| HS Code | 537654 |
As an accredited Hanwha HDPE 7600T factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Hanwha HDPE 7600T comes in 25 kg woven bags, or 1,000 kg jumbo bags, suitable for industrial bulk handling. |
| Container Loading (20′ FCL) | Hanwha HDPE 7600T: 20′ FCL container loading, palletized 25 kg bags, shrink-wrapped, securely stowed for export shipment. |
| Shipping | Hanwha HDPE 7600T is typically shipped as non-hazardous polyethylene pellets in 25 kg bags, jumbo bags, or bulk trucks/containers. It requires no dangerous goods classification. Store in a cool, dry, ventilated area, protected from moisture, direct sunlight, contamination, and ignition sources. Handle with normal industrial hygiene. |
| Storage | Store indoors in a cool, dry, well-ventilated area, away from direct sunlight, heat, ignition sources, and strong oxidizers. Keep original bags or containers tightly closed on pallets, off the floor, to prevent moisture, dust, and contamination. Maintain clean conditions and use first-in, first-out rotation. Follow the SDS and local regulations. Do not store near food, feed, or drinking water. |
| Shelf Life | Hanwha HDPE 7600T has no fixed shelf life; store sealed in a cool, dry place away from sunlight and contaminants. |
Conformance to UN 1H1/Y1.5/200 type approval for Packing Group II liquids represents the highest-volume downstream application for Hanwha HDPE 7600T in Asian and Middle Eastern blow molding facilities. The certification matrix under Chapter 6.1 of the UN Model Regulations mandates a drop test from 1.2 m after conditioning at -18°C for 24 h, a hydraulic internal pressure resistance test at 250 kPa for 30 min, and a leakproofness test at 30 kPa air pressure without deformation exceeding 2% of the original dimensions. ADR 6.1.5 additionally requires environmental stress crack resistance testing per ASTM D1693-15 Condition B (50°C, 10% Igepal CO-630 aqueous solution), with an F50 failure time not less than 600 h for the material to qualify for dangerous goods packaging. HDPE 7600T, with a density of 0.955 g/cm³ per ASTM D1505 and a high-load melt index of 6.5 g/10 min at 190°C/21.6 kg per ASTM D1238, typically delivers ESCR F50 values between 800 h and 1,200 h under Condition B depending on catalyst residue concentration and molecular weight distribution shift across production campaigns. The notched Izod impact strength of 30–35 kJ/m² at 23°C (ASTM D256) and retained brittle-ductile transition at temperatures below -20°C are the governing properties that prevent catastrophic lid-to-body weld splitting during cold-conditioned drop testing.
The formulation for UN-certified drum production adds 2.0–2.5 wt% carbon black masterbatch (40% loading in LLDPE carrier) to virgin HDPE 7600T, with regrind from deflashing and start-up scrap reincorporated at 15–25 wt% provided the regrind has not exceeded 240°C cumulative thermal history. Facilities operating under tropical export conditions increase carbon black loading to 3.0 wt% for extended UV resistance, but loadings above this threshold produce filler agglomeration that reduces Charpy impact strength at -20°C by 15–20%, a documented failure mode in UN drop testing at -18°C when drums stored outward in refrigerated containers develop micro-voids at pigment aggregates. The antioxidant system is incorporated at the powder production stage and consists of 0.08–0.12 wt% pentaerythritol tetrakis[3-(3,5-di-tert-butyl-4-hydroxyphenyl)propionate] primary antioxidant combined with 0.08–0.12 wt% tris(2,4-di-tert-butylphenyl) phosphite secondary antioxidant at a 1:1 ratio; addition of supplemental antioxidant masterbatch during drum molding is not recommended because localized concentration gradients at the feed throat produce melt temperature variation exceeding ±5°C at the die exit.
Accumulator-head extrusion blow molding machines for 200L drum production require single-screw extruders with screw diameter 100–120 mm, axial length-to-diameter ratio 25:1 to 28:1, and grooved feed bushing to stabilize throughput at 350–500 kg/h without surging. Melt temperature measured at the die exit is maintained at 190–215°C; exceeding 230°C initiates thermo-oxidative chain scission evidenced by melt pressure fluctuation amplitude greater than ±2.0 MPa and surface melt fracture on the parison. The accumulator head capacity for a single drum parison ranges from 18–30 kg, with parison length programmed between 1,400–1,800 mm. Programmable die gap control with 0.1 mm resolution is mandatory because wall thickness distribution across the drum body—1.8–2.2 mm at the chime area and 1.4–1.6 mm at the mid-body—directly determines drop test outcomes on the bottom chime weld. Blow pressure is set at 8–10 bar, mold cooling water at 10–15°C, and clamping force at 300–400 tons for the single-cavity mold to prevent flash deformation during pinch-off welding at the drum base. Cycle times range from 240–360 s, with internal air cooling using refrigerated compressed air at -15 to -20°C applied during the post-blow phase to reduce surface porosity at the chime junctions. Finished product configurations include UN 1H1 closed-head drums of 200L nominal capacity (actual brim capacity 216–220L), UN 1H2 open-head drums of 200–220L with removable lid and lever-lock closure ring, and the L-ring drum variant of 200L featuring integrally molded handling rings for roll-stability in maritime cargo holds. The explicit operational boundary for this application is chemical compatibility: liquids containing aromatic hydrocarbons or chlorinated solvents at concentrations exceeding 2% by volume reduce effective ESCR by more than 50% within 6 months at 40°C, requiring fluorination, sulfonation, or a liner insertion before the drum is certified for such cargoes.
In automotive fuel tank manufacture, Hanwha HDPE 7600T functions as the structural outer and inner layers within a six-layer co-extrusion blow molding stack specified to meet evaporative emission regulations in the United States, European Union, and China. The layer architecture comprises an outer structural layer of HDPE 7600T at 12–18% of total wall thickness, a regrind layer at 35–45%, a maleated polyethylene adhesive tie layer at 2–3%, an EVOH barrier layer at 2.5–4.0%, a second adhesive tie layer at 2–3%, and an inner structural layer of HDPE 7600T at 30–40%. The EVOH grade for gasoline and ethanol-blended fuel service contains 27–32 mol% ethylene and exhibits a melt flow rate of 1.5–5.5 g/10 min at 210°C/2.16 kg per ISO 1133-1:2022. Adhesive grades with 1.0–2.0 wt% maleic anhydride grafting provide interlayer peel strength exceeding 40 N/25 mm per ASTM D1876. The co-extrusion die head uses thermally separated spiral mandrel channels because the HDPE structural layers process at 215–235°C while the EVOH layer must remain at 195–210°C to prevent acetic acid generation from thermal decomposition above 230°C. This thermal offset of 15–40°C between adjacent layers is the defining process constraint for viscosity matching at the die exit; failure to maintain channel separation produces interfacial instability manifesting as layer thickness variation exceeding ±15% across the tank wall. Regulatory compliance for this segment is anchored to UN ECE R34 Annex 5, which requires the assembled fuel tank to withstand flame exposure for 120 s without leakage; U.S. FMVSS 301, which mandates survival of an 80 km/h moving barrier rear impact followed by static rollover without fuel spill; and CARB LEV III evaporative emission limits imposing a hydrocarbon permeation maximum of 15 mg/m²/day at 40°C measured per SAE J1737. HDPE 7600T is processed on continuous-parison six-layer co-extrusion machines with the HDPE extruder operating at 250–400 kg/h output, screw diameter 90–120 mm, and melt temperature 215–235°C at the adapter. The EVOH extruder is independently controlled at 195–210°C, adhesive layers at 190–220°C, and regrind layer at 200–220°C. Die gap programming maintains total wall thickness of 2.5–4.5 mm depending on tank capacity; localized corner thinning below 2.0 mm produces permeation hot spots that fail SAE J1737 after the 3-week conditioning period. Mold temperature is held at 15–25°C, blow pressure at 8–12 bar, and cycle time for a 60L tank ranges from 140–180 s. Flash ratio after automatic deflashing averages 25–40%, and the flash is granulated and reintroduced into the regrind layer at up to 30 wt% without measurable loss of tensile yield strength, which remains above 25 MPa per ASTM D638-14 Type IV. Finished products include 40–80L saddle tanks for passenger sedans, 70–110L tanks for SUV and light truck platforms, and 25–50L auxiliary tanks for hybrid electric vehicles where reduced fuel volume necessitates equivalent permeation control due to lower purge rates. A documented operational boundary is biodiesel compatibility: exposure of HDPE 7600T to fuel blends exceeding B20 (20% fatty acid methyl ester content) at 60°C for 1,000 h produces tensile yield strength loss of up to 25% due to plasticization of the amorphous phase and increased oxygen permeability, rendering the tank non-compliant with SAE J1737 before the end of the regulatory durability period.
The 1000L composite intermediate bulk container inner bottle presents a large-part blow molding application where the parison mass of 30–55 kg creates a gravitational sag challenge that defines the entire process envelope. Hanwha HDPE 7600T, with a high-load melt index of 6.5 g/10 min at 190°C/21.6 kg (ASTM D1238) and a low-load melt index of approximately 0.2–0.3 g/10 min at 190°C/5 kg, provides the melt strength required to limit parison elongation under self-weight; production-scale observation on twin-station accumulators records parison sag velocity increasing from 8–12 mm/s at ejection initiation to 25–35 mm/s after 15 s of hang time, which establishes the maximum transfer and mold-close interval of less than 5 s before wall thickness deviation exceeds the ±0.5 mm tolerance necessary to maintain the 3.0 mm minimum mid-body wall. Type approval for UN 31HA1 composite IBCs requires conformance to Chapter 6.5 of the UN Model Regulations, ADR 6.5, and ISO 16104, including a drop test from 1.2 m at -18°C (Packing Group II) onto the most vulnerable bottom corner intersection, a hydraulic internal pressure test at 100 kPa for 10 min, a stacking test at 1.8 times the maximum permissible gross mass for 24 h, and a vibration test per ISO 2247. The ESCR requirement for IBC inner bottles subjected to aggressive chemical cargoes is specified as an F50 minimum of 1,000 h under ASTM D1693 Condition C (50°C, 100% Igepal CO-630), which 7600T meets without modification; however, when the bottle is filled with aromatic hydrocarbon mixtures exceeding 10% by volume, the effective ESCR decreases to approximately 300–400 h, and the end-user specification must include either a fluorinated surface treatment or an alternative barrier architecture to maintain certification validity for the 2.5-year periodic inspection interval mandated by ADR 6.5.4.
The compounding specification for IBC inner bottles uses 98–100 wt% virgin HDPE 7600T with a UV stabilization package comprising 2.0–2.5 wt% carbon black masterbatch and 0.1–0.2 wt% hindered amine light stabilizer masterbatch (≥ 15% active ingredient). Recyclate incorporation is excluded from UN-certified IBC inner bottles unless full re-approval testing is conducted under the UN marking scheme, because the traceability chain for recycled material cannot satisfy the lot-to-lot property consistency requirements of ADR 6.5.2.1. The blow molding machine specification for 1000L bottles requires an extruder screw diameter of 120–150 mm, L/D ratio 25:1, and an accumulator head capacity of 35–60 kg with single or dual parison outlet. Melt temperature at the die is maintained at 185–210°C; the lower bound prevents excessive parison sag during the 5 s transfer interval, while the upper bound avoids oxidative degradation indicated by an increase in melt flow rate exceeding 10% after 3 h residence time in the accumulator. The critical process conflict is the interaction between parison programming resolution and gravitational thinning: the 100-point die gap programming sequence must compensate for weight-induced elongation along the 1,800–2,000 mm parison length, and any programming deviation exceeding ±0.5 mm in the mid-body region produces wall thickness below 3.0 mm, which is the minimum required to pass the hydraulic pressure test at 100 kPa without measurable deformation. Blow pressure is set at 8–10 bar, mold cooling water at 10–15°C, and internal post-cooling using refrigerated compressed air at -10°C for 120–180 s before demolding. Total cycle time for 1000L bottles ranges from 420–600 s. Finished products include UN 31HA1 composite IBC inner bottles of 1,000L nominal capacity (brim capacity 1,060–1,080L), 1,250L chemical IBC bottles, and 820L food-grade IBC bottles for edible oil and syrup logistics where FDA 21 CFR 177.1520 compliance is documented at the resin level. The operational boundary relevant to this application is the maximum continuous service temperature: prolonged exposure of 7600T bottles to cargoes at temperatures exceeding 60°C produces creep deformation of the sidewall under hydrostatic load, reducing service life below the 5-year periodic inspection interval specified in ADR 6.5.4.3.
| Test Requirement | UN 1H1 Drum (200L) | UN 31HA1 IBC (1000L) | UN 3H1 Jerrycan (20L) |
|---|---|---|---|
| Drop height (PG II) | 1.2 m at -18°C | 1.2 m at -18°C | 1.2 m at -18°C |
| Hydraulic pressure | 250 kPa, 30 min | 100 kPa, 10 min | 100 kPa, 30 min |
| Leakproofness | 30 kPa air, 5 min | 30 kPa air, 5 min | 30 kPa air, 5 min |
| Stacking load | 3.0 m equivalent, 28 d at 40°C | 1.8× gross mass, 24 h | 3.0 m equivalent, 28 d at 40°C |
| ESCR minimum (ASTM D1693) | F50 ≥ 600 h, Condition B | F50 ≥ 1,000 h, Condition C | F50 ≥ 200 h, Condition A |
| Regrind allowance | 15–25 wt% | 0 wt% (unless re-approved) | 10–15 wt% |
Agrochemical packaging—specifically jerrycans for concentrated emulsifiable concentrates, suspension concentrates, and water-dispersible granule formulations—imposes simultaneous demands on environmental stress crack resistance, permeation resistance, and stack load-bearing capacity that determine both formulation selection and mold design. Hanwha HDPE 7600T is processed in this segment under UN 3H1 type approval for Packing Group II and III liquids. The certification matrix includes a drop test from 1.2 m (PG II) or 0.8 m (PG III) at -18°C, a hydrostatic pressure test at 100 kPa for 30 min, and a stacking test performed at 40°C for 28 days under a superimposed load equivalent to 3.0 m of stacked filled containers. The ESCR requirement for agrochemical jerrycans is specified per ASTM D1693 Condition A (50°C, 10% Igepal CO-630) with an F50 minimum of 200 h; 7600T delivers F50 values in the range 400–600 h under Condition A based on public technical datasheet data, providing a safety margin for formulations containing aromatic solvents such as xylene or trimethylbenzene that reduce effective ESCR by 40–70% during contact service. The notched Izod impact strength of 30–35 kJ/m² at 23°C (ASTM D256) ensures that the pinch-off weld at the jerrycan base and handle attachment points withstands the -18°C drop test without brittle fracture, which is the most common failure mode recorded on production-scale shuttle machines when lower-molecular-weight HDPE grades are substituted.
The standard compounding ratio for 20–30L jerrycans consists of virgin HDPE 7600T at 95–97 wt%, carbon black masterbatch (40% loading in LLDPE carrier) at 2.0–2.5 wt%, and a UV stabilizer masterbatch containing 10–15% hindered amine light stabilizer at 0.5–1.0 wt%. This formulation achieves a UV service life of 3 years in outdoor storage per ASTM G154 Cycle 1 testing, defined as retention of 70% of original tensile elongation at break after 1,000 h of accelerated weathering. For organophosphate or carbamate insecticide formulations with high polarity and surfactant loading, a dual-layer jerrycan construction incorporating 3–5% polyamide barrier in the inner layer is substituted for the monolayer configuration; in this architecture, 7600T serves as the outer structural layer at 90–95% of total wall thickness, the polyamide barrier provides an internal layer at 5–10% of wall thickness, and a maleated polyethylene tie layer at 1–2% of wall thickness bonds the two polymer phases. The co-extrusion die head for dual-layer production requires separate extruders for HDPE (65–90 mm, melt temperature 175–195°C) and polyamide (45–60 mm, melt temperature 220–245°C), with the thermal offset managed through a thermally isolated die channel system to prevent polyamide crystallization at the HDPE interface before the melt leaves the die exit.
Production equipment for monolayer agrochemical jerrycans consists of single-station or twin-station shuttle blow molding machines with extruder screw diameters of 65–90 mm, L/D ratio 24:1, and shot capacities of 1.5–3.0 kg for 20L containers. Melt temperature at the die is maintained at 175–195°C, lower than for drum-scale applications because the reduced wall thickness (1.0–1.5 mm for 5L containers, 1.8–2.5 mm for 25L containers) increases cooling rate and narrows the hot-tack window for pinch-off welding; weld-line temperature at mold closure must remain above 135°C to achieve full intermingling at the base pinch-off, which limits the transfer time to 3–5 s on shuttle machines. Blow pressure is set at 6–8 bar, mold cooling water temperature at 8–12°C, and cycle time for a 20L jerrycan falls within 45–65 s on twin-station equipment. Deflashing is performed automatically with pneumatic trimming stations, and flash is granulated and reintroduced at 10–15 wt% into the outer layer only to maintain inner-layer purity for food-contact-adjacent applications where cross-contamination is excluded by process validation. Finished product types include 1L and 5L bottles for household or institutional pesticide concentrates, 10L and 20L tight-head UN-certified jerrycans for agricultural distribution networks, and 25L open-head pails for solid or gelled formulations. A documented operational boundary is the incompatibility of 7600T with formulations containing cyclohexanone or dimethylformamide at concentrations exceeding 5% by volume: ASTM D543 immersion testing demonstrates that these aggressive solvents induce surface crazing and ESCR reduction within 72 h at 23°C, and the jerrycan must be upgraded to a co-extruded barrier structure with EVOH or polyamide inner layer, or an alternative polymer system with higher solvent resistance.
Marine navigation buoys and aquaculture flotation structures fabricated from Hanwha HDPE 7600T operate in a service environment defined by simultaneous ultraviolet degradation, saltwater exposure, low-temperature impact during storm events, and continuous flexural fatigue from wave action. The material selection rationale for this application centers on the combination of notched Izod impact strength of 30–35 kJ/m² at 23°C per ASTM D256 and environmental stress crack resistance exceeding 600 h under ASTM D1693 Condition B; both properties are retained after prolonged seawater immersion because high-density polyethylene absorbs less than 0.01% water by weight, eliminating the hydrolytic degradation mechanism that affects engineering thermoplastics in marine service. The compounding sequence for UV-stabilized marine-grade product incorporates 2.3–2.7 wt% carbon black masterbatch (particle size 20–30 nm, 40% loading in LLDPE), 0.15–0.25 wt% hindered amine light stabilizer masterbatch (15% active ingredient), and 0.05–0.10 wt% phenolic-phosphite antioxidant blend at a 1:1 ratio. Carbon black loading below 2.0 wt% yields inadequate UV opacity for the 5-year service life required by IALA navigational buoy procurement specifications, while loading above 3.0 wt% produces measurable agglomeration that reduces low-temperature Charpy impact strength by 10–18% at -20°C, a critical failure mode for buoys deployed in northern-latitude winter conditions where impact with hull ice or mooring chains occurs at temperatures below -15°C. The optimal loading window of 2.3–2.7 wt% balances these competing constraints and is validated through ASTM G154 Cycle 1 accelerated weathering with a requirement of retaining 70% of original tensile elongation after 2,000 h.
The processing route is divided between large-scale blow molding for hollow buoy bodies of 500–3,000L displacement and rotational molding for multi-lobed aquaculture floats of 50–300L where uniform wall thickness is less critical than stress concentration avoidance. The blow molding route uses accumulator-head machines with extruder diameter 100–120 mm, melt temperature 190–210°C, die gap 3–7 mm for wall thickness of 8–15 mm, and blow pressure at 9–11 bar. The mold cooling cycle is extended to 60–90 min with internal air circulation to prevent shrinkage-induced warpage at the mooring attachment boss, which requires a wall thickness of 20–30 mm and is formed by a separate pinch-off insert. The rotational molding route employs 7600T powder ground to 35–60 mesh (250–500 µm particle size distribution), with powder flow characteristics per ASTM D1895 Method A dry flow of 28–32 s/50 g and bulk density of 0.44–0.48 g/cm³. Oven temperature is maintained at 280–320°C, mold rotation ratio at 4:1 (major axis to minor axis), and total cycle time at 45–60 min. After demolding, buoy bodies are filled with closed-cell polyurethane foam density 35–60 kg/m³ and water absorption below 3% per ASTM D2842 using a two-component injection process. Finished products include IALA-compliant navigation buoys of 1,000–5,000L displacement with integral mooring shackle bosses, aquaculture cage floats in cylindrical or annular configurations of 50–300L, pontoon dock modules of 500–2,000L each, and split-collar dredge pipe floats of 200–500L. The operational boundary for marine service is defined by the creep modulus at elevated temperature: continuous exposure above 55°C (e.g., deck-stored floats in tropical sunlight) produces time-dependent deformation at the mooring attachment, and procurement specifications typically cap continuous service temperature at 50°C for load-bearing buoy structures to maintain dimensional stability within the 5-year service interval.
Small-engine fuel tanks for portable generators, chainsaws, brush cutters, and outboard marine engines represent a segment where fluorinated monolayer HDPE is selected over multilayer co-extruded structures due to part complexity, low shot weight economics, and the prohibitive tooling cost of six-layer die heads for small-volume production runs. Hanwha HDPE 7600T serves as the substrate for post-molding fluorine gas treatment, a surface fluorination process that replaces alkane chain segments and hydroxyl end-groups at the polymer surface with carbon-fluorine bonds to create a barrier layer of 50–100 nm thickness with fluorine incorporation levels of 20,000–40,000 ppm at the immediate surface. The regulatory framework includes the U.S. EPA evaporative emission standards for small off-road engines under 40 CFR Part 1054, which set a hydrocarbon permeation requirement of 15 g/m²/day at 40°C for fuel tanks, and CARB evaporative emission regulations for small off-road equipment. The fluorination treatment achieves a 10–100 times reduction in hydrocarbon permeation versus untreated HDPE, bringing gasoline permeation to below 1.0 g/m²/day at 40°C per ASTM D3985; published data for fluorinated HDPE 7600T specifically is limited, but the permeation reduction range is consistent with surface fluorination literature across high-density polyethylene grades with comparable density and molecular weight parameters.
The base formulation for fluorinated fuel tanks uses 98–100 wt% HDPE 7600T with no barrier additives; colored tanks incorporate 1–2 wt% carbon black or pigment masterbatch, with the caveat that pigment surface migration during molding can inhibit subsequent fluorination uniformity and must be eliminated through low-migration pigment selection validated by X-ray photoelectron spectroscopy surface analysis after treatment. Blow molding conditions mirror those for small monolayer containers: extruder screw diameter 50–80 mm, L/D ratio 22:1 to 25:1, melt temperature 180–200°C, die gap 1.0–2.0 mm, blow pressure 6–8 bar, and cycle time of 50–75 s for a 5–10L generator tank. The critical process control parameter is the surface cleanliness of the mold cavity: residual mold release agent or condensation contamination persists on the HDPE surface and prevents uniform fluorination, resulting in localized permeation failures detected only after the 3-week SAE J1737 conditioning period when the full fuel swelling equilibrium is reached. The fluorination process is executed either inline during blow molding, where fluorine gas at 0.1–0.5% concentration in nitrogen carrier is introduced into the blowing air stream with reaction time of 15–60 s, or offline in a batch fluorination chamber at 25–50°C for 2–4 h with fluorine concentration ramped from 0.05% to 1.0% to control reaction exotherm. Batch fluorination chambers are constructed of 316L stainless steel with vacuum capability to 10 mbar absolute, and fluorine gas detection systems with alarm thresholds at 0.1 ppm are mandatory per ACGIH exposure limit of 1 ppm ceiling. Finished products include portable generator fuel tanks of 3–8L capacity, chainsaw and brush cutter handle-integrated tanks of 0.5–1.5L, outboard engine portable tanks of 25–50L, and auxiliary diesel storage tanks for compact agricultural tractors of 15–30L. An explicitly documented operational boundary applies to the upper service temperature of fluorinated 7600T: the fluorinated surface layer begins thermal desorption above 80°C, releasing hydrogen fluoride in catalytic concentrations, which limits the application to ambient-temperature fuel storage and excludes under-hood installation locations where operational temperatures exceed 70°C during sustained engine load.
| Blow Molding Parameter | 200L Drum (Scenario 1) | Automotive Fuel Tank (Scenario 2) | 1000L IBC Bottle (Scenario 3) | 20L Jerrycan (Scenario 4) | Small Fuel Tank (Scenario 6) |
|---|---|---|---|---|---|
| Extruder screw diameter | 100–120 mm | 90–120 mm | 120–150 mm | 65–90 mm | 50–80 mm |
| Melt temperature | 190–215°C | 215–235°C (HDPE layer) | 185–210°C | 175–195°C | 180–200°C |
| Die gap | 2.0–5.0 mm | 1.5–2.5 mm | 3.0–6.0 mm | 1.5–3.0 mm | 1.0–2.0 mm |
| Blow pressure | 8–10 bar | 8–12 bar | 8–10 bar | 6–8 bar | 6–8 bar |
| Cycle time | 240–360 s | 140–180 s | 420–600 s | 45–65 s | 50–75 s |
| Parison mass | 18–30 kg | 3–8 kg | 30–55 kg | 1.5–3.0 kg | 0.5–1.5 kg |
| Regrind maximum | 25 wt% | 30 wt% | 0 wt% | 15 wt% | 10 wt% |
Stationary vertical storage tanks for chemical dosing, water treatment, and industrial liquid containment manufactured from Hanwha HDPE 7600T fall under the regulatory purview of EN 13575 (stationary thermoplastic tanks for above-ground storage), ASTM D1998 (polyethylene upright storage tanks), and, for installations in German water-protection areas, the DIBt general technical approval requirements for storage of water-polluting liquids. The material's suitability for this application is validated through ASTM D543 immersion testing, which establishes chemical resistance factors for specific fluids at 23°C and 60°C over 30 days; for 7600T, the chemical resistance factor against sodium hypochlorite (15% active chlorine), ferric chloride (40%), and sulfuric acid (98%) at 23°C is 1.0, indicating no significant property loss, while exposure to sodium hydroxide at 50% concentration and 60°C requires derating to 50% of the room-temperature allowable hoop stress due to amorphous phase plasticization. The compounding specification for storage tank applications adds 2.0–2.5 wt% carbon black masterbatch to virgin 7600T for UV protection of outdoor installations, and an antioxidant package of 0.1–0.2 wt% (phenolic primary plus phosphite secondary at 1:1 to 1:2 ratio) to suppress thermo-oxidative degradation during extended mold residence times required by thick-wall sections.
Large blow molding equipment for storage tank production requires extruder screw diameters of 100–150 mm with grooved feeding sections and accumulator head capacities of 30–100 kg to deliver single or dual parisons. Melt temperature is constrained to 180–205°C, and the die gap is programmed between 3–8 mm to produce wall thicknesses of 8–20 mm; the pinch-off weld at the tank base and top is the primary failure location under hydrostatic load, and 7600T's high melt strength maintains weld-line integrity at pinch temperatures of 135–160°C during mold closure. Mold cooling uses chilled water at 10–15°C, with cooling time extending to 20–45 min for wall thicknesses exceeding 15 mm; premature demolding produces post-mold shrinkage of 1.5–2.0% in the axial direction, which introduces residual stress at the molded-in flange and increases the probability of environmental stress cracking at the bolt circle perimeter. Finished product configurations include vertical cylindrical tanks of 500–5,000L capacity with flat-bottom, cone-bottom, or sloped-bottom geometry, double-wall containment tanks where the inner 7600T wall is separated by an interstitial leak-detection space from the outer structural wall, and cylindrical dosing tanks for municipal water treatment plants requiring NSF/ANSI 61 certification for drinking water system components. The operational boundary that must be communicated to end-users is the upper continuous service temperature of 40°C for full chemical resistance rating; operation at 50–60°C reduces the allowable hoop stress by 50% per the derating factors specified in EN 13575, and continuous storage of fluids with specific gravity exceeding 1.5 requires a tank wall thickness increase above 20 mm or a change to a cross-linked polyethylene specification to prevent creep rupture within the 15-year design life referenced in ASTM D1998.
Competitive Hanwha HDPE 7600T 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!