| HS Code | 742476 |
| Productname | Shanghai Jinfei HDPE TR550 |
| Materialtype | High-density polyethylene |
| Gradeclassification | PE100 |
| Application | Pressure pipe |
| Density | 0.949-0.953 g/cm³ |
| Meltflowrate | 0.20-0.30 g/10 min (190°C/5.0 kg) |
| Tensileyieldstrength | ≥23 MPa |
| Elongationatbreak | ≥600% |
| Flexuralmodulus | ≥900 MPa |
| Vicatsofteningtemperature | ≥120 °C |
| Oxidationinductiontime | ≥20 min (200°C) |
| Carbonblackcontent | ≥2.0% |
| Environmentalstresscrackingresistance | ≥1000 h |
| Minimumrequiredstrength | 10.0 MPa |
| Color | Black |
As an accredited Shanghai Jinfei HDPE TR550 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Shanghai Jinfei HDPE TR550 is packaged in 25 kg polypropylene woven bags, stacked on pallets, 40 bags per pallet. |
| Container Loading (20′ FCL) | 20′ FCL container loading of Shanghai Jinfei HDPE TR550 in 25 kg bags, palletized, stretch-wrapped, and securely lashed for ocean shipment. |
| Shipping | Shanghai Jinfei HDPE TR550 is a non-hazardous high-density polyethylene resin. It is not regulated for transport by DOT, IMDG, IATA, or ADR. Ship in sealed 25 kg bags or bulk containers, keep dry, avoid heat and UV, and protect from contamination. No UN number or hazard class required. |
| Storage | Store Shanghai Jinfei HDPE TR550 in a cool, dry, well-ventilated area away from direct sunlight, heat, sparks, and flames. Keep original bags sealed on pallets to prevent moisture, dust, and contamination. Avoid contact with strong oxidizers. Observe stack-height limits and use first-in, first-out. Protect from mechanical damage and ignition sources. Maintain good housekeeping. |
| Shelf Life | Stored cool, dry, ventilated, away from sunlight, Shanghai Jinfei HDPE TR550 typically has a 12-month shelf life. |
In monolayer extrusion blow moulding of high-density polyethylene containers rated from 1 L to 60 L for detergent, lubricant, and neutral chemical packaging, Shanghai Jinfei HDPE TR550 is processed as the primary resin without filler; incoming lot acceptance is normally set at a melt mass-flow rate not exceeding 0.5 g/10 min at 190 °C/2.16 kg under ISO 1133-1:2022 and a density of 0.955–0.959 g/cm³ under ISO 1183-1:2019. Compliance for this conversion path is anchored to UN 3H1/3H2 design-type approval for dangerous goods jerricans when the filled container carries liquid hazard classes, with testing covering drop height, stack load, and hydraulic pressure retention; for non-hazardous household products the purchasing specification references REACH Annex XVII restrictions on lead, cadmium, and phthalate carriers and EU No 10/2011 where a food-contact claim is made, while mechanical acceptance references ASTM D638-14 for tensile yield and ASTM D1693-15 method B for environmental stress-crack resistance in 100% Igepal CO-630 at 50 °C. The formulation addition ratio depends on exposure and colour: a PE-carrier colour masterbatch is dosed at 1.0–2.0 wt% for opaque white or tinted containers, a UV-stabilizer masterbatch is added at 0.5–2.0 wt% when the container is stored outdoors for more than 3 months, and an antistatic masterbatch is used at 0.5–1.5 wt% only for flammable or combustible liquids where static discharge is a documented hazard. A fluoropolymer processing aid is limited to 0.02–0.05 wt% in high-regrind runs; no plasticizer, inorganic filler, or chain-extending additive is added because each reduces ESCR or shifts parison sag. On production-scale shuttle blow moulding lines, a grooved-feed extruder with L/D 24:1–30:1 and a 45–75 mm screw raises barrel temperature from 180 °C at the feed zone to 220–230 °C at the metering zone, while the die head is held at 200–225 °C and the mould cooling circuit is kept at 10–30 °C. Blow-up ratio is set between 2.0:1 and 3.5:1 for handleware and jerricans, parison programming adjusts die gap at 50–100 control points, and clamp force is selected between 120 kN and 400 kN for multi-cavity 1–20 L moulds. Cycle times fall between 25 s and 60 s for 2–10 L bottles and 60–90 s for 20–25 L jerricans; the primary processing failure modes are flash intrusion at low clamp force, side-wall thinning at excessive blow-up ratio, and shark-skin melt fracture when the melt temperature falls below 195 °C. Terminal product types include 1–5 L detergent and home-care bottles, 10–20 L lubricant packagings, and 25–60 L UN-rated chemical drums for agricultural adjuvants, processing fluids, and neutral water-based formulations.
The limiting parameter in 200 L L-ring drum fabrication is not the melt index of TR550 but the parison sag and wall-thickness distribution produced in the accumulator-head cycle. Design-type approval for dangerous-goods transport follows UN 1H1 non-removable-head and UN 1H2 open-head drum protocols, including drop protection at -18 °C after conditioning, hydraulic pressure retention, and stack-load deformation limits; drum specifications are additionally checked against ISO 20848-1 and ASTM D1998-13 where applicable, while tensile data reference ASTM D638-14 and ESCR data reference ASTM D1693-15. For outdoor-stored drums, a UV-HALS masterbatch is incorporated at 1.0–2.5 wt% to achieve an active HALS concentration of 0.2–0.4 wt%; a blue or black colour masterbatch is dosed at 1.0–2.0 wt%, and an internal lubricant or release agent is held at 0.1–0.3 wt%. Clean regrind from deflashed top and bottom slugs is reintroduced at 15–30 wt% for UN drop-test batches and up to 50 wt% for non-regulated industrial drums, provided the sieve fraction does not exceed 8 mm and moisture is below 0.05 wt%. Production-level accumulator-head blow moulding equipment typically uses a 90–120 mm grooved-feed extruder with L/D 30:1, a discontinuous accumulator head with shot capacity of 20–30 L, and a first-in/first-out melt path. The melt temperature is controlled between 220 °C and 235 °C, die head temperature at 210–230 °C, and mould temperature at 8–15 °C to shorten conditioning. A 100-point parison programmer opens the die gap from 4–8 mm at the neck to 12–20 mm at the bottom to compensate for sag, and the clamp force is set at 1500–3000 kN. Cycle time for a 200 L drum is 240–480 s depending on wall thickness, cooling time, and post-mold curing; the main failure modes are fold-back or knit-line leakage at the pinch-off seam, wall thickness below 1.5 mm at the chime, and cold spots when the accumulator head zone drifts below 205 °C. Terminal product types include 200 L L-ring drums, 120–220 L open-head containers, and 150 L chemical drums used for lubricants, solvents, and solid particulates.
| Machine class | Extruder diameter | Melt temperature | Die head temperature | Blow-up ratio | Cycle time | Clamp force |
| Shuttle blow moulder for 1–20 L | 45–75 mm | 200–230 °C | 200–225 °C | 2.0:1–3.5:1 | 25–90 s | 120–400 kN |
| Accumulator-head line for 120–220 L drums | 90–120 mm | 220–235 °C | 210–230 °C | 1.5:1–2.5:1 | 240–480 s | 1500–3000 kN |
| Six-layer coextrusion line for diesel exhaust fluid tanks | 70–120 mm main / 35–60 mm satellites | 220–240 °C | 210–230 °C | 2.0:1–3.0:1 | 180–360 s | 2000–3500 kN |
Because agricultural chemical formulations contain emulsifiable concentrates, surfactant systems, and hydrocarbon carriers, the selection of TR550 for this conversion path is governed by environmental stress-crack resistance rather than short-term tensile strength. The dominant compliance path is UN 3H1 jerrican certification for liquid pesticides, supported by storage stability tests under the FAO/WHO Manual on development and use of FAO and WHO specifications for pesticides and, for the United States, packaging and labeling requirements under 40 CFR Part 156. The resin lot is screened with ASTM D1693-15 method B in 100% Igepal CO-630 at 50 °C; the acceptance threshold is set by the buyer’s quality plan and is rarely below 500 h when the packaged liquid contains high-surfactant formulations. Carbon black masterbatch at 1.5–3.0 wt% is used for UV-opaque containers, and UV-stabilizer masterbatch at 1.0–2.0 wt% is added for multi-season use. Metal stearate internal lubricants are kept below 0.3 wt% to avoid die lip deposit and reduced pinch-off weld integrity, and no antistatic masterbatch is used unless specified by the filler’s flammability classification, in which case the loading is capped at 1.0 wt%. Continuous-extrusion blow moulding on 60–80 mm grooved-feed extruders with L/D 28:1–30:1 uses melt temperature 190–220 °C, die head temperature 200–220 °C, and mould temperature 10–20 °C. Pre-drying at 80 °C for 2–4 h is required when the regrind charge exceeds 30 wt% or ambient relative humidity exceeds 70% to prevent surface splay and micro-voids that lower ESCR. Regrind is limited to 25 wt% for UN jerrican production and 50 wt% for non-UN containers. The pinch-off weld is designed with a minimum root thickness of 1.0 mm and an angle of 30–45° to avoid notch initiation. Cycle time is 45–90 s for 5–20 L containers. Terminal product types include 5–20 L agricultural chemical jerricans, multi-trip containers for crop protection emulsifiable concentrates and plant growth regulators, and single-trip adjuvants packaging.
Food-contact monolayer bottles for edible oil use TR550 only when the lot-specific certificate demonstrates compliance with FDA 21 CFR 177.1520 for olefin polymers and the finished article is tested according to EU No 10/2011 overall migration limits of 10 mg/dm² for food simulants; Chinese domestic shipments may additionally reference GB 4806.7-2016 for polyolefin food-contact articles. A titanium dioxide masterbatch at 0.5–1.5 wt% is added only if a white tint is required and must comply with the EU No 10/2011 positive list; no slip agent or external lubricant is used unless specified for processing, and any food-approved internal lubricant is held at or below 0.1 wt%. Clean edge-trim regrind is reintroduced at 20–30 wt%, never exceeding 50 wt%, and only from the same product run to avoid cross-contamination with non-food regrind. Extrusion blow moulding on linear or rotary machines with 45–65 mm extruders, L/D 24:1–28:1, barrel temperatures 180–220 °C, die head 200–220 °C, and mould temperature 10–25 °C. Melt screen packs of 60/120 mesh are installed upstream of the head to remove carbonized gels. Blow-up ratio is held at 2.2:1–3.0:1. Cycle time is 20–45 s for 0.5–2 L bottles and 45–80 s for 3–5 L bottles. Terminal product types include 500 mL–5 L edible oil bottles, sauce and condiment containers, and food-service syrup bottles.
When a multi-layer coextrusion structure demands an outer HDPE layer with high melt strength and ESCR, TR550 can be assigned to the outer and inner cap layers while the barrier layer is an ethylene-vinyl alcohol copolymer with 32–38 mol% ethylene. Functional compliance is verified against ISO 22241-1 for diesel exhaust fluid quality and handling, while the tank design is tested according to OEM specifications for pressure cycling, stone impact, and chemical immersion; mechanical property measurements follow ISO 527-2:2012 for tensile, ISO 179-1:2010 for Charpy notched impact, and ASTM D638-14 for comparative tensile data. Published data for TR550 in this exact six-layer configuration is limited; therefore, layer adhesion and barrier retention must be confirmed by pilot-scale trials before production release. The outer-layer formulation is 100 parts by weight TR550, carbon black masterbatch at 1.5–2.5 wt% for UV shielding, antioxidant masterbatch at 0.3–0.8 wt%, and a maleic anhydride grafted polyethylene tie-layer resin in the adjacent adhesive layers. Regrind from trimmed flash is introduced at 40–60 wt% into a dedicated regrind layer, with sieve size below 6 mm and moisture below 0.03 wt%. Six-layer coextrusion blow moulding uses a 70–120 mm main extruder for the HDPE outer layer and 35–60 mm satellite extruders for tie and EVOH layers, each with L/D 28:1–30:1. Melt temperatures are 220–240 °C for TR550, 205–225 °C for EVOH, and 210–230 °C for tie resins; the accumulator head has 100-point parison programming, die gap range 5–15 mm, and the mould clamp force is 2000–3500 kN. The mould is maintained at 10–20 °C, and cycle time is 180–360 s. The primary processing conflict is thermal mismatch between EVOH and HDPE: barrel residence time of EVOH must not exceed 30 min at temperatures above 220 °C to prevent gel formation, while TR550 requires sufficient heat to eliminate melt fracture. Start-up purging uses a high-viscosity HDPE purge compound until no brown EVOH gels are visible at the die exit. Terminal product types include 10–30 L diesel exhaust fluid tanks, 20–35 L SCR urea tanks, and heavy-duty vehicle fluid reservoirs.
| Application | Compliance framework | Test method / standard | Critical parameter |
| Food-contact edible oil bottles | FDA 21 CFR 177.1520; EU No 10/2011; GB 4806.7-2016 | ISO 1183-1:2019, ISO 1133-1:2022 | Overall migration ≤ 10 mg/dm² |
| UN-rated chemical jerricans/drums | UN 3H1/3H2/1H1/1H2 | Hydraulic pressure, drop test, stack load | No leakage after drop at -18 °C |
| Agricultural chemical packaging | FAO/WHO specification manual; 40 CFR Part 156 | ASTM D1693-15 | ESCR F50 threshold per buyer quality plan |
| Diesel exhaust fluid tanks | ISO 22241-1; OEM specification | ISO 527-2:2012, ISO 179-1:2010 | Impact and adhesion at -30 °C |
Historically, extrusion blow moulding of personal care and cosmetic bottles with TR550 has concentrated on high-density polyethylene containers where surface gloss, drop resistance, and fragrance barrier are less demanding than in stretch-blow PET; the conversion route is viable for 100–500 mL thick-wall jars and 150–1000 mL lotion bottles. Cosmetic packaging compliance uses EU Regulation (EC) No 1223/2009 for cosmetic product safety and, where relevant, REACH Annex XVII; when a food-contact claim is not made, EU No 10/2011 overall migration testing is normally waived. A white masterbatch at 1–2 wt% is used for light-blocked lotions, a pearlescent masterbatch at 0.5–1.0 wt% may be used for surface effect, and no external lubricant is added. Regrind is allowed up to 30 wt% from same-family production, but not from coloured runs with incompatible pigments. Extrusion blow moulding on shuttle or reciprocating machines with 40–60 mm screws, L/D 22:1–25:1, barrel temperatures 180–215 °C, die head 195–215 °C, and mould temperature 15–25 °C. Blow-up ratio is held at 2.0:1–2.8:1; cycle time is 15–30 s for small containers. The primary defects are sink marks at the neck, die lines from contaminated die lips, and pinholes when the parison is overstretched at high blow-up ratios. Terminal product types include HDPE jars, lotion bottles, hair care containers, and cosmetic primary packaging where the filling line operates at ambient temperature and no oxygen barrier is required.
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Shanghai Jinfei HDPE TR550 is supplied as a pelletised high-density polyethylene. The grade is positioned for extrusion blow moulding and thick-section profile applications where high melt strength, low parison sag and environmental stress crack resistance are required. Open-source technical data sheets for this specific designation remain limited; therefore, the property bands in this document are drawn from comparable high-molecular-weight HDPE blow moulding resins and from production equipment observations. The controlling lot-specific values must be obtained from the Shanghai Jinfei certificate of analysis and technical data sheet. All property statements are tied to a test method designation or production equipment configuration before acceptance.
Indicative property matrix for high-molecular-weight HDPE blow moulding resins used in the same segment as Shanghai Jinfei HDPE TR550.
| Property | Test method | Indicative HMW HDPE blow moulding band | Condition |
|---|---|---|---|
| High-load melt index | ISO 1133-1:2022 | 4–12 g/10 min | 190 °C, 21.6 kg |
| Density | ISO 1183-1:2022 | 0.945–0.957 g/cm³ | 23 °C |
| Tensile yield strength | ASTM D638-14 | 22–30 MPa | 50 mm/min |
| Elongation at break | ASTM D638-14 | >600% | 50 mm/min |
| Flexural modulus | ISO 178:2019 | 800–1100 MPa | 2 mm/min, 23 °C |
| Environmental stress crack resistance, F50 | ASTM D1693-15, condition B | >300 h | 10% Igepal CO-630, 50 °C |
| Vicat softening temperature, A50 | ISO 306:2022 | 120–128 °C | 10 N, 50 °C/h |
| Brittleness temperature | ASTM D746-20 | <-70 °C | Notched specimen |
Lot-specific variation in high-load melt index can shift parison sag and die swell; therefore, incoming resin should be checked under ISO 1133-1:2022 before tooling diameters are fixed. Density values below 0.945 g/cm³ can reduce stiffness, while values above 0.957 g/cm³ can reduce environmental stress crack resistance and impact toughness. The flexural modulus band of 800–1100 MPa is typical for high-molecular-weight blow moulding resins at 23 °C and 2 mm/min; injection-gauge specimens should not be used to predict blow-moulded part stiffness without applying wall-thickness and knit-line corrections.
Accumulator-head extrusion blow moulding of Shanghai Jinfei HDPE TR550 requires a melt-temperature range at the die of 180 °C to 220 °C. Below 180 °C, the risk of sharkskin, weld-line weakness and excessive die swell increases on single-screw extruders with barrier screws and L/D 25:1 to 30:1; above 220 °C, parison sag becomes the controlling defect, especially for shot sizes above 5 L on accumulator-head machines. The screw should be run with a cooled feed throat and a decompression profile to avoid bridging of pellets. Back pressure at the extruder discharge is typically maintained between 10 MPa and 25 MPa when a melt pump is used, but the exact target is set by output stability. Die swell for high-molecular-weight HDPE in this segment is commonly 1.3:1 to 1.6:1; tooling diameter must be confirmed by parison diameter measurement because a change of 0.05 g/10 min in high-load melt index can alter swell enough to shift wall-thickness distribution by ±10% at constant tooling. Accumulator head fill speed and push-out speed are set to maintain parison drawdown below 15% before mould closing.
Industrial container evaluations for Shanghai Jinfei HDPE TR550 include intermediate bulk containers, jerry cans, and automotive fluid reservoirs. Stress-cracking resistance is measured under ASTM D1693-15 condition B with 10% Igepal CO-630 at 50 °C; pass criteria for critical packaging are typically an F50 greater than 300 h, but the value must be lot-specific because high-load melt index and comonomer distribution control ESCR. Stacking performance is assessed under ASTM D2659-16 or equivalent compression creep at 40 °C and 50% RH; finite-element wall-thickness maps from parison programming are used before prototype tools are cut. For dangerous goods packaging, United Nations recommendations require drop testing at 1.2 m for packing group II materials with relative density not exceeding 1.2, after conditioning at −18 °C for the original design type. Chemical compatibility with aliphatic hydrocarbons, alcohols and dilute acids must be confirmed by immersion testing according to ISO 4433-1:1997 or supplier-specific coupons; high-density polyethylene is not suitable for strong oxidizers, chlorinated solvents, or aromatic hydrocarbon service without specific barrier or fluorination treatment.
Comparison with lower-molecular-weight injection HDPE and film HDPE isolates the TR550 class differences. The data in the table below are expected bands for high-molecular-weight blow moulding HDPE, general-purpose injection HDPE, and film-grade HDPE; lot-specific certificates for Shanghai Jinfei HDPE TR550 govern the actual value.
| Attribute | Shanghai Jinfei HDPE TR550 expected band | General-purpose injection HDPE | Film-grade HDPE | Test method |
|---|---|---|---|---|
| Melt flow rate, 190 °C, 2.16 kg | <0.5 g/10 min; use HLMI at 21.6 kg | 20–40 g/10 min | 0.5–1.0 g/10 min | ISO 1133-1:2022 |
| Density | 0.945–0.957 g/cm³ | 0.952–0.965 g/cm³ | 0.944–0.955 g/cm³ | ISO 1183-1:2022 |
| Environmental stress crack resistance, F50 | >300 h | 3–20 h | 40–100 h | ASTM D1693-15, condition B |
| Flexural modulus | 800–1100 MPa | 1000–1500 MPa | 600–900 MPa | ISO 178:2019 |
| Notched Izod impact, 23 °C | 20–35 kJ/m² | 5–15 kJ/m² | 15–25 kJ/m² | ISO 180:2023 |
These differences affect tooling decisions. Injection grades with high melt flow rate cannot be substituted into TR550 blow moulding operations without rebuilding the screw profile, because the lower viscosity at 190 °C causes excessive parison sag and poor weld strength. Film grades may have adequate melt strength but generally lack the environmental stress crack resistance needed for aggressive liquid packaging. Conversely, TR550 is not suitable for thin-wall injection moulding because its high melt viscosity at 2.16 kg is near the lower detection limit and would require high injection pressures on standard 80–120 MPa hydraulic injection units.
For thick-wall sheet and large-diameter pipe, Shanghai Jinfei HDPE TR550 can be evaluated on grooved-feed extruders with a screw diameter from 45 mm to 120 mm and a barrel length of 30D to 36D. The resin’s high melt strength supports calendering of sheet from 3 mm to 20 mm without edge draw-down, but die line tolerances require a melt-pressure stability of ±0.5 MPa at the adapter. Pipe extrusion trials should monitor hydrostatic design basis under ISO 9080:2012 and slow-crack-growth resistance under ISO 13479:2022; published data for Shanghai Jinfei HDPE TR550 in pressure-pipe certification are limited, so suppliers should be asked for notched-pipe test data before pipe-grade substitution. Surface blemishes from moisture condensation can be controlled by pre-drying at 75 °C for 2 h when storage relative humidity exceeds 60%.
Tooling changes are required when Shanghai Jinfei HDPE TR550 replaces a general-purpose blow moulding grade in a mould with tight pinch-off inserts. The pinch-off land should be 0.5 mm to 1.5 mm wide, with a minimum land height of 0.2 mm above the mould parting line, to avoid cutting through the parison before weld formation. Higher-molecular-weight HDPE generates a coarser melt fracture at high shear; die gaps below 1.0 mm can produce surface defects unless the melt temperature is raised within the 180–220 °C envelope. The movement of the mould close on accumulator-head machines should be slowed in the last 20 mm of travel to allow trapped air to escape, preventing pinch-off voids. In-mould labelling or fluorination of blow-moulded containers should be qualified at the production line because a 5–10 °C shift in die temperature can alter label adhesion on HDPE surfaces. If the tool uses a needle blow pin, the pin must be maintained at 120–140 °C to prevent cold-surface skid marks.
Because high-molecular-weight HDPE retains significant melt strength, regrind utilization in Shanghai Jinfei HDPE TR550 extrusion blow moulding can be higher than in injection moulding; however, closed-loop control is required. The addition of in-plant regrind from trimmed flash is generally permitted up to 30 wt%, but the retained fraction of stabilizer and the increase in gel particles must be monitored by melt filtration using a 200-mesh screen pack. Incoming regrind from general-purpose injection HDPE should be limited to 15 wt% or less because its lower molecular weight reduces ESCR under ASTM D1693-15 and may reduce pinch-off weld strength below the level required for UN-certified containers. Amine-based masterbatches and certain acid-catalyzed silane moisture-cure systems should be avoided unless explicitly approved by Shanghai Jinfei, because premature crosslinking or additive interaction can create gels and impair surface quality. Storage in unlined metal silos at temperatures above 40 °C can initiate oxidative yellowing; use of nitrogen-blanketed silos or 24 h inventory turns is recommended in high-humidity coastal locations.
For regulatory submissions and end-use qualification, compliance documentation for Shanghai Jinfei HDPE TR550 should be obtained for each production lot. The base HDPE is expected to satisfy the monomer and additive requirements of EU Regulation (EC) No 1935/2004 and FDA 21 CFR 177.1520 when used as an indirect or repeated-use food-contact material, but food-contact suitability is end-use dependent and requires migration testing under FDA 21 CFR 177.1520 or Commission Regulation (EU) No 10/2011. The grade should be checked for heavy metals and short-chain chlorinated paraffins under Directive 2011/65/EU (RoHS) and REACH Annex XVII if the finished article is placed in the European Union. No claim of medical-grade or potable-water suitability is made by this document unless the supplier provides a written compliance letter for the specific lot and conversion plant. The purchaser must also verify that external lubricants, antistats, or color masterbatches do not conflict with the supplier’s warranty for sunlight exposure or environmental stress crack resistance.