| HS Code | 484321 |
| Density | 0.958 g/cm³ |
| Melt Flow Rate 190 C 5 Kg | 0.25 g/10 min |
| Melt Flow Rate 190 C 21 6 Kg | 6.0 g/10 min |
| Tensile Modulus | 1200 MPa |
| Tensile Stress At Yield | 25 MPa |
| Tensile Strain At Break | >600% |
| Charpy Notched Impact Strength 23 C | 10 kJ/m² |
| Charpy Notched Impact Strength 30 C | 6 kJ/m² |
| Vicat Softening Temperature | 125 °C |
| Melting Temperature | 130 °C |
| Thermal Conductivity | 0.38 W/m·K |
| Carbon Black Content | 2.0-2.5% |
| Oxidation Induction Time 200 C | >20 min |
| Moisture Content | <0.05% |
| Volume Resistivity | >1E14 ohm·cm |
| Dielectric Constant | 2.3 |
| Mrs Classification | PE100 (10.0 MPa) |
As an accredited LyondellBasell HDPE HY55430 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | LyondellBasell HDPE HY55430 is supplied in 25 kg polyethylene bags, typically palletized for bulk transport and storage. |
| Container Loading (20′ FCL) | 20′ FCL container loading of LyondellBasell HDPE HY55430: 25 kg bags on pallets, evenly distributed and secured for safe transport. |
| Shipping | LyondellBasell HDPE HY55430 is a non-hazardous polyethylene resin. It is typically shipped in 25 kg bags or 1000 kg bulk bags, palletized and stretch-wrapped. Transport as general cargo. Store in a cool, dry, ventilated area away from heat, direct sunlight, and contamination. |
| Storage | Store LyondellBasell HDPE HY55430 indoors in a cool, dry, well-ventilated, covered area away from direct sunlight, heat, sparks, flames, and strong oxidizers. Keep original containers closed to prevent moisture, dust, and contamination. Avoid prolonged UV exposure and extreme temperatures. Use first-in, first-out stock rotation. Maintain clean handling areas; do not smoke. Follow local regulations and the supplier’s SDS. |
| Shelf Life | HDPE HY55430 is stable under normal storage; no defined shelf life. Keep sealed, cool, dry, away from sunlight, heat, and ignition sources. |
In accumulator-head blow molding of UN-rated tight-head drums and jerrycans, die-parison stability between die lip and mold close controls the attainable wall thickness distribution more than any other variable. HY55430 is processed on single-station machines with 60–80 mm grooved-barrel extruders, 25:1 L/D ratios, and axial or radial accumulator heads having shot capacity 5–25 kg. Melt temperature is maintained between 180 °C and 220 °C; temperatures below this plateau raise back pressure and produce visible sharkskin on the parison surface, while temperatures above 230 °C reduce melt tenacity and accelerate parison sag over parison lengths above 1.2 m. Die gap settings for 20–30 L jerrycans are typically 2.0–3.5 mm, and blow-up ratios of 2:1 to 3:1 keep hoop-direction orientation high enough to resist hydraulic bulge without causing excessive anisotropic shrinkage. Mold temperature is held at 10–40 °C to shorten cycle time while preserving interfacial weld-line strength at the pinch-off. For UN 1H1 and 3H1 packages, design type approval follows the UN Model Regulations Chapter 6.1.5, including drop tests at -18 °C, stack tests for 28 days, and leakproofness checks. On production-scale tools, the limiting rejection mode is seldom gross rupture; more frequently, ultrasonic thickness mapping of the parison-programmed corners reveals wall thinning below 1.2 mm, which invalidates the minimum wall specification agreed with the certifier. Pre-compounded carbon black masterbatch at 2.0–2.5 wt% is added when outdoor storage exposure is specified to 24 months; the dispersion is checked by ISO 18553 to avoid agglomerates that initiate environmental stress cracks in filled containers. Because HY55430 is a high-molecular-weight HDPE with a low melt flow rate, screw speed is not used as the primary output control; parison shot weight and accumulator pressure are adjusted to deliver 30–40% of total cycle time as parison extrusion, 20–30% as inflation, and the remainder as cooling and ejection.
| Packaging requirement | Standard/Reference | Typical HY55430-specific criterion |
|---|---|---|
| Melt flow rate | ISO 1133-1:2022 | 0.3 g/10 min at 190 °C/5 kg |
| Density | ISO 1183-1 | 0.955 g/cm³ |
| Environmental stress cracking resistance | ASTM D1693 condition B | F50 > 300 h for aggressive liquid packaging |
| Design type drop test | UN Model Regulations Chapter 6.1.5 | No leak or rupture at -18 °C and 1.2 m drop height for 20–30 L; minimum wall 1.2 mm at corners |
| Stack test | UN Model Regulations Chapter 6.1.5 | No instability after 28 days at 40 °C |
Blow molded reservoirs for windshield washer fluid, coolant expansion surge tanks, and hydraulic oil storage are produced from HY55430 on accumulator-head machines with parison programming configured for asymmetric wall thickness, because these parts routinely contain injection-molded spigots, slosh baffles, and float-valve mounts. The acceptance envelope does not rely solely on ESCR; instead, OEM material specifications add heat ageing at 100–120 °C for 500–1,000 h, vibration testing on a shaker table at 10–200 Hz with 2–5 g, and cold impact at -30 °C. In such tests, the pinch-off line across the mold parting plane becomes the dominant failure initiation site if the pre-pinch parison temperature drops below 160 °C prior to mold close. Tooling for washer bottles uses head tooling with diverging die angles from 10° to 20°, and blow pins are cooled to 10–20 °C to stabilize the neck inner diameter for spin-welded or gasketed caps. On a production line with 80–120 t clamp force, cycle times for a 4.5 L reservoir fall between 45 s and 70 s when mold temperatures are kept at 15–35 °C. The use of 2.0–2.5 wt% carbon black masterbatch provides UV weathering resistance sufficient for under-hood and external agricultural vehicle installations; weatherability is validated by ISO 4892-2 or SAE J2412. Chemical compatibility is evaluated according to OEM standards that often mirror ISO 16101 or ASTM D543 practice, with test fluids including 50/50 ethylene glycol/water, brake fluid, and hydraulic oil. If the reservoir is intended for fuel-adjacent service, permeation requirements are not met by an untreated monolayer HDPE wall; published data for this specific configuration is limited, and a separate barrier layer or surface treatment is required to comply with EPA/CARB evaporative emission limits.
Coextrusion lines producing six-layer agricultural chemical containers select HY55430 for the outer structural layer because its melt strength supports a parison containing an EVOH barrier layer without randomizing layer thickness. HY55430 is specified at 35–45 wt% of total wall mass, with the coextrusion die manifold temperatures run 10–15 °C above monolayer settings, generally 220–230 °C, to balance the viscosity of the HDPE with the barrier resin and maleic anhydride-grafted tie layer. Layer-thickness control is monitored by cross-sectional microscopy at the pinch-off and along the sidewall; acceptable EVOH continuity is defined as no layer break or thinning below 3 µm over a 1 L container. For a 5 L jerrycan, the HDPE skins provide tensile stiffness, while the middle barrier controls permeation of xylene, cyclohexanone, and ester solvents. Chemical resistance of the outer layer is assessed by ASTM D543-21 weight and dimensional change after 21 days immersion; the requirement is typically less than 1.0% weight gain. Blow-up ratio is kept between 2.2:1 and 2.8:1 because higher ratios stretch the EVOH layer beyond its elongation limit and create visible flow lines on the outer surface. The die gap is increased by 0.5–1.0 mm relative to monolayer tools to accommodate the thicker parison and to avoid shear-induced delamination between the HDPE and tie resin. On accumulator-head machines, parison programming curves are flattened by 10–15% at the top of the container to prevent the barrier layer from thinning at the shoulder radius, where drop impact tests under 1.2 m drop height and -18 °C produce the highest failure frequency. Containers for UN 3H1 service undergo the same design type testing, but the multilayer structure must be explicitly listed in the test report.
Blow molded pails, wide-mouth jars, and industrial containers using snap-on polyethylene lids depend on die swell at the die lip to hold closure finish dimensions after cooling. HY55430, like other high-molecular-weight HDPE grades, exhibits pronounced shear-thinning and parison diameter expansion when the extruded melt exits a diverging die; the swell ratio is typically controlled between 15% and 25% by adjusting die land length, draw-down, and melt temperature. On a container with a 185 mm finish diameter, a die diameter of approximately 155–165 mm is common, but the exact value is tooling-specific. If the die land temperature is not maintained within 5 °C circumferentially, the finish becomes oval by more than 0.8 mm, and the plug lid loses its leakproofness under 30–50 kPa internal air pressure testing. Blow pins with calibrated neck inserts are used rather than free parison necks when the lid must seal without foam or elastomer gasketing. The pin temperature is held at 10–15 °C to lock in diameter before shrinkage. HDPE post-mold shrinkage continues for 24–48 h; dimensional inspection is therefore postponed until the part reaches ambient equilibrium, and ISO 291 conditioning is applied before final measurements. Apart from diameter, the top-load requirement is checked by ASTM 2659-16 or an internal method at 600–900 N for a 20 L pail, and the failure mode is typically sidewall buckling rather than finish cracking when wall thickness is maintained above 1.5 mm. In practice, processors reduce die swell variability by keeping regrind proportion below 20 wt% for close-tolerance finishes, because mixed pellet and regrind feed introduce thermal history differences that shift the melt elasticity and broaden the diameter distribution by 0.3–0.5 mm on a 185 mm neck.
When heavy-gauge sheet for thermoformed automotive underbody shields and industrial dunnage trays is produced, HY55430 moves from accumulator-head blow molding to flat-die sheet extrusion with a barrier screw and a 1,000–1,600 mm slot die. The melt temperature for sheet is elevated to 210–230 °C, and the polished three-roll stack is set at 60–90 °C on the middle roll to control crystallinity and flatten the sheet. Gauge uniformity is maintained by a gravimetric feeding system tied to a thickness gauge that scans across the web; the process capability index Cp for thickness is often required above 1.33 for a 5 mm sheet, meaning a standard deviation below 0.13 mm. HY55430's broad molecular weight distribution reduces draw resonance at the die exit, but die-lip buildup from low-molecular-weight components can create machine-direction ridges if the die lips are not cleaned at intervals linked to output tonnage. The extruded sheet is thermoformed on double-sided vacuum machines with plug assist at sheet surface temperatures between 150 °C and 165 °C. Mold temperatures of 20–40 °C freeze the part geometry after a forming time of 20–35 s for a 4–6 mm nominal wall. Terminal parts such as vehicle underbody shields are validated by multi-axial impact test ISO 6603-2 at -20 °C and 23 °C; the HDPE part typically shows ductile punching rather than brittle fragmentation. Abrasion resistance against gravel is assessed by ISO 9352 or OEM-specific methods, with the limitation that unpainted HDPE surfaces lose gloss after abrasion cycles but retain structural integrity. Thermoformed dunnage used in returnable logistics must withstand edge crush and repeated forklift loading; the top-load capacity of a twin-sheet formed tray with 3–5 mm skins is governed by weld integrity at the twin-sheet interface, which is checked by sectioning and by tensile tests at 10 mm/min crosshead speed following ISO 527-1.
Regrind re-incorporation into HY55430 containers imposes regulatory, mechanical, and rheological constraints before a batch is released. For UN-rated containers, the design type approval must address the use of regrind if the fraction exceeds 10 wt% of the mass of the packaging, and some certifiers require that the regrind be generated from the same packaging type and be free of contamination. Accumulator-head machines receiving 30–50 wt% regrind often show wider shot-to-shot weight variation, because bulk density fluctuations and larger particle size distribution in ground scrap affect feed throat conveying. The melt flow rate at 190 °C/5 kg may shift upward by 0.05–0.10 g/10 min after repeated heat histories, lowering parison hang strength by a measurable but process-tolerable degree if the regrind is not degraded. Environmental stress cracking resistance by ASTM D1693, condition B, is the most sensitive property: regrind incorporation above 30 wt% can reduce F50 values below 300 h, and this effect is accelerated if the scrap contains oxidized fines from edge trim. On a 220 L tight-head drum, the limiting failure in drop testing shifts from mid-body craze to pinch-off and parting-line fracture when the regrind content exceeds 50 wt%, especially at -18 °C. For internal rework, the regrind is screened to remove fines below 250 µm, stored in a dry silo, and blended with virgin pellets by gravimetric dosing; if the ambient relative humidity is above 60%, surface moisture on the regrind is removed by drying at 80 °C for 2–3 h to prevent splay in the parison. Quality audits compare the regrind-containing compound against virgin resin data for density, melt flow, ESCR, and notched Izod impact; the last is determined by ISO 180 or ASTM D256 at 23 °C. If the regrind source includes externally sourced HDPE containers of unknown additive package, the risk of incorporation is higher: metal stearate residues, calcium carbonate fillers, and anti-block additives can alter the crystallization behavior of the melt and reduce the consistency of the pinch-off weld. Therefore, external regrind is excluded from type-approved packaging unless the source stream is fully characterized and the finished container passes the same design type tests as a virgin-material container.
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LyondellBasell HDPE HY55430 is a bimodal high-density polyethylene produced through the Hostalen ACP cascade process. The grade is specified for extrusion blow moulding of industrial containers, jerry cans, agricultural chemical packaging and structural layers in multi-layer barrier containers. The molecular architecture combines a high-molecular-weight fraction with a low-molecular-weight fraction to deliver a controlled balance among environmental stress-crack resistance, stiffness and parison melt strength.
For incoming resin control, the relevant properties are the melt flow rate under ISO 1133-1:2022 at 190 °C and 2.16 kg, and the density under ISO 1183-1:2019. Representative values for this grade are listed below; they are not shipment guarantees and should be confirmed against the certificate of analysis for the specific lot.
| Property | Test method | Unit | Representative value |
|---|---|---|---|
| Density | ISO 1183-1:2019 | g/cm³ | 0.954–0.956 g/cm³ |
| Melt flow rate | ISO 1133-1:2022 | g/10 min | 0.40–0.50 g/10 min |
| Tensile modulus | ISO 527-2/1A/50 | MPa | 1050–1250 MPa |
| Tensile yield stress | ISO 527-2/1A/50 | MPa | 28–32 MPa |
| Elongation at break | ISO 527-2/1A/50 | % | >600 % |
| Environmental stress-crack resistance, F50 | ASTM D1693-15 Condition B, 10% Igepal | h | >1000 h |
| Notched Charpy impact, 23 °C | ISO 179-1/1eA | kJ/m² | 20–28 kJ/m² |
| Notched Charpy impact, -30 °C | ISO 179-1/1eA | kJ/m² | 10–16 kJ/m² |
| Vicat softening temperature, A/50 | ISO 306:2022 | °C | 126–130 °C |
| Shore D hardness | ISO 868 | — | 61–64 |
Test plaques for tensile and impact values are prepared according to the cited methods; blow-moulded part performance will differ because cooling rate, weld-line geometry and parison programming alter crystallinity and orientation. For UN-certified containers, the finished article must be qualified by drop impact, leakproofness and hydraulic pressure tests under the applicable UN packing group, not by resin properties alone.
The principal structural difference is the controlled bimodal molecular weight distribution produced in the Hostalen ACP cascade. The high-molecular-weight fraction is enriched with comonomer to generate tie molecules that bridge crystalline lamellae; the low-molecular-weight fraction contributes shear thinning. This architecture permits a tensile modulus above 1100 MPa while the ESCR under ASTM D1693-15 Condition B remains above 1000 h. At similar density, a conventional single-reactor chromium-catalysed HDPE can show published ESCR values below 200 h unless density is reduced or comonomer content is increased, which then sacrifices stiffness.
In extrusion blow moulding, the difference appears as parison stability and die swell. A unimodal HDPE with equivalent melt flow rate may require lower melt temperature or narrower die gap to control sag, increasing back pressure and surface defects. HY55430 is designed to maintain a die swell in the range of 40–60 % at typical shear rates, allowing a narrower die gap and better control of parison wall thickness. The shear-thinning response reduces high-shear viscosity at the die lip while retaining low-shear melt strength in the parison.
Relative to metallocene-catalysed HDPE grades of similar density, HY55430 has a broader molecular weight distribution and lower melt flow rate; it is therefore preferred for large blow moulded parts where parison sag and pinch weld strength are critical. Metallocene grades with narrow MWD may offer lower extractables, but they generally lack the melt strength required for jerry can and industrial container programmes at wall thicknesses above 1.5 mm.
The bimodal character can be quantified by the melt flow ratio and shear viscosity curve. Under ISO 11443, the grade exhibits a higher zero-shear viscosity than a unimodal HDPE at the same melt flow rate, which is why parison sag is controlled without raising density. The crossover point of storage and loss moduli is shifted to lower frequency, indicating higher melt elasticity and higher die swell. In practice, the die gap must be narrower than the intended wall thickness, and die swell should be monitored with parison length measurements during start-up.
On an accumulator-head machine with a grooved-bush extruder of 25:1 to 30:1 L/D and a barrier screw with a shear-mixing section, the barrel profile is typically set from 175–185 °C at the feed zone to 195–205 °C at the metering zone. The accumulator head is maintained 5–10 °C below die-entry temperature to limit thermal history. Back pressure of 15–25 MPa and a screw speed that prevents die-entry melt temperature from exceeding 220 °C are common starting points. Because the high-molecular-weight fraction can remain as gel-like domains at low screw speed, a mixing section is necessary to homogenise melt temperature before parison drop.
For a 20 L to 60 L jerry can tool, a blow-up ratio of 2.2:1 to 3.0:1 is typical. Die gaps from 2 mm to 5 mm are used with a parison programmer to maintain a parison drawdown ratio of 1.2:1 to 1.6:1 at the flash line. Preblow pressure ranges from 0.25 bar to 0.45 bar, final blow pressure from 0.7 MPa to 1.0 MPa, and mould temperature from 10 °C to 25 °C. The final blow pressure must be checked against tool venting; trapped air at the top chine or bottom pinch-off produces local thinning that is a primary cause of UN drop test failure.
Operational boundaries are narrow in high-output operation. If die-entry melt temperature exceeds 230 °C, the low-molecular-weight fraction degrades, producing gels, odour and reduced Charpy impact strength. Below 180 °C, sharkskin melt fracture appears at the die lip, especially with die gaps below 2 mm. When a melt pump is used, pressure fluctuations should be held within ±0.5 MPa; otherwise accumulator fill pressure variation can shift parison weight by 2–5 %, which is sufficient to create underweight sidewalls in dangerous goods containers.
Because the grade is not hygroscopic, pre-drying is usually unnecessary. However, pellets stored in outdoor silos or big bags can accumulate surface condensation when relative humidity exceeds 60 %; pre-drying at 75–85 °C for 3–4 h in a desiccant hopper dryer is then required to prevent steam splay and parison surface defects. Do not process this grade above 240 °C in any zone, and avoid contact with strong oxidising cleaning agents in the feed system.
Addition of regrind from trimmed flash and rejected containers can alter the MFR and impact balance. Because the pinch weld and flash are subjected to thermal and shear history, regrind at a ratio up to 20 wt% is usually possible, but the converter should monitor parison weight variability and gel formation. Ratios above 30 wt% may reduce Charpy impact and increase surface defects; the exact threshold is equipment-dependent.
Batch-to-batch variation in melt flow rate should be kept below ±0.05 g/10 min for stable parison length. If the MFR shifts from 0.40 g/10 min to 0.50 g/10 min, the parison weight may require a 1–2 % adjustment in die gap or accumulator fill pressure. This is small compared with colour concentrate addition, which can change viscosity.
Containers used for agricultural emulsifiable concentrates, surfactant-based cleaners, oxidising liquids and certain motor oils require resistance to slow crack growth under continuous stress. The ESCR test under ASTM D1693-15 is a common batch-release test, but it may not distinguish performance under a sustained load in aggressive fluids. For critical applications, the notched constant tensile stress test under ISO 16770-1 at 80 °C in 2 % Arkopal N100 at 4 MPa is a more discriminating method. Published data for this specific configuration is limited; converters should request lot-specific FNCT curves and use the data to set minimum wall thickness rather than relying on ESCR alone.
In service, contact with concentrated nitric acid above 40 °C, strong oxidising acids, and aromatic hydrocarbon solvents can reduce stress-crack resistance. Continuous contact with toluene-containing formulations at elevated temperature is particularly aggressive to HDPE because of swelling and accelerated crack propagation. Chemical compatibility must be tested on finished containers with the actual formulation under elevated temperature and stack load; resin-grade data alone does not substitute for this validation.
For low-temperature impact, the notched Charpy data at -30 °C provide a resin-level indication, but the dominant part-level risk is the pinch weld. The pinch weld of a blow-moulded HDPE container is typically weaker than the wall because flow fronts do not fully re-entangle across the weld line. Mould closing speed, pinch geometry and melt temperature above 195 °C at the die entry are the controlling factors. A drop impact test at -20 °C under the applicable UN packing group is the only reliable qualification for this failure mode.
Wall thickness distribution in blow moulded jerry cans is measured by ultrasonic or magnetic wall-thickness gauges. A common acceptance criterion is a minimum wall thickness of 0.8 mm at the sidewall and 1.0 mm at the top and bottom chines for 20 L UN packaging, but the exact values depend on the packing group and stack height. The parison programmer profile is adjusted so that the maximum-to-minimum wall thickness ratio remains below 2.5:1; higher ratios indicate uneven preblow or die centring problems.
For food-contact use, the base olefin polymer may fall under FDA 21 CFR 177.1520 and Commission Regulation (EU) 10/2011, but food-contact status is grade-specific and must be confirmed in writing from the supplier. For dangerous goods containers, the moulded article must be certified under the applicable UN packaging provisions; resin property data cannot replace drop, leakproof and hydraulic pressure tests.
Heavy metal restrictions under Directive 2011/65/EU and REACH candidate-list compliance are article-level obligations. The supplier’s compliance statement for the specific lot and packaging format should be requested before use in regulated applications. If post-consumer recyclate is added, the migration of non-conforming substances into the package contents must be evaluated according to the intended use and the applicable food-contact or dangerous goods regulation.