| HS Code | 180129 |
| Productname | Ningxia Baofeng Energy HDPE 5502S |
| Manufacturer | Ningxia Baofeng Energy Group Co., Ltd. |
| Polymertype | High Density Polyethylene (HDPE) |
| Grade | 5502S |
| Form | Pellets |
| Color | Natural/White |
| Application | Blow molding |
| Density | 0.954-0.956 g/cm³ |
| Meltflowrate | 0.35 g/10 min (190°C/2.16 kg) |
| Tensileyieldstrength | ≥26 MPa |
| Elongationatbreak | ≥600% |
| Flexuralmodulus | ≥1100 MPa |
| Vicatsofteningpoint | ≥125°C |
| Environmentalstresscrackresistance | ≥1000 h |
| Hardnessshored | 65 |
| Meltingpoint | 130-135°C |
| Bulkdensity | 0.54-0.56 g/cm³ |
| Ashcontent | ≤0.05% |
| Moisturecontent | ≤0.1% |
As an accredited Ningxia Baofeng Energy HDPE 5502S factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Ningxia Baofeng Energy HDPE 5502S is supplied in 25 kg woven polypropylene bags, palletized and stretch-wrapped for bulk shipment. |
| Container Loading (20′ FCL) | Ningxia Baofeng Energy HDPE 5502S loaded in 20′ FCL containers, 25 kg bags, palletized, shrink-wrapped, and securely stowed for export. |
| Shipping | Ningxia Baofeng Energy HDPE 5502S is a non-hazardous high-density polyethylene. It is shipped in 25 kg bags or 500–1000 kg jumbo bags, palletized and shrink-wrapped, in clean, dry containers. Not regulated as dangerous goods; no special transport labels required. Keep dry, cool, away from UV light. |
| Storage | Store Ningxia Baofeng Energy HDPE 5502S in a cool, dry, well-ventilated warehouse, away from direct sunlight, heat, flames, and strong oxidizers. Keep original bags or containers sealed, palletized, and off the floor to prevent moisture, dust, and contamination. Avoid prolonged UV exposure and static buildup. Ensure good housekeeping and label containers clearly. Follow local regulations and manufacturer safety data. |
| Shelf Life | Ningxia Baofeng Energy HDPE 5502S shelf life is typically 12–24 months when stored cool, dry, sealed, and protected from sunlight. |
The 20 L to 200 L industrial container segment places the most severe demand on parison melt strength and pinch-off welding. Ningxia Baofeng Energy HDPE 5502S is processed on accumulator-head extrusion blow moulding machines with grooved-feed extruders in the 80 mm–120 mm diameter range, 24:1–30:1 L/D, and profiled die gaps from 1.5 mm to 2.5 mm. Melt temperature at the die is maintained between 180 °C and 210 °C, while accumulator drop speed is reduced for 200 L drum parisons to keep visible parison sag below 15% over a 1.5 m drop length. Blow pressure of 0.6 MPa–0.8 MPa is introduced through a central blow pin, and mould temperature is held at 10 °C–30 °C. Wall thickness distribution is managed by a 100-point parison programmer with axial tolerance of ±0.2 mm. Cycle time for a 60 L tight-head container on a twin-station shuttle is 90 s–120 s. Terminal parts are UN 1H1 tight-head drums, UN 1H2 open-head drums, 20 L and 25 L jerrycans, and 10 L solvent cans. Compliance is not established by resin choice alone; complete design-type testing under UN Model Regulations Chapter 6.1 must cover drop at −18 °C, hydraulic internal pressure of 100 kPa minimum for 30 min, stacking for 28 days at 40 °C, and specific permeation testing for the intended chemical filling. The resin’s notched Charpy impact, typically above 12 kJ/m² at 23 °C according to ISO 179-1/1eA, supports low-temperature drop survival in welded base and handle zones. Use of post-industrial regrind from pinch-off flash at 25 wt%–35 wt% is routine, but solvent container producers limit regrind addition to 40 wt% because heat-history-induced chain scission reduces stress crack resistance. No pre-drying is required when shop-floor relative humidity remains below 60%; above 70% RH, surface moisture from condensation is removed with a desiccant hopper at 80 °C for 2 h–4 h to prevent splay and melt fracture in the die land.
For thin-wall detergent, fabric softener, and all-purpose cleaner bottles in the 250 mL to 5 L range, HDPE 5502S is processed on continuous rotary or shuttle extrusion blow moulding lines with 50 mm–65 mm extruders, 24:1–26:1 L/D, and two to six parison heads. Die melt temperature is held at 170 °C–195 °C, lower than industrial container processing, to avoid excessive die swell and to preserve parison dimensional control for lightweight bottles below 0.7 mm wall thickness. Mould temperature remains at 10 °C–25 °C with closed-loop chilling through aluminium moulds. Blow pressure is 0.5 MPa–0.7 MPa, and 1 L bottle cycle time is 10 s–15 s on a six-station wheel. Formulation typically includes 70 wt% virgin HDPE 5502S and 30 wt% post-industrial regrind from bottle flash and tails. Regrind fraction is capped below 40 wt% because repeated extrusion at 190 °C increases gel count and reduces environmental stress crack resistance, measured as F50 time in 100% Igepal solution per ASTM D1693. Failed bottles in this segment generally initiate at the handle weld line or base pinch-off, not in the sidewall. Top-load compression is measured on empty bottles at 5 mm deflection with a compression tester fitted with a 100 mm platen, and values below 250 N for a 1 L bottle are rejected for distribution stack loads. Terminal products include detergent bottles, fabric softener bottles, all-purpose cleaner bottles, and squirt bottles with 38 mm and 45 mm neck finishes. Regulatory requirements include EU Packaging Directive 94/62/EC heavy metal limits of less than 100 mg/kg for the sum of lead, cadmium, mercury and chromium VI, REACH Annex XVII restrictions, and CLP Regulation (EC) No 1272/2008 for labelling. Food contact is not assumed for this sector unless the moulder is also qualified under FDA 21 CFR 177.1520 for non-detergent dry goods.
| Processing parameter | 20 L jerrican | 1 L bottle | 200 L drum |
|---|---|---|---|
| Die melt temperature | 180 °C–200 °C | 170 °C–195 °C | 200 °C–210 °C |
| Mould temperature | 10 °C–25 °C | 10 °C–25 °C | 15 °C–30 °C |
| Blow pressure | 0.6 MPa–0.8 MPa | 0.5 MPa–0.7 MPa | 0.6 MPa–0.8 MPa |
| Regrind limit | 40 wt% | 40 wt% | 25 wt%–35 wt% |
| Typical cycle time | 90 s–120 s | 10 s–15 s | 240 s–360 s |
Under-hood washer fluid reservoirs are produced from HDPE 5502S on single-station accumulator blow moulders with 60 mm–70 mm extruders, 26:1–30:1 L/D. Melt temperature at the die is 200 °C–220 °C, higher than packaging to reduce melt viscosity for complex geometries with deep cavities and sensor bosses. The mould temperature is 15 °C–25 °C, and blow pressure is 0.6 MPa–0.8 MPa. Cycle time for a 4 L reservoir is 75 s–100 s. After demoulding, filler necks, sensor attachments, and bracket bosses are joined by hot-plate welding. Plate temperature is set at 210 °C–230 °C, weld pressure at 0.15 MPa–0.30 MPa, and weld hold time at 30 s–60 s. Ultrasonic welding at 20 kHz is used for small attachment features where hot-plate welding cannot access the weld plane. Terminal parts include 3 L–8 L windshield washer reservoirs, 1 L–2 L coolant overflow bottles, and headlamp washer reservoirs. Material qualification for automotive use requires coolant immersion testing in 50% ethylene glycol/water at 80 °C for 168 h according to ISO 175; mass increase is monitored, and values exceeding 2% trigger a design review because wall softening can loosen snap-fit sensor joints. Long-term heat aging at 90 °C for 1000 h per ISO 188 is used to evaluate oxidative embrittlement in engine-compartment conditions. Fogging and odour performance are assessed with VDA 278 for volatile organic compound release and VDA 270 for odour, because HDPE 5502S compounds without low-volatile masterbatch can raise cabin odour complaints. Regrind use is generally limited to 15 wt%–20 wt% from post-industrial trimmings; higher regrind fractions increase the risk of weld-line contamination and porous hot-plate joints. The resin is not recommended for brake fluid reservoirs without specific validation because glycol ether borate fluids require barrier and stress-cracking performance not established for this grade.
Thick-sheet extrusion for returnable logistics dunnage uses a 90 mm–120 mm single-screw extruder with a barrier screw, 30:1 L/D, feeding a flat die 1000 mm–2000 mm wide. Melt temperature is controlled at 210 °C–230 °C to minimise die lip oxidation and to maintain a stable sheet web; the three-roll polishing stack is operated at 60 °C–90 °C with a roll gap 0.1 mm–0.3 mm below target sheet gauge to compensate for post-shrinkage. Sheet thickness from 3 mm to 8 mm is produced for downstream pressure forming or vacuum forming. HDPE 5502S provides sufficient melt strength for draw ratios up to 1:1.5 without webbing, but sheet line speed is limited by the grade’s zero-shear viscosity; raising melt temperature above 240 °C causes visible oxidation and gel generation. Thermoformed parts include reusable pallet top frames, dunnage boards, freezer spacers, and interlayer separators. Formulation for outdoor dunnage includes 2 wt%–4 wt% carbon black masterbatch and 0.5 wt%–1.0 wt% hindered amine light stabilizer masterbatch to retain impact strength after ultraviolet exposure. Ultrasonic welding of thermoformed attachment points is performed at 20 kHz, 0.2 MPa horn pressure, and 150 ms weld time to avoid stress risers associated with mechanical fasteners. FDA 21 CFR 177.1520 may be cited only where the dunnage contacts dry food in logistics; for industrial use, no food-contact clearance is assumed. Batch-to-batch variation in swell ratio is monitored offline with a Goettfert RG25 capillary rheometer at 190 °C and a shear rate of 100 1/s, because die swell changes above 0.1 mm can alter final sheet gauge uniformity across the die width.
For solvent-based agrochemical formulations, monolayer blow-moulded containers are produced from HDPE 5502S and subsequently surface-fluorinated to reduce permeation. The extrusion blow moulding process follows the industrial container route: 60 mm–80 mm extruder, 24:1–28:1 L/D, die temperature 190 °C–210 °C, mould temperature 10 °C–25 °C, and blow pressure 0.6 MPa–0.8 MPa. After cooling and trimming, containers are exposed to fluorine gas diluted in nitrogen at 0.5%–2.0% F₂ by volume for 10 s–60 s at 20 °C–60 °C. The resulting fluorinated surface layer, typically 20 nm–100 nm thick, reduces permeation of xylene and high-aromatic solvents by up to 90% relative to untreated HDPE in the same wall thickness. In-line fluorination during parison extrusion is also used, but it demands closed-loop gas monitoring and automatic abort interlocks. Terminal products include 1 L, 5 L, and 10 L narrow-mouth bottles with 45 mm or 63 mm closures, frequently fitted with child-resistant caps tested to ISO 8317. Compliance for pesticide packaging requires package compatibility testing under CIPAC MT 46.3, UN marking under UN Model Regulations Chapter 6.1 where the formulation is classified as dangerous goods, and FAO/WHO guidelines where national registration schemes apply. Over-fluorination above 3.0% F₂ or excessive residence time produces surface yellowing, reduced heat-sealability of closure liner interfaces, and possible formation of extractable fluoride species. The fluorination line is therefore operated with a gas analyser calibrated to 0.1% F₂ and continuous scrubber pressure verification. Regrind from fluorinated flash is not incorporated back into the monolayer wall because the fluorinated layer creates inconsistent weld-line chemistry; instead, it is segregated and sold into non-barrier industrial sheet where permitted.
| Application | Standard or regulation | Test condition or limit |
|---|---|---|
| Industrial dangerous goods packaging | UN Model Regulations Chapter 6.1 | Drop, stacking, hydraulic pressure, leakproofness |
| Food contact (USA) | FDA 21 CFR 177.1520 | Extraction per 21 CFR 176.170; resin must meet specified olefin polymer conditions |
| Food contact (EU) | EU Regulation (EU) No 10/2011 | Overall migration < 10 mg/dm² |
| Potable water | NSF/ANSI/CAN 61 | Extraction with pH 5 and pH 8 water, metal and VOC limits |
| Packaging heavy metals | EU Packaging Directive 94/62/EC | Sum Pb+Cd+Cr VI+Hg < 100 mg/kg |
| Child-resistant closures | ISO 8317 | Child-resistant function after aging and repeated opening |
| Mechanical property baseline | ISO 527-2, ISO 1183-1, ISO 179-1/1eA, ISO 1133-1 | Tensile yield, density, notched Charpy, melt flow rate |
In potable water storage tank production, HDPE 5502S is processed on large accumulator machines with 80 mm–100 mm extruders, 26:1–30:1 L/D, and moulds with internal cooling channels. Melt temperature at the die is 190 °C–210 °C, mould temperature is 15 °C–25 °C, and blow pressure is 0.6 MPa–0.8 MPa. For a 100 L closed-head tank, cycle time is 10 min–20 min depending on wall thickness and cooling water temperature. Terminal products include 50 L, 100 L, and 250 L water storage tanks, recreational vehicle water tanks, and emergency drinking water containers. Food-contact compliance is governed by FDA 21 CFR 177.1520 for polyethylene and by EU Regulation (EU) No 10/2011 with overall migration below 10 mg/dm² using 10 days at 40 °C with 10% ethanol simulant. Potable water certification for North America is performed under NSF/ANSI/CAN 61, which extracts the tank with pH 5 and pH 8 waters at 25 °C and limits lead, phthalates, and volatile organic compounds. The formulation for potable water tanks typically avoids slip additives with high migratory potential and uses 2 wt%–3 wt% carbon black masterbatch for UV-stabilised outdoor units. Long-term hydrostatic resistance is evaluated by filling the tank to 1.1 times rated capacity and holding at 40 °C for 48 h with no visible leakage or deformation beyond 1.0% volume change. Batch testing of tank pinch-off welds is required because pinhole defects in the pinch-off zone are the primary failure mode during transit vibration. The grade’s high melt strength supports wall thickness uniformity in large parison drops, but tanks above 250 L often require a coextruded inner layer or higher molecular weight HDPE to maintain burst strength under stacking loads.
Competitive Ningxia Baofeng Energy HDPE 5502S 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!
Across medium-to-large extrusion blow moulding lines where parison sag resistance and environmental stress crack resistance govern container service life, Ningxia Baofeng Energy HDPE 5502S is introduced as a high-density polyethylene copolymer resin. The grade is supplied in 25 kg moisture-barrier bags as white pellets and carries a nominal density of 0.955 g/cm³ under ISO 1183-1. Its nominal melt mass-flow rate is 0.35 g/10 min at 190 °C under 2.16 kg load when determined in accordance with ISO 1133-1:2022. Those two values position 5502S in the medium-high-molecular-weight blow moulding envelope, separate from injection moulding grades that commonly exceed 2.0 g/10 min and from pipe-grade bimodal resins with density values above 0.958 g/cm³. Commercial data sheets for 5502S list the backbone as a polyethylene copolymer with short-chain branching distributed to raise slow-crack-growth resistance without depressing stiffness below container top-load requirements.
Molecular architecture is not disclosed in full on commercial technical data sheets. Published data for this specific configuration are limited, but class-typical Ziegler-Natta HDPE blow moulding grades achieve the observed environmental stress crack resistance not through uniformly high co-monomer content but through a bimodal short-chain branching distribution that places 1-butene branches preferentially in the high-molecular-weight fraction. This architecture reduces tie-chain crystallisation in the amorphous interlamellar regions while retaining the density needed for top-load and chemical barrier performance. The result is a resin that behaves as a shear-thinning melt in the die head but retains sufficient extensional viscosity to limit parison drawdown.
In practice, the resin is fed directly to the hopper after ambient conditioning. Pre-drying is not normally required at warehouse relative humidity below 70%, but when surface moisture is visible or when the silo has been left open in humid air, a desiccant dryer set at 80 °C for 2 h is employed to suppress bubble defects in the parison wall. Moisture above 0.05 wt% is known to generate steam-induced microvoids in accumulator-head machines. Processing studies on continuous blow moulding lines with screw diameters of 60 mm and 90 mm show that melt temperature at the die entry is held between 190 °C and 210 °C to avoid both sharkskin and oxidation odour.
On single-screw extruders with L/D 24:1 to 30:1 and a grooved feed section, barrel temperature settings from feed to metering are commonly set at 170 °C, 190 °C, 200 °C, 205 °C, and 210 °C. A melt pressure of 25–35 MPa ahead of the breaker plate is observed when screw speed is adjusted for a 5 L container output of 180–220 kg/h. At die entry temperatures below 180 °C, unmelted high-molecular-weight fractions can generate surface roughness on the inner parison wall, while above 220 °C oxidative degradation becomes detectable as a waxy odour and viscosity loss. The acceptable residence time in the accumulator head is therefore limited to 8 min when the melt temperature is at the upper boundary.
Parison sag is controlled by adjusting die gap, wall-thickness programming, and blow-up ratio. For 5 L jerry cans, a die gap of 1.8–2.4 mm and a blow-up ratio of 2.2:1 to 3.0:1 produce wall-thickness standard deviations below 0.1 mm when the head tooling has a diverging mandrel angle of 12°. The high melt strength of 5502S permits a drop time of 4–6 s over a 500 mm parison length before full clamp closing. Processors using shuttle machines should maintain mould close speed at 0.5–0.8 m/s to prevent preblow instability.
Representative average values compiled from commercial technical documentation are tabulated below. These are not specification limits; lot-to-lot variation on Ningxia Baofeng Energy’s integrated coal-to-olefin feedstock can shift xylene solubles and co-monomer distribution enough to alter impact values by approximately ±10%.
| Property | Typical value | Test method |
|---|---|---|
| Density | 0.955 g/cm³ | ISO 1183-1 |
| Melt mass-flow rate | 0.35 g/10 min | ISO 1133-1, 190 °C/2.16 kg |
| Tensile yield stress | 26 MPa | ISO 527-2, 50 mm/min |
| Elongation at break | >600% | ISO 527-2 |
| Flexural modulus | 1050 MPa | ISO 178 |
| Notched Charpy impact, 23 °C | 14 kJ/m² | ISO 179-1/1eA |
| Notched Charpy impact, -30 °C | 7 kJ/m² | ISO 179-1/1eA |
| ESCR F50, 100% Igepal CO-630, 50 °C | >300 h | ASTM D1693-B |
| Vicat softening point, 50 °C/h, 10 N | 125 °C | ISO 306/A120 |
| Shore D hardness | 63 | ISO 868 |
The tensile and ESCR data indicate a balance suited to aggressive liquid packaging rather than high-temperature pressure piping. The flexural modulus of 1050 MPa maintains top-load stability in 20–30 L packagings, while the ESCR F50 above 300 h reduces stress-cracking risk in contact with nonionic surfactant solutions, dilute alkalis, and certain alcohol-water mixtures. Strong oxidisers, chlorinated hydrocarbons, and long-term immersion in aromatic hydrocarbons remain outside the recommended service envelope because they can swell the amorphous tie-chain regions and accelerate crack growth.
Before the resin is released for food-adjacent or dangerous-goods packaging, converters apply migration and mechanical transport tests. Under the European framework, the finished container is assessed against EU Regulation 10/2011 with simulant selection based on the intended food type; high-density polyethylene of density above 0.940 g/cm³ is referenced in FDA 21 CFR 177.1520(c) for olefin polymers, provided that final article extraction limits are met. For dangerous-goods single packagings, blow moulded containers with a minimum wall thickness of 0.8 mm are typically conditioned at -18 °C for 48 h and drop-tested from 1.2 m following UN 6.1.5.3. Published pass/fail data for this specific container configuration are limited, but the thermomechanical profile of 5502S aligns with the low-temperature ductile-failure requirement in short-drop testing.
Chromium-catalysed bimodal HDPE grades are often selected for fuel tanks and large drums because their density between 0.958 g/cm³ and 0.964 g/cm³ and high-molecular-weight tail produce elevated hydrostatic strength and chemical resistance. 5502S is positioned differently: the melt mass-flow rate of 0.35 g/10 min and density of 0.955 g/cm³ favour continuous blow moulding of containers up to approximately 30 L, where surface finish, cycle time, and drop impact after cold conditioning are weighted more heavily than long-term pipe pressure resistance.
Comparative profiles are summarised in Table 2. Data for competing grades are class-typical literature values rather than lot-specific measurements.
| Parameter | 5502S | Unimodal HDPE blow moulding grade | Chromium-catalysed bimodal HDPE |
|---|---|---|---|
| Density | 0.955 g/cm³ | 0.952–0.956 g/cm³ | 0.958–0.964 g/cm³ |
| Melt mass-flow rate | 0.35 g/10 min | 0.25–0.70 g/10 min | 0.20–0.50 g/10 min |
| Flexural modulus | 1050 MPa | 950–1100 MPa | 1200–1500 MPa |
| ESCR F50 | >300 h | >200 h | >500 h |
| Target application | 5–30 L containers | 0.5–5 L food and detergent bottles | 200 L drums and fuel tanks |
Against a unimodal blow moulding grade of equivalent melt mass-flow rate, 5502S exhibits a broader molecular weight distribution as inferred from die swell and parison sag response; the broader distribution supports melt strength without shifting density upward. The practical difference appears on accumulator-head machines as reduced flash thickness variation in 20 L container trims. Conversely, 5502S should not be substituted for bimodal chromium-catalysed HDPE in fuel tanks that must pass 60 °C hydrocarbon permeation and sustained hydrostatic pressure tests because its lower density and lower tie-chain concentration limit long-term resistance to hydrocarbon solvents.
In warehouse storage, pellet oxidation is negligible when the ambient temperature is below 40 °C and relative humidity is below 70%. Ultraviolet-stabilised lots are documented under the same grade suffix for outdoor intermediate bulk containers; unstabilised resin should not be exposed to direct sunlight for more than 6 months because UV-induced carbonyl formation reduces ESCR. Processors should not blend 5502S with amine-based slip additives or high-acid coupling agents at elevated temperatures, as acid-amine condensation at the feed throat can generate plate-out on screw flights and die lips.