| HS Code | 974319 |
| Product Name | Shanghai Jinfei HDPE TR144 |
| Manufacturer | Shanghai Jinfei Petrochemical Co., Ltd. |
| Grade | TR144 |
| Polymer Type | High Density Polyethylene (HDPE) |
| Density | 0.944 g/cm³ |
| Melt Flow Rate | 0.18 g/10min (190°C/2.16kg) |
| Tensile Strength At Yield | 24 MPa |
| Elongation At Break | ≥500 % |
| Flexural Modulus | 1000 MPa |
| Vicat Softening Point | 122 °C |
| Brittleness Temperature | ≤-70 °C |
| Environmental Stress Cracking Resistance | ≥1000 h |
| Shore Hardness | 60 Shore D |
| Melting Point | 130 °C |
| Water Absorption | <0.01 % |
| Thermal Conductivity | 0.4 W/m·K |
| Dielectric Strength | 20 MV/m |
| Volume Resistivity | >10^16 Ω·cm |
As an accredited Shanghai Jinfei HDPE TR144 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Shanghai Jinfei HDPE TR144 comes in 25 kg net PP woven bags or 1000 kg jumbo bags for bulk supply. |
| Container Loading (20′ FCL) | Shanghai Jinfei HDPE TR144 loaded in 20′ FCL: 25 kg bags, palletized, shrink-wrapped, and securely stowed for ocean transport. |
| Shipping | Shanghai Jinfei HDPE TR144 is a non-hazardous high-density polyethylene resin. It is shipped as general cargo, typically in 25 kg PP bags or 500–1000 kg jumbo bags, palletized and stretch-wrapped in 20' containers. Keep dry, cool, ventilated; protect from moisture, sunlight, and contamination. No special dangerous-goods handling required. |
| Storage | Store Shanghai Jinfei HDPE TR144 in a cool, dry, well-ventilated warehouse away from direct sunlight, heat, flames, and strong oxidizers. Keep original bags sealed, palletized, and off the floor to prevent moisture, dust, and contamination. Avoid prolonged UV exposure and temperatures above recommended limits. Use clean handling equipment, maintain good ventilation, and follow local regulations. |
| Shelf Life | Typically 24 months if stored in original packaging in a cool, dry, ventilated area, away from sunlight and moisture. |
Extrusion blow molding of 250 mL to 5 L household chemical bottles from Shanghai Jinfei HDPE TR144 on a single-station shuttle line imposes a narrow viscosity window that the grade enters with an MFR of 0.28–0.35 g/10 min under ISO 1133-1:2022. In a 60 mm grooved-feed extruder at an L/D of 24:1 and a compression ratio of 2.2:1, the barrel profile is typically set at 165/175/185/195 °C with an accumulator die-head temperature of 190–200 °C. The resultant head pressure at 45 rpm screw speed reaches 220–260 bar; this pressure is generated by the low melt-flow envelope and must be held below the maximum continuous rating of the die-head spiral mandrel. The die bushing is run with a land length-to-gap ratio of 12:1 and a diverging angle of 4–6° to stabilize parison swell at 30–40%. A ten-point wall-thickness programmer is applied to compensate for local thinning at the shoulder and pinch-off. Blow air at 0.55–0.70 MPa is introduced through a neck calibration pin, while mold water is maintained at 15–20 °C. A 1 L bottle with 0.75 mm nominal wall thickness runs in 12–16 s on a double-head machine. The acceptance protocol for household chemical packaging anchors ESCR to ASTM D1693-15 Condition B, 100% Igepal CO-630 at 50 °C; lots with F50 below 150 h are not released for bleach or detergent concentrate bottles. Top-load strength of empty bottles is tested under ASTM D2659 at 10 mm/min; a 1 L container is required to exceed 350 N before column buckling. Filled-bottle drop impact is run per ASTM D2463-15, with no rupture accepted from 1.2 m at -18 °C after 24 h of conditioning. Oxidation stability is monitored by ISO 11357-6, with OIT at 210 °C typically above 20 min in virgin compound. Polyethylene contact compliance for food-adjacent formats is evaluated under FDA 21 CFR 177.1520 and EU 10/2011, with overall migration below 10 mg/dm² for the finished article.
| Property | Test standard | Typical acceptance band | Processing consequence |
|---|---|---|---|
| Melt flow rate at 190 °C/2.16 kg | ISO 1133-1:2022 | 0.28–0.35 g/10 min | Controls parison sag and die-head pressure on accumulator blow molders |
| Density | ISO 1183-1:2019 | 0.945–0.949 g/cm³ | Sets bottle stiffness and top-load strength in stack testing |
| Tensile yield stress at 50 mm/min | ISO 527-2:2012 | 22–27 MPa | Correlates with burst resistance of thin-wall shoulder regions |
| Flexural modulus at 2 mm/min | ISO 178:2019 | 850–1050 MPa | Affects top-load deflection under column stack for jerricans |
| ESCR F50, 100% Igepal, Condition B | ASTM D1693-15 | ≥150 h | Primary discriminator for surfactant and oxidizing liquid packaging |
| Vicat softening temperature A50 | ISO 306:2022 | 124–128 °C | Sets mold release and heat-set limits for hot-fill adjacent operations |
| Notched Charpy impact at 23 °C | ISO 179-1/1eA | 8–14 kJ/m² | Indicates pinch-off weld toughness and drop-impact energy absorption |
Ten- to twenty-five-liter jerricans for emulsifiable-concentrate pesticides and solvent-borne agricultural formulations place HDPE TR144 in a stress-cracking environment that is more aggressive than household chlorite solutions. The operational constraint is F50 retention measured by ASTM D1693-15 Condition B, 100% Igepal, after the bottle wall has absorbed aromatic solvent. Xylene, C9–C10 alkylbenzenes, and cyclohexanone penetrate low-density segments in the semicrystalline matrix, reduce tie-molecule entanglement, and accelerate brittle failure at the pinch-off weld. A monolayer jerrican on an 80 mm accumulator-head blow molder with L/D 30:1, a barrier screw, and a 2.5 L shot capacity is run with a barrel profile of 170/185/200/205 °C and a die-head temperature of 195–205 °C. The parison programmer uses 20–25 points to create an intentionally non-uniform wall: top rim 2.0 mm, sidewall 1.8 mm, handle pinch-off 2.4 mm, and bottom corners 2.6 mm. The die land length-to-gap ratio is increased to 15:1 to suppress melt fracture when the inner PET or PA barrier layer is omitted and a fluorinated monolayer design is used. Surface fluorination is performed at 0.5–2.0% F2 in N2 at 25–60 °C for 30–120 s to reduce aromatic solvent permeation; post-fluorination surface energy falls, so label adhesion requires inline corona treatment at 45–52 mN/m measured under ISO 8296. Permeation is quantified by gravimetric weight loss at 23 °C after 28 days under ASTM D2684, and xylene uptake above 2.0 wt% is rejected because it correlates with F50 collapse below 100 h. UN certification for Packing Group II non-removable-head jerricans follows UN Model Regulations Chapter 6.1.5.3; drop height is 1.2 m at -18 °C, stack load is held for 28 days at 40 °C, and hydraulic pressure testing is applied to the vented closure assembly. Published ESCR data for this specific fluorinated configuration is limited; therefore, F50 values must be generated lot-by-lot on the actual production wall thickness rather than on compression-molded plaques.
Windshield washer reservoirs blow molded from HDPE TR144 shift the risk profile from environmental stress cracking to low-temperature impact and oxidative aging under intermittent underhood exposure. A 70 mm grooved-feed extruder on a single-station blow molder with 400–600 kN clamp force processes the grade at 180–210 °C melt temperature and 10–15 °C mold coolant. The typical reservoir weighs 0.9–1.4 kg with a wall thickness of 2.0–3.0 mm; cycle time is 60–90 s because the part is cooled below the Vicat A50 value of 124–128 °C before demolding. The material specification for washer fluid service requires retention of tensile yield stress above 75% after 168 h at 100 °C, with tensile properties re-measured under ISO 527-2:2012 after hot-air conditioning. Notched Charpy impact at -30 °C under ISO 179-1/1eA is specified above 4 kJ/m² to prevent brittle fracture when fluid freezes and expands; the design adds 10% volumetric expansion space below the fill neck. Methanol, ethanol, and surfactant-based washer fluids at 30–50% concentration are used in ESCR screening under ASTM D1693-15, but the stronger discriminator is a finished-part drop test at -30 °C from 0.8 m after 24 h of soak conditioning. HDPE TR144 is not assigned to glycol-coolant overflow bottles where continuous service exceeds 90 °C because the heat deflection temperature of the neat grade is insufficient for sustained pressure-cap loading; published data for that specific configuration is limited and the substitution should not be made without OEM thermal-cycle validation.
Closed-loop regrind from tail flash, neck trim, and non-conforming bottles introduces a second heat history that reduces the high-molecular-weight tail of HDPE TR144 and moves the MFR upward. At 10–20 wt% regrind, the MFR drift measured by ISO 1133-1:2022 is generally held within ±5% of the virgin lot value, and the die-head pressure on a 60 mm accumulator machine drops by 3–8%. At 20–30 wt%, the allowable drift is expanded to ±10%, but ESCR retention under ASTM D1693-15 must remain above 80% of the virgin F50. Above 30 wt%, the relationship between F50 and regrind fraction becomes lot-dependent because chain scission competes with oxygen-induced branching; published data for HDPE TR144 at high regrind ratios is limited, and plant validation must include oscillatory shear at 190 °C with complex viscosity at 0.1 rad/s held above 60% of the virgin value. The screw speed and barrel profile are reduced by 5–10 °C when regrind above 20 wt% is present to avoid further shear heating. Tail-flash grind size is screened through a 4 mm mesh and must be free of label adhesive residue; acetate label films act as a hydrolysis contaminant and produce surface splay in the next extrusion pass. For UN-certified dangerous goods jerricans, regrind addition is prohibited unless the packaging design type is re-tested for drop, stack, and hydraulic pressure under UN Model Regulations Chapter 6.1.5.3. In non-regulated household chemical bottles, up to 30 wt% is accepted only if the finished bottle passes top-load and burst tests at 0.45 MPa internal pressure for 60 s. The critical bottleneck is not extruder torque but inconsistent parison sag: regrind-rich lots can show a sag length increase of 8–12 mm over 10 s and require parison programmer recalibration.
| Regrind fraction | MFR drift vs virgin lot | Minimum ESCR F50 retention | Application limit |
|---|---|---|---|
| 0–10 wt% | ±5% | ≥90% | Non-regulated household and industrial packaging |
| 10–20 wt% | ±5% | ≥85% | Non-chemical stress-cracking liquids |
| 20–30 wt% | ±10% | ≥80% | Non-UN containers; lot-wise drop test required |
| >30 wt% | Lot-specific | Lot-specific | Not permitted for UN Packing Group II without full design-type revalidation |
Six-layer coextrusion blow molding for oxygen-sensitive food sauces and premium chemical formulations uses HDPE TR144 as the outer and inner structural skin because its low MFR resists layer instability in spiral mandrel tooling. A 55 mm six-layer accumulator head is operated with HDPE melt temperature at 190–210 °C, regrind at 185–205 °C, tie resin at 190–210 °C, and EVOH at 200–220 °C; the maximum head-temperature spread is limited to 15 °C to prevent interfacial wave formation. Layer distribution is controlled at outer HDPE 22–25%, regrind 35–40%, tie 2–3%, EVOH 5–7%, tie 2–3%, and inner HDPE 25–30%. The EVOH layer must remain continuous above 3 µm nominal thickness after parison inflation; below this value, oxygen transmission under ISO 15105-2 at 23 °C/50% RH rises above 2 cm³/(m²·d·bar) and the structure fails the target barrier specification. Peel adhesion between the tie layer and HDPE is measured by ASTM D1876 T-peel at 100 mm/min; values below 15 N/25 mm indicate interfacial failure and are rejected. The outer HDPE skin is formulated with 2–4 wt% white concentrate; pigment agglomerates above 20 µm create pinholes in the EVOH layer when they migrate through the tie interface. Blow air is introduced at 0.60–0.75 MPa, mold water is held at 12–18 °C, and cycle time for a 500 mL barrier bottle is 14–18 s. Food-contact compliance is assessed under FDA 21 CFR 177.1520 and EU 10/2011, with the EVOH tie layer requiring its own positive-list documentation under EU 10/2011 Annex I Table 1.
Extrusion blow molding of 100–500 mL personal care bottles from HDPE TR144 runs on a single-head shuttle machine with a 45 mm barrier screw and L/D 22:1; melt temperature is 180–205 °C, die 190–200 °C, and mold 12–15 °C. The neck finish is calibrated with a blow pin at 0.50 MPa; wall thickness varies from 0.45 mm in the label panel to 0.70 mm at the base. The melt viscosity window is narrow because lower wall sections produce shear heating at the die land; head pressure above 280 bar triggers flash and inconsistent tail pinch-off. Shampoo, body wash, and hand sanitizer formulations impose surfactant stress cracking and ethanol-induced crazing; ESCR is screened under ASTM D1693-15 Condition A and B at 50 °C, and infant-shampoo bottles additionally require no crack after 30 days in 45% ethanol at 23 °C. For pharmaceutical non-sterile packaging, USP <661.1> plastics packaging system testing applies, including extractables profiling and total organic carbon limits; the HDPE resin must be manufactured under appropriate food-contact quality controls and supported by FDA 21 CFR 177.1520 and EU 10/2011 documentation. Lot-to-lot odor is assessed by panel screening against a low-odor control; color and antioxidant migration are controlled by the masterbatch carrier melt index. An LDPE-based color masterbatch above 3 wt% lowers the blend MFR and increases die swell at the neck, causing ovality rejections. Pinch-off weld strength at the base is measured by notched Charpy impact on the welded section according to ISO 179-1/1eA; values below 6 kJ/m² are rejected. The limitation is that HDPE TR144 is not recommended for high-clarity PET-like bottles because the neat grade does not provide contact clarity below 1 mm wall thickness.
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Shanghai Jinfei HDPE TR144 is a high-molecular-weight high-density polyethylene resin supplied in pellet form for blown film extrusion and related thin-gauge converting processes. The grade designation TR144 identifies a high-load melt-flow class rather than a conventional injection-moulding flow class. Density is typically determined by ISO 1183-1:2019 Method D or ASTM D1505-18 and falls within the 0.944–0.950 g/cm³ range. Melt flow rate is tested at 190 °C under 21.6 kg load using ISO 1133-1:2022 Procedure A or ASTM D1238-20 Procedure C; the high-load value for the TR144 class is commonly reported in the 0.25–0.35 g/10 min interval. The low-load 2.16 kg MFR is generally below the reliable measurement threshold for this molecular weight range. Because lot-specific certificates of analysis may differ from the class envelope, Shanghai Jinfei’s released batch data should be treated as the controlling specification.
The resin is used in high-stalk and conventional blown film lines producing HDPE carrier sacks, refuse bags, bin liners, grocery rolls, thin industrial sheeting, and agricultural film. It is selected where a combination of high melt strength, bubble stability, and thin-gauge stiffness is required. The material is commonly processed on grooved-feed single-screw extruders with barrier screws and spiral mandrel dies; it is not intended for injection moulding, blow moulding of containers, or cast film lines without reformulation.
For high-load HDPE grades such as TR144, the 21.6 kg melt index is a more process-relevant indicator than density alone. The high molecular weight fraction raises extensional viscosity and stabilises the blown film bubble, while the broader molecular weight distribution contributes to shear thinning during screw plastication and die flow. In film extrusion, a narrow molecular weight distribution at the same melt index can produce lower melt pressure and poor bubble stability at low frost line heights. The grade is therefore characterised by both high-load MFR and the shape of the molecular weight distribution rather than by a single density value.
Rheologically, the melt is expected to exhibit pronounced shear thinning. At the low shear rates encountered in the bubble, extensional viscosity is high enough to prevent sag and bubble breathing. At the higher shear rates in the die lip, viscosity is reduced sufficiently to limit head pressure. This behaviour is typical of HMW-HDPE film grades and is the primary reason TR144 is differentiated from high-flow injection moulding HDPE, which has a much lower molecular weight and cannot sustain thin-gauge bubble stability above a 4:1 blow-up ratio.
In production, the high-load MFR is not used as a direct control parameter for film gauge; gauge control is driven by die gap, blow-up ratio, haul-off speed, and internal bubble cooling. Acceptance testing is nevertheless anchored to the high-load MFR because it is sensitive to lot-to-lot molecular weight shifts. The TR144 designation is supplier-specific and does not correspond to an ISO or ASTM polymer classification. Products with the same numerical code from other suppliers may not have the same comonomer type, catalyst type, or additive package. Buyers should compare the certificate of analysis against the processing equipment and end-use standard rather than relying on grade-name equivalence alone.
On production-scale blown film lines, Shanghai Jinfei HDPE TR144 is typically processed through a grooved-feed single-screw extruder with an L/D ratio of 25:1 to 30:1 and a barrier screw fitted with a Maddock or spiral mixer. Screen packs of 60/100/60 mesh are common, although film below 15 µm may require 120 mesh filtration to remove micro-gels. Die gap settings from 0.8 mm to 1.2 mm are used to control shear history; narrow die gaps raise head pressure and can initiate sharkskin melt fracture in high-molecular-weight melts. The frost line height is maintained at 6 to 10 die diameters to balance quench rate and bubble flutter. Blow-up ratio is typically 3:1 to 5:1 for HMW-HDPE film, with 4:1 as a frequent starting point.
Published data for the exact Shanghai Jinfei HDPE TR144 batch configuration is limited in publicly accessible technical literature. The following table is a representative acceptance envelope for high-load HMW-HDPE film grades of the TR144 class, not a substitute for a buyer-seller specification.
| Property | Test method | Typical range | Unit |
|---|---|---|---|
| Density | ISO 1183-1:2019 / ASTM D1505-18 | 0.944–0.950 | g/cm³ |
| Melt flow rate | ISO 1133-1:2022 / ASTM D1238-20 | 0.25–0.35 | g/10 min |
| Tensile stress at yield | ISO 527-2:2012 / ASTM D638-22 | 22–28 | MPa |
| Elongation at break | ISO 527-2:2012 / ASTM D638-22 | 500–900 | % |
| Dart impact F50 | ASTM D1709-22 Method A | 180–400 | g |
| Vicat softening point | ISO 306:2022 / ASTM D1525-17 | 120–126 | °C |
These ranges are thickness-dependent for film properties; dart impact and tear values are valid only at a defined film gauge, usually 25 µm for HMW-HDPE film comparisons. The yield stress and elongation values are measured on compression-moulded specimens prepared according to ISO 1872-2:2007 or ASTM D4703-16, with conditioning at 23 ± 2 °C and 50 ± 10 % RH.
Thermal stability during extrusion is a practical constraint. For HMW-HDPE film grades, melt temperatures above 220 °C can initiate oxidative gel formation, especially in long residence-time screw sections. A recommended extrusion melt temperature window is 190–220 °C. Barrel zones are typically set from 170 °C near the feed throat to 210 °C at the die adaptor. Pre-drying is not normally required for HDPE pellets, but condensation on cold pellets should be avoided when silo-to-extruder temperature differences exceed 15 °C. If surface moisture is present, a hopper dryer at 70–80 °C for 2–4 h may be used. Long hold-up times in heated hoppers should be avoided because additive migration to pellet surfaces can alter slip and blocking behaviour.
In thin-gauge sack extrusion, Shanghai Jinfei HDPE TR144 differs from linear low-density polyethylene in stiffness, ambient-temperature modulus, and dart impact. HDPE film of the TR144 class typically exhibits higher tensile modulus and lower elongation at break than LLDPE-rich films of equivalent gauge. The higher modulus allows down-gauging of carrier sacks while retaining longitudinal stiffness, but dart impact and puncture resistance may be lower than in octene-based LLDPE at the same gauge. The grade is therefore used in applications requiring stiffness and tensile strength rather than high puncture or stretch performance.
Compared with general-purpose HDPE injection moulding grades, TR144 is far lower in melt flow and is not suitable for filling complex moulds. Compared with HDPE blow moulding grades for bottles, TR144 is optimised for blown film die swell and bubble stability rather than parison hang strength and weight distribution. Compared with LDPE film grades, TR144 has higher density and crystallinity, giving higher stiffness but lower clarity and tear resistance in many film constructions.
| Property | TR144-class HMW-HDPE film grade | LLDPE blown film grade | HDPE injection moulding grade |
|---|---|---|---|
| Density | 0.944–0.950 g/cm³ | 0.918–0.930 g/cm³ | 0.950–0.965 g/cm³ |
| Melt flow condition | 21.6 kg | 2.16 kg | 2.16 kg |
| Typical MFR | 0.25–0.35 g/10 min | 0.5–2.0 g/10 min | 8–20 g/10 min |
| Tensile yield stress | 22–28 MPa | 10–15 MPa | 25–32 MPa |
| Elongation at break | 500–900 % | 800–1200 % | 100–600 % |
| Primary processing difference | High bubble stability at thin gauge | High dart impact and stretch | Low melt viscosity for fast mould filling |
Differences from other HDPE film grades are often measured through the high-load MFR, density, and gel rating. A lower high-load MFR indicates a higher molecular weight fraction and may improve dart impact and bubble stability but raises extruder head pressure and reduces screw throughput. A higher density within the HDPE range increases stiffness and water-vapour barrier but reduces stress-crack resistance. The TR144 class is balanced toward film extrusion with density near 0.946 g/cm³ and high-load MFR near 0.30 g/10 min.
Compatibility constraints apply. Shanghai Jinfei HDPE TR144 should not be blended with significant quantities of polypropylene without a compatibiliser; dispersed PP domains in HDPE create interfacial weakness and visible gels at PP addition levels above approximately 2 wt%. Cross-contamination with LDPE or LLDPE is more tolerant but alters melt strength and bubble stability. To avoid gel tails and off-spec film during grade transitions, purging with a low-viscosity HDPE or dedicated purging compound is recommended before running TR144 after high-flow HDPE or PP campaigns.
Regulatory acceptance must be confirmed with the specific supplier documentation. High-density polyethylene homopolymer or copolymer grades may be evaluated for food-contact compliance under 21 CFR 177.1520 for olefin polymers, but the presence of processing stabilisers and the exact comonomer type require supplier confirmation. Shanghai Jinfei should provide documentation for REACH registration and RoHS Directive 2011/65/EU compliance when required by the converting market. These compliance claims are not inferable from the TR144 designation alone.
Storage conditions affect processing consistency. Pellets should be stored in closed hoppers or sealed bulk containers away from UV exposure and moisture condensation. Extended outdoor storage in translucent silos can cause surface oxidation and yellowing. The recommended storage temperature is below 40 °C, and inventory rotation should follow first-in-first-out discipline to limit moisture pickup and additive migration. Before start-up, the feeding system should be inspected for fines accumulation; excessive fines can cause feed instability and create gels in the film.
No conclusion is presented. The selection of Shanghai Jinfei HDPE TR144 for a specific blown film product should be based on a reviewed certificate of analysis, trial film properties at the intended gauge, and documented converter acceptance limits.