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PetroChina Daqing HDPE DMDA8920

    • Product Name: PetroChina Daqing HDPE DMDA8920
    • 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 375880

    As an accredited PetroChina Daqing HDPE DMDA8920 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing PetroChina Daqing HDPE DMDA8920 comes in 25 kg polyethylene-lined woven bags, typically 40 bags per pallet.
    Container Loading (20′ FCL) 20′ FCL: 25 kg bags, 25 MT net per container, palletized or floor-loaded, with plastic liner and shipping marks.
    Shipping PetroChina Daqing HDPE DMDA8920 is typically shipped as non-hazardous polyethylene resin pellets in 25 kg bags or 1000 kg jumbo bags, palletized and stretch-wrapped. It is not classified as dangerous goods, with no UN number. Store in a cool, dry, ventilated area away from heat and sunlight; standard freight or container transport applies.
    Storage Store PetroChina Daqing HDPE DMDA8920 in a cool, dry, well-ventilated warehouse, away from direct sunlight, heat, sparks, and flames. Keep original bags sealed and palletized to prevent moisture, dust, and contamination. Avoid prolonged UV exposure and excessive stacking. Maintain clean handling areas. Store at ambient temperature, protected from weather. Follow supplier SDS and local regulations.
    Shelf Life Shelf life is approximately 24 months when stored unopened in original packaging, dry, cool, and away from direct sunlight.
    Application of PetroChina Daqing HDPE DMDA8920

    In extrusion blow molding of household detergent and personal-care bottles, PetroChina Daqing HDPE DMDA8920 is run with a nominal melt flow rate of 0.20 g/10 min at 190°C/2.16 kg under ISO 1133-1:2022 and a nominal density of 0.954 g/cm³ under ISO 1183-1:2022. The compliance envelope for the empty container is governed by EU Regulation (EC) No 1907/2006 for REACH articles, EU Regulation (EC) No 1223/2009 for cosmetic packaging safety assessment by the brand owner, and FDA 21 CFR 177.1520 where the package enters food-contact service. Formulation on production lines typically consists of 96.0–98.0 wt% virgin DMDA8920, 2.0–4.0 wt% polyethylene-based color masterbatch, and 0.2–0.8 wt% processing-aid masterbatch; mineral fillers are excluded because they reduce weld-line elongation. The downstream process uses continuous shuttle extrusion blow molding with a 60–75 mm grooved-barrel extruder having an L/D ratio of 24:1–30:1, barrel zone temperatures from 170°C to 205°C, a die temperature of 190–200°C, mold temperature of 15–30°C, and blow-air pressure of 0.6–0.8 MPa. On 1 L bottle tools, cycle time is 9–13 s; parison programming with 10–20 wall-thickness points is required to maintain 0.45–1.20 mm minimum wall thickness. Finished product types are 250 mL–5 L detergent, hand-soap, and cosmetic bottles. A known production-floor limitation is that sustained screw speeds above 70 min⁻¹ on 65 mm lines can produce melt-temperature nonuniformity greater than 5°C, leading to parison curvature and wall-thickness asymmetry. Regrind above 25 wt% of shot weight should not be used without widening the parison programming window, because environmental stress crack resistance, measured under ASTM D1693-B in 10% Igepal CO-630, falls below the 100 h F50 threshold required for aggressive liquid detergent bases.

    UN 3H1 Jerrican Wall Thickness and Stack-Load Certification Boundaries

    For 10–25 L tight-head chemical jerricans, DMDA8920 is processed on accumulator-head blow molding machines with 80–100 mm grooved-barrel extruders at L/D ratios of 24:1–32:1. The compliance framework is defined by UN packaging design type 3H1 for plastics jerricans with non-removable heads, tested under ADR/RID/IMDG 6.1.5.3: drop impact at -18°C and 1.2 m for packaging group II, hydraulic pressure at 100 kPa for 30 min, and stack loading at 40°C for 28 days at 3 m stack height. The production formulation comprises 97.0–98.5 wt% virgin DMDA8920, 1.5–2.5 wt% UV/antioxidant PE masterbatch, 0.5–1.0 wt% processing aid, and 15–20 wt% closed-loop regrind only from the same UN-approved lot. The parison is extruded through a diverging accumulator head at a head pressure of 25–35 MPa and a melt temperature of 195–210°C, then blown at 0.7–1.0 MPa with 30–50 axial programming points to prevent corner thinning at the pinch-off. Mold clamp force for 20 L tools is maintained between 500 kN and 1200 kN; cycle time is 55–75 s, with an additional 20–40 s in a post-cooling fixture to reduce top-load deflection. Terminal products are 10–25 L UN-certified jerricans for liquid industrial chemicals and agrochemical concentrates. A validated line audit shows that wall thickness at the handle-chime junction must exceed 1.5 mm; below this value, the -18°C drop test failure rate increases because impact energy is not absorbed through the thickest section. Regrind above 20 wt% in the outer wall begins to reduce ESCR F50 under ASTM D1693-B, and values below 50 h have been recorded at 30 wt% regrind for some concentrated hypochlorite formulations.

    On 20 L accumulator-head tooling, parison sag is the dominant process conflict: the high molecular weight tail that raises ESCR under ASTM D1693-B also increases melt strength at low shear, but once hang time exceeds 8 s and parison length exceeds 1200 mm, sag becomes visible as a wall-thickness taper beyond 0.3 mm across the chime. This forces a melt-temperature ceiling of 210°C and screw-speed ceiling of 45 min⁻¹ on 90 mm accumulator-head lines; above that speed, shear heating adds another 4–6°C to the melt, and the lower corner thickness fails the hydraulic pressure test.

    Design type testStandard / procedureConditionAcceptance criterion
    Drop impactADR/RID/IMDG 6.1.5.3-18°C, 1.2 m, packaging group IINo leakage or burst
    Hydraulic pressureADR/RID/IMDG 6.1.5.3100 kPa, 30 minNo rupture or leakage
    Stack loadADR/RID/IMDG 6.1.5.340°C, 28 d, 3 mNo deformation affecting closure
    ESCRASTM D1693-B10% Igepal CO-630, 50°CF50 ≥ 100 h for virgin control

    Preformulated agricultural concentrate packaging in 0.5–5 L containers is run with DMDA8920 only after filled-product compatibility testing at 54°C for 14 days and permeation screening under UN 3H1/Y conditions. The regulatory basis includes FAO/WHO Guidelines for the Storage of Pesticides, US EPA 40 CFR 156 Subpart K for child-resistant packaging when the formulation requires it, and EU CLP Regulation (EC) No 1272/2008 for closure stability and label adhesion. Two distinct barrier constructions are used. In five-to-six-layer coextrusion blow molding, the outer wall consists of 68–75 wt% DMDA8920, 5–8 wt% EVOH barrier resin, 2–4 wt% maleated tie resin, and 15–20 wt% regrind; in monolayer fluorinated construction, the formulation is 98.5–99.0 wt% DMDA8920 with 1.0–1.5 wt% carbon black masterbatch, and fluorination is applied inline at a fluorine dosage of 0.2–0.5 g/m². The coextrusion process runs through a six-layer spiral die with HDPE melt temperature at 190–205°C, tie resin at 200–220°C, EVOH at 200–220°C, and mold temperature at 15–20°C; fluorinated monolayer lines inject 0.5–1.5 vol% fluorine-nitrogen gas into the parison interior during blowing. Finished products are 0.5–5 L pesticide, herbicide, and growth-regulator jugs with UN certification for liquid dangerous goods. A processing boundary for fluorinated containers is that fluorine uptake above 0.6 g/m² increases surface roughness and can reduce cap-sealing torque retention; for coextruded structures, EVOH-containing regrind above 5 wt% in the outer layer should be avoided because crosslinked gel particles create visible pinholes after 14 days of xylene-compatibility screening.

    What Limits Dimensional Stability in 500 mL Pharmaceutical Tablet Bottles?

    On alternating extrusion blow molding machines producing 50–500 mL tablet bottles, the grade is selected for extractables control and resistance to stress cracking from isopropanol-based label-cleaning solutions. Compliance is anchored to Ph. Eur. 3.1.3 for polyethylene with additives, USP 661.1 for plastic packaging systems, and FDA 21 CFR 177.1520 for olefin polymers; extractables screening on the finished bottle follows USP 1663 for manufacturing component assessment. The formulation uses 98.0–99.5 wt% virgin DMDA8920 and 0.5–2.0 wt% white polyethylene masterbatch; external slip agents are omitted because leachable lubricants are a known cause of label-adhesion failure during high-speed rotary labeling. Processing takes place through a 55–70 mm barrier screw with L/D 25:1, melt temperature 185–200°C, die temperature 190–195°C, mold temperature 10–25°C, blow-air pressure 0.6 MPa, and shot-weight control of ±0.3 g. Neck finishes from 28 mm SP400 to 33 mm SP400 are machined in-line; above 205°C melt temperature, neck-shrinkage defects exceed 0.3 mm and cap torque compliance fails. Terminal products are 50–500 mL bottles for tablets, capsules, and powdered nutraceutical preparations. Pre-drying at 80°C for 2 h is required when storage relative humidity exceeds 70%, because surface moisture creates microvoids at the neck pinch line. Published data for the specific interaction of DMDA8920 with high-pH liquid suspensions above 60 days storage is limited, and filled-product stability must be confirmed under the finished dosage form protocol.

    Automotive windshield washer and coolant overflow reservoirs blow-moulded from DMDA8920 are produced with a closed-loop regrind fraction of 20–25 wt% because the grade retains low-temperature impact resistance after four passes on an 80 mm accumulator-head line. Lot certification follows ISO 1183-1:2022 for density, ISO 1133-1:2022 for melt flow rate, ISO 180 for notched Izod impact at -30°C, and ISO 188 for hot-air aging at 100°C for 1000 h; OEM specifications commonly require retained tensile strength above 80% after aging. The compounding ratio is 75.0–80.0 wt% virgin DMDA8920, 20.0–25.0 wt% dried same-lot post-industrial regrind, and 2.0 wt% carbon black masterbatch. Process conditions for 2.0–4.5 L asymmetric tanks use either 3D suction blow molding or an accumulator head with 80 mm grooved-barrel extruder, melt temperature 190–205°C, mold temperature 15–25°C, blow-air pressure 0.8–1.0 MPa, and a post-cooling fixture cycle of 25–45 s to prevent warpage. Parison programming must address the pinch line because the washer tank’s offset filler neck creates uneven parison stretch; leak testing at 0.05 MPa internal air pressure is standard before welding. Terminal products are 2.0–4.5 L windshield washer reservoirs and coolant overflow tanks. Regrind content above 30 wt% is not recommended because notched Izod at -30°C falls below 6 kJ/m² and post-mold warpage increases after 48 h ambient storage.

    When Food-Grade Condiment Bottles Require Low-Odour High-ESCR Polyethylene

    For 250 mL–5 L food containers such as condiment, honey, and edible oil bottles, DMDA8920 is processed with a low-shear screw geometry to limit stagnant melt zones and off-flavour generation. Food-contact compliance is demonstrated under FDA 21 CFR 177.1520, EU Regulation (EU) No 10/2011 with an overall migration limit of 10 mg/dm² or 60 mg/kg food simulant, and China GB 4806.7-2016; organoleptic acceptance is verified by sensory panel using ISO 13302:2003 for taint assessment. The formulation is 97.0–99.0 wt% virgin DMDA8920, 1.0–3.0 wt% white polyethylene masterbatch, and up to 25 wt% regrind from the same food line; no external release agent is added unless its specific migration limit under the intended food simulant is documented. Processing conditions for shuttle blow molding use a 65 mm grooved-barrel extruder at L/D 25:1, melt temperature 190–205°C, die temperature 195–200°C, mold temperature 10–25°C, and cycle time of 7–11 s for 500 mL containers. Terminal products are 250 mL–5 L food-grade bottles for condiments, honey, and edible oil. Melt temperature above 210°C is avoided because oxidative degradation of the high-molecular-weight fraction produces off-taste; regrind above 25 wt% increases gel-particle count and sensory failure risk under ISO 13302:2003 triangle testing after 60°C accelerated storage.

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