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Cabot HDPE CA6497

    • Product Name: Cabot HDPE CA6497
    • 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 977496
    Productname Cabot HDPE CA6497
    Baseresin High-Density Polyethylene (HDPE)
    Producttype Conductive Compound
    Color Black
    Form Pellets
    Density 1.08 g/cm³
    Meltflowrate 0.5 g/10 min (190°C/2.16 kg)
    Carbonblackcontent 25%
    Volumeresistivity 100 ohm·cm
    Surfaceresistivity 1000 ohm
    Tensilestrength 20 MPa
    Elongationatbreak 200%
    Flexuralmodulus 1000 MPa
    Hardnessshored 60
    Vicatsofteningpoint 120 °C
    Brittlenesstemperature -70 °C
    Meltingpoint 130 °C
    Processingtemperature 180-220 °C
    Thermalconductivity 0.4 W/m·K
    Coefficientofthermalexpansion 1.0E-4 1/°C
    Dielectricconstant 2.5
    Dissipationfactor 0.001
    Flammability HB
    Moistureabsorption <0.01%
    Izodimpactnotched 100 J/m

    As an accredited Cabot HDPE CA6497 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Cabot HDPE CA6497 is supplied in 25 kg polyethylene bags, palletized at 40 bags (1,000 kg) per pallet.
    Container Loading (20′ FCL) Container Loading: 20′ FCL loaded with Cabot HDPE CA6497 in palletized, stretch-wrapped bags, evenly distributed and secured for ocean export.
    Shipping Cabot HDPE CA6497 is not classified as dangerous goods under DOT, IATA, or IMDG. Ship as non-hazardous HDPE pellets in sealed bags or octabins. No UN number, hazard class, or packing group. Store in a cool, dry area; avoid heat and direct sunlight. Use standard freight; no special ventilation required.
    Storage Store Cabot HDPE CA6497 in a cool, dry, well-ventilated area away from direct sunlight, heat, sparks, and flames. Keep containers tightly closed to prevent moisture and contamination. Avoid contact with strong oxidizing agents. Maintain good housekeeping to prevent dust accumulation. Use appropriate PPE when handling. Keep away from food, drink, and animal feed. Store in original packaging, sealed until use.
    Shelf Life Cabot HDPE CA6497 has a shelf life of approximately 2 years when stored unopened in a cool, dry place.
    Application of Cabot HDPE CA6497

    In electronics assembly and subassembly kitting areas, returnable transport packaging enters an ESD protected area only when surface resistance and charge decay behaviour satisfy the facility’s electrostatic control programme. Cabot HDPE CA6497 is supplied as a pre-compounded carbon black-filled high-density polyethylene pellet, not as an additive masterbatch; the formulation addition ratio in this first segment is therefore 100 wt% as-moulded compound. Dilution with natural HDPE is not recommended for certified ESD totes because the carbon black network is above the percolation threshold and small reductions in conductive filler volume fraction can move surface resistance from the conductive range into the insulative range without a visible change in part appearance. Published data for diluted CA6497 blends is limited, so validating any letdown requires surface resistance testing on three-dimensional moulded parts per ANSI/ESD STM11.11 and IEC 61340-2-3, not on compression-moulded plaques alone. The governing standards for returnable packaging in this scenario are ANSI/ESD S20.20 and IEC 61340-5-1, with additional material-level declarations under EU RoHS 2011/65/EU and REACH 1907/2006.

    Processing on production-scale injection moulding machines requires medium-check-ring screws with L/D between 20:1 and 24:1, compression ratio between 2.5:1 and 3.0:1, and a reverse-taper shutoff nozzle. Melt temperature is maintained at 200 °C to 230 °C, with a mould surface temperature of 20 °C to 40 °C; hot-runner systems operating above 250 °C are avoided because prolonged residence time in the manifold may degrade the conductive carbon black network and generate surface splay. Pre-drying is generally not required, but where storage RH exceeds 60 %, drying at 80 °C for 2 h to 4 h prevents moisture-related surface defects. Gate location and weld-line management are critical because a butt weld between two flow fronts can exhibit higher surface resistance than the surrounding wall when the carbon black network is interrupted across the weld plane. On large tote bases, a single side gate should not force the melt around an obstruction to knit at the opposite wall; when weld lines cannot be eliminated, the conductive path is maintained by increasing local wall thickness and verifying surface resistance after moulding. Terminal product types produced in this segment include stacking totes, kitting boxes, PCB transfer containers, tote lids, divider sets and workbench small-part bins. Target surface resistance for conductive handling is typically below 1 × 104 Ω; some electronics manufacturers specify the dissipative window between 1 × 104 Ω and 1 × 109 Ω according to device sensitivity. Surface resistance is measured after conditioning at 23 °C and 12 % relative humidity. Chemical incompatibilities are those of the HDPE matrix: strong oxidizing acids, chlorinated hydrocarbons, and aromatic solvents at elevated temperature may soften or stress-crack the part; no amine-based antistatic surface coating is required because the compound itself provides electrical conductivity.

    Does Thermoforming Shift the Carbon Black Network in Extruded HDPE Sheet?

    Sheet extrusion of Cabot HDPE CA6497 for semiconductor handling trays and clamshell packaging requires the conductive network to survive flat-die extrusion, reheating, forming, cooling and trimming. Monolayer sheet is extruded from 100 wt% CA6497. When coextruded sheet is used to reduce material cost, the CA6497 conductive capstock is applied only on the contact surface and the core remains unfilled HDPE; published data for this specific coextruded configuration is limited, and the conductive layer thickness must be verified by cross-sectional microscopy after forming. The governing compliance framework for thermoformed packaging is ANSI/ESD S541 and IEC 61340-5-3, with surface resistance measured on the formed part according to ANSI/ESD STM11.11 or IEC 61340-2-3. Process equipment includes a single-screw extruder with L/D 30:1 to 34:1, barrier screw, a 60/80/100 mesh screen pack to remove carbon agglomerates, and a polished roll stack. Melt temperature is held at 190 °C to 220 °C; sheet gauge ranges from 1.0 mm to 4.0 mm.

    Thermoforming uses sheet surface temperature 150 °C to 170 °C with plug assist for high-draw trays. The processing window is narrow: sheet temperature below 150 °C may produce cracking or stress whitening, while sheet temperature above 170 °C may thin the conductive cap layer at corners and shift surface resistance by one to two decades. Draw ratios above 2.0:1 increase the probability of sidewall thinning and loss of network continuity. Formed trays are cooled in fixtures to reduce warpage; surface resistance is checked on the bottom plane and on the sidewall, and a sidewall resistance more than one decade above the top surface indicates excessive draw ratio or insufficient plug temperature. Terminal product types include matrix trays, waffle trays, process trays, carrier cassettes, clamshells, substrate handling trays and covers for semiconductor assembly, test and printed circuit board handling. Because carbon black-filled HDPE is notch-sensitive, corner radii below 0.8 mm to 1.5 mm depending on sheet gauge may initiate microcracks after repeated wash cycles. Cleaning with strong alkaline detergents at elevated temperature may attack the HDPE surface over repeated cycles; only pH-neutral cleaning solutions recommended for HDPE are used in validated cleaning procedures.

    ScenarioPrimary standardMeasurement methodTypical property window
    Returnable ESD totes and binsANSI/ESD S20.20ANSI/ESD STM11.11Conductive class below 1 × 104 Ω
    Thermoformed semiconductor traysANSI/ESD S541IEC 61340-2-3Dissipative or conductive class between 1 × 104 Ω and 1 × 109 Ω
    Conductive ducting in ATEX-classified zonesIEC 60079-32-2IEC 61340-2-3Resistance-to-ground below 1 × 106 Ω
    IC shipping tubes and railsANSI/ESD S541ANSI/ESD STM11.11Surface resistance below 1 × 104 Ω
    Injection-moulded fixtures and enclosuresIEC 61340-5-1IEC 61340-2-3Resistance-to-ground below 1 × 109 Ω

    Where cleanroom vacuum extraction lines carry particulate-laden air from trimming, grinding, laser-marking or component singulation, ducting must dissipate static charge to earth rather than accumulate it on the inner wall. Cabot HDPE CA6497 is extruded as a conductive monolayer pipe without a natural HDPE letdown; the pipe is produced from neat compound so that no non-conductive inner liner insulates the pipe bore from the grounded outer surface. Industry compliance for this segment is anchored to IEC 60079-32-2 for electrostatic properties of non-electrical equipment in potentially explosive atmospheres, with surface resistance verified by IEC 61340-2-3 and earth continuity testing across pipe joints. When the ducting is installed in an ATEX-classified zone, the assembly is assessed under ATEX 2014/34/EU; published data for CA6497 pipe under specific organic dust loads is limited, so site validation is required.

    Pipe extrusion uses a single-screw extruder with L/D 30:1 to 33:1, grooved feed throat, barrel temperatures 180 °C to 220 °C, and vacuum calibration between -0.2 bar and -0.8 bar. Wall thickness is maintained within ±5 % because local thinning at the calibration sleeve can increase surface resistance and reduce hoop strength. Excessive shear in the metering section may disrupt the carbon black aggregate network; screw speed is limited to keep die-entry melt temperature below 220 °C. Socket fusion or electrofusion welding of conductive HDPE requires an earthing continuity check across each joint; butt-fusion welds that squeeze out carbon black-rich melt can create a non-conductive seam if the weld bead is machined flat. The extruded pipe is cut and assembled into rigid extraction duct, elbow fittings, reducers, T-pieces, blast gates, adjustable hood ends and transition couplings for cleanroom vacuum systems and spark-sensitive powder transport installations. Chemical compatibility is limited to particulate-laden air streams; the HDPE matrix is not suitable for concentrated acids, strong oxidizers or hot aromatic hydrocarbons. Carbon black provides light stability for outdoor exposure, but mechanical joints should be inspected for oxidative degradation at service temperatures above 60 °C.

    Semiconductor back-end and component distribution lines use extruded shipping tubes and component rails whose slot dimensions must match device leads and tray slots without mechanical sloughing. Cabot HDPE CA6497 is processed as a precision profile from undiluted pellet; the addition ratio of conductive filler is not altered with natural HDPE because the tube wall is thin and dilution would produce isolated non-conductive domains. The compliance pathway is governed by ANSI/ESD S541 for packaging materials and IEC 61340-5-3 for material classification, with surface resistance of the tube interior and exterior measured per ANSI/ESD STM11.11 after conditioning at 23 °C and 12 % relative humidity. Profile extrusion uses a single-screw extruder with L/D 24:1 to 30:1, low-compression screw, and a calibrated vacuum sizer. Melt temperature is maintained between 190 °C and 210 °C; higher temperatures reduce melt elasticity and cause thin profiles to sag. Puller speed and die swell are matched to maintain dimensional tolerance of ±0.15 mm on the tube slot. Conductive carbon black increases melt viscosity compared with unfilled HDPE, so die land length is increased to control flow; die lines and sharkskin indicate excessive melt temperature or insufficient die land.

    Converted profiles are supplied as dual in-line package tubes, single in-line package tubes, connector shipping rails, edge protectors for PCB arrays, and component magazine sticks. The profiles are cut to length by fly knife or rotary cutter; shattered or fibrous cut ends are rejected because loose conductive particles may contaminate component leads. Solvent-based antistatic surface coatings are not required for base conductivity and may soften HDPE unless specifically formulated for polyethylene. The compound is opaque, so visual inspection of tube contents through the wall is not possible; slot or end openings must accommodate automated inspection and device retrieval.

    When Injection Moulded Covers and Fixtures Sit Inside the ESD Protected Area

    Enclosures, covers, and production fixtures in electronics manufacturing are not only mechanical; they form part of the ESD grounding chain when they contact printed circuit assemblies or device carriers. The mould feed in this segment is undiluted CA6497 pellets, producing a permanently conductive article without a secondary conductive coating that can chip or wear. The governing standards are ANSI/ESD S20.20 and IEC 61340-5-1, with material classification by IEC 61340-2-3; when the part is used as a fixture on an ESD workstation, resistance from the part surface to ground is verified with an ESD test meter at 10 V applied voltage. Production is carried out on conventional injection moulding machines with clamp force selected according to projected area, typically 3 kN/cm² to 5 kN/cm² for HDPE. Melt temperature is held at 200 °C to 230 °C; mould temperature is 20 °C to 40 °C. Wall thickness is maintained at no less than 1.5 mm; thinner walls create fill hesitation and may disrupt the carbon black network at knit lines.

    Sharp internal corners are radiused at 0.8 mm to 1.5 mm because carbon black-filled HDPE has lower notched impact resistance than unfilled HDPE. Ejector pins and ribs are positioned away from the conductive path; if a rib is placed directly behind a visible surface, sink marks may occur and surface resistance may become non-uniform. Moulded articles delivered to the electronics assembly line include enclosure housings, connector covers, PCB handling frames, fixture plates, assembly nests, tool trays and protective covers for automated test equipment. The products are cleaned with pH-neutral aqueous solutions; ultrasonic cleaning in hot water above 60 °C may accelerate stress cracking around moulded-in inserts and should be avoided. When metal inserts are overmoulded, the insert surface must be clean and preheated to reduce differential shrinkage, and the metal-to-polymer interface is bonded to maintain grounding continuity. The compound is not suitable for direct contact with aromatic solvents, chlorinated hydrocarbons, or strong oxidizing acids; exposure to these media may degrade the conductive network and the HDPE matrix simultaneously.

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