| HS Code | 504705 |
| Material | PE-HD (PE 100) |
| Density | 0.95 g/cm³ |
| Color | Black with blue stripes |
| Outer Diameter Range | 20 mm to 630 mm |
| Maximum Operating Pressure | 16 bar (at 20 °C, depending on SDR) |
| Operating Temperature Range | -20 °C to +60 °C |
| Standard | DIN 8074/8075, EN 12201 |
| Connection Method | Butt welding, electrofusion |
| Application | Drinking water supply, sewage, industrial piping |
| Chemical Resistance | Resistant to many acids, bases, and salts |
| Uv Resistance | Yes (carbon black stabilized) |
| Service Life | 50 years |
| Flexibility | Flexible |
| Impact Resistance | High |
As an accredited CENTROPLAST PE-HD CENTROLEN factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | CENTROPLAST PE-HD CENTROLEN is supplied in 25 kg moisture-resistant bags, palletized and shrink-wrapped for safe industrial transport. |
| Container Loading (20′ FCL) | 20′ FCL: CENTROPLAST PE-HD CENTROLEN is loaded in 25 kg bags, palletized or floor-loaded, with typical loads up to about 20–24 metric tons. |
| Shipping | CENTROPLAST PE-HD CENTROLEN is non-hazardous high-density polyethylene (HDPE). It is not regulated as dangerous goods for road, rail, sea, or air transport. No UN number, class, or packing group required. Ship in sealed original bags/containers; protect from moisture, sunlight, and contamination. Store cool and dry. Keep containers closed. |
| Storage | Store CENTROPLAST PE-HD CENTROLEN in a cool, dry, well-ventilated area, away from direct sunlight, heat, sparks, and open flames. Keep containers or bags tightly closed, off the ground, and protected from moisture and contamination. Separate from strong oxidizers and incompatible chemicals. Use safe stacking, good labeling, spill containment, and rotate stock. Store only in original packaging. |
| Shelf Life | Shelf life is indefinite if stored cool, dry, and protected from direct sunlight and UV radiation in unopened original packaging. |
CENTROLEN PE-HD sheet stock and matching PE-HD welding rod are fabricated into rectangular chemical neutralisation tanks, fume scrubber bodies, and secondary containment trays in which the material acts simultaneously as structural shell and corrosion barrier. Because water absorption of PE-HD is typically below 0.01% after 24 h immersion per ISO 62, pre-drying of sheet prior to hot-gas or hot-plate welding is unnecessary unless surface condensation is present. Hot-plate butt welding according to DVS 2207-1 uses plate temperatures between 200°C and 220°C, with heat soak times of 30 s to 60 s for 10 mm sheet and cooling under 0.15 MPa to 0.25 MPa joint pressure. Short-term weld factors between 0.6 and 0.8 are common for hot-gas welding, while correctly executed hot-plate butt welds can exceed 0.9 when tested according to ISO 527-2. Chemical compatibility is typically validated with ISO 175 immersion at 50°C for 30 days; mass change below 2% and absence of surface cracking are frequent acceptance criteria for non-oxidising acids, alkali scrubber liquors, and galvanic plating rinse waters. Concentrated nitric acid above 20°C, halogens, and aromatic solvents are outside the service envelope, and sodium hypochlorite above 12% active chlorine can promote environmental stress cracking if internal weld stresses are not removed by annealing at 100°C for 1 h per 25 mm thickness. Field failures on ammonia scrubber ducts are most often traced to sharp internal corners and unannealed weld zones rather than base-sheet chemical attack, which is why fabrication drawings should specify radiused corners and post-weld inspection according to the relevant DVS 2207 series.
Pipe-grade process development for PE-HD CENTROLEN must first establish whether the batch can meet the hydrostatic design basis required by EN 12201 and ISO 9080, because not all high-density grades carry a published minimum required strength value. Grades without an ISO 9080 MRS classification cannot be marked as PE 100 or PE 80 and are normally limited to low-pressure industrial lines, gravity drains, or protective conduits. The melt temperature at the adapter is held between 200°C and 230°C, while the die land ratio is maintained between 18:1 and 25:1 to suppress melt fracture at high output. Grooved-barrel extruders with 30:1 to 36:1 L/D, screen packs of 60/80/60 mesh, and internal screw cooling provide stable melt pressure and reduce radial wall-thickness drift. The pipe is calibrated in a vacuum tank at -0.5 bar to -0.8 bar and cooled gradually to avoid frozen-in stress that reduces slow crack growth resistance. Qualifying tests include 20°C, 60°C, and 80°C hydrostatic burst and creep rupture testing to ISO 9080:2022, with a lower confidence limit extrapolated to 50 years. If grade-specific MRS data are not available from the producer, the design stress must be derated below 8.0 MPa for water at 20°C, and a service coefficient of at least 1.25 is applied to account for surge, cyclic pressure, and installation defects. Wall-thickness calculations follow the standard dimension ratio method of EN 12201-2, but the absence of a valid MRS classification makes independent batch testing mandatory for public potable water approval.
| Extrusion parameter | Typical setting for PE-HD CENTROLEN |
|---|---|
| Barrel zone 1 | 180–195°C |
| Barrel zone 2 | 190–205°C |
| Barrel zone 3 | 200–215°C |
| Die head | 210–225°C |
| Melt temperature at adapter | 200–230°C |
| Die land ratio | 18:1–25:1 |
| Vacuum calibrator | -0.5 to -0.8 bar |
| Screw cooling outlet | 90–110°C |
Hot-wedge welding of CENTROLEN PE-HD geomembrane panels on landfill base liners and industrial lagoon barriers is controlled by the peel geometry of the welded seam, not merely by visual bead shape. Panels produced by flat-die extrusion or calendering are specified at minimum thickness 1.5 mm for base liner service under GRI-GM13, although 2.0 mm and 2.5 mm stock are preferred where rock puncture or side-slope tensile stress is expected. The wedge temperature is commonly set between 300°C and 400°C, with an overlap of 80 mm to 100 mm and a welding speed that maintains visible shear flow from both surfaces. Seam strength is destructively tested by peel and shear methods according to ASTM D6392, while air-channel testing under ASTM D7177 is used to locate leaks; a channel pressure loss greater than 10% within 30 s is a common trigger for cut-out and re-weld. The material must demonstrate adequate oxidative induction time by ASTM D3895 at 200°C, and stress-crack resistance by single-point notched constant tensile load under ASTM D5397 with surfactant at 50°C. CENTROLEN PE-HD should not be specified for secondary containment of strong oxidisers, hydrocarbon leachate with high aromatic content, or continuous line temperatures above 60°C because oxidative depletion and edge-stress cracking become dominant. Joints on descending slopes are butt-welded only after field trial welds on the same panel lot because extrusion direction and surface bloom shift melt behaviour enough to alter peel strength by 10% to 20%. Published data for this specific grade in geomembrane welding is limited; therefore, trial welds and project-specific peel windows are mandatory before production welding.
CNC routers and machining centres convert CENTROLEN PE-HD sheet into dead-plate guides, bottle-grip cams, chain-wear strips, and starwheel segments for beverage and food filling lines. The material is permitted for food-contact use under FDA 21 CFR 177.1520 for olefin polymers and under EU Regulation 10/2011, provided finished parts are not exposed to ethanol above 10% by volume at temperatures above 40°C without additional migration testing. Carbide-tipped single-flute upcut tools with a chip load of 0.2 mm to 0.5 mm per tooth and spindle speeds of 12,000 rpm to 18,000 rpm prevent re-welding of chips to the cut edge. Water cooling is acceptable, but chlorine-bearing cutting fluids should be avoided because residual surface chlorine can compromise organoleptic neutrality. After rough machining, parts are annealed at 90°C to 100°C for 30 min per 25 mm thickness to release internal stress. Unannealed parts machined from thick sheet can shrink by 1.5% to 2.5% after first heating or sanitation washdown. Installed components are normally limited to continuous conveyor temperatures of 60°C because creep under chain tension and abrasive belt wear increase sharply above that threshold. Periodic cleaning with 2% sodium hypochlorite at 40°C is generally tolerated, but repeated exposure can reduce service life by accelerating environmental stress cracking at sharp corners; corner radii below 2 mm should be avoided in stressed components.
Extrusion blow-moulded CENTROLEN PE-HD containers, including jerry cans, open-top drums, and inner liners, achieve UN certification as 3H1 packaging only when parison geometry and wall-thickness distribution are controlled within narrow limits. The melt is processed through a grooved feed bushing with a die temperature of 180°C to 210°C, and blow pressure is generally set between 0.7 MPa and 0.9 MPa. Mould temperature is held between 15°C and 40°C to balance surface gloss, dimensional stability, and drop-impact toughness. The dominant production defect is parison sag, which produces thin bottom corners or an uneven chime; sag is reduced by keeping melt temperature at the lower end of the range and by using a die gap of 2.0 mm to 4.0 mm with an adjustable accumulator head. UN qualification for dangerous goods packagings requires a drop test, stacking test, and hydraulic internal pressure test according to UN ST/SG/AC.10/11/Rev.7. For packing group II liquids with a specific gravity up to 1.2, drop height is commonly 1.2 m after conditioning at -18°C; internal pressure is adjusted for the vapour pressure of the filling substance at 55°C. Stress-cracking resistance is screened by ASTM D1693 in 10% Igepal CO-630 at 50°C; published acceptance criteria vary by container geometry and wall stress, so pass/fail limits must be tied to field performance. CENTROLEN PE-HD containers are not recommended for strong oxidisers, chlorinated solvents, or product classes requiring hydrocarbon permeation rates below 0.8 g·mm/m²·d unless fluorination or barrier treatment is applied.
| Blow-moulding parameter | PE-HD CENTROLEN setting |
|---|---|
| Die head temperature | 180–210°C |
| Blow pressure | 0.7–0.9 MPa |
| Mould temperature | 15–40°C |
| Parison die gap | 2.0–4.0 mm |
| Accumulator push speed | 200–400 mm/s |
| Cycle time, 20 L container | 60–100 s |
Only where tensile modulus values below 1,500 MPa are acceptable should CENTROLEN PE-HD be substituted for glass-filled PA 6 in submerged brackets, hinge blocks, or net attachment lugs. PE-HD has a short-term tensile strength in the 20 MPa to 30 MPa range and a flexural modulus between 800 MPa and 1,400 MPa when measured by ISO 527-2 and ISO 178, which is far below glass-filled PA 6 but is sufficient when the part is continuously supported by a steel frame or when load is distributed over a large surface. Creep is the controlling design parameter. The tensile creep modulus in water at 23°C can fall to 250 MPa to 400 MPa after 10,000 h, so slender unsupported sections will rotate or sag even if they survive a single overload test. Injection-moulded blanks and CNC-cut profiles must be annealed at 100°C for 1 h before immersion because residual stress in saltwater accelerates environmental stress cracking, particularly at moulded-in inserts. PE-HD does not degrade by hydrolysis, but the exposed surface above the waterline oxidises under solar UV unless the grade contains adequate hindered amine light stabilisers; UV-stabilised CENTROLEN PE-HD sheet remains the preferred form for cut-to-size aquaculture parts. Fastener holes should be oversized for thermal expansion of roughly 1.5 mm/m over a 30°C temperature swing. Published data for this specific grade in submerged lattice structures is limited; therefore, long-term seawater ageing at 50°C per ISO 16770 is the minimum independent validation before replacing a rigid engineering plastic.
PE-HD CENTROLEN panels are installed as sliding surfaces in aggregate bins, hopper bottoms, truck beds, and conveyor skirting where material hang-up and impact wear occur simultaneously. The static coefficient of friction on dry sand or limestone fines is usually between 0.25 and 0.35 when tested according to ASTM D1894, which is lower than polished carbon steel and reduces the minimum hopper angle by 3° to 5° in many bulk-solids calculations. Abrasion resistance under ASTM D4060 with CS-17 wheels and 1,000 g load typically produces mass loss of 4 mg to 8 mg per 1,000 cycles, although abrasive feedstocks with angular particles above 8 mm can cause local gouging that the rotary wear test does not capture. The liner must be bolted with recessed fasteners because exposed bolt heads become wear arresters that cut grooves into the liner and generate metallic fines. Thermal expansion is significant: a 3 m panel exposed to a 40°C ambient swing may expand by 15 mm to 18 mm, so slotted holes are required. The upper service temperature is limited to 70°C for continuous sliding; above this, local softening and sheet deformation under bulk load become dominant. CENTROLEN PE-HD is not recommended for hot clinker, sharp steel scrap, or ore with cutting edges above 60°C because the surface transitions from abrasive wear to cutting wear. In limestone, gypsum, and grain handling, the typical failure mode after long service is edge lift at sheet joints, which is reduced by machining shiplap rather than butt joints and by using an adhesive sealant compatible with PE-HD after surface activation by flame or low-temperature plasma.
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