| HS Code | 140437 |
| Density | 0.948 g/cm³ |
| Melt Flow Rate 190 C 2 16 Kg | 0.05 g/10 min |
| Tensile Strength At Yield | 24 MPa |
| Tensile Strength At Break | 30 MPa |
| Elongation At Break | 800% |
| Flexural Modulus | 0.9 GPa |
| Vicat Softening Point | 122 °C |
| Brittleness Temperature | -70 °C |
| Environmental Stress Crack Resistance | >1000 h |
| Hardness Shore D | 62 |
| Melting Point | 130 °C |
As an accredited Idemitsu HDPE CALP HZ-K factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Idemitsu HDPE CALP HZ-K comes in 25 kg moisture-resistant bags, palletized and stretch-wrapped for secure industrial shipping. |
| Container Loading (20′ FCL) | Idemitsu HDPE CALP HZ-K: 20′ FCL loading, 25 kg bags, palletized, approx. 18 MT, secure, dry, contamination-free. |
| Shipping | Idemitsu HDPE CALP HZ-K is a non-hazardous high-density polyethylene resin, shipped in moisture-resistant bags, octabins, or bulk containers. Store in a clean, dry, ventilated area away from heat, ignition sources, and contaminants. No special dangerous goods labeling required; handle using standard dust-control practices. Keep sealed until use. Protect from UV. |
| Storage | Store Idemitsu HDPE CALP HZ-K in a cool, dry, well-ventilated warehouse, away from direct sunlight, heat, flames, and strong oxidizers. Keep bags or containers closed to prevent moisture, dust, and contamination. Avoid prolonged UV exposure and static buildup. Stack pallets securely, follow first-in, first-out, and consult the SDS for local requirements. Use appropriate PPE during handling. |
| Shelf Life | Idemitsu HDPE CALP HZ-K typically has a 24-month shelf life in unopened original packaging, stored cool, dry, away from sunlight. |
Extrusion blow moulding of UN-certified jerrycans and tight-head containers from HDPE CALP HZ-K is governed by two interacting parameters: melt strength sufficient to support a parison of 500–900 g and die swell controlled below 25% to preserve pinch-off weld integrity. Actual melt flow index and density are confirmed from the grade certificate before the barrel profile is fixed. The material is processed on an accumulator-head machine with screw L/D 24:1–30:1. Barrel temperatures from feed to metering are set at 180 °C, 195 °C, 205 °C, 215 °C, and 220 °C. Die head temperature is held at 205–220 °C. For a 30 L tight-head jerrycan, parison weight is typically 650–850 g. Clamp force is selected at 150–250 kN. Blow air is introduced at 0.7–0.9 MPa. Mould cooling water is maintained at 10–16 °C. The flash pocket depth is set at 8–12 mm. After trimming, pinch weld thickness must not fall below 70% of nominal sidewall thickness. Wall thickness is recorded at 8–12 points per container using a Hall effect probe.
The main process conflict is that high molecular weight improves environmental stress cracking resistance but raises die swell. Die swell above 25% creates weld-line thickening and flash instability in the mould parting line. Processors reduce the die gap to 1.0–1.4 mm when die swell exceeds 20%. A parison programmer with 5–8 thickness points is used. At the top corner, programmed die gap is 2.8–3.5 mm. At the sidewall centre, gap is 1.8–2.2 mm. At the tail pinch-off, gap is increased to 2.5–3.0 mm. This profile compensates for parison sag during a 3–6 s drop time. Incompatibility with certain aggressive organics must be evaluated because aliphatic and aromatic hydrocarbons can reduce ESCR in stressed areas.
| Standard | Condition | Acceptance criterion |
|---|---|---|
| ASTM D1693-15b | 10 wt% Igepal CO-630, 50 °C, notched | F50 ≥ 100 h |
| ASTM D638-22 | Type IV specimen, 50 mm/min | Tensile yield ≥ 20 MPa |
| ISO 1133-1:2022 | 190 °C, 2.16 kg | MFR within grade certificate |
| FDA 21 CFR 177.1520(c) | Food-contact olefin polymer | End-testing on finished article |
| Regulation (EU) No 10/2011 | Overall migration, Annex III simulants | 10 mg/dm² or 60 mg/kg |
Batch-to-batch melt flow variation is held within ±10% of the grade certificate value when the same parison profile is used. Wider variation changes sag time and sidewall thickness, forcing reprogramming of the wall-thickness controller. Mould temperature also changes weld performance. Frozen-in stress at the pinch-off weld increases when mould water is below 10 °C, yet cooling above 25 °C extends cycle time. The preferred sidewall mould temperature is 10–18 °C. Drop testing for dangerous goods follows the applicable ADR/RID/IMDG provisions. A filled container is conditioned at -18 °C for 24 h and dropped from 1.8 m onto a rigid surface. The closure must show no leakage and the sidewall must show no visible splitting. Hydrostatic pressure testing is applied at 100 kPa for 10 min on production-line samples. Post-consumer recyclate is not introduced in UN-certified packagings unless the design type is revalidated by the competent body.
When the parison programming function is disabled on a thin-wall open-head pail, wall-thickness distribution becomes highly non-uniform because the parison sags before mould closing. On a 20 L open-head pail with a height of 280–320 mm, the upper sidewall may thin to 0.9 mm while the lower pinch area remains above 2.0 mm. The immediate failure mode is top-load collapse under stacked warehouse conditions. Top-load resistance is measured under ASTM D2659-16 or ISO 12048 at 23 °C and 50% RH. Without parison programming, compression strength can fall by 20–35% compared with a correctly programmed parison. Published production data for this specific grade in thin-wall open-head pails is limited; the percentage reduction must be validated on the installed accumulator-head machine.
The stabilised rim and handle attachment zone of an open-head pail require a separate cooling circuit at 8–12 °C to reduce sink marks and distortion. Blow-out ratio at the rim should not exceed 2.5:1 to avoid local thinning below 60% of nominal thickness. Top and bottom flash pockets accept 10–15% of total parison weight. If the pail is used for hydrocarbon-based emulsions, ESCR under ASTM D1693-15b is verified because some aliphatic hydrocarbons accelerate slow crack growth in stressed sidewall areas. Additive loadings for outdoor warehouse use include 2–4 wt% colour masterbatch and 0.5–1.5 wt% UV stabiliser masterbatch. Processing stabilisers should not be increased above the supplier-recommended level because excessive additive loading may lower melt strength and enlarge the parison sag window.
A high-stalk bubble configuration on a grooved-feed extruder with L/D 30:1 is used when HDPE CALP HZ-K is downgauged into heavy-duty industrial liners with a nominal thickness of 40–80 µm. The bottom-fed spiral mandrel die has a die gap of 0.8–1.2 mm. Melt temperature at the die exit is limited to 190–220 °C. The blow-up ratio is held at 2.5:1–3.5:1. The frost line is set 8–12 die diameters above the die lip. At 50 µm, take-off speed may reach 35–60 m/min depending on line output. Bubble instability occurs when the frost line is too low, producing pulsing gauge bands. Online capacitance gauges must maintain thickness within ±10% of target. Dart impact is measured under ASTM D1709A-22, Elmendorf tear under ASTM D1922-23, and puncture resistance under ASTM D5748-19.
Formulation for outdoor service includes 2–3 wt% carbon black masterbatch with a melt index matched to the base resin. Slip and antiblock masterbatches are added at 0.5–1.5 wt% where easy opening is required. Blocking force is kept below 0.5 N/cm under ASTM D3354-15. Food-contact liners are tested under FDA 21 CFR 177.1520(c) and Regulation (EU) No 10/2011. Heavy metal content is controlled from the colour masterbatch and the base resin, not from the film-forming process. The packaging heavy metal limit under Directive 94/62/EC is a total of 100 mg/kg for cadmium, lead, mercury, and hexavalent chromium.
Melt fracture at high output appears as sharkskin on the bubble surface. A fluoropolymer processing aid masterbatch at 200–400 ppm active content can suppress sharkskin without altering film clarity in non-pigmented liners. The additive must be introduced at the feed throat with sufficient residence time to coat the die. Bubble stability is also affected by air-ring design. A dual-lip air ring with chilled air at 10–15 °C improves gauge uniformity.
Corrugated drainage pipe made from high-molecular-weight HDPE fails in service primarily by slow crack propagation from the root of the corrugation, not by direct tensile yield. A resin with high density and modulus may perform poorly if short-term properties are achieved at the expense of stress-cracking resistance. The design basis for buried pipe is evaluated under ISO 13479:2022, a notched pipe test that applies constant internal pressure at 80 °C with a machined notch depth of 20% of wall thickness. The selected hoop stress is set according to pressure class and service lifetime target. For gravity drainage pipe, long-term stress values are lower than for pressure pipe. Ring stiffness is measured under ISO 9969:2016 or ASTM D2412-21. A minimum ring stiffness of 4 kN/m² is common for agricultural drainage installations. Process conditions on the corrugator line include barrel temperatures of 180–230 °C, die temperature 200–220 °C, vacuum calibration pressure of -60 kPa to -80 kPa, and corrugator block temperature 20–50 °C. The extruder is a grooved-feed single-screw with L/D 30:1–36:1 and a barrier mixing section. Melt temperature at the adapter is kept below 220 °C to limit oxidation. Carbon black masterbatch is added at 2–3 wt% to meet ASTM D3350-21 cell classification. The compound must achieve the specified pipe cell class, and outdoor weathering is tested under ASTM D2565-23 for the project-specified exposure interval.
The processing conflict in corrugated pipe is that high melt strength improves corrugation shape stability but can reduce surface quality and increase extruder energy demand. Corrugator vacuum must pull the melt into the block cavities without blocking the vacuum holes. If vacuum is too low, the outer ribs are incompletely formed and ring stiffness falls. If vacuum is too high, pull-through resistance increases and the pipe may stick to the blocks. A practical vacuum window is -60 kPa to -80 kPa, with wall thickness monitored continuously at 6 circumferential points. The limitation of this grade in deep-buried corrugated service should be verified by first-article ISO 13479:2022 testing, because published notched pipe data for HDPE CALP HZ-K in this specific configuration is limited.
Unlike deep-draw injection moulding, sheet extrusion followed by plug-assisted thermoforming uses HDPE CALP HZ-K to produce dunnage trays and separating sheets in material-handling systems. A single-screw extruder with a barrier screw and L/D 30:1 feeds a flat sheet die of 800–1500 mm width. The melt exits the die at 190–220 °C and enters a three-roll stack. The first roll is set at 80–95 °C, the second roll at 70–85 °C, and the third roll at 55–65 °C. Sheet thickness tolerance is maintained at ±5% across the web. The sheet is heated in a plug-assisted thermoformer with surface heater temperatures of 220–260 °C. Heating time for a 4 mm sheet is 45–90 s. The plug is preheated to 110–130 °C to prevent cold tearing. Mould temperature is 30–50 °C. Corner thinning is checked with an ultrasonic gauge and must not fall below 60% of original sheet thickness.
For trays used in indirect food contact, migration is evaluated under FDA 21 CFR 177.1520(c) and Regulation (EU) No 10/2011. Colour masterbatch loading is 2–4 wt%. In-line regrind addition is permitted up to 30 wt% from edge trim and skeletal scrap. Repeated heat histories must not reduce oxidative induction time below 20 min at 200 °C under ISO 11357-6. If OIT falls below this value, regrind content is reduced or a reprocessing stabilizer masterbatch is added at 0.5–1.0 wt%. The property conflict is that excessive regrind raises melt index and lowers melt strength, thereby widening the sag window in the thermoformer and increasing thinning in the tray base. First-article thermoformed trays are tested for top-load capacity under ASTM D642-20 and for drop resistance at -10 °C after 48 h conditioning.
Low-odour blow-moulded pharmaceutical bottles made from HDPE CALP HZ-K are processed on reciprocating-screw shuttle or long-stroke blow-moulding machines with L/D 24:1–30:1. Melt temperature is held between 180 °C and 210 °C; higher temperatures generate detectable odour and extractable degradation products. Mould temperature is set at 10–20 °C. The die gap is 1.0–1.5 mm. Parison drop time is kept below 4 s for bottles of 50–500 mL. Leak testing is performed on-line at 10–20 kPa for 3 s. Extractables testing is performed according to USP <661.1> and Ph. Eur. 3.1.3 or 3.1.5. Water vapour transmission is measured under ASTM F1249-20 at 38 °C and 90% RH. For oxidation-sensitive liquids, monolayer HDPE does not provide adequate oxygen barrier, and coextrusion with EVOH is introduced. The tie layer is selected from maleic anhydride-grafted polyolefin. The barrier layer is integrated into the parison programme. Published data for HDPE CALP HZ-K in coextruded pharmaceutical bottles is limited; seal integrity and interlayer adhesion are tested under ASTM F88/F88M-21 and ASTM D1876-23 before lot release.
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Idemitsu HDPE CALP HZ-K is a high-density polyethylene grade within the CALP series, designated by a short commercial code that does not itself specify lot-level density, melt mass-flow rate, or comonomer type. Incoming acceptance therefore requires the manufacturer’s certificate of analysis and marking under ISO 1043-1. Because the public literature for this specific configuration is limited, the polymer should be profiled using the standard characterisation set of ISO 1183-1:2019, ISO 1133-1:2022, ISO 527-2:2012, and ASTM D1693-15 before the first production campaign on a new line.
In production environments, the material is generally directed toward extrusion applications where melt strength, dimensional stability, and slow crack growth resistance carry more weight than the low-viscosity filling behaviour required in thin-wall injection moulding. The CALP HZ-K designation is therefore not interchangeable with a general-purpose HDPE injection-moulding grade of equivalent density. Its processing behaviour is narrower at low shear, and its molecular architecture is more sensitive to shear history, moisture pick-up, and extended barrel residence time. Operators receiving lot transitions on a line previously used for a lower-molecular-weight HDPE should expect a shift in head pressure and screener back-pressure response even when setpoint temperatures remain unchanged.
The following test matrix identifies the minimum incoming and qualification checks applicable to a high-density polyethylene of this class. Lot-specific values govern release; the designations in the table are standard methods, not property claims for any individual lot of CALP HZ-K.
| Property | Standard method | Inspection role |
|---|---|---|
| Density | ISO 1183-1:2019, Method D | HDPE class limits generally lie between 0.940 g/cm³ and 0.970 g/cm³; the lot certificate value controls crystallinity, modulus, and permeation resistance. |
| Melt mass-flow rate | ISO 1133-1:2022, 190 °C/5.0 kg and 190 °C/21.6 kg | Low-MFR lots require higher drive torque; the flow ratio between the two loads provides a limited indication of molecular weight distribution width. |
| Tensile yield stress | ISO 527-2:2012, Type 1B at 50 mm/min | Used for incoming conformity, but it is not a predictor of long-term slow crack growth performance. |
| Environmental stress crack resistance | ASTM D1693-15, Condition B, 100% Igepal-CO-630 | Constant-strain test for slow crack growth sensitivity in notched sheet specimens. |
| Charpy impact strength | ISO 179-1/1eA:2023, edgewise notched at 23 °C and −30 °C | Measures initiation energy; it is not sufficient for pipe flaw-growth qualification. |
| Hydrostatic strength | ISO 1167-1 with ISO 9080 extrapolation | Mandatory for pressure-pipe uses; measures time-to-failure under internal pressure at defined temperatures. |
| Oxidative induction time | ISO 11357-6:2018 at 200 °C | Verifies that the antioxidant package has survived shipment, storage, and first-stage handling. |
In geomembrane welding and large-part extrusion, the heating wedge temperature and seam peel resistance are frequently more sensitive to the stabilizer package than to the base resin density. A lot that passes density and melt mass-flow rate inspection may still fail oxidative induction requirements after prolonged warehouse storage or after contact with transition-metal surfaces. The test matrix therefore treats oxidative induction time as an operational gate, not as a secondary quality metric.
In a pressurized HDPE pipe or geomembrane, slow crack growth proceeds by disentanglement of load-bearing polymer chains in the amorphous interlamellar regions. The failure resistance is not governed solely by density or tensile yield stress; it is governed by the number and length of tie molecules that span adjacent lamellae and by the distribution of short-chain branches along the polymer backbone. A conventional unimodal Ziegler-Natta HDPE of identical density and melt index can display a shorter failure time in the ASTM D1693-15 constant-strain test because its chain architecture may create fewer effective tie molecules at a given degree of crystallinity.
Reactor grades intended for pressure service use a controlled comonomer distribution that places short-chain branches predominantly in the high-molecular-weight fraction, increasing the probability of load-bearing tie chains without fully collapsing crystalline density. For CALP HZ-K, the public documentation does not provide a complete short-chain branching distribution. Any departure from commodity HDPE should therefore be verified by gel permeation chromatography, 13C NMR, or online rheology before downstream qualification for pressure-bearing components.
If the component is installed in a buried pressure line, purchase specifications should invoke ISO 12162-1 for compound classification and ISO 4427-2 for pipe dimensions. ISO 9080 requires long-term testing at multiple temperatures and internal pressures, with the lower prediction limit at 20 °C for 50 years used as the design-based minimum required strength. A single-point hydrostatic check at 20 °C is insufficient because it does not capture the ductile-to-brittle transition that can occur above 60 °C in accelerated tests. Acceptance criteria must include both failure mode and notched-pipe resistance under ISO 13479, particularly where large-diameter solid wall pipe is subjected to fluctuating pressure cycles.
High-molecular-weight HDPE grades similar to CALP HZ-K are commonly processed on a single-screw extruder equipped with a grooved feeding zone. The grooved barrel increases solids conveying and generates melt pressure earlier in the screw. In a 60 mm extruder with an L/D ratio of 33:1 and a barrier-type screw, pre-melt pressure can rise above typical smooth-bore values. Breaker-plate pressure must be monitored continuously, not only melt temperature, because pressure excursions at constant die gap often indicate gel accumulation, screen-blocking, or a lot-to-lot change in molecular weight distribution.
For film and sheet profiles, common die gaps in HDPE extrusion range from 0.6 mm to 1.8 mm. Melt fracture on the draw side typically appears first at the die lip when local wall shear stress exceeds the critical value for the resin. The critical shear stress is not a universal constant and must be mapped for each lot using capillary rheometry under ISO 11443:2021. A fingerprint test at two apparent shear rates is more useful than a single melt mass-flow rate value because it reveals the onset of sharkskin and gross melt fracture under die-entry conditions.
Pre-drying is generally unnecessary for unopened, undamaged bags stored at relative humidity below 60%. If bags have been exposed to rain or stored in an unheated warehouse at high relative humidity, surface moisture can be removed using a desiccant hopper dryer at 70 °C for 2 h. Dehumidifying hoppers should not exceed 80 °C because extended exposure can begin to deplete the hindered phenolic antioxidant package and alter the lot’s oxidative induction time.
Oxidative induction time measured under ISO 11357-6:2018 at 200 °C is the standard fast check for antioxidant loss. A lot that leaves the manufacturer with an accepted oxidative induction time can degrade during long storage, especially if warehouse temperature exceeds 30 °C for extended periods, if bags are exposed to ultraviolet radiation through skylights, or if the resin is stored near copper, brass, or other transition-metal surfaces. Low oxidative induction time does not automatically render the resin unusable; it does require line operators to reduce processing temperature, shorten residence time, and purge the line with a displacement resin before startup.
The grade should not be inadvertently mixed with an unsaturated rubber masterbatch or with high levels of mineral fillers containing catalytically active iron without first evaluating the additive package. Combining HDPE with copper-based antimicrobial additives or certain pro-oxidant transition-metal soaps can accelerate oxidative degradation and produce a false reduction in long-term hydrostatic strength. Extrusion trials should therefore isolate purge transitions and record melt temperature, screw speed, and head pressure for each run.
For food-contact applications, a grade designation does not itself demonstrate compliance. Finished articles must be tested under EC 10/2011 migration rules or 21 CFR 177.1520 conditions, using the actual thickness, surface-to-volume ratio, and processing history. Idemitsu HDPE CALP HZ-K can be considered only after the converter receives a lot-specific declaration of conformity and performs overall migration, specific migration, and sensory testing as required by the destination market.
In sheet and profile extrusion operations, the same molecular features that improve slow crack growth resistance create an observable increase in wall slip failure at high draw ratios. A runner or profile line operating with a high-humidity feedstock will show higher die pressure fluctuations and inconsistent surface gloss. Lot transitions from a conventional unimodal HDPE to CALP HZ-K should therefore be staged, with the line started at the lower end of the resin’s accepted melt-temperature range and the output increased only after stable barrel pressure and melt temperature are recorded.