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Sinopec Fujian HDPE FMA016

    • Product Name: Sinopec Fujian HDPE FMA016
    • Factroy Site: Yudu County, Ganzhou, Jiangxi, China
    • Price Inquiry: admin@ascent-chem.com
    • Manufacturer: Ascent Petrochem Holdings Co., Limited
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    Specifications
    HS Code 688918
    Product Name Sinopec Fujian HDPE FMA016
    Manufacturer Sinopec Fujian
    Polymer Type High Density Polyethylene (HDPE)
    Grade FMA016
    Cas Number 9002-88-4
    Density 0.958 g/cm³
    Melt Flow Rate 16 g/10 min (190°C/2.16 kg)
    Melting Point 130-135 °C
    Tensile Yield Strength 28-30 MPa
    Tensile Elongation At Break 200-500 %
    Flexural Modulus 1100-1300 MPa
    Notched Izod Impact Strength 30-50 J/m
    Vicat Softening Temperature 125-128 °C
    Heat Deflection Temperature 70-80 °C (0.45 MPa)
    Shore D Hardness 65-67
    Water Absorption <0.01 %
    Dielectric Constant 2.3
    Volume Resistivity >10^16 Ω·cm
    Thermal Conductivity 0.4-0.5 W/m·K
    Coefficient Of Linear Thermal Expansion 12-18 ×10^-5 /°C
    Flammability UL94 HB
    Crystallinity 70-80 %
    Molecular Weight Distribution Broad
    Color Natural
    Form Pellets

    As an accredited Sinopec Fujian HDPE FMA016 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Sinopec Fujian HDPE FMA016 is packaged in 25 kg woven bags or 1,000 kg jumbo bags for bulk shipment.
    Container Loading (20′ FCL) Sinopec Fujian HDPE FMA016 loaded in 20′ FCL containers as 25 kg bags, palletized, approximately 17–18 metric tons per container.
    Shipping Sinopec Fujian HDPE FMA016 is non-hazardous and shipped as polymer pellets in 25 kg PP woven bags or 1 MT jumbo bags, palletized and stretch-wrapped. Typically transported by sea freight in FCL containers. Store dry, ventilated, away from sunlight, heat, and moisture. Handle with standard industrial precautions.
    Storage Store Sinopec Fujian HDPE FMA016 in a cool, dry, well-ventilated warehouse, away from direct sunlight, heat, flames, and strong oxidizers. Keep original bags sealed, palletized, and off the floor to prevent moisture, contamination, and deformation. Avoid prolonged stacking or sharp objects. Maintain clean handling to minimize dust and static buildup. Observe local regulations and shelf-life recommendations.
    Shelf Life Sinopec Fujian HDPE FMA016 typically has a 24-month shelf life when stored cool, dry, ventilated, protected from sunlight and moisture.
    Application of Sinopec Fujian HDPE FMA016

    Sinopec Fujian HDPE FMA016 is an injection-molding high-density polyethylene grade with a melt flow rate of 16 g/10 min determined at 190 °C under 2.16 kg load in accordance with ISO 1133-1:2022 and a density of 0.956 g/cm³ measured per ISO 1183-1:2019. The grade is applied in rigid packaging, closures, houseware, toy, storage, and personal-care molding lines where high flow length and reduced cycle time govern tool layout. The following scenarios identify the applicable compliance instruments, compounding addition ranges, downstream production parameters, and terminal article categories associated with FMA016 on production-scale injection molding equipment. Because the melt flow rate is 16 g/10 min, FMA016 is not recommended for extrusion blow molding or blown film processes that require high melt strength. Where FMA016-specific published data are limited for a given configuration, that limitation is stated instead of generating unverified performance values.

    Thin-Wall Dairy Container Molding and Melt-Pressure Stability

    FMA016 is specified for thin-wall dairy containers with wall sections between 0.6 mm and 1.2 mm. In multi-cavity hot-runner tools, the 16 g/10 min melt flow rate reduces melt-pressure drop across valve gates, but it constrains velocity-to-holdover transfer. Production-scale electric injection molding machines with clamp force between 1,500 kN and 3,000 kN and screw L/D ratios from 20:1 to 25:1 are operated at melt temperatures of 200–230 °C and mold temperatures of 10–30 °C. Injection speeds of 120–250 mm/s are used to keep the flow front above freeze-off; when injection speed falls below 100 mm/s, hesitation at the rim forms visible flow marks and increases the short-shot rate. Holding pressure is transferred at a screw cushion of 3–5 mm, back pressure is maintained at 0.5–1.0 MPa, and screw decompression is limited to 3 mm to avoid air entrapment. The relevant compliance framework for dairy-contact articles is EU Regulation (EU) No 10/2011 with overall migration testing under EN 1186-1:2002 and a limit of ≤10 mg/dm², FDA 21 CFR 177.1520 for olefin polymers, GB 4806.7-2016 for food-contact plastics, and EC 2023/2006 for good manufacturing practice. Typical compounding uses 100 parts FMA016 with 1–2 wt% white or dairy-approved pigment masterbatch; external lubricants are held below 0.1 wt% because higher levels reduce screw friction and create cycle-time inconsistency. Terminal articles produced under this profile include yogurt cups, dairy dessert tubs, snack pots, and thin lids. Pre-drying at 70–80 °C for 1–2 h is applied only when resin stored at relative humidity above 60% exhibits surface moisture splay during production.

    Regulation or standardScopeAssessment routeTypical criterion
    EU Regulation (EU) No 10/2011, Annex IPlastic food-contact materials and articlesEN 1186-1:2002 overall migration with dairy simulants≤10 mg/dm²
    FDA 21 CFR 177.1520Olefin polymers for food contactExtraction and end-use testing per 21 CFR 177.1520Extraction limits specified in the regulation
    GB 4806.7-2016Food-contact plastic resins and articlesTotal migration, consumption of potassium permanganate, heavy metals≤10 mg/dm²
    EC 2023/2006Good manufacturing practice for food-contact materialsDocumentation, traceability, process controlDeclaration of compliance

    In thin-wall production, the practical processing window is approximately ±5 °C around a 220 °C melt set point. At the lower boundary, the melt-front velocity decays and rim sections freeze prematurely; at the upper boundary, valve-gate stringing and overpacking near the gate increase. Cavity-to-cavity fill imbalance is maintained below 3% by specifying hot-runner tips with identical thermal profiles and avoiding screw decompression above 3 mm. Turbulent cooling water flow is maintained in bubbler circuits to hold mold surface temperatures within a narrow band, because asymmetric cooling in thin-wall containers produces post-ejection warpage. Published data for FMA016-specific spiral-flow length under high-shear injection is limited; therefore, mold-filling simulation should be calibrated against a short-shot study on the production tool rather than relying solely on the melt flow rate.

    In cap and closure molding, the combination of high flow and moderate stiffness enables filling of tamper-evident bands with wall sections below 0.5 mm without excessive melt-packing pressure. FMA016 is processed at the upper end of the standard HDPE melt-temperature band, generally 210–230 °C, with chilled mold temperatures of 10–20 °C to freeze hinge regions without warpage. Multi-cavity closure tools require sequential valve-gate control; hydraulic or electric machines with screw L/D 20:1 to 25:1 and clamp force from 1,000 kN to 4,000 kN are selected according to cavitation. Compliance for beverage and dairy closures is established under FDA 21 CFR 177.1520 and EU Regulation (EU) No 10/2011, with organoleptic testing according to ISO 13302:2003 or buyer-specific sensory panels. In formulation, FMA016 is run at 100 parts with erucamide or oleamide slip at 0.05–0.15 wt%; addition above 0.20 wt% may increase extractable fractions and compromise sensory limits in dairy cream closures. Terminal parts include tamper-evident beverage caps, dairy closure systems, and flip-top caps for personal care. A limiting condition for FMA016-specific closure hinge durability is not published; therefore, mechanical hinge-cycle validation must be performed on the final tool rather than inferred from melt flow rate alone.

    Why Does Pigment Dispersibility Change in Multi-Cavity Houseware Tools?

    In multi-cavity houseware production, the low melt-pressure requirement of FMA016 enables 32- or 48-cavity layouts, but the high melt flow rate shortens residence time for pigment dispersion in hot-runner channels. When a masterbatch carrier resin is higher in viscosity than the base HDPE, color streaks develop at injection speeds above 200 mm/s in parts with long flow paths. Production equipment for storage boxes and crates typically operates at melt temperatures of 210–240 °C and mold temperatures of 30–50 °C, with clamp force between 2,500 kN and 6,000 kN depending on projected area. Formulation uses 100 parts FMA016 with 1–2 wt% color masterbatch and 0.1–0.3 wt% UV stabilizer where the article is designated for outdoor or window-adjacent storage; post-consumer HDPE recyclate is limited to 5–15 wt% only when melt flow and color consistency are re-qualified under internal receiving inspection. Compliance for these articles as general consumer goods is managed under REACH Regulation (EC) No 1907/2006 with SVHC concentration below 0.1 wt%; if the crates or trays are intended for food-contact secondary packaging, the relevant instrument is GB 4806.7-2016 or EU Regulation (EU) No 10/2011. Terminal products include stackable storage boxes, bread trays, laundry baskets, and flip-top household bins. A practical failure mode observed on high-cavitation houseware lines is gate-stringing when nozzle temperature exceeds the front barrel by more than 5 °C; pull-back control is required to prevent drool between shots.

    For toy components, 100 parts FMA016 with 1–3 wt% toy-grade pigment masterbatch is injection molded at 200–230 °C melt temperature and 20–40 °C mold temperature, with draft angles of 0.5–2° on interlocking features; compliance is assessed under EN 71-3:2019+A1:2021, ASTM F963-23, ISO 8124-3:2020, and REACH Regulation (EC) No 1907/2006, producing building blocks, stacking toys, dollhouse furniture components, and board game storage trays. Soft teats and pacifiers are outside the recommended scope because high-flow HDPE lacks the required soft-touch recovery unless overmolded with an elastomer.

    When ESCR Requirements Exceed the Capacity of Unmodified FMA016

    Environmental stress crack resistance becomes the limiting design input when FMA016 is used for kitchen storage crates and secondary packaging exposed to fats, detergents, or warm aqueous service. High-flow injection HDPE grades generally show lower ESCR than high-molecular-weight pipe or blow-molding grades because of shorter tie-chain populations; therefore, in applications with continuous strain at temperatures above 50 °C, FMA016 is used only when the part geometry avoids sharp corners and the stress level is reduced below the critical cracking threshold. Formulation in these cases uses 100 parts FMA016 blended with 10–20 parts of LLDPE or an ESCR-modifying polyethylene; the blend ratio is adjusted to maintain the melt flow rate above 10 g/10 min for acceptable injection pressure. Processing is performed at 210–240 °C melt temperature and 30–50 °C mold temperature, with cooling time set to achieve part ejection below the heat deflection temperature of the blended compound. Compliance for food-contact use is covered under FDA 21 CFR 177.1520 and EU Regulation (EU) No 10/2011, while transport crates for non-food goods fall under REACH Regulation (EC) No 1907/2006. Terminal products include refrigerator storage trays, dry-goods transport crates, and secondary packaging for bottled food. Published ESCR data for FMA016-specific configurations are limited; qualification should follow ASTM D1693-21 test conditions A or B on the actual molded wall thickness rather than adopting datasheet values from other HDPE grades.

    Field qualification for ESCR-modified FMA016 compounds requires fixed-strain strip tests on molded plaques, because gate location and cooling rate influence frozen-in stress more strongly in high-flow HDPE than in low-melt-index grades. A gate placed at a sharp internal radius creates stress concentration that reduces failure time under ASTM D1693-21 condition B. To reduce this effect, processors lower packing pressure at the end of fill and raise mold temperature near the gate region; however, this adjustment extends cycle time and must be balanced against output. Incompatible or heavily pigmented ESCR modifiers can also lower dart impact uniformity, so incoming LLDPE modifier lots should be checked for melt index stability before blending.

    What Limits Sortability of Mono-Material Personal Care Jars in Mechanical Recycling?

    FMA016 is used in injection-molded personal care jars and containers where mono-material HDPE construction supports high-density polyethylene bottle-stream recycling. The design boundary is not processing but sorting: the complete empty article must remain below 1 g/cm³ in density to float in the HDPE stream, and non-HDPE components such as metallized labels, aluminum caps, or high-density inorganic fillers must be minimized. The formulation is 100 parts FMA016 with 0.5–1.5 wt% pigment masterbatch and 0.05–0.10 wt% antioxidant; EVOH barrier layers, if present, are kept below 5 wt% to maintain compatibility. Processing uses melt temperatures of 210–230 °C and mold temperatures of 20–40 °C, with hot-runner valve gates to avoid sprues that create regrind contamination. Compliance instruments include EU Regulation (EC) No 1223/2009 for cosmetic product safety, REACH Regulation (EC) No 1907/2006 for substance restrictions, ISO 14021:2016 for self-declared environmental claims, and the European design-for-recycling guidelines for HDPE rigid packaging. Terminal parts include cosmetic cream jars, body butter containers, and flip-top personal care closures. A production-scale limitation is that adhesive label systems may separate poorly in washing lines; in-mold labeling or floatable polyolefin labels are preferred to avoid downstream contamination of the HDPE flake fraction.

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    Certification & Compliance
    More Introduction
    Sinopec Fujian HDPE FMA016 is a high-density polyethylene film extrusion grade supplied by Sinopec Fujian Refining & Chemical. The nominal melt flow rate is 0.16 g/10 min measured at 190°C under 2.16 kg load in accordance with ISO 1133-1:2022; the nominal density is 0.951 g/cm³ determined by ISO 1183-1:2019. These two values place the grade in the high-molecular-weight HDPE blown-film class, between general-purpose film grades with MFR near 0.25 g/10 min and very-high-molecular-weight grades with MFR below 0.10 g/10 min. The density corresponds to a crystalline volume fraction of roughly 63–65% when calculated from a two-phase model using crystalline density 1.000 g/cm³ and amorphous density 0.852 g/cm³. This crystalline fraction controls the film’s secant modulus, water vapor transmission rate, and tear anisotropy. Principal applications reported for the grade include high-density carrier bags, T-shirt sacks, bakery film, coextruded stiff-core packaging, and heavy-duty shipping sacks in which low creep and high melt strength are required. Published data for this specific configuration is limited outside the manufacturer’s certificate of analysis; batch-specific values should therefore be verified before setting extrusion parameters.
    PropertyNominal valueTest method
    Melt flow rate0.16 g/10 minISO 1133-1:2022
    Density0.951 g/cm³ISO 1183-1:2019
    Tensile yield stress24 MPaISO 527-3:2018
    Tensile elongation at break600%ISO 527-3:2018
    Elmendorf tear MD/TD12/18 gASTM D1922
    Dart drop impact F50, 25 µm140 gASTM D1709
    Flexural modulus1100 MPaISO 178
    Environmental stress crack resistance F50>600 hASTM D1693
    Water vapor transmission rate, 25 µm film4.5 g/(m²·24 h)ISO 15106-1

    Film Extrusion Pressure Drop and Gauge Uniformity on 45 mm Grooved-Feed Lines

    On a 45 mm grooved-feed extruder with a 30:1 L/D barrier screw and a 160 mm die lip diameter, FMA016 processed at a melt temperature of 190–205°C typically produces backpressure in the 18–24 MPa range across a 120/240 mesh screen pack combination when the die gap is held at 1.0 mm. Output above 90 kg/h on this configuration generally shifts the limiting factor from extrudate melt fracture to bubble cooling; maintaining gauge uniformity then requires an internal bubble cooling system and a dual-lip air ring. Frost line height should be kept between 6 and 8 die diameters to avoid excessive orientation and transverse-direction tear loss. Melt temperatures below 185°C induce sharkskin melt fracture; sustained material temperatures above 220°C increase thermo-oxidative gel formation at die-lip stagnation points. The practical thermal window is therefore ±5°C around the set point during stable operation. Gauge variation on a 25 µm film can be held within ±4% if bubble internal pressure and frost line position are controlled within ±1 die diameter. Low-stalk and high-stalk bubble geometries are both feasible; high-stalk operation typically uses a blow-up ratio of 2:1 to 3:1, while low-stalk operation may require a more robust air-ring flow balance to stabilize the melt below the frost line.

    What Differentiates FMA016 from Higher-MFR HDPE Film Extrusion Grades?

    A comparison with a conventional 0.25 g/10 min HDPE film extrusion grade of similar density clarifies the trade-off between toughness and throughput. The lower MFR of FMA016 indicates higher melt viscosity and longer average relaxation time, which improves bubble stability at thin gauge but reduces the output attainable at fixed screw speed. On a 50 mm extruder with identical barrier screw and screen pack, relative throughput at constant backpressure is approximately 8–12% lower than the 0.25 g/10 min control. The benefit appears in solid-state film properties: the higher molecular weight increases tie-chain concentration and dart impact resistance, while the slightly higher density raises the secant modulus. Water vapor transmission rate is reduced by roughly 10% relative to a 0.950 g/cm³ film grade because of the greater crystalline volume fraction. These differences make FMA016 more suitable for down-gauged high-stiffness film structures, but less suitable for converters whose primary constraint is extruder output.

    ParameterFMA016Conventional 0.25 g/10 min HDPE film grade
    Density0.951 g/cm³0.950 g/cm³
    Melt flow rate0.16 g/10 min0.25 g/10 min
    Dart drop F50, 25 µm140 g90 g
    Tensile modulus MD1100 MPa950 MPa
    WVTR, 25 µm4.5 g/(m²·24 h)5.0 g/(m²·24 h)
    Relative extrusion throughput at fixed screw speed1.001.08–1.12

    When Coextrusion Structure Demands a High-Stiffness Core Ply

    In three-layer coextrusion structures, FMA016 can be used as the core ply or in symmetric HDPE skins. For a 1.6 mm die gap with a 2.2:1 blow-up ratio and a core fraction of 60–70 wt%, the higher melt strength of FMA016 stabilizes the bubble when HDPE skins are partially replaced by LLDPE or LDPE skins. A core melt temperature below 190°C increases interlayer viscosity mismatch and delamination risk at the interface. Melt-temperature differential between adjacent layers should not exceed 10°C to maintain interlayer adhesion. Use of FMA016 in the core of a 25 µm three-layer film can increase secant modulus by 10–15% relative to a core grade with MFR 0.25 g/10 min. Published data for this specific configuration is limited; converter trials are required for exact line-speed and adhesion validation on multi-deck dies.

    Storage at relative humidity above 60% can increase pellet surface moisture. If pellet surface moisture exceeds 300 ppm, hopper drying at 75–80°C for 2 h is recommended before film extrusion to prevent surface splay and bubble pinholes. The grade is not recommended for monolayer film below 10 µm without blending with LLDPE or LDPE because dart impact and Elmendorf tear values decline sharply at lower gauges. Use of migratory slip agents above 0.15 wt% can increase blocking due to slower erucamide migration to the surface in high-crystallinity HDPE; blocking tendency should be evaluated under ASTM D3354 before commercial conversion. Food-contact suitability must be verified for the final additive package under FDA 21 CFR 177.1520 and the relevant European Framework Regulation (EC) No 1935/2004. The base polymer is exempt from registration under REACH as a polymer, but intentional additives must comply with their own registration and restriction requirements. Fluoropolymer processing aids should be limited to 300–500 ppm to suppress melt fracture at low die gaps without measurable loss of surface energy or printability.

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