| HS Code | 364499 |
| Material Type | High Density Polyethylene (HDPE) |
| Density | 0.956 g/cm³ |
| Melt Flow Index 190 C 21 6 Kg | 0.04 g/10 min |
| Melt Flow Index 190 C 5 Kg | 0.20 g/10 min |
| Tensile Strength At Yield | 29 MPa |
| Tensile Strength At Break | 42 MPa |
| Elongation At Break | >600% |
| Flexural Modulus | 1300 MPa |
| Vicat Softening Point | 125°C |
| Melting Point | 132°C |
| Crystallization Temperature | 115°C |
| Hardness Shore D | 60 |
| Dart Drop Impact | 150 g |
| Elmendorf Tear Strength Md | 20 g |
| Elmendorf Tear Strength Td | 50 g |
| Haze | 12% |
| Gloss 45 | 50 |
| Coefficient Of Friction | 0.20 |
| Bulk Density | 0.55 g/cm³ |
| Ash Content | <0.05% |
| Moisture Content | <0.10% |
As an accredited Long Son VIETNAM HDPE H5604F factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Long Son VIETNAM HDPE H5604F is supplied in 25 kg bags, 40 bags per pallet, or 1,000 kg jumbo bags. |
| Container Loading (20′ FCL) | 20′ FCL loaded with 25 MT Long Son Vietnam HDPE H5604F resin in 25 kg bags, palletized, shrink-wrapped, securely stowed for shipment. |
| Shipping | Long Son VIETNAM HDPE H5604F is shipped as non-hazardous, free-flowing polyethylene pellets in 25 kg bags, jumbo bags, or bulk liners. Store and transport in a dry, clean, ventilated area away from heat, sunlight, and moisture. Standard truck, rail, or sea freight applies; no special DG handling required. |
| Storage | Store Long Son VIETNAM HDPE H5604F in a cool, dry, well-ventilated area away from direct sunlight, heat, flames, and strong oxidizers. Keep original bags or containers closed and palletized. Prevent moisture, dust, contamination, and physical damage. Avoid prolonged UV exposure and static buildup. Maintain moderate temperatures, good housekeeping, follow local regulations and the supplier’s SDS. Use first-in, first-out stock rotation. |
| Shelf Life | Typical shelf life for Long Son VIETNAM HDPE H5604F is 24 months in unopened, cool, dry storage away from direct sunlight. |
On monolayer blown film lines used for dry-food contact films, Long Son VIETNAM HDPE H5604F, a blown-film grade with a density in the 0.955–0.960 g/cm³ range and an MFR of 0.5–0.8 g/10 min at 190 °C/2.16 kg when tested per ISO 1133-1:2022, is processed through single-screw extruders with 25:1–30:1 L/D ratios and barrier screws, into die diameters from 250 mm to 400 mm and die gaps of 1.2–2.0 mm. The food-contact compliance framework for this segment is FDA 21 CFR 177.1520 for olefin polymers and EU Regulation 10/2011 for plastic materials and articles intended to come into contact with food; overall migration in food simulants must not exceed 10 mg/dm² under the specified test conditions, and unplasticized HDPE film in this density class requires no specific substance migration limit because no plasticizer is present. Formulation additions are limited to erucamide slip agent at 0.05–0.12 wt%, synthetic silica antiblock at 0.08–0.20 wt%, and a fluoropolymer processing aid masterbatch at 0.02–0.06 wt% to suppress melt fracture at higher screw speeds; slip agent levels above 0.15 wt% are avoided because the coefficient of friction falls below 0.20 and downstream converting slip becomes uncontrolled. Pre-drying is not normally required for H5604F; if surface condensation is present after storage below 5 °C and subsequent exposure to ambient air above 60% RH, hopper drying at 50–60 °C for 2–4 h is used to prevent bubble defects. The blown film process operates with melt temperatures between 190 °C and 215 °C, blow-up ratios from 3.0:1 to 4.0:1, and frost-line heights between 4D and 8D where D is die diameter, producing film thicknesses from 10 µm to 30 µm. On production-scale lines, bubble sag between the die and frost line is observed when the frost line is raised too quickly, producing gauge variation exceeding ±8%, and die-lip buildup from degraded slip additive accumulates after 8–12 h of continuous running if the die lip is not cleaned. Terminal product types converted from this film include cereal pouch liners, cracker sleeves, dry pasta bags, and bread overwrap liners.
High-speed retail bag conversion lines process H5604F on monolayer blown film equipment configured with a high-stalk bubble, die diameters from 150 mm to 350 mm, die gaps of 1.0–1.5 mm, and melt temperatures between 200 °C and 230 °C. The relevant conversion qualification standards are ASTM D1709-16a dart drop impact, ASTM D882-18 tensile properties, and ISO 527-3 film tensile conditioning at 23 °C and 50% RH. Formulation adjustments for retail carry-out bags include a calcium carbonate masterbatch at 5–20 wt% to modify hand feel and bending stiffness, an erucamide slip agent at 0.05–0.10 wt%, a synthetic silica antiblock at 0.10–0.30 wt%, and a fluoropolymer processing aid at 0.02–0.05 wt% when die pressure exceeds 350 bar or when surface melt fracture appears as herringbone patterns on the bubble. The downstream blown film process uses blow-up ratios from 4.0:1 to 6.0:1, frost-line heights between 8D and 12D, and film thicknesses from 10 µm to 25 µm; internal bubble cooling raises output but increases blocking tendency, requiring the antiblock dose to be moved toward the upper end of its range. A documented failure mode on production-scale equipment is the onset of bubble instability when stalk length is shortened to increase line speed, producing film gauge variation exceeding ±7% and downstream bag width variation above ±3 mm on inline converting. Terminal product types include retail T-shirt bags, produce roll bags, laundry bags, and small trash liners converted on bag machines running above 150 bags/min.
For heavy-duty sack applications, H5604F is converted on blown film lines producing thicknesses from 50 µm to 120 µm, with blow-up ratios reduced to 2.0:1–3.2:1 to lift dart impact resistance and reduce MD/TD tear imbalance. Qualification testing for this segment uses ASTM D1709-16a dart impact, ASTM D882-18 tensile elongation at break, ASTM F88/F88M-23 heat-seal strength, and ISO 7965-2:1993 filled-sack drop tests for construction materials. Formulation additions include a carbon black masterbatch at 2.0–2.5 wt% when ultraviolet exposure during outdoor storage is specified, a synthetic silica antiblock at 0.05–0.15 wt%, and a fluoropolymer processing aid at 0.02–0.04 wt% to stabilize melt pressure; erucamide slip agent is held to 0.03–0.06 wt% because higher levels reduce heat-seal strength below 12 N/15 mm on side-gusseted sacks. At thickness below 80 µm, side-gusset seal strength becomes the limiting conversion factor, requiring reduced filling speed and jaw pressure adjustment. The downstream blown film process uses melt temperatures of 200–220 °C, die gaps of 1.5–2.5 mm, and frost-line heights below 6D to maintain bubble uniformity, after which the film is post-gusseted, printed, and converted into block-bottom or side-gusset sacks. A production-scale bottleneck is blocking at the center-wound core when winding thicknesses above 100 µm, requiring cooling air temperature below 25 °C and wound tension reduced to 50–70 N/m; failure to control these parameters produces telescoped rolls and subsequent web breaks during printing. Terminal product types include heavy-duty shipping sacks for cement, fertilizer, resin pellets, pet food, and construction adhesive liners.
Construction vapor retarder membranes in below-slab and crawlspace service convert H5604F into film thicknesses from 100 µm to 250 µm on wide-die blown film lines with die diameters between 400 mm and 800 mm, blow-up ratios from 1.8:1 to 2.5:1, and melt temperatures between 190 °C and 225 °C. The governing compliance specification is ASTM E1745-22, which classifies plastic water vapor retarders used under concrete slabs and in contact with soil or granular fill; a Class A vapor retarder requires water vapor permeance not exceeding 0.1 perm when tested per ASTM E96/E96M-22 Procedure A, and HDPE film in this thickness range typically meets the Class A limit when gel counts and melt imperfections are controlled. Formulation additions include a carbon black or white masterbatch at 5–10 wt% depending on surface reflectance requirements, a hindered amine light stabilizer at 0.20–0.50 wt% when the membrane is exposed to construction-site ultraviolet radiation for more than 30 days, and a synthetic silica antiblock at 0.10–0.25 wt% to reduce blocking in tightly wound rolls. The downstream process favors a low-stalk bubble and external or internal bubble cooling, with layflat widths above 2,500 mm and oscillating haul-off to randomize gauge bands; film rolls are slit to width and perforated or sealed as specified by the construction project. Documented field failures include pinhole formation when degraded polymer gels pass through a screen pack with mesh opening larger than 250 µm, producing local water vapor transmission and loss of Class A performance in the installed membrane. Terminal product types include underslab vapor barriers, foundation crawlspace covers, suspended floor moisture retarders, and temporary containment membranes.
When H5604F is assigned to the outer skin layers of three-layer blown films for hygiene packaging, the die gap is set at 1.5–2.0 mm and the melt temperature is controlled at 205–225 °C to keep the HDPE skin viscosity within 10% of the core layer melt viscosity, because larger mismatches produce interfacial waviness and delamination on high-speed laminators. Regulatory compliance for this configuration is anchored to REACH (EC) No 1907/2006 Annex XVII restrictions and, if the structure is used as an indirect food-contact overwrap, EU Regulation 10/2011 with overall migration below 10 mg/dm²; no substance-specific migration limits are triggered for unplasticized HDPE in this configuration. Formulation additions are limited to a white masterbatch at 2–4 wt%, a synthetic silica antiblock at 0.05–0.15 wt%, and a fluoropolymer processing aid at 0.02–0.04 wt% to prevent die-lip buildup; erucamide slip agent is omitted because corona treatment for lamination depresses slip effectiveness and can create non-uniform surface tension below 38 dyn/cm. The downstream production process uses blow-up ratios of 2.5:1–3.5:1, frost-line heights between 5D and 8D, and overall film thicknesses from 30 µm to 60 µm, with each HDPE skin layer accounting for 15–20% of total thickness. On production-scale coextrusion lines, die-lip buildup accumulates faster when the antiblock dose is below 0.05 wt%, producing visible gel streaks in the skin and subsequent lamination defects. Published data for this specific HDPE skin configuration in hygiene film is limited, so pre-production trials are required to establish the corona treatment watt-density that achieves wetting without pinholing the thin skin. Terminal product types include outer wraps for diaper packs, wipes overwrap, feminine care packaging, and mattress roll-pack film.
In form-fill-seal converting, H5604F is converted into film thicknesses from 40 µm to 90 µm on blown film lines with die gaps of 1.5–2.5 mm, blow-up ratios of 2.5:1–3.5:1, and melt temperatures between 195 °C and 220 °C. Qualification testing for this segment uses ASTM D1709-16a dart impact, ASTM D882-18 modulus and elongation, ASTM F88/F88M-23 heat-seal strength, and seal-through-powder tests specified by the converter; a minimum seal strength of 10 N/15 mm after the jaw closes on dust-contaminated film is a common release criterion. Formulation includes an erucamide slip agent at 0.05–0.10 wt%, a synthetic silica antiblock at 0.08–0.20 wt%, and a fluoropolymer processing aid at 0.02–0.05 wt% to limit melt fracture at die gaps below 2.0 mm. The downstream process is vertical or horizontal form-fill-seal conversion, where the film is folded, heat-sealed on the bottom and side, filled with dry product, and top-sealed; the critical downstream parameter is the ratio of seal bar pressure to film thickness, because pressure above 4.0 MPa at thickness below 50 µm can squeeze molten polymer from the seal area and reduce burst strength. A production-scale failure mode is film creep during product settling, which produces side-gusset seal misalignment when unwind tension exceeds 30 N on vertical FFS machines. Terminal product types include FFS pouches for powdered detergent, pet food, dry chemical additives, and mineral supplements.
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Long Son VIETNAM HDPE H5604F is a bimodal high-density polyethylene blown film grade produced at the Long Son petrochemical complex in Vietnam. The grade carries a nominal melt flow rate of 0.40 g/10 min at 190 °C under 2.16 kg when measured according to ISO 1133-1:2022, and a nominal density of 0.956 g/cm³ determined under ISO 1183-1:2019. The F suffix designates film extrusion, separating the grade from blow moulding and injection moulding HDPE resins of similar density. The molecular weight distribution is broad enough to maintain bubble stability at film thicknesses between 8 µm and 50 µm, while the 0.956 g/cm³ density reduces water vapor transmission relative to lower-density polyethylene films under ASTM F1249-20 conditions.
The primary difference between H5604F and a general-purpose HDPE blow moulding grade lies in the balance of die swell, melt strength, and extensional hardening. Blow moulding grades are often formulated to generate high die swell for parison thickness control; film grades such as H5604F are formulated to limit uncontrolled die swell and preserve gauge uniformity across the bubble. The lower melt flow rate of 0.40 g/10 min compared with injection grades above 5 g/10 min means that thin-wall injection moulding is outside the intended processing window. In film extrusion, however, the same low melt flow rate provides higher melt pressure and shear stress in a 25:1 to 30:1 L/D grooved-feed single-screw extruder, which contributes to stable melt fracture-free operation only if the die gap is maintained between 0.8 mm and 1.2 mm.
In HDPE grocery sacks, T-shirt bags, frozen food wraps, and industrial liners, the grade is used at thicknesses from 10 µm to 30 µm. At these gauges, the polymer crystallinity associated with 0.956 g/cm³ density raises modulus and lowers elongation compared with LLDPE, but film toughness becomes thickness-dependent and must be verified by ASTM D1709-16a dart impact, ASTM D1922-15e1 Elmendorf tear, and ASTM D5748-19 puncture resistance. A source of production-scale variation in this application is frost line height; if the frost line rises above 1000 mm on a standard die, transverse direction shrinkage may increase and reduce bag opening performance. Conversely, a frost line below 600 mm can reduce transverse direction tear resistance because the orientation remains predominantly machine-directional.
Nominal resin parameters relevant to incoming inspection are summarized in the following matrix. Because film properties depend on gauge, blow-up ratio, and cooling rate, the values for dart impact and tear resistance should be generated on the intended blown film line rather than taken from resin lot data alone.
| Property | Test standard | Nominal value or boundary |
|---|---|---|
| Melt flow rate at 190 °C / 2.16 kg | ISO 1133-1:2022 | 0.40 g/10 min |
| Density | ISO 1183-1:2019 | 0.956 g/cm³ |
| Melting temperature | ISO 11357-3:2018 | 133 °C to 136 °C |
| Film gauge range | Not applicable | 8 µm to 50 µm |
| Water vapor transmission rate at 25 µm | ASTM F1249-20 | published data for this specific configuration is limited |
Food contact and regulatory verification generally follows the matrix below. All conditions should be reconfirmed against the actual lot certificate because additive packages and conversion conditions can change migration behavior.
| Requirement | Reference | Relevant condition or limit |
|---|---|---|
| Olefin polymer food contact | 21 CFR 177.1520 | Density ≥ 0.94 g/cm³; end-use conditions per 21 CFR 176.170(c) |
| EU food contact migration | EU 10/2011 | Overall migration limit 10 mg/dm² |
| Melt flow rate verification | ISO 1133-1:2022 | 190 °C, 2.16 kg |
| Film tensile properties | ISO 527-3:2018 or ASTM D882-18 | Gauge-normalized specimens from blown film |
Because the density is 0.956 g/cm³, the onset of heat seal formation is higher than for LLDPE and LDPE; seal bars usually require set temperatures from 135 °C to 160 °C with dwell time 0.5 s to 1.0 s. Seal strength must be measured by ASTM F88/F88M-21, not inferred from sealing temperature alone. When H5604F is used as a sealant layer in a multilayer structure with polyamide or EVOH, direct adhesion to the barrier layer is not expected; an ethylene-based tie resin is required. For lamination with BOPET or BOPP, the high-density PE layer contributes stiffness and lower moisture vapor transmission, but the heat seal initiation temperature can be 15 °C to 20 °C higher than that of an LLDPE sealant layer, which changes sealing bar settings on horizontal form-fill-seal packaging machines.
On production-scale blown film lines, the grade is processed on low-stalk or high-stalk configurations with die diameters from 100 mm to 600 mm and blow-up ratios between 2.0:1 and 3.0:1. Output is controlled more by melt temperature than by screw speed alone; melt temperatures should be kept between 190 °C and 220 °C at the adapter and between 200 °C and 225 °C at the die. Above 240 °C, oxidative chain scission and gel formation become more likely in stagnation zones. The recommended die gap is 0.8 mm to 1.2 mm; narrower gaps raise melt fracture risk, while wider gaps may lower shear and produce less consistent gauge control. When the ambient relative humidity exceeds 60% after opened bag storage, pre-drying at 80 °C for 2 h is usually sufficient to remove surface moisture.
The base grade is not a compounded film product unless a specific additive package is designated by the supplier. Slip, antiblock, and processing aid levels vary by lot family; converters should verify the package against the certificate of analysis and perform friction coefficient testing under ISO 8295 or ASTM D1894-14 if bags are run on high-speed wicketing lines. For food contact packaging, the final film must be tested for overall migration under the intended temperature and time conditions defined in EU 10/2011 and 21 CFR 176.170(c). Additive systems containing unsaturated fatty amides can interact with corona treatment; surface energy should be measured after treatment using ASTM D2578-17, with a minimum value agreed between converter and printer.
The product as supplied contains a processing antioxidant package for melt protection, but not necessarily a long-term heat aging or UV stabilization package. Applications such as agricultural films, geomembranes, or outdoor bags require compounding of carbon black or hindered amine stabilizers; without such additives, embrittlement can occur at exposure levels that depend on temperature, oxygen partial pressure, and light intensity. Published data for this specific configuration in tropical outdoor environments is limited; therefore, a field trial is required before conversion to outdoor service. The material is not classified for pressure pipe applications and has no published hydrostatic design basis under ISO 9080. Avoid direct contact with strong oxidizing acids at sustained temperatures above 60 °C, and evaluate hydrocarbon solvents under ASTM D543-20 before specifying the polymer for secondary packaging of aggressive liquid chemicals.
In comparison with an LLDPE film grade of density 0.918 g/cm³, HDPE H5604F provides higher modulus and lower water vapor permeability at equal thickness, but lower strain at break and reduced low-temperature puncture resistance. Compared with a general-purpose HDPE injection grade with MFR 8 g/10 min, the melt flow rate of 0.40 g/10 min produces higher back pressure and torque on standard injection machines, limiting filling of thin-walled parts. Converters changing from LLDPE should re-qualify dart impact and seal initiation on the target bag line before full production.