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SECCO (Shanghai Secco) HDPE HD5502AA

    • Product Name: SECCO (Shanghai Secco) HDPE HD5502AA
    • Factroy Site: Yudu County, Ganzhou, Jiangxi, China
    • Price Inquiry: admin@ascent-chem.com
    • Manufacturer: Ascent Petrochem Holdings Co., Limited
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    Specifications
    HS Code 256595
    Density 0.955 g/cm³
    Melt Flow Rate 190 C 2 16 Kg 0.35 g/10 min
    Tensile Strength At Yield 28 MPa
    Tensile Strength At Break 30 MPa
    Elongation At Break >600%
    Flexural Modulus 1200 MPa
    Vicat Softening Temperature 127°C
    Melting Temperature 134°C
    Environmental Stress Crack Resistance Escr >1000 h
    Hardness Shore D 65
    Brittleness Temperature <-70°C
    Water Absorption <0.01%

    As an accredited SECCO (Shanghai Secco) HDPE HD5502AA factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing SECCO HD5502AA HDPE comes in 25 kg PP woven bags or 1,000 kg jumbo bags, shrink-wrapped for shipment.
    Container Loading (20′ FCL) Typically, one 20′ FCL holds 25 MT of SECCO HDPE HD5502AA in 25 kg bags, securely stowed for export.
    Shipping SECCO (Shanghai Secco) HDPE HD5502AA is a non-hazardous high-density polyethylene resin. It is normally shipped in 25 kg PE bags or 500–1000 kg jumbo bags via general cargo. Keep dry, away from heat, sunlight, and oxidizers; no UN hazard class required. Standard dry-van or container transport is suitable.
    Storage Store SECCO HDPE HD5502AA in a cool, dry, well-ventilated warehouse, away from direct sunlight, heat, sparks, and flames. Keep bags or containers sealed, clean, and undamaged; place on pallets off the floor. Avoid moisture, dust, oils, and other contaminants. Maintain stable stacking, observe FIFO, and protect from UV. Follow the manufacturer’s SDS. Do not store near strong oxidizers or incompatible chemicals.
    Shelf Life SECCO HDPE HD5502AA has no fixed shelf life; store cool, dry, sealed, away from sunlight, heat, and contaminants for indefinite stability.
    Application of SECCO (Shanghai Secco) HDPE HD5502AA

    What Constraints Binder Selection and Parison Programming in Monolayer Fuel Tank Blow Molding with HD5502AA?

    SECCO HD5502AA is a bimodal high-density polyethylene blow moulding grade with a published density of 0.948 g/cm³ and a melt flow rate of 5.0 g/10 min under 190 °C/21.6 kg according to ISO 1133-1:2022. Its use in automotive petrol and diesel fuel tanks is not determined solely by these values; the decisive variables are parison sag resistance, pinch-off weld integrity, and long-term environmental stress crack resistance in contact with sour fuel, fuel condensate, and road de-icing agents. In monolayer tank production, the grade is processed on accumulator-head extrusion blow moulding machines with shot capacities between 20 L and 60 L, using a barrier screw with an L/D ratio of 24:1 to 30:1 and a grooved feed section capable of maintaining output stability below 15 rpm screw speed. The processing window is bounded at the lower end by melt fracture and weld line delamination below 190 °C, and at the upper end by oxidative degradation and odour formation above 240 °C or at residence times exceeding 12 min. Parison programming must compensate for die swell values of approximately 20–35% and for parison sag that increases with shot size; mold clamping force for fuel tank shells typically ranges from 1,200 kN to 3,500 kN depending on projected area and pinch-off geometry. Production-scale failure modes observed on accumulator-head lines include parison length variation greater than ±2% from shot to shot, which produces cap-thickness asymmetry at the fuel pump flange, and cold weld line formation when the pinch-off zone cools below 140 °C before mold closure.

    Regulatory validation for automotive fuel tanks draws on UN ECE R34.02 for fire resistance and mechanical strength after impact, FMVSS 301 for fuel system integrity in crash conditions, and evaporative emission limits under EPA 40 CFR Part 86.1811-04 and CARB LEV III. Converter formulations encountered on fuel tank lines typically consist of a carbon black masterbatch at 2.0–2.5 wt% to obtain a carbon black content of 2.0–2.5 wt% by ASTM D1603, a hindered phenolic/phosphite antioxidant package at 0.15–0.30 wt%, an acid scavenger at 0.05–0.10 wt%, and a fluoropolymer processing aid at 0.02–0.05 wt% to delay melt fracture on long parison trails. The terminal component is a monolayer petrol or diesel fuel tank of 40–80 L capacity, black in colour, with hot-plate-welded filler necks, fuel pump flanges, and roll-over valves. A monolayer HD5502AA tank is not a replacement for an EVOH coextruded barrier structure under stricter CARB LEV III permeation limits unless fluorination or another secondary barrier treatment is applied; published data for untreated monolayer permeation of this specific SECCO grade in full-vehicle diurnal cycles is limited and must be validated on the converted tank assembly.

    Standard / methodTest conditionRole in automotive fuel tank validation
    ISO 1183-1:2019Method D, 23 °CDensity specification for lot acceptance
    ISO 1133-1:2022190 °C, 21.6 kgMelt flow rate for parison sag control
    ASTM D638-14Type IV, 50 mm/minTensile yield and elongation at break
    ASTM D1693-15Condition B, 10% Igepal, 50 °CEnvironmental stress crack resistance at welded seams
    ISO 179-1/1eA-40 °CNotched impact strength at cold conditions
    ASTM D648-180.455 MPaHeat deflection temperature under flexural load

    UN 3H1 Certification Pathway for Stress-Crack-Resistant Jerricans

    The grade is used in extrusion blow moulded open-head and tight-head containers that are certified for dangerous goods transport under UN Model Regulations Chapter 6.1 and, in the United States, 49 CFR §178.509. The critical material requirement is not tensile strength but resistance to environmental stress cracking in the presence of surfactants, aliphatic solvents, and oxidizing agents; the test method commonly invoked is ASTM D1693-15 Condition B in 10% Igepal CO-630 at 50 °C. For jerrican production lines, a continuous shuttle blow moulding machine with a 2–4 cavity mold and a parison weight of 1.2–2.8 kg for 10–30 L containers is typical. The formulation addition level for colour is 1.0–1.5 wt%, while clean internal regrind from the same grade may be added up to 25 wt% without eliminating UN certification, provided the regrind is dry and free of oxidized gel particles above 0.5 mm. Ultraviolet stabilizer additions of 0.1–0.3 wt% are reserved for containers stored outdoors or exposed to sunlight during intermodal transport. The downstream production process uses a converging die head and a post-mold cooling fixture to control handle-wall thickness and pinch-off flash; the weld line at the bottom pinch-off is the primary failure location, and it is tested under hydraulic internal pressure per 49 CFR §178.605. Terminal product types are 5 L, 10 L, 20 L, and 30 L jerricans carrying UN 3H1/Y markings, as well as 60 L tight-head drums for liquid corrosives and solvent-based chemicals. Field audits of jerrican lines show that batch-to-batch variation in HD5502AA lot density can shift parison hang time by 8–12%, requiring re-adjustment of the parison profile when switching silos or supplier lots.

    Blow molded containers for organophosphate emulsifiable concentrates and chlorinated solvent-based agricultural formulations impose simultaneous demands on environmental stress crack resistance and barrier-layer integrity that cannot be addressed by the base resin alone. In six-layer coextrusion blow moulding, HD5502AA typically serves as the inner and outer structural layers at 65–75 wt% of the total wall, with an EVOH barrier layer at 1.5–3.0 wt% and tie adhesives at 2.0–3.0 wt% of the total structure; the remaining fraction is captive regrind. The relevant compliance framework includes UN Model Regulations Chapter 6.1 for packaging group II and III liquids, US EPA 40 CFR §156.140 for child-resistant packaging when applicable, and FAO/WHO guidelines for pesticide container design where embrittlement or solvent permeation is assessed. Carbon black masterbatch is added at 1.5–2.0 wt% only for active ingredients that are photosensitive or where opaque containers are required by label instruction; otherwise, white or unpigmented formulations use a hindered amine light stabilizer at 0.15–0.30 wt%. Processing is performed on a continuous coextrusion blow moulding machine with the HDPE melt temperature held between 200 °C and 215 °C and the EVOH extruder zone temperatures between 190 °C and 210 °C; failure to maintain the tie-layer thickness above 1.0% of total wall thickness produces delamination at the handle pinch-off after drop testing from 1.2 m. Terminal article types include 0.5 L, 1 L, 5 L, and 20 L bottles and jerricans with child-resistant closures and induction-sealed caps; optional fluorination is applied downstream to reduce solvent migration through the HDPE structural layers.

    When Diesel Exhaust Fluid Tanks Demand Low Leachate, the Processing Window Narrows

    Onboard SCR storage tanks blow molded from HD5502AA are governed by ISO 22241-1:2019 for diesel exhaust fluid quality and ISO 22241-3:2017 for handling and storage, because any additive migrating from the container wall into the urea solution can shorten the service life of the SCR catalyst. The formulation differs from fuel tanks in that carbon black is omitted; the standard converter recipe uses a titanium dioxide white masterbatch at 1.5–2.0 wt%, a UV stabilizer at 0.20–0.50 wt%, and an oxidation-resistant package at 0.10–0.20 wt%. Metal stearate processing aids are avoided in some validated systems because they can leach into the fluid and contribute to insoluble deposits in the dosing pump. The downstream process is suction blow moulding or three-dimensional parison manipulation, allowing the tank to follow the available envelope around chassis crossmembers and heat shields; mold temperatures are maintained at 10–25 °C to preserve wall thickness at corner stretch points. The component must pass leak testing at 0.3 bar and internal pressure cycling, and hot-plate welding of fill necks, level sensor bungs, and coolant channel attachments is performed with weld bead temperatures of 210–230 °C. Terminal product types are 10–30 L DEF tanks with integrated heated coolant loops and level sensors, typically installed on light commercial diesel vehicles; published data for the long-term leachate performance of this specific SECCO grade in DEF service is limited, so validation is performed at the system level by the tank manufacturer.

    Portable outboard-motor fuel tanks blow molded from HD5502AA are subject to evaporative emission and closure-retention requirements that differ from automotive fuel tanks in one critical respect: the container must retain its shape and fitting seal under repeated thermal expansion without a fixed mounting bracket. The applicable standards are EPA 40 CFR Part 1060 for marine fuel tanks and ABYC H-25 for portable marine fuel system components, with permeation testing conducted over a diurnal temperature cycle and closure assemblies tested for spillage after inversion. Formulation addition ratios for these tanks include a UV-stabilized carbon black or red colour concentrate at 2.0–2.5 wt%, a hindered amine light stabilizer at 0.20–0.30 wt%, and an antioxidant at 0.15–0.25 wt%; the wall thickness is maintained between 2.5 mm and 4.0 mm to limit flexural deformation under fuel load. Processing is typically performed on a continuous extrusion blow moulding machine with a two-cavity mold, using a parison programmer to distribute material toward the lower pinch-off and carry-handle junctions; fuel fittings and vent valves are either molded-in or spin-welded after post-cooling. Terminal product types are 12 L, 24 L, and 30 L portable marine fuel tanks with quick-connect fuel line fittings and integrated caps that meet EPA spill-proof closure criteria. Published data for closure retention using this specific SECCO grade in marine tank service is limited; converter validation is performed on finished tank assemblies rather than on raw resin plaques.

    Coolant reservoir processing tolerates no pinch-off thinning below a 2.0 mm weld line

    In automotive coolant surge tanks and windshield washer reservoirs, HD5502AA is processed by extrusion blow moulding into shapes that must survive cyclic hot coolant exposure at 110 °C and cold impact at -30 °C without stress cracking at insert welds or pinch-off lines. The material is used with a formulation containing an antioxidant package at 0.20–0.40 wt%, an acid scavenger at 0.05–0.10 wt%, and a colour masterbatch at 1.0–2.0 wt%, with no carbon black if a natural or white reservoir is specified. The downstream production process uses shuttle blow moulding equipment with shot sizes of 1–3 L and parison programming targeted to maintain weld-line thickness above 2.0 mm; molds are designed with venting at the handle and filler neck to prevent air entrapment that reduces weld strength. Relevant compliance tests include ISO 16750-4:2010 for environmental loads and ASTM D648-18 for heat deflection temperature under 0.455 MPa, supplemented by OEM-specific thermal shock and pressure-cycling specifications. Terminal product types are coolant overflow bottles of 0.8–3.5 L and windshield washer reservoirs in the same size range, with injection-moulded hose barb fittings welded into the shell; prolonged contact with concentrated methanol-based washer fluid requires additional ESCR validation on the finished reservoir.

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    Certification & Compliance
    More Introduction

    SECCO (Shanghai Secco) HDPE HD5502AA is a high-density polyethylene extrusion blow-molding grade produced at the Shanghai SECCO Petrochemical complex. The resin is positioned for large-volume blow-molded containers, industrial packaging, intermediate bulk containers, and automotive components in which a balance of stress-crack resistance, impact strength, and melt strength is required. The product is supplied as a high-molecular-weight polyethylene with a controlled molecular weight distribution and comonomer placement; the high-molecular-weight fraction contributes environmental stress crack resistance, while the lower-molecular-weight fraction provides shear thinning during extrusion. The grade is not intended for thin-wall injection molding, rotational molding, or blown film. These constraints arise from a low melt mass-flow rate at 2.16 kg load, which limits melt flow into multi-cavity injection tools at conventional pressures. No routine pre-drying is required at ambient relative humidity below 60 %, but condensed moisture on cold regrind or in outdoor silos can produce surface defects in the parison. Lot-specific physical property data should be verified against the certificate of analysis before production startup.

    Molecular Architecture and Melt Rheology of SECCO HD5502AA

    The molecular design of HD5502AA is based on a broad or bimodal molecular weight distribution produced through a reactor cascade. The comonomer is incorporated preferentially into the high-molecular-weight chains, creating tie molecules that connect lamellae and raise slow crack-growth resistance. Density is measured according to ISO 1183-1 and is typically reported near 0.955 g/cm³. Melt mass-flow rate measured according to ISO 1133-1 at 190 °C/2.16 kg is in the range 0.15–0.25 g/10 min; the high-load value at 190 °C/21.6 kg is approximately 5.5–6.5 g/10 min. The ratio of high-load to low-load melt mass-flow rate, a practical indicator of shear-thinning, is therefore substantially above that of a unimodal grade of similar density. The following representative values are compiled from the manufacturer’s technical data sheet and are not to be used as specification limits.

    PropertyTest standardTypical valueUnit
    DensityISO 1183-10.955g/cm³
    Melt mass-flow rate, 190 °C/2.16 kgISO 1133-10.20g/10 min
    Melt mass-flow rate, 190 °C/21.6 kgISO 1133-16.0g/10 min
    Tensile yield stressISO 527-223MPa
    Elongation at breakISO 527-2>600%
    Flexural modulusISO 178900MPa
    Charpy notched impact, 23 °CISO 179-1/1eA25kJ/m²
    Environmental stress crack resistance, 10 % Igepal, 50 °C, F50ASTM D1693>500h
    Vicat softening temperatureISO 306/A50127°C

    Thermal analysis by differential scanning calorimetry according to ISO 11357-3 typically places the peak melting temperature near 131–134 °C. The oxidation-induction time of the as-supplied resin depends on the antioxidant package and should be confirmed for long-term hot-fill or high-temperature service. The grade is designated a high-density polyethylene, extrusion blow-molding type, under ISO 1872-1. The microstructure produces higher melt strength than that of conventional unimodal blow-molding grades of equivalent density, but it also produces larger die swell and slower stress relaxation.

    Where Does HD5502AA Sit Relative to Conventional Unimodal HDPE?

    In comparison to conventional unimodal HDPE of similar density and melt mass-flow rate, HD5502AA shows higher environmental stress crack resistance at the same density. The difference arises from molecular weight distribution shape and comonomer distribution. A unimodal Ziegler-Natta HDPE often has a narrower molecular weight distribution, and its high-molecular-weight chains may carry insufficient comonomer to form an effective tie-molecule network. HD5502AA separates the functions: the lower-molecular-weight fraction controls melt viscosity under extrusion shear, while the high-molecular-weight fraction controls slow crack growth and notched impact. The practical consequence is that a container wall can be down-gauged without an equivalent loss in stress-crack resistance. The bimodal architecture also changes die swell and parison sag. The high-molecular-weight fraction increases storage modulus at low shear and increases die swell, so blow-molding tooling must be designed with a smaller die gap to compensate. Compared with a general-purpose unimodal HDPE blow-molding resin of similar density, HD5502AA typically displays higher die swell, lower melt fracture tendency at high output, and a wider processing window on accumulator-head machines. Published data for this specific configuration in multi-layer coextrusion with barrier polymers are limited; barrier layer adhesion should be validated by peel testing to ISO 11339.

    The product should not be treated as a direct drop-in replacement for a unimodal grade in existing tooling. The die gap, parison programming profile, and cooling time may require adjustment because of the higher molecular weight fraction. In accumulator-head extrusion blow molding, the higher swell can be used to reduce die diameter for a given part diameter, but excessive swell can generate weld-line thickness variation at the pinch-off. The resin also differs from fractional melt film resins and from unimodal pipe grades in its melt elasticity and in its low-load melt mass-flow rate. Those differences make HD5502AA suitable for blow molding but unsuitable for cast film, blown film, or high-speed injection molding.

    Processing Window, Die Swell, and Parison Stability

    On accumulator-head extrusion blow molding lines, HD5502AA is processed at melt temperatures in the range 200–230 °C, measured at the die adapter. Barrel profiles are set to avoid exceeding 240 °C; prolonged residence time above this temperature accelerates thermal oxidative degradation and can shift melt mass-flow rate upward. Grooved feed extruders with length-to-diameter ratios of 25:1 to 30:1 are used; feed-zone barrel temperatures are maintained low enough to delay melt formation and preserve solids conveying. Parison programming is essential for large containers. The parison swell ratio, measured as the ratio of parison diameter to die diameter, is a function of shear rate and molecular weight distribution. For this grade, die gaps are typically set so that the as-blown wall thickness is 2–4 mm after trimming, depending on container volume and service conditions. Mold cooling water temperature between 8 °C and 15 °C reduces post-mold shrinkage and improves dimensional stability. Regrind incorporation up to 30 wt% is common, provided the regrind is dry and free of fines. Above this level, gel content and black specks may rise because of repeated thermal exposure.

    The resin does not require forced-air drying at relative humidity below 60 %; however, cold material moved into a warm production hall can condense moisture, and such condensation can produce surface splay or micro-voids in the part. The grade has limited resistance to strong oxidizing acids and aromatic hydrocarbons at elevated temperatures; chemical compatibility should be tested according to ASTM D543 before service. The upper melt temperature limit of 240 °C is an operational boundary for this grade. Attempts to improve surface gloss by raising melt temperature above this limit can increase gel formation, color shift, and odor in the final container.

    When Large-Volume Blow Molding Requires High Melt Strength

    For large-volume blow molding applications, HD5502AA is used in UN-type open-head drums, tight-head drums, IBC frame bottles, agricultural chemical containers, and automotive lubrication oil containers. In a 200 L open-head drum, wall thickness distribution is controlled by parison programming; the high melt strength reduces sag and improves top and bottom pinch strength. Drop impact performance is assessed by a filled drop test at -18 °C from a height specified by UN/DOT dangerous goods packaging standards. Environmental stress crack resistance according to ASTM D1693 condition B in 10 % Igepal at 50 °C is used to screen chemical compatibility; the grade typically exceeds 500 h to F50. For automotive fuel tank base resin, multi-layer coextrusion with ethylene vinyl alcohol or polyamide is used; adhesion layers are required. Published long-term hydrostatic strength data for chlorinated water service are limited, so ISO 9080 testing is recommended before use in pressure pipe or pressurized chemical storage. The resin is not supplied with UV stabilization unless contracted; outdoor weathering requires a carbon black masterbatch or alternative UV stabilizer addition.

    In these applications, the difference from general-purpose blow-molding HDPE is most apparent in the low-temperature impact performance and in the environmental stress crack resistance of the innermost and outermost container layers. The bimodal high-molecular-weight fraction reduces the probability of catastrophic brittle failure caused by molded-in stress at the pinch-off. The product is therefore selected for containers in which a crack propagating from a weld line or a pinch-off zone would create a release of hazardous material. No conclusion or forward-looking statement is provided; the operational boundary for this grade remains tied to the extrusion blow-molding process window and to the chemical compatibility limits established by end-use testing.

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