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Liaoning Jincheng LyondellBasell HDPE 23050 B

    • Product Name: Liaoning Jincheng LyondellBasell HDPE 23050 B
    • 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 135066
    Productname Liaoning Jincheng LyondellBasell HDPE 23050 B
    Polymertype High Density Polyethylene (HDPE)
    Grade 23050 B
    Color Black
    Form Pellets
    Density 0.959 g/cm³
    Meltflowrate 190c 5kg 0.23 g/10 min
    Tensilemodulus 1100 MPa
    Tensileyieldstress 24 MPa
    Elongationatbreak >600%
    Charpynotchedimpactstrength 23c No break
    Charpynotchedimpactstrength Minus30c 10 kJ/m²
    Vicatsofteningtemperature 125 °C
    Carbonblackcontent 2.0-2.5%
    Oxidationinductiontime 200c >20 min
    Moisturecontent <0.1%
    Minimumrequiredstrength Mrs 10.0 MPa (PE100)

    As an accredited Liaoning Jincheng LyondellBasell HDPE 23050 B factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Liaoning Jincheng LyondellBasell HDPE 23050 B is supplied in 25-kg woven bags, 40 bags per shrink-wrapped pallet, totaling 1,000 kg.
    Container Loading (20′ FCL) Liaoning Jincheng LyondellBasell HDPE 23050 B loads in 20′ FCL: 25 kg bags, 1,000 bags, totaling 25 MT per container.
    Shipping Liaoning Jincheng LyondellBasell HDPE 23050 B is shipped as non-hazardous high-density polyethylene resin in 25 kg PP bags or 1,000 kg jumbo bags, palletized and stretch-wrapped. Transport in clean, dry containers or trucks; keep away from moisture, heat, and direct sunlight. No special dangerous goods documentation required.
    Storage Store Liaoning Jincheng LyondellBasell HDPE 23050 B in a cool, dry, well-ventilated warehouse. Keep original bags sealed, palletized, and off the floor. Protect from direct sunlight, moisture, dust, heat, flames, and strong oxidizers. Avoid prolonged UV exposure and excessive temperatures. Ensure good ventilation and avoid stacking beyond safe height. Use first-in, first-out rotation. Keep containers closed when not in use.
    Shelf Life Shelf life is typically 24 months when stored in original packaging under cool, dry, ventilated conditions, away from sunlight and moisture.
    Application of Liaoning Jincheng LyondellBasell HDPE 23050 B

    Liaoning Jincheng LyondellBasell HDPE 23050 B is converted on extrusion blow-moulding lines where lot-to-lot consistency in melt strength, die swell, and environmental stress crack resistance determines whether the finished container meets drop-impact and stack-load requirements. The grade is specified for rigid packaging and industrial tank applications in which the forming window is controlled by melt temperature, accumulator head shot size, and parison programming rather than by simple melt-flow index alone. When conditioned and tested under ISO 1133-1:2022 and ISO 1183-1:2019, the resin falls within the high-molecular-weight HDPE envelope associated with thick-walled blow-moulded parts; however, the certificate of analysis for each lot should be consulted because downstream fluorination, co-extrusion, and regrind loads shift the effective processing boundaries. The following application scenarios reflect actual conversion routes for this resin family and include only sectors for which industrial equipment and compliance frameworks are documented.

    Conversion routeRegulatory anchorTechnical verificationTerminal product form
    UN-certified industrial packagingUN Model Regulations Ch. 6.1; ADR 2025; IMDG 2024Drop at −18 °C; hydraulic pressure 100 kPa; stack compression 28 days at 40 °C20 L–200 L jerricans and tight-head drums
    Crop-protection containmentRegulation (EC) No 1107/2009; CLP (EC) No 1272/2008; REACH (EC) No 1907/2006ASTM D1693-15 ESCR; ASTM D256-23 Izod; top-load at 40 °C1 L–20 L bottles and jerrycans
    Diesel exhaust fluid reservoirsISO 22241-3:2017; DIN 7007064-day storage at 40 °C; total organic carbon elution; fluorine barrier verification10 L–32 L SCR tanks and IBC inserts
    Detergent and cleaner bottle conversionRegulation (EC) No 648/2004; REACH (EC) No 1907/2006; FDA 21 CFR 177.1520Top-load collapse; drop impact; melt-flow ratio after regrind loading500 mL–5 L bottles
    Large water storage tanksNSF/ANSI/CAN 61; BS 6920; Regulation (EU) No 10/2011Creep rupture; UV exposure; wall thickness mapping500 L–2,000 L vertical and conical tanks
    Six-layer fuel tanksUNECE Regulation No. 34 Annex 5; EPA 40 CFR Part 86; CARB LEV IIIDiurnal breathing loss; hot soak evaporative emission; fire resistance40 L–90 L gasoline and diesel fuel tanks

    Closed-head jerry cans of 20 L to 60 L and tight-head drums up to 200 L are blow-moulded from HDPE 23050 B where the filled package must be certified under Chapter 6.1 of the UN Model Regulations and the corresponding modal codes—ADR 2025, IMDG Code 2024, and ICAO Technical Instructions 2025–2026. The qualification sequence includes drop impact at −18 °C after a 24 h conditioning period, a hydraulic pressure hold at 100 kPa for 30 min on the 3H1 jerrican, leakproofness testing, and stack compression for 28 days at 40 °C; the packaging group—X, Y, or Z—dictates drop height and maximum density. Conversion formulations are typically 100 parts HDPE 23050 B with 1.0 wt% to 2.5 wt% carbon black masterbatch when outdoor UV exposure is expected, and ≤25 wt% clean post-industrial regrind from flash, top scrap, and rejected parisons; regrind above this level produces a measurable loss of ESCR in the pinch-off weld because low-molecular-weight tails develop during repeated thermal cycles. Processing is performed on accumulator-head shuttle blow-moulding machines with 60 mm to 90 mm grooved-barrel extruders, L/D 24:1 to 30:1 barrier screws, melt-temperature setpoints between 190 °C and 225 °C, mould temperatures of 10 °C to 20 °C, and blow-air pressure from 0.6 MPa to 1.0 MPa. The finished categories include UN-marked 3H1/Y 1.5/100 jerricans, 3H1/X 1.9/200 tight-head drums, and open-head drum liners for corrosive, flammable, and water-miscible industrial liquids.

    Why Does Agrochemical Packaging Demand ESCR Validation Beyond Standard Drop Testing?

    Because 20 L crop-protection containers blow-moulded from HDPE 23050 B are exposed to cyclohexanone, xylene, and alkylphenol ethoxylates during formulation storage, the material is selected for resistance to environmental stress cracking rather than for stiffness alone. Packaging placed on the EU market must satisfy Regulation (EC) No 1107/2009, CLP Regulation (EC) No 1272/2008 for classification and labelling, and the packaging-specific provisions of the UN Model Regulations when the active substance is classified for transport; material contact assessment is supported by REACH (EC) No 1907/2006 and, for formulations intended for consumer exposure, by the container closure and child-resistant provisions referenced in the FAO/WHO Pesticide Specifications manual. The converter formulation is commonly 100 parts HDPE 23050 B with 2.0 wt% to 3.0 wt% UV-stabilized masterbatch containing hindered amine light stabilizers, 0.5 wt% to 1.5 wt% colour concentrate, and ≤20 wt% regrind; if the filling line involves dimethylamine or high-aromatic solvent systems, a post-mould fluorination step at 0.5% to 1.0% elemental fluorine in nitrogen for 10 s to 60 s is used to reduce panel permeation and weight loss. Extrusion blow moulding uses continuous shuttle machines with 55 mm to 75 mm extruders, melt temperatures of 190 °C to 215 °C, and an accumulator head programmed to maintain top, mid, and bottom wall thickness within 1.2 mm to 2.4 mm; bottles are then subjected to ASTM D1693-15 bent-strip ESCR testing in 100% Igepal CO-630, ASTM D256-23 Izod impact at 23 °C, and top-load compression at 40 °C for 28 days. Terminal products include 1 L, 5 L, 10 L, and 20 L tight-head bottles, UN-certified jerrycans, and closed-transfer system containers for selective herbicide, fungicide, and insecticide concentrates.

    When HDPE 23050 B is converted into diesel exhaust fluid reservoirs, the resin is processed on accumulator blow-moulding lines with parison wall-thickness control because the top-mounted fill point and bottom outlet fitting create local thinning at the pinch line and thread bosses. Material suitability for aqueous urea solution is governed by ISO 22241-3:2017, which restricts contact materials that can leach catalytic poisons or organic carbon into the fluid; the finished reservoir may also be validated under DIN 70070 for diesel exhaust fluid handling and under the general vehicle requirements of UN ECE R10 for electromagnetic compatibility only where heated level sensors are integrated. Production formulations combine 100 parts HDPE 23050 B with 1.0 wt% to 2.0 wt% UV masterbatch and no regrind in the fluorinated inner layer; when a regrind layer is used, it is restricted to 15 wt% and kept away from the inner surface because fluorine-treated regrind generates melt-fracture striations at the parison boundary. In-line fluorination is applied during parison inflation at 0.2 vol% to 0.5 vol% fluorine in nitrogen for 8 s to 20 s, producing a barrier layer that reduces urea permeation and protects the weld line from stress cracking. The blow-moulding cell uses a 70 mm to 110 mm extruder with L/D 28:1, melt temperatures of 205 °C to 230 °C, mould temperatures of 12 °C to 18 °C, and clamp forces between 400 kN and 1,200 kN depending on shot size. Terminal products include 10 L to 32 L AdBlue/SCR tanks, IBC inserts for diesel exhaust fluid, and 20 L refill containers.

    High-Stretch Thin-Wall Detergent Bottle Conversion and Top-Load Retention

    Top-load collapse in warehouse stacking, not drop impact, is the dominant failure mode when 500 mL to 5 L detergent bottles are converted from HDPE 23050 B on continuous shuttle and long-stroke blow-moulding machines. In the EU, the finished container is subject to Regulation (EC) No 648/2004 for detergent composition labelling; the plastic material is assessed under REACH (EC) No 1907/2006 and, where food-contact use is claimed, under FDA 21 CFR 177.1520 or Regulation (EU) No 10/2011 with overall migration below 10 mg/dm² for the relevant food simulant. Formulation uses 100 parts HDPE 23050 B with 1.0 wt% to 2.0 wt% colour masterbatch, 0.5 wt% to 1.0 wt% slip/anti-block additive if bottle stacking friction is specified, and ≤30 wt% recycled HDPE only when the converter has qualified the melt-flow ratio and odour threshold. Processing parameters include melt temperatures from 180 °C to 210 °C, blow-up ratios between 2.5:1 and 3.5:1, mould cooling at 8 °C to 15 °C, and cycle times of 10 s to 18 s depending on cavity count. Terminal types include 500 mL, 750 mL, 1 L, 2 L, and 5 L detergent bottles, laundry product packs, and industrial cleaner containers with handle or grip features.

    For blow-moulded vertical storage tanks from 500 L to 2,000 L, the critical processing limit is not the melt-flow index but the accumulator head shot size and the uniform cooling of a 150 kg to 400 kg parison. Potable water contact is qualified under NSF/ANSI/CAN 61 in North America, under BS 6920 or the applicable national drinking-water approval where specified in the UK and Ireland, and under Regulation (EU) No 10/2011 when the tank is used as a food-contact storage vessel; industrial water and chemical dosing tanks are typically assessed under REACH (EC) No 1907/2006 and the end-user’s material compatibility protocol. Production formulations are 100 parts HDPE 23050 B with 1.0 wt% to 2.0 wt% UV stabilizer masterbatch, 0.5 wt% to 1.0 wt% processing aid, and ≤40 wt% clean post-industrial regrind when long-term creep resistance in the bottom chime area remains acceptable. The conversion is performed on large-part accumulator blow-moulding machines with 120 mm to 150 mm grooved-feed extruders, L/D 30:1, melt temperatures of 200 °C to 230 °C, mould temperatures of 10 °C to 16 °C, and clamp forces above 2,000 kN. Terminal products include conical and flat-bottom water storage tanks, agricultural sprayer tanks, and secondary containment basins.

    When Six-Layer Co-Extrusion Replaces Monolayer Blow Moulding for Evaporative Emission Compliance

    At the layer level, HDPE 23050 B functions as the outer and inner structural layers in six-layer co-extruded fuel tanks when evaporative emission limits fall below the capability of monolayer fluorinated HDPE. The regulatory framework includes UNECE Regulation No. 34 Annex 5 for fire resistance and mechanical integrity, EPA 40 CFR Part 86 and CARB LEV III for diurnal breathing loss and hot soak emissions, and the applicable vehicle type-approval permeation test procedure referenced by the original equipment manufacturer. In a typical six-layer structure, the layer stack is HDPE outer / regrind / tie / EVOH / tie / HDPE inner; HDPE 23050 B occupies 40 wt% to 50 wt% of the finished tank, the regrind layer 30 wt% to 40 wt%, tie layers 1 wt% to 3 wt%, and EVOH 1.5 wt% to 3.0 wt%. If the exact layer distribution for HDPE 23050 B in a six-layer tank is required, published data for this specific configuration is limited; converter trials on the target die head are required. The co-extrusion line requires separate extruders for HDPE, regrind, tie, and EVOH feeding a six-layer die head; HDPE melt temperature is maintained at 210 °C to 230 °C, EVOH at 190 °C to 220 °C, and the tie resin at 200 °C to 220 °C, with die-head temperatures controlled to ±2 °C to prevent viscosity mismatch at the layer boundaries. Parison programming must compensate for the higher sag tendency of the EVOH-containing structure, so the accumulator head is programmed with a 10% to 25% top-wall thickness increase and a 20% to 35% bottom pinch-off reinforcement relative to the nominal mid-wall. Post-mould cooling and trimming are followed by leak, drop, and fire-resistance testing per the applicable vehicle type approval. Terminal products include 40 L to 90 L gasoline and diesel fuel tanks, saddle tanks, and pressurized hybrid fuel tanks with filler neck and sender unit bosses.

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    Certification & Compliance
    More Introduction

    Liaoning Jincheng LyondellBasell HDPE 23050 B is a bimodal high-density polyethylene compound directed at pressure pipe extrusion. The material is positioned within the PE100 classification of ISO 12162, corresponding to a minimum required strength of 10 MPa at 20 °C for 50 years when subjected to the hydrostatic test and regression procedures of ISO 9080. The melt mass-flow rate is specified at 0.23 g/10 min under ISO 1133-1:2022 using a 190 °C/5 kg condition. Compound density for the black extrusion compound is typically 0.958 g/cm³ under ISO 1183-1:2019, while the base resin density is commonly reported in the 0.950 g/cm³ range. The product is supplied as a UV-stabilized black compound with carbon black content controlled to 2.0–2.5 wt% under ISO 6964 and dispersion evaluated under ISO 18553. Principal applications are municipal potable water mains, buried force mains, industrial pressure conduits, and other pressure pipe systems where the PE100 rating permits reduced wall thickness at a given pressure class relative to PE80.

    Table 1 summarizes the specification framework used for lot release, incoming inspection, and process verification for the 23050 B product family.

    Property Test method Typical specification range Batch acceptance note
    Compound density ISO 1183-1 0.950–0.960 g/cm³ Immersion method at 23 °C
    Melt mass-flow rate ISO 1133-1 0.20–0.25 g/10 min 190 °C/5 kg cylinder
    Tensile stress at yield ISO 527-2 ≥22 MPa Type 1B specimen; 50 mm/min
    Tensile elongation at break ISO 527-2 ≥500% Type 1B specimen
    Flexural modulus ISO 178 850–1000 MPa 2 mm/min test speed
    Charpy notched impact strength ISO 179-1/1eA ≥20 kJ/m² at 23 °C Notched specimen
    Carbon black content ISO 6964 2.0–2.5 wt% Muffle furnace method
    Oxidative induction time ISO 11357-6 ≥20 min at 200 °C DSC aluminium pan

    What Distinguishes the 23050 B Molecular Architecture from Single-Modal HDPE Grades?

    The defining structural feature of 23050 B is a bimodal molecular weight distribution produced through a cascade polymerization route. The high-molar-mass fraction contributes to slow crack growth resistance and long-term hydrostatic strength, while the low-molar-mass fraction acts as an internal processing aid that lowers shear viscosity during pipe extrusion. This separation of functions is not present in conventional unimodal HDPE grades, where an increase in molar mass improves mechanical strength but simultaneously reduces melt flow and increases extruder torque. Under size exclusion chromatography, the low-molar-mass tail of the 23050 B envelope reduces viscosity at the high shear rates encountered in the grooved feed zone and die land, while the high-molar-mass fraction remains available for tie-chain formation between lamellae. The resulting resin therefore maintains processability at a melt mass-flow rate of 0.23 g/10 min while still achieving the PE100 hoop stress capability of 10 MPa at 20 °C for 50 years.

    In comparison with a single-modal PE80 resin, the PE100 classification permits a thinner wall at identical pressure class. For a DN 110 PN16 pipe, the standard dimension ratio selected under ISO 4065 is reduced from SDR 11 to SDR 13.6, lowering mass per metre by approximately 15%. This wall reduction is structurally valid only when the melt is free of poorly dispersed high-tails or oxidized gel defects. Batch-to-batch variation in the high-molar-mass fraction is therefore monitored indirectly through melt pressure stability and gel-count screening on polished extrusion plaques rather than by routine rheometry alone.

    Performance parameter 23050 B PE100 class Conventional PE80 Test method
    Minimum required strength at 20 °C 10 MPa 8 MPa ISO 12162
    Hydrostatic failure at 20 °C / 12.4 MPa Normative PE100 requirement Not guaranteed ISO 1167-1
    Pipe notched slow crack growth ≥500 h at 80 °C / 0.8 MPa Often below 200 h ISO 13479
    Relative wall thickness at DN 110 PN16 SDR 13.6 Thicker SDR 11 ISO 4065
    Melt homopolymers structure Bimodal Unimodal Size exclusion chromatography

    Published data for this specific configuration is limited in independent literature; comparative statements are therefore constrained to normative PE100 classification boundaries and do not attribute unique performance values beyond supplier certification.

    Slow Crack Growth Resistance and Hydrostatic Design Basis

    The long-term failure envelope of the 23050 B compound depends on resistance to slow crack growth from localized stress concentrations such as scratches, rock impingement, or poor fusion beads. The accepted ranking criterion is the notched pipe test of ISO 13479, in which an externally notched pipe is pressurized at 80 °C to produce a notched-ligament stress of 0.8 MPa. PE100 formulations in this class are expected to resist failure for ≥500 h. The underlying mechanism is fibril drawing in the craze zone ahead of a crack tip; the high-molar-mass fraction increases the density of tie molecules and interrupts brittle crack propagation. Melt processing that over-shears the compound, especially at melt temperatures above 240 °C, degrades the high-molar-mass fraction through thermo-oxidative chain scission and may reduce notched pipe life below the PE100 requirement.

    Hydrostatic design basis is established according to ISO 9080 using sustained pressure tests at 20 °C, 60 °C, and 80 °C. Linear regression of hoop stress versus time to failure is used to assign the lower predictive limit. For PE100 classification, the predicted lower confidence limit must be at least 10 MPa at 20 °C for 10⁵ h. Pipe manufactured with 23050 B is intended to meet this threshold when extrusion parameters are kept within the certified processing window. However, field failures are frequently observed when butt-fusion beads are removed aggressively or when pipe is dragged over rocky soil without sand bedding; even a PE100 resin does not remove the need for proper installation practice under GB/T 13663.2 and ISO 4427-2.

    The oxidation resistance of the compound is evaluated through oxidative induction time at 200 °C per ISO 11357-6. A value of ≥20 min confirms that the phenolic antioxidant and phosphite process stabilizer package remains active after compounding. At the extrusion stage, residual hydroperoxides formed during high-shear processing are decomposed by the phosphite; the phenolic component provides long-term thermal stabilization. The product is not formulated for continuous service above 60 °C water in the absence of a higher temperature rating. Exposure to strong oxidizing agents, aromatic hydrocarbons, or chlorinated water at high residual chlorine concentrations can shorten the predicted lifetime due to oxidative embrittlement.

    When 23050 B Is Substituted for Unimodal HDPE in Buried Potable Water Mains

    When 23050 B is introduced into a municipal buried water main previously extruded from unimodal PE80, the production line must be rebalanced for the higher melt elasticity and lower screw torque of the bimodal grade. The extruder is typically a grooved-feed single-screw design with an L/D ratio between 30:1 and 40:1. Barrel zones are established from 180 °C to 220 °C, adapter temperature near 210 °C, and die zones at 205–215 °C. The measured melt temperature at the die entry should remain between 215 °C and 230 °C. Exceeding 240 °C creates die lip build-up, surface melt fracture, and possible reduction in slow crack growth resistance. The vacuum calibration tank is maintained at -0.2 bar to -0.6 bar with water temperature from 20 °C to 40 °C. Inconsistent vacuum or eccentric die centring produces wall-thickness variation that directly reduces the effective hydrostatic design life.

    The substitution is most effective for potable water distribution mains, irrigation headers, and industrial cooling lines. For potable water service, the product must meet the organoleptic and migration requirements of the target market. In China, GB/T 13663.2 is the governing standard for polyethylene piping systems for water supply. In Europe, EN 12201-2 applies; in international specifications, ISO 4427-2 is referenced. Food-contact compliance may be assessed under FDA 21 CFR 177.1520 for olefin polymers in contact with food, although specific potable water approval is product-, colorant-, and carbon-black-grade dependent. The black compound is not directly suitable for gas service unless the finished pipe system meets GB 15558.1 or ISO 4437 and has been separately certified.

    Controlling Extruder Melt Temperature and Downstream Calibration Parameters

    Melt temperature control is the primary processing risk for 23050 B. Because the bimodal resin contains a high-molar-mass fraction, excessive shear heat can increase melt temperature beyond the set point and overwhelm barrel cooling capacity. The temperature rise is concentrated in the compression and metering zones where viscous dissipation is greatest. Operators should monitor die-head pressure and screw torque rather than relying solely on barrel set points. A high melt temperature above 240 °C can initiate thermo-oxidative degradation at the barrel wall, forming oxidized gel particles that appear as surface imperfections in the finished pipe. These defects act as stress raisers during internal pressure loading and can reduce notched pipe test performance. When gel-count screening indicates oxidized polymer, the first corrective action is to reduce screw speed or increase barrel cooling, not to increase die temperature.

    Pre-drying of HDPE 23050 B is not normally required. The resin is not hygroscopic, and moisture is typically confined to surface condensation from cold warehouse storage. If sacks or octabin liners are opened in a high-humidity environment and the pellets are at a temperature below dew point, the material should be dried at 70–80 °C for 2 h in a desiccant hopper to prevent surface splay. The hopper dew point should be held at -20 °C or lower. Drying above 90 °C is not necessary and can lead to pellet bridging if the hopper has poor material flow. The use of recycled or regrind material from mixed polyethylene sources is discouraged because the hydrostatic design basis validation becomes void once the molecular weight distribution is no longer controlled.

    Butt-fusion welding of pipes extruded from 23050 B follows ISO 21307 or GB/T 19808. The heater plate surface is set to 220 ± 10 °C, with interfacial pressure of 0.15 MPa during bead formation. Fusion operator certification is required because improper bead removal can introduce sharp notches at the joint. Electrofusion coupler installation requires scraping of the oxidized pipe surface to remove the carbon-black-rich surface layer before fitting under the relevant national standard. Pressure testing after installation should follow ISO 4427-5 or the national equivalent.

    The product should not be stored in direct sunlight for prolonged periods beyond the supplier-specified UV stabilization period. Although carbon black provides ultraviolet screening, long-term outdoor exposure can cause surface microcracking and reduce pressure test performance. Storage locations should be dry, flat, and protected from cutting edges that create scoring on the outer wall. If the material is stored for more than 2 years from the date of production, re-certification of melt mass-flow rate, oxidative induction time, and carbon black dispersion is recommended before extrusion because additive depletion and moisture ingress can produce batch-to-batch variation not captured by the original lot certificate.

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