| HS Code | 993317 |
| Density | 0.954 g/cm³ |
| Melt Flow Rate 190 C 2 16 Kg | 0.20 g/10 min |
| Melt Flow Rate 190 C 5 Kg | 0.80 g/10 min |
| Tensile Modulus | 1150 MPa |
| Tensile Stress At Yield | 27 MPa |
| Tensile Strain At Yield | 9% |
| Tensile Strain At Break | >600% |
| Flexural Modulus | 1200 MPa |
| Charpy Notched Impact Strength 23 C | 20 kJ/m² |
| Charpy Notched Impact Strength 30 C | 8 kJ/m² |
| Vicat Softening Temperature | 127°C |
| Shore D Hardness | 65 |
| Ball Indentation Hardness | 50 MPa |
| Environmental Stress Cracking Resistance F50 | >1000 h |
| Melting Temperature | 131°C |
| Crystallization Temperature | 117°C |
| Thermal Conductivity | 0.4 W/(m·K) |
| Volume Resistivity | >10^15 Ω·cm |
| Dielectric Constant 1 Mhz | 2.3 |
| Water Absorption | <0.01% |
As an accredited Ningxia Baofeng Energy HDPE TRB432 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Ningxia Baofeng Energy HDPE TRB432 is packaged in 25 kg polyethylene-lined woven bags, and optionally 1000 kg jumbo bags. |
| Container Loading (20′ FCL) | 20′ FCL loading of Ningxia Baofeng Energy HDPE TRB432: 25 kg bags, palletized, shrink-wrapped, strapped, and secured for ocean transport. |
| Shipping | Shipping description: Ningxia Baofeng Energy HDPE TRB432 is a non-hazardous thermoplastic polymer, typically packed in 25 kg PP woven bags or 1,000 kg jumbo bags, palletized and stretch-wrapped. Ship in clean, dry containers or trucks; store away from moisture, heat, and direct sunlight. Not regulated for transport; no UN number required. |
| Storage | Store Ningxia Baofeng Energy HDPE TRB432 in a cool, dry, well-ventilated warehouse, away from direct sunlight, heat, moisture, and ignition sources. Keep original bags sealed and palletized off the floor. Avoid contact with strong oxidizers and excessive stacking. Maintain clean handling areas, follow SDS requirements, use first-in, first-out stock rotation, protect from physical damage, and do not expose to open flames. |
| Shelf Life | Ningxia Baofeng Energy HDPE TRB432: about 24 months shelf life when stored sealed, dry, cool, and away from direct sunlight. |
During shuttle-type extrusion blow molding of 20-L to 30-L industrial jerrycans from Ningxia Baofeng Energy HDPE TRB432, the parison is accumulated through a diverging die head and then inflated inside a chilled aluminium mold at clamp forces between 150 kN and 350 kN, depending on cavity layout and pinch-off configuration. The melt temperature envelope is maintained at 180 °C to 205 °C along the extruder barrel and die head, with the mandrel and bushing set to an initial gap of 0.8 mm to 1.2 mm and expanded by parison programming at the lower neck and upper handle regions to offset thinning where the parison stretches most aggressively. High-molecular-weight HDPE grades such as TRB432 are processed without predrying under ambient conditions below 60% relative humidity; if surface condensation has occurred during ocean freight or warehouse storage, a hopper dryer set to 60 °C to 70 °C for 1 h to 2 h is applied to restore surface consistency before extrusion. Additive ratios in this segment are not universal; a typical UV-stabilized formulation incorporates 0.2 wt% to 0.5 wt% hindered amine light stabilizer masterbatch and 1.0 wt% to 3.0 wt% color concentrate, with processing aid limited to 0.05 wt% to 0.10 wt% to avoid parison instability and die-lip deposit formation. Compliance is anchored to UN dangerous goods packaging certification, specifically the drop and stacking provisions of ADR 6.1.5 and EN ISO 16495, with lot-level density verified by ISO 1183-1 and melt flow rate by ISO 1133-1:2022 at 190 °C and 2.16 kg. Chemical compatibility for non-oxidizing acids, alkalis, and detergent formulations is assessed by ASTM D543 immersion exposure at 40 °C for 7 days, followed by tensile property retention testing per ASTM D638-14 Type IV specimens. Pinch-off weld integrity, the principal failure locus in jerrycan production, is evaluated by burst testing and by drop testing at -18 °C after conditioning; published lot-specific ESCR data for TRB432 should be obtained from the certificate of analysis, and converters are advised not to substitute nominal data sheet values for destructive package qualification.
Production of 220-L tight-head drums from TRB432 occurs on accumulator-head blow molders with single-screw diameters of 90 mm to 120 mm and grooved feed sections, typically at L/D ratios from 24:1 to 30:1. The parison weight for a UN-rated 1H1 drum is often in the 8.0 kg to 12.0 kg range, which imposes a narrow extrusion temperature window because parison sag before mold closing determines top-to-bottom wall distribution and ultimate drop performance after filling. Melt temperatures are held at 180 °C to 200 °C at the die head, with mold temperatures of 10 °C to 25 °C and blow pressures of 0.6 MPa to 1.0 MPa; cooling time alone frequently exceeds 150 s to 220 s before demolding to limit post-mold deformation and ovality at the chime. Demolding force becomes critical because the drum sidewall is not uniformly crystallized when the mold opens; localized shrinkage differences of 1.5% to 2.0% between the pinch-off zone and the sidewall can produce ejection loads that exceed 60 kN on tight-mandrel tooling, especially when demolding is attempted before the internal wall temperature falls below the Vicat softening onset of ISO 306 Method A50. Regulators evaluate this package under ADR 6.1.5.4 drop and stack protocols, and the drum must also pass the hydraulic pressure requirement applicable to a 1H1 closed-head container. Formulation for outdoor storage commonly includes 2.0 wt% to 2.5 wt% carbon black masterbatch to suppress UV embrittlement and 0.3 wt% to 0.5 wt% antioxidant concentrate to preserve molecular weight during long accumulator-head residence times. The critical downstream test is not a simple tensile measurement but a weld-line tensile comparison per ASTM D638-14, in which specimens cut perpendicular to the pinch seam must retain a documented fraction of the sidewall yield stress; published data for TRB432 in this specific 220-L tooling configuration is limited, and destructive qualification on the actual production line is required for each container weight and molding cycle.
| Downstream segment | Regulatory or test anchor | Specific material assessment |
|---|---|---|
| 20-L to 30-L industrial jerrycan | ADR 6.1.5, EN ISO 16495 | ASTM D543 chemical immersion; ASTM D1693 Condition B ESCR |
| 220-L tight-head drum | UN 1H1, ADR 6.1.5.4 | ASTM D638-14 weld-line tensile retention; ISO 306 A50 thermal stability |
| Automotive washer reservoir | OEM fluid resistance protocol | ISO 179-1/1eA Charpy notched impact; ISO 527-2 tensile after thermal ageing |
For automotive windshield washer reservoirs and auxiliary fluid bottles, HDPE TRB432 is processed on suction blow molding or 3D blow molding equipment because part geometries include deep undercuts, serpentine neck stretches, and integrated mounting bosses that cannot be formed reliably with straight parison descent. The tooling typically operates at 170 °C to 190 °C melt temperature, with mold vacuum assistance at 0.02 MPa to 0.04 MPa applied through the parting line to seat the parison in the lower cavity before blow pressure is introduced at 0.6 MPa to 0.8 MPa. The resin must carry a 0.2 wt% to 0.4 wt% antioxidant package because underhood service temperatures can intermittently reach 90 °C, and oxidative chain scission during the lifetime of the reservoir is the primary embrittlement mechanism. For UV resistance, 1.0 wt% to 2.0 wt% carbon black masterbatch is used in dark parts, while natural or grey reservoirs substitute a hindered amine stabilizer concentrate at 0.3 wt% to 0.5 wt%. Dimensional checks after 24 h conditioning at 23 °C and 50% relative humidity confirm that shrinkage has not distorted the filler neck seal surface, which is measured against the OEM drawing before the component enters the assembly cell. Long-term fluid compatibility is not inferred from density alone; converters submerge specimens in the actual washer fluid concentrate, freeze-thaw cycled between -40 °C and 90 °C, then evaluate notched Charpy impact per ISO 179-1/1eA to detect brittle failure caused by stress-cracking agents in the alcohol and surfactant system.
In monolayer agrochemical packaging of 1.0-L to 10.0-L capacity, TRB432 is selected when the active formulation is an aqueous suspension concentrate rather than a strong aromatic solvent, because the resin itself does not provide a barrier against high-migration solvents such as xylene, toluene, or cyclohexanone without fluorination or coextrusion. The blow molding process uses calibrated parison programming with a 30-point controller to compensate for wall thinning at the shoulder and bottom chime, maintaining a minimum sidewall thickness of 1.0 mm to 1.5 mm for 5-L containers under UN dangerous goods filling conditions. Extruder temperatures are set from 175 °C to 195 °C at the die head, and the mold is cooled to 8 °C to 15 °C to accelerate crystallization at the pinch seam, where environmental stress crack propagation is most frequently initiated during warehouse stacking. Color and UV stabilization are added as a single masterbatch at 2.0 wt% to 3.0 wt%, while antistatic burden is avoided because surface conductivity agents can alter the frictional behavior of the package on filling lines. Compliance evaluation follows ADR 6.1.5 for packaging group certification and ASTM D1693 Condition B for ESCR in 10% Igepal CO-630 at 50 °C, with lot acceptance tied to the supplier certificate of analysis because published data for TRB432 in agrochemical monolayer wall-thickness distributions remains limited. The terminal component is a narrow-mouth bottle or wide-mouth jar with a tamper-evident closure seat, and the critical manufacturing control is not melt flow alone but the parison sag rate under the accumulated tooling temperature after 6 h of continuous production, which determines whether the bottom pinch weld remains able to pass -18 °C drop impacts.
When barrier fluorination is required for solvent-borne agricultural formulations, the internal surface of the TRB432 container is exposed to a controlled fluorine-nitrogen atmosphere after blow molding, converting surface C-H bonds to C-F bonds and reducing permeation of low-molecular-weight aromatic and aliphatic solvents. This operation is conducted offline in stainless steel reaction chambers because fluorine gas concentrations as low as 0.1 vol% to 2.0 vol% require strict containment and because the exotherm at the polymer surface must be managed to prevent localized dehydrofluorination and discoloration. The treated monolayer retains the mechanical structure of the TRB432 substrate while the fluorinated layer functions as a surface barrier with a measurable reduction in weight loss during ASTM D2684 package permeability testing against a standard test solvent such as xylene. Container qualification after fluorination includes a 4-h leak test at 20 kPa internal air pressure and a drop test from the appropriate UN packing group height after conditioning at -18 °C. Published performance data for TRB432 in this specific barrier configuration is limited, so converters are required to validate each bottle weight and fluorination cycle independently against the actual concentrate formulation rather than relying on a generic HDPE permeability table. The final product is a narrow-mouth 1-L to 5-L bottle intended for hydrocarbon-based crop protection adjuvants, with lot-level melt flow rate verified by ISO 1133-1:2022 at 190 °C and 2.16 kg before fluorination because residence time in the treatment chamber can alter the surface coefficient of friction and closure torque behavior.
High-speed shuttle wheel equipment running 750-mL to 1.5-L household bleach and quaternary ammonium disinfectant bottles from TRB432 places the material on a continuous-extrusion platform with 55-mm to 75-mm screw diameters and grooved feed sections. The melt temperature is kept between 175 °C and 195 °C, while mold temperature is held at 10 °C to 20 °C to shorten cycle time without producing a visible crystalline haze at the bottle shoulder. In this segment, the critical destructive test is not a mechanical tensile measurement but an ESCR evaluation by ASTM D1693 Condition B, because sodium hypochlorite and quaternary ammonium solutions are known stress-cracking environments for high-density polyethylene and can initiate microcracks at the pinch-off seam and neck ring. A bleach-compatible bottle formulation typically contains 0.2 wt% to 0.4 wt% antioxidant stabilizer and 2.0 wt% to 3.0 wt% opaque white masterbatch, but does not incorporate calcium carbonate filler because filler particles at the surface can act as stress concentrators and reduce drop-impact performance after filling. The finished container is checked for closure torque retention after bleach exposure at 40 °C for 14 days, and the neck finish is dimensionally inspected against the closure manufacturer’s gauge to ensure that no diametral shrinkage below 0.2 mm has occurred after environmental conditioning. Density is verified by ISO 1183-1, and the molecular weight distribution is indirectly monitored through melt flow ratio measurements on the certificate of analysis, but converters must not infer ESCR resistance from melt flow rate alone because the pinch-off weld thermal history dictates the final bottle seam performance.
Competitive Ningxia Baofeng Energy HDPE TRB432 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!
Ningxia Baofeng Energy HDPE TRB432 is a high-density polyethylene blow molding grade supplied as 2–4 mm pellets under CAS 9002-88-4. The grade is specified for extrusion blow molding on shuttle, reciprocating-screw, and accumulator-head platforms producing rigid hollow articles from 0.25 L to 25 L. Manufacturer documentation places the melt mass-flow rate at 0.27–0.33 g/10 min when measured at 190 °C under 2.16 kg according to ISO 1133-1:2022, and density at 0.948–0.952 g/cm³ according to ISO 1183-1:2019. These two values anchor TRB432 in the low-melt-index, high-stiffness segment of HDPE blow-molding grades, where environmental stress-crack resistance and parison melt strength are primary fitness-for-use criteria.
The following property envelope is compiled from manufacturer technical literature and normalized laboratory determinations. Where a single value is listed, it represents a production midpoint; actual lot-to-lot values may vary within the stated control limits.
| Property | Test method | Typical value |
|---|---|---|
| Melt mass-flow rate (190 °C/2.16 kg) | ISO 1133-1:2022 | 0.27–0.33 g/10 min |
| Density (23 °C, annealed) | ISO 1183-1:2019 Method A | 0.948–0.952 g/cm³ |
| Tensile yield stress (50 mm/min) | ISO 527-2:2012 | 27 MPa |
| Tensile elongation at break | ISO 527-2:2012 | >600% |
| Flexural modulus (2% secant, 1 mm/min) | ISO 178:2019 | 1,100 MPa |
| Notched Izod impact strength (23 °C) | ISO 180:2020 | 17 kJ/m² |
| Charpy notched impact strength (-30 °C) | ISO 179-1:2023 | 8 kJ/m² |
| Vicat softening temperature A/50 | ISO 306:2022 | 126 °C |
| Shore D hardness (15 s) | ISO 868:2003 | 63 |
| ESCR F50 (10 wt% Igepal CO-630, 50 °C, B-type specimen) | ASTM D1693-21 Method B | >700 h |
| Peak melting temperature (DSC, 10 K/min) | ISO 11357-3:2018 | 132 °C |
Fifty-percent probability failure values for ESCR are highly sensitive to specimen preparation and notch quality. The value above should be interpreted as a routine release-limit envelope rather than a design stress-rupture datum. For pressurized containers, long-term hydrostatic strength should be evaluated according to ISO 9080 on the finished article.
Melt conditioning for TRB432 on a single-station shuttle blow molder equipped with a 65 mm barrier screw and 24:1 L/D is commonly started with an inverse barrel profile: 170–180 °C in the feed zone, 180–190 °C in the compression zone, 190–200 °C in the metering zone, and 195–205 °C at the die head. Melt temperature measured with an immersion probe at the extruder outlet should not exceed 210 °C. At temperatures above 220 °C, oxidative chain scission reduces the high-molecular-weight tail and lowers ESCR; at temperatures below 175 °C, unplasticized high-molecular-weight domains can persist and appear as translucent specks in bottle sidewalls. Head pressure for a 120 mm diverging die with a 1.8 mm die gap and 60 kg/h throughput is typically 18–22 MPa. Pressure variation greater than ±1.5 MPa at constant screw speed indicates bridging in the feed zone, screen-pack fouling, or unstable temperature control and can shift part weight by 2–5 g on a 1 L bottle. Screen packs of 40/80/40 mesh are advised when regrind exceeds 15 wt%; screens should be replaced after 200 h of high-regrind throughput because crosslinked gel particles from trim re-processing increase pressure drop.
Virgin pellet moisture is normally below 0.01 wt% and does not require pre-drying in ambient storage below 40 °C and 70% relative humidity. Ground flash and top tail regenerated in-house should be dried to below 0.05 wt% moisture when relative humidity exceeds 60%. Surface condensation on regrind flake produces splay and interfacial voids at the weld line. Regrind addition is limited to 30 wt% for most bottle specifications; above this level, gel content and melt-flow shift can exceed statistical process control limits of ±3% on melt flow rate and increase weld-line rejection rates. Materials with amine-based antistatic concentrates above 0.5 wt% should be avoided unless validated by ESCR testing according to ASTM D1693-B, because amine species can promote stress cracking on loaded HDPE surfaces.
On accumulator-head machines with 80 mm extruder and 1.5 kg shot size for 25 L jerry cans, the die-head mandrel temperature is set 5–10 °C below the die body to control inside surface melt roughness. Parison programming is adjusted as a nonlinear curve with 10–20% additional percent die gap at the top and bottom thirds of the shot to compensate for parison sag. For a 180 mm parison length, hang time exceeding 8 s at 200 °C results in 3–5% reduction in wall thickness at the shoulder region; this can be corrected by increasing the high-molecular-weight fraction through reduced regrind or by lowering die-head temperature to 195 °C. Frozen-in orientation at the pinch-off weld is a critical weakness; bottles should be trimmed with a residual tail below 0.3 mm because thicker tails generate stress concentration at the pinch line.
Substitution is not a drop-in when tooling was initially qualified with a narrow-molecular-weight-distribution HDPE of equivalent melt flow rate. The broader molecular weight distribution of TRB432, inferred from loss- and storage-modulus crossover shifts measured at 190 °C by rotational rheometry according to ISO 6721-10:2015, raises zero-shear viscosity by an estimated 25–40% relative to a unimodal reference. This increase reduces parison drawdown during accumulator-head transfer and permits longer hang times for multi-layer or foamed container structures; however, it also changes die swell at typical shear rates. On a capillary rheometer at apparent shear rates between 100 s−1 and 1,000 s−1, pressure drop per unit die gap is lower than a narrow-distribution grade at equal throughput because of more pronounced shear thinning. At shear rates below 10 s−1, the melt retains more molecular entanglement, which supports the parison during slow transfer and reduces gravitational thinning.
Die swell at 100 s−1 for a converging die land is typically 45–60% for TRB432, compared with 35–50% for a unimodal grade; therefore, die lips and mandrel clearances may require adjustment by 0.1–0.3 mm to maintain target wall thickness. Plant trials on a 2 L bottle mold with a 35 mm parison programmer show that die gap calibration must be adjusted by 0.2 mm to hold sidewall thickness distribution within ±0.1 mm of the design target. The higher stiffness of TRB432 also changes top-load performance; bottles molded to 0.8 mm nominal sidewall thickness typically show 8–12% greater first-peak buckling load than an equivalent unimodal HDPE when tested at 23 °C under parallel-plate compression at 10 mm/min according to ASTM D2659. Published data for this specific configuration is limited; the 8–12% range is derived from plant trial comparisons using a 2 L cylinder and a 500 N load cell.
Compared with injection-molding HDPE grades of similar density, TRB432 has a lower melt mass-flow rate and is not recommended for thin-wall injection molding below 1.5 mm. Its high zero-shear viscosity limits flow length at injection velocities above 50 mm/s; therefore, injection molding applications should be limited to thick-walled closures only when high ESCR is required. Compared with pipe-grade HDPE, TRB432 has lower hydrostatic pressure resistance and should not be used for pressure piping under ISO 9080 long-term hydrostatic strength classification. TRB432 is also not intended for cast film or blown film; its low melt flow rate and high melt elasticity generate excessive bubble instability in blown film. In blow-molding applications, its performance envelope is closest to other low-melt-index HDPE blow-molding grades, but the specific ESCR and melt strength balance differs by catalyst and molecular architecture.
For silk-screen and in-mold label decoration, surface corona treatment above 42 mN/m is required for adhesion; corona at levels above 50 mN/m can cause pinholes in sidewalls due to localized oxidation. For adhesive label application, peel testing according to ASTM D3330 requires removal force above 1.5 N/cm after 24 h conditioning at 23 °C. The high-density surface of TRB432 exhibits low intrinsic surface energy; without treatment, ink adhesion is insufficient.
The following standards are commonly invoked for TRB432 depending on end-use jurisdiction and container content. Certification must be verified against the specific lot because additive and pigment packages vary.
| Regulation or standard | Scope | Typical assessment |
|---|---|---|
| FDA 21 CFR 177.1520 | Olefin polymers for food-contact articles | Neat resin meets density and extractable fraction limits; end-use migration testing under 21 CFR 175.300 is required for fatty foods. |
| EU 10/2011 | Plastic food-contact materials | Overall migration below 10 mg/dm² of contact surface; specific migration of non-authorized monomers not detected above 0.01 mg/kg depending on simulant. |
| GB 4806.6-2016 | China food-contact plastic materials and articles | Total migration below 10 mg/dm²; potassium permanganate consumption below 10 mg/kg. |
| REACH EC 1907/2006 | Annex XVII restricted substances | Cadmium below 100 mg/kg; lead below 500 mg/kg in accessible plastic components; PAH limits apply to accessible rubber and plastic articles. |
| RoHS 2011/65/EU as amended by (EU) 2015/863 | Electrical and electronic equipment | Lead <1000 mg/kg, mercury <1000 mg/kg, cadmium <100 mg/kg, hexavalent chromium <1000 mg/kg, PBB <1000 mg/kg, PBDE <1000 mg/kg, DEHP/BBP/DBP/DIBP <1000 mg/kg each. |
For blow-molded articles used in contact with aqueous, acidic, and low-alcohol foods, compliance is typically demonstrated by extraction testing on finished articles, not by resin certification alone. For industrial packaging of mineral oil or agrochemical emulsions, the absence of specific migration limits under EU 10/2011 is not assumed; end-use validation with the packaged formulation is required because swelling agents can alter ESCR and long-term dimensional stability.