Products

Mitsubishi Chemical Advanced Materials HDPE SANALITE

    • Product Name: Mitsubishi Chemical Advanced Materials HDPE SANALITE
    • Factroy Site: Yudu County, Ganzhou, Jiangxi, China
    • Price Inquiry: admin@ascent-chem.com
    • Manufacturer: Ascent Petrochem Holdings Co., Limited
    • CONTACT NOW
    Specifications
    HS Code 163841

    As an accredited Mitsubishi Chemical Advanced Materials HDPE SANALITE factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Mitsubishi Chemical Advanced Materials HDPE SANALITE is packaged as 10 sheets per wooden pallet, shrink-wrapped, stacked, and edge-protected for shipping.
    Container Loading (20′ FCL) 20′ FCL loading of Mitsubishi Chemical Advanced Materials HDPE SANALITE, palletized high-density polyethylene sheets, securely stowed for ocean export.
    Shipping Mitsubishi Chemical Advanced Materials HDPE SANALITE ships as non-hazardous, solid high-density polyethylene sheet on pallets or in crates. It is not regulated by DOT, IMDG, or IATA. Store in a dry, clean area away from open flame, excessive heat, and prolonged UV exposure. Use standard handling equipment.
    Storage Store Mitsubishi Chemical Advanced Materials HDPE SANALITE in a cool, dry, well-ventilated area away from direct sunlight, flames, and heat sources. Keep in original packaging, laid flat or properly supported to prevent warping. Avoid contact with strong oxidizers, sharp objects, and contaminants. No special chemical storage required; maintain clean, stable conditions and follow local regulations.
    Shelf Life Indefinite shelf life when stored clean, dry, out of direct sunlight, and at moderate temperatures; no expiration under normal storage conditions.
    Application of Mitsubishi Chemical Advanced Materials HDPE SANALITE

    Mitsubishi Chemical Advanced Materials HDPE SANALITE is specified for food-processing contact surfaces where unfilled high-density polyethylene sheet is machined into cutting boards, preparation-table overlays, and washdown-resistant benches. The controlling regulatory basis is FDA 21 CFR 177.1520, which governs olefin polymers for repeated food-contact use; compliance depends on resin lot documentation and final-article extraction testing, not on the natural sheet colour alone. Under EU Regulation 10/2011, overall migration must not exceed 10 mg/dm² for plastic food-contact articles, and specific migration limits for any additives present in the formulation apply independently. Equipment inspected in commercial food facilities may also require listing under NSF/ANSI 51, where fabricated joint geometry, cleaning access, and material performance are evaluated together. On production floors, the sheet is cut with CNC routers and then fly-cut or planed to remove saw marks that trap protein film. Hot-water sanitation is the dominant process constraint. Unfilled HDPE under load can distort when water temperature repeatedly exceeds 80 °C, especially at restrained edges; a heat deflection temperature under 0.455 MPa of 65–80 °C should be treated as a conservative design boundary for flat sections. Maximum continuous washdown temperature is therefore limited to 70 °C for clamped panels, and mechanical fasteners are torqued below the stress-whitening threshold of the material. Batch-to-batch thickness variation in extruded sheet is controlled by supplier certificate, but fabricators should verify sheet thickness at multiple grid points before gang-sawing multiple boards from one master sheet.

    Controlling requirementApplication relevanceLimiting parameter or clause
    FDA 21 CFR 177.1520Olefin polymer for repeated food contactEnd-use extraction; resin lot certification
    EU Regulation 10/2011Plastic food-contact article migrationOverall migration limit 10 mg/dm²
    NSF/ANSI 51Food equipment material and designListing and joint cleanability
    DVS 2207-1Hot-gas welding of polyethylene linersJoint preparation; nozzle gas temperature
    ASTM D2240Hardness of machined cutting surfaceShore D 65–70
    ASTM D1894Friction of wear strips against steelCoefficient of friction 0.15–0.25

    What Limits Knife-Edge Retention in High-Throughput Poultry Cutting Boards?

    Knife-edge retention in high-throughput poultry cutting boards is governed less by hardness than by surface roughness, notch sensitivity, and the depth of first cut. Unfilled HDPE sheet of this type commonly exhibits tensile yield strength in the range 22–30 MPa under ASTM D638-14 and Shore D hardness in the range 65–70 under ASTM D2240. The surface yields enough to reduce catastrophic chipping of stainless-steel blade edges but also accumulates permanent scoring that must be planed or sanded back. Published data for knife-edge blunting rates on this specific trade designation is limited. Production-scale observations indicate that planed surfaces with roughness average Ra in the range 1.6–3.2 µm reduce fractional protein adhesion compared with sawn edges, but the same surface roughness increases friction at the blade face when the knife is drawn across the board. Edge retention becomes more difficult when ceramic blades are used, because the board hardness drops below the threshold required to absorb uneven contact and the risk of localised blade fracture rises. Cutting boards are machined with compression bits on CNC routers; tool speed is held below the point at which melted polyethylene re-welds to the groove. Router tip zone temperature can exceed 130 °C during climb cutting, and poor chip evacuation produces surface smearing that changes wet-slip behaviour. On manufacturing lines, boards are rotated after fixed cutting-bay cycles to equalise wear. Replacement timing is set by crevice depth; a gouge exceeding 1.0 mm can trap Listeria-relevant biofilms and cannot be effectively sanitised without mechanical resurfacing.

    In dry-fill PET bottle conveyance, natural HDPE wear strips are machined from 10–20 mm sheet and installed as low-friction lanes between stainless rails. The coefficient of friction against polished steel, measured under ASTM D1894, is typically in the range 0.15–0.25 for unfilled HDPE; the value rises when dust from cardboard secondary packaging deposits on the wear face. Wear is abrasive rather than adhesive, and strip replacement intervals are determined by loss of thickness in high-speed transfer corners. Because the linear thermal expansion coefficient of HDPE is in the order of 1.0 × 10⁻⁴ to 2.0 × 10⁻⁴ K⁻¹, a fixed wear strip length of 1,000 mm can expand several millimetres between winter shutdown and summer operation. Production lines therefore use slotted holes or expansion gaps at every 500–750 mm. The strips are attached with countersunk nylon fasteners rather than adhesive, because peel loads at transfer points exceed the strength of structural acrylic tapes after repeated washdown. The most aggressive zones are curved bottle-handling segments; the strip is machined to an arc, and the outer edge must be chamfered to 15–20° to prevent bottle base scuffing. Periodic thickness measurement with a dial gauge at the transfer starwheel entry is used to schedule replacement at 0.8–1.0 mm cumulative face loss. Below that threshold, lane width changes remain within ±0.15 mm and do not change PET bottle pitch enough to induce line jams.

    Weldable Natural HDPE Liners for Acid and Solvent Secondary Containment

    Weldability is a decisive advantage of natural HDPE over UHMWPE when the sheet is used as a drop-in liner inside concrete bunds and steel secondary containment trays. Fabrication is usually performed by hot-gas welding according to DVS 2207-1, with the joint prepared as a single-V groove and weld rod of the same base resin. The weld zone must be scraped immediately before welding to remove oxidised skin; hot-gas temperature at the nozzle is held in the range 200–230 °C, and weld speed is adjusted to produce a visible bead with no pale, unmelted root. In tanks exposed to dilute mineral acids and alkalis at ambient temperature, HDPE resists swelling better than many fibre-reinforced thermosets, but the liner is not a substitute for a fully stress-crack-resistant polymer. Operational boundaries include continuous exposure to hydrocarbons, ketones, or chlorinated solvents; these produce environmental stress cracking at weld roots and around mechanical fixings. The lining fails most often at welded corners, where angular distortion from weld shrinkage creates residual stress. That stress can be reduced by using two passes, with interpass cooling below 50 °C and staggering of start positions. Leak testing after installation is carried out with a high-voltage spark tester at 15–25 kV over a conductive backing, but published acceptance data for SANALITE-lined bunds is limited. In service, a maximum continuous service temperature of 60 °C is applied at welds even when the parent sheet could withstand brief excursions higher, because creep in the heat-affected zone opens pinholes.

    Where UHMWPE chain guides are replaced with natural HDPE on low-speed bottling and packaging conveyors, the selection is justified by lower stock cost and easier post-machining, not by equivalent wear life. HDPE exhibits less abrasion resistance than UHMWPE under the same load; the limiting bearing pressure is therefore reduced, and published data for the specific SANALITE grade in chain-guide service is limited. The replacement is generally restricted to applications with surface pressure below 0.5 MPa and continuous operating temperature below 50 °C. Above these boundaries, edge lifting at the guide face can occur within several hundred operating hours. Machining tolerances for chain-guide grooves are held at +0.10/+0.30 mm over the chain width to permit thermal expansion without lateral wander. The guides are sometimes drilled for oil-free plastic bolts; overtightening produces stress whitening and later cracking at the countersink. On twin-screw extrusion lines producing the base sheet, such cracking is less likely when the sheet is stress-relieved, but downstream fabricators may not know the stress-relief history. The practical control is to monitor the first 200 h of low-load chain movement, re-torque fasteners, and replace any guide showing crescent cracking at bolt holes.

    Offcuts are also machined into non-structural washdown shims and alignment pads; the only acceptance test is dimensional tolerance against the drawing.

    When a Check Socket Blank Is Drape Formed on a Male Mould at Low Vacuum

    In prosthetic check-socket fabrication, natural HDPE sheet is cut into a preheated blank and drape formed over a modified plaster or high-density foam male mould. Heating is performed in a circulating-air oven; the surface temperature is held below 190 °C, and the dwell time is set so the sheet core reaches a thermoelastic plateau rather than a melt state. If the blank is heated too quickly, the surface develops microscopic bubbles that later crack under cyclic loading. The forming sequence uses vacuum below 0.8 bar gauge; higher vacuum accelerates thinning at the distal end and along sharp mould radii. Thinning is the primary failure mode. A socket wall that drops below 2.0 mm after forming may fail during fitting at the trim line because repeated cortical bone contact initiates fatigue cracks. Fabricators therefore map wall thickness with an ultrasonic gauge and reject areas below the threshold. Cooling of the formed socket is controlled by clamping the trim line until the surface cools below 60 °C, because free-shrinkage distortion can alter the load-bearing contour. Because HDPE is less transparent than PETG, visual assessment of soft-tissue blanching is reduced; clinical suitability lies outside the material supplier certification envelope, and published data on SANALITE-specific thermoforming depth ratios is limited.

    Acid-digestion fume hoods use natural HDPE sheet for splash panels, drip trays, and reagent shelf liners because the polymer tolerates dilute hydrochloric, sulfuric, and nitric acid contact at ambient temperature without the corrosion-product release typical of stainless steel. The design constraint is not acid attack but creep at attachment points: a vertical panel fixed with screws and washers begins to sag when fume hood interior temperature is repeatedly raised above 50 °C. Chemical resistance also breaks down with oxidising acid concentration; fuming nitric acid and mixed acid etches combining strong oxidisers with organic residues are outside the operational envelope. Hot perchloric acid is an explicit incompatibility. The material must not be used with halogenated solvent vapours at elevated temperature because these produce swelling and stress cracking. Seams are hot-gas welded to facilitate coved corners for collection drains. After welding, a spark test of 20 kV is applied to detect pinholes before panels are installed. In service, surfaces are inspected for whitening, which indicates incipient environmental stress cracking rather than ordinary abrasion. Published long-term exposure data for this specific HDPE trade designation in fume hood service is limited; laboratory supervisors therefore validate material compatibility with the neutralised residue matrix before specification.

    Machining Gravity-Fed Sanitary Chutes from Natural HDPE Sheet

    Gravity-fed sanitary chutes in dry food packaging are fabricated from 6–10 mm natural HDPE sheet using CNC routing followed by hot-gas welding. The sanitary design uses coved internal corners with a radius no smaller than 6 mm to prevent entrapment; smaller radii are difficult to inspect and retain food dust. Surface finish after machining is critical. Edge chamfers at the inlet must be formed on the top surface so product particles do not impact a sharp lip and generate fines. Welded seams are made on the outside of the chute where possible, because internal weld beads create a discontinuity that can harbour allergen residues. The chute is not suitable for continuous product temperatures above 55 °C or for abrasive products with high quartz content, because wall wear at direction changes creates grooves. Washdown is ordinarily restricted to alkaline detergent at 60 °C; caustic concentrations above 2% combined with prolonged contact can initiate stress cracking at drilled bolt holes. Production experience shows that chute failure is more commonly mechanical, caused by absence of expansion slots at flange interfaces; fabricators therefore isolate the chute from rigid supports with slotted connections sized for the full thermal excursion. Published abrasion-loss data for the SANALITE designation in this specific powder-chute service is limited.

    Free Quote

    Competitive Mitsubishi Chemical Advanced Materials HDPE SANALITE 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

    Inquiry

    Get Free Quote of Ascent Petrochem Holdings Co., Limited

    Flexible payment, competitive price, premium service - Inquire now!

    Certification & Compliance
    Top