| HS Code | 648808 |
| Brittleness Temperature C | < -70.0 |
| Volume Resistivity Ohm Cm | 1.00E+16 |
| Environmental Stress Crack Resistance H | >1000 |
| Water Absorption | <0.0100 |
As an accredited LyondellBasell HDPE M5370RF W&C factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Typically supplied in 25 kg (55 lb) polyethylene bags, palletized, or 1,000 kg (2,200 lb) bulk bags for LyondellBasell HDPE M5370RF W&C. |
| Container Loading (20′ FCL) | 20′ FCL container loaded with palletized 25 kg bags of LyondellBasell HDPE M5370RF W&C, shrink-wrapped and secured for ocean transport. |
| Shipping | LyondellBasell HDPE M5370RF W&C is a non-hazardous high-density polyethylene resin. Ship as general cargo in sealed bags, octabins, or bulk containers. Keep dry, clean, and away from heat, sunlight, and ignition sources. No UN number, hazard class, or placards required under DOT/IMDG/IATA. |
| Storage | Store LyondellBasell HDPE M5370RF W&C in a cool, dry, well-ventilated area away from direct sunlight, heat, sparks, flames, and strong oxidizers. Keep containers tightly closed, clean, and labeled. Avoid moisture, contamination, and prolonged UV exposure. Use grounding to prevent static buildup, and follow the manufacturer’s SDS and local regulations. |
| Shelf Life | Shelf life is typically 24 months from production when stored unopened, dry, below 50°C, away from direct sunlight. |
In solid primary insulation for copper twisted-pair telephone and central-office exchange cables, LyondellBasell HDPE M5370RF W&C is run as a thin-wall dielectric over 19 AWG 0.91 mm and 22 AWG 0.64 mm annealed-copper conductors. The natural resin variant is required for this application because conductive carbon black raises dissipation factor and reduces insulation resistance under high-frequency telecom signals. The compound is processed on a single-screw wire-coating line with a 25:1 L/D barrel, a 3:1 compression-ratio polyolefin screw, and a pressure-type crosshead die. Barrel zone temperatures are set at 180 °C, 200 °C, 215 °C, and 220 °C from feed to metering; head and die are held at 225 °C and 228 °C respectively. Melt temperature at the die lip is maintained at 225 °C ± 3 °C to avoid both low-temperature melt fracture and high-temperature carbonyl formation. Vacuum drying is unnecessary when incoming pellet moisture is below 0.1 wt%, but predrying for 2 h at 70 °C is specified when ambient relative humidity exceeds 60% or when regrind exceeds 15 wt%. The dielectric formulation uses 0.12 phr to 0.18 phr hindered phenolic antioxidant and 0.05 phr to 0.08 phr copper deactivator. Dielectric constant measured per ASTM D150-18 at 1 MHz is held at 2.30 to 2.35, and dissipation factor is held below 0.0005 at 1 MHz. Insulation wall thickness is controlled to 0.15 mm ± 0.02 mm for 22 AWG and 0.20 mm ± 0.02 mm for 19 AWG at line speeds from 250 m/min to 450 m/min; screw speed and capstan speed are linked by a diameter gauge feedback loop. Draw ratio is kept at 2.0:1 to 3.5:1 to reduce frozen-in stress. The coated conductor enters a three-zone water trough at 70 °C, 45 °C, and 23 °C to minimize residual stress, followed by inline spark testing at 5 kV AC on dry insulation before take-up. Finished twisted-pair cables are evaluated under ANSI/ICEA S-85-625 and applicable UL 444 limited-smoke requirements when a flame-retardant outer jacket is applied over the core. This insulation is limited to conductor temperatures not exceeding 75 °C continuous and should not be substituted into dry 90 °C service classifications unless a higher-temperature dielectric is specified.
For outdoor loose-tube fiber optic cable, the outer jacket must maintain a minimum nominal wall of 0.8 mm to 1.2 mm over water-blocked tubes and a central strength member. In this use, LyondellBasell HDPE M5370RF W&C is formulated as a black jacketing compound with 2.5 wt% ± 0.2 wt% carbon black of particle size not exceeding 60 nm, dispersed through a masterbatch at 5.5% to 6.5% letdown. The melt flow rate of 0.7 g/10 min at 190 °C and 2.16 kg load, measured under ISO 1133-1:2022, imposes a practical upper screw speed of 85 rpm on a 60 mm single-screw extruder with 24:1 L/D when a 40/60/80 mesh screen pack is installed. Melt pressure before the breaker plate is kept below 350 bar to avoid excessive shear heating and gel formation. Barrel temperatures are set at 200 °C, 215 °C, 230 °C, 235 °C, and 235 °C from feed to metering, with head 230 °C and die 230 °C. The jacket is extruded through a pressure-type tube die with an outer land length of 12 mm. Jacket tensile properties after conditioning 48 h at 23 °C and 50% RH are tested per ASTM D638-14 on Type IV specimens; acceptance is typically ≥ 24 MPa tensile yield and ≥ 600% elongation at break, but lot-specific values are confirmed against release certificates. Environmental stress crack resistance is measured per ASTM D1693-15(2021) in 10% Igepal CO-630 at 50 °C; cable-grade HDPE typically exceeds 1000 h F50, though published data for this exact configuration are limited and should be verified with the supplier. Carbon black dispersion is assessed by ASTM D5596, and oxidative induction time is measured by ASTM D3895-19 at 200 °C. The limiting processing factors are melt fracture at high line speed, carbon black dispersion defects, and die drool from low-molecular-weight species. Adding 0.02% to 0.05% fluoropolymer processing aid reduces melt pressure by 8% to 12% and permits a practical line speed increase from 35 m/min to 45 m/min without sharkskin, but it changes surface energy and should not be introduced without adhesion verification to flooding compounds. The finished outdoor loose-tube cable is evaluated under IEC 60794-3-10 for family specifications, including jacket integrity and water penetration resistance.
| Carbon black content | Elongation at break, ASTM D638-14 (%) | ESCR F50, ASTM D1693-15(2021) (h) | OIT at 200 °C, ASTM D3895-19 (min) | Weatherability after 2000 h, ASTM G154 cycle 1 |
|---|---|---|---|---|
| 2.0 wt% | 620–650 | 800–1000 | 45–55 | No cracking, ΔE < 5 |
| 2.5 wt% | 600–620 | >1000 | 50–60 | No cracking, ΔE < 3 |
| 3.0 wt% | 550–600 | >1000 | 55–65 | No cracking, ΔE < 2 |
Microduct coextrusion for blown-fiber installation consumes LyondellBasell HDPE M5370RF W&C in the outer HDPE layer, where stiffness and resistance to installation damage are required. The outer layer formulation contains 2.2% to 2.6% carbon black masterbatch and 0.3% to 0.8% antioxidant masterbatch, while the inner layer includes 3% to 5% silicone-based slip additive. Two single-screw extruders feed a coextrusion die with inner layer thickness of 0.10 mm to 0.15 mm over a total wall of 0.75 mm to 0.90 mm for a 7.0 mm outside diameter microduct. Vacuum calibration sleeves set the outer diameter within ± 0.05 mm; line speeds are typically 40 m/min to 90 m/min depending on diameter. Main extruder barrel temperatures are set at 190 °C, 210 °C, 220 °C, and 225 °C from feed to metering, with head and die at 225 °C. The coextruded duct is coiled at 25 °C and later tested for collapse resistance under 0.5 MPa at 80 °C for 2 h according to internal supply contract criteria; this requires the outer HDPE to retain enough crystallinity to resist wall buckling while the inner slip layer prevents fiber blowing friction increase. Low-temperature coiling is checked at -20 °C without cracking. The finished microduct is installed as bundles or single tubes into 40/33 mm HDPE protective duct or direct buried, and construction is evaluated under IEC 60794-5-20 for blown-fiber microduct systems. M5370RF W&C is not used as the inner slip layer unless a low-friction modifier is added because unfilled HDPE produces excessive surface friction against air-blown fiber units.
For hybrid fiber-coax and CATV drop connections, LyondellBasell HDPE M5370RF W&C is extruded as the outer jacket over an aluminum tube or aluminum-polymer laminate screen and foamed polyethylene dielectric core. The jacket wall is generally 0.8 mm to 1.0 mm for RG-6 and 1.0 mm to 1.2 mm for RG-11. Because the jacket must protect against repeated foot traffic and household installation torque while allowing clean stripping with a rotary coaxial cable stripper, hardness and tensile yield are controlled. Typical values are 62 to 64 Shore D per ISO 868 at 23 °C and tensile yield of 25 MPa to 27 MPa per ASTM D638-14. The processing window is narrow: melt temperature above 240 °C causes surface oxidation and increases adhesion to the underlying PE, making stripping force rise above 25 N on a two-blade stripping tool. A melt temperature of 225 °C at die entry improves peel cleanliness. The jacket formulation includes 2.5% carbon black and no migratory slip additive above 0.1%, because excess erucamide or oleamide reduces tool grip on the jacket surface. Carbon black dispersion must meet fewer than 5 visible particles per 100 cm² when examined against an illuminated screen; poor dispersion creates pinholes that fail the 2.5 kV DC inline spark test used on drop cable lines. Extrusion equipment for this application typically includes a 60 mm single-screw extruder with 24:1 L/D and a barrier screw, fitted with a 20/40/60 mesh screen pack. The finished RG-6 and RG-11 drop cables are installed between tap and subscriber and are evaluated under ANSI/SCTE 74 for braided coaxial drop cable physical and mechanical requirements, with jacket-specific checks referenced to the cable manufacturer test plan. M5370RF W&C provides enough melt strength to maintain wall uniformity at line speeds up to 80 m/min, while the 0.7 g/10 min melt flow rate measured under ISO 1133-1:2022 supports the required draw-down without excessive die swell.
Steel-tape-armored low-voltage distribution cables for direct burial require an outer polyethylene sheath that withstands underground installation abrasion, soil chemicals, and temperature variations. LyondellBasell HDPE M5370RF W&C is processed directly over a flooding compound-coated armor layer at a wall thickness of 1.2 mm to 1.6 mm depending on cable diameter. The compound is fed at 195 °C to 225 °C through a 25:1 L/D extruder with a barrier screw and a cylindrical die. For this application, separation from the armor is controlled by the flooding compound rather than by polar adhesion; therefore the HDPE sheath should not include migratory slip additives above 0.1%, which could reduce longitudinal water-blocking performance. Jacket samples are tested to ASTM D1248-14 Type III, Class C, Category 5 for HDPE wire and cable jacket, with tensile strength ≥ 24 MPa and elongation ≥ 600% per ASTM D638-14. Low-temperature brittleness is assessed per ASTM D746-20 at -50 °C; no more than 5% failure is permitted. After extrusion, the cable is subjected to a 10 kV DC spark test for jacket integrity and then to water penetration evaluation according to the applicable IEC 60502-1 constructional requirements for 0.6/1 kV cables. The finished cable is installed in underground duct or direct buried, where the HDPE sheath protects against moisture ingress and mechanical impact. The sheath is not used where continuous cable surface temperature exceeds the maximum service temperature specified in the supplier datasheet, and compatibility with the flooding compound should be verified by a 7-day immersion test at 60 °C before production release.
| Property | Method | Typical acceptance criterion |
|---|---|---|
| HDPE classification | ASTM D1248-14 | Type III, Class C, Category 5 or equivalent |
| Tensile yield | ASTM D638-14 | ≥ 24 MPa |
| Elongation at break | ASTM D638-14 | ≥ 600% |
| Low-temperature brittleness | ASTM D746-20 | ≤ 5% failure at -50 °C |
| ESCR F50 | ASTM D1693-15(2021) | > 1000 h in 10% Igepal CO-630 at 50 °C |
| Oxidative induction time | ASTM D3895-19 | > 40 min at 200 °C |
Central loose tube construction for fiber-optic cables uses LyondellBasell HDPE M5370RF W&C as the single tubular element that holds up to 24 optical fibers of 250 μm diameter in a thixotropic water-blocking gel. The tube is extruded on a tube-on line with a 25:1 L/D single-screw extruder at melt temperature 220 °C to 230 °C; the die tip and nipple are selected to produce an inner diameter of 2.8 mm and outer diameter of 3.2 mm, with wall variation controlled within ± 0.05 mm by multi-axis ultrasonic wall monitoring. The critical material requirement is environmental stress crack resistance because gel contact and residual tube strain after cabling can accelerate cracking. The grade is processed with 0.15 phr antioxidant and 0.05 phr copper deactivator if copper-based water-blocking tapes are used; carbon black is usually not included in the central tube unless the tube itself is exposed in a dry-core design. Melt filtration through a 60/80/100 mesh pack is specified to prevent gel particles from causing tube wall defects. The tube is filled with gel at 0.2 MPa to 0.4 MPa and sealed immediately, then stranded longitudinally with water-swellable yarns and outer jacketed. Tube integrity is evaluated under IEC 60794-1-21 mechanical test methods, with particular attention to post-tensile loss and temperature cycling from -40 °C to 70 °C. In central tube cable designs, the M5370RF W&C tube must also survive pullout force during jacket stripping without collapsing, so compression resistance is verified at 10 N/10 mm flat-plate compression and compared against the manufacturer’s construction specification. This application is separated from the jacketing sections because the polymer is in direct contact with filling gel and optical fibers, not exposed to soil or sunlight.
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LyondellBasell HDPE M5370RF W&C is a high-density polyethylene extrusion compound classified for wire and cable jacketing applications. The alphanumeric designation places the grade within the high-molecular-weight HDPE family, and the W&C suffix identifies a formulation intended for wire and cable service rather than general-purpose extrusion or injection moulding. The product is normally supplied as black pellets containing carbon black at a loading sufficient for outdoor weathering resistance; natural or pre-coloured variants are used only where downstream compounding lines incorporate a separate carbon black masterbatch. The melt flow rate of M5370RF W&C is below 1.0 g/10 min when measured at 190 °C under 2.16 kg load according to ASTM D1238. This low flow index places the grade outside the processing envelope of conventional thin-wall injection moulding HDPE resins. The low melt flow index is selected to provide melt strength during tube-down jacket extrusion, to reduce draw resonance at high line speeds, and to preserve the high-molecular-weight fraction responsible for environmental stress crack resistance.
Published technical literature for this product class places the density between 0.945 g/cm³ and 0.960 g/cm³ when tested under ASTM D1505. Tensile yield strength falls between 22 MPa and 28 MPa, elongation at break exceeds 600%, and flexural modulus is typically 900–1300 MPa under ASTM D790. Shore D hardness is normally 60–65 under ASTM D2240, and Vicat softening temperature is in the range 120–127 °C under ASTM D1525. The grade is formulated to satisfy ASTM D1248 Type III, Class B, Category 2 for black weather-resistant extrusion materials. Typical service uses include outer sheathing on copper telephone cable, coaxial drop cable, and fibre optic buffer tubes where moisture resistance, crush resistance, and ultraviolet stability are simultaneous requirements. The product is a jacketing compound, not a primary dielectric for high-voltage cable insulation.
| Property | Test method | Typical range |
|---|---|---|
| Density | ASTM D1505 | 0.945–0.960 g/cm³ |
| Melt flow rate, 190 °C/2.16 kg | ASTM D1238 | 0.3–1.0 g/10 min |
| Tensile yield strength | ASTM D638 | 22–28 MPa |
| Elongation at break | ASTM D638 | >600% |
| Flexural modulus | ASTM D790 | 900–1300 MPa |
| Environmental stress crack resistance, F50 | ASTM D1693 Condition B | >500 h |
| Brittleness temperature | ASTM D746 | <−70 °C |
| Shore D hardness | ASTM D2240 | 60–65 |
| Vicat softening temperature | ASTM D1525 | 120–127 °C |
| Volume resistivity, 23 °C after 96 h water immersion | ASTM D257 | >1 × 10^15 Ω·cm |
| Dielectric strength | ASTM D149 | >18 kV/mm |
| Dielectric constant, 1 MHz | ASTM D150 | 2.30–2.50 |
| Dissipation factor, 1 MHz | ASTM D150 | 0.0001–0.0005 |
On a production-scale single-screw extrusion line with L/D ratio 30:1, a barrier screw with compression ratio 3.0, and a screen pack of 40/60/80 mesh, HDPE M5370RF W&C can be processed at barrel temperatures from 180 °C in the feed section to 220 °C at the metering section and 210–230 °C at the die. The processing window is deliberately narrow because the high-molecular-weight backbone and dispersed carbon black increase melt viscosity at low shear rates. If the die temperature falls below 200 °C, head pressure may rise above 350 bar, and the jacket surface may show shark-skin roughness at line speeds above 200 m/min. If the melt temperature remains above 250 °C for extended residence time, oxidative chain scission produces gel particles and reduces elongation at break below the acceptance limit of 600%. Published data for throughput limits on specific cable jacketing lines are limited, but head pressure rather than screw torque is commonly the limiting variable on low-melt-index HDPE compounds.
Condensation on cold pellets exposed to relative humidity above 60% for more than 24 h should be removed by desiccant drying at 80 °C with a dew point of −40 °C for 2–4 h before extrusion. The grade is not formulated for peroxide crosslinking. Addition of organic peroxides or pro-degradant masterbatches is not recommended unless the downstream process intentionally converts the resin into a cross-linked matrix; uncontrolled peroxide carryover creates gel defects in the jacket and reduces surface smoothness. High-shear dispersive mixing in the metering zone is necessary to maintain carbon black dispersion. The screw should be purged with a low-melt-index polyethylene before shutdown to avoid carbon black build-up on the screw root.
Cooling water temperature on the jacketing line is maintained between 40 °C and 60 °C. Lower quench temperatures produce higher residual stress at the copper-polymer interface, and post-extrusion jacket shrinkage measured under ASTM D2732 may exceed 3% after 24 h at 100 °C in air. Higher quench temperatures reduce residual stress but lower line speed because the jacket remains soft at the capstan. The balance is particularly critical for small-diameter conductors, where rapid heat removal from the copper core accelerates crystallisation of the interface layer.
Electrical properties of M5370RF W&C follow from the non-polar hydrocarbon backbone. Volume resistivity remains above 1 × 10^15 Ω·cm after 96 h of water immersion at 23 °C; dielectric constant at 1 MHz is between 2.30 and 2.50; and dissipation factor at 1 MHz is typically below 0.0005. Increases above this threshold are usually traceable to ionic contamination from carbon black or metallic residues rather than degradation of the base polymer. For alternating-current service above 10 kV/mm, HDPE has higher dielectric loss than cross-linked polyethylene or polypropylene and may be susceptible to water treeing under sustained AC stress. The grade is therefore specified as an outer sheath or jacket, with primary insulation provided by a separate dielectric layer.
Environmental stress crack resistance is screened with ASTM D1693, Condition B, using Igepal CO-630 at 50 °C. Condition B imposes a notched bent-strip configuration that accelerates slow crack growth through the high-molecular-weight fraction of the resin. A jacket that fails this test will not maintain integrity under residual hoop stress after rapid cooling on a copper conductor, especially at tight bend radii. Industrial batch records for this product class show F50 values above 500 h, and some well-dispersed lots exceed 1000 h. F50 values are strongly affected by carbon black dispersion quality. Poorly wetted carbon black agglomerates act as stress concentrators and can reduce F50 by more than 40% without changing the base resin density or melt flow rate. Batch-to-batch variance in dispersion therefore requires periodic confirmation by microscopy in addition to melt flow and density checks.
Outdoor-rated HDPE jackets require carbon black dispersion at sub-micron level to provide ultraviolet stabilisation and maintain surface smoothness. In the M5370RF W&C grade, carbon black is normally pre-compounded; when natural base resin is used instead and a carbon black masterbatch is added at 2.5 wt% at the extruder throat, the let-down ratio must be controlled to prevent agglomerate formation. Twin-screw compounding lines with L/D ratio 40:1 and vacuum venting are preferred for masterbatch dilution because dispersive mixing breaks carbon black agglomerates rather than merely distributing them. Surface defects from poor dispersion appear as pinholes or grey streaks in the jacket. These defects lower the dielectric breakdown strength and create moisture penetration paths. The resulting jacket may pass routine dimensional inspection but fail the water immersion test under ASTM D149 after 48 h at 50 °C. Dispersion quality is assessed by ASTM D5596 or ISO 18553; a low agglomerate count is required for UV-stabilised jacketing compounds.
Compared with medium-density polyethylene cable jacketing grades, M5370RF W&C has higher flexural modulus, typically 900–1300 MPa versus 300–600 MPa for MDPE, and higher Shore D hardness. This improves crush resistance but increases the minimum bend radius. Compared with linear low-density polyethylene jacketing compounds, M5370RF W&C exhibits lower moisture vapour transmission and higher cut-through resistance, but lower elongation at break and less resistance to slow crack growth in soils containing high detergent concentrations. Compared with general-purpose injection moulding HDPE with a melt flow rate of 4–20 g/10 min, M5370RF W&C has higher melt viscosity, better environmental stress crack resistance, and improved low-temperature impact, but cannot be injection moulded in thin-wall sections without excessive shear heating.
| Parameter | M5370RF W&C | MDPE jacket | LLDPE jacket |
|---|---|---|---|
| Density by ASTM D1505 | 0.945–0.960 g/cm³ | 0.930–0.945 g/cm³ | 0.915–0.930 g/cm³ |
| Flexural modulus by ASTM D790 | 900–1300 MPa | 300–600 MPa | 150–300 MPa |
| Elongation at break by ASTM D638 | >600% | >800% | >800% |
| ESCR F50 by ASTM D1693 Condition B | >500 h | >1000 h typical | >1000 h typical |
| Crush resistance, relative ranking | Higher | Moderate | Lower |
| Moisture vapour transmission, relative ranking | Low | Moderate | Moderate |
Field deployment data from outside plant telecommunications networks indicate that HDPE jackets of this class are selected for buried cable ducts and aerial drop wire when ultraviolet exposure, abrasion resistance, and longitudinal stiffness are required. The grade is not recommended for continuous service above 80 °C because the Vicat softening point is in the range 120–127 °C and the oxidative induction time shortens rapidly above 80 °C in air. For high-voltage primary insulation or high-temperature automotive cable, the specification should be shifted to a cross-linkable polyethylene, polypropylene copolymer, or fluoropolymer system. The product should not be exposed to strong oxidising agents, aromatic hydrocarbons, or chlorinated solvents at elevated temperatures; these media can soften or stress-crack the jacket under load.