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NOVA Chemicals HDPE 59E

    • Product Name: NOVA Chemicals HDPE 59E
    • 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 183808

    As an accredited NOVA Chemicals HDPE 59E factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing NOVA Chemicals HDPE 59E is packaged in 25 kg moisture-resistant polyethylene bags, palletized and stretch-wrapped for bulk shipment.
    Container Loading (20′ FCL) 20′ FCL container loading NOVA Chemicals HDPE 59E: 25 kg bags of high-density polyethylene resin, palletized, shrink-wrapped, secured for ocean transport.
    Shipping NOVA Chemicals HDPE 59E is shipped as non-hazardous high-density polyethylene resin pellets. Typical packaging includes 25 kg bags, lined bulk bags, or bulk trucks/railcars. Keep dry and away from heat or ignition. No special hazardous-materials shipping descriptions required. Refer to the SDS and supplier instructions for handling, ventilation, and local regulations.
    Storage Store NOVA Chemicals HDPE 59E in a cool, dry, well-ventilated area, away from direct sunlight, heat, sparks, and flames. Keep bags or containers closed, clean, and palletized to prevent moisture, dust, and contamination. Avoid prolonged UV exposure and contact with strong oxidizers. Maintain ambient temperature, observe FIFO stock rotation, keep away from incompatible materials, and follow the manufacturer’s SDS.
    Shelf Life Shelf life is 24 months when stored in original packaging in a cool, dry area, away from direct sunlight and moisture.
    Application of NOVA Chemicals HDPE 59E

    Technical literature for NOVA Chemicals HDPE 59E reports a density of 0.959 g/cm³ under ASTM D1505 and a melt index of 0.95 g/10 min under ASTM D1238 at 190 °C with a 2.16 kg load. Blown-film conversion on a monolayer line with a smooth-bore extruder of 25:1 to 30:1 L/D runs a barrier screw with a spiral Maddock mixer and a die gap of 0.9 mm to 1.3 mm. The melt temperature is held at 205 °C to 220 °C, the die temperature is set 5 °C to 10 °C below the rear barrel setpoint to reduce melt fracture, and the blow-up ratio is maintained at 3.5:1 to 4.5:1. Frost line height is held at 5 to 8 die diameters; a frost line below 5 die diameters diminishes machine-direction elongation at break, while a frost line above 8 die diameters depresses dart impact under ASTM D1709 Condition A. Converters producing T-shirt grocery sacks in the 12 µm to 25 µm gauge range observe that gauge distribution around the bubble must remain within ±8% to avoid handle-weld failures on high-speed bag machines. Heat sealing at 110 °C to 130 °C with dwell times of 0.3 s to 0.6 s produces seal strengths above 10 N/25 mm when tested under ASTM F88. Film stiffness is reflected in a 1% secant modulus in the machine direction typically in the range of 600 MPa to 900 MPa under ASTM D882. Terminal products are handle die-cut T-shirt sacks used in grocery retail, with heavy-metal packaging compliance under CONEG model legislation at a combined Pb, Cd, Hg, and Cr(VI) limit of 100 ppm.

    On a 65 mm smooth-bore extruder with a 24:1 L/D barrel, bubble stability at 12 µm frequently becomes a production bottleneck if the air-ring velocity exceeds 3.0 m/s; the bubble flickers and film thickness variation across the layflat rises above ±10%. The preferred setup for thin-gauge HDPE 59E is an air ring with a single-lip venturi and an adjustable chimney gap of 4 mm to 8 mm. Die diameter is selected from layflat width; a 100 mm die produces a layflat of 550 mm to 700 mm at a blow-up ratio of 3.5:1 to 4.5:1. Film is post-treated inline with corona discharge to 38 dynes/cm for side-seam printing on the T-shirt bag. Roll hardness is controlled to 70 to 90 Shore A durometer at the winder to prevent telescoping on the slitter unwind. Edge-trim scrap from the bag machine is recycled at 10 wt% to 20 wt%. The resin tolerates a single regrind pass, but a second pass typically raises the melt filtration pressure differential across a 100-mesh screen by 5 bar to 10 bar.

    Why Do Institutional Can-Liner Lines Run HMW-HDPE at High-Stalk BUR?

    Institutional can-liner production differs from retail grocery sack conversion because the end product must survive puncture by rigid waste and the stress-whitening caused by thin-film folding at the packer. On high-stalk lines, HDPE 59E is run at a blow-up ratio of 4.0:1 to 6.0:1 with a die gap of 1.2 mm to 1.8 mm and a frost line height of 8 to 12 die diameters. The high-stalk process uses a two-step cooling air ring configured with lower and upper lips; the lower lip is set to 40% to 60% of total air volume to stabilise the melt cone without chilling the die face. Barrel temperatures are set from 170 °C at the feed throat to 200 °C at the metering section, with die zones at 210 °C to 225 °C. The resulting 15 µm to 30 µm film is specified for dart drop resistance in the range of 150 g to 300 g under ASTM D1709 Condition A. Elmendorf tear in the transverse direction is monitored against converter-specific minimums, with values typically above 200 gf for 25 µm film under ASTM D1922. Regrind addition from edge trim and start-up film is capped at 15 wt% for star-seal can liners because higher recycled content broadens the melt viscosity distribution and increases seal-jaw leakage on hot-knife sealers. Terminal products include 50 L to 240 L janitorial liners, hospital waste sacks, and heavy-gauge contractor cleanup liners. The process boundary is a maximum melt temperature of 250 °C; above this threshold, chain scission and gel formation increase pressure-drop variability in the screen pack.

    Bubble geometry is deliberately asymmetric: a stalk diameter at the frost line of 1.4 to 1.8 times the die diameter yields a balance between transverse-orientation toughness and machine-direction tear. Water-ring calibration is not used because contact cooling in the stalk region produces surface frost and blocks the film. The critical failure mode on production lines is referred to as “cobra-weave” at the collapsing frame; this is suppressed by maintaining collapse-frame roller speed match within ±1% of nip speed. The specification for liner sacks includes a no-block requirement under ASTM D3354, with blocking load below 20 g for 12 µm film. Additives are limited to a stearamide slip package of 500 ppm to 1500 ppm and silica antiblock of 2000 ppm to 5000 ppm, depending on converter storage conditions.

    Three-Layer Coextrusion Layer Allocation for HDPE 59E

    Three-layer coextrusion places HDPE 59E in the core to supply modulus and creep resistance while polyolefin skins supply seal performance and dart impact. Common layer distributions are 20/60/20 or 30/40/30 by weight, with the core percentage held at 40 wt% to 60 wt%. The skins are usually metallocene LLDPE with a density of 0.918 g/cm³ to 0.925 g/cm³ and a melt index of 1.0 g/10 min to 2.0 g/10 min. Melt streams are fed by three extruders into a three-layer spiral mandrel die with a lip gap of 1.5 mm to 2.5 mm. The HDPE core melt temperature is set at 200 °C to 220 °C; skin melts are run 10 °C to 20 °C lower to prevent melt cross-mixing at the layer interface. Layer distribution is verified by layer-weight measurement rather than by screw speed only, with a tolerance of ±2% on the core ratio. A viscosity mismatch above 10% between the core and skin at the die shear rate can generate wave-form interfacial instability, visible as surface chatter on the film and reduced dart impact. Terminal structures are heavy-duty sacks and liners in the 40 µm to 80 µm range, used for compressed packaging, agricultural chemical liners, and reusable bulk sacks. The HDPE 59E core contributes a 1% secant modulus in the machine direction above 700 MPa under ASTM D882, while the LLDPE skins provide a seal-initiation temperature below 100 °C on hot-bar sealers. Moisture vapour transmission rate for a 60 µm coextruded film is expected to fall below 3 g/(m²·24 h) at 38 °C and 90% RH under ASTM F1249. Converters running this structure report that screen-pack melt filtration at 100 mesh to 120 mesh is necessary to reduce unmelts from the HDPE core at high throughput.

    Because HDPE 59E is used as the core, slip and antiblock additives are loaded only in the skin layers at 500 ppm to 2000 ppm slip and 2000 ppm to 6000 ppm silica antiblock. The core layer is kept additive-free to preserve stiffness. This layer allocation reduces total additive consumption by 40% to 60% compared with monolayer film at the same final coefficient of friction. The practical limit of this structure is at 80 µm total gauge; above that, core-to-skin thermal shrinkage differences caused by HDPE crystallinity can curl the sheet at the layflat edges.

    For fresh produce roll-stock, converter specifications converge on high film stiffness, controlled oxygen transmission, and clean seal behaviour. HDPE 59E film is produced at 7 µm to 20 µm and is typically printed with water-based flexographic inks after corona treatment to a surface energy of 40 dynes/cm to 42 dynes/cm. Food-contact status is satisfied by the resin’s compliance with FDA 21 CFR 177.1520(c) for olefin polymers and with EU Regulation 10/2011; the converter verifies overall migration below 10 mg/dm² using EN 1186 on the finished film. Perforated produce bags made from HDPE 59E at 15 µm provide an oxygen transmission rate typically between 1500 cm³/(m²·24 h·atm) and 2500 cm³/(m²·24 h·atm) under ASTM D3985. Heat seal settings are 100 °C to 130 °C on star-seal machines. Terminal products are roll-stock bags for grocery produce aisles, perforated packs for leafy greens, and lightweight home produce storage bags. The critical operational boundary is film blocking: without 2000 ppm to 4000 ppm silica antiblock, 7 µm film blocks on the wound reel at storage temperatures above 30 °C. The film is not pre-dried under warehouse relative humidity below 60%; condensation on cold pellets at change-over from outdoor silos to a heated mezzanine is removed by a 20-minute purge with 70 °C hopper air.

    Regulatory verification matrix for food-contact HDPE 59E film conversion
    Food-contact requirementJurisdictionTest or conditionLimit
    FDA 21 CFR 177.1520(c)United StatesOlefin polymers, food-contact useNet extractive limits per 21 CFR 176.170(c)
    EU Regulation 10/2011European UnionOverall migration, aqueous and fatty simulants10 mg/dm² under EN 1186
    EU 2023/2006 GMPEuropean UnionGood manufacturing practice for food-contact materialsDocumented process control
    CONEG model legislationUS statesSum of heavy metals Pb, Cd, Hg, Cr(VI)≤ 100 ppm
    EU Packaging Directive 94/62/ECEuropean UnionSum of heavy metals in packaging≤ 100 ppm
    REACH SVHCEuropean UnionSubstances of Very High Concern in articles0.1% w/w per article

    The migration testing scheme for finished produce-roll film follows a time-temperature protocol derived from the intended use: 10 days at 40 °C for aqueous simulant 3% w/v acetic acid and 10 days at 20 °C for 50% v/v ethanol when fatty contact is declared. The converter maps the food-contact layer on the film surface and retains a certificate of compliance that includes the HDPE 59E lot number, the screen-pack filtration mesh, and the corona-treatment surface energy.

    When HDPE 59E Replaces Paper Overwrap in Roll-Stock Bundling

    If a converting line replaces kraft paper overwrap for paper-towel and tissue bundles, HDPE 59E provides a printable, moisture-resistant film with a thickness of 12.5 µm to 25 µm. The film is extruded at a blow-up ratio of 3.0:1 to 3.5:1 and treated inline to a surface energy of 38 dynes/cm to 40 dynes/cm. A coefficient of friction between 0.25 and 0.40 is achieved on the film surfaces by dosing 1 wt% to 2 wt% of a stearamide/erucamide slip masterbatch and 2 wt% silica antiblock; the coefficient is measured under ASTM D1894 at 23 °C. The high-density film’s 1% secant modulus of 600 MPa to 900 MPa under ASTM D882 reduces web buckling on high-speed overwrap machinery at cycle rates above 150 packages/min. Terminal products include restaurant napkin wraps, bathroom tissue bundles, and paper-towel roll packs. The operational boundary for printed film is a maximum web temperature of 49 °C in the flexographic dryers; above this surface temperature, slip migration accelerates to the surface and printability drops below acceptable tape-adhesion values under ASTM D3359. The melt temperature is held at 210 °C to 225 °C to maintain gel-free film because over-heated HDPE at 260 °C or above forms gel particles that appear as specks on printed overwrap.

    The replace-paper application is not food contact, but the film roll must meet the Packaging and Packaging Waste Directive heavy metal limit of 100 ppm and a moisture content below 0.05 wt% before corona treatment. Water-based ink adhesion is checked with tape peel per ASTM D3359, and converters reject rolls with ink adhesion below 3B. The converted film is slit to ±0.5 mm width tolerance for automatic splicers. On some installations, a hot-melt band seal is used instead of impulse sealing; the seal temperature is set at 120 °C to 150 °C for 0.2 s to 0.4 s dwell.

    Multi-Wall Paper Sack Inner Ply Lamination and Sealing

    Multi-wall paper sacks for dry pet food, fertilizer, mineral powder, and cement use a pre-blown HDPE 59E inner ply to reduce moisture ingress and fibre contamination. The film gauge is 20 µm to 40 µm; it is laminated to the inner kraft ply with a water-based adhesive at a nip pressure of 20 N/cm to 80 N/cm on a flat-bed laminator. The HDPE ply improves the moisture vapour transmission rate of the package from greater than 30 g/(m²·24 h) for unlined kraft to below 8 g/(m²·24 h) for the lined structure at 38 °C and 90% RH under ASTM F1249. The film’s elongation at break in the machine direction is maintained above 400% under ASTM D882 so the inner ply follows the paper ply without cracking at the gusset fold. The seal in the finished sack is made through the paper with a hotair or hot-melt system; HDPE 59E film is not the sealant in the adhesive-laminated structure, so the adhesive bond must withstand a peel load above 2 N/15 mm under ASTM D903. Terminal products include 10 kg to 25 kg pet-food sacks and 25 kg to 40 kg mineral sacks. The critical process limit is web tension during lamination: HDPE film below 20 µm stretches more than 2% under nip pull, causing misregistration of pre-printed film to the paper ply.

    Moisture resistance in the lined paper sack is determined not only by the film’s MVTR but also by adhesive coverage. Full lamination is preferred over stripe lamination because the HDPE ply can shift at the bottom fold and expose kraft fibre to the powder product. The adhesive is applied at 70% to 90% solids and dried to a moisture content below 1 wt% before the film nip; residual water in the adhesive can cause bubble delamination in the gusset after palletised storage at 35 °C for 48 h. The HDPE inner ply is corona-treated on the laminate side to 38 dynes/cm within 24 h of adhesive application; corona decay below 34 dynes/cm results in peel failure under ASTM D903.

    High-speed automated bagging equipment for pre-opened star-seal produce and bakery bags demands film that holds block-free separation and clean star-seal welds at high cycle rates. HDPE 59E is converted into 7 µm to 12 µm film, corona-treated to 40 dynes/cm to 42 dynes/cm, perforated for breathability, and star-sealed on turret machines running at 300 to 800 bags per minute. The film’s stiffness is critical because the bag mouth must open under a low-pressure air puff of 50 kPa to 100 kPa without collapsing. The slip/antiblock package is set at 800 ppm to 1500 ppm erucamide slip and 2500 ppm to 4500 ppm silica antiblock to maintain a blocking load below 20 g under ASTM D3354. The star-seal temperature is 115 °C to 135 °C; the hot-knife seal is produced in 0.15 s to 0.35 s. Terminal products include wicket-mounted produce bags, bakery bags, and deli bags. An observed production failure mode on high-speed turret machines is “bag bounce” caused by excessive film slip, so the coefficient of friction is intentionally asymmetrical: the outer surface is set at 0.20 to 0.30 and the inner surface at 0.35 to 0.50 under ASTM D1894. The film is not pre-dried at relative humidity below 60%. At processing temperatures above 250 °C, the film acquires gel streaks from polymer degradation; screen-pack change intervals on the converting extruder shorten below 8 h if melt temperature is not controlled.

    The wicket bag sector relies on a very tight gauge tolerance of ±5% because the bag stack height must remain constant for the dispenser pin. HDPE 59E film at 9 µm is measured for tensile strength at break above 30 MPa in the machine direction under ASTM D882. An anti-fog additive is not normally added unless the bag is intended for wet leafy produce; a glycerol-ester anti-fog masterbatch at 1 wt% to 2 wt% can be used, but it increases blocking tendency and requires a corresponding silica antiblock increase of 500 ppm to 1000 ppm. The natural HDPE film carries the SPI resin identification code 2 under ASTM D7611.

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