| HS Code | 473073 |
| Material Type | Polylactic Acid (PLA) |
| Form | Pellets |
| Color | Natural / White |
| Density | 1.24 g/cm³ |
| Melt Flow Rate | 20 g/10 min (190°C/2.16 kg) |
| Melting Temperature | 175°C |
| Glass Transition Temperature | 60°C |
| Crystallization Temperature | 100-120°C |
| Tensile Strength | 60-70 MPa |
| Tensile Modulus | 3500-4000 MPa |
| Elongation At Break | 2-3% |
| Flexural Modulus | 3800-4200 MPa |
| Flexural Strength | 80-100 MPa |
| Charpy Notched Impact Strength | 2-3 kJ/m² |
| Heat Deflection Temperature | 140°C (0.45 MPa) |
| Vicat Softening Temperature | 150°C |
| Biobased Carbon Content | 100% |
| Compostability | EN 13432 / ASTM D6400 |
| Processing Method | Injection Molding |
As an accredited FC 60020 Crystallized Compostable Injection Molding Polylactic Acid factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | FC 60020 Crystallized Compostable Injection Molding Polylactic Acid is packaged in 25 kg sealed moisture-barrier bags on pallets. |
| Container Loading (20′ FCL) | 20′ FCL container loaded with FC 60020 Crystallized Compostable Injection Molding Polylactic Acid, palletized, shrink-wrapped, and secured for dry transport. |
| Shipping | FC 60020 Crystallized Compostable Injection Molding Polylactic Acid is transported as a non-hazardous, non-regulated solid in sealed moisture-barrier bags, drums, or bulk bags. Keep dry, away from heat and contamination. No UN number, hazard class, or packing group required. Follow local regulations and maintain package integrity during handling. |
| Storage | Store FC 60020 Crystallized Compostable Injection Molding Polylactic Acid in a cool, dry, well-ventilated area, away from direct sunlight, heat, moisture, and ignition sources. Keep containers tightly sealed to prevent hydrolysis. Maintain low humidity and temperatures below 30°C (86°F). Use first-in, first-out stock rotation; avoid prolonged exposure to elevated temperatures or incompatible chemicals. |
| Shelf Life | Shelf life is typically 12 months when stored unopened in a cool, dry place, protected from moisture, heat, and sunlight. |
Within single-serve beverage capsule manufacturing, FC 60020 crystallized compostable injection molding polylactic acid is specified for ring-and-lid components in programs where spent capsules are accepted under municipal organic waste collection. The compliance basis for this segment rests on EN 13432:2000/AC:2005 or ASTM D6400-23 for industrial compostability, and on Regulation (EU) No 10/2011/EC for food-contact migration using EN 1186-1:2002 overall migration conditions and EN 13130-1:2004 specific migration protocols. U.S. food-contact status for PLA is not established by 21 CFR 177.1520, which governs olefin polymers; an effective Food Contact Notification or threshold-of-regulation determination is required for the finished capsule component. At the formulation level, FC 60020 is processed at 100 wt% for thin-wall frames when gate-to-cavity residence time allows adequate crystallization. If mold design or cycle-time constraints prevent the part from reaching a crystalline plateau, 0.5–2.0 wt% of PDLA-based stereocomplex nucleating masterbatch is added at the feed throat; addition above 2.0 wt% has been observed on production lines to reduce gate elongation and produce brittle failure at the injection point. Drying before molding uses a desiccant dryer with a dew point of -40 °C to -30 °C, air temperature 70–80 °C, and residence time 4–6 h, targeting residual moisture below 250 ppm. Barrel profiles are set from 190 °C at the feed zone to 210 °C at the nozzle, with mold temperature held between 85 °C and 110 °C to promote crystallization against the cavity wall. Injection speed is moderate, typically 80–150 mm/s, because excessively high shear at the gate can generate local melt temperatures above 220 °C and initiate thermal degradation. The downstream terminal products include espresso capsule ring frames, single-serve tea pod rims, and lidding film carrier rings for compostable coffee pods.
| Parameter | Method | Typical acceptance criterion |
|---|---|---|
| Disintegration under industrial composting | ISO 20200:2015 | ≤10% residue on 2 mm sieve after 12 weeks |
| Aerobic biodegradation | ISO 14855-1:2012 | ≥90% absolute or relative to cellulose at 180 days |
| Compost quality and ecotoxicity | OECD 208:2006 / EN 13432:2000/AC:2005 Annex E | No adverse effect on seed germination or plant biomass compared with blank compost |
| Melt flow rate after regrind | ISO 1133-1:2022 | Reported at 210 °C/2.16 kg; shifts above 3 g/10 min require process revalidation |
The transition from amorphous to crystallized PLA in cutlery is controlled primarily by mold-wall temperature, and this threshold defines the operational boundary for FC 60020 in high-cavity cutlery tools. Parts ejected from a mold held below 80 °C remain predominantly amorphous and exhibit heat deflection temperature below 60 °C under ISO 75-2:2013; the same part molded at 90–105 °C develops crystallinity sufficient to resist distortion during hot soup or hot food contact. Compliance for disposable compostable cutlery relies on EN 13432:2000/AC:2005 or ASTM D6400-23, with food-contact migration verified under Regulation (EU) No 10/2011/EC and good manufacturing practice per Regulation (EC) No 2023/2006. Formulation addition is typically 100 wt% FC 60020; when cycle time must be held below 14 s across 64-cavity tools, 1.0–3.0 wt% of nucleating masterbatch is added to accelerate crystallization. Use of post-industrial cold-runner regrind above 15 wt% has been observed to raise melt flow rate by more than 3 g/10 min under ISO 1133-1:2022, causing flash and inconsistent filling in thin tine sections. Amine-based antistatic packages or color masterbatches containing free amines are excluded because they accelerate melt-phase chain scission in PLA. Drying uses desiccant air at 70–80 °C for 4–6 h to a moisture content below 250 ppm; moisture above 400 ppm is associated with splay and viscosity loss at the nozzle. The downstream production process uses electric or hydraulic injection molding machines with clamp force between 1,200 kN and 3,000 kN, screw L/D ratio 20:1 to 24:1, and valve-gated hot runners where cavitation exceeds 8. Gate diameter is set at a minimum of 1.2 times the local wall thickness; vent depth is held between 0.02 mm and 0.03 mm to prevent gas burn at the tine ends. Mold temperature uniformity across the cavity block should not vary by more than ±5 °C, because cooler corners produce amorphous regions that later warp in hot service. Terminal product types include compostable forks, teaspoons, soup spoons, and sporks for airline meal kits, institutional catering, and quick-service restaurant disposal programs.
Thin-wall cold-fill dairy containers impose a narrower processing window than cutlery because flow length-to-wall-thickness ratios often exceed 150:1, and FC 60020 must fill without freezing at the melt front or degrading at the gate. The compliance package for this segment includes Regulation (EU) No 10/2011/EC for overall migration into aqueous and acidic food simulants, EN 13432:2000/AC:2005 for industrial compostability, and Regulation (EC) No 2023/2006 for good manufacturing practice in food-contact production. U.S. applications require an effective Food Contact Notification rather than 21 CFR 177.1520 clearance. Formulation addition is 100 wt% FC 60020; no filler is used in thin walls because 2–5 wt% mineral filler reduces melt elongation at the flow front and increases gate blush. In-mold label systems may require an external mold-release agent approved for food contact under EU 10/2011; internal lubricants are avoided unless the supplier certifies absence of migration above the applicable specific migration limit. Drying before processing takes place at 70–80 °C for 4–6 h with desiccant dew point below -30 °C and residual moisture below 250 ppm. Production is carried out on high-speed injection molding machines with clamp force 1,500–3,500 kN, injection speed above 200 mm/s, and mold temperature 80–95 °C to achieve crystallinity without sacrificing label adhesion. The gate is an edge or film gate with land length 0.5–1.0 mm; cooling time is set so that part ejection occurs below 55 °C surface temperature to avoid post-mold warping. Terminal product types include 30–180 ml portion cups for dairy desserts, sauce pots, and cold-serve dessert tubs with compostable lid lugs.
High-gloss personal-care closures made from FC 60020 replace virgin ABS or PP in a limited set of non-food-contact applications where industrial compostability is part of the brand packaging claim. Compliance for the packaging article is primarily mechanical and chemical: EN 13432:2000/AC:2005 for compostability, REACH Regulation (EC) No 1907/2006 for chemical substances, and ISO 22715:2006 for cosmetic packaging quality. Cosmetic product safety under Regulation (EC) No 1223/2009 applies to the filled product, but closure compatibility testing is performed with the actual cream or alcohol-water formulation to exclude environmental stress cracking. Formulation addition is 100 wt% FC 60020 for short-run development; production permits up to 20 wt% dried in-house PLA regrind from sprues and rejected closures. Regrind above 20 wt% or reprocessing beyond 3 heat cycles has been observed to increase melt flow rate by more than 5 g/10 min under ISO 1133-1:2022 and reduce surface gloss to an unacceptable level for high-gloss caps. For wall thicknesses above 2 mm, 0.3–1.0 wt% nucleating masterbatch is added to prevent post-demolding shrinkage and sink marks; for thin decorative caps under 2 mm, no nucleating agent is used to maintain clarity after rapid cooling. Drying is conducted at 70–80 °C for 4–6 h to below 250 ppm moisture; undried regrind above 300 ppm moisture causes splay on cavity-textured surfaces. The injection molding process uses clamp force from 800 kN to 2,500 kN, mold temperature 90–100 °C for crystallizable wall sections, and a two-stage packing profile with initial packing at 600–900 bar for 2–4 s and hold at 300–500 bar for 5–10 s to minimize sink at the cap-to-thread junction. Gate placement behind a detachable sprue or tab allows surface finishing without visible gate vestige. Terminal product types include cream jar caps, compact case bases, lipstick closures, and secondary packaging components for compostable personal-care lines.
In propagation and nursery supply chains, the requirement is often misinterpreted as soil degradation; FC 60020 is suited only to industrial composting routes and does not claim ambient-soil biodegradability. Compliance is therefore anchored to EN 13432:2000/AC:2005 and ASTM D6400-23, with ISO 17556:2019 used only when a soil-biodegradation claim must be explicitly tested and rejected. Formulation addition for thin-walled seedling pots and propagation trays is 100 wt% FC 60020 without filler. For nursery pots with wall thickness above 1.5 mm, 0.5–1.0 wt% nucleating masterbatch is added to reduce in-mold crystallization time; filler addition above 3 wt% is avoided because it embrittles the pot rim during automated handling. Processing uses desiccant drying at 70–80 °C for 4–6 h to below 250 ppm. Injection molding machines with clamp force 800–2,500 kN and cold runners are typical for short-to-medium runs; mold temperature is held at 90–100 °C to prevent post-demolding crystal growth that causes rim warping in thick sections. For wall sections above 4 mm, cooling time is increased by 1.2–1.5 s/mm beyond the thin-wall baseline, and parts are ejected below 55 °C to maintain dimensional stability. Terminal product types include nursery pots, propagation trays, plant clips, and tree seedling tubes destined for industrial composting after transplanting.
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FC 60020 Crystallized Compostable Injection Molding Polylactic Acid is a nucleated poly(L-lactic acid)-based compound supplied in pellet form for rigid injection-molded articles that require industrial compostability under EN 13432:2000 or ASTM D6400-23. The designation “crystallized” refers not to a pre-crystallized pellet morphology but to the grade’s capacity to develop a crystalline superstructure during heated mold residence, thereby raising the heat deflection temperature above the 55–60 °C plateau typical of amorphous PLA. Bio-based carbon content, where required, is normally verifiable by ASTM D6866-22 or ISO 16620-2:2019. Published data for this specific configuration is limited; values in this document are class-level representative ranges unless labeled as grade-specific.
Moisture control is the primary pre-processing constraint. Hydrolytic degradation in PLA accelerates rapidly above 250 ppm residual moisture. When ambient relative humidity exceeds 60%, pellets should be dried at 80 °C for 4–6 h in a desiccant dryer with a dew point below -40 °C, and hopper residence should not exceed 1 h without dry-air purge. Drying above 100 °C risks pellet agglomeration and should be avoided. Residual moisture is best determined by ASTM D6980-17 or Karl Fischer titration, not by visual inspection.
Amorphous PLA solidifies without significant spherulitic growth; the molded part retains a heat deflection temperature near 55–65 °C under 0.45 MPa (ISO 75-2:2013 Method B) and may deform in hot-fill or direct sunlight. FC 60020 is formulated with a nucleating system that shortens the isothermal crystallization half-time at 110 °C to a class-level range of 30–60 s, compared with 180–300 s for unmodified PLA. In a mold held at 100–120 °C, the part develops sufficient crystallinity to achieve a heat deflection temperature in the range of 95–120 °C under the same load. This is not simply a resin substitution; it changes mold temperature control, gate design, shrinkage allowances, and ejection force requirements.
| Property | Standard | Amorphous PLA | FC 60020 class |
| Melt flow index, 190 °C/2.16 kg | ISO 1133-1:2022 | 6–15 g/10 min | 15–30 g/10 min |
| Heat deflection temperature, 0.45 MPa | ISO 75-2:2013 Method B | 55–65 °C | 95–120 °C |
| Tensile yield strength | ISO 527-2:2012 | 60–70 MPa | 60–70 MPa |
| Flexural modulus | ISO 178:2019 | 3.0–3.5 GPa | 3.2–3.8 GPa |
| Notched Izod impact | ISO 180:2019 | 2.0–3.0 kJ/m² | 2.0–3.5 kJ/m² |
| Solid density | ISO 1183-1:2019 | 1.24–1.26 g/cm³ | 1.25–1.27 g/cm³ |
| Mold temperature | — | 15–40 °C | 100–120 °C |
The difference from other nucleated PLA grades lies primarily in the balance of flow length and crystallization rate. Some crystallizable PLA products require a post-mold annealing step at 100–120 °C for 30–60 min; FC 60020 is intended to crystallize in the mold, eliminating the annealing cycle for many geometries. However, the in-mold crystallization route demands mold temperature uniformity within approximately ±5 °C of the nominal set point. When steel surface temperatures vary more than 10 °C across the cavity, differential shrinkage produces warp and post-demolding dimensional drift that cannot be corrected by pressure adjustment alone.
Injection molding operators sometimes raise melt temperature to improve fill when mold temperature is below the crystallization threshold. For FC 60020 this strategy is ineffective and accelerates degradation. The recommended melt temperature is 190–220 °C measured at the nozzle. Barrel zone settings should be reverse-profile or flat, with the feed throat at 35–50 °C and the compression/metering zones increasing to 190–210 °C. At melt temperatures above 230 °C, lactide reformation, yellowing, and molecular weight loss occur rapidly; total residence time at 230 °C should remain below 5 min. Below 180 °C, viscosity is high and freeze-off at the gate can occur before the cavity is packed.
The mold temperature boundary is the controlling variable. If the cavity surface is below 90 °C, crystallization is too slow for practical cycle times, and the part surface remains amorphous, producing heat deflection values no better than standard PLA despite the nucleating package. Mold temperatures above 120 °C increase cycle time and can cause part sticking, gate stringing, and dimensional overshrinkage. The practical nominal mold temperature is 100–120 °C, with 110 °C as a starting point. This requires a mold temperature control unit capable of maintaining a set point within ±5 °C, not a standard chiller or ambient-cooled tool.
Production-scale experience with comparable nucleated PLA grades shows that mold temperature variation of more than 10 °C between fixed and moving halves creates measurable warp in flat parts with wall thickness below 2 mm. The problem is not immediately visible at ejection; dimensional drift appears after 24–48 h at 23 °C/50% RH as secondary crystallization continues. Parts should be inspected after conditioning, not packed immediately after demolding.
Injection velocity should be sufficient to fill the cavity before the melt front drops below 180 °C. For wall thickness 1.5–2.5 mm, flow-front velocity of 100–300 mm/s is a starting range; thin-wall parts may require 300–500 mm/s. Holding pressure is typically 50–70% of peak injection pressure and should be maintained until gate freeze. Cooling time is not merely the time to ejection stiffness; it must include sufficient time at the crystallization temperature. A part can be stiff enough to eject but still have low crystallinity if ejection occurs too early. The recommended cooling time for a 2 mm wall at 110 °C mold is typically 20–35 s, compared with 10–15 s for amorphous PLA at low mold temperature. These values are class-level and must be confirmed by thermal analysis of the ejected part.
Screw geometry for FC 60020 should be a general-purpose or low-shear metering profile with L/D 20:1–24:1 and compression ratio of 2.5:1–3.0:1. High-shear screws with mixing sections can generate sufficient frictional heat to push melt temperature above the degradation boundary even when barrel set points remain within limits. Back pressure should be maintained at 5–10 bar hydraulic; excessive back pressure extends residence time and increases shear heating. Screw speed should be set so that recovery completes 1.5–2.0 s before cooling time ends, not at maximum rpm. Shot size should occupy 40–70% of barrel capacity to minimize dead time and maintain melt quality.
Rheological behavior is pseudoplastic. Apparent viscosity at 190 °C and shear rate 1000 s⁻¹ for injection molding PLA typically lies between 50 and 150 Pa·s; FC 60020 class materials may be at the lower end if MFR is elevated. Melt density is approximately 1.10–1.15 g/cm³ at processing temperature, while solid density is approximately 1.24–1.26 g/cm³. The density difference between melt and solid contributes to sink marks if packing pressure is released before gate freeze. Crystallization increases density further; this is why holding pressure and gate seal are critical.
When a hot runner is used, the manifold and nozzle set points should remain within 190–210 °C and be balanced across drops to limit shear heating at valve gates and small orifices. Hot runner temperature above 220 °C can cause local viscosity loss, drooling, and gate blush. Thermal uniformity of the manifold should be held within ±2 °C; individual nozzle controllers should not deviate more than 10 °C from the manifold set point. Valve gate sequencing should prevent filling of one cavity before others; imbalance exceeding 5–10% of shot mass causes inconsistent crystallization because residence time under pressure varies. Hot sprue bushings and cold runners are less sensitive, but cold runner diameters below 3 mm may freeze prematurely and require high injection velocities that generate shear heat above the degradation limit.
Gate location determines weld line strength and flow-induced crystallization. For FC 60020, direct hot-tip gates or wide edge gates are preferred; pinpoint gates below 1.0 mm can restrict flow and generate shear heat. Weld lines in amorphous PLA may retain 70–80% of nominal tensile strength; in crystallized PLA, weld lines can be more noticeable and may retain 50–70% depending on melt temperature and mold temperature. This is a key difference from other products and must be considered when placing gates for load-bearing features.
Crystallization during molding reduces the post-mold shrinkage drift that affects amorphous PLA, but it increases total mold shrinkage. Typical mold shrinkage for FC 60020 class materials is 0.8–1.2% parallel to flow and 0.6–1.0% perpendicular to flow, depending on wall thickness and mold temperature. Shrinkage anisotropy must be accommodated in tool design; amorphous PLA values near 0.4–0.7% are not applicable. Parts ejected before sufficient crystallinity is achieved may continue to shrink after 24 h by an additional 0.1–0.3%. This is the post-demolding growth defect: the part dimensionally drifts after packing and can fall out of specification. The mitigation is not longer packing pressure alone; it requires sufficiently high mold temperature and holding time to reach a stable crystalline fraction.
Ejection force may be higher because crystallized PLA contracts onto cores. Draft angles of 1–2° are recommended; textured surfaces require additional draft. For amorphous PLA, 0.5–1° is often sufficient. Ejector pins should be placed over rigid ribs and bosses, not thin unsupported regions that can puncture while the part is still above the heat deflection temperature.
Compared with talc-filled PLA injection molding compounds, FC 60020 class material has lower density and lower abrasive wear on screws and molds, but lower stiffness and lower heat deflection under load if mineral content exceeds 10 wt%. Compared with amorphous PLA/impact-modifier blends, crystallized PLA has higher thermal stability but lower notched impact resistance. The selection between these products depends on whether thermal resistance or impact resistance controls the application.
FC 60020 is intended for single-use and repeated-use rigid articles where industrial compostability is required. Conformity with EN 13432:2000 requires assessment of the final article, including disintegration, biodegradation, ecotoxicity, and heavy metal limits; resin certification alone is not sufficient. Under ASTM D6400-23, the equivalent requirements apply. The base polymer is typically suitable for food-contact applications when supported by the relevant Food Contact Notification or FDA 21 CFR 175.300 clearance, but specific migration testing must be performed on the final part. Compliance with REACH and RoHS heavy-metal restrictions is generally documented by the resin supplier; additives, colorants, and processing aids require separate verification.
This grade is not formulated for transparent thin-wall applications; spherulitic crystallization produces opacity. It is incompatible with prolonged contact with boiling water above 85–90 °C unless the part is specifically designed for hot-fill and tested under the intended load. Combinations with amine-based additives, strong bases, or high-acid concentrates should be avoided without compatibility testing because they can accelerate hydrolytic degradation. Storage should be in sealed, moisture-barrier packaging below 30 °C; opened bags should be consumed within 8 h under high-humidity conditions or re-dried before processing.