| HS Code | 988897 |
As an accredited Hanwha HDPE 6590 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Hanwha HDPE 6590 is supplied in 25 kg polyethylene bags, stacked on pallets and stretch-wrapped for secure industrial delivery. |
| Container Loading (20′ FCL) | Container loading for Hanwha HDPE 6590 in a 20′ FCL: typically 25 MT of 25 kg bags, securely stowed. |
| Shipping | Hanwha HDPE 6590 is a non-hazardous high-density polyethylene resin in pellet form, shipped in 25 kg bags, 1 MT jumbo bags, or bulk containers. Not regulated for transport. Keep dry, avoid sunlight, heat, and contamination; store in a cool, ventilated area. |
| Storage | Store Hanwha HDPE 6590 in a cool, dry, well-ventilated warehouse, away from direct sunlight, heat, moisture, and ignition sources. Keep original bags sealed, palletized, and off the floor to prevent contamination. Avoid prolonged UV exposure and contact with strong oxidizers. Maintain ambient temperature, observe FIFO, and handle with clean equipment to preserve resin quality. |
| Shelf Life | Hanwha HDPE 6590 generally has no fixed shelf life; store dry, cool, sealed, away from sunlight, and use within manufacturer-recommended period. |
In multi-cavity thin-wall injection moulding of dairy tubs, deli pots, and single-serve food service cups, the selection of Hanwha HDPE 6590 is evaluated through the interaction between melt flow rate, packing pressure, and the freeze-off layer that forms at the cavity wall. The grade is supplied with a nominal melt flow rate of 9.0 g/10 min at 190 °C / 2.16 kg (ASTM D1238, ISO 1133-1:2022) and a nominal density of 0.956 g/cm³ (ISO 1183-1:2019). In thin-wall tooling with wall thickness below 0.6 mm, the higher melt flow grade reduces cavity filling pressure compared with fractional-melt HDPE, but the same narrow molecular weight distribution that delivers fast filling shortens the packing window before the gate freezes. HDPE 6590 is therefore run with higher first-stage injection velocities of 80–150 mm/s and earlier switchover positions than a 2.0–4.0 g/10 min general-purpose injection grade, because late velocity-to-pressure transfer produces underpacked sidewalls and rim curl after demoulding.
Food-contact formulation is restricted to materials that comply with FDA 21 CFR 177.1520(c) 2.2 for olefin polymers and with Regulation (EU) 10/2011 for plastic food-contact materials. Colour concentrates are derived from a PE carrier within ±0.003 g/cm³ of the base resin density, and typical letdown is 2–4 wt%. For denesting and lid-opening torque control, a primary erucamide slip agent is incorporated at 0.05–0.15 wt% and a silica antiblock at 0.05–0.20 wt%, though dairy applications with direct fat contact are qualified on total migration values below the overall migration limit of 10 mg/dm² and on sensory taint testing under ISO 13302. Migration kinetics in polymer matrices are evaluated at 40 °C for 10 days using simulant D2 for fatty foods, and the grade is not qualified for hot-fill above 70 °C because additive migration accelerates beyond the compliance threshold.
Tool-specific processing on production-scale 32-cavity hot-runner systems uses a barrel temperature profile of 190 °C at the rear zone to 220 °C at the nozzle, with a mould cooling temperature held at 15–30 °C. Valve-gate timing is set to open at 0.10–0.15 s before injection to avoid stringing, and gate diameters are maintained at 0.8–1.2 mm for a nominal wall of 0.55–0.75 mm. Holding pressure is ramped from 35–45 MPa for 0.20 s to 15–25 MPa for the remainder of the holding phase; the final hold termination is determined by cavity pressure decay at the gate, not by timer, to reduce sink marks in the stacking ledge. Published data for fill speeds above 1,000 pots/min on this specific grade is limited, so injection moulders correlate cavity pressure integral with top-load retention rather than relying on datasheet flow length alone.
Terminal products are dairy tubs, deli containers, and single-serve food service cups that are filled on high-speed fill-seal lines and stored at 4–8 °C. Because the narrow-MWD grade has lower melt strength than extrusion-based alternatives, the moulded rim must not be designed as a deep snap undercut exceeding 0.30 mm without ejection assist; otherwise micro-cracking occurs at the undercut transition zone. Top-load and column crush performance are verified with force-at-deflection measurements under ASTM D642 and in-house flatness gauging, while the stackability tolerance across a 500 mm diameter lid seat is held to ±0.5 mm to avoid fill-line jams.
The trade-off in open-head pails is between spiral flow length during injection and the molecular chain entanglement retained after rapid cooling. A nominal melt flow rate of 9.0 g/10 min in HDPE 6590 allows earlier pressure drop in 5–25 L pail tools with wall sections of 1.8–2.5 mm, but the high flow is generated by narrow molecular weight distribution, not by chain scission; this gives lower low-temperature impact than a bimodal pipe or blow-moulding grade. Manufacturers that replace a 0.3 g/10 min grade with 6590 without adjusting wall thickness or gate location often observe rim cracking in –18 °C drop impact. The processing boundary is therefore wall-thickness-dependent: hubs and rim junctions below 1.8 mm should receive additional radii of at least 2.0 mm and an oversized gate of 2.5–3.5 mm to maintain a melt-flow length-to-thickness ratio below 150:1. Below that ratio, the frozen outer layer does not restrict the melt core sufficiently to cause high residual orientation at the rim.
Drop impact compliance for industrial pails is commonly assessed under ASTM D5276-19 with a 1.2 m or 0.8 m drop height determined by Packing Group II or III when the pail is certified as UN 1H2 under 49 CFR 178.603. Conditioning is often at –18 °C for 24 h before the drop, and the failure criterion is rupture or spillage through the closure. The injection moulding window for 6590 in pail production is a melt temperature of 210–230 °C, a mould temperature of 15–30 °C, a first-stage injection pressure of 60–80 MPa, and a hold pressure of 40–55 MPa maintained until the gate freeze point is detected by pressure decay at the nozzle, not by arbitrary timer. Packing time is typically 8–15 s for a 2.0 mm sidewall, and cooling time is set to 20–35 % of total cycle time to complete crystallisation before demoulding. Mould release is assisted by a central core ring with 0.5–0.8 mm vent depth and a minimum draft angle of 1.0° per side.
For outdoor-grade pails, the formulation includes a hindered amine light stabiliser at 0.10–0.30 wt%, a phenolic primary antioxidant at 0.04–0.08 wt%, and a phosphite process stabiliser at 0.05–0.10 wt%. If the pail is used for ultraviolet-sensitive adhesives or photocurable resins, carbon black is added at 1.5–2.5 wt% to achieve a maximum light transmittance of 0.2 % at 550 nm in a 0.5 mm compression-moulded plaque. The additive package is pre-dispersed as a masterbatch at 1–3 wt% in a PE carrier with a density of 0.945–0.955 g/cm³, and total filler plus pigment content is kept below 3.0 wt% to avoid a step reduction in weld-line Izod impact. The same formulation discipline applies to anti-static pails for powder handling: surface resistivity below 10^11 ohm/square is achieved with 0.5–2.0 wt% glycerol monostearate or ethoxylated amine anti-stat, but these additives lower ASTM D2463 drop impact at low temperature and should be qualified for each filling line.
Terminal products are 5 L to 25 L open-head pails for water-based coatings, adhesives, surface treatment chemicals, and dry food ingredients. Pails with in-mould label adhesion are run with label film melt point 5–10 °C below the cavity surface temperature to ensure bonding without blowholes. The lid seal channel is moulded with a tolerance of ±0.2 mm across the rim diameter, and the handle lugs are validated by a static load of 15 kg for 10 min without visible stress whitening. The high melt flow of HDPE 6590 reduces cycle time in thick-wall pail tools, but the low-temperature drop impact boundary requires that the pail designer not simply down-gauge the wall to offset higher resin cost; a 2.0 mm wall is the practical minimum for filled pails in refrigerated distribution.
Closure tools running 48-cavity stack configurations for non-carbonated still beverages, dairy powders, and dry nutritionals demand a different gate vestige and slit bridge discipline than thin-wall containers. The typical closure is a 38–48 mm screw cap with a wall thickness of 0.8–1.2 mm and a tamper-evident band joined by 8–12 slit bridges. HDPE 6590 is moulded on cold-runner or hot-runner stack tools with valve-gate drops of 0.6–1.0 mm diameter. Melt temperature is held at 200–220 °C, hot runner temperature at 210–240 °C, mould temperature at 10–20 °C, and back pressure at 0.5–1.0 MPa to maintain melt cushion and avoid screw decompression beyond 1.5 mm after recovery. The screw recovery time is a hidden cycle limit: at screw speeds above 80 rpm, frictional heating in the narrow-MWD melt can shift the effective melt temperature above 225 °C, causing slit bridge flash and increased gate blush.
Formulation for closures includes an erucamide slip agent at 0.05–0.15 wt% to reduce removal torque, but the migration of erucamide into the packaged dry powder is managed through a secondary barrier liner or by limiting total amide content to below 0.20 wt%. For closures requiring oxygen scavenging, an iron-based scavenger masterbatch is used at 1–3 wt%, but the high processing temperature can initiate premature scavenger activation; the melt residence time is therefore limited to ≤6 min and the screw speed is capped at 80 rpm. The use of slip aids above 0.15 wt% has been observed to reduce the opening torque below 0.8 N·m after steam retorting, which causes linerless closures to back off during distribution if the package is stored at 35 °C and 85 % RH. Flow and dispersion tests are run at each masterbatch change using 60 mesh screen pack filtration to ensure no undispersed slip-particle streaks enter the bridge zones.
Closure performance is measured by strip torque and reseal torque under ASTM D2063, and by dimensioned slit bridge fracture force. The process limit is derived from a torque ratio: continuous-thread closures should maintain a strip-to-application torque ratio of 1.5:1 to 2.0:1 after 24 h at 23 °C. Gate vestige dimensions above 0.15 mm on the top panel lead to stacking and capping rail misfills, so cavity-pressure transfer control is set at switchover from injection to hold at 85–90 % of peak cavity pressure. The narrow MWD of 6590 reduces short shots in thin bridge features, but the same chain structure gives reduced environmental stress crack resistance in contact with fatty food simulants; liners are required for oil-based dry foods when the package is subjected to prolonged headspace contact above 40 °C. The tamper-evident band hinge is qualified through a flex test of 10 cycles after 24 h of ethylene oxide sterilisation at 55 °C and 60 % RH to capture post-sterilisation embrittlement.
Terminal applications are closures for dry infant formula tins, spice jars, protein powder jars, and personal care jars where the package is not pressure-sensitive. Closures for carbonated soft drinks are excluded because HDPE permeation to CO₂ exceeds the acceptable shelf-life limit, and the tamper-evident band can undergo stress-whitening when the closure is exposed to carbonation pressure. The grade is also not recommended for continuous-thread pharmaceutical closures that require repeated autoclave cycles above 121 °C, because dimensional change at thread crests exceeds the allowed radial interference after 10 cycles.
| Application segment | Regulatory or standard anchor | Test condition or criterion | Specific method or clause |
|---|---|---|---|
| Dairy tubs and food service containers | FDA 21 CFR 177.1520(c) 2.2 | Olefin polymer food-contact use | FDA 21 CFR 177.1520(c) 2.2 |
| Dairy tubs and food service containers | Regulation (EU) 10/2011 | Overall migration limit 10 mg/dm² | EU 10/2011 Annex I and II |
| Open-head pails | UN 1H2 packaging performance | Drop height 1.2 m or 0.8 m at –18 °C | 49 CFR 178.603, ASTM D5276-19 |
| Closures for dry nutritionals | FDA 21 CFR 177.1520 | Food-contact olefin polymer | FDA 21 CFR 177.1520(c) 2.2 |
| Closures for dry nutritionals | ASTM D2063 | Strip torque and reseal torque | ASTM D2063-12 |
| Cold-chain crates and trays | ISO 8611-1:2011 | Stacked load deflection at 40 °C | ISO 8611-1:2011 |
| Housewares and institutional storage | REACH SVHC | SVHC content below 0.1 wt% | REGULATION (EC) 1907/2006 |
| Housewares and institutional storage | RoHS 2011/65/EU | Lead, cadmium, mercury, hexavalent chromium below restriction | Annex II |
| Automotive fluid reservoirs | EU ELV 2000/53/EC | Heavy metal restriction in automotive components | Annex II |
| Automotive fluid reservoirs | ISO 22088-3 | Stress cracking sensitivity in coolant ageing | ISO 22088-3:2006 |
Ventilated crate moulding for fish, meat, and dairy transport imposes a transition from ductile to brittle behaviour in the hinge and handle areas after repeated exposure to -20 °C cold stores. HDPE 6590 has a relatively low molecular weight for an injection HDPE grade, so its low-temperature impact is sensitive to wall thickness and knit-line position. Production-scale tools that place a cold slug well at the intersection of the base grid and the sidewall produce fewer brittle failures than tools that gate from the centre of the base. Gate locations are therefore set in the base grid node points, not in the sidewall, and weld lines are moved to the base perimeter where bending stresses during crate stacking are lower. The base grid webs are ribbed at 3.0 mm minimum thickness with 1.0 mm root radii, because sharp internal corners in the grid act as stress concentrators under frozen-food loading.
For a crate section of 2.5–3.5 mm nominal wall, the moulding window is a melt temperature of 200–230 °C, a mould temperature of 10–30 °C, and a first-stage injection pressure of 70–90 MPa to fill long radial flow paths before the mould surface freezes. Packing pressure is held at 45–60 MPa for 6–12 s depending on gate freeze, and the cooling time is determined by a maximum part ejection temperature of 70 °C, measured by infrared pyrometry at the four corners. Ejectors are spaced at 60–80 mm intervals across the base grid to prevent white stress marks. The shrinkage allowance is 1.5–2.0 % in the flow direction and 1.5–2.5 % in the transverse direction, following ASTM D955 after 48 h at 23 °C and 50 % RH. Shrinkage below 1.2 % indicates overpacking and creates residual stress that manifests as corner cracking when the crate is stacked in a cold store.
For cold-chain performance, the crate is drop tested at -18 °C per ASTM D5276 at a height determined by the pack weight, commonly 0.5–0.8 m for a 15 kg load. Food-contact versions require compliance with EU 10/2011 and FDA 21 CFR 177.1520 if the crate touches unpacked produce; cleaning resistance is tested by repeated exposure to 0.5 % sodium hypochlorite solution at 40 °C for 100 cycles, with a maximum weight loss of 0.05 %. Rigidity under stack load is evaluated by ISO 8611-1:2011 for plastic pallet and crate load-bearing, with the specific condition of 24 h stacked load at 40 °C not exceeding 60 % of the top crate deflection under 20 °C. Injection-moulded crates made from HDPE 6590 are not recommended for unsupported racking spans greater than 600 mm without steel reinforcement, because creep deflection under continuous load exceeds the recovery limit of the base grid.
Terminal products include ventilated fish crates, bakery trays, dairy transport crates, and returnable produce crates. A handle hinge design of 0.45–0.65 mm thickness at the flexural point is borderline; after repeated flexing at -10 °C, hinge crack propagation is observed if the hinge thickness exceeds 0.60 mm. The preferred hinge design is a living hinge with a radius of at least 0.30 mm and gate placement at the hinge centre, not at the hinge end. Returnable crate programmes require the part to tolerate pressure washing at 80–90 bar water pressure and 60 °C without surface embrittlement; the use of unstabilised regrind above 20 wt% shortens the cleaning-agent fatigue life and is therefore excluded from closed-loop production.
High-gloss storage totes and modular drawer systems require mould texture replication, low warp, and long-term static load stability, and HDPE 6590 is used in these applications when the design has a nominal wall of 1.2–2.0 mm and a surface area large enough to require multi-gate filling. The material is injected into textured cavity surfaces with 2–5 µm Ra grain depth, and the high melt flow at 9.0 g/10 min enables replication of texture without excessive injection pressure. However, the narrow molecular weight distribution of 6590 yields a packing-freeze transition that is narrower than a broader-MWD housewares grade; switchover from velocity to pressure control must occur before the melt front reaches 85 % of the cavity volume, or short-shot lines appear in the side wall. The gate count for a 45 L tote is normally 3–5 gates along the long axis, and gate diameters are kept between 1.0 mm and 1.8 mm to avoid jetting marks on smooth front panels.
The formulation for housewares is dominated by colour masterbatch at 2–4 wt% with a PE carrier density of 0.950–0.960 g/cm³ and a titanium dioxide content of 60–70 wt% in the masterbatch when high-gloss white or pastel colours are specified. For dark charcoal and black parts, carbon black is used at 0.5–1.0 wt%, and the masterbatch is dried at 80 °C for 2 h when the ambient relative humidity exceeds 60 % RH. Impact modification is rarely required with HDPE 6590 in parts above 1.5 mm wall thickness, but for thin drawer fronts below 1.2 mm, a metallocene LLDPE modifier at 5–10 wt% improves puncture resistance under ASTM D3763 while reducing modulus by 8–12 %. The modifier also reduces gloss, so it is restricted to internal surfaces or textured zones when surface appearance is a control point.
Tooling details for housewares are fixed by ejection and flatness constraints. Draft angles are set at 1.0–1.5° per side for textured walls, and ejector pins are sized to keep ejection force below 40 N/mm². Mould temperature is 20–40 °C, melt temperature 200–220 °C, and screw speed is limited to 60–100 rpm with back pressure 0.3–0.8 MPa. The mould cycle for a 45 L tote with 2.0 mm walls is typically 38–48 s; if the cooling time is reduced below 18 s, warpage across the long axis exceeds 1.2 % and the base grid rocks on a flat surface. Flatness is measured after 48 h at 23 °C / 50 % RH using a coordinate measuring machine with a tolerance of ±0.5 mm across a 500 mm span. Moulds with polished high-gloss surfaces maintain gloss stability for 50,000 cycles before re-polishing, but if the melt temperature exceeds 225 °C, plate-out from the colour masterbatch increases and gloss drop becomes visible after 5,000 cycles.
Terminal housewares are stackable storage totes, modular drawer frames, shoe racks, and institutional bins for laundry or waste handling. The grade is suitable for indoor use; outdoor use requires the UV additive package used in pail formulations and must be tested for colour change after 1,000 h of ASTM G154 cycle UV exposure. Products that bear static loads above 15 kg per level should have corner reinforcement ribs of at least 4.0 mm thickness to avoid creep deformation after 168 h at 40 °C. The use of regrind is limited to 20 wt% in visible surfaces and 40 wt% in internal webs; higher regrind content changes the melt flow number by more than 0.5 g/10 min and leads to inconsistent texture depth between production lots.
Non-pressurized windshield washer reservoirs, coolant overflow bottles, and auxiliary fluid tanks are injection moulded as two shells in HDPE 6590 and subsequently hot-plate or vibration welded. The grade’s narrow molecular weight distribution gives fast injection into shell tools with wall thickness of 2.0–3.0 mm, but the main processing constraint is weld joint melt strength. For vibration welding, the joint is designed as a shear joint with a land of 1.5–2.5 mm, a wall thickness at the joint of 2.0 mm minimum, and a flash trap of 1.0 mm depth. The welding amplitude is set at 0.8–1.8 mm at 200–240 Hz, with clamp pressure of 1.5–4.0 MPa, and collapse distance is monitored to stop welding at 1.0–1.8 mm axial displacement. Joint strength is considered acceptable when burst pressure exceeds 0.10 MPa for washer bottles and 0.05 MPa for coolant overflow tanks after welding.
The formulation for automotive reservoirs includes a primary antioxidant package of 0.10–0.20 wt% hindered phenol and 0.10–0.20 wt% phosphite, plus an acid scavenger such as zinc stearate at 0.05–0.10 wt% to reduce corroding species generated during ethylene glycol ageing. Carbon black is added at 0.2–0.5 wt% when the reservoir is exposed to underhood light, and a UV package of 0.15–0.30 wt% HALS is required for translucent reservoirs. Resistance to standard screenwash fluid is tested by immersion in 50/50 vol% water and methanol or isopropanol at 60 °C for 168 h, with maximum weight change of ±0.25 % and maximum tensile retention of 80 % under ISO 527-1/2. Coolant compatibility is measured in a 50/50 vol% ethylene glycol/water solution at 100 °C for 500 h; published data for this specific grade in extended coolant ageing is limited, so moulders use the general HDPE protocol from ISO 22088-3 to detect stress cracking in welded shells.
The injection moulding process uses a melt temperature of 210–230 °C, a mould temperature of 20–40 °C, and a hold pressure of 45–60 MPa for shells with 2.5 mm walls. The gate is placed in the weld joint face, not the vessel outer surface, so that any gate vestige is consumed in the weld collapse. Ejector pins with 6.0 mm minimum diameter are located adjacent to bosses for pump mounting, and the bosses receive heat-stake inserts with a boss wall thickness of 3.0–4.0 mm to avoid hoop stress cracking when the assembled reservoir is subjected to a 0.05 MPa leak test and vibration at 10–500 Hz with 3 g acceleration. Filled reservoirs are leak tested at 0.03–0.05 MPa for 30 s under water immersion, and any shell that shows white stress marks at the weld line after test is rejected because those marks are early indicators of coolant stress cracking.
Terminal products are windshield washer solvent tanks, coolant recovery tanks, and non-pressurized auxiliary fluid reservoirs for heavy truck or agricultural equipment. The part must not be used for pressurised brake fluid reservoirs or fuel vessels because HDPE does not provide a sufficient barrier for hydrocarbons and methanol-containing fuels, and the high flow injection grade has lower environmental stress crack resistance than high-molecular-weight blow-moulding grades under cyclic internal pressure. For hot-plate welded reservoirs, the plate temperature is set at 200–220 °C, the melt lip is 0.8–1.2 mm, and the joining pressure is 0.10–0.25 MPa; non-uniform melt lip height above 0.2 mm causes welding unevenness and a reduction in burst pressure of more than 30 % in post-ageing tests.
Competitive Hanwha HDPE 6590 prices that fit your budget—flexible terms and customized quotes for every order.
For samples, pricing, or more information, please contact us at +8618136850665 or mail to admin@ascent-chem.com.
We will respond to you as soon as possible.
Tel: +8618136850665
Email: admin@ascent-chem.com
Flexible payment, competitive price, premium service - Inquire now!