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Shanxi PCEC HDPE DGDA6094

    • Product Name: Shanxi PCEC HDPE DGDA6094
    • 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 450743
    Melt Flow Rate 190 C 2 16 Kg 0.8 g/10 min
    Density 0.952 g/cm³
    Tensile Strength At Yield 31 MPa
    Tensile Strength At Break 26 MPa
    Elongation At Break 800%
    Flexural Modulus 1200 MPa
    Vicat Softening Temperature 127 °C
    Heat Deflection Temperature 0 45 Mpa 75 °C
    Environmental Stress Crack Resistance F50 >1000 h
    Shore D Hardness 65
    Brittleness Temperature < -70 °C
    Melting Point 130 °C
    Water Absorption <0.01%
    Volume Resistivity >10^16 Ω·cm
    Dielectric Constant 1 Mhz 2.3

    As an accredited Shanxi PCEC HDPE DGDA6094 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Shanxi PCEC HDPE DGDA6094 is packaged in 25 kg PE-lined woven bags or 1000 kg jumbo bags for industrial transport.
    Container Loading (20′ FCL) 20′ FCL container loaded with Shanxi PCEC HDPE DGDA6094 in 25 kg bags, palletized, stretch-wrapped, and securely braced for export.
    Shipping Shanxi PCEC HDPE DGDA6094 is a non-hazardous high-density polyethylene grade. It is typically shipped in 25 kg bags or 1000 kg jumbo bags, palletized and stretch-wrapped. Transport in clean, dry containers; keep away from moisture, heat, and direct sunlight. No special dangerous goods classification; follow MSDS and local regulations.
    Storage Store Shanxi PCEC HDPE DGDA6094 in a cool, dry, well-ventilated warehouse, away from direct sunlight, heat, sparks, flames, and strong oxidizers. Keep original bags or containers closed, palletized, and off the floor. Prevent moisture, dust, and contamination. Use clean handling equipment, maintain safe stacking, avoid prolonged UV exposure, and follow the manufacturer’s SDS and local regulations. Do not store outdoors.
    Shelf Life Shanxi PCEC HDPE DGDA6094 typically has a 24-month shelf life when stored cool, dry, sealed, and protected from sunlight.
    Application of Shanxi PCEC HDPE DGDA6094

    In monofilament converting for fishery twine, rope yarn and netting, Shanxi PCEC HDPE DGDA6094 is metered through a grooved-feed single-screw extruder with a 33:1 L/D barrier screw, a screen changer holding a 150/200/150 mesh pack, and a gear pump ahead of a single-hole die. The barrel profile is set at 195 °C in zone 1, 225 °C in zone 2, 235 °C in zone 3 and 225 °C in the adapter; the melt temperature is held between 210–220 °C. A melt temperature above 225 °C lowers elongational viscosity enough to destabilize the water quench entry, while below 200 °C the screw motor load rises above 90% and unmelted gels pass through the filter pack to form weak points in the filament. The die land length is maintained at 8–10 times the die orifice diameter to control die swell and reduce surface melt fracture. The quench tank water is held at 30–40 °C, and the air gap between the die face and the water surface is controlled at 20–35 mm; a shorter air gap increases quench shock and creates void-like internal streaks, while a longer air gap permits pre-draw necking that reduces orientation. Filaments are drawn between two heated godets at 95–120 °C with a draw ratio from 5:1 to 7:1. Draw ratio is the primary control for tensile strength; below 4:1 the finished twine lacks sufficient yield stress for netting panels tested under ISO 1806:2006 mesh breaking force methods, while above 8:1 surface fibrillation initiates at the filament core and reduces knot efficiency below 45%. Annealing on a third godet at 90–105 °C with 2–4% relaxation lowers free shrinkage to less than 3% after 10 min at 70 °C. Additive packages typically include 0.8–1.5 phr of a HALS-based UV stabilizer and 0.3–0.7 phr of a phenolic antioxidant for outdoor rope service; omission of the HALS package causes surface crazing after 1,200 h of accelerated weathering under ISO 4892-3 Method A. Batch-to-batch variance in die head pressure of ±8% is considered normal on a 45 mm extruder; larger swings indicate feedbridge partial melt plugging.

    When Tape-Line Draw Ratio Passes 7.5:1 in Woven Sack Converting

    Flat-die water-quenched tape lines running DGDA6094 for woven sack fabric and FIBC outer shells are operated with a 0.9–1.1 mm coat-hanger die lip gap, a water bath at 35–45 °C, and slitting widths of 2.0–2.5 mm. The slit tapes enter a hot-air orientation oven at 105–125 °C; the first and second stretching godet set a draw ratio between 6.0:1 and 7.5:1. Within this band, the tape tensile strength passes 2.5 N/tex when measured on a 100 mm gauge length at 300 mm/min, but a draw ratio above 7.5:1 raises the splitting tendency of the tape edge and creates broken fibrils that wrap around circular loom shuttle guides. The speed differential between the second stretching godet and the annealing godet is held at 4–6% relaxation, and the annealing temperature is set at 85–95 °C. Absence of relaxation produces rolled tape edges at loom insertion, with fabric flatness failing a 8 mm warp bow per 1 m width criterion. Woven fabric from these tapes is produced on circular looms at 450–650 picks/min; high-tension beaming at above 350 N per 1,200 tapes causes width variation that shifts fabric density. The finished fabric is converted into sacks and tested under ISO 21898 for flexible intermediate bulk containers when used in FIBC outer walls. Regrind from edge trim is permitted up to 20% by weight without longitudinal split failure, provided the trim is ground to a uniform 4 mm particle size and dried at 80 °C for 30 min if ambient relative humidity exceeds 70%.

    What Limits Frost-Line Height on a 90 mm Grooved-Feed Blown Film Line?

    Blown-film converting of DGDA6094 for heavy-duty liners and agricultural film is run on grooved-feed extruders with a 25:1 L/D screw, a 150–250 mm die, and a dual-lip air ring. The melt temperature at the die is maintained between 185–205 °C, the die gap is set at 0.8–1.2 mm, and the blow-up ratio is controlled between 2.0:1 and 3.5:1. Frost-line height is the single largest output constraint on production lines; with chilled air at 10–15 °C the frost line can be held at 8–10 times die diameter, while ambient air at above 28 °C forces the frost line downward and reduces bubble stability. A frost line below 6 times the die diameter produces uneven gauge because the bubble is still molten at the collapsing frame, while a frost line above 12 times die diameter lowers output and increases susceptibility to wind-induced flutter. Gauge control uses a capacitive sensor array and automatic segmented die correction; at 25 µm nominal thickness the acceptable gauge variance is ±6%. Film tensile properties are evaluated according to ISO 527-3:2018 on 15 mm wide strips at a crosshead speed of 250 mm/min, with the machine direction elongation at break typically required above 300% for liner applications. Dart impact resistance is measured under ASTM D1709-22 Method A; converters should request lot-specific certificates from Shanxi PCEC rather than assuming published values because additive package changes shift the failure mass by more than 10%. The film can be printed after corona treatment to a surface energy of 38–42 mN/m; higher treatment levels cause surface oxidation that reduces heat seal strength. No pre-drying of the neat resin is required below 60% ambient relative humidity; above 70% relative humidity surface moisture can generate steam splay at the die exit, requiring a 15–20 min purge at 190 °C to clear.

    Sheet extrusion and downstream thermoforming of DGDA6094 is used for dunnage trays, pallet separating sheets, battery separator plates and industrial tote liners. A 120 mm 30:1 L/D extruder with a gear pump feeds a 1.2 m flexible-lip die; the melt temperature is set at 220–245 °C. The die lip gap is set 10–15% above target sheet thickness to compensate for edge bead and draw-down. The polishing stack uses a middle roll temperature of 70–90 °C and a finishing roll at 50–70 °C; lower roll temperatures below 45 °C create quench-induced internal voids that reduce flexural modulus by 8–12%. Sheet thickness is run from 2 mm to 8 mm. For 3 mm sheet, the surface temperature at the thermoforming station is brought to 165–190 °C; plug assist pressure above 4.5 bar or forming below 155 °C causes corner whitening and localized thinning below 45% of nominal thickness. The formed article density is 0.953 g/cm³ when measured by ISO 1183-1:2019. Tensile yield stress at 23 °C is evaluated according to ISO 527-2:2012 on a Type 1B specimen at 50 mm/min; values for high-density HDPE sheet of this flow class are commonly reported in the range of 22–26 MPa, but lot-specific certificates must be requested because molecular weight distribution and density variation in different Shanxi PCEC batches change yield stress by ±1.5 MPa. Food-contact sheet made from neat DGDA6094 may be evaluated under 21 CFR 177.1520 and EU Regulation No 10/2011 for overall migration; the compliance status is lost if trim containing non-compliant masterbatch or lubricant is reintroduced. Regrind loading up to 25% by weight is practiced on clean thermoforming trim, provided the flake is ground to 6 mm and mixed with virgin pellets before drying at 80 °C for 30 min when ambient relative humidity exceeds 70%.

    Converting routeCritical control variableOperating rangeFailure thresholdTest/audit standard
    Monofilament twineDraw ratio5:1–7:1Above 8:1 fibrillationISO 1806:2006
    Oriented tapeOven draw temperature105–125 °CDraw above 7.5:1 split tendencyISO 527-3:2018 strip tensile
    Blown filmFrost-line height8–10 die diametersBelow 6 die diameters uneven gaugeASTM D1709-22
    SheetThermoforming surface temperature165–190 °CBelow 155 °C corner whiteningISO 527-2:2012
    Blow moldingRegrind contentUp to 15%Above 15% swell variabilityASTM D1693-21
    GeomembraneCarbon black content2–3%Below 2% UV embrittlementISO 11357-6

    Extrusion Blow Molding of DGDA6094 With Parison Swell Control

    Extrusion blow molding of 10 L to 60 L closed-head drums, jerrycans and agricultural chemical containers uses this grade when environmental stress crack resistance is a specification requirement. The parison is extruded through a diverging die gap of 1.2–2.0 mm at a melt temperature of 190–205 °C; parison swell is 35–45% measured 20 mm below the die face. The mold clamping force required for a 30 L container is 120–180 kN, with blow pressure at 0.7–1.0 MPa and mold temperature at 10–20 °C. Post-mold shrinkage reaches 2.5–3.5% after 48 h, and dimensional checks are therefore not taken before 48 h aging. Environmental stress crack resistance of the bottle or drum is tested under ASTM D1693-21 Condition A; production lots are accepted when no failure occurs before 1,000 h. For formal qualification, ISO 16770 full-notch creep test gives a comparative failure time under 4 MPa at 50 °C; published data for DGDA6094 under this exact loading are limited, so a qualification run on an actual container is required before release. The resulting containers are leak-tested at 40 kPa air pressure for 30 s with a maximum allowable leak rate of 0.5 L/min, and drop-tested at -20 °C after 48 h aging to verify ductile failure rather than brittle splitting. Use of regrind above 15% by weight reduces parison melt strength and increases die swell variability; if mixed, half of the regrind should be from trimmed flash and no more than 15% of the total formulation should be post-consumer recyclate unless a documented homogenization step is used.

    Containment liner and geomembrane panels are extruded from DGDA6094 in widths of 3–5 m and thicknesses of 1.0–2.5 mm on flat-die calender lines. The melt temperature is 210–230 °C; the first roll stack is held at 75–90 °C and the third at 55–70 °C to minimize warpage. The sheet is wound on a polished steel core; winding tension above 100 N/m of web width induces built-in stress that later causes gage variation during deployment. Seam fusion for on-site fabrication uses wedge welding at 300–350 °C and a roller pressure of 0.5–0.8 MPa; the seam must peel through surface melt zone rather than interface. Stress crack resistance under ASTM D5397-20 single-point notch is used to compare lots for liner service. An additive package containing 2–3% carbon black masterbatch by weight is necessary for outdoor exposure; unmodified natural sheet fails the cumulative 2,000 h UV exposure requirement under ISO 4892-2 Method A by forming brittle surface layers. The finished liner is tested for thickness uniformity, carbon black dispersion per ISO 18553, and tensile properties per ISO 527-3. Because geomembrane applications require an extremely high melt strength and oxidative induction time above 20 min at 200 °C, Shanxi PCEC must supply a certificate showing the OIT value under ISO 11357-6; if the OIT value is below 15 min, the lot is not suitable for exposed liner service.

    Injection Molding of Thin-Walled Articles Is Outside the Published Melt-Flow Window

    The low melt flow rate of DGDA6094 and the high molecular weight distribution make thin-wall injection molding difficult on standard 90–120 mm general-purpose screws. If an injection molding trial is attempted for solid handling components, barrel temperatures of 210–240 °C, mold temperature of 20–40 °C and injection velocity of 80–120 mm/s are required; even then, flow length is constrained to below 120:1 thickness ratio, and weld-line strength is reduced. A 160 t clamp machine with a 22 mm diameter screw will generate a cavitation pressure above 1,000 bar only at high compression ratio, increasing shear heating and causing fish-eye defects. Shrinkage after molding is 2.0–3.0% and must be accommodated by the tool. Published data for this specific application is limited, and it is not considered a primary downstream route for this grade.

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