| HS Code | 185114 |
| Density | 0.960 g/cm³ |
| Melt Flow Rate | 7.0 g/10 min (190°C/2.16 kg) |
| Tensile Strength At Yield | 28 MPa |
| Elongation At Break | >600% |
| Flexural Modulus | 1,100 MPa |
| Notched Izod Impact Strength | 50 J/m (23°C) |
| Shore D Hardness | 65 |
| Vicat Softening Point | 126°C |
| Heat Deflection Temperature | 70°C (0.45 MPa) |
| Melting Point | 134°C |
| Environmental Stress Crack Resistance | >1,000 h |
| Water Absorption | <0.01% |
| Coefficient Of Linear Thermal Expansion | 1.2E-4 /°C |
| Dielectric Constant | 2.3 (1 MHz) |
| Volume Resistivity | >1E15 ohm·cm |
| Thermal Conductivity | 0.45 W/m·K |
| Specific Heat | 1.9 kJ/kg·K |
| Brittleness Temperature | < -70°C |
As an accredited NPCA (Philippines) HDPE HD6070EA factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | NPCA (Philippines) HDPE HD6070EA is packaged in 25 kg polyethylene-lined woven bags, 40 bags per pallet (1,000 kg). |
| Container Loading (20′ FCL) | 20′ FCL dry container loaded with NPCA (Philippines) HDPE HD6070EA, 25 kg bags, palletized, 18 MT net, export shipment. |
| Shipping | NPCA (Philippines) HDPE HD6070EA ships as a non-hazardous, non-regulated solid polyethylene resin in 25 kg bags or bulk containers. Keep dry, cool, and away from UV, heat, and contaminants. Use standard PPE and secure, palletized loads for safe transport. |
| Storage | Store NPCA (Philippines) HDPE HD6070EA in a cool, dry, well-ventilated warehouse, away from direct sunlight, heat, flames, and oxidizing agents. Keep original bags sealed, off the floor on pallets, and protect from moisture, dust, and contaminants. Practice FIFO. Avoid prolonged UV exposure and excessive stacking. Store separately from incompatible materials. Inspect packaging regularly for damage. |
| Shelf Life | Shelf life is 24 months when stored in original, unopened packaging in a cool, dry, well-ventilated area away from sunlight. |
On shuttle-type extrusion blow moulding lines processing NPCA Philippines HDPE HD6070EA into 10 L to 25 L agri-chemical jerricans and UN-rated drums, the nominal melt mass-flow rate of 0.70 g/10 min at 190 °C/2.16 kg (ISO 1133-1:2022) and nominal density of 0.960 g/cm³ (ISO 1183-1:2019) establish a relatively narrow die-head temperature window for large-container extrusion blow moulding. Continuous shuttle machines with accumulator head capacities of 2.5 kg to 5.0 kg and L/D 24:1 to 30:1 screws typically hold the rear barrel zone at 170 °C to 185 °C, midsections at 180 °C to 200 °C, and the die head at 195 °C to 210 °C. Production-scale behaviour in 10 L to 25 L jerrican tooling shows that die-gap variation of ±0.15 mm at a nominal 1.5 mm gap can shift upper sidewall thickness by 0.2 mm to 0.4 mm after parison inflation; closed-loop die-gap control or 10 to 25 point parison programming is therefore required when the minimum wall after trimming is specified at 1.2 mm. Mould cooling channels with high-conductivity pinch-off inserts hold mould surface temperatures at 15 °C to 30 °C, while blow pressure is maintained at 0.6 MPa to 0.9 MPa. For UN 3H1 jerrican qualification, the drop-test protocol is conducted on containers conditioned at -18 °C for 24 h and filled to 98% of overflow capacity with water-antifreeze medium; the failure mode shifts from ductile bulging to pneumatic shock cracking at the pinch-off or handle weld when the melt temperature at the die is pulled below 185 °C or when clean HDPE regrind exceeds 20 wt%. Pre-drying is not required at ambient relative humidity below 60%; however, condensation on cold pellets transferred from outdoor silos is eliminated by a hopper dryer at 60 °C for 15 min to 30 min when line intake crosses the dew point.
| Parameter | Set point / Range | Monitoring method |
|---|---|---|
| Melt temperature at die exit | 195 °C to 210 °C | Infrared melt pyrometer at parison drop |
| Barrel profile | 170–190–200–205 °C | SCADA melt-pressure transducer |
| Die gap | 1.2 mm to 2.5 mm | Dial indicator on accumulator head |
| Blow pressure | 0.6 MPa to 0.9 MPa | Pressure regulator at accumulator |
| Mould temperature | 15 °C to 30 °C | In-mould thermistor |
| Cycle time for 25 L | 60 s to 90 s | Machine PLC cycle counter |
The dominant control variable for parison swell repeatability in shuttle-type blow moulders producing 500 mL to 2 L household chemical and agrochemical bottles from HD6070EA is the balance between melt-pump consistency, die land-length ratio, and head pressure. Weight swell at 195 °C commonly ranges from 55% to 75% depending on die geometry, while diameter swell lies between 25% and 35%; these values are not fixed resin constants but shift with throughput and downstream cooling load. When die-head pressure falls below 15 MPa, output per stroke becomes pressure-limited rather than screw-limited, producing parison length variation of ±3% to ±5% across consecutive shots. Single-cavity shuttle machines are therefore operated with 70% to 85% shot size relative to accumulator capacity, and the parison programmer should reserve at least 12 control points for shoulder, sidewall, pinch-off, and tail-flash thickness. Drop impact testing of moulded bottles per ASTM D2463-15 indicates that sidewall thickness at the lower bellows transition must not fall below 0.8 mm when filled with aqueous bleach formulations at 25 °C. For aggressive active-ingredient formulations such as 40% glyphosate concentrates or chlorinated solvent emulsions, environmental stress-cracking resistance of the moulded polymer is evaluated on compression-moulded plaques per ASTM D1693-15 Condition B at 50 °C in 10% Igepal CO-630 solution. The density of 0.960 g/cm³ generally provides higher top-load stiffness and lower permeation than medium-density polyethylene, but stress-crack resistance is inherently lower than a 0.945 g/cm³ material; converters balance reduced melt temperature, maintained head pressure, and 10 wt% to 20 wt% clean HDPE regrind to preserve drop and ESCR margins without introducing gel defects in the pinch-off zone.
In flat-die sheet extrusion of textured HDPE geomembrane at thicknesses from 1.0 mm to 3.0 mm, HD6070EA runs on single-screw extruders with barrier screws and grooved feed sections at L/D 30:1 to 36:1. The flex-lip die is adjusted to a lip gap of 1.5 mm to 2.5 mm, while the polished roll stack is held at 80 °C to 95 °C on the top roll and 70 °C to 85 °C on the lower cooling rolls to minimise thickness-dependent crystallinity gradients. With melt temperature at 195 °C to 210 °C at the die, melt strength of a 0.70 g/10 min resin is adequate for 3 m to 6 m wide sheet at line speeds of 2 m/min to 8 m/min, but edge bead instability becomes visible when the draw ratio between die exit and roll-bank entry exceeds 1.2:1. In landfill liner and mining heap-pad containment, the HDPE geomembrane must meet oxidative induction time above 100 min when tested at 200 °C per ASTM D3895 and above 400 min under high-pressure oxygen per ASTM D5885. Stress-crack resistance is evaluated on notched specimens at 30% of yield stress in 10% Igepal CO-630 plus 10% air-sparged water at 50 °C following ASTM D5397. Because HD6070EA is not a bimodal PE100 resin, geomembrane converters generally limit the material to low-stress containment liners and do not specify it for unsupported steep-slope installations where sustained tensile stress exceeds 15% of yield for more than 10,000 h at 40 °C. Published data for this specific configuration is limited; the above window represents standard process capability from industrial flat-die sheet lines rather than municipal landfill liner certification values.
Dual-wall corrugated drainage pipe production from HD6070EA uses a grooved-feed extruder with an L/D 30:1 barrier screw and a downstream corrugator with water-cooled mould blocks operating at 2.5 m/min to 5.0 m/min for 100 mm to 300 mm outside-diameter product. Pipe stiffness at 3% deflection is measured by ISO 9969:2016, and specification compliance for gravity-flow storm drainage commonly references AASHTO M294 Type S pipe. At a density of 0.960 g/cm³, ring stiffness is higher than a 0.945 g/cm³ medium-density polyethylene at equal wall thickness; however, the slower crack-growth performance of a unimodal HDPE restricts the grade to non-pressure drainage rather than gas distribution or potable-water pressure service under ISO 4437. Process stabilisation focuses on the corrugator vacuum and internal air system: vacuum of 15 kPa to 25 kPa holds the extruded tube against corrugator blocks, while internal air pressure of 5 kPa to 15 kPa maintains the pipe inside cavity. Wall thinning at the corrugation root appears above 4.5 m/min line speed when melt temperature exceeds 215 °C, shifting parallel-plate loading failure from acceptable buckling at 5%–8% deflection to premature inner-wall cracking. The pinch-off weld formed by corrugator block halves must remain above 60% of minimum specified wall thickness, and incoming pellet cleanliness is controlled to avoid inorganic contamination that can initiate slow crack growth in drainage water containing detergent traces.
When the structural core of a coextruded barrier bottle is produced from HD6070EA, the polyethylene layer must retain at least 70 wt% to 80 wt% of total wall thickness while adhesive tie resin and barrier layers occupy the remaining fraction. The processing conflict arises because EVOH and polyamide barrier layers demand head temperatures of 220 °C to 240 °C for gel-free flow, whereas the HDPE core should remain below 210 °C to prevent viscosity loss and thermal discolouration. Coextrusion feedblocks separate the melt paths: the polyethylene extruder is profiled at 170–185–195–200 °C, while the barrier-layer extruder is profiled at 200–220–230–235 °C. The common die body is held at 210 °C to 220 °C, with the constraint that residence time of the HDPE melt at the metal interface remains below 120 s to avoid carbonyl formation detectable by FTIR above 0.05 absorbance units at 1715 cm−1. Bottle sidewalls from 1.0 mm to 1.5 mm total thickness are distributed by parison programming; the HDPE core supplies column crush resistance measured as top load at 12.5 mm/min compression on a universal testing machine, with failure loads commonly above 350 N for a 1 L cylindrical bottle. Chemical compatibility with aromatic solvents remains a core function, because the barrier layer controls steady-state permeation, but any permeate condensing at the tie interface contacts the HDPE structural layer continuously. Interlayer adhesion is checked by a sharp-blade peel test on a 25 mm wide specimen; cohesive failure within the HDPE layer is preferred over adhesive failure at the tie interface. Drop impact from 1.2 m at 23 °C is evaluated per ASTM D2463-15 or customer-specific ISTA 3A protocols, with pass criterion of no liquid leakage and no structural cracking.
At -18 °C, the dominant failure mode in blow moulded 25 L jerricans shifts from ductile bulging to brittle crack propagation at the pinch-off weld and bottom chime corner. Drop testing of HD6070EA containers after conditioning at -18 °C for 24 h generally requires the minimum pinch-off flash thickness to be 0.7 mm above the moulded wall, because the flash acts as a sacrificial stress concentrator and must not be trimmed flush where the mould parting line intersects the base. The sidewall thickness distribution across the chime corner should not fall below 70% of nominal sidewall thickness; otherwise, a 1.2 m drop test at Packing Group II fill level can generate through-wall cracks that propagate along the flow-induced weld line. ESCR evaluation is performed on compression-moulded plaques per ASTM D1693-15 in 10% Igepal CO-630 at 50 °C; blow moulders generally specify notched conditions and record failure time in hours rather than using pass/fail notation alone. For molten product contact with concentrated household bleach, liners made from HD6070EA show a maximum continuous service temperature of 40 °C under stacked load, above which stress cracking can initiate at the handle attachment if top load exceeds 250 kg on a pallet of 25 L units. When high-purity hydrocarbon solvents are packed, storage temperature should not exceed 35 °C for periods longer than 12 months, because permeability and environmental stress-crack growth increase simultaneously. The density of 0.960 g/cm³ contributes to lower permeation and higher stiffness, but the additive package neutralisation profile must be verified for long-term ESCR; converters should not blend with high-melt-index injection moulding regrind above 15 wt% because resulting viscosity heterogeneity weakens pinch-off weld integrity. No standardised international test covers all compounded product geometries; therefore, internal production-scale validation with filled containers remains the controlling test for each new tool design.
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NPCA (Philippines) HDPE HD6070EA is specified as a high-density polyethylene extrusion blow-molding grade characterized by a nominal melt mass-flow rate of 0.70 g/10 min at 190 °C/2.16 kg (ISO 1133-1:2022) and a nominal density of 0.960 g/cm³ (ISO 1183-1:2019). The material is used for rigid packaging, industrial pails, jerry cans, and technical blow-molded parts in which top-load strength, environmental stress-cracking resistance, and parison melt strength are controlling parameters. Relative to film-grade high-density polyethylene with melt flow rates above 4 g/10 min, HD6070EA exhibits lower melt flow and higher die swell, which limits its use in thin-gauge cast film but improves parison stability in large-part blow molding. Relative to bimodal pipe-grade HDPE containing a high-molecular-weight fraction, the resin provides lower extruder torque and easier processing at standard blow-molding melt temperatures, while trading away some slow-crack-growth performance measured by ASTM D1693-15.
The producer certificate of analysis for HD6070EA controls the exact lot-specific values. The following ranges are representative of producer-reported data and should be read as typical property windows rather than guaranteed specification limits unless separately listed on a commercial specification sheet.
| Parameter | Test method | Typical value or range |
|---|---|---|
| Melt mass-flow rate, 190 °C/2.16 kg | ISO 1133-1:2022 | 0.65–0.75 g/10 min |
| Density | ISO 1183-1:2019 | 0.958–0.962 g/cm³ |
| Tensile stress at yield, 50 mm/min | ISO 527-2:2012 | 27–31 MPa |
| Tensile strain at break | ISO 527-2:2012 | ≥600 % |
| Flexural modulus, 2 mm/min | ISO 178:2019 | 1,100–1,400 MPa |
| Environmental stress-cracking resistance, 100 % Igepal CO-630, F50 | ASTM D1693-15 | ≥50 h |
| Vicat softening temperature, A50, 10 N | ISO 306:2022 | 124–128 °C |
Batch-to-batch melt flow drift is typically held within ±0.03 g/10 min by producer statistical process control, though published data for this specific configuration is limited beyond the certificate of analysis. When regrind content is introduced, the effective melt flow and molecular weight distribution shift should be rechecked before release to production because repeated shear history broadens the molecular weight distribution and reduces parison melt strength.
On a continuous shuttle blow-molding line equipped with a 75 mm grooved-feed extruder having a 24:1 L/D ratio and a 3.5 L accumulator head, the melt temperature should be held between 190 °C and 210 °C. The low melt flow rate raises head pressure relative to a 1.0 g/10 min general-purpose blow-molding HDPE by approximately 5–10 % at constant screw speed. This pressure increase is compensated by reducing the barrel temperature profile by 10–15 °C or by increasing the die gap. Parison sag measurements on shot weights above 1.5 kg indicate that HD6070EA maintains parison length under gravity longer than a 0.95 g/10 min grade, reducing wall-thickness non-uniformity in the pinch-off region. Die swell is typically 35–50 % depending on die land length, die gap, and melt relaxation; tooling with a high blow-up ratio should be avoided when part weight exceeds 5 kg because increased swell amplifies flash thickness and handle webbing.
| Processing condition | Range |
|---|---|
| Barrel zone 1, feed | 170–180 °C |
| Barrel zone 2, compression | 180–190 °C |
| Barrel zone 3, metering | 190–200 °C |
| Head/die | 195–210 °C |
| Melt temperature at die exit | 190–215 °C |
| Mold temperature | 10–25 °C |
| Blow air pressure | 0.5–0.7 MPa |
| Parison die gap | 0.6–1.4 mm for part weights 0.5–5 kg |
| Screw speed | 40–80 min⁻¹ |
The difference arises primarily from molecular weight distribution and shear-thinning response. Bimodal pipe-grade HDPE contains a high-molecular-weight fraction that raises zero-shear viscosity, extruder torque, and head pressure. HD6070EA has a narrower molecular weight distribution that reduces low-shear viscosity and improves die flow at blow-molding temperatures. On a 25:1 L/D smooth-bore extruder, substitution of a bimodal resin with an MFR near 0.20 g/10 min by HD6070EA typically reduces motor load by 8–12 % at identical set temperatures and screw speed. The trade-off is environmental stress-cracking resistance: the bimodal pipe-grade resin generally records F50 times above 100 h in ASTM D1693-15, whereas HD6070EA is specified at ≥50 h. Consequently, jerry cans exposed to aggressive ester-based agricultural chemicals should not be considered interchangeable with bimodal pipe-grade liners without validating full-container ESCR under ISO 22088-3:2006. Direct published comparison data for this specific configuration is limited; the contrast is derived from melt rheology principles and producer processing guidance for the two resin families.
In contrast to thin-wall injection-molding HDPE grades with MFR values above 20 g/10 min, HD6070EA is not suitable for high-speed injection molding of multi-cavity closures because the high melt viscosity prevents complete filling of ribs smaller than 0.8 mm at conventional injection pressures below 120 MPa. Where injection molding is unavoidable, a reciprocating-screw machine with a 20:1 L/D barrel and positive compression screw is recommended, and melt temperature should be raised to 220–240 °C. Published data for this specific configuration is limited, so mold-filling simulation should be used before cutting tool steel.
Compared with LLDPE-rich blow-molding blends at equivalent part gauge, HD6070EA exhibits a flexural modulus roughly 3–4 times higher, which increases top-load strength in 20 L pails and jerry cans. The trade-off is lower low-temperature dart impact resistance; parts intended for cold-chain service below −20 °C should be evaluated by instrumented impact testing according to ISO 6603-2:2023 rather than assuming equivalence with LLDPE-based formulations.
High-density polyethylene is not hygroscopic, but surface moisture and condensation on cold pellets stored in unsealed bins at relative humidity above 60 % can generate splay, pitting, and internal bubbles in thin-wall blow-molded parts. The low MFR of HD6070EA increases the risk because higher melt pressure and shear heating do not remove surface water before it reaches the die. Under these conditions, pre-drying for 2 h at 80 °C or use of a hopper dryer at 70 °C is required before processing; otherwise, parison surface roughness and melt fracture can appear at die gaps below 0.6 mm. Avoid combination with amine-based antistatic additives unless the stabilizer package is verified for extended high-temperature residence, because amines can reduce oxidative induction time measured by ISO 11357-6:2018.
Chemical compatibility for HD6070EA follows the standard olefinic hydrocarbon resistance pattern. The resin is generally resistant to dilute acids, bases, and aqueous salt solutions below 60 °C, but is attacked by strong oxidizing acids such as concentrated nitric acid and is swollen by aromatic and chlorinated solvents. Permeation tests should follow ASTM D543-21 or ISO 22088-3:2006 when active-ingredient barrier performance is critical. For food-contact applications, the producer typically certifies compliance with FDA 21 CFR 177.1520 olefin polymer requirements when requested, but lot-specific documentation must be obtained before use.
Production-scale failure modes on blow-molding lines running low-MFR HDPE grades include pinch-off weld-line thinning, tail flash cracking, and intermittent parison folding in low-weight containers. On accumulator-head machines with clamp force below 100 kN, HD6070EA may require a minimum shot size of 1 L because smaller shots exhibit excessive die swell and can form folded parisons if the head is not sized correctly. The material also shows a tendency toward higher post-extrusion shrinkage in thick handles due to differential cooling; mold cooling circuits should maintain 15–25 °C at the handle core to reduce handle distortion and sink marks.
When regrind content exceeds 25 %, melt flow drift and parison sag can become significant because the molecular weight distribution broadens with repeated shear history. Production lines that run closed-loop regrind at 30–50 % usually require a 5–10 °C reduction in die temperature to compensate for reduced melt strength. Melt filtration through a screen pack of 60/80/100 mesh is recommended to remove degraded gel particles when regrind streams are used continuously, particularly in 10 L and larger industrial containers where wall thickness exceeds 2.5 mm.