| HS Code | 916560 |
| Material Type | Polylactic acid (PLA) based compound |
| Renewable Content | >75% |
| Bio Based Carbon Content | >75% (ASTM D6866) |
| Compostability | Industrial compostable per EN 13432, ASTM D6400, ISO 17088, OK Compost, Seedling |
| Density | 1.24 g/cm³ |
| Melt Flow Rate | approx. 25 g/10 min at 190°C/2.16 kg |
| Tensile Modulus | approx. 3500 MPa |
| Tensile Strength | approx. 50-60 MPa |
| Elongation At Break | approx. 3% |
| Flexural Modulus | approx. 3500 MPa |
| Flexural Strength | approx. 80 MPa |
| Charpy Notched Impact Strength | approx. 2.5 kJ/m² |
| Heat Deflection Temperature | approx. 55°C at 0.45 MPa |
| Vicat Softening Temperature | approx. 60°C |
| Melting Temperature | approx. 150-160°C |
| Processing Method | Injection molding |
| Form | Pellets |
| Color | Natural/opaque |
| Drying Condition | approx. 80°C for 4 hours |
| Moisture Content | <0.5% |
As an accredited INZEA F28 Rigid 75%+ Renewable Compostable Polylactic Acid factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | INZEA F28 Rigid 75%+ Renewable Compostable Polylactic Acid is supplied in 25 kg moisture-barrier bags, palletized for industrial shipping. |
| Container Loading (20′ FCL) | 20′ FCL loaded with INZEA F28 Rigid, 75%+ renewable compostable PLA, securely palletized and shrink-wrapped for safe transport. |
| Shipping | INZEA F28 Rigid 75%+ Renewable Compostable Polylactic Acid ships as non-hazardous, compostable PLA pellets in sealed moisture-barrier bags or lined octabins, typically 25 kg. Transport ambient, dry, away from heat, sunlight, and moisture. Use original packaging, keep sealed until processing. Not classified as dangerous goods; follow standard industrial handling and local regulations. |
| Storage | Store INZEA F28 in a cool, dry, well-ventilated area at 5–25°C and low humidity, away from direct sunlight, heat, moisture, and ignition sources. Keep in original sealed packaging, palletized off the floor, protected from dust, UV, and contamination. Follow FIFO; avoid prolonged high temperatures or damp conditions. Do not stack excessively; use within shelf life and segregate from incompatible chemicals. |
| Shelf Life | INZEA F28 has a typical shelf life of 12 months in original unopened packaging, stored cool, dry, away from moisture and sunlight. |
INZEA F28 Rigid is a polylactic acid compound with renewable carbon content exceeding 75% measured by ASTM D6866-22 Method B or ISO 16620-2:2019. The material is limited to established rigid conversion routes for unfilled PLA: sheet extrusion with thermoforming, injection molding, extrusion blow molding, filament extrusion, and injection-molded cosmetic packaging. Processing parameters cited below are drawn from equipment manufacturer technical bulletins, published PLA polymer science literature, and certification body guidance; site-specific validation remains mandatory because melt rheology, additive packages, moisture history, and tooling geometry shift the operational window.
Thermoforming-grade INZEA F28 Rigid is processed as a monolayer sheet for ambient and chilled food-contact articles where compostability certifications under EN 13432:2000 and ASTM D6400-23 are retained without lamination or barrier coating that would exceed the organic recovery threshold. For direct food contact, the compound must meet Regulation (EU) No 10/2011 Annex I migration limits for lactic acid monomer and any tin catalyst residues, and in the U.S. the resin supplier’s Food Contact Notification documentation for polylactic acid should be referenced. Formulation is typically 100 wt% INZEA F28 Rigid virgin compound; post-industrial sheet skeleton regrind may be blended at 15–20 wt% with virgin material provided flake moisture is reduced below 250 ppm and fines are removed to avoid gels in the extruded sheet. A compostable PLA-carrier anti-block masterbatch is added at 2–4 wt% for gauges below 0.4 mm to reduce roll-stack blocking without compromising transparency. Sheet conversion is performed on a single-screw extruder with 30:1 L/D, a barrier screw with mixing elements, melt temperature 190–210 °C at the die, and a gear pump maintaining die pressure at 80–120 bar; chill roll temperatures of 40–60 °C set sheet thickness between 0.35 mm and 1.2 mm. Downstream thermoforming uses contact-heat ovens to bring sheet surface to 90–110 °C, followed by plug-assisted forming at 4–6 bar and mold temperature 30–40 °C; cycle time is 8–18 s depending cavity depth. Finished articles in this segment include chilled prepared-meal trays, deli containers, fruit punnets, bakery insert trays, and cup lids; articles are not intended for hot-fill above 60 °C or microwave reheating because the heat deflection temperature of unfilled rigid PLA under 0.45 MPa load per ISO 75-2:2013 limits continuous service.
For disposable cutlery, INZEA F28 Rigid is injected in high-cavitation tools where cycle-time control depends on rapid solidification without excessive molded-in stress. Compliance for food-service articles in the EU requires EN 13432:2000 organic recovery certification and Regulation (EC) No 1935/2004 overall food-contact safety, supplemented by Regulation (EU) No 10/2011 migration testing; U.S. requirements are addressed through the resin supplier’s Food Contact Notification and compostability claims verified under ASTM D6400-23. The formulation at the press is 98.5–100 wt% INZEA F28 Rigid with 0–1.5 wt% of a compostable processing aid; if a colored masterbatch is used, it is limited to 1–3 wt% on a PLA carrier because higher loadings reduce melt flow and increase brittleness at the serrated knife edge. Drying is performed in a desiccant-wheel dryer with dew point at or below -40 °C, 80 °C for 4 h, targeting residual moisture below 250 ppm measured by ISO 15512:2019 Method A. Injection molding uses a screw with 20:1 L/D and compression ratio 2.0–2.5:1; melt temperature is controlled at 195–210 °C, nozzle at 200 °C, mold temperature 25–35 °C, and back pressure 5–10 bar. Clamp force is calculated at 0.6–0.8 kN/cm² of projected area, placing multi-cavity cutlery tools in the 150–350 metric ton range for 16–32 cavities. Injection speed is set high enough to avoid short shots but below the point of jetting; screw rotation 80–120 min⁻¹ is used for fast recovery. Finished articles in this segment include forks, spoons, knives, sporks, stirrers, and tasting utensils for airline, institutional, and food-service disposal streams; dishwasher use is outside the application envelope because sustained exposure to 60 °C water and detergent alkalinity accelerates hydrolysis.
When the downstream requirement shifts to thin-gauge transparent food blisters with tamper-evident sealing behavior, INZEA F28 Rigid is extruded into sheet for plug-assisted thermoforming of packages that must retain optical clarity and organic-recovery certification. Compliance for this segment includes EN 13432:2000 for compostable packaging, Regulation (EC) No 2023/2006 for good manufacturing practice in food-contact materials, and Regulation (EU) No 10/2011 Annex IV compliance declarations; if the blister is exported to North America, ASTM D6400-23 certification and the resin supplier’s FDA Food Contact Notification apply. The blend ratio is 96–100 wt% INZEA F28 Rigid, with 0.5–2.0 wt% slip/anti-block masterbatch for sheet below 0.5 mm and, for white or opaque trays, 3–5 wt% of a TiO₂ concentrate carried in compostable PLA. Sheet extrusion is performed on a 28:1 L/D single-screw extruder with smooth-bore feed and a Maddock mixing section; melt temperature is 190–205 °C, die temperature 200 °C, and polished chrome chill rolls are held at 45–55 °C to produce sheet thickness from 0.25 mm to 0.8 mm. The formed blister process heats sheet to 95–110 °C, uses a plug assist to distribute material into the cavity, forms at 4–5 bar, and ejects at mold temperature 30 °C; cycle time is 6–12 s. Converted article range covers transparent berry punnets, salad lids, bakery clamshells, confectionery tray inserts, and tamper-evident blister compartments for dry snacks; gas-barrier laminates and peelable PET lidding are excluded because they compromise compostability unless certified separately.
For rigid packaging bottles and jars in the dry personal care and supplement segment, INZEA F28 Rigid is extrusion blow molded into containers that require a stable parison geometry because PLA has lower melt strength than hydrocarbon-based polyolefins. The relevant compliance framework includes REACH Regulation (EC) No 1907/2006 Annex XVII restrictions, EN 13432:2000 where compostable claims are made, and ISO 17088:2021 for specification of compostability; product-contact safety for dry supplements is supported by Regulation (EU) No 10/2011 where applicable, though liquid or fatty fillings require additional migration testing. Formulation is 100 wt% virgin INZEA F28 Rigid or 80–90 wt% virgin with 10–20 wt% internal post-extrusion regrind; regrind use must not exceed two heat histories because PLA viscosity retention after repeated extrusion under 190–200 °C declines measurably. Drying at 80 °C for 4 h in a desiccant dryer to below 250 ppm moisture is required before extrusion blow molding. The process uses a continuous shuttle blow molder with 20:1–25:1 L/D single-screw, melt temperature 180–195 °C, die head 190–200 °C, mold temperature 10–20 °C, and blow ratio 1.5–2.5:1; parison programming is implemented to control wall thickness in the pinch-off and neck areas. Cycle time is 10–15 s for containers from 50 mL to 500 mL. Finished containers include jars for face cream, body powder containers, dry supplement bottles, and cosmetic jars with non-crush closures; the material is not validated for hot-fill above 40 °C, carbonated beverages, or formulations containing more than 30 vol% ethanol because these conditions reduce dimensional stability or accelerate environmental stress cracking.
Compounding INZEA F28 Rigid into 1.75 ± 0.05 mm or 2.85 ± 0.05 mm monofilament for fused deposition modeling requires closed-loop diameter control because the rigid PLA compound exhibits limited melt drawability and can vary in ovality if cooling is too slow. The applicable standards include REACH Regulation (EC) No 1907/2006, RoHS Directive 2011/65/EU Annex II restricted substances, and EN 13432:2000 only if printed articles are intended for compostable packaging prototypes; filament itself is typically evaluated under ISO 527-2:2012 tensile properties and ISO 1133-1:2022 melt flow rate. Formulation is 100 wt% INZEA F28 Rigid, or 90–95 wt% virgin with 5–10 wt% clean PLA filament regrind; colorant masterbatch is limited to <1.0 wt% because pigment agglomerates above that concentration generate diameter spikes and nozzle clogging. Drying is performed at 80 °C for 4 h to below 250 ppm moisture before single-screw extrusion on a 24:1 L/D machine with melt temperature 190–210 °C; the extrudate enters a 40–60 °C water bath, passes through a dual-axis laser micrometer operating at 0.5–1.0 kHz sampling frequency, and is wound under constant tension with diameter deviation logged every 1 m. Terminal product forms include FDM filament spools for educational prototyping, cosmetic packaging prototypes, and compostable point-of-sale fixtures printed at bed temperature 50–60 °C and nozzle temperature 200–210 °C; exposure to high-humidity storage above 60% RH before printing requires re-drying to prevent hydrolytic degradation and surface roughness.
Manufacturers of dry cosmetic compacts selecting INZEA F28 Rigid for the bottom cup and closure often require renewable carbon content documented under ISO 16620-2:2019 in addition to safety data under REACH Regulation (EC) No 1907/2006 and RoHS Directive 2011/65/EU; if the package is marketed as compostable, EN 13432:2000 applies only when the entire article, including closure and label, meets disintegration thresholds. The formulation at the molding press is 100 wt% INZEA F28 Rigid for rigid compact bases and outer caps; where a living hinge is required, a separate flexible PLA or certified compostable copolyester component at 10–15 wt% is co-injected or overmolded because the rigid grade has limited flexural fatigue resistance. Drying at 80 °C for 4 h to below 250 ppm moisture is required before injection molding; processing uses a screw with 20:1 L/D, melt temperature 195–210 °C, mold temperature 25–35 °C, injection pressure 80–120 MPa, hold pressure 50–70 MPa, and cooling time 8–15 s depending wall thickness. Tooling is polished to SPI B-1 or diamond-buffed finish to achieve gloss without post-mold polishing; silver streaking is controlled by keeping melt residence time below 8 min and avoiding hot spots above 220 °C. Converted articles in this segment include compact bases, lipstick tubes, cream jar outer caps, fragrance over-cap assemblies, and dry product trays; the material is not recommended for components exposed continuously to oily or solvent-based formulations above 40 °C because published data for these specific migration and stress cracking configurations is limited.
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INZEA F28 Rigid 75%+ Renewable Compostable Polylactic Acid is supplied as a pelletized rigid PLA-based compound with a renewable carbon fraction above 75% when measured in accordance with ASTM D6866-21 Method B or EN 16640:2017. The material is formulated for injection molding, sheet extrusion, and thermoforming of single-use and durable articles where industrial compostability under EN 13432:2000 or ASTM D6400-23 is required. The grade is not intended for home compost conditions unless specifically certified by the supplier. Because exact melt volume-flow rate and mechanical data are lot-dependent, the controlling values appear on the supplier certificate of analysis; class-level rigid PLA data are used here only for processing context.
Renewable carbon fraction is not the same as total dry mass. Under EN 16640:2017, bio-based carbon content is determined by 14C analysis; inorganic fillers and mineral additives do not contribute to the renewable carbon result. This grade therefore satisfies a 75%+ renewable carbon specification while retaining a rigid mechanical response typical of unplasticized polylactic acid. In comparison, starch-filled compostable compounds may show lower continuous-use stiffness after moisture uptake; their tensile modulus can fall below 1.5 GPa at 50% relative humidity, whereas rigid PLA compounds typically remain above 3.0 GPa under ISO 527-2:2012.
Thermoplastic starch blends also exhibit higher equilibrium moisture content, commonly 2-5 wt% at 50% RH, while dried PLA-class resins are processed below 0.025 wt% residual moisture. That difference imposes stricter pre-drying discipline but also reduces the risk of screw slip and melt-pressure fluctuation on vented barrels when the drying sequence is maintained.
Rigid PLA compound property windows reported across producer datasheets and peer-reviewed literature place tensile yield strength in the 45-65 MPa range when measured at 23 °C and 50% RH according to ISO 527-2:2012 specimen type 1A. Tensile modulus values of 3 000-4 000 MPa and flexural modulus values of 3 000-4 500 MPa under ISO 178:2019 are typical for rigid unfilled PLA grades. The ductility of such grades is low: nominal strain at break commonly lies between 1.5% and 4%, which means snap-fit designs, self-tapping screw bosses, and living hinges require radiused transitions and reduced stress concentration unless impact modification is added. The heat deflection temperature of amorphous PLA under 1.8 MPa is usually below 60 °C per ISO 75-2:2013 Method A; under 0.45 MPa Method B, values between 50 °C and 60 °C are common. This limits unsupported service above 55 °C, particularly in dishwasher or hot-fill containers, unless the part is crystallized via mold-temperature control above 90 °C or post-mold annealing.
Because the grade is designated “Rigid”, the expectation is that tensile modulus is not decreased by high plasticizer or low-molecular-weight polyester content. However, the manufacturer’s lot certificate remains the only authoritative source for the exact tensile modulus, melt flow rate, and heat distortion temperature. Published data for this specific INZEA F28 configuration are limited beyond the renewable carbon and compostability descriptors used by the supplier.
On a 25:1 L/D single-screw extruder with a 40 mm diameter screw and a compression ratio of 2.5:1 to 3:1, the compound should be processed with a flat or slightly reverse temperature profile from 170 °C at the feed throat to 190-210 °C at the metering zone and die. PLA-based melts exhibit shear-thinning behaviour; apparent viscosity can range from 200 Pa·s to 800 Pa·s at shear rates of 100-1 000 s⁻¹ depending on molecular weight, temperature, and moisture. Higher melt temperatures above 220 °C accelerate thermal degradation, increasing lactide reformation and shifting molecular weight distribution downward. Melt-pressure instability at the die above ±1.5 MPa typically indicates moisture contamination, degraded regrind, or insufficient back pressure.
Vented barrel operation is not a substitute for drying. At 0.25 wt% moisture, PLA undergoes hydrolytic chain scission during plastication; intrinsic viscosity can fall by 0.2-0.4 dL/g in a single residence time at 210 °C, reducing melt strength and causing sheet-edge tear in extrusion lines. The use of a 40/80/40 mesh screen pack is common, but pressure drop across the screen should not exceed 10 MPa at 210 °C.
Capillary rheometry data for unplasticized PLA at 190 °C show shear viscosity decreasing from approximately 1 200 Pa·s at 10 s⁻¹ to 200 Pa·s at 1 000 s⁻¹. Die design should avoid high shear regions, sharp corners, and long flow paths. Melt pressure may be higher than in semi-crystalline polyolefins with similar melt flow index, so injection pressure should be established from short-shot studies rather than from polypropylene reference settings.
Injection molding trials on 800-1 200 kN clamp-force machines have used barrel temperatures of 190-215 °C, mold temperatures of 20-30 °C for amorphous parts, and 90-110 °C for crystallized parts. Back pressure of 5-15 bar and screw rotation speeds of 60-120 min⁻¹ are adequate to maintain melt homogeneity without excessive shear heating. Pack pressure is typically set at 60-80% of injection pressure, with hold times of 3-6 s for thin-wall parts of 1.5-2.5 mm wall thickness. When the mold temperature is raised above 90 °C, cycle time increases by 15-30% because the part must be cooled below the heat deflection temperature of approximately 55 °C before ejection to avoid distortion. Hot-runner systems with valve gates are preferred over cold-runner sprues for this shear-sensitive material when runner scrap cannot be immediately dried and reused.
Field observations on production-scale injection molding of rigid PLA compounds indicate that cold slug wells, sharp runner bends, and undersized gates below 0.8 mm for thin-wall parts can increase shear heating and cause silver streaks, particularly if regrind above 20% is used without re-drying. The gate should be located in thickened sections to reduce jetting; a gate land length of 0.5-1.0 mm is typical.
Desiccant-bed or molecular-sieve drying is required. The recommended drying condition for rigid PLA compounds without mineral fillers is 80 °C for 4 h to reach a dew point of -40 °C or lower in the return air. Target residual moisture is ≤0.025 wt% (250 ppm). In plant environments above 60% RH, undried pellets can equilibrate above 0.25 wt% within 1-2 h after bag opening; hydrolysis then proceeds rapidly during plastication. Moisture analyzers using loss-on-drying at 105 °C may overestimate water content in PLA because lactide and low-molecular-weight degradation products volatilize; Karl Fischer coulometric titration at 160 °C is more accurate for moisture levels below 500 ppm.
The operational boundary is therefore not the resin’s drying specification alone but the plant’s material-handling configuration. Central vacuum conveying with unheated hoppers can reintroduce ambient moisture in humid weather. A heated hopper or insulated receiver is required when the ambient dew point exceeds 10 °C. If the melt pressure vibration is above ±1.0 MPa or the extrudate has surface roughness, drying should be extended rather than compensated by raising melt temperature, which increases degradation.
During compounding on a co-rotating twin-screw extruder with an L/D ratio of 40:1 to 44:1, the PLA base resin should be introduced in the main feed, with heat-sensitive nucleating agents or peroxide-based chain extenders fed downstream into a side feeder or liquid injection port to minimize residence time. Addition of amine-based lubricants or certain amide slip agents can promote transesterification or degradation and should be avoided unless specifically tested. Flame-retardant additives containing phosphoric acid derivatives can also reduce molecular weight if compounded above 210 °C. The compound should not be purged with PVC or acetal residues; acidic residues from PVC decomposition initiate PLA hydrolysis. Equipment should be purged with a low-MFI polypropylene or a dedicated PLA purge grade before shutdown to reduce carbonized material in the barrel.
Reclaim and regrind use is possible up to 20% in injection molding when the regrind has been dried to ≤0.025 wt% moisture and is free of dust and fines above 0.5 mm. Repeated regrind cycles lower intrinsic viscosity; after three cycles, the melt flow rate can increase and screw recovery time may fall, indicating molecular weight loss. This operational boundary is typical for rigid PLA compounds and should be confirmed on the production line by monitoring melt pressure and part weight stability.
Compostability under EN 13432:2000 requires aerobic biodegradation of at least 90% relative to a suitable reference material within 180 days under ISO 14855-1:2012 conditions. Disintegration requires 90% of the mass of test material to pass a 2 mm sieve after 12 weeks in a controlled composting test per ISO 16929:2021 or equivalent. The ecotoxicity assessment follows OECD 208 or equivalent, comparing plant germination and growth in compost containing the test material against blank compost. Heavy metal limits are specified in EN 13432:2000 Annex A, with values below 150 mg/kg for lead, 0.7 mg/kg for mercury, and 50 mg/kg for chromium VI, among others.
For the U.S. market, ASTM D6400-23 aligns with these criteria through biodegradation, disintegration, and ecotoxicity testing. A certification mark is not a guarantee of home compostability; most certifications apply only to industrial composting facilities operating at 58 °C for a sustained thermophilic phase. The product’s renewable carbon fraction is measured separately by ASTM D6866-21 Method B and does not by itself demonstrate compostability.
| Claim | Test standard | Threshold |
|---|---|---|
| Bio-based carbon | EN 16640:2017 or ASTM D6866-21 Method B | ≥75% |
| Biodegradation | ISO 14855-1:2012 | ≥90% in 180 d |
| Disintegration | ISO 16929:2021 | ≥90% through 2 mm sieve in 12 weeks |
| Ecotoxicity | OECD 208 | No significant difference vs blank |
| Heavy metals | EN 13432:2000 Annex A | Annex A maxima |
For food-contact use, the grade should be evaluated under EU Regulation 10/2011 as amended, particularly with respect to overall migration into simulant A, B, C, D1, or D2 according to EN 1186-1:2002 migration test methods. The presence of lactic acid as a hydrolysis product may reduce pH in high-moisture simulants; migration of monomers and additives must not exceed the applicable overall migration limit of 10 mg/dm² for food contact materials under EU Regulation 10/2011. For the U.S., FDA food-contact status should be confirmed by the supplier under applicable food contact notifications or 21 CFR clearances specific to polylactic acid; the user should not assume compliance from compostability certification alone.
This grade is not suitable for prolonged contact with strong acids or alkalis, as PLA undergoes bulk hydrolysis. At pH 2 and 60 °C, the rate of molecular weight degradation is significantly higher than at neutral pH; in alkaline conditions above pH 10, surface erosion may occur within 24-72 h. These operational boundaries are inherent to aliphatic polyester chemistry and apply to PLA-based compounds regardless of renewable carbon content.
Outdoor exposure is limited by UV-induced chain scission and embrittlement. Without UV stabilizer packages, rigid PLA compounds can lose more than 50% of initial tensile strength after 500-1 000 h of accelerated weathering under ISO 4892-2 cycle 1. Parts requiring outdoor service should be formulated with hindered amine light stabilizers and UV absorbers, but such additives may fall outside the original compostability certification and must be revalidated under EN 13432:2000.
In comparison to other INZEA compostable grades designed for film, thermoforming, or injection molding, the “Rigid” designation signals a compositional boundary: the material is not plasticized to achieve film flexibility. Therefore, it should not be evaluated as a drop-in replacement for compostable PBAT-based film resins, which may display tensile elongation above 300% and tensile strength below 30 MPa under ISO 527-3. Conversely, the rigid grade is expected to show tensile strength above 45 MPa and elongation below 5%, placing it closer to polystyrene in mechanical behaviour while retaining compostability.
The main application difference between this grade and standard petroleum-based rigid resins such as GPPS or PET is the thermal boundary. GPPS can be used continuously at 70-80 °C without distortion, whereas amorphous PLA compounds soften near 55-60 °C. The compostable rigid grade therefore is most suited to cold-fill packaging, cutlery, trays, inserts, cosmetic applicators, and single-use medical training devices where industrial compostability is required. In injection-molded cutlery, the use of 2-5% talc or highly nucleated PLA can raise cycle speed and stiffness but may reduce biodegradation to below the 90% threshold if filler content is too high; the formulator must hold the mineral filler within the certified formulation boundary.
Compared with certified compostable flexible film grades, this rigid grade lacks the high elongation and tear propagation resistance required for thin gauge film below 50 μm. It should not be used for blown film unless the supplier explicitly lists film extrusion as a validated process. It also has lower impact strength than petroleum-based polypropylene, with unnotched Charpy impact values in rigid PLA compounds typically below 25 kJ/m² per ISO 179-1:2020. Notched Charpy values commonly fall below 4 kJ/m², so impact-dominated applications require design measures rather than material modification.
| Parameter | Range | Notes |
|---|---|---|
| Barrel temperature | 190-215 °C | Feed zone 170 °C; above 220 °C degradation accelerates |
| Mold temperature | 20-30 °C amorphous / 90-110 °C crystallized | Crystallization extends cycle time 15-30% |
| Back pressure | 5-15 bar | Excess back pressure raises melt temperature |
| Screw speed | 60-120 min⁻¹ | For 40 mm screw |
| Residual moisture | ≤0.025 wt% | Karl Fischer at 160 °C |
| Drying | 80 °C for 4 h | Dew point -40 °C or lower |
Extensional viscosity and melt strength are lower than for PET, limiting draw-down in deep-draw thermoforming. For sheet extrusion, a polished three-roll stack at 40-60 °C is used to cool without crystallizing the sheet. Amorphous sheet below 500 μm can be thermoformed at 80-100 °C with an infrared oven; above 100 °C, the sheet may sag excessively and lose plug-assist control. Crystallized sheet requires higher forming temperatures and is not generally used for high-clarity applications.