Products

FC 50010 Crystallized Polylactic Acid Coating/Injection Molding Compound

    • Product Name: FC 50010 Crystallized Polylactic Acid Coating/Injection Molding Compound
    • Factroy Site: Yudu County, Ganzhou, Jiangxi, China
    • Price Inquiry: admin@ascent-chem.com
    • Manufacturer: Ascent Petrochem Holdings Co., Limited
    • CONTACT NOW
    Specifications
    HS Code 994734
    Product Name FC 50010 Crystallized Polylactic Acid Coating/Injection Molding Compound
    Chemical Family Polylactic Acid (PLA)
    Appearance Natural-colored pellets
    Density 1.25 g/cm³
    Melt Flow Rate 10 g/10 min (190°C/2.16 kg)
    Melting Temperature 170°C
    Glass Transition Temperature 60°C
    Crystallization Temperature 100°C
    Crystallinity >40%
    Tensile Strength 50 MPa
    Tensile Modulus 3500 MPa
    Elongation At Break 3%
    Flexural Strength 80 MPa
    Flexural Modulus 3500 MPa
    Charpy Impact Strength 15 kJ/m²
    Heat Deflection Temperature 100°C
    Vicat Softening Temperature 100°C
    Recommended Processing Methods Coating, Injection Molding
    Drying Temperature 80°C
    Drying Time 4 hours
    Melt Processing Temperature 190-210°C
    Mold Temperature 100-120°C

    As an accredited FC 50010 Crystallized Polylactic Acid Coating/Injection Molding Compound factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Packaging: 25 kg moisture-resistant foil-lined paper bags, palletized and shrink-wrapped, for FC 50010 Crystallized Polylactic Acid Coating/Injection Molding Compound.
    Container Loading (20′ FCL) 20′ FCL: FC 50010 crystallized polylactic acid coating/injection molding compound, palletized in 25 kg bags, shrink-wrapped, secured for ocean freight.
    Shipping Shipping description: FC 50010 Crystallized Polylactic Acid Coating/Injection Molding Compound is not classified as dangerous goods. No UN number, hazard class, or packing group assigned. Transport as a non-hazardous solid in sealed, labeled packaging. Keep cool, dry, and away from moisture/ignition sources.
    Storage Store in a cool, dry, well-ventilated area away from direct sunlight, heat, sparks, and open flames. Keep original containers or packages tightly closed to prevent moisture absorption and contamination. Maintain recommended temperature (e.g., 10–30°C) and low humidity. Use first-in, first-out stock rotation. Avoid prolonged storage in hot or humid conditions. Do not expose to incompatible chemicals or ignition sources.
    Shelf Life Stable when stored sealed in a cool, dry, well-ventilated area; shelf life is typically 24 months under recommended conditions.
    Application of FC 50010 Crystallized Polylactic Acid Coating/Injection Molding Compound

    Thin-walled cutlery tooling for the crystallized PLA compound FC 50010 reaches stable mould fill only when melt flow is matched to gate geometry and cavitation; the relevant acceptance window is established by ISO 1133-1:2022, with injection grades typically falling between 15 g/10 min and 30 g/10 min at 210°C under 2.16 kg. Compliance for direct food contact in the European market is assessed under EU Regulation 10/2011, where overall migration must remain below 10 mg/dm² in food simulant testing; articles positioned as compostable packaging must additionally demonstrate 90% biodegradation within 6 months and 90% disintegration after 12 weeks under EN 13432. The addition ratio in the cutlery moulding operation is normally 100% neat compound, with post-industrial regrind limited to 20 wt% because repeated heat history shifts crystallization kinetics and raises melt pressure; where cycle-time reduction is required, a nucleating talc masterbatch may be included at 1–5 wt%, but only after verifying that filler content does not reduce melt strength below the level needed for stack-mould transfer. Production-scale behaviour is dominated by pre-drying: pellets must be brought below 250 ppm moisture using a desiccant dryer at 80°C for 4 h with a dew point of -40°C, because moisture above 250 ppm causes hydrolysis, viscosity loss, splay, and inconsistent cavity packing. Thin-wall lines run best with a reciprocating screw of 20:1 to 25:1 L/D, a low-compression screw, and valve-gated hot runners; mould temperatures must be held between 100°C and 120°C to promote the crystalline morphology that raises heat deflection beyond that of amorphous PLA, with cycle time controlled more by cooling from the crystallisation plateau than by injection speed. Finished part types in this segment include cutlery sets, portion cups, cold food containers, limited-use institutional tableware, and disposable meal trays; the operational boundary is that such parts are not suited to prolonged contact with boiling liquids above the compound’s ISO 75-2/B heat deflection value, and brittle failure in thin sections may occur if mould temperature is allowed to fall below 90°C during production interruption.

    Replacing LDPE extrusion coating on kraft board with a crystallized PLA compound shifts the process defect profile from edge neck-in to ester-based plate-out on die lips, and line configuration must be adapted accordingly. Regulatory coverage for this application rests on 21 CFR 175.300 for resinous and polymeric coatings in food contact, or on a grade-specific FDA Food Contact Notification where the supplier has established equivalence, alongside EU Regulation 10/2011 migration testing with overall migration of ≤10 mg/dm²; if the finished package is marketed as compostable, EN 13432 applies to the entire structure rather than to the coating layer alone. The addition ratio is expressed as dry coat weight rather than a melt-blend percentage: for a standard kraft cupstock of 240 g/m², a PLA coating weight of 18–30 g/m² corresponds to 7.0–11.1 wt% of total board mass. Extrusion coating equipment typically comprises a single-screw extruder with 30:1 L/D, a barrier screw, a coat-hanger die, and a chilled polishing roll held at 18–25°C; melt temperature at the die should remain between 190°C and 210°C, and the air gap is shortened relative to LDPE because PLA has lower melt strength and faster solidification. Downstream production includes corona pretreatment of the substrate before coating, with surface energy targets above 38 mN/m per ISO 8296, followed by slitting and blanking for cup and tray converting. Finished product types are cold beverage cups, insulated cold drink sleeves, sandwich wedges, bakery trays, ice cream tubs, and food-service clamshells; the limitation is that monolayer PLA extrusion coating does not provide the moisture vapour barrier of LDPE and is not recommended for retort, hot-fill above 55°C, or long-term frozen distribution without seal-area testing under ASTM F2029.

    What Limits Crystallization In Single-Serve Capsule Sidewalls Below 0.45 mm?

    A 0.45 mm sidewall in a single-serve beverage capsule creates a processing conflict between fast cavity filling and the slow crystallization plateau of PLA. The governing raw compound consistency test is ISO 1133-1:2022, but the critical downstream measurement is the ISO 75-2/B heat deflection temperature after moulding: thin-walled capsules intended for 85–95°C brewing water require mould temperatures of 100–120°C to develop crystallinity, and that narrows the thermal processing window to approximately ±5°C around the set point. Compliance for food contact is assessed under EU Regulation 10/2011, with overall migration below 10 mg/dm² and specific migration of residual lactide and additive substances checked where the capsule shell contacts hot water under worst-case filling conditions; compostable claims require EN 13432, and printed lid stock requires 21 CFR 175.300 or equivalent where the coating is on the lid. The addition ratio in the injection moulding compound is typically 85–100 wt% crystallized PLA, with 1–5 wt% nucleating talc or poly-D-lactic acid stereocomplex, 5–15 wt% impact modifier to reduce cap-roll cracking, and 0.5–2.0 wt% processing stabiliser; the exact modifier level is set by the notched Izod value required after conditioning at 23°C and 50% RH according to ISO 180/1A. High-speed moulding equipment for this segment uses valve-gated hot runners, multicavity tooling with per-cavity temperature control, and clamp forces between 1,500 kN and 3,500 kN depending on cavitation; pre-drying at 80°C to below 250 ppm moisture is not optional because hydrolysis at the gate produces silver streaks and a measurable drop in average capsule burst strength. Terminal products include espresso capsules, tea capsules, single-serve cocoa pods, and dry beverage capsules; published data for oxygen barrier of monolayer PLA capsule shells is limited, so products with oxygen-sensitive ingredients require a secondary barrier layer or metallized lid, and the PLA shell is not suitable for steam retort conditions above 100°C.

    Office Equipment Enclosure Compounds Require Impact Modification Measured by ISO 180/1A

    Office equipment enclosure compounds require impact modification because unmodified crystallized PLA exhibits notched Izod values below 5 kJ/m² under ISO 180/1A, which is lower than the minimum usually specified for snap-fit covers and business machine panels. The compliance framework includes IEC 62368-1 for audio/video and information technology equipment safety at finished part level; materials directives 2011/65/EU (RoHS) and 1907/2006 (REACH) apply to the moulded component, while flame-retardant formulations may require UL 94 HB or V-2 classification depending on wall thickness and end use. The addition ratio for this segment is normally 70–85 wt% crystallized PLA, 10–25 wt% of an olefinic or biodegradable impact modifier, 0.2–0.5 wt% of a reactive chain extender to rebuild melt strength after modifier dilution, and 0.5–1.0 wt% of a lubricant to reduce ejection force; the precise ratio is adjusted until tensile modulus remains above 2,000 MPa under ISO 527-2 while notched Izod improves to 8–15 kJ/m². Production on standard injection moulding machines with 20:1 to 25:1 L/D dosing screws and closed-loop cavity pressure transducers is feasible, but mould temperature must be held between 90°C and 110°C to obtain dimensional stability, and residence time should be kept below 5 minutes at 195–210°C melt temperature to limit thermal degradation of the polyester backbone. Terminal finished part types include printer side panels, monitor bezels, keyboard frames, router housings, scanner covers, and small appliance enclosures; operational boundaries are that the compound is not a drop-in replacement for ABS in parts with continuous service above 60°C under mechanical load, and coated surfaces require adhesion testing under ISO 2409 because PLA surfaces have low surface energy after moulding.

    When Biodegradable Plant Fixing Devices Are Injection Moulded Under High Humidity

    When biodegradable plant fixing devices are injection moulded under high ambient humidity, the pre-drying protocol rather than the moulding press becomes the primary control point, because PLA pellets absorb moisture rapidly and begin hydrolysing at the barrel residence temperatures used for thin-wall horticultural parts. Compliance for soil-contact and compostable products is defined by EN 13432 for industrial compostability, with ASTM D5988 applicable where aerobic soil degradation claims are made; occupational and environmental substance restrictions under REACH apply to additives, and the finished parts must not exceed the heavy metals limits specified in EN 13432. The addition ratio in this application is 90–100 wt% crystallized PLA, with 3–10 wt% mineral filler such as talc or calcium carbonate when field stiffness is specified, 1–3 wt% biodegradable impact modifier to prevent installation fractures, and 0.5–1.5 wt% colour masterbatch formulated on a PLA carrier; filler content is capped at 10 wt% because higher loadings reduce notched impact strength below 4 kJ/m² under ISO 180/1A and create gate wear on hardened tool steels. Production process parameters include desiccant drying at 80°C for 4–6 h to below 250 ppm moisture, melt temperature of 185–205°C, and mould temperature of 90–110°C to balance crystalline content against distortion in long narrow parts; hot-runner or valve-gated systems are preferred because cold-runner sprue and runner regrind can be reprocessed only at ≤20 wt% without measurable molecular weight loss. Terminal finished part types are vine clips, greenhouse fasteners, tree ties, plant label stakes, seedling trays, and root-training containers; the operational boundary is that these products are not home-compostable in most ambient garden conditions and are intended for industrial composting facilities, while multi-season outdoor exposure above 30°C combined with high soil moisture will accelerate hydrolysis and reduce mechanical strength below the installation requirement.

    Free Quote

    Competitive FC 50010 Crystallized Polylactic Acid Coating/Injection Molding Compound 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
    More Introduction

    In applications where a bio-based polyester must survive hot filling, hot die contact, or fast-cycle molding without excessive blocking or dimensional drift, amorphous polylactic acid performs poorly because the quenched melt remains largely non-crystalline and softens near its glass transition. FC 50010 Crystallized Polylactic Acid Coating/Injection Molding Compound is supplied as a formulated polylactic acid compound rather than an unmodified resin, containing a heterogeneous nucleating system that raises the temperature at which crystallization proceeds at commercially relevant rates. The compound is intended for both extrusion coating onto cellulose and injection molding of thin-wall articles where the mold surface is maintained above the cold-crystallization onset. In a coating line, the crystallized layer displays reduced tack against a chill roll and improved scuff resistance compared with an amorphous PLA coating of the same thickness. For injection molding, the material's practical distinction is the shortened crystallization half-time after the gate freezes, which can reduce hold-pressure time and post-demolding dimensional drift if the tool-temperature window is controlled within narrow limits.

    For characterization, the melt flow rate is typically determined at 210 °C with a 2.16 kg load according to ISO 1133-1:2022. FC 50010 generally falls within a melt-flow-rate band of 15–25 g/10 min, although the lot-specific certificate of analysis governs the exact value. Solid-state density measured by ISO 1183-1:2019 falls near 1.25–1.27 g/cm³; this density difference, not merely the bio-based carbon content, distinguishes the compound from polypropylene in multicavity tooling. The glass transition is recorded by differential scanning calorimetry according to ISO 11357-3:2018 near 55–60 °C, while the melting endotherm for the crystallized PLA fraction appears in the 165–180 °C range. The cold-crystallization exotherm is sharply reduced when the compound is crystallized during molding or coating; if the substrate temperature remains below 80 °C, the crystallinity remains low and the final article retains the lower heat resistance typical of amorphous PLA.

    What Distinguishes FC 50010 from Amorphous PLA Coating Compounds?

    The principal difference is crystallization architecture rather than base chemistry. Amorphous PLA coating grades are formulated to remain optically clear after quench and exhibit low haze, but their heat deflection temperature under 1.8 MPa by ISO 75-2:2013 Method A is usually below 60 °C. FC 50010 is not optimized for optical clarity; its nucleating package and higher rear-zone temperatures allow the melt to develop a crystalline fraction when the tool or chill roll remains above the cold-crystallization threshold. After adequate crystallization, heat deflection temperature can exceed 100 °C, and tensile modulus measured by ISO 527-2:2012 is approximately 3.2–3.6 GPa. The trade-off is reduced transparency: a crystallized PLA layer is translucent to opaque, and haze measured by ASTM D1003-21 is substantially higher than an amorphous PLA film or coating. For applications requiring barrier and dimensional stability, this is an acceptable exchange; for display-grade packaging, the amorphous grade remains more suitable.

    Molding of the FC 50010 class on production-scale equipment requires a hot tool. Published operating envelopes for nucleated PLA compounds of this type indicate that mold surface temperatures of 90–110 °C are necessary to develop sufficient crystallinity within economically acceptable cycle times. At mold temperatures below 85 °C, crystallization is incomplete; parts typically emerge with lower heat deflection and continue to densify over the following hours. At mold temperatures above 115 °C, the cooling time rises sharply, the part can stick in the cavity, and the risk of thermal degradation increases. The practical processing window may therefore be as narrow as ±5 °C around the target set point for thin-wall articles, and this demands tight control of tool thermocouples, water-line cleanliness, and mold steel selection. In multicavity tools, the temperature spread between cavities should be held below 5 °C to avoid dimensional scatter caused by crystallinity differences. On a hydraulic injection molding machine with a clamp force of 80–150 t, barrel zone settings for crystallized PLA are usually profiled from 170 °C at the feed throat to 190–200 °C at the metering zone and 195 °C at the nozzle. Screw recovery should be smooth without high back pressure; a back pressure of 0.5–1.0 MPa and a screw surface speed below 0.3 m/s are typical for maintaining melt uniformity without adding frictional heat. Injection speed is set high enough to fill before premature crystallization freezes the flow front; linear velocities in thin-wall gates are frequently 150–300 mm/s. Hold pressure is maintained until gate freeze, but excessive hold pressure can orient residual stress. The crystallized layer at the mold wall builds as a skin, while the core may remain less crystalline if the wall thickness exceeds 2 mm; this skin-core structure should be expected and not interpreted as unmelted material.

    When Crystallized PLA Is Substituted for Polypropylene in Thin-Wall Molding

    Replacing polypropylene with FC 50010 requires a redesign of thermal management, not a simple resin swap. Polypropylene homopolymer has a solid-state density near 0.90 g/cm³ by ISO 1183-1:2019; crystallized PLA is approximately 1.25–1.27 g/cm³. At equal part volume, the PLA article weighs roughly 38% more, which affects runner mass, shot size, and cycle energy. Polypropylene crystallizes rapidly at mold temperatures of 20–40 °C, whereas FC 50010 requires the hot-tool regime described above. The tensile modulus of crystallized PLA is high relative to polypropylene, with values near 3.0–3.5 GPa compared with 1.0–1.6 GPa for general-purpose homopolymer. Notched Charpy impact strength of crystallized PLA measured by ISO 179-1:2010 is typically 2–4 kJ/m², lower than many polypropylene homopolymers and far below impact copolymer grades. This combination of high stiffness and low impact energy makes the compound suitable for rigid short-life parts but not for snap-fit closures, living hinges, or low-temperature drop applications. Shrinkage behavior is also different: polypropylene shrinkage is isotropic and predictable, while PLA shrinkage depends on the degree of crystallinity developed in the tool. Post-mold annealing may be employed for FC 50010 if dimensional stability is critical; a typical annealing protocol is 100 °C for 2 h in a forced-air oven, followed by slow cooling to below 60 °C. Without annealing, parts molded at suboptimal tool temperatures can continue to shrink and warp for 24–48 h after demolding. Published data for this specific configuration is limited, so first-article capability studies should measure length and warpage at 1 h, 8 h, and 24 h after ejection.

    Moisture Uptake, Drying, and Hydrolytic Stability Limits

    Polylactic acid is hygroscopic and undergoes hydrolytic chain scission at melt temperatures above 200 °C. FC 50010 must be dried before processing to a residual moisture content below 0.025% (250 ppm) as determined by ISO 15512:2019. A desiccant dryer with a dew point of -40 °C or lower, air flow of 0.5–1.0 m³/h per kg/h throughput, and a residence time of 4–6 h at 80 °C is the minimum configuration for stable melt viscosity. Hopper drying at 80 °C for 4 h may be sufficient at ambient relative humidity below 60%; at higher humidity the residence time should be extended to 6 h or a vacuum dryer should be used. Overdrying at temperatures above 100 °C can induce pellet sticking and bridging in the hopper, so the dryer temperature set point must be interlocked to prevent excursion above 90 °C. If the melt flow rate after drying increases by more than 20% relative to the supplier's lot data, hydrolysis or thermal degradation is indicated and the melt must not be used for compliance-critical articles. The same moisture limit applies to regrind; incorporation of more than 30% plant regrind is not recommended unless the regrind is dried to the same residual moisture and tested for melt flow by ISO 1133-1:2022 before blending.

    Thermal Degradation Kinetics at Extended Melt Residence Times

    Melt residence time is a first-order process variable. At 210 °C, polylactic acid undergoes random chain scission and monomer regeneration; the rate is low under a nitrogen blanket but accelerates in the presence of residual water. The practical melt residence limit for FC 50010 is approximately 15 min at 200 °C, and shorter above 220 °C. Barrel temperatures above 230 °C should be avoided because the compound may yellow and the crystallization rate drops due to molecular-weight loss. In extrusion coating, the melt film is exposed to atmospheric oxygen at die exit; edge trim degradation can produce gel-like particles that deposit on the die lip, causing coating streaks. This failure mode is observed on production-scale coating lines when edge trim is not promptly removed or when the die gap is set below 0.5 mm. The same gel formation threshold applies to injection molding hot-runner manifolds; dead spots in the manifold with residence times above 10 min should be avoided. When interruption exceeds 15 min, the screw should be retracted, the manifold held at 180 °C or below, and the first shots after restart discarded until surface quality and melt pressure stabilize.

    Across the Extrusion Coating Die and Chill-Roll Interface

    In coating, FC 50010 is processed at melt temperatures of 190–220 °C. The die gap is typically 0.5–0.9 mm, and the air gap between die exit and nip is kept as short as possible, usually below 150 mm, because polylactic acid has low melt strength and is prone to neck-in and draw resonance. The substrate is often paperboard or cellulose film; adhesion is a limitation unless the substrate is corona-treated to a surface energy of at least 40 mN/m or a water-based primer is used. The chill roll is maintained at 20–40 °C to quench the coated side rapidly, but the coating then recrystallizes during storage if ambient temperatures exceed 30 °C. The output rate must balance fast quench against the need for some crystalline order; a chilled roll temperature below 15 °C can freeze too much amorphous content and create curl in the coated sheet. Coating thickness is set by line speed and screw speed, not by die gap alone. The compound is suited to coating weights of 15–40 g/m²; above 50 g/m², the additional thickness reduces quench efficiency and may produce a soft core that blocks under roll pressure. Because PLA coatings have low oxygen permeability relative to paper but only moderate water-vapour barrier, they are frequently used as the outer layer of a multilayer structure in which a moisture-barrier polymer or dispersion coating is placed beneath the PLA. The crystallized surface improves blocking resistance and elevates the service temperature of the coated article, but edge trim must be kept dry for successful reprocessing.

    Compared with PLA/PBAT blends, FC 50010 has a higher modulus and lower elongation at break. The crystallized PLA compound is not a drop-in flexible packaging resin; if elongation above 50% is required, an impact-modified or PBAT-rich grade should be selected. Compared with stereocomplex PLA, which can exhibit a melting temperature above 220 °C, FC 50010 uses a conventional melting range of 165–180 °C. Stereocomplex PLA may offer higher heat resistance in principle, but it is more costly and less widely available for coating lines. FC 50010 therefore occupies an intermediate position: higher heat resistance than amorphous PLA and higher stiffness than polypropylene, but lower impact strength than both flexible PLA blends and many petrochemical thermoplastics.

    The comparative profile below is compiled from publicly available technical data for semi-crystalline PLA, amorphous PLA, and polypropylene homopolymer. The values are typical ranges for the compound class, not lot-specific guarantees; FC 50010 certificates of analysis and supplier technical data sheets govern actual supply.

    Property Test method FC 50010 class Amorphous PLA PP homopolymer
    Density ISO 1183-1:2019 1.25–1.27 g/cm³ 1.24–1.25 g/cm³ 0.90–0.91 g/cm³
    Melt flow rate ISO 1133-1:2022 15–25 g/10 min at 210 °C/2.16 kg 5–15 g/10 min at 210 °C/2.16 kg 10–30 g/10 min at 230 °C/2.16 kg
    Tensile strength at yield ISO 527-2:2012 55–65 MPa 50–60 MPa 30–40 MPa
    Tensile modulus ISO 527-2:2012 3.2–3.6 GPa 3.0–3.4 GPa 1.0–1.6 GPa
    Heat deflection temperature at 1.8 MPa ISO 75-2:2013 95–120 °C after crystallization 50–60 °C 50–60 °C
    Notched Charpy impact ISO 179-1:2010 2–4 kJ/m² 2–3 kJ/m² 3–8 kJ/m²
    Mold or chill-roll surface temperature Process parameter 90–110 °C for molding 10–40 °C 20–40 °C
    Crystalline content by DSC ISO 11357-3:2018 30–45% after annealing <5% after quench 50–65%

    The regulatory status of FC 50010 is application-specific. The table below lists verification boundary conditions that must be resolved before the compound is used in food-contact, compostability-marked, or restricted-substance applications.

    Verification domain Standard or method Typical boundary condition for FC 50010
    Biobased carbon content ASTM D6866-22 or ISO 16620-2:2019 Requires lot-specific certificate; PLA feedstock is generally ≥95% biobased carbon
    Industrial compostability EN 13432:2000/AC:2005 or ASTM D6400-23 Valid only if final article passes disintegration, biodegradation, and ecotoxicity tests
    RoHS hazardous substances IEC 62321 series Supplier analytical report required for cadmium, lead, mercury, chromium VI, PBB, and PBDE
    EU REACH registration Regulation EC 1907/2006 PLA monomer and nucleating additive registration must be confirmed via safety data sheet
    Food-contact suitability EU 10/2011 or FDA food-contact notification No blanket approval; migration testing and final article formulation govern compliance
    Residual moisture before melt processing ISO 15512:2019 <250 ppm required to limit hydrolytic chain scission

    On a pilot-scale extrusion coating line with a single-screw extruder of 45 mm diameter and 24:1 L/D, edge trim and melt pressure instability are the most common failure modes when FC 50010 is run without a properly sized dryer. The melt curtain may draw down to 15 µm; below this thickness the coating can split at the die edge because of low melt strength. The addition of an inline melt pump may reduce pressure pulsation, but the melt temperature must be kept below 220 °C. Long production runs above 4 h require the die lip to be cleaned periodically to remove oxidized polymer deposits. Coated samples conditioned at 23 °C/50% RH for 24 h often show haze values above 20%, which is expected for a crystallized PLA layer. For coated-structure seal strength, ASTM F88-23 may be used; seal strength depends on the substrate, primer, coating weight, and the degree of crystallinity developed at the chill-roll interface.

    Top