| HS Code | 418628 |
| Polymer Type | High Density Polyethylene (HDPE) |
| Density | 0.954 g/cm³ |
| Melt Flow Rate | 11 g/10 min (190°C/2.16 kg) |
| Tensile Strength At Yield | 30 MPa |
| Elongation At Break | 500% |
| Flexural Modulus | 1300 MPa |
| Notched Izod Impact Strength | 50 J/m |
| Vicat Softening Temperature | 125 °C |
| Melting Temperature | 130 °C |
| Brittleness Temperature | -70 °C |
| Shore D Hardness | 65 |
| Molding Shrinkage | 1.5-3.0% |
| Water Absorption | <0.01% |
As an accredited PetroChina Fushun HDPE 2911FS factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | PetroChina Fushun HDPE 2911FS supplied in 25 kg woven bags, 40 bags per pallet, totaling 1,000 kg for easy handling. |
| Container Loading (20′ FCL) | Container Loading (20′ FCL): 25,000 kg PetroChina Fushun HDPE 2911FS in 25 kg bags, palletized or loose, subject to carrier limits. |
| Shipping | PetroChina Fushun HDPE 2911FS is shipped as non-hazardous HDPE pellets, normally in 25 kg PP woven bags or jumbo bags, palletized and stretch-wrapped. Transport in clean, dry containers by sea or truck, protecting from moisture, direct sunlight, heat, and contamination. Store in a cool, ventilated warehouse. |
| Storage | Store PetroChina Fushun HDPE 2911FS in a cool, dry, well-ventilated warehouse, away from direct sunlight, heat, flames, and ignition sources. Keep original bags sealed on pallets, protect from moisture, dust, oils, and contaminants. Avoid prolonged high temperatures and UV exposure. Maintain good housekeeping and safe stacking height. Observe local regulations and manufacturer’s recommendations. Do not store near strong oxidizers. |
| Shelf Life | Typically 24 months when stored in original unopened packaging in a cool, dry, well-ventilated area, away from direct sunlight and moisture. |
In thin-wall injection molding of dairy and deli containers, cycle time is governed by gate freeze-off and part ejection forces rather than plastication. For PetroChina Fushun HDPE 2911FS with a nominal melt flow rate of 20 g/10 min at 190 °C/2.16 kg and density near 0.960 g/cm³, the melt path remains stable down to a sidewall thickness of 0.35 mm to 0.50 mm when runner and gate diameters are held above 1.0 mm. Processing on injection molding machines with screw L/D ratios of 20:1 to 25:1 and compression ratios of 2.5:1 to 3.0:1 uses barrel zones from 180 °C at the hopper to 220 °C at the nozzle, mold temperature between 15 °C and 30 °C, injection pressure from 80 MPa to 120 MPa, and hold pressure from 50 MPa to 70 MPa. A mold temperature excursion above 30 °C extends cooling time and increases post-ejection ovality in round tubs; below 15 °C produces flow hesitancy marks at the gate and gloss variation on textured surfaces. Vent depths of 0.02 mm to 0.03 mm prevent gas burn at end-of-fill, and valve-gate hot runners are preferred because the resin’s high melt flow can otherwise produce stringing at open hot tips. Pre-drying of virgin HDPE 2911FS is not required under normal dry storage, but surface moisture on cold regrind or plant air above 60 % RH warrants 2 h at 70 °C before processing. Formulation addition is typically 100 parts by weight of HDPE 2911FS with 1 wt% to 2 wt% titanium dioxide-based white masterbatch, 0.05 wt% to 0.10 wt% erucamide slip additive for stackability, and up to 15 wt% clean in-house regrind; higher regrind levels increase melt-flow variation and must be tracked against container wall distribution. The relevant compliance frame for food contact includes FDA 21 CFR §177.1520, Regulation (EU) No 10/2011 with an overall migration limit of 10 mg/dm², and GB 4806.6-2016. Terminal finished product types include yogurt cups, dairy tubs, deli containers, portion cups, and stackable lids in the 0.35 mm to 0.80 mm sidewall range.
| Verification frame | Designation | Control point in HDPE 2911FS application |
|---|---|---|
| U.S. food contact | FDA 21 CFR §177.1520 | Olefin polymer repeat-use and single-use articles |
| EU food contact | Regulation (EU) No 10/2011 | Overall migration limit 10 mg/dm² |
| China food contact | GB 4806.6-2016 | Resin and article migration compliance |
| Melt flow verification | ISO 1133-1:2022 | 190 °C/2.16 kg condition |
| Melt flow verification | ASTM D1238-20 | 190 °C/2.16 kg condition |
| Tensile yield stress | ASTM D638-14 | Type I specimen, 50 mm/min |
| Flexural modulus | ASTM D790-17 | Standard three-point loading |
| Notched Izod impact | ASTM D256-10 | 23 °C, notched specimen |
The dominant process conflict in thin-wall HDPE 2911FS molding is the interaction between fast melt delivery and shrinkage anisotropy. At a nominal mold shrinkage of 1.5 % to 2.0 %, round tubs and rectangular lids do not shrink uniformly; the direction of flow shows lower shrinkage than the transverse direction, which causes lid fit variation if hold pressure is released too early. At gate freeze-off, hold pressure must be sustained until the gate diameter closes, typically 0.5 s to 1.0 s after fill, to minimize dimensional scatter. In high-cavitation molds of 16 to 32 cavities, cavity-to-cavity filling imbalance above 5 % creates wall-thickness variation that cannot be corrected by subsequent downstream trimming. Therefore, melt flow verification with ISO 1133-1:2022 at incoming inspection is used to maintain lot-to-lot consistency.
Closure molding is not a single-viscosity operation; thread diameter, tether band thickness, and tamper-evident bridge geometry impose different shear histories. Melt temperature below 200 °C in HDPE 2911FS produces underfilled thread crests and increased injection pressure, while temperatures above 240 °C degrade the slip additive package and can discolor white closures. High-speed closure tools with 48 to 96 cavities operate with a melt temperature from 200 °C to 240 °C, mold temperature from 10 °C to 25 °C, injection speed sufficient to fill the runner before gate freeze-off, and hold pressure from 40 MPa to 60 MPa. Uneven cavity filling in multi-cavity tools is controlled with flow-balance correction plates and independent cooling circuits; core cooling must maintain a temperature difference no greater than 5 °C between adjacent cores to avoid thread diameter scatter. Formulation addition is 100 parts by weight HDPE 2911FS with 0.5 wt% to 1.5 wt% erucamide slip masterbatch for unscrewing torque control, 0.5 wt% to 2.0 wt% color masterbatch, and not more than 20 wt% clean closure regrind. If tethered cap designs require post-mold mechanical hinge flexing, the regrind fraction is reduced to 10 wt% because hinge fatigue resistance declines with repeated thermal history. The production process is high-speed injection molding with cycle times of 4 s to 8 s, followed by capping-line torque verification and bridge integrity sampling. Quantitative torque retention data for this specific configuration is limited, so closure validation should include cap application torque, removal torque, and sustained tether hinge flexing rather than reliance on resin datasheet values alone. Regulatory anchors include FDA 21 CFR §177.1520, Regulation (EU) No 10/2011, and the tethered closure structural requirements of Directive (EU) 2019/904. Terminal finished product types include still water bottle closures, carbonated soft drink closures with slitted liners, tethered closures, and push-pull sports caps.
Slip additive loading above 0.15 wt% erucamide in the final compound leads to plate-out on core pins and inconsistent removal torque across hot runner cavities; therefore masterbatch dosing is gravimetric rather than volumetric. The tamper-evident bridge section is the highest shear zone and must be kept above 0.20 mm width to avoid brittle fracture during cap application. Injection-compression molding is used for tethered caps because it reduces residual stress at the hinge joint and permits lower injection pressure than straight injection molding; the compression stroke is maintained at 0.3 mm to 0.8 mm after melt injection.
For flip-top caps, jar overcaps, and tottle shoulders, the critical processing condition is hinge orientation rather than overall part filling. The high melt flow of HDPE 2911FS permits thin hinge sections but also increases orientation sensitivity at the hinge bend when mold temperature is below 15 °C; a mold temperature of 20 °C to 25 °C and a final hold duration of 1.5 s to 2.5 s are used to stabilize hinge microfibrillation. The downstream production process is injection molding with screw L/D 20:1 to 25:1, barrel temperatures 190 °C to 215 °C, injection pressure 60 MPa to 90 MPa, and hold pressure 30 MPa to 50 MPa. Hinges are flexed once on the mold or immediately after demolding to orient the polymer across the hinge line; hinges below 0.25 mm can stress-whiten during flexing, while hinges above 0.50 mm increase opening force and reduce living-hinge life. Formulation addition is 100 parts by weight HDPE 2911FS with 2 wt% to 4 wt% color masterbatch, 0.1 wt% to 0.3 wt% silicone-based lubricant masterbatch for hinge feel and friction reduction, and not more than 15 wt% clean process regrind; fragrance barrier or metallization layers are not part of the base resin formulation and require separate validation. Regulatory compliance for cosmetic packaging uses Regulation (EC) No 1223/2009, REACH Regulation (EC) No 1907/2006, and the food-contact frame of FDA 21 CFR §177.1520 where overpack contact with dry food is intended. Terminal finished product types include flip-top closures, disc-top caps, jar overcaps, tottle caps, and inner plug components for lotion and cream dispensing systems.
During molding of drawer organizer trays, differential shrinkage between rib intersections and planar panels becomes the primary dimensional defect. Housewares molding differs from thin-wall food packaging in that wall section variations frequently exceed 3:1. HDPE 2911FS requires mold temperatures from 15 °C to 30 °C, melt temperatures from 180 °C to 220 °C, injection pressures from 80 MPa to 110 MPa, and hold pressures from 50 MPa to 70 MPa when molding storage drawers and organizer trays; the hold phase is extended by 2 s to 4 s for every 1.0 mm increase in wall thickness beyond 2.5 mm to reduce sink marks at rib junctions. Differential shrinkage is addressed with post-mold cooling fixtures, not by reducing mold temperature below 15 °C, because low mold temperature amplifies frozen-in stress and later warpage under load. Formulation addition is 100 parts by weight HDPE 2911FS with 2 wt% to 5 wt% color masterbatch, up to 25 wt% clean post-industrial regrind from sprues and rejected parts, and 0.1 wt% to 0.2 wt% antioxidant masterbatch when regrind content exceeds 20 wt% to offset repeated melt histories. Compliance for general housewares and food storage articles is anchored to REACH Regulation (EC) No 1907/2006, FDA 21 CFR §177.1520 for food-contact drawers, and mechanical verification with ASTM D638-14 tensile and ASTM D256-10 notched Izod impact. Terminal finished product types include storage totes, drawer organizers, cutlery trays, under-bed storage units, and modular stacking bins with molded-in handle geometries.
The pigment system rather than the base resin often determines heavy-metal migration compliance in toy components molded from HDPE 2911FS. For building blocks, stacking cups, and sports cones, addition ratios are 100 parts by weight HDPE 2911FS with 2 wt% to 4 wt% heavy-metal-free color masterbatch selected against Directive 2009/48/EC and EN 71-3 migration limits; outdoor parts add 0.2 wt% to 0.5 wt% UV stabilizer masterbatch. The downstream production process is injection molding with melt temperature 190 °C to 220 °C, mold temperature 15 °C to 25 °C, injection pressure 70 MPa to 100 MPa, and hold pressure 40 MPa to 60 MPa; wall thickness is held between 2.0 mm and 4.0 mm to maintain impact strength without excessive sink. Sharp internal corners must be radiused to at least 0.5 mm to reduce notch sensitivity, and gate placement is biased toward thick sections to avoid flow hesitation at play surface ribs. Regulatory compliance for toys includes EN 71-3 for migration of certain elements, ASTM F963-23 for heavy-element limits, and REACH Regulation (EC) No 1907/2006 Annex XVII for restricted substances. Terminal finished product types include building blocks, stacking cups, sand play tools, sports cones, and soft-ground play components; published data for this specific configuration is limited where repeated impact fatigue is concerned, so impact testing per ASTM F963-23 should accompany any design change.
For logistics containers molded from HDPE 2911FS, drop impact at freezer temperatures and long-term creep under stacked static loads are the primary service limits. The downstream production process is injection molding on large machines with clamp forces of 8000 kN to 15000 kN, multiple hot runner drops or valve gates, melt temperature 190 °C to 220 °C, mold temperature 15 °C to 25 °C, injection pressure 90 MPa to 120 MPa, hold pressure 50 MPa to 70 MPa, and cooling time 25 s to 50 s depending on wall thickness. Warpage in large panels is controlled by balanced fill from center or edge gates, post-mold fixturing, and avoiding excessive hold pressure that can create overpacking near the gate. Formulation addition is 100 parts by weight HDPE 2911FS with 0.2 wt% to 0.5 wt% UV stabilizer masterbatch, 1 wt% to 3 wt% color masterbatch, and up to 30 wt% clean post-industrial regrind; for freezer distribution use, regrind content above 20 wt% should be validated by low-temperature impact testing because repeated melt history shifts the brittle-ductile transition. Compliance includes ISO 8611-1 for flat pallets where pallet feet are molded from the same resin system, ASTM D638-14, ASTM D256-10, and ISO 6603 for puncture impact. Terminal finished product types include distribution crates, pallet feet, divider panels, collapsible crate sidewalls, and industrial storage bins.
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PetroChina Fushun HDPE 2911FS is a high-molecular-weight high-density polyethylene resin specified for tubular blown-film extrusion. Producer data identify the grade as a film-grade polyethylene with a nominal melt flow rate of 0.05 g/10 min under ISO 1133-1 conditions at 190 °C and 2.16 kg, and a density of 0.956–0.960 g/cm³ under ISO 1183-1. The low melt flow rate relative to injection-moulding HDPE reflects a high-molecular-weight fraction that increases melt strength and bubble rigidity. Certificates of analysis for the grade also list a tensile yield stress above 25 MPa under ISO 527-2 and an elongation at break above 600%. These figures should be treated as release ranges, not moulding or extrusion fixed values, and the current batch certificate should be consulted before automated converting.
The low melt flow range of 2911FS corresponds to a high zero-shear viscosity that is not ordinarily reported in producer certificates of analysis but is observable as increased screw torque and delayed melt fracture onset at commercial shear rates. Capillary rheometry under ISO 11443 at 190 °C and shear rates between 100 s⁻¹ and 1,000 s⁻¹ is required to generate a viscosity curve for precise die design. The molecular weight distribution in comparable high-molecular-weight film HDPE is typically broad enough to preserve extrusion processability while maintaining film tear resistance; published data for this specific resin configuration is limited, so processors should confirm distribution-sensitive behaviour through instrumented extrusion trials.
Processing behaviour of the resin is governed by its low melt flow rate, which raises shear viscosity relative to film HDPE grades with melt flow rates above 0.1 g/10 min. On a 75 mm single-screw extruder with 30:1 L/D ratio and a barrier screw, production-scale line observations indicate that a grooved-feed section and a screen pack of 80/120 mesh reduce melt-pressure oscillation. Barrel temperatures are normally held between 160 °C and 210 °C from feed throat to die, with the die zone maintained at 200–215 °C. A spiral-mandrel die with a gap of 1.8–2.2 mm and a blow-up ratio of 2.5:1–4.0:1 maintains a stable bubble. Frost-line height is typically set at 6–10 die diameters. Die temperatures above 230 °C promote oxidative gel formation at the lip; therefore line stops with full screw and hot die should be limited to 15 min where possible.
Switching to 2911FS from a higher-MFR film HDPE on a 90 mm grooved-feed extruder increases die-head pressure and specific energy input; published data for this exact configuration is limited, but production records on analogous high-molecular-weight film grades show back pressure rising from approximately 18–22 MPa to 26–32 MPa at equivalent screw speed. This rise must be accommodated by the extruder drive, thrust bearing, and screen-pack change schedule. On a 1,200 mm collapsing-frame line producing 30 µm film, batch-to-batch variation in the lower melt flow range appears primarily as bubble flutter and layflat width drift, requiring closed-loop tension control with load cells at the primary nip. The resin is supplied as pellets with a stabiliser system; moisture condensation at ambient relative humidity above 60% may introduce pinholes and die-lip deposits. If surface moisture is suspected, pre-drying in a desiccant dryer for 2–4 h at 80 ± 5 °C is applied before extrusion.
The differentiation of 2911FS from conventional film HDPE and from blow-moulding HDPE is best read through the combined response of melt flow rate, density, and film impact properties. The following representative comparative envelope is drawn from producer publications and standardised test methods; actual batch certificates may fall outside the ranges shown.
| Property | Test standard | 2911FS representative range | Conventional film HDPE | Blow moulding HDPE |
|---|---|---|---|---|
| Melt flow rate | ISO 1133-1 | 0.04–0.06 g/10 min | 0.15–0.30 g/10 min | 0.35–0.60 g/10 min |
| Density | ISO 1183-1 | 0.956–0.960 g/cm³ | 0.950–0.955 g/cm³ | 0.955–0.962 g/cm³ |
| Tensile yield stress | ISO 527-2 | 25–30 MPa | 22–28 MPa | 26–32 MPa |
| Elongation at break | ISO 527-2 | >600% | 500–700% | 400–600% |
| Dart impact F50, 30 µm film | ASTM D1709A | >150 g | 80–120 g | not film rated |
Relative to general-purpose film HDPE, the lower melt flow rate of 2911FS shifts the operating point toward higher melt tension and lower draw resonance. This permits higher stalk heights and larger blow-up ratios, but reduces screw output per kilowatt and increases melt-temperature sensitivity. Relative to blow-moulding HDPE, 2911FS is not designed for parison hang strength or pinch-off moulding; its higher melt viscosity in blow-moulding dies can generate weld-line defects and excessive parison shrinkage. The density and molecular-weight balance also make 2911FS unsuitable for thin-wall injection-moulding applications with flow-length-to-thickness ratios above 200:1.
In film converting, 2911FS is used for thin-gauge T-shirt grocery sacks, waste-sack liners, carrier films, and moisture-barrier packaging layers where the high-modulus HDPE surface resists creasing and supports down-gauging. On a 65 mm extruder running 120 kg/h with a 400 mm die, the grade’s high melt strength allows bubble diameters up to 1,600 mm without excessive neck-in. Internal bubble cooling is nevertheless recommended at outputs above 100 kg/h to remove heat generated by high shear viscosity and to maintain frost-line geometry. Film property targeting on a blown-film line includes Elmendorf tear strength measured under ASTM D1922, dart impact under ASTM D1709A, and secant modulus under ISO 527-3; tear values are generally lower than those of LLDPE films of equal gauge.
Where 2911FS is used to replace linear low-density polyethylene in thin-gauge packaging, the mechanical trade-off is systematic: HDPE film displays higher modulus and lower elongation at break, but markedly lower dart puncture and lower machine-direction Elmendorf tear. Processors should not expect one-to-one substitution in high-abuse applications such as stretch films or heavy-duty sacks. The heat-seal window of HDPE is narrower than that of LLDPE, with seal strength building rapidly only as the seal temperature approaches 120 °C and the film reaches its crystalline melting envelope. Jaw-type heat-seal tests under ASTM F88 on 25 µm HDPE film generally show seal strengths below those of 25 µm LLDPE of comparable density; coextruded HDPE/LLDPE structures are therefore specified where seal integrity and stiffness are both required. Processing with 2911FS at high output also requires a dual-lip air ring or internal bubble cooling; without these, bubble flutter occurs when the frost-line height exceeds 8 die diameters.
Coextrusion trials on HDPE/LLDPE structures with 2911FS as the external layer require adjustment of layer viscosity ratios to prevent interfacial instability. Because 2911FS carries a lower melt flow rate than many LLDPE sealants, the viscosity ratio at the die lip can exceed 3:1, producing interfacial wave defects unless the LLDPE sealant selected also carries a melt flow rate below 0.6 g/10 min or the die is designed with layer-specific temperature control. Feedblock and multimanifold dies with separate melt channels are preferred for such structures.
Food-contact compliance for 2911FS falls within the olefin polymer provisions of FDA 21 CFR 177.1520 and EU Regulation 10/2011 when the film is produced without non-compliant modifiers and under the intended temperature and food-type limitations. Migration testing is conducted under EN 1186 or FDA conditions appropriate to the finished package; the resin itself is not a food-contact certificate but a precursor material. Under REACH and RoHS, standard HDPE grades do not normally carry Substances of Very High Concern at reportable concentrations; however, converters must verify the supplier’s safety data sheet for specific stabilisers and processing aids. The grade is not recommended for prolonged outdoor service unless compounded with an ultraviolet stabilisation package, because unstabilised HDPE embrittles under UV exposure and loses tensile yield strength after extended weathering. Storage under dry, shaded conditions and use within 6 months of delivery are typical for preserving additive functionality.
On a blown-film line, the dominant failure mode observed with 2911FS when converting at high output is not bubble instability but die-lip plate-out from degraded low-molecular-weight fractions. Periodic cleaning with 300–400 °C purge compounds or manual die-lip polishing is required after 72 h of continuous operation on lines without automatic screen changers. The use of fluoropolymer processing aids at 200–500 ppm is permitted to lower die pressure and delay shark skin; however, these additives may reduce film surface energy and affect print adhesion unless corona treatment follows in-line.
The principal operational boundary for 2911FS is melt temperature. Extended residence at or above 230 °C causes chain scission, yellowing, and surface gels that appear as tear defects and weak points in thin film. The resin should not be purged with polar olefin copolymers or acidic purge compounds because residual catalyst deactivation additives can produce odour and colour shifts. When regrind is used, addition levels above 20% may lower film tear resistance and increase gel count, especially if the scrap contains printed or oxidised film; sorted in-house edge trim is preferable to post-consumer reclaim.