| HS Code | 368884 |
| Product | Muehlstein HDPE HI-2053 |
| Density | 0.953 g/cm³ |
| Melt Index | 0.35 g/10 min |
| Tensile Strength At Yield | 26.9 MPa |
| Tensile Strength At Break | 33.1 MPa |
| Elongation At Break | 600% |
| Flexural Modulus | 1.24 GPa |
| Izod Impact Notched | 0.535 J/cm |
| Izod Impact Unnotched | 6.41 J/cm |
| Vicat Softening Temperature | 120 °C |
| Deflection Temperature At 0 45 Mpa | 70 °C |
| Brittleness Temperature | < -70 °C |
| Hardness Shore D | 66 |
| Environmental Stress Crack Resistance | 1000 h |
| Water Absorption | 0.01% |
As an accredited Muehlstein HDPE HI-2053 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Muehlstein HDPE HI-2053 is packaged in sealed 25 kg polyethylene-lined bags, palletized for industrial shipment and storage. |
| Container Loading (20′ FCL) | 20′ FCL container loaded with Muehlstein HDPE HI-2053 high-density polyethylene resin in bags, securely palletized and shrink-wrapped for export shipment. |
| Shipping | Muehlstein HDPE HI-2053, high-density polyethylene resin, is non-hazardous and not regulated for transport. Ship in dry, closed containers or bulk trucks at ambient temperature. Avoid moisture, contamination, and ignition sources. Store in original packaging, protected from sunlight and physical damage. No UN number, hazard class, or placards required. |
| Storage | Store Muehlstein HDPE HI-2053 in a cool, dry, well-ventilated warehouse, protected from direct sunlight, moisture, and heat sources. Keep original bags or containers sealed and palletized off the floor. Avoid contact with strong oxidizers and ignition sources. Maintain ambient temperature, prevent dust accumulation, and follow local fire regulations. Handle to avoid spills and keep away from incompatible materials. |
| Shelf Life | Typically 24 months when stored unopened in a cool, dry, well-ventilated area away from direct sunlight and ignition sources. |
Thin-walled rigid dairy packaging is one of the most demanding downstream processing routes for a high-flow HDPE such as HI-2053 because the melt must traverse long flow paths in multi-cavity stack molds with wall sections from 0.35 mm to 0.9 mm without flash or excessive molecular orientation. Industry compliance for food-contact dairy tubs and lids requires FDA 21 CFR 177.1520(c) 3.1a or 3.2a, EU 10/2011 with an overall migration limit of 10 mg/dm², and REACH Annex XVII restrictions on lead and cadmium in colorants. The typical formulation for this segment consists of 2–4 wt% white or tinted masterbatch, 0.5–2 wt% slip/antiblock additive in the lid to control denesting force, and 0.05–0.3 wt% nucleating agent to raise crystallization temperature and shorten cycle time by 4–10 % on production-scale machines. The downstream process is high-speed injection molding on 250–600 metric ton presses with electric or hybrid drive, melt temperatures maintained at 190–220 °C, mold temperatures at 10–40 °C, injection velocities of 80–200 mm/s, and hold pressures between 30 MPa and 60 MPa. Terminal product types produced in this segment include 150–500 g dairy tubs, tamper-evident deli lids, and thin-wall fruit or salad containers. The main production-line bottleneck is the post-mold shrinkage differential between sidewall and bottom; this is controlled by keeping the hot-runner melt temperature above 190 °C and by using nucleating agent at the lower end of the range for lids to retain flatness.
Closure molding imposes a different set of quality gates: environmental stress crack resistance per ASTM D1693-15, slow crack growth resistance per ISO 22088-3, and the coefficient of variation of removal torque measured under ASTM D3473. Industry compliance for closures in contact with non-carbonated water and dry oral pharmaceutical packaging includes EU 1935/2004, FDA 21 CFR 177.1520, and EU 10/2011; where potable water contact is intended, the formulation must not exceed the overall migration limit of 10 mg/dm² or produce organoleptic taint. The standard masterbatch addition ratio is 1–2 wt% for white or custom blue tint, 0.02–0.1 wt% primary slip additive, and 0.05–0.2 wt% hindered phenolic antioxidant. Slip loading is bounded because above 0.3 wt% erucamide or oleamide, plate-out on core pins and torque reduction of the tamper-evident band become statistically detectable on high-cavitation lines. Processing is performed on 128- to 256-cavity hot-runner injection molds with valve-gated cold runners, melt temperature between 210 °C and 230 °C, mold temperature 12–25 °C, injection time below 0.35 s per shot, and post-mold core cooling to reduce cap ovality. One field failure mode observed on 256-cavity closure lines is intermittent torque spikes caused by inconsistent dispersion of slip additive in the first 50 cycles after masterbatch changeover; this is addressed by precompounding the slip into a 40:1 L/D twin-screw extruder rather than dry blending at the press feed throat. Terminal products are HDPE tamper-evident closures for still water, juice, and dry pharmaceutical bottles, generally between 28 mm and 38 mm in nominal diameter.
| Controlled parameter | Test method or equipment | Boundary value | Observed failure mode |
|---|---|---|---|
| Melt temperature | Nozzle thermocouple, ISO 1133-1 | 230 °C upper limit | ESCR reduction under ASTM D1693-15, yellowing |
| Slip additive loading | GC-FID after solvent extraction | 0.3 wt% maximum | Core pin plate-out, cap torque reduction |
| Post-mold core cooling | Chilled water 8–12 °C | Time 2.5 s minimum | Cap ovality above 0.3 mm diameter deviation |
| Hold pressure | Hydraulic pressure transducer | 45 MPa nominal | Tamper-evident band tearing below 35 MPa |
The processing window for wall sections between 2.5 mm and 4.0 mm shifts from melt flow length to packing, volumetric shrinkage, and low-velocity drop impact. Industrial pails and collapsible crates made from HDPE HI-2053 are judged under ASTM D638-22 for tensile yield stress, ASTM D790-17 or ISO 178:2019 for flexural modulus, ASTM D256-23 for notched Izod impact, and ASTM D1693-15 for ESCR when exposed to industrial cleaners or fertilizers. When dangerous goods packaging is intended, pail drop and stack testing must follow the UN Model Regulations chapter 6.1 type-test protocols. The formulation includes 2–5 wt% color masterbatch, 5–20 wt% calcium carbonate or talc to control shrinkage and reduce cycle time, 0.05–0.2 wt% hindered phenolic antioxidant, and 0.1–0.5 wt% UV stabilizer for outdoor agricultural crates. Impact modifier from 5–10 wt% is added where drop impact at -20 °C is required; filler above 20 wt% will reduce notched Izod below 3 kJ/m² and may create ESCR failure sites. Pre-drying is required when storage RH exceeds 60 % because moisture at the melt surface creates splay and weld-line weakness in thick sections. The downstream process is injection molding on 500–2000 metric ton presses with melt temperature of 200–230 °C, mold temperature 5–20 °C, injection pressure 70–100 MPa, and hold pressures between 40 MPa and 70 MPa. Sequential valve-gated hot runners are preferred for crates to eliminate cold slug and knit lines; packing time is 7–10 s for 2.5 mm walls and 14–18 s for 4 mm pail walls, with maximum cooling-water temperature of 15 °C to prevent warpage upon ejection. Terminal product types include 20-L pails, collapsible crates, agricultural totes, and transport trays. If filler loading above 20 wt% is required, published data for this specific configuration is limited and test plaques should be generated under ASTM D638-22 before production release.
In consumer storage and organizer products, HDPE HI-2053 is injection molded on medium-tonnage hydraulic presses with clamp forces from 300 to 800 metric tons. The formulation is 1–3 wt% color masterbatch, 0.1–0.3 wt% antistatic additive for closet organizers, and 0.05–0.2 wt% antioxidant; no filler is normally added because thin ribs and snap-fit undercuts require elongation at break above 50 % under ASTM D638-22. Compliance for food-contact storage items is FDA 21 CFR 177.1520 and EU 10/2011, while non-food housewares must meet REACH Annex XVII and RoHS Directive 2011/65/EU restrictions for lead, cadmium, mercury, and hexavalent chromium. The downstream process uses melt temperatures of 190–210 °C to limit odor and gate blush, mold temperatures of 15–30 °C, injection velocities of 60–120 mm/s, and pack pressures below 50 MPa to avoid sink in thick handle sections. Terminal product types include covered storage totes, closet organizers, and kitchen drawer bins.
Toy and recreational component molding uses HDPE HI-2053 for rigid shells, building blocks, and outdoor playground parts. Industry compliance is mandatory under EN 71-3:2019+A1:2021 for migration limits of 19 elements including aluminum, arsenic, barium, cadmium, chromium, lead, mercury, and tin; ASTM F963-23 for heavy-metal content and sharp-edge requirements; REACH Annex XVII for phthalate migration; and FDA 21 CFR 177.1520 where food-contact play articles are intended. The formulation is restricted to 1–3 wt% color masterbatch based on heavy-metal-free organic or inorganic pigments, 0.05–0.15 wt% hindered phenolic antioxidant, and 0.2–0.5 wt% antistatic additive; plasticizer addition is prohibited because phthalate migration would violate EN 71-3 and REACH Annex XVII. The largest process conflict is color dispersion versus melt temperature: organic red and yellow pigments degrade at melt temperatures above 210 °C, causing color drift under EN 71-3 compliance testing. The downstream process is injection molding at melt temperatures of 185–210 °C, mold temperatures of 10–30 °C, injection velocities of 50–100 mm/s, and hold pressures of 30–50 MPa; mold venting must be deeper than 0.03 mm to avoid gas burn on large flat surfaces. Terminal product types include ride-on toy bodies, building blocks, and outdoor playground component shells.
| Application sector | Mandatory standard or code | Property tested |
|---|---|---|
| Thin-wall dairy tubs and lids | FDA 21 CFR 177.1520(c) 3.1a; EU 10/2011 | Overall migration, organoleptic neutrality |
| Closures | ASTM D1693-15; ASTM D3473; EU 1935/2004 | ESCR, removal torque consistency |
| Industrial pails and crates | ASTM D638-22; ASTM D256-23; ISO 178:2019 | Tensile yield, notched Izod, flexural modulus |
| Consumer storage | FDA 21 CFR 177.1520; REACH Annex XVII; RoHS Directive 2011/65/EU | Migration, heavy metal content |
| Toys and recreational components | EN 71-3:2019+A1:2021; ASTM F963-23 | Element migration, sharp edge |
| Sharps containers and specimen transport | ISO 23907-1:2019; ISO 10993-5 | Puncture resistance, cytotoxicity |
Sharps containers and specimen transport boxes produced from HDPE HI-2053 are evaluated under ISO 23907-1:2019 for sharps injury protection, including puncture resistance and leak behavior, as well as ASTM D638-22 and ASTM D256-23 for mechanical integrity after autoclaving at 121 °C under ISO 17665-1. Industry compliance also includes FDA 21 CFR 177.1520 for polymer safety, ISO 10993-5:2009 for cytotoxicity, and ISO 10993-10 for sensitization when patient contact is possible. The formula is 0.5–2 wt% color masterbatch, 0.05–0.2 wt% antioxidant, and no mineral filler because filler reduces puncture resistance and increases the risk of micro-cracks after autoclave cycling. The downstream process is injection molding on 250–800 metric ton presses with melt temperature of 190–215 °C, mold temperature of 10–25 °C, injection pressure up to 80 MPa, and pack/hold profiles sufficiently long to eliminate weld-line porosity at the gate, which is a known failure point for puncture resistance. Terminal products include single-use sharps containers, biohazard transport boxes, and specimen transport trays.
Competitive Muehlstein HDPE HI-2053 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!
Technical evaluation of Muehlstein HDPE HI-2053 begins with separation of the distributor grade identifier from measurable polymer architecture. The resin belongs to the high-density polyethylene family and is commonly positioned for rigid packaging, industrial containers, and consumer durable applications, but the absence of a published supplier datasheet at the time of this review limits the number of lot-specific property claims that can be made without direct certificate verification. Where values are not taken from a certificate of analysis, they are presented as class-typical ranges for HDPE copolymers measured under standardized laboratory conditions. Density for this resin class is generally within 0.945–0.965 g/cm³ when determined by ISO 1183-1:2019 or ASTM D792-20, and the peak melting endotherm is normally recorded between 125 °C and 135 °C by differential scanning calorimetry at 10 K/min. The identifier string “HI-2053” is proprietary nomenclature rather than a standardized polymer code; without supplier documentation, melt mass-flow rate, comonomer type, and molecular weight distribution cannot be reliably inferred from the numeral alone.
For injection molding conversion, the melt mass-flow rate and shear-thinning response control the pressure required to fill multicavity tools. If the grade is supplied with a medium-to-high melt-flow characteristic typical of HDPE injection resins, it may be processed at barrel set points between 200 °C and 240 °C, with the rear zone held near 180 °C to preserve feed stability. A general-purpose three-zone screw of 18:1–22:1 L/D and compression ratio of 2.2:1–2.8:1 is generally adequate for single-stage plastication. On production machines in the 800–2,500 kN clamp force class, gate blush and jetting are controlled by profiling injection velocity to 60–90% of maximum volumetric rate and by maintaining a cushion between 3 mm and 6 mm.
Pressure drop through cold runners should be evaluated with a capillary rheometer. For HDPE melts at 220 °C, apparent shear viscosity at 100 s⁻¹ commonly falls between 300 Pa·s and 1,000 Pa·s, depending on molecular weight distribution and comonomer content. These apparent values support gate dimensions such as an edge-gate land length of 0.8–1.2 mm and gate diameter of 0.6–1.5 mm for articles with wall stock below 2.5 mm. Published data for this specific configuration is limited, so tooling dimensions require mold-filling simulation or confirmation on a production trial.
| Property | Test method | Range |
|---|---|---|
| Melt mass-flow rate | ISO 1133-1:2022 at 190 °C/2.16 kg | 5–30 g/10 min |
| Density | ISO 1183-1:2019 | 0.945–0.960 g/cm³ |
| Tensile yield stress | ISO 527-2:2012 | 20–32 MPa |
| Notched Charpy impact at 23 °C | ISO 179-1:2020 | 4–12 kJ/m² |
| Vicat softening temperature | ISO 306:2022, method A50 | 120–128 °C |
| Mold shrinkage, parallel | ISO 294-4:2018 | 1.2–2.0% |
Industrial container production on high-cavitation hot-runner tools introduces temperature-homogeneity risks that are frequently underestimated. On a 12- to 32-cavity hot-runner system, manifold set points are often maintained between 220 °C and 250 °C, but resin residence time in stagnating zones above 4 min can initiate thermal oxidation. The result is a visible yellow shift and a measurable reduction in notched Charpy impact. Naturally balanced hot-runner channels, free-flow tips, and low-shear manifold geometry reduce lot-to-lot gloss variation. For sequential valve-gate systems, valve-pin actuation should be tuned so that shear heating does not exceed 5 °C above the barrel melt temperature. Field measurements on undersized hot-runner manifolds have recorded melt-temperature overrides of 2–6 °C, which shift part dimensions by altering volumetric shrinkage. When target dimensional tolerance is tighter than ±0.05 mm/mm, cavity-surface temperature uniformity of ±2 °C is necessary across the mold face.
Post-filling solidification of HDPE is dominated by crystallization and volumetric shrinkage. Mold shrinkage in the flow direction is typically lower than in the transverse direction. For HDPE injection grades, parallel shrinkage is usually reported between 1.2% and 2.0% per ISO 294-4:2018, while transverse shrinkage can be 0.2–0.5 percentage points higher. This anisotropy is amplified by short packing time, low packing pressure, and nonuniform mold cooling. In production, transfer by screw position is preferable to transfer by time alone. A decay profile that reduces packing pressure from 60–70% of peak injection pressure to 20–30% over 6–10 s reduces gate-area overpack and post-ejector warpage.
The difference between this product class and lower-flow HDPE blow molding grades is sharpest in this area. A blow molding grade with melt mass-flow rate below 1 g/10 min retains melt strength for parison hang, but exhibits higher orientation-induced shrinkage and shorter flow length under injection pressure. A high-flow injection HDPE of the class indicated by the “20” numeral fills thin ribs more readily, but can exhibit greater free-shrink anisotropy if processed with excessive melt temperature and insufficient packing. Compared with polypropylene homopolymer, HDPE shows slower crystallization and lower mold-shrinkage anisotropy, but the low-temperature impact balance favors HDPE for closed-volume containers handled under chilled distribution.
Environmental stress cracking resistance is the primary long-term reliability property for HDPE used in contact with detergents, agricultural chemicals, and oil-based formulations. Failure under ESCR is not bulk chemical attack but brittle crack propagation driven by residual stress and surface-active agents. The accepted comparative method is ASTM D1693-21 Condition B using 100% Igepal CO-630 at 50 °C; the alternative bent-strip method is ISO 22088-3:2006. Many HDPE copolymers with uniform comonomer placement exhibit an F50 value above 50 h, while lower-performance injection homopolymers may fail below 10 h under identical conditions. For stress-critical articles, acceptance should be based on a lot-specific ESCR value, not solely on density or melt-flow classification. Molded-in stresses from sharp internal corners, aggressive knockout pin action, or excessive clamp pressure can reduce ESCR by an order of magnitude. Stress-sensitive container bases should carry an internal corner radius of at least 0.5–1.0 mm.
Compared with linear-low-density polyethylene and medium-density polyethylene, HDPE of this class typically offers higher flexural modulus and a sharper melting endotherm, but lower ESCR than a high-molecular-weight HDPE blow molding grade. The presence of a comonomer is what distinguishes a toughness-balanced injection HDPE from a homopolymer: it lowers crystallinity and tensile yield stress while raising notched Charpy impact. If the HI-2053 certificate reports notched Charpy in the range of 4–12 kJ/m² at 23 °C, the grade would be positioned as a toughness-balanced HDPE for applications requiring stiffness together with impact resistance. The actual value must be verified before the material is substituted for metal or polypropylene in a load recovery component.
Closed-loop and open-loop rigid-container recycling frequently introduces post-consumer HDPE regrind into virgin injection molding operations. Addition of post-consumer recyclate changes melt rheology, odor, color, and mechanical values in proportion to the cleanliness and molecular weight retention of the regrind. At screw-recovery rates above 80% of maximum, black specks and unmelts can be generated unless the screw is designed for a 2.5:1–3.0:1 compression ratio and the melt stream is protected by a screen pack with aperture of 0.25–0.60 mm. For hot-runner injection molding, regrind-loaded melts may require a 5–10 °C increase in barrel setpoint to maintain equivalent fill viscosity, but this increase shortens the thermal-oxidative induction time. Thermogravimetric analysis under nitrogen at 20 K/min can quantify the onset of mass loss; clean high-density polyethylene typically shows onset above 400 °C, but contaminated regrind may begin to degrade at lower temperature. Recyclate source lots should be qualified against EN 15343:2007 for traceability and quality consistency.
| Requirement | Reference | Typical condition |
|---|---|---|
| EU food-contact plastics | EU No 10/2011 | Overall migration limit 10 mg/dm² |
| US food-contact olefin polymers | 21 CFR 177.1520 | Use conditions A through H as specified |
| REACH substances of very high concern | EC 1907/2006 | SVHC content <0.1% w/w |
| Hazardous substances in electrical/electronic equipment | RoHS Directive 2011/65/EU | Pb, Hg, Cd, Cr(VI), PBB, PBDE thresholds per directive |
| Heavy metals in packaging | 94/62/EC | Sum of Pb, Cd, Hg, Cr(VI) <100 mg/kg |
Compliance status is not inherent to the base resin alone; it is affected by colorants, processing aids, mold release, and post-consumer content. A pigment system containing heavy metals or a slip aid not listed for food contact can invalidate an otherwise conforming base resin. The converter must obtain a regulatory statement from the material supplier for Muehlstein HDPE HI-2053 and must perform migration testing on the finished article when the application is food-contact or medical packaging.