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Buckeye Polymers HDPE 9610

    • Product Name: Buckeye Polymers HDPE 9610
    • 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 357053
    Density 0.961 g/cm³
    Melt Flow Rate 10 g/10 min (190°C/2.16 kg)
    Tensile Strength At Yield 31 MPa
    Elongation At Break 1000%
    Flexural Modulus 1.40 GPa
    Hardness Shore D 66
    Vicat Softening Temperature 127°C
    Heat Deflection Temperature At 0 45 Mpa 80°C
    Brittleness Temperature -70°C
    Environmental Stress Crack Resistance 10 hr
    Mold Shrinkage 0.020 cm/cm
    Water Absorption 0.01%
    Dielectric Strength 20 kV/mm
    Volume Resistivity 1E15 ohm-cm
    Thermal Conductivity 0.45 W/m·K

    As an accredited Buckeye Polymers HDPE 9610 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Buckeye Polymers HDPE 9610 is packaged in 50 lb multiwall paper bags, 40 bags per pallet, totaling 2,000 lb per pallet.
    Container Loading (20′ FCL) 20′ FCL loaded with palletized 25 kg bags of Buckeye Polymers HDPE 9610, securely stowed, evenly distributed, and export-sealed.
    Shipping Buckeye Polymers HDPE 9610 is a non-hazardous high-density polyethylene resin, shipped as solid pellets in bags, supersacks, or bulk containers. For transport, it is not regulated as dangerous goods: no UN number, hazard class, or packing group required. Store dry and avoid contamination.
    Storage Store Buckeye Polymers HDPE 9610 in a cool, dry, well-ventilated area away from direct sunlight, heat, sparks, and open flames. Keep containers tightly closed to prevent moisture and contamination. Avoid prolonged UV exposure. Use original packaging, stack safely, and rotate stock. Keep away from strong oxidizers. Prevent pellet spills, as they may create slipping hazards. Follow local regulations and good housekeeping.
    Shelf Life Typically 12 months from manufacture when stored unopened in a cool, dry place, away from direct sunlight; confirm with the supplier.
    Application of Buckeye Polymers HDPE 9610

    In high-speed injection molding of returnable beverage crates, dairy cases, and cold-chain seafood totes, the converter evaluates Buckeye Polymers HDPE 9610 against low-temperature impact strength, environmental stress crack resistance, and top-load deformation. The melt temperature is set at 200°C to 240°C and the mold surface temperature is held at 10°C to 20°C to compress the cooling phase while avoiding excessive post-mold shrinkage. Filling is performed with sequentially opened valve gates on a hot runner manifold designed for shear rates below 40,000 s⁻¹; production experience shows that higher shear rates create localized temperature spikes at the gate vestige and initiate warpage in the crate base. Tensile yield is measured under ASTM D638-14, flexural modulus under ISO 178:2019, notched Izod impact at -20°C under ASTM D256-10(2018), and ESCR under ASTM D1693-15 Condition B. Cold-chain totes are additionally subjected to drop impact testing under ASTM D2463-15; brittle fractures observed on production parts usually occur at the gate vestige and at the sidewall-to-base transition when the packing phase is released before the gate freezes or when the mold surface temperature at the cold spots drops below 8°C. Shrinkage is evaluated under ASTM D955-21, and top-load stability is verified with ISO 12048:1994 using a compression tester rated for at least 50 kN on a crate footprint of approximately 500 mm × 350 mm. Because the exact comonomer type and molecular architecture of this grade are not published in this review, the supplier certificate of analysis should be used to verify melt flow rate under ASTM D1238-20 at 190°C/2.16 kg before the tool trial.

    Dairy crates and beverage trays that must tolerate industrial caustic washing at 60°C to 80°C are screened for ESCR retention after immersion in 2% sodium hydroxide solution according to ASTM D543-21. The concentration is relevant because bottle-washing tunnels frequently operate with caustic concentrations in that range, and a crate that fails after repeated exposure can generate split sidewalls and unsafe stacking. HDPE resins with a density above 0.955 g/cm³ provide the flexural stiffness needed for high stack loads but may sacrifice some ESCR compared with lower-density hexene or butene copolymers; the converter therefore requests density data under ASTM D1505-18 and ESCR batch data rather than assuming equivalency across HDPE grades. For direct produce or dairy contact, the crate must comply with 21 CFR 177.1520 and EU Regulation No 10/2011. Drying is not normally required unless the resin has been stored at ambient RH above 60% for more than 24 h; surface condensation under those conditions can produce splay in thin ribs and along the hot runner gate area.

    Cooling is controlled by the crystallization of HDPE in the thick base rib. At a mold surface temperature of 10°C, the skin freezes rapidly, but the core remains above 100°C for several seconds. If the part is ejected before the core reaches the crystallization plateau, post-mold shrinkage measured under ASTM D955-21 can exceed 2% and the crate will not stack uniformly in a return loop. On the molding line, ejection time is confirmed by measuring the part surface temperature with a contact pyrometer just before mold open; when the surface temperature exceeds 60°C, the part is usually removed too early and the sidewalls bow inward after palletization. Cavity pressure sensors installed in the base and sidewall are used to confirm that the pressure at the gate freezes before the holding phase is released; if the gate pressure decays before the packing timer ends, the base corners show sink and the top-load capacity drops.

    What Limits Environmental Stress Crack Resistance in UN-Rated Open-Head Pails?

    The dominant failure mode in injection-molded open-head pails for liquid detergents, industrial lubricants, and UN-certified chemical transport is environmental stress cracking, not gross wall rupture. Pails molded from high-density polyethylene are tested for ESCR using ASTM D1693-15 Condition A or B, with Igepal CO-630 at 50°C; a failure time below 10 h is generally unacceptable for pails carrying surfactants or ester-based lubricants. The injection molding process for a 20 L pail is run at a melt temperature of 200°C to 230°C and a mold temperature of 15°C to 30°C to minimize internal stress while avoiding shrinkage that would alter the gasket seat. Wall thickness distribution around the bottom corner and the handle ears is usually kept between 1.5 mm and 2.5 mm; thinner areas at the bottom gate create a high-stress hinge during the drop test. UN drop tests under 49 CFR 178.603 and stacking tests under 49 CFR 178.606 are used to certify the pail after closure system completion.

    In production, the highest crack probability is observed at the weld lines formed around the handle attachments and at the injection gate if the gate is too cold. The converter uses multiple hot tips or a central valve gate with a land length that keeps the melt front above 180°C at the last fill point; if the melt front temperature drops below this value on a 22:1 L/D reciprocating screw, weld lines become visible and ESCR values decline sharply. Chemical resistance screening for pails intended for hydrocarbon solvents is run per ASTM D543-21 at 40°C for 168 h; the mass change and tensile retention are recorded because a pail can pass visual inspection but lose top-load capacity after exposure. For UN-rated pails containing oxidizing acids above a specific concentration, high-density polyethylene is not recommended; published data for HDPE pails in strong nitric acid service is limited and the pail supplier should require independent compatibility testing before filling.

    ESCR is a kinetic phenomenon that accelerates when the internal stress from the injection molding process exceeds the critical value for the specific stress-cracking agent. The processing conflict is that a higher melt temperature reduces orientation and internal stress but increases cycle time; a lower melt temperature accelerates crystallization and permits faster cycle time but freezes in more stress at the gate and at the weld line. On a 20 L pail tool, the difference between a melt temperature of 200°C and 230°C is often visible in the ESCR failure time: the higher melt temperature can extend the ASTM D1693 failure time substantially in the same cavity, but the pail wall may show sink at the handle attachment unless the packing pressure is raised. The converter therefore records the melt temperature at the nozzle, the fill time, and the peak cavity pressure for each batch to correlate with ESCR performance.

    Closure Thread Geometry, Torque Decay, and Organoleptic Compliance in Injection-Molded Caps

    Injection-molded closures for still beverages, dairy bottles, and pharmaceutical bottles use high-density polyethylene because of its stiffness-to-cost ratio and low moisture transmission. The closure mold is typically a high-cavitation tool, often 48 to 72 cavities, with a valve-gated hot runner and a cycle time below 8 s for a 1.2 mm nominal wall; the melt temperature is set at 210°C to 250°C, and the mold temperature at 10°C to 20°C. The thread finish must be held to the bottle neck specification, such as a 28 mm PCO 1881 neck, and removal torque is measured using a torque meter calibrated according to ASTM D3474. Multi-cavity production data shows that cavity-to-cavity torque variation increases when the hot runner is unbalanced by more than 2°C; the resulting inconsistent shrinkage changes the thread diameter and the tamper-evident band bridge strength.

    The closure design must prevent stress cracking at the thread roots when the cap is applied to a bottle at high line speeds. ESCR is evaluated under ASTM D1693-15 Condition A, and the converter can request a minimum average notched Izod impact value under ASTM D256-10(2018) at 23°C because thread root cracking in HDPE caps is frequently associated with low ductility after cooling. Organoleptic requirements for water and dairy applications are verified through sensory testing described in EN 1622:2006 or an equivalent internal protocol; the HDPE must not contribute taste or odor at the migration limits established in EU Regulation No 10/2011 and 21 CFR 177.1520. A molded liner seat must remain flat within 0.05 mm total indicator runout to prevent leakage; this is checked with a coordinate measuring machine in the metrology lab.

    The tamper-evident band is the most sensitive feature in the tool because it contains a thin annular web that must tear without fracturing. The packing profile is set to prevent overpacking that would make the band too stiff; the bridge tear force is measured with a tensile tester at a crosshead speed of 50 mm/min, with the force recorded in N. In high-cavitation tools, cavitation imbalance is checked by weighing each cap on a six-decimal balance; a weight variation above 0.02 g across cavities indicates a hot runner temperature imbalance or a blocked gate. The tool is water-jacketed and connected to a mold temperature controller with setpoint stability of ±1°C; larger fluctuations cause variable cap diameter and removal torque. Before the tool trial, the converter measures the melt flow rate of the incoming resin under ASTM D1238-20 at 190°C/2.16 kg because lot-to-lot variation in melt flow rate affects filling pressure and cap weight.

    The following table consolidates the compliance verification methods used across the first three application sectors.

    Application scenarioPrimary standardMeasured propertyTypical acceptance criterion
    Returnable cratesASTM D638-14Tensile yield stressReported against supplier lot data
    UN pailsASTM D1693-15ESCR failure timeMinimum per end-user specification
    ClosuresASTM D3474Removal torqueBottle neck specification
    Automotive reservoirsISO 188:2023Tensile strength retention after aging≥ 75%
    Thin-wall food packaging21 CFR 177.1520Food-contact statusRegulatory statement
    Material handling binsISO 178:2019Flexural modulusMinimum stiffness per design

    Automotive under-hood washer fluid reservoirs produced from high-density polyethylene require a processing window that balances sink mark elimination against weld-line strength in a part often assembled by hot plate welding or vibration welding. The resin is injected at a melt temperature of 210°C to 250°C and a mold temperature of 20°C to 40°C; the elevated mold temperature compared with thin-wall packaging is necessary to maintain weld-line integrity at the mounting boss intersections. Long-term heat aging is tested according to ISO 188:2023 at 100°C for 1,000 h; tensile strength retention below 75% after aging indicates that the reservoir may crack around hot inserts near the cap neck. Fluid resistance is screened by immersion in 50/50 ethylene glycol/water at 90°C for 168 h using ASTM D543-21; washer solvent containing methanol is tested separately because methanol has a higher tendency to cause environmental stress cracking than ethylene glycol in high-density polyethylene.

    The injection gate location is placed away from the seam where the two reservoir halves are welded; moving the gate to a non-appearance surface reduces the density of the weld zone and raises the burst pressure measured in a hot plate welded assembly. Vibration welding parameters are set so that the weld penetration is between 0.8 mm and 1.2 mm; insufficient penetration produces leak paths in the bottom drain boss. Low-temperature impact is verified by ISO 180:2023 notched Izod at -30°C and by a 0.5 m drop test from a specified OEM procedure. Electrical conductivity or flammability is not generally required for washer reservoirs, but materials supplied to the European automotive sector are screened against REACH Regulation (EC) No 1907/2006 and RoHS Directive 2011/65/EU. The upper continuous service temperature of HDPE remains around 90°C to 100°C; a reservoir installed near an exhaust manifold without a heat shield is outside the operational boundary.

    Hot plate welding of HDPE reservoirs is performed at a plate temperature of 210°C to 250°C and a weld pressure of 0.1 MPa to 0.3 MPa; the melt displacement is monitored so that the weld bead is not too wide. A burst test is conducted at 150 kPa to 200 kPa using air or nitrogen, and the part is held for 30 s while submerged in water to detect leakage. Vibration welding uses a frequency of 200 Hz to 240 Hz and an amplitude of 1.0 mm to 1.8 mm; the weld time is shortened when the HDPE has high flow because the melt film forms quickly but excessive flow can produce flash at the joint. After welding, the assembly is evaluated for tensile strength at the joint using a sectioned test bar under ISO 527-2:2012.

    When Thin-Wall Food Packaging Demands Fast Cycle Times Without Sink Marks

    When a converter is running thin-wall dairy tubs or deli containers at wall thicknesses between 0.4 mm and 0.8 mm, the filling phase is executed at high injection velocity with the melt temperature at 220°C to 260°C and the mold temperature at 10°C to 20°C. The gate is a direct hot tip or a sub-gate with a land length that freezes after packing; the packing pressure is held at 40 MPa to 60 MPa for a duration of 0.5 s to 1.5 s depending on the sidewall rib depth. Sink marks on the rim of a thin-wall container are caused by local shrinkage under the rim that remains molten after the gate has frozen; process validation uses a mold temperature map from a thermal camera and dimensional inspection on a vision system. The container lid fit is checked by top-load compression using ISO 12048:1994 and by diameter measurements at the sealing lip.

    Food-contact status for HDPE 9610 is supported when the converter obtains the supplier's regulatory statement showing compliance with 21 CFR 177.1520 and with the overall migration limit in EU Regulation No 10/2011 under the intended food type and contact temperature. If the application involves hot fill above 70°C, the converter should conduct migration testing at the actual hot-fill temperature because HDPE can deform at elevated temperature. For a rectangular tub, the drain hole or stacking lug creates an asymmetric wall thickness that leads to differential shrinkage; the mold is designed with graduated wall sections and the cooling channels are offset toward the thick lug to equalize the surface temperature. Published data for the specific thin-wall configuration with HDPE 9610 is limited, so a short-run production trial is used to verify cycle time and stackability before full commissioning.

    Thin-wall filling is limited by the apparent viscosity of the HDPE at high shear rates. The converter should obtain capillary rheometry data from the material supplier at 230°C and 250°C for shear rates from 100 s⁻¹ to 10,000 s⁻¹; the data are used to set the injection velocity profile that avoids a pressure spike above the machine limit. A hot runner system with individually controlled nozzles and a pitch spacing of less than 50 mm is required for a multi-cavity stack of tubs. The gate diameter is determined by the wall thickness; for a 0.6 mm wall, a gate diameter larger than 1.0 mm may leave a visible gate vestige, while a gate smaller than 0.7 mm may freeze before the packing phase is complete. The packing phase is transferred by cavity pressure rather than by timer to maintain wall thickness consistency across the tool.

    The Injection Molding Window for Large Material Handling Bins Depends on Rib Layout

    The injection molding window for a large material handling bin is set by the interaction between the rib layout, the gate position, and the available clamp force. A bin with a projected area of 0.5 m² and a wall thickness of 3 mm to 4 mm is typically run on a machine with a clamp force between 1,500 t and 3,000 t; the injection pressure at the transfer point is held below 90 MPa to prevent flash at the parting line. The melt temperature is set at 200°C to 240°C, and the mold temperature at 15°C to 35°C to balance flow length and cooling time. Sequential valve gating is used when flow length from a single gate would exceed 400 mm; the valve drool or hesitation at the gate can create visible flow marks on the sidewall. Fiber-free HDPE 9610 is used where the bin must be recycled or where metal-detectable properties are not required.

    Flexural modulus is measured under ISO 178:2019 on samples cut from the bin floor; tensile yield is measured under ASTM D638-14; notched Izod impact under ASTM D256-10(2018) is reported at -20°C for freezer-grade bins. Structural loading is verified by stacking the filled bin under ISO 12048:1994 and by a forklift tine impact test based on the end user's loading profile. Outdoor bins require a UV stabilization package; accelerated weathering is run under ASTM G154-23 for 500 h to 1,000 h, and the retained tensile elongation is compared with an unstabilized control. ESCR testing under ASTM D1693-15 Condition A is applied when the bin is used for waste collection or agricultural chemical exposure. The primary processing limitation for large bins is the cooling time at the thick rib intersections; if the mold surface temperature exceeds 35°C at these nodes, the bin will show post-mold warpage during palletized outdoor storage.

    Warpage in large bins is measured by placing the empty bin on a granite surface plate and recording the gap under the four corners after 48 h of post-mold conditioning at 23°C and 50% RH. When the gap exceeds 5 mm, the cause is usually a temperature difference between the moving and fixed mold halves or a non-uniform packing pressure between the gate and the far end of the rib. The tool is instrumented with thermocouples in the core and cavity at the thick rib intersections; the mold temperature controller must maintain a setpoint of 15°C to 35°C with a tolerance better than ±2°C. In food-contact bulk bins, the resin is tested for heavy metals and overall migration per EU Regulation No 10/2011 before use with dry food ingredients.

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