| HS Code | 203372 |
| Polymertype | High Density Polyethylene (HDPE) |
| Density | 0.956 g/cm3 |
| Meltflowrate | 0.15 g/10 min (190°C/2.16 kg) |
| Meltingpoint | 134°C |
| Vicatsofteningtemperature | 128°C |
| Tensilestrengthatyield | 29 MPa |
| Tensileelongationatbreak | >1000% |
| Flexuralmodulus | 1200 MPa |
| Shoredhardness | 65 |
| Heatdeflectiontemperature | 75°C at 0.45 MPa |
| Thermalexpansioncoefficient | 1.2E-4 /°C |
| Waterabsorption | <0.01% |
| Dielectricconstant | 2.3 |
| Volumeresistivity | >1E16 ohm-cm |
As an accredited SCG Chemicals HDPE H5615F factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | SCG Chemicals HDPE H5615F typically comes in 25 kg polyethylene bags or 1,000 kg jumbo bags. |
| Container Loading (20′ FCL) | SCG Chemicals HDPE H5615F: 20′ FCL typically loads about 18 MT net in 25 kg bags, unpalletized; palletized load may be lower. |
| Shipping | SCG Chemicals HDPE H5615F is a non-hazardous high-density polyethylene resin. It is normally shipped in 25 kg bags, jumbo bags, or bulk containers. Keep dry and away from heat, sunlight, and contamination. No dangerous goods classification; standard transport documentation applies. Handle with care to prevent package damage. |
| Storage | Store SCG Chemicals HDPE H5615F in a cool, dry, well-ventilated area, away from direct sunlight, heat, sparks, and open flames. Keep original packaging sealed and palletized off the floor to prevent moisture, dust, and contamination. Avoid contact with strong oxidizers. Maintain good housekeeping; rotate stock first-in, first-out. Keep away from food, drink, and animal feed. |
| Shelf Life | Shelf life is 24 months from production when stored dry, in unopened original packaging, below 40°C, away from direct sunlight. |
In high-stalk blown film conversion, SCG Chemicals HDPE H5615F is processed on lines equipped with single-screw extruders having L/D ratios of 30:1 and barrier screws with Maddock mixing sections, using die gaps of 1.2–1.6 mm, die diameters from 100–250 mm, and melt temperatures of 200–230 °C. The high-stalk configuration is maintained with a frost line height of 6–10 die diameters, which stabilizes the bubble and reduces gauge variation to ±3–5% on gravimetric dosing lines with automatic air ring control. Compliance for direct dry-food contact is established under FDA 21 CFR 177.1520(c) olefin polymer specifications and EU Regulation 10/2011, with overall migration below 10 mg/dm² under aqueous and dry food simulants; additive-specific migration must be verified under OM2 conditions when the film is used for cereal liners or bakery bag stock. Formulation adjustments include erucamide slip masterbatch at 500–1,500 ppm active amide, synthetic silica antiblock at 1,000–3,000 ppm, and fluoropolymer processing aid at 300–800 ppm; addition outside this window produces either blocking on the reel or loss of seal strength on high-speed form-fill-seal equipment. Typical reported resin values from the manufacturer’s technical data sheet include density of 0.956 g/cm³ measured by ISO 1183-1 and melt flow index of 0.15 g/10 min at 190 °C/2.16 kg by ISO 1133-1. Downstream conversion to cereal liners, cracker pouches, and bakery bag stock uses center-fold or gusseted tubing with film gauge 15–40 µm; the moisture vapor transmission rate for 25 µm film is typically 4–6 g/m²·day at 38 °C/90% RH when measured by ASTM F1249, which is sufficient for dry-mix packaging but not for oxygen-sensitive products requiring EVOH or metallization. On production-scale high-stalk lines, operators record backpressure of 300–420 bar and motor load 60–75%; bubble instability appears when frost line height exceeds 10 die diameters or when melt temperature drops below 195 °C due to the high-molecular-weight tail of the resin.
Retail carrier bag converting places HDPE H5615F on in-pocket blown film lines with low stalk heights, die gap 1.0–1.4 mm, blow-up ratio 3:1–4:1, and frost line held at 3–5 die diameters. The resulting film is annealed enough to accept post-gusseting, perforation, and heat sealing at jaw temperatures of 120–150 °C. This application is governed by packaging waste and heavy-metal limits under EU Directive 94/62/EC and, for exported bags, California Proposition 65 for printing inks and colorant carriers; bags do not claim biodegradation, so EN 13432 is not applicable, and labeling must avoid misleading degradability statements under ISO 14021. Formulation at the converter includes 10–30 wt% clean post-industrial HDPE regrind, 2–5 wt% white masterbatch or LDPE-based pigment concentrate, and 0.03–0.06 wt% fluoropolymer PPA to reduce die lip deposit during extended runs; regrind above 30 wt% degrades dart drop values measured under ASTM D1709 from approximately 150 g to below 80 g at 20 µm, creating field failures at checkout. Converting machinery includes servo-driven bag lines running 200–400 cycles/min; film gauge is typically 12–25 µm, and film blocking force must remain below 0.2 N/10 cm to avoid wicket punch jams. Terminal products include die-cut handle T-shirt bags, bottom-seal bags, and header-seal bags for lightweight grocery applications where stiffness and gauge consistency control the converting yield.
In municipal waste containment, HDPE H5615F is blended with linear low-density polyethylene and post-consumer recycled HDPE to balance stiffness, tear resistance, and puncture toughness. The critical technical threshold is the dart drop cliff-edge at 30 wt% PCR addition: above this level, ASTM D1709-16a impact values at 18 µm decline from 140–160 g to 60–90 g because gel particles and low-molecular-weight contaminants initiate brittle fracture at the melt flow index boundary. Production-scale blown film lines for this segment use internal bubble cooling, die diameters 200–400 mm, die gaps 1.2–1.8 mm, and blow-up ratios 2.5:1–3.5:1; output speeds of 120–180 kg/h require bubble stability, which is maintained by adding 10–30 wt% butene LLDPE with a melt index of 0.9–1.0 g/10 min to the HDPE. Formulation includes carbon black masterbatch at 2–5 wt%, calcium carbonate filler at 0–20 wt% where opacity and cost are required, and odor-control zeolite masterbatch at 1–3 wt% for refuse storage; loading above 20 wt% CaCO₃ reduces tensile elongation under ISO 527-3 below 400% in the machine direction, causing splitting during compaction. Compliance for municipal waste sacks references EN 13592 for dimensions and EN 15593 for hygiene management where food-contact waste is involved; in North America, heavy-metal limits under CONEG apply, while ASTM D6400 is relevant only if compostability is claimed, which is not the case for HDPE liners. Terminal products are refuse sacks of 10–120 L, janitorial liners, and compactor bags with gauge 15–50 µm.
| Application segment | Melt temperature | Die gap | Blow-up ratio | Gauge range | Critical process limitation |
|---|---|---|---|---|---|
| High-stalk dry-food packaging | 200–230 °C | 1.2–1.6 mm | 4:1–5:1 | 15–40 µm | Frost line height above 10 die diameters causes bubble instability |
| Retail carrier bags | 200–230 °C | 1.0–1.4 mm | 3:1–4:1 | 12–25 µm | Regrind above 30 wt% reduces dart impact below 80 g |
| Waste containment liners | 200–240 °C | 1.2–1.8 mm | 2.5:1–3.5:1 | 15–50 µm | CaCO₃ above 20 wt% lowers MD elongation below 400% |
| Heavy-duty industrial sacks | 210–240 °C | 1.8–2.2 mm | 2:1–3:1 | 60–120 µm | Slip above 800 ppm reduces pallet coefficient of friction |
| Lamination base film | 200–220 °C | 1.0–1.4 mm | 2.5:1–3.5:1 | 15–30 µm | Corona decay below 36 mN/m causes delamination |
| Coextruded frozen food film | 190–230 °C core/skin split | 1.2–1.8 mm | 2:1–3:1 | 30–60 µm | Viscosity ratio HDPE/LLDPE above 3:1 causes interfacial waviness |
Heavy-duty industrial sacks and drum liners produced from HDPE H5615F demand film gauge 60–120 µm, where the limiting property is not dart impact but tear propagation resistance measured by ASTM D1922 and tensile strength under ISO 527-3. Compliance for construction chemical packaging must satisfy UN dangerous goods packaging codes for solid hazardous materials when used as inner liners, specifically UN 13H2 or 13H3 woven plastic outer packaging with inner plastic receptacle testing under UN 6.1.5 drop and stack conditions; for food ingredient sacks, FDA 21 CFR 177.1520(c) and EU Regulation 10/2011 apply. Formulation adjustments include 0.1–0.5 wt% hindered amine light stabilizer for outdoor exposure, 2–3 wt% carbon black masterbatch for opacity and UV screening, and 0.02–0.08 wt% fluoropolymer PPA; slip levels are kept below 800 ppm active erucamide because higher slip reduces the friction angle on palletized sacks and creates stack instability. Processing on heavy-duty blown film lines uses die gap 1.8–2.2 mm, blow-up ratio 2:1–3:1, and melt temperature 210–240 °C; the thicker film requires air-ring chilling with air temperature 10–18 °C to maintain 25–35% haze and avoid post-extrusion machine-direction shrinkage above 3%. Terminal products include valve sacks for cementitious powders, FIBC inner liners, drum liners for polymer pellets, and agricultural chemical bags with a 50–70 µm inner ply.
In lamination base film production, HDPE H5615F is extruded as a 15–30 µm web with die gap 1.0–1.4 mm, blow-up ratio 2.5:1–3.5:1, and melt temperature 200–220 °C, then corona treated to 38–42 mN/m surface energy as measured by ASTM D2578; treatment decay below 36 mN/m within 24 h causes adhesive skip and tunneling on solventless lamination lines. Published data for high-speed solventless lamination of HDPE H5615F at line speeds above 350 m/min is limited, but standard lamination practice indicates that corona-treated HDPE base film must be laminated within 48 h of surface activation. Compliance for the food-contact inner layer is assigned under EU Regulation 10/2011 with specific migration limits for the laminating adhesive evaluated under OM1 or OM2 food simulants depending on pouch content; FDA compliance is covered by 21 CFR 177.1395 for the high-temperature laminating adhesive and 21 CFR 177.1520(c) for the HDPE substrate. Formulation of the base web typically excludes slip agents above 300 ppm because migration to the surface within 48 h reduces interfacial tension and delamination bond strength below 2.0 N/15 mm when tested under ASTM F904; antiblock is added at 1,000–2,000 ppm to prevent blocking of the corona-treated surface. Production-scale lamination uses solventless polyurethane adhesives at 1.5–2.5 g/m² coat weight and nip temperatures of 40–60 °C; the HDPE web contributes moisture barrier and stiffness, reducing the overall water vapor transmission rate of a 12 µm BOPP/18 µm HDPE structure to 3–5 g/m²·day at 38 °C/90% RH under ASTM F1249. Terminal products are stand-up pouches for dry mixes, sachets for drink powders, and strip packaging for solid oral dosage forms where moisture protection but not oxygen barrier is the controlling requirement.
| Application segment | Standard or regulation | Method or clause | Threshold or condition |
|---|---|---|---|
| Dry-food direct contact | FDA 21 CFR 177.1520(c) | Olefin polymer specification | Overall migration below 10 mg/dm² |
| Dry-food direct contact | EU Regulation 10/2011 | OM2 food simulant | Additive-specific migration limits applicable |
| Retail carrier bags | EU Directive 94/62/EC | Packaging heavy-metal limits | Lead, cadmium, mercury, hexavalent chromium sum below 100 ppm |
| Waste containment liners | EN 13592 | Refuse sack dimensions | Capacity and dimensional tolerance classes |
| Heavy-duty industrial sacks | UN 13H2/13H3 | Inner plastic receptacle testing | Drop and stack tests under UN 6.1.5 |
| Lamination base film | ASTM D2578 | Wetting tension test | Surface energy 38–42 mN/m |
| Frozen food packaging | EU Regulation 10/2011 | OM3 food simulant | Migration testing at 20 °C/10 days |
| Frozen food packaging | ASTM D5748 | Puncture propagation | Puncture resistance at frozen conditions |
Coextruded three-layer structures using HDPE H5615F as the stiff core or outer layer and metallocene LLDPE as the sealant layer are produced for frozen vegetable and seafood packaging. The concentration of HDPE in the core is 40–60 wt% of the total film structure, with each LLDPE skin at 15–30 wt%; layer ratio is controlled by gravimetric hoppers and feedblocks on 3-layer spiral mandrel dies with die diameter 150–350 mm. Compliance for frozen food contact is established under FDA 21 CFR 177.1520(c) and EU Regulation 10/2011; frozen foods are simulated with OM3 conditions, and migration testing at 20 °C/10 days is specified because the film is stored below -18 °C in service. The processing window is narrower than for monolayer film: melt temperature of the HDPE core is maintained at 210–230 °C, while LLDPE skins run at 190–210 °C to avoid overheating the metallocene component and generating gel specks; die gap is 1.2–1.8 mm, blow-up ratio 2:1–3:1, and internal bubble cooling air temperature is held at 5–10 °C to prevent blocking of the sealant layer. The critical defect in this application is interlayer melt instability at the die exit, which appears as wavy interface distortion when the viscosity ratio between HDPE and LLDPE exceeds 3:1 at 210 °C and shear rates of 50–200 s⁻¹. Formulation includes slip agent at 500–1,000 ppm in the sealant layers only, antiblock at 1,500–3,000 ppm, and no migration-prone additives in the core. Terminal products include freezer bags, frozen vegetable pouches, ice-cube bags, and seafood block packaging with film gauge 30–60 µm; seal initiation temperature of the LLDPE skins is 90–105 °C, while the HDPE core maintains stiffness and puncture resistance under ASTM D5748 at frozen storage conditions.
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