| HS Code | 538043 |
As an accredited Guangdong Zhongke HDPE HD6221 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Guangdong Zhongke HDPE HD6221 is supplied in 25 kg woven polypropylene bags, palletized and stretch-wrapped for transport. |
| Container Loading (20′ FCL) | 20′ FCL container loading: 25 MT Guangdong Zhongke HDPE HD6221, 25 kg bags, palletized, shrink-wrapped, stable, secure. |
| Shipping | Guangdong Zhongke HDPE HD6221 is supplied as non-hazardous polyethylene pellets, typically packed in 25 kg bags or 1000 kg jumbo bags on pallets. It ships in dry containers or trucks, kept cool, dry, and away from direct sunlight, heat, and moisture. No special dangerous goods documentation is required. |
| Storage | Store Guangdong Zhongke HDPE HD6221 in a cool, dry, well-ventilated warehouse, away from direct sunlight, rain, heat, and ignition sources. Keep original bags sealed and palletized; prevent moisture, contamination, and static buildup. Avoid prolonged UV exposure and excessive stacking. Maintain clean handling areas, follow first-in, first-out rotation, and avoid strong oxidizers. |
| Shelf Life | Store in a cool, dry, ventilated area in original unopened packaging; shelf life is typically 24 months from production date. |
Guangdong Zhongke HDPE HD6221 is specified for extrusion blow moulding of large-part and industrial packaging where the combination of high melt strength, density-controlled stiffness, and environmental stress crack resistance controls both production rate and service life. The grade is supplied as pelletized material with a producer-controlled melt mass-flow rate at 190 °C/2.16 kg of 0.20–0.35 g/10 min and a density range of 0.954–0.958 g/cm³, assessed under ISO 1133-1 and ISO 1183-1. The low MFR is not a processing defect but a deliberate viscosity design: in large-parison blow moulding, a melt flow rate below 0.35 g/10 min limits gravitational sag after the parison exits the die, while the higher molecular mass raises extensional viscosity and stabilizes the parison against drawdown. The trade-off appears on the extruder side, where high-viscosity HDPE raises melt temperature through viscous dissipation and reduces specific throughput if screw speed is not matched to the head tooling. This conflict is most visible on accumulator-head machines when parison length exceeds 1,800 mm and shot size exceeds 20 L, because the front portion of the parison remains unsupported for 4–12 s before mould closing.
Processing limitations for HD6221 follow from its high-molecular-weight architecture. Storage and conveying systems must exclude condensation because surface moisture above 0.02 wt% produces splay, surface streaks, and local viscosity loss in the parison. Cold storage must be avoided; pellets should be conditioned to 20–30 °C before entering the extruder throat. Blending with low-molecular-weight HDPE or LLDPE to improve tear resistance is only permissible up to 15–20 wt% because higher dilution changes die swell and reduces melt strength, leading to non-uniform wall thickness distribution. These limits are observed on production-scale single-screw blow moulding lines with grooved-feed extruders and 30:1 L/D, where melt pressure at the die head rises to 25–35 MPa and head temperature varies by no more than ±2 °C to avoid layer-to-layer viscosity drift.
| Application sector | Compliance instrument | Relevant designation | Typical verification method |
|---|---|---|---|
| Large rigid plastics IBC inner bottles | UN Model Regulations | Chapter 6.5 | Hydraulic internal pressure test, stacking, drop |
| Dangerous goods jerrycans | UN Model Regulations | Chapter 6.1 | Packing Group II drop height 1.2 m |
| Food-contact HDPE articles | FDA 21 CFR | 177.1520(c) | End-test extraction and overall migration under conditions of use |
| EU plastics food contact | Regulation (EU) No 10/2011 | Annex I | Specific migration limit according to food simulant |
| AdBlue/DEF containers | ISO 22241-4 | Clause 7 material compatibility | Urea solution long-term storage assessment |
The 1,000 L composite IBC inner bottle is produced on a high-tonnage extrusion blow moulding machine with a 100–150 mm grooved-feed extruder, 30:1 L/D, and an accumulator head capacity of 25–35 kg. The parison length for a standard cage IBC bottle reaches 1,100–1,500 mm, with a parison mass of 11–15 kg and a die gap of 2.5–4.0 mm. Melt temperature at the head is held at 180–205 °C, with die zones 5–8 °C lower than the adaptor to reduce surface melt fracture and recover die swell. The clamp force must exceed the blowing pressure multiplied by the projected cavity area plus flash pinch-off resistance; typical high-density polyethylene IBC tools run at 0.6–0.8 MPa blow air pressure and require 180–320 t clamp force depending on mould split and flash thickness. The mould is cooled with water at 8–15 °C, and cycle times between 300–480 s are set by the bottle wall thickness, which ranges from 1.8 mm in the upper shell to 4.5 mm at the bottom chime. HD6221’s low MFR is required here because a parison of this length would sag beyond the bead diameter during transfer if the melt were below the target molecular weight; operators monitor sag ratio as the percentage loss of parison length before mould closing, and a sag ratio above 20–25% indicates improper temperature or resin flow.
Compliance for this sector is governed by UN Model Regulations Chapter 6.5 for rigid plastics IBCs, transposed through ADR/RID/IMDG for transport. The inner bottle is tested as part of a composite IBC system for bottom lift, top lift, stacking at 1.8 times certified gross mass for 28 days at 40 °C, and hydraulic internal pressure at 100 kPa or above. The formulation envelope for HD6221 in this application is 97.8–99.0 wt% natural resin, 0.2–0.5 wt% antioxidant masterbatch, 0.1–0.3 wt% external lubricant, and either 1.5–2.5 wt% white masterbatch with 60 wt% titanium dioxide for light-filled bottles or 1.8–2.3 wt% carbon black masterbatch for UV protection in outdoor IBC service. Lubricant dosing above 0.3 wt% reduces melt pressure and viscosity consistency but can create die-swell instability and lower weld-line strength at the pinch-off. The corresponding finished product type is the replaceable inner bottle of a composite IBC with a 1,000 L nominal capacity, typically fitted with a top valve port and bottom discharge connection. Published production data for HD6221 in this exact 1,000 L IBC configuration is limited; the stated window should be verified with the target accumulator-head machine because flash trim geometry and mould parting-line pressure loss differ by tool supplier.
UN-rated plastic jerrycans for liquid chemicals and agrochemicals are blown from HD6221 on dual-station shuttle blow moulding lines with 60–90 mm screws, 24:1 to 30:1 L/D, and 3–10 L accumulator or continuous die heads. A 20–30 L tight-head container in the 520–700 g weight class requires parison programming of 100 points or more to maintain wall thickness above 0.9 mm in the corners and above 1.4 mm in the sidewall. Compliance is assessed under UN Model Regulations Chapter 6.1 and ADR/RID/IMDG, with a Packing Group II drop height of 1.2 m after conditioning at −18 °C for solvents and hazardous liquid products. The formulation for HD6221 is 98.0–99.0 wt% resin, 0.05–0.15 wt% processing lubricant, 1.0–2.0 wt% colour masterbatch, and, if the container will be stored outdoors, 0.3–0.8 wt% hindered amine light stabilizer masterbatch. In the production process, the closed-loop hydraulic system closes the mould at 0.4–0.7 m s−1 to keep consistent pinch-off; blowing air is supplied at 0.4–0.6 MPa, and the mould is chilled at 8–12 °C. Post-mould trimming, pressure-decay leak testing at 20–30 kPa, and ultrasonic wall-thickness scanning qualify the finished product as a UN 3H1 tight-head jerrican of 20 L, 25 L, or 30 L.
AdBlue and DEF packaging in 10–20 L high-density polyethylene containers is one of the narrowest specification windows for HD6221 because the filled product is stored in open yards and the urea solution degrades to ammonia and carbon dioxide when heated, causing internal pressure. The production process usually runs on a single-station accumulator blow moulding machine with 70–90 mm screw diameter, 25:1–30:1 L/D, melt temperature 170–190 °C, and a die gap of 1.8–2.5 mm. A 10 L container at 280–340 g uses blow air at 0.4–0.6 MPa and mould water at 10–15 °C. Compliance follows ISO 22241-4:2019 for urea solution dispensing equipment and containers where material compatibility must be demonstrated; antioxidant and UV stabilizer packages must not extract into the urea solution beyond the limits set by the standard. The recommended formulation for HD6221 is 97.5–98.5 wt% resin, 1.8–2.3 wt% carbon black masterbatch at 2.0–2.5 wt% carbon black content in the final article, 0.2–0.4 wt% antioxidant masterbatch, and 0.05–0.15 wt% fluoropolymer processing aid. Carbon black dispersion is tested under ISO 18553; agglomerates above 100 μm are rejected because they create pinholes and surface rough spots under internal pressure. The finished product type is a 10 L or 20 L AdBlue/DEF container with a tamper-evident neck and a sealed vent cap.
Monolayer HDPE blow moulding with HD6221 is commonly accepted for aqueous suspension concentrates and water-soluble granule containers, but solvent-borne emulsifiable concentrates containing xylene, cyclohexanone, or C9 aromatic solvents require either a coextruded barrier layer or post-mould surface fluorination to reduce permeation and environmental stress cracking. The formulation for the structural HD6221 layer in a coextrusion barrier bottle is 97.0–98.0 wt% resin, 1.0–2.0 wt% colour masterbatch, 0.15–0.30 wt% antioxidant masterbatch, and 0.05–0.10 wt% acid scavenger, while the barrier layer consists of polyamide or EVOH with a maleic anhydride-grafted tie resin at 1.5–2.5 wt% of the total structure. The production process uses a 6–7 layer coextrusion blow moulding die with 15–25 kg h−1 throughput and parison programming that limits thickness in the barrier layer to avoid delamination. Compliance is governed by UN Model Regulations Chapter 6.1 for Packing Group II or III agricultural chemicals and by regional pesticide container regulations, with stack and drop tests conducted on the filled container. If monolayer HD6221 is used for aqueous products only, the same 97.0–98.0 wt% resin formula is processed at 170–190 °C, a die gap of 1.5–2.5 mm, and blow pressure 0.5–0.7 MPa. The finished product types are 0.5 L, 1 L, 5 L, and 10 L agrochemical containers; solvent-borne products require a fluorinated or coextruded version validated for the specific formulation.
In 200 L tight-head L-ring drums, the pass/fail criterion for HD6221 is not a single material property but drop-test survival after wall thickness has been reduced by parison programming, pinch-off flash removal, and regrind addition. A typical drum line uses a 120 mm grooved-feed extruder with 30:1 L/D and a 30–35 kg accumulator head. Melt temperature is maintained at 175–200 °C, with the die head 5–10 °C cooler than the accumulator, and the die gap is set to 3.0–5.0 mm for a parison mass of 8.5–10.5 kg. The parison controller divides the drum wall into 100-point thickness zones that taper the bottom chime to 4.0–5.5 mm while keeping the sidewall at 2.5–3.5 mm to save material without compromising the drop height. Blow air at 0.6–0.8 MPa inflates the drum in 5–10 s, and mould cooling water is set at 8–14 °C for a total cycle of 240–360 s. Compliance for chemical drums is tested under UN Model Regulations Chapter 6.1 for rigid plastics drums, including a 1.8 m drop for Packing Group I or 1.2 m for Packing Group II, hydraulic internal pressure of 100 kPa, and stacking load corresponding to the certified gross mass. The formulation for HD6221 in this sector is 97.8–98.8 wt% resin, 1.5–2.0 wt% carbon black masterbatch, 0.2–0.5 wt% antioxidant masterbatch, and 0.2–0.4 wt% UV stabilizer masterbatch. Regrind from top and bottom flash may be added up to 20 wt% if it is dry, dust-free, and tested for melt flow ratio shift below 10% from virgin material. The finished product is a 200 L L-ring drum for solvents, mineral oils, lubricants, or corrosive liquids, in 1H1 tight-head format.
HD6221 can be selected for blow-moulded coolant expansion tanks and windscreen washer reservoirs when the OEM specification demands low-temperature impact toughness and creep resistance under a 0.10–0.15 MPa service pressure cap. The production process uses three-dimensional blow moulding or suction blow moulding with a 50–70 mm extruder, 24:1–30:1 L/D, melt temperature 180–200 °C, and chilled tooling at 10–16 °C to freeze the pinch-off seam quickly. The part is pressure-tested at 0.2–0.3 MPa and leak-tested under air or nitrogen; burst pressure for an expansion tank is typically specified above 0.4 MPa. Compliance is driven by automotive material standards that reference ISO 179-1/1eA Charpy impact at −30 °C, ISO 188 hot-air ageing at 120–130 °C, and short-term coolant immersion according to OEM test methods. A long-term coolant exposure above 130 °C, especially in the presence of copper ions from radiator degradation, can destabilize unstabilized HDPE and is considered an operational boundary. The formulation for this sector is 96.5–98.0 wt% HD6221, 0.8–1.2 wt% long-term heat stabilizer masterbatch, 1.8–2.2 wt% carbon black masterbatch, and 0.2–0.4 wt% processing aid. Mixing must avoid amine-based additives that can be extracted by hot coolant and discolour the reservoir; if an amine-containing coolant concentrate is used, the stabilizer package must be replaced with a non-amine system. The finished product type is a 0.5–3.0 L coolant expansion tank or washer reservoir with mounting lugs, overflow tap, and sensor bung, usually installed in the engine compartment under moderate thermal load.
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