| HS Code | 656578 |
| Density | 0.957 g/cm³ |
| Melt Flow Rate | 8.0 g/10 min (190°C/2.16 kg) |
| Melting Point | 134 °C |
| Vicat Softening Temperature | 125 °C |
| Heat Deflection Temperature | 75 °C (0.45 MPa) |
| Tensile Yield Strength | 28 MPa |
| Elongation At Break | 800% |
| Flexural Modulus | 1100 MPa |
| Notched Izod Impact Strength | 40 J/m |
| Shore D Hardness | 65 |
| Mold Shrinkage | 2.0% |
As an accredited Mitsui Chemicals HDPE AT2071 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Packaged in 25 kg multiwall paper bags, Mitsui Chemicals HDPE AT2071 is supplied 40 bags per pallet (1,000 kg). |
| Container Loading (20′ FCL) | Container Loading (20′ FCL): Mitsui Chemicals HDPE AT2071 in 25 kg bags, palletized, shrink-wrapped, secured; approx. 18 MT net. |
| Shipping | Mitsui Chemicals HDPE AT2071 is shipped as non-hazardous polyethylene pellets, typically in 25 kg bags or 1,000 kg jumbo bags on pallets. Transport in clean, dry trucks/containers; avoid moisture, heat, direct sunlight, and contamination. Store in a closed, ventilated area. Ensure packaging remains intact during handling. No special dangerous-goods classification required. |
| Storage | Store Mitsui Chemicals HDPE AT2071 in a cool, dry, well-ventilated warehouse, away from direct sunlight, heat, ignition sources, and moisture. Keep original bags or containers closed and palletized to prevent contamination. Avoid prolonged UV exposure and excessive stacking pressure. Do not store near strong oxidizers, acids, or solvents. Use first-in, first-out rotation and follow supplier SDS/local regulations. |
| Shelf Life | Shelf life is typically 24 months when stored under recommended conditions in original packaging, cool, dry, away from direct sunlight. |
The selection of Mitsui Chemicals HDPE AT2071 for carbonated soft drink closures is governed by the need to maintain sealing force under internal CO2 pressure, typically 0.45–0.60 MPa gauge at 25 °C, while reducing cycle time in multi-cavity hot runner tooling. The HDPE compound must permit rapid cavity filling without excessive shear heat generation, because melt temperature overshoot above 230 °C accelerates oxidative molecular weight degradation and can elevate measurable low-molecular-weight species that affect beverage organoleptics. Laboratory evaluation of closure compounds uses ISO 1133-1:2022 for melt mass-flow rate at 190 °C/2.16 kg, ISO 1183-1:2019 for density, ASTM D638-14 for tensile yield stress, ISO 179-1:2010 for Charpy impact, and ASTM D1693-15b for environmental stress cracking resistance in 100% Igepal CO-630 at 50 °C. Capillary rheometry under ISO 11443:2021 is used to compare apparent shear viscosity at 1000 s⁻¹ and 230 °C; published rheological data for high-flow HDPE closure grades commonly fall between 120 Pa·s and 180 Pa·s, but published data for AT2071 at this shear rate should be confirmed with the producer before setting final process limits.
Compliance for direct food contact rests on FDA 21 CFR 177.1520(c), which addresses olefin polymers, and Regulation (EU) No 10/2011, with overall migration measured according to EN 1186-1:2002. For closures in contact with carbonated aqueous beverages, overall migration is controlled below 10 mg/dm² in 10% ethanol and 3% acetic acid simulants under 10-day/40 °C exposure. Under (EU) No 10/2011 Annex II, specific migration limits for permitted additives remain applicable, and the final closure is evaluated for organoleptic neutrality using sensory methods under EN 1622:2006. Supply-chain declarations for REACH 1907/2006 require disclosure of substances of very high concern above 0.1 wt%, although a closure compound based on AT2071 typically contains no intentionally added SVHC.
Typical closure compounds consist of 96.5–98.0 wt% AT2071, 1.5–2.5 wt% white or colored masterbatch based on a compatible HDPE carrier, 0.5–1.0 wt% slip/anti-block masterbatch, and 0.05–0.2 wt% antioxidant/acid scavenger masterbatch. The slip additive loading is adjusted to achieve removal torque below 1.2 N·m on PCO 1881 neck finishes, while maintaining bridge strength under top load. If the slip masterbatch exceeds 1.5 wt%, surface migration can interfere with hot runner gate vestige uniformity and cause torque scatter from cap to bottle. Coloring with organic pigments can reduce environmental stress cracking resistance because pigment particles act as stress concentrators at the polymer-pigment interface; therefore any pigment substitution is validated by ASTM D1693-15b before production release.
In high-speed production lines, the material is injected on accumulator-assisted hydraulic or all-electric machines with clamp force of 1800–3000 kN, using 48–96 cavity hot runner stack molds with valve-gated drops. Melt temperature is controlled between 190–225 °C; barrel residence time is kept below 5 min to suppress gel formation and organoleptic defects. Mold cooling at 8–12 °C with direct chiller water maintains cycle times of 5–9 s. Holding pressure is set in the range 400–800 bar to pack the gate region without creating excessive molded-in stress. Process audits on high-speed closure lines identify hot runner stagnation as a recurring failure mode when color changes are made without increasing purge volume to 8–10 barrel capacities; this failure appears as black specks and inconsistent gate vestige height. Dimensional final inspection uses optical or laser gauge systems to hold closure diameter within ±0.10 mm and gate vestige height below 0.15 mm. Published tensile creep data for AT2071 under carbonation pressure storage is limited; therefore closure performance is confirmed on finished articles through top-load retention and carbonation pressure-decay testing at 0.45–0.60 MPa.
Closure types delivered to bottlers include PCO 1881 and PCO 1810 specifications for carbonated soft drinks, 30/25 mm short-skirt closures for still and carbonated water, and aseptic lightweight closures with wall thickness below 0.9 mm.
Within thin-wall dairy and spread packaging, Mitsui Chemicals HDPE AT2071 is processed where the wall thickness is maintained between 0.35 mm and 0.70 mm and where part ejection depends on controlled shrinkage. Direct food contact compliance follows FDA 21 CFR 177.1520(c) and Regulation (EU) No 10/2011, with migration testing in 50% ethanol and 3% acetic acid simulants; articles intended for fatty spreads require the use of isooctane or 95% ethanol simulant under EN 1186-1:2002. The compound is typically 97.0–99.0 wt% AT2071 with 1.0–3.0 wt% color masterbatch and 0.05–0.2 wt% acid scavenger; titanium dioxide-bearing white masterbatch increases flexural modulus measured according to ISO 178:2019 but may reduce notched impact strength measured according to ISO 179-1:2010. Production runs use thin-wall injection molding machines with accumulator assistance and clamp force from 2500–6000 kN, hot runner valve gates, injection speeds above 400 mm/s, and mold coolant at 8–18 °C; cycle times fall in the 6–12 s range. Processing problems in this sector are concentrated at the rim: unbalanced valve gating creates ovality above 0.5 mm, causing lid fit failures in automated filling lines. The resulting thin-wall inventory spans dairy cups in 125–500 mL, margarine and spread tubs in 250–1000 g, and delicatessen containers with snap-on lids.
Large pail molds impose a combination of thick handle bosses, stack lugs, and thin sidewalls that creates differential shrinkage, flange distortion, and flash formation. Mitsui Chemicals HDPE AT2071 is used in this sector because its high-flow characteristic reduces injection pressure drop in large-part molds, but the flow length also requires clamp force margins above 6000 kN and hot-runner manifold balance tolerances of ±5 °C to prevent short shots at the rim. Indoor pail formulations use 96.0–98.0 wt% AT2071 with 2.0–4.0 wt% color masterbatch; outdoor crates require 2.0–5.0 wt% hindered amine light stabilizer masterbatch and 0.5–1.5 wt% carbon black masterbatch to maintain impact properties after weathering. REACH Regulation 1907/2006 Annex XVII and RoHS Directive 2011/65/EU apply when the finished article is placed on the EU market; industrial pails and crates are not direct food-contact articles unless separately tested under Regulation (EU) No 10/2011. Production on hydraulic injection molding machines with clamp force from 6000 kN to 25000 kN uses melt temperature 200–235 °C, mold temperature 12–20 °C, and packing pressure decay times of 10–20 s to control sink marks around bosses. Demolding defects such as handle flash and rim ovality are managed by delaying mold-open from 25 s to 45 s depending on wall thickness and cooling channel turbulence. Finished pails and crates are supplied as 5 L, 10 L, and 25 L open-top pails, stack/nest crates for beverage bottles, and logistics containers with external ribs; mechanical acceptance commonly references ISO 178:2019 flexural modulus, ISO 179-1:2010 Charpy notched impact, and stacking load retention after 24 h at 40 °C.
When unscrewing molds are used for personal care and household chemical closures, the torque release path is determined by thread geometry and HDPE shrinkage after demolding. Compliance for closures used with ingestible pharmaceutical packaging requires testing under USP <661.1> plastic packaging system characterization, in addition to FDA 21 CFR 177.1520(c) and Regulation (EU) No 10/2011 where relevant; cosmetic and household chemical closures fall under REACH 1907/2006 Annex XVII. Formulations contain 96.0–98.5 wt% AT2071, 1.0–2.5 wt% color masterbatch, 0.5–1.0 wt% slip/anti-block masterbatch for cap release, and 0.3–1.0 wt% odor-neutralizing masterbatch where perfume or volatile solvent contact is expected. Machines with clamp force 1000–2500 kN use unscrewing cores or collapsible cores, with melt temperature 200–225 °C and mold temperature 10–15 °C; cycle times are 8–14 s, and unscrewing speed is limited to 50–100 min⁻¹ to avoid thread striation. Delivered configurations include flip-top caps, disc-top caps, child-resistant closures conforming to ISO 8317:2015, and dosing closures for personal care and household products.
In masterbatch production, Mitsui Chemicals HDPE AT2071 functions as the carrier phase in polyolefin color and additive concentrates. The primary process conflict is viscosity matching between the HDPE carrier and the dispersed pigment or carbon black; if melt viscosity is too low, wetting is improved but feeding instability at the main throat increases, while excessive viscosity reduces dispersion and raises melt temperature above 250 °C, where carbon black oxidation can degrade carrier properties. For masterbatches used in food-contact plastic articles, the carrier resin must itself comply with FDA 21 CFR 177.1520(c) and Regulation (EU) No 10/2011; for industrial masterbatches, REACH 1907/2006 and RoHS 2011/65/EU apply. A 40% carbon black masterbatch typically contains 40.0 wt% furnace black, 55.0–58.0 wt% AT2071 carrier, 2.0–5.0 wt% dispersant wax, and 0.1–0.3 wt% antioxidant; white concentrates use 60–70 wt% titanium dioxide and 27–36 wt% carrier with 2.0–5.0 wt% binder wax.
Compounding is performed on co-rotating twin-screw extruders with L/D 40:1, barrel temperatures 180–220 °C, screw speeds 300–800 rpm, and specific energy input 0.15–0.25 kWh/kg; the melt is filtered through screen changers at 100–200 mesh and pelletized underwater with die-face temperatures below 230 °C. Carbon black feeds are pre-dried to moisture below 0.1 wt% because evolved steam creates bubbles and strand fractures. Filter pressure at the screen changer before and after 24 h runs documents carbon black dispersion quality; a pressure rise greater than 30 bar at constant throughput indicates agglomerate build-up and requires increasing screen area or reducing carbon black loading. Production campaigns yield black, white, and colored masterbatches for HDPE film, pipe, blow molding, and injection molding operations.
Low-migration pharmaceutical closure molding for oral solid dose packaging uses Mitsui Chemicals HDPE AT2071 only after the completed packaging system has been evaluated against USP <661.1> and USP <661.2>, with extractables screening and total organic carbon limits determined by the finished-drug package dossier. Direct food-contact and drug-contact applications additionally cite FDA 21 CFR 177.1520(c) and Regulation (EU) No 10/2011, and child-resistant closures are tested under ISO 8317:2015. The compound contains 96.5–99.0 wt% AT2071, 0.5–2.0 wt% low-migration color masterbatch, 0.05–0.2 wt% antioxidant/acid scavenger, and 0.3–1.0 wt% silicone lubricant masterbatch where opening torque must remain below 1.0 N·m; omission of migratory fatty amide slip agents is specified because these can contaminate package contents and alter torque retention. Production uses all-electric injection molding machines with clamp force of 500–1500 kN, melt temperature 190–220 °C, mold temperature 10–16 °C, and cycle times of 10–18 s; process monitoring follows ISO 13485:2016 quality management for medical device packaging where applicable. Final medical packaging outputs are 10–30 mL dosing cups, child-resistant closures, and desiccant closures for effervescent tablets.
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Mitsui Chemicals HDPE AT2071 is introduced as a high-density polyethylene injection-moulding grade within the Mitsui Chemicals polyolefin portfolio. The product designation is normally interpreted through grade-specific technical data sheets covering melt flow rate, density, tensile properties, environmental stress crack resistance, and additive composition. Published data for this specific configuration is limited in non-proprietary sources; therefore, numerical values in the following sections are stated as the high-flow HDPE injection moulding class envelope unless a grade-specific value is identified. Typical conversion routes for this product class include thin-wall closures, overcaps, small containers, dispensing caps, and general-purpose injection-moulded articles requiring a balance of stiffness, short cycle time, and resistance to detergents or aqueous surfactant environments.
High-flow HDPE grades of this class are characterized under ISO 1133-1:2022 with a 2.16 kg load at 190 °C. The resulting melt mass-flow rate is the primary control for cavity filling, injection pressure, and cycle time. For thin-wall injection moulding, high-flow HDPE grades commonly occupy a melt flow rate band of 5 g/10 min to 25 g/10 min. Values below 5 g/10 min can increase filling pressure in multi-cavity closure tools and may produce short shots at wall thicknesses below 0.8 mm. Values above 25 g/10 min can reduce environmental stress crack resistance and creep resistance, especially when closure threads are exposed to wetting agents. The AT2071 melt flow rate should be verified against the batch certificate of analysis rather than inferred from general grade-family tables.
The melt flow ratio, typically calculated as the ratio of the 21.6 kg load result to the 2.16 kg load result under ASTM D1238-23 or ISO 1133-1:2022, is used as an indirect indicator of molecular-weight distribution. Lower ratios are associated with narrower distributions, lower die swell, and improved dimensional control in small closures. Higher ratios indicate a broader distribution and may improve melt homogeneity at the cost of increased crystallinity-induced shrinkage. In AT2071, the relevant ratio should be interpreted from the supplier’s specification sheet because it directly affects gate freeze behaviour and part weight stability.
Injection moulding trials on electric moulding machines with clamp force in the range of 800 kN to 2,000 kN are representative for multi-cavity closure tools. The melt temperature at the nozzle is generally maintained between 200 °C and 240 °C. A melt temperature below 190 °C risks partial crystallization in the nozzle tip or hot-runner gate. A melt temperature above 260 °C accelerates oxidative degradation, leading to yellowing, odour formation, and loss of impact strength. Mould temperatures between 10 °C and 40 °C are used to control cycle time; however, temperature deviations of ±5 °C can shift post-mould shrinkage by 0.1–0.3 percentage points in thin-wall closures, creating dimensional mismatch in tamper-evident bands or thread engagement. This represents a critical threshold risk in high-cavitation tooling.
Shear rates at the gate in thin-wall injection moulding can exceed 10,000 s⁻¹. At such shear rates, HDPE viscosity is highly shear thinning, but gate freeze time becomes the limiting factor. If the gate is below 0.5 mm and the mould temperature is below 15 °C, the gate may freeze before packing pressure is transferred, causing sink marks and underfilled ribs. Screw design for HDPE injection grades typically uses a screw diameter of 50 mm to 80 mm, a compression ratio of 2.5:1, and a back pressure of 0.5 MPa to 1.5 MPa. Production-scale batch-to-batch variation is most often observed as a change in melt pressure at the machine barrel when the melt flow rate shifts within its specification band; therefore, processing parameters should be re-centred after each lot change.
Density is measured under ISO 1183-1:2019 or ASTM D792-20. HDPE is defined by a density of at least 0.941 g/cm³. High-flow HDPE injection grades are commonly specified between 0.950 g/cm³ and 0.965 g/cm³. Higher density increases flexural modulus and surface hardness, but it also increases mould shrinkage and reduces impact toughness at low temperatures. Tensile stress at yield is tested under ISO 527-2:2012 at 23 °C and 50 mm/min. Unfilled HDPE injection grades typically yield at 22 MPa to 30 MPa, with elongation at break generally exceeding 100% unless high crystallinity and rapid cooling reduce it. Flexural modulus under ISO 178:2019 is usually in the range of 900 MPa to 1,300 MPa. This level of stiffness supports closure strip torque and dimensional retention but increases the injection pressure required for thin-wall filling.
Impact resistance is reported using ISO 180:2023 notched Izod at 23 °C. HDPE injection grades commonly show notched Izod values of 3 kJ/m² to 8 kJ/m²; lower values may indicate a high crystallinity lot, while higher values can indicate a broader molecular-weight distribution or comonomer modification. Heat resistance is assessed by Vicat softening temperature under ISO 306:2022 A50, commonly 125 °C to 130 °C, and heat deflection temperature under ISO 75-2:2013 at 0.45 MPa, commonly 65 °C to 85 °C. These thermal values are not suitable for continuous load-bearing applications above the deflection temperature range.
Environmental stress crack resistance is determined under ASTM D1693-15 with 10% Igepal CO-630 at 50 °C. For high-flow HDPE injection grades, F50 values can vary from 10 h to more than 100 h depending on comonomer type, molecular weight, and cooling rate. The F50 value is particularly relevant for closures in contact with detergents, bleach solutions, alcohol-based hand sanitizers, and citrus-based cleaners. AT2071 should be evaluated under ASTM D1693-15 if the intended application includes aggressive surfactant contact because generic HDPE datasheets sometimes omit this property.
| Property | Test method | High-flow HDPE injection benchmark | Relevance to AT2071 conversion |
|---|---|---|---|
| Melt mass-flow rate | ISO 1133-1:2022 at 190 °C, 2.16 kg | 5–25 g/10 min | Controls filling pressure, cycle time, and gate freeze behaviour |
| Density | ISO 1183-1:2019 | 0.950–0.965 g/cm³ | Sets stiffness, shrinkage, and closure dimension stability |
| Tensile stress at yield | ISO 527-2:2012 | 22–30 MPa | Short-term mechanical loading of threads and snap features |
| Flexural modulus | ISO 178:2019 | 900–1,300 MPa | Strip torque resistance and side-wall stiffness |
| Notched Izod impact | ISO 180:2023 at 23 °C | 3–8 kJ/m² | Low-velocity impact and crack resistance |
| Vicat softening temperature | ISO 306:2022 A50 | 125–130 °C | Short-term contact with heated filling or washing media |
| Environmental stress crack resistance | ASTM D1693-15, 10% Igepal, 50 °C | 10–>100 h | Closure resistance to detergents, alcohols, and surfactants |
Food-contact compliance for HDPE injection grades is governed in the United States by FDA 21 CFR 177.1520 for olefin polymers. This regulation sets limits for extractable fraction and requires that the raw material meet specified density and melt index criteria where applicable. The European Union framework is Commission Regulation (EU) No 10/2011, with overall migration evaluated using EN 1186-1:2002-series methods and an overall migration limit of 10 mg/dm² for food-contact plastics. For infant and small-child applications, the applicable limit is 60 mg/kg when expressed by food quantity. Because migration behaviour depends on additive package and conversion history, batch-specific certification for AT2071 must be obtained from the supplier.
Pharmaceutical closure applications may require USP <661.1> physicochemical testing covering buffering capacity, heavy metals, non-volatile residue, and UV absorption. HDPE’s non-polar hydrocarbon structure generally yields low extractable profiles, but additive migration from antioxidants or acid scavengers can be detected at trace levels. AT2071 should not be used in applications requiring prolonged contact with strong oxidizing acids, aromatic solvents, or ketones without solubility and stress crack testing because non-polar polyolefins swell in such media. REACH registration under Regulation (EC) No 1907/2006 and SVHC communication under Article 33 should be confirmed through the material safety data sheet. RoHS screening under Directive 2011/65/EU Annex II is normally limited to 0.1% for lead, mercury, hexavalent chromium, PBB, and PBDE, and 0.01% for cadmium in homogeneous material. Unfilled HDPE matrices typically meet these thresholds, but coloured or compounded versions require separate verification by ICP-OES or XRF methods.
| Regulation or standard | Scope | Verification method | AT2071 control requirement |
|---|---|---|---|
| FDA 21 CFR 177.1520 | Olefin polymers for food contact | Extractable fraction and density/melt index compliance | Supplier certification for the specific lot |
| Commission Regulation (EU) No 10/2011 | Plastic food-contact materials in the EU | EN 1186-1:2002 and specific migration methods | Overall migration limit 10 mg/dm² or 60 mg/kg where applicable |
| USP <661.1> | Plastic packaging and components for pharmaceuticals | Physicochemical and extractables profiling | Grade-specific lot testing for regulated use |
| Regulation (EC) No 1907/2006 | REACH registration and SVHC communication | Safety data sheet and Article 33 declaration | Confirm registration status and candidate-list substances |
| Directive 2011/65/EU Annex II | Restriction of hazardous substances | ICP-OES or XRF screening of homogeneous material | Confirm 0.1% and 0.01% threshold compliance |
Compared with high-molecular-weight HDPE blow-moulding grades having melt flow rates below 1 g/10 min, AT2071 is expected to exhibit lower injection pressure, shorter fill time, and reduced melt swell. The corresponding trade-off is lower melt strength, which makes the product unsuitable for parison-sag-limited extrusion blow moulding or thick sheet thermoforming. Blow-moulding grades are chosen for large containers where parison stability and wall-thickness uniformity depend on high chain entanglement. Injection-moulding grades such as AT2071 are instead selected for thin-wall parts where fast crystallization and ejection dominate the economics.
Compared with metallocene-catalyzed linear low-density polyethylene, HDPE injection grades provide higher density, higher flexural modulus, and lower gas permeability. Metallocene LLDPE grades can have higher impact toughness and better puncture resistance in film or flexible packaging, but they lack the rigidity required for snap-fit closures and unsupported container side walls. The choice between HDPE and metallocene LLDPE in a closure depends on whether the design is stiffness-limited or impact-limited. In small closures, HDPE is often preferred because thread engagement requires higher modulus, whereas flexible packaging demands tear and dart impact performance.
Compared with clarified random copolymer polypropylene, HDPE has lower heat deflection temperature and lower continuous-use temperature. PP closures are generally preferred for hot-filled products above approximately 90 °C, while HDPE is suitable for cold fill and ambient applications. HDPE offers higher environmental stress crack resistance against detergents and polar surfactants than many PP grades because its non-polar polyethylene backbone resists polar solvent attack. PP is superior in integral hinge applications and cyclic flexural fatigue, while HDPE is not recommended for living hinges that require repeated bending beyond the yield strain. The difference in density also gives PP a weight advantage at equal part volume, but HDPE may provide better cap-thread torque retention in continuous-thread closures when tested under ASTM D2063-12.
Injection moulding trials on high-cavitation closure tools indicate that AT2071 should be purged with an HDPE grade of similar melt flow rate before shutdown. Prolonged residence time above 240 °C can cause yellowing and molecular weight reduction. Mould release agents should be avoided because external lubricants can migrate to the closure surface and reduce seal integrity or torque retention. The grade should be stored in dry conditions, and if surface condensation occurs after transfer from cold storage, drying at 80 °C for 2 h is usually sufficient before processing. No post-treatment is required after ejection, but parts should be conditioned at 23 °C and 50% relative humidity before dimensional audit when using ISO 291:2008 or ASTM D618-21 conditioning atmospheres.