0.65–0.85 MPa, and mold clamp force is 300–600 t. Wall thickness is programmed to 1.5–2.0 mm in the sidewall and 2.2–3.0 mm at the chime and corner regions.
The formulation uses 100 wt% virgin BG-HD62N07 with clean closed-loop regrind limited to 15 wt%; higher regrind fractions reduce environmental stress crack resistance measured by ASTM D1693-15 condition B and produce greater batch-to-batch variation in low-temperature drop performance. UV stabilization requires 1.5–3.0 wt% of a HALS-containing polyethylene masterbatch; carbon black masterbatch at 2.0–2.5 wt% is used for opaque containers. Post-mold leak testing is conducted at pressure differentials of 20–40 kPa for 15–30 s, while UN internal pressure qualification is performed according to the UN Model Regulations section 6.1.5.5 for the intended product density. The regulatory matrix includes UN Model Regulations Chapter 6.1, ADR 6.1, RID 6.1, IMDG Code, ICAO Technical Instructions, and ISO 16103:2005 where recycled material is introduced. End products are 1 L, 5 L, 10 L, and 20 L tight-head jerricans for organophosphate and pyrethroid formulations, glyphosate-based herbicides, and non-oxidizing industrial chemical concentrates. The container is not recommended for fuming nitric acid, concentrated hydrogen peroxide, or highly permeating aromatic solvents unless a specific permeation study and closure system qualification are completed.
Construction-grade water-based emulsions, vinyl acetate-ethylene copolymer adhesives, and acrylic sealants impose milder chemical stress than lubricants but require resistance to elevated temperature filling and long-term sag in pallet stacking. In non-UN monolayer HDPE containers, the allocation for BG-HD62N07 is 90–100 wt%, with 0–10 wt% butene LLDPE for improved low-temperature drop impact and 1.0–2.0 wt% of a PE-based antiblock masterbatch to reduce tack during automatic filling. Continuous blow molding machines with 60–80 mm extruders at 24:1 L/D are run at die temperatures of 175–200 °C, mold cooling water of 10–20 °C, blow air pressure of 0.5–0.7 MPa, and die gaps of 1.8–2.8 mm. Sidewall thickness is 1.5–2.5 mm for 5–25 L pails and jerricans; parison programming maintains the base corner at 2.0–3.0 mm to resist bottom cracking after repeated forklift handling. Filling temperatures above 55 °C reduce top-load capacity and can cause ovalization; for such conditions a lower-density HDPE or a thicker sidewall must be evaluated. Regulatory compliance for non-dangerous water-based products includes EU Packaging and Packaging Waste Directive 94/62/EC, REACH (EC) No 1907/2006, and finished-container design verification under ASTM D2659-16 for column crush resistance. End products are 5 L, 10 L, 20 L, and 25 L open-top and tight-head containers used for water-based adhesives, cementitious admixtures, latex primers, and sealant concentrates.
Where sodium hypochlorite, calcium hypochlorite slurries, and secondary disinfectant solutions are filled, oxidative attack from free chlorine species governs container durability. In this sector, BG-HD62N07 is allocated at 85–100 wt%, with 0–15 wt% linear low-density polyethylene to reduce cap-area stress whitening and 1.5–2.5 wt% carbon black masterbatch for UV-opaque containers. Accumulator blow molding lines with extruder diameters of 70–90 mm, 24:1 L/D, melt temperatures of 180–200 °C, and die gaps of 2.0–3.0 mm produce sidewall thicknesses of 1.2–2.0 mm. Mold cooling water is held at 8–15 °C, and blow air is 0.55–0.75 MPa. Oxidative aging is evaluated by oxidation induction time according to ISO 11357-6 or ASTM D3895-19; acceptance values are specific to the fill pH and free chlorine concentration and must be set by the brand owner. When the filled product is classified as dangerous goods, the container must meet UN 3H1 qualification for the relevant packing group, including leak and drop tests. End products are 1 L, 5 L, and 10 L narrow-neck containers for swimming pool shock, pH adjusters, industrial descaling fluids, and water treatment chemical dosing systems.
High-crystallinity HDPE provides the top-load resistance needed for high-speed filling lines, but stiff formulations can crack during cap application when neck finish roughness or sharp radii exist. On wheel blow molders with 50–70 mm extruders at 24:1 L/D, melt temperatures are set to 180–200 °C; mold temperatures are 8–15 °C. The formulation addition ratio is 97–100 wt% BG-HD62N07, with 0–3 wt% color masterbatch, and for high-gloss surfaces 0.5–1.5 wt% of a fluoropolymer processing aid to reduce melt fracture at high shear rates. Neck finishes are cut and faced to maintain a sealing surface deviation below 0.2 mm; closure torque removal is set between 0.6 N·m and 2.0 N·m depending on closure diameter. Empty-bottle top load is verified according to ASTM D2659-16; buckling load acceptance is set at a minimum of 3.0 times the expected warehouse stacking load. Regulatory compliance for cosmetic-product contact is EU Cosmetic Products Regulation (EC) No 1223/2009, with packaging heavy metals controlled under EU 94/62/EC and substances under REACH (EC) No 1907/2006. End product types are 200 mL, 400 mL, 750 mL, and 1 L oval or cylindrical bottles with 24/410, 24/415, and 28/410 neck finishes, used for shampoo, body wash, hand soap, and non-aerosol hair conditioner packaging.
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PCC (Iran) HDPE BG-HD62N07 is a pelletized high-density polyethylene blow-moulding grade supplied for extrusion blow-moulded rigid packaging. The alphanumeric designation is interpreted as high-density, blow-moulding grade, nominal density 0.962 g/cm³, nominal melt mass-flow rate 0.7 g/10 min under 2.16 kg at 190°C. Density is determined according to ISO 1183-1:2019 at 23°C; melt flow rate is determined according to ISO 1133-1:2022. The product is positioned in the low-flow, high-density segment for containers requiring stiffness, adequate top-load strength, and moderate environmental stress crack resistance. Published technical literature for this specific PCC (Iran) designation does not always disclose the comonomer type or the precise catalyst system; therefore conversion parameters should be verified against the lot certificate of analysis and the producer’s current product stewardship bulletin.
| Property | Test method | Unit | Value |
|---|---|---|---|
| Melt mass-flow rate, 190°C/2.16 kg | ISO 1133-1:2022 | g/10 min | 0.7 |
| Density, 23°C | ISO 1183-1:2019 | g/cm³ | 0.962 |
| Tensile stress at yield, 50 mm/min | ISO 527-2:2012 | MPa | 28 |
| Tensile strain at break | ISO 527-2:2012 | % | >600 |
| Flexural modulus | ISO 178:2019 | MPa | 1,200 |
| Notched Izod impact strength, 23°C | ISO 180:2019 | kJ/m² | 8.0 |
| Shore D hardness | ISO 868:2003 | — | 64 |
| Vicat softening temperature, A50 | ISO 306:2022 | °C | 127 |
| Brittleness temperature | ASTM D746-20 | °C | < -70 |
| Environmental stress crack resistance, F50 condition B | ASTM D1693-15e1 | h | >45 |
The above values are representative moulding-grade data and are not lot-specific. Full multi-point data for computer-aided engineering should be requested in the format of ISO 11403-1:2021. Density and melt flow rate are controlled within target windows that may vary by ±0.002 g/cm³ and ±0.05 g/10 min depending on production site and analytical repeatability. Mechanical properties are affected by specimen geometry, cooling rate, and conditioning; comparison against other packaging grades must be performed on specimens prepared according to ISO 293:2004 or ISO 294-1:2021 and conditioned at 23°C and 50% relative humidity per ISO 291:2008.
A melt mass-flow rate of 0.7 g/10 min under 2.16 kg places BG-HD62N07 in the low-flow segment where shear viscosity remains high enough to maintain parison integrity in continuous shuttle and intermittent accumulator machinery. Die-swell measurements taken with a converging annular die at a die gap of 1.2 mm and apparent shear rate of 150 s−1 are reported in grade technical literature as 20% to 35%; this range depends on melt temperature between 190°C and 210°C, die land length, and head tooling. A flow rate ratio from 21.6 kg to 2.16 kg above 25 is expected for suitable shear thinning, but the exact high-load melt flow index must be confirmed by ISO 1133-1:2022 procedure B at 21.6 kg. The parison hang time before unacceptable sag at 200°C is machine-dependent; converters should determine an allowable draw-down ratio below 4:1 using a laboratory rod-drop fixture. Because extensional viscosity data for this specific grade are not fully published, capillary rheometry and Rheotens characterization under nitrogen are required before transfer of multi-cavity tooling.
In continuous shuttle blow-moulding machines with clamp forces from 50 t to 120 t, barrel temperature settings are typically set in the feed zone at 160°C to 180°C, the compression/metering zone at 180°C to 200°C, the adapter at 190°C to 210°C, and the die head at 195°C to 215°C. The actual melt temperature should remain between 190°C and 210°C; excursions above 215°C accelerate chain scission, reduce parison hang strength, and increase odour potential in the finished container. Regrind levels are limited to 30 wt% because repeated extrusion lowers the molecular weight distribution and increases the occurrence of pinholes at the pinch-off weld. When the product is used as part of a barrier-layer coextruded structure, the melt temperature of the HDPE layer must be matched to the barrier resin within ±5°C to avoid interfacial flow instability and layer thickness nonuniformity.
Wall thickness uniformity in long-stroke shuttle tools is limited by the interaction between die swell, parison sag, and accumulator or extruder-induced pulsation. With programmed parison control, the axial wall thickness profile can be corrected by die gap modulation to compensate for swell-induced diameter growth. The product’s moderate die swell permits radial gap changes of 0.2 mm to 0.6 mm without surface melt fracture at apparent shear rates below 250 s−1. Tooling with a diverging die angle between 15° and 30° reduces melt fracture and improves weld-line integrity in the tail flash region. In production, wall thickness variation across four cavities on a shuttle press remains below 2% when melt temperature is controlled within ±3°C and shot-to-shot cushion transfer is kept under 5% of shot volume. Cavity-to-cavity variation increases above 6% if the melt stream is contaminated with propylene-based copolymers or if the screw tip and non-return valve are worn; therefore periodic screw inspection at intervals of 2,000 h is recommended for precision packaging lines.
Thermal analysis by differential scanning calorimetry according to ISO 11357-3:2018 gives a peak melting temperature between 130°C and 135°C at a heating rate of 10°C/min; the crystallization temperature on cooling is between 115°C and 120°C. These values are used to set mould cooling and to avoid frozen-in stress. A high-density HDPE of this type reaches an enthalpy of fusion of 190 J/g to 205 J/g, corresponding to a crystalline fraction of roughly 65% to 70% based on the reference enthalpy for linear polyethylene. The crystallization behaviour explains why the Vicat softening point lies above 125°C; however, the product is not a high-temperature resin and should not be exposed to continuous service above 70°C without creep and oxidative stabilization assessment per ISO 11358-1:2014 or equivalent.
Substitution of BG-HD62N07 for an injection-grade HDPE with melt mass-flow rate 12 g/10 min to 20 g/10 min introduces mould-filling restrictions below wall thicknesses of 1.0 mm. The low flow index increases injection pressure requirements by 20% to 35% on valve-gated hot-runner moulds, depending on runner length and gate diameter. Thin-wall closures, overcaps, and tamper-evident rings are outside the grade’s practical flow envelope; published data for this specific mould geometry is limited, and spiral-flow measurements under ISO 294-1:2021 conditions are required before tooling commitment. If injection velocity exceeds 90 mm/s in gates below 0.8 mm, jetting and burn marks occur because the high-viscosity melt fails to maintain laminar flow through sudden section changes. The cycle time disadvantage relative to a high-flow HDPE is measurable in shot-to-shot performance but is offset by improved top-load rigidity only in blow-moulded container geometries.
Compared with blown-film HDPE grades of nominal density 0.944 g/cm³ to 0.952 g/cm³, BG-HD62N07 provides higher modulus and lower nonpolar solvent permeability because the higher density of 0.962 g/cm³ increases crystallinity. The same crystallinity reduces ambient dart impact strength as measured by ISO 7765-1:2005, and it lowers tear resistance, so film conversion is not a recommended use. Compared with bimodal high-density PE100 pipe grades classified under ISO 9080:2012, the grade lacks the high-molar-mass tail required for slow crack growth resistance under internal pressure and must not be used for municipal pressure pipe, compressed-air line, or buried gas distribution. Compared with injection-grade HDPE of melt flow rate 18 g/10 min, the product displays higher parison hang strength and die-swell stability in extrusion blow moulding but has insufficient flow for thin-wall injection cycles. Compared with lower-density blow-moulding grades of 0.954 g/cm³, the grade offers higher top-load stiffness but lower stress-cracking resistance in the presence of aggressive formulated liquids; therefore applications involving ester-containing solvents or high-concentration surfactants should be qualified by ASTM D1693-15e1 condition B and not inferred from density alone.
Food-contact and drinking-water suitability requires compliance with FDA 21 CFR 177.1520 for olefin polymers or with EU Regulation (EC) No 1935/2004 together with its implementing measures for plastics, including EU Regulation (EU) No 10/2011 and its amendments. The converter must confirm that the finished article’s overall migration does not exceed 10 mg/dm² under the intended food type and contact time. Because the product’s density and crystallinity affect migration of processing aids and possible low-molar-mass fractions, migration testing according to EN 1186-1:2002 and EN 1186-3:2002 is required for fat-containing foods if the wall thickness is below 1.0 mm. Published data for this specific configuration is limited; the statement of compliance must be based on the finished article rather than the raw material alone.
| Parameter | Range |
|---|---|
| Feed zone set temperature | 160°C to 180°C |
| Compression/metering zone | 180°C to 200°C |
| Adapter zone | 190°C to 210°C |
| Die head zone | 195°C to 215°C |
| Melt temperature | 190°C to 210°C |
| Blow air pressure | 0.6 MPa to 0.8 MPa |
| Mould coolant inlet | 8°C to 15°C |
| Blow ratio | 1.5:1 to 3.0:1 |
| Regrind addition | ≤30 wt% |
| Pre-drying | Not normally required; if surface condensation occurs, dry at 80°C for 2 h to dew point below -30°C |
Processing boundaries: do not exceed melt temperature 220°C for more than 10 min cumulative residence time, because chain scission accelerates and generates odorous volatile aldehydes. Do not combine with amine-based additives or PVC regrind because acid-base interaction and melt viscosity mismatch lead to gel formation and intermittent parison rupture. When high-humidity storage exceeds 60% RH and pellet surface condensation is visible, dry the pellets at 80°C for 2 h in a desiccant-bed dryer with a dew point below -30°C; however, HDPE is not hygroscopic and the drying step is for surface moisture removal only. For coloured container applications, use a colour masterbatch based on HDPE with melt flow rate 0.3 g/10 min to 1.5 g/10 min; addition levels should not exceed 4 wt% to avoid shifts in die swell and top-load variability.