| HS Code | 705289 |
| Density | 0.953 g/cm³ |
| Melt Flow Rate 190 C 2 16 Kg | 5.5 g/10 min |
| Tensile Modulus | 1300 MPa |
| Tensile Stress At Yield | 27 MPa |
| Tensile Strain At Yield | 9% |
| Tensile Strain At Break | >600% |
| Charpy Notched Impact Strength 23 C | 10 kJ/m² |
| Charpy Notched Impact Strength 30 C | 4 kJ/m² |
| Shore D Hardness | 64 |
| Ball Indentation Hardness | 75 MPa |
| Vicat Softening Temperature | 128°C |
| Heat Deflection Temperature 0 45 Mpa | 75°C |
| Melting Temperature | 132°C |
| Thermal Conductivity | 0.41 W/m·K |
| Volume Resistivity | >10^15 ohm·cm |
| Water Absorption | <0.01% |
| Dielectric Constant | 2.3 |
As an accredited LyondellBasell HDPE M5363 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | LyondellBasell HDPE M5363 is supplied in 25 kg multi-wall bags, palletized, stretch-wrapped, and labeled for safe storage and transport. |
| Container Loading (20′ FCL) | Container loading of LyondellBasell HDPE M5363 in a 20′ FCL, cargo securely stowed for ocean export shipment. |
| Shipping | LyondellBasell HDPE M5363 is a non-hazardous polyethylene resin, typically shipped in 25 kg polyethylene bags on pallets, stretch-wrapped for stability. It is not regulated for transport. Store and transport in a dry, cool area, away from direct sunlight, moisture, and ignition sources. Use standard handling equipment and avoid bag damage. |
| Storage | Store LyondellBasell HDPE M5363 in a clean, dry, well-ventilated warehouse at ambient temperature. Keep original bags sealed and palletized, off the floor, away from direct sunlight, moisture, heat, flames, and strong oxidizers. Avoid UV exposure and contamination. Use first-in, first-out stock rotation. Protect from physical damage and excessive stacking. Follow local regulations and supplier safety data sheet. |
| Shelf Life | LyondellBasell HDPE M5363 has no defined shelf life; store dry, cool, sealed, and protected from UV for long-term stability. |
| End-use segment | Standard or regulatory reference | Critical test or condition | Typical acceptance basis |
|---|---|---|---|
| 20–30 L UN jerrican | EN ISO 2248:2018, 49 CFR 173.27, IMDG Code | Drop at -18 °C, hydraulic pressure 100 kPa | No rupture, no leakage, UN mark retained |
| Detergent/bleach bottle | ASTM D1693-15 | Condition B, 100% Igepal CO-630, 50 °C | No F50 failure before 600 h for aggressive formulas |
| Fluorinated agrochemical bottle | UN packaging tests, in-house permeation protocol | Weight loss 40 °C, 14 days, actual formulation | Permeation reduction 20–200× versus untreated HDPE |
| Food contact bottle | FDA 21 CFR §177.1520, EU 10/2011 | Overall migration 10 mg/dm², organoleptic panel | No taint, migration below limit, food-grade regrind only |
| Automotive washer reservoir | ASTM D256, ISO 179-1/1eA | Notched impact -30 °C, heat aged 100 °C 168 h | No brittle failure, no weld-line crack after pressure pulse |
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LyondellBasell HDPE M5363 is a high-density polyethylene injection-molding resin supplied in pellet form. The grade is defined by a narrow molar mass distribution and a nominal melt mass-flow rate of 5.5 g/10 min when measured at 190 °C under 2.16 kg according to ISO 1133-1:2022. Its density, determined by ISO 1183-1:2019, is approximately 0.952 g/cm³. The combination produces a short solidification interval and reduced post-mold shrinkage anisotropy, which are required in multi-cavity thin-wall closures, overcap grids, and reusable crate sidewalls. The resin is used where cycle-time reduction, gate-freeze predictability, and low warpage are more critical than high melt strength or long-term slow-crack-growth resistance.
| Property | Test method | Representative value |
|---|---|---|
| Melt mass-flow rate | ISO 1133-1:2022, 190 °C/2.16 kg | 5.5 g/10 min |
| Density | ISO 1183-1:2019 | 0.952 g/cm³ |
| Tensile stress at yield | ASTM D638-22 | 24.5 MPa |
| Tensile elongation at yield | ASTM D638-22 | 8 % |
| Flexural modulus | ASTM D790-17 | 1250 MPa |
| Notched Izod impact, 23 °C | ASTM D256-23 | 75 J/m |
| Shore D hardness | ASTM D2240-21 | 65 |
| Vicat softening temperature, A50 | ASTM D1525-17 | 125 °C |
| Deflection temperature under load, 0.455 MPa | ASTM D648-18 | 70 °C |
| Mold shrinkage, flow direction | ASTM D955-21 | 0.018 mm/mm |
The flexural modulus value of 1250 MPa places M5363 in the high-stiffness portion of the HDPE injection-molding class. This modulus supports down-gauging of crate and container walls from 2.5 mm to 2.0 mm while retaining top-load performance under ASTM D2659-17. At 0 °C, the notched Izod impact value of this resin class falls by approximately 30–50%; freezer or cold-chain parts should therefore be validated by instrumented impact testing according to ASTM D3763-23 with a 12.7 mm hemispherical tup at 2.2 m/s. Published data for M5363 under every sub-zero condition is limited, so qualification should be performed on molded plaques and finished articles.
Environmental stress crack resistance is the most pronounced boundary condition for M5363. Narrow-molecular-weight HDPE injection grades typically exhibit F50 times below 10 h under ASTM D1693-15 Condition B in 100% Igepal CO-630 at 50 °C. Because published grade-specific ESCR data for M5363 is limited, components carrying surface-active agents should be validated on production-scale molding, particularly at weld lines, gate scars, and molded-in stress concentrations. When long-term contact with aggressive surfactants is required, higher-molecular-weight or bimodal HDPE grades with F50 values above 100 h are preferred. The low-molar-mass tail that accelerates crystallization and improves warpage control simultaneously reduces resistance to slow crack growth, creating a property trade-off that cannot be ignored in detergent caps, trigger-spray closures, and industrial chemical containers.
Processing behavior on a 100 t toggle-clamp injection molding machine with a 20:1 L/D general-purpose screw and a 2.5:1 compression ratio is characterized by melt temperatures between 200 °C and 230 °C and mold temperatures between 10 °C and 40 °C. Screw back pressure of 0.4–0.8 MPa improves shot-size consistency but should be limited to avoid shear heating. Injection velocities of 80–150 mm/s are commonly employed, with holding pressure switched by screw position rather than timer to maintain packing consistency. For a 0.8 mm wall-thickness closure, gate-freeze time is approximately 0.6–0.9 s/mm, enabling ejection without sink marks. Valve-gated hot runners with thermal gate tips of 0.6–0.8 mm diameter are used on 32- and 64-cavity cap molds; pressure loss across the hot runner is reduced by maintaining manifold temperature below 220 °C to prevent pre-gate degradation.
Drying is not normally required for M5363 because HDPE is not hygroscopic. Condensation on cold pellets stored at relative humidity above 60% can produce surface moisture that becomes splay. A desiccant dryer set at 75 °C for 2 h or a hot-air hopper dryer may be used. Prolonged residence time above 8 minutes at melt temperatures above 250 °C causes thermo-oxidative chain scission, visible as yellowing, gel particles, and a drop in extrusion pressure. Production lines therefore set barrel and hot-runner zones to avoid dead spots and use a fractional-melt LDPE purging compound after shutdown.
Typical failures on production lines include jetting from undersized gates, sink marks from early gate freeze, and flash due to high melt temperature. Jetting is corrected by increasing gate diameter or using a fan gate; sink marks require longer packing time and sufficiently frozen gates; flash is reduced by lowering melt temperature to 210 °C and verifying clamp force. These observations are drawn from general HDPE injection-molding practice and should be verified with M5363 on the actual tool. The grade can be processed with 1–3 wt% polyolefin-based color masterbatch. Heavily filled or incompatible masterbatches with carrier resins outside the HDPE viscosity range can cause visible swirling and reduce weld-line strength.
M5363 differs from extrusion blow molding and film grades in that its melt strength is low by design. Blow molding HDPE grades with melt mass-flow rates below 1 g/10 min and weight-average molecular weights above 200,000 g/mol exhibit high parison stability and high ESCR but require lower output and higher energy input. In contrast, M5363 fills thin sections at lower injection pressure and solidifies rapidly. Against injection-molding HDPE grades with melt mass-flow rates of 12–20 g/10 min, M5363 sacrifices some spiral-flow length but retains higher notched impact strength and lower warpage. The balance is most relevant in flat, thin-walled crates and trays where high-flow grades produce differential shrinkage and post-demold distortion. The lower melt flow rate also reduces the risk of flash in worn tooling, although clamp force requirements can be higher at equivalent wall thickness.
Compared with medium-density polyethylene grades, M5363 has higher density, higher flexural modulus, and lower water-vapor permeation. Compared with polypropylene impact copolymers sometimes used for similar packaging, M5363 has a lower heat deflection temperature and higher low-temperature impact. This orientation is useful when ESCR and lower cost per volume matter more than continuous high-temperature stiffness. Part design with M5363 should use flow-path to wall-thickness ratios below 200:1 unless flow simulation based on measured spiral-flow data indicates otherwise. Gate diameters should be at least 50–70% of the local wall thickness to reduce jetting and weld-line weakness. Mold steel should be hardened to Rockwell C 50–54 for high-volume closure production because glass-fiber-free HDPE still produces long-term abrasion at gate inserts.
| Regulatory or standard reference | Scope relevant to M5363 |
|---|---|
| FDA 21 CFR 177.1520 | Olefin polymers for food-contact use; final article must meet end-use conditions in 21 CFR 176.170(c) and any applicable food-type limitations. |
| EU Regulation 10/2011 | Plastic materials and articles intended to contact food; verification of overall migration limit 10 mg/dm² and specific migration limits for additives is required. |
| REACH Regulation (EC) No 1907/2006 | Polymer exemption under Article 2(9); monomers and additives must be registered and should be screened for SVHC obligations. |
| RoHS Directive 2011/65/EU as amended by (EU) 2015/863 | Restricted substances cadmium, lead, mercury, hexavalent chromium, PBBs, PBDEs, and four phthalates limited to 0.1 wt% per homogeneous material. |
| ASTM D1238-20, ASTM D1505-18, ASTM D638-22, ASTM D790-17, ASTM D256-23 | Standard characterization methods for melt flow, density, tensile, flexural, and impact properties. |
For food-contact applications, M5363 should be used only in accordance with the manufacturer’s regulatory certificate. The final article, including colorants and processing aids, must satisfy overall migration limits under EU Regulation 10/2011. The polymer itself is exempt from REACH registration under Article 2(9), but imported compounds may require detailed knowledge of monomer catalysts and additive inventories. RoHS compliance is typically relevant for electronic packaging and logistics pallets; each homogeneous material layer must be below 0.1 wt% restricted-substance thresholds. In applications requiring repeated food contact above 100 °C, post-mold dimensional stability should be confirmed because the Vicat softening temperature is near 125 °C.
M5363 is not intended for pressure piping. It does not carry a PE100 hydrostatic design basis under ISO 9080 or a minimum required strength classification under ISO 12162. It is also not suitable for rotational molding or blown film, because low melt strength and rapid crystallization destabilize bubble or sintering behavior. In harsh UV environments, unpigmented or non-UV-stabilized resin should be protected by an adequate UV stabilizer package; otherwise chalking and embrittlement occur after outdoor exposure. Chemical incompatibility exists with strong oxidizing acids above 10% concentration, aromatic hydrocarbons, and chlorinated solvents at elevated temperature; prolonged contact causes swelling, environmental stress cracking, or molecular weight reduction.
For multi-cavity tools, hot-runner channels should be rheologically balanced within ±5 °C of setpoint to prevent cavity-to-cavity fill variation. Mold shrinkage should be confirmed for each tool geometry, because flow-direction shrinkage of 0.015–0.025 mm/mm can shift assembly dimensions if gate orientation changes. Weld lines in complex cap or closure geometries should be positioned away from sealing surfaces or load-bearing snap-fit features. Since published data for M5363 in every specific additive, color, or end-use configuration is limited, production validation remains a required engineering control rather than an optional step.