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Mitsubishi Chemical Advanced Materials HDPE LSG

    • Product Name: Mitsubishi Chemical Advanced Materials HDPE LSG
    • Factroy Site: Yudu County, Ganzhou, Jiangxi, China
    • Price Inquiry: admin@ascent-chem.com
    • Manufacturer: Ascent Petrochem Holdings Co., Limited
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    Specifications
    HS Code 788941
    Density 0.95 g/cm³
    Water Absorption <0.01%
    Tensile Strength At Yield 28 MPa
    Tensile Strength At Break 33 MPa
    Elongation At Break >600%
    Tensile Modulus 1100 MPa
    Flexural Modulus 1200 MPa
    Shore D Hardness 65
    Charpy Notched Impact Strength 15 kJ/m²
    Coefficient Of Friction 0.25
    Thermal Conductivity 0.40 W/(m·K)
    Coefficient Of Linear Thermal Expansion 150 µm/(m·°C)
    Maximum Service Temperature 80 °C
    Melting Point 130 °C
    Volume Resistivity >10^15 Ω·cm
    Dielectric Strength 45 kV/mm
    Dielectric Constant 2.3
    Flammability HB

    As an accredited Mitsubishi Chemical Advanced Materials HDPE LSG factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Mitsubishi Chemical Advanced Materials HDPE LSG is supplied in 25 kg polyethylene bags, palletized and stretch-wrapped for industrial shipping.
    Container Loading (20′ FCL) 20′ FCL dry container loaded with Mitsubishi Chemical Advanced Materials HDPE LSG, palletized bags, securely stowed and braced for shipment.
    Shipping Mitsubishi Chemical Advanced Materials HDPE LSG is generally shipped as a non-hazardous solid thermoplastic in sealed bags, cartons, or palletized loads. It requires no special DOT, IMDG, or IATA hazardous-materials classification. During transport, keep it clean, dry, and away from direct sunlight, excessive heat, and ignition sources.
    Storage Store Mitsubishi Chemical Advanced Materials HDPE LSG in a cool, dry, well-ventilated area away from direct sunlight, heat, flames, and strong oxidizers. Keep in original, labeled, closed containers or packaging to prevent contamination, moisture, and UV degradation. Avoid excessive stacking or mechanical damage. Maintain clean handling conditions; no special temperature control is typically required.
    Shelf Life Mitsubishi Chemical Advanced Materials HDPE LSG: no specific shelf life; store in original packaging, dry, clean, away from direct sunlight and heat.
    Application of Mitsubishi Chemical Advanced Materials HDPE LSG
    In wastewater headworks, adjustable weir plates fabricated from HDPE LSG sheet operate under intermittent sodium hypochlorite dosing, grit-laden flow, and seasonal ultraviolet exposure. The light-stabilised grade is selected where unstabilised HDPE would develop surface microcracking within two to three outdoor seasons. Fabricators machining weir plates from 20 mm to 30 mm sheet often observe that circular bolt holes act as crack initiation sites when the plate is restrained against thermal expansion. Longitudinal thermal expansion of HDPE is commonly documented in the range 1.1 × 10⁻⁴ K⁻¹ to 1.5 × 10⁻⁴ K⁻¹. To prevent buckling and notch stress, slotted holes with a length-to-fastener-diameter ratio of 3:1 are specified for an 800 mm wide plate. Stainless steel bushed connections with a low-friction washer stack are used to decouple the plate from steel support brackets.The fabrication sequence for a wastewater weir plate involves CNC routing of the sheet with a single-flute polished carbide O-flute tool at a spindle speed of 15,000 rpm and a feed rate of 4 m/min. Compressed air is used instead of liquid coolant to remove fused chips. The machined V-notch geometry is then butt-fusion welded to side baffle plates using hot-plate equipment. The heating plate is held at 210 °C and the interface pressure during bead-up is maintained at 0.15 N/mm² in accordance with DVS 2207-1. The assembly is cooled under pressure until the weld surface temperature drops below 60 °C. This slow cooling step is critical because rapid quenching in air can raise residual stress at the weld root. Weld seam specimens are machined to ASTM D638-22 Type IV geometry and tested under ISO 527-2:2012. A tensile yield retention of at least 80% relative to the parent sheet is a common project acceptance criterion, though published data for this specific hypo chlorite-exposed configuration is limited. The terminal product is a bolt-down V-notch weir plate with integral scum baffle side plates. Long-term stress-cracking resistance is assessed by ISO 16770 full-notch creep testing, not by short-term tensile elongation alone.

    What Limits Chlorine Dioxide Resistance in Gravity-Fed Launder Systems?

    Chlorine dioxide in gravity-fed launder systems introduces a different oxidative regime than dilute sodium hypochlorite. HDPE LSG is used for launder troughs, overflow boxes, and splash covers in water treatment buildings where off-gas exposure occurs. The decisive design variable is not the base resin density but the combination of aqueous oxidant concentration, wetted temperature, and residual fabrication stress. At continuous chlorine dioxide exposure above 5 mg/L and liquid temperatures above 40 °C, environmental stress cracking can accelerate. Published data for this specific stock sheet under chlorine dioxide immersion is limited, so a conditional service test is normally required before replacement of PVC or polypropylene components.Extrusion welding is preferred over hot-gas welding for launder corner joints because it produces a layered root and cap structure with a more predictable melt bed. The weld rod should be a PE100-grade high-density polyethylene with a melt-flow index in the same low-MFR range as the HDPE LSG parent sheet. Mixing recycled or reprocessed rod is not permitted for oxidant service. A first-pass root weld uses a filler rod diameter-to-sheet thickness ratio of 1.0:1.0; the cap pass uses a ratio of 1.5:1.0. Hot gas temperature is held at 230 °C to 260 °C, and nitrogen is used as the shield gas to reduce oxidative degradation at the weld surface. In production-scale fab shops, the common failure mode on launders is not weld fracture but undercutting along the inside corner due to excessive torch travel speed. Inspection is therefore based on visual weld profile and bend tests of a sacrificial corner section.Chemical resistance is verified by ASTM D543-21 immersion testing in the actual plant oxidant solution. Tensile strength and mass change are recorded after 7-day and 28-day exposure intervals. A mass increase greater than 0.5% indicates plasticisation and requires derating of the service temperature. The terminal fabricated products are gravity-fed launder troughs with shop-welded outlets and field-bolted support saddles. The complete compliance matrix for this segment is given below.
    Application segmentStandard or codeTest or clausePurpose
    Wastewater weir plateDVS 2207-1, ISO 527-2:2012Butt fusion weld tensile retentionWeld seam quality
    Chlorine dioxide launderASTM D543-21Chemical immersionOxidant compatibility
    Marine fender linerASTM G155-21, ISO 62:2008Xenon arc weathering, water absorptionOutdoor durability
    Outdoor electrical housingIEC 60529:2013, UL 746CIngress protection, outdoor suitabilityEnclosure integrity
    Food-processing surfaceFDA 21 CFR 177.1520(c), EU 10/2011Overall migration limit 10 mg/dm²Food-contact compliance
    Grain silo linerASTM D257-24Surface resistivityStatic accumulation control
    Marine lock gate fender liners on tidal infrastructure expose HDPE LSG to wet abrasion, marine growth, occasional hydrocarbon sheen, and high ultraviolet irradiance. Unlike wood, the material does not swell or decay. The water absorption by ISO 62:2008 for HDPE sheet is below 0.01%. This dimensional stability matters in intertidal zones where liner panels are removed and reused during gate maintenance. Sliding contact against steel guide rails occurs at low surface velocity but high normal force. The liners are manufactured from 25 mm to 50 mm thick sheet with countersunk bolt holes. The edge distance from the hole centreline to the plate edge is maintained at 2 times the fastener diameter to reduce edge tear-out under compressive shear.Field experience on lock gate liners shows that fastener loosening is more common than liner body wear. HDPE undergoes thermal expansion under direct sun; a black or dark grey light-stabilised sheet can reach surface temperatures of 60 °C to 70 °C. A 2.0 mm/m expansion allowance is used for panels longer than 1 m. Fasteners are installed with Belleville washers and a controlled torque of 8 N·m to 12 N·m for M12 A4 stainless bolts. This range avoids local creep but maintains clamping force. The terminal product is a pre-drilled fender pad or gate guide liner with a machined bevel edge to reduce impact chipping.Weathering performance is checked by ASTM G155-21 xenon arc exposure. Tensile elongation retention is the primary endpoint. Unstabilised HDPE can lose more than 50% of original elongation within 1,000 h of accelerated weathering. Light-stabilised HDPE LSG is specified to retain greater than 70% elongation after 2,000 h in many outdoor marine project specifications. However, the supplier datasheet should be consulted for lot-specific stabiliser loading and carbon black dispersion. The elastomeric polyurethane fender cushion remains a separate component; HDPE LSG serves only as the wear interface and fastener-bearing surface. This division avoids running polyurethane directly against rough steel, where heat build-up from sliding friction can soften the cushion face.

    When Electrical Enclosures Move Outdoors Without a Flame-Retardant Classification

    Outdoor wall-mounted marshalling boxes and cable trough covers are fabricated from HDPE LSG when the enclosure must withstand rain, ultraviolet exposure, occasional impact, and chemical cleaners. The material is not a flame-retardant grade. UL 94 classification at 1.5 mm thickness is typically HB, not V-0. For enclosures containing live electrical terminals, this limitation forces a spacing or power-loss design review rather than direct substitution for polycarbonate or ABS. The terminal product is a fabricated IP55 enclosure used for non-current-carrying junction consolidation, cable routing, or instrument weather shielding. If the specification requires a UL 94 V-0 rating at the designed wall thickness, HDPE LSG is not appropriate.Sheet cutting for enclosures uses a CNC router or saw. Welding is performed by hot gas or extrusion welding with a PE filler rod of the same polymer family. Corner seams are welded internally and externally to maintain the ingress protection rating after thermal cycling. Threaded stainless steel inserts are installed by thermal insertion or press fit; adhesive bonding is not used because HDPE has low surface energy and adhesive joints are unreliable in wet service. Hot-melt adhesive gasketing is acceptable only for non-structural sealing. Cable glands are fixed to machined flat surfaces with a roughness not exceeding 3.2 µm Ra. This flatness prevents water wicking along the gland thread under IEC 60529:2013 drainage tests.Thermal limitations govern the enclosure design. HDPE sheet has a Vicat softening temperature below 130 °C. Continuous surface temperature near terminal blocks should not exceed 70 °C unless the enclosure is designed with air ventilation. Black HDPE LSG in direct sunlight can reach a surface temperature of 70 °C before internal heat rise is added. The fabricator therefore derates the internal conductor ampacity and uses standoff-mounted terminal rails. Ultraviolet exposure is addressed by the light-stabilised formulation; the surfaces are not painted because paint adhesion to polyethylene is poor. For exterior colour retention, carbon black pigmented sheet is preferred over lighter colours. The terminal product is a weld-fabricated enclosure with a removable door, stainless hinges, and machined cable entry plates.

    Can HDPE LSG Meet EU 10/2011 Overall Migration Limits After Machining?

    Food-processing surfaces made from HDPE LSG include portioning boards, dough trough liners, and conveyor wear strips in washdown zones. The food-contact status of the fabricated part depends on the stock shape producer’s regulatory letter for FDA 21 CFR 177.1520(c). The base olefin polymer may meet the extraction limits, but light-stabiliser additives and carbon black can impose restrictions. For EU food-contact compliance, the overall migration limit under EU 10/2011 is 10 mg/dm² of surface area. A fabricator cannot rely solely on the resin grade designation; the final machined part must be tested under the intended food simulant because cutting does not alter the base formulation but may increase surface area.Machined cutting boards are produced without adhesive or composite fillers. Edge finishing uses a round-over router bit with a polished carbide edge, followed by manual deburring with a stainless scraper. Flame polishing is avoided because it can produce surface oxidation byproducts and local molecular weight loss. In some cases, a final wash with 1% to 3% sodium hydroxide solution is used to remove machining oils, followed by a potable-water rinse. The terminal product is a seamless, machined HDPE LSG board with a maximum service temperature of 80 °C for intermittent washdown.Chemical cleaning is the main in-service stress factor. Quaternary ammonium disinfectants, hypochlorite detergents, and acidic descalers can accelerate environmental stress cracking when surface notches from knife cuts are present. The material is not recommended for direct steam sterilisation above 121 °C because the part will soften and distort. For repeated quaternary ammonium exposure at concentrations above 200 ppm and temperatures above 50 °C, a periodic replacement interval should be derived from ISO 16770 full-notch creep testing. Operational experience indicates that cutting boards machined from HDPE LSG retain utility after repeated knife abrasion, but the surface must be resurfaced or replaced when fissures deeper than 0.5 mm are present. Published data for this specific grade under aggressive food-sanitising regimes is limited, so plant validation remains necessary.

    Grain Silo Discharge Liners and Electrostatic Ignition Constraints

    Bulk material handling systems use HDPE LSG discharge liners, drag chain wear rails, and hopper transition plates. The low coefficient of friction of HDPE reduces product bridging and protects steel hoppers from sliding abrasion. However, HDPE is an electrical insulator. Surface resistivity measured by ASTM D257-24 is typically above 1 × 10¹⁴ Ω. This means the material does not dissipate electrostatic charge. In grain silos and flour handling areas where combustible dust atmospheres can form under IEC 60079-10-1 or NFPA 652, the liner alone cannot provide protection. Grounding is achieved through conductive steel structure, external bonding straps, and the use of conductive fasteners, but the polymer surface itself remains non-conductive.Liner panels are machined from 6 mm to 12 mm HDPE LSG sheet. The panel thickness is selected to be at least 2 times the maximum grain kernel diameter. This ratio reduces point pressure from individual kernels and lowers the rate of localised cold flow. The liners are bolted to the hopper with countersunk flat-head fasteners. Projecting fastener heads are not permitted in sliding product flow. Edge joints between liner panels are arranged as lap joints with the upper panel overlapping the lower panel in the direction of product flow. This detail prevents grain kernels from catching on an exposed edge and peeling the liner from the wall.The terminal product is a discharge hopper liner system with machined access doors and replaceable wear strips at the drag chain return. Abrasion resistance is not derived from a single polymer hardness test alone; field wear life depends on product type, slope angle, and throughput. A comparison of wear depth after one harvest season is more useful than laboratory abrasion numbers. Where static ignition risk cannot be reduced by grounding, the liner should be limited to non-explosive dust environments or the hopper must be inerted. This operational boundary prevents misapplication of an otherwise effective wear liner in a combustible dust stream.
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    Certification & Compliance
    More Introduction

    Mitsubishi Chemical Advanced Materials HDPE LSG is a light-stabilized high-density polyethylene stock shape grade, generally supplied as extruded sheet, rod, and welded profile sections under the Polystone® G LSG designation. The base resin belongs to the PE-HD class with a density tested to ISO 1183-1 in the range of 0.95 g/cm³ to 0.96 g/cm³. The LSG designation identifies the light-stabilization package rather than a change in base resin chemistry; black LSG grades typically use carbon black with hindered amine stabilizers, while natural or coloured variants may use hindered amine light stabilizer systems. Published batch values differ from generic PE-HD literature data because stock shape conversion, pigment type, and sheet thickness modify crystallinity, orientation, and additive consumption.

    For initial engineering design, PE-HD extrusion grades of this class generally fall within the following normalized ranges: tensile yield stress 22 MPa to 27 MPa under ISO 527-2, flexural modulus 800 MPa to 1100 MPa under ISO 178, Charpy notched impact strength 6 kJ/m² to 12 kJ/m² under ISO 179-1/1eA, Shore D hardness 60 to 65 under ISO 868, Vicat softening temperature 75 °C to 82 °C under ISO 306/B50, melt flow rate under ISO 1133-1 (190 °C, 2.16 kg) generally 0.2 g/10 min to 1.0 g/10 min, and coefficient of linear thermal expansion 150 × 10-6 K-1 to 200 × 10-6 K-1 under ISO 11359-2. Water absorption after 24 h immersion under ISO 62 is generally below 0.01 wt%. These ranges are not an MCAM batch certificate; they are selection reference points that must be replaced by supplied test reports before load-bearing design.

    What Limits Continuous Outdoor Exposure for PE-HD Without Light Stabilization?

    Unstabilized high-density polyethylene undergoes photodegradation through Norrish Type I and Type II chain scission when exposed to UV-A and UV-B radiation between 290 nm and 400 nm. The reaction pathway consumes tertiary hydrogens on the polymer backbone, generates carbonyl and hydroperoxide intermediates, and produces a rapid loss of elongation at break. In unstabilized PE-HD, tensile elongation at break can fall below 50% of the original value after 12 to 24 months of outdoor exposure in temperate climates, while in high-solar-radiation environments the same threshold may be reached in 6 to 9 months. The LSG stabilization package retards this path by absorbing incident UV and quenching radical intermediates; carbon black loadings in comparable PE-HD weathering grades commonly fall in the 2 wt% to 3 wt% range, and hindered amine light stabilizers are often added at 0.1 wt% to 0.5 wt%. Exact MCAM formulation is proprietary.

    Service temperature interacts with UV stabilization. At continuous surface temperatures above 60 °C to 70 °C, oxidative induction time decreases and the UV stabilizer package is consumed faster than at ambient-temperature weathering. For applications combining outdoor exposure with process heat, such as uninsulated chemical dosing lines or solar-heated tank covers, the user should request accelerated weathering data according to ISO 4892-2 or ISO 4892-3 and evaluate the change in tensile elongation at break, not colour change alone. Published data for this specific configuration is limited in the absence of the manufacturer's weathering certificate; surrogate data from natural or carbon-black PE-HD cannot be transferred directly to fabricated parts because weld seams and machined edges expose fresh surface area with different additive distribution.

    Thermo-Oxidative Chain Scission Is the Dominant Failure Mechanism Above 200 °C

    The recommended melt zone for PE-HD sheet welding is normally 190 °C to 230 °C, with the upper limit constrained by autoxidation and bubble formation. A hot-gas or extrusion welding process should keep the weld zone above the crystalline melting temperature but below 240 °C for no longer than required to achieve root fusion. Thermal degradation at the weld root can be detected by a reduction in notched impact strength below the unwelded sheet baseline or by carbonyl index increases measured by infrared spectroscopy. Because black LSG sheet absorbs infrared heat faster than white PE-HD, the welding feed rate and gas temperature require adjustment; otherwise, surface scorching occurs before the root has reached fusion temperature. On production-scale hot-gas welding lines with 3 mm to 4 mm round PE-HD rod, the gas temperature is typically set 20 °C to 40 °C higher than the melt zone because the rod and plate consume heat through the work surface, but the exact setting depends on air flow and nozzle geometry.

    For black LSG sheet below 4 mm thickness, the hot-gas welding parameter window narrows to approximately ±5 °C on nozzle outlet temperature because the carbon black absorbs infrared heat more rapidly than natural PE-HD. At the lower bound, incomplete root fusion reduces weld factor; at the upper bound, surface oxidation and microvoids appear as a dull, rough bead. This narrow window makes procedure qualification on production-scale lines essential, and some fabricators add a ceramic heat shield to reduce local surface radiation. Weld surfaces must be scraped no more than 15 min to 30 min before welding to remove oxidized material; oily contamination is removed with an alcohol wipe and dry air. Pre-drying of HDPE LSG sheet is not normally required for hot-gas or extrusion welding if the stock has been stored at standard room humidity; when chilled below the dew point, surface condensation must be removed by air wiping or room-temperature equilibration before welding.

    Production-scale extrusion welding of PE-HD LSG sheet is routinely carried out with single-screw extruders in the 20 mm to 30 mm screw diameter range and L/D ratios of 20:1 to 25:1. The extruder barrel zones are set in the 190 °C to 230 °C range, and the screw speed is adjusted so that melt output reaches the weld groove without starving or overfeeding the root. Batch-to-batch variation in melt flow rate affects the weld bead profile, especially in black LSG stock where carbon black increases viscosity and may require a 5 °C to 10 °C increase in melt zone temperature relative to natural PE-HD sheet. These adjustments are line-specific and should be verified by weld qualification before structural work.

    Machining of HDPE LSG stock shapes requires positive-rake cutting geometry and reduced clamping pressure to prevent stress whitening. The low modulus and high thermal expansion make tight machining tolerances below ±0.1 mm for dimensions above 300 mm difficult to hold on a conventional machining centre. HDPE LSG can be planed, turned, milled, and drilled; saw cuts should use coarse tooth geometry and low feed pressure to prevent chip melting at the cut face. Because the material is softer than PA or POM, workpieces can creep during clamping; vacuum fixturing or distributed clamping is preferred for thin sections. Residual stresses from extrusion can cause stress release after one-sided machining, so balanced stock removal from both faces is recommended for flatness-critical components.

    Chemical compatibility of HDPE LSG follows the PE-HD chemical resistance profile, with useful resistance to dilute aqueous acids, alkalis, brines, and many polar solvents at ambient temperature. The product is generally unsuitable for strong oxidizing acids, chlorinated solvents, and low-molecular-weight aromatic hydrocarbons because these agents can swell, stress-crack, or oxidize polyethylene. Chemical resistance tables should be read with the design stress and temperature; a chemical that is compatible at 23 °C may attack PE-HD at 60 °C under constant tensile load. For outdoor chemical containment, the LSG grade's stabilizers must be considered as extractable components. If the tank contents are food-contact fluids or pharmaceutical media, migration data specific to the formulated LSG grade are required; generic PE-HD food-contact clearances do not automatically cover UV-stabilized or coloured variants. Regulators require end-use migration testing under Regulation (EU) 10/2011 and, for United States applications, compliance under FDA 21 CFR 177.1520 with the limitations on additive and colourant selection. Published data for this specific configuration is limited; the converter should request a conformity declaration and, where applicable, a support statement for the chosen colour and stabilizer package.

    When HDPE LSG Replaces UHMWPE or PP in Structural and Abrasion Service

    The replacement decision between HDPE LSG, UHMWPE, and PP-H is controlled by three load-dependent properties: notch sensitivity at low temperature, creep under continuous load, and abrasion mass loss under particulate sliding. HDPE LSG is generally selected where outdoor UV resistance and weldability are required, but the abrasion mass loss is higher than UHMWPE under the same sliding conditions. UHMWPE, with a molecular weight above 3 × 106 g/mol, has a dramatically higher resistance to sliding wear and impact, but its high melt viscosity makes hot-gas welding impractical and often limits fabrication to machining or compression forming. HDPE LSG can be welded using conventional hot-gas, extrusion, and butt-fusion procedures, which allows field repair of large chemical tanks and outdoor storage structures. Compared with PP-H, HDPE LSG retains higher impact strength at low temperature and better stress-cracking resistance in many aqueous detergent applications, but PP-H has a higher Vicat softening temperature, typically 90 °C to 95 °C, and may be preferred when repeated cleaning with hot process water above 80 °C is specified.

    Compared with standard natural HDPE sheet, the LSG grade is not necessarily a higher molecular weight resin; the primary difference is the light-stabilization package. The molecular weight distribution and melt flow rate can be similar to standard PE-HD extrusion grades, but the stabilizer package changes oxidative induction time and long-term weathering response. Therefore, the LSG designation should not be interpreted as a higher abrasion or impact grade; for sliding wear and impact, UHMWPE remains the appropriate selection.

    In structural and abrasion service, the coefficient of friction and surface hardness also differ. HDPE LSG has Shore D hardness in the 60 to 65 range; UHMWPE is typically 60 to 70 but deforms more readily under point load because of lower flexural modulus. HDPE LSG is a better candidate for fabricated tank shells and outdoor secondary containment because it is available in thick sheet and can be butt-welded with a defined weld factor. The weld factor for PE-HD in pressure-containing structural joints is commonly taken in the 0.6 to 0.8 range, depending on weld process and operator qualification; the value must be established by destructive weld tests, not assumed from raw-material yield stress. Continuous service temperature in air is generally limited to 60 °C under mechanical load, with short-term unloaded peaks below 95 °C; below -50 °C, impact strength decreases and dynamic loading should be avoided.

    Comparative Property Ranges and Compliance Verification

    The table below compiles representative property ranges for initial material substitution screening. Because stock shape properties vary with conversion route and batch, the values are not acceptable as final design allowables.

    PropertyTest methodHDPE LSG representative rangeUHMWPE representative rangePP-H representative range
    DensityISO 1183-10.95–0.96 g/cm³0.93–0.94 g/cm³0.90–0.92 g/cm³
    Tensile yield stressISO 527-222–27 MPa17–22 MPa25–35 MPa
    Flexural modulusISO 178800–1100 MPa600–900 MPa1200–1500 MPa
    Charpy notched impact strengthISO 179-1/1eA6–12 kJ/m²no break5–15 kJ/m²
    Shore D hardnessISO 86860–6560–7068–74
    Vicat softening temperature B50ISO 306/B5075–82 °C76–82 °C90–95 °C
    Water absorption 24 hISO 62<0.01 wt%<0.01 wt%0.01–0.03 wt%

    The second table lists compliance documentation that a converter or end user should obtain before specifying HDPE LSG in regulated sectors.

    RequirementReferenceApplicability to HDPE LSG
    United States food-contact olefin polymer clearanceFDA 21 CFR 177.1520Applies to the base polyethylene; UV stabilizers and pigments must be individually cleared or the final article must be tested for end use.
    European plastic food-contact materialsRegulation (EU) 10/2011 Annex IRequires migration testing under intended food simulants and temperature/time conditions; stock shape grade does not provide automatic compliance.
    RoHS hazardous substance restrictionsDirective 2011/65/EU Annex IIHDPE LSG without flame-retardant additives typically complies; supplier declaration is required.
    REACH SVHC communicationRegulation (EC) 1907/2006 Article 33Supplier must communicate if an SVHC exceeds 0.1 wt%; not expected for standard PE-HD stock shapes, but batch-specific confirmation is needed.
    Weathering test method for outdoor qualificationISO 4892-2 / ISO 4892-3Used to benchmark UV-stabilized LSG grades; acceptance criteria must be defined by the design authority.

    For rotational ventilation ducts and outdoor secondary containment, the HDPE LSG grade is frequently specified when the fabricated structure must remain outside for more than 5 years without painting. The light-stabilized black sheet reduces surface oxidation in high-UV sites, but the design must still account for the high coefficient of linear thermal expansion and low modulus. Expansion loops and slotted bolt holes are required when the expected temperature differential exceeds 40 °C. Because black sheet surface temperatures in direct sunlight can rise 25 °C to 35 °C above ambient, the thermal expansion calculation should use the upper surface temperature, not the ambient air temperature. Published data for this specific configuration is limited beyond the manufacturer's weathering and thermal-aging certificates, so outdoor installations should be validated with a trial panel exposed at the intended site orientation and latitude.

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