| HS Code | 916055 |
| Material | Polylactic Acid (PLA) |
| Film Types | Biaxially Oriented, Cast, Shrink |
| Biaxially Oriented Film Thickness | 10-50 µm |
| Cast Film Thickness | 20-100 µm |
| Shrink Film Thickness | 15-80 µm |
| Density | 1.24-1.25 g/cm³ |
| Tensile Strength Md | 40-150 MPa |
| Tensile Strength Td | 40-150 MPa |
| Elongation At Break | 2-100% depending on orientation |
| Tear Strength | 20-50 N/mm |
| Haze | 1-10% |
| Gloss | 80-100 GU |
| Light Transmittance | 90-95% |
| Glass Transition Temperature | 55-60°C |
| Melting Point | 150-170°C |
| Heat Seal Temperature | 80-120°C |
| Shrinkage At 80 C | 10-70% depending on shrink grade |
| Water Vapor Transmission Rate | 200-500 g/m²/day |
| Oxygen Transmission Rate | 500-2000 cm³/m²/day/atm |
| Carbon Dioxide Transmission Rate | 2000-5000 cm³/m²/day/atm |
| Biodegradability | Compostable under industrial conditions |
| Compostability | EN 13432, ASTM D6400 |
| Food Contact Compliance | FDA, EU 10/2011 |
| Printability | Good |
| Coefficient Of Friction | 0.2-0.4 |
| Surface Energy | 38-42 dyn/cm |
| Chemical Resistance | Good to oils; limited to strong acids and alkalis |
| Uv Resistance | Moderate |
| Storage Temperature | 10-30°C |
| Storage Humidity | 30-60% RH |
| Color | Transparent or custom |
| Surface Finish | Gloss or matte |
| Roll Width | 200-2000 mm |
| Roll Length | 1000-6000 m |
| Core Diameter | 76 mm or 152 mm |
As an accredited PLA film Biaxially Oriented/Cast/Shrink Film Polylactic Acid factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Supplied as 50 kg rolls; each PLA biaxially oriented/cast/shrink film roll is moisture-barrier wrapped and palletized for shipping. |
| Container Loading (20′ FCL) | 20′ FCL loading of PLA film (biaxially oriented, cast, or shrink) on pallets/rolls, securely stowed and moisture-protected for ocean transport. |
| Shipping | Shipping description: PLA film (biaxially oriented, cast, or shrink), polylactic acid; non-hazardous, not regulated for transport. Pack in dry, sealed, clean containers, protected from moisture, heat, and sunlight. No UN number, hazard class, or marine pollutant. Store at moderate temperatures; avoid puncture or crushing. |
| Storage | Store PLA film in a cool, dry, well-ventilated area away from direct sunlight, heat, ignition sources, and moisture. Keep in original sealed packaging to prevent hydrolysis and degradation. Avoid contact with strong acids, bases, solvents, and oxidizing agents. Maintain moderate temperature and low humidity; do not crush or stack excessively. Shelf life may be reduced by heat or moisture. |
| Shelf Life | PLA films typically have 12–24 months shelf life when sealed, cool, dry, UV-protected; heat and moisture accelerate hydrolysis/degradation. |
In flexible packaging converting, biaxially oriented PLA (BOPLA) film is produced by sequential stretching of an amorphous cast sheet. The cast sheet is heated to 70–85°C in the machine-direction orienter, drawn at an MD ratio of 3.0:1 to 4.0:1, then stretched transversely in a tenter frame at 75–90°C with a TD ratio of 4.5:1 to 5.5:1. Annealing at 140–150°C reduces free shrink at 80°C to ≤5% when measured according to ASTM D2732. Haze values for 20–25 µm film commonly fall between 2% and 4% under ASTM D1003, and tensile modulus in both axes is reported in the range of 3,000–4,200 MPa under ISO 527-3. This combination supports clear overwrap for cartons, windows for paperboard packaging, and twist-wrap confectionery formats. In twist-wrap applications, dead-fold retention is the controlling property: PLA maintains crease geometry more effectively than oriented polypropylene because the oriented amorphous and crystalline domains resist elastic recovery after folding. Commercial high-speed twist-wrap lines operate with film thickness of 25–30 µm, and fold stability is retained at ambient temperature, but film stored below 10°C requires pre-conditioning to a surface temperature above 15°C before entering the folding station to prevent fold cracking. The moisture vapour transmission rate of BOPLA is higher than that of oriented PET under ASTM F1249, so sugar confectionery packaging with crispness requirements often includes a compostable barrier coating or cold-seal pattern. Resin for these films is pre-dried in a desiccant dryer with a dew point of -40°C to a moisture content below 250 ppm before extrusion, because residual moisture hydrolyzes PLA and reduces intrinsic viscosity. Food-contact status is grade-specific under EU Regulation (EU) No 10/2011, and industrial compostability claims require disintegration and ecotoxicity criteria in EN 13432 or ASTM D6400-21. Unsupported BOPLA is not intended for hot-fill or retort use; sustained exposure above 60°C begins to relax orientation.
| Film type | Thickness | Haze (ASTM D1003) | Tensile modulus MD (ISO 527-3) | Heat seal initiation | Free shrink at 80°C (ASTM D2732) |
|---|---|---|---|---|---|
| Cast PLA | 20–100 µm | 2–5% | 2,000–2,800 MPa | 80–95°C | <2% |
| BOPLA | 15–50 µm | 2–4% | 3,000–4,200 MPa | 90–110°C | ≤5% after annealing |
| PLA shrink film | 40–60 µm | 3–6% | 2,500–3,500 MPa | 75–90°C | 55–80% |
The values in the table are indicative ranges compiled from commercial PLA film technical data sheets; exact values vary with resin D-lactide content, additive package, and orientation conditions.
Cast PLA sealant webs are produced by flat-die extrusion onto a chill roll held at 20–35°C to suppress crystallinity. On a single-screw extruder with L/D 30:1 to 36:1 and a barrier screw, melt temperatures of 200–230°C are maintained to limit lactide reformation while preserving molecular weight. Melt temperatures above 235°C accelerate lactide formation and cause die-lip deposits. Rapid quenching yields a low-crystallinity film with heat seal initiation in the range of 80–95°C and a target seal strength of 8–15 N/25 mm when jaw-sealed at 110–130°C and tested by ASTM F88. In triplex laminations for dry food pouches, the cast PLA layer functions as the sealant against itself or against a PLA-coated paperboard. The seal bar setpoint must remain below 140°C because amorphous PLA undergoes cold crystallization during extended dwell, which produces brittle seals and edge shrinkage. Sealing dwell times of 0.5–1.0 s and jaw pressures of 0.3–0.6 MPa are typical on rotary vertical form-fill-seal equipment, but batch-to-batch variation in D-lactide content of 2–8 mol% shifts the seal initiation temperature by several degrees. Corona treatment to 42–46 mN/m is required before laminating with solventless polyurethane adhesives; surface energy below 40 mN/m typically results in bond strengths below 1.5 N/15 mm. Cast PLA has poor oxygen barrier and is not used as a standalone barrier layer; a PVOH or metallised intermediate ply is required for oxygen-sensitive products. Slip and antiblock masterbatches may be added to reach a coefficient of friction of 0.2–0.4 under ASTM D1894, but these additives can raise seal initiation temperature. The film is incompatible with continuous hot-fill exposure above 55–60°C and with retort cycles, where shrinkage and softening cause seal distortion.
PLA shrink film for full-body sleeve labels is formulated as a coextruded or monolayer film with a primary shrink ratio of 55–80% at 85–95°C in the transverse direction when measured by ASTM D2732. The film is converted on wide-web gravure or UV flexo presses after corona treatment to 44–48 mN/m. Shrink force measured by ASTM D2838 is lower than that of PETG and PVC sleeve films, which reduces crushing of lightweight PET bottles but requires precise steam-tunnel airflow management to prevent label drift. Steam tunnel temperatures are typically maintained at 85–95°C with residence times of 8–15 s; recovery-style tunnels with multiple temperature zones give the most uniform shrinkage on complex bottle profiles. PLA sleeves are prone to edge curl if the web is stored at temperatures above 40°C or if residual solvent from the seaming process is not removed. Solvent seaming with THF-based blends is used because PLA is soluble in THF, but dwell time on the seam wheel must be short enough to avoid stress cracking; seam overlap is controlled at 1–3 mm. Laser and ultrasonic seaming are alternatives that avoid solvent-induced crystallinity. The low glass transition temperature of PLA—typically 55–60°C by ISO 11357-2—means that filled bottles with PLA sleeves must not be exposed to hot-fill temperatures above 60°C or to secondary pasteurisation. Recycling compatibility with PET bottle streams remains a documented limitation because PLA label contamination can cause haze and degradation in PET reclaim, and label removal in caustic wash lines requires validation. Aggressive ester-based gravure inks can swell the PLA surface and reduce seam strength, so ink systems must be selected for compatibility with the substrate.
Pressure-sensitive label converting on biaxially oriented PLA face stock uses 50–75 µm film that has been corona-treated to 44–50 mN/m and top-coated for UV inkjet or water-based flexo ink adhesion. Rotary die cutting requires blade depth control within ±2 µm because PLA exhibits low tear initiation resistance and the matrix can fracture at sharp radii. The label stock is laminated with a solvent acrylic adhesive rather than a general-purpose emulsion acrylic to reduce plasticizer migration and edge ooze. Adhesive coat weights of 20–25 g/m² are common, and matrix winder tension is held below 1.5 N/cm to prevent premature face stock breaks. Application temperature must remain above 10°C, and the label cannot be exposed to sustained service temperatures above 60°C because orientation relaxation leads to dimensional change. In industrial composting, the label face stock must meet EN 13432 or ASTM D6400-21, but the adhesive and release liner are not always compostable and must be managed separately. This configuration is used for short-life primary labels on rigid containers and cartons; published data for this specific configuration is limited in high-speed beverage labelling, where PETG and PP face stocks dominate.
Cast PLA film is laminated to paperboard or to a pre-formed PLA sheet rather than using biaxially oriented film, because residual orientation in BOPLA relaxes above 80°C and causes curl during board lamination. The cast web is corona-treated and bonded with a solventless polyurethane adhesive to the barrier substrate. Thermoforming of PLA film laminates on a shuttle press uses a sheet surface temperature of 85–95°C, a mold temperature of 20–30°C, and a syntactic foam plug assist to distribute material into tray corners. If the sheet surface exceeds 105°C, amorphous PLA cold crystallization accelerates and corner cracking occurs during demolding. Heating time for a 400 g/m² board laminate is typically 1.5–2.5 s, but the exact value depends on quartz heater density and board moisture content. Oxygen barrier is provided by an inserted PVOH or metallised layer; the PLA film alone contributes minimal oxygen barrier under ASTM D3985. Moisture content of cast PLA before thermoforming must be below 500 ppm to avoid bubble defects, and ejection temperature is held below 45°C to prevent post-mold deformation. The tray is suitable for chilled foods and dry snacks, but not for microwavable or hot-fill packaging because PLA softens at 55–60°C. Compliance with EU Regulation (EU) No 10/2011 is grade-specific, and compostability claims require certification of the entire tray structure, including adhesives and barrier coatings, under EN 13432.
Unsupported PLA cast film in soil-contact mulch applications has a narrow operational window. Commercial compostable mulch films are predominantly PLA/PBAT blends rather than neat PLA, because neat PLA tear propagation resistance and soil degradation rates are insufficient for broad-acre mechanical laying. Where a PLA-rich film is used for short-cycle leaf vegetable or nursery container cover, thickness must be at least 25–30 µm to reduce splitting during laying, and row installation at soil temperatures below 10°C increases shattering because the film is below its glass transition temperature. Soil degradation is slow at ambient field temperatures; mineralization to 90% within 24 months is required under EN 17033 for biodegradable mulch films, and neat PLA may not meet this criterion in cold climates. Published data for this specific configuration is limited, and industrial compostability under EN 13432 does not prove soil biodegradation under field conditions. The film also has a lower tear resistance than conventional PE mulch when measured by ISO 6383-2, so machine tension and soil-covering discs must be reset to prevent propagation tears at the planting holes.
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The product designated as PLA film biaxially oriented/cast/shrink film polylactic acid comprises three conversion formats from poly(lactic acid) resin: biaxially oriented film (BOPLA), chill-roll cast film, and stretch-annealed shrink film. Film-extrusion grades are selected with melt-flow rate of 2-10 g/10 min at 210 °C under 2.16 kg load per ISO 1133-1:2022, density of 1.24-1.25 g/cm³ per ISO 1183, and D-lactide content below 4 mol% to regulate crystallisation. Thickness spans 15-150 µm across the product line: biaxially oriented grades are typically converted at 15-50 µm, cast grades at 20-150 µm, and shrink grades at 30-60 µm. Principal uses include compostable food-contact overwrap, flow-wrap seal layers, labels, twist wrap, lamination web, tamper-evident bands, and full-body shrink sleeves. Differences from petroleum-based films arise from the glass-transition temperature of PLA of 55-60 °C, moderate moisture barrier, and hydrolytic sensitivity during melt conversion.
On production biaxially oriented PLA (BOPLA) tenter lines, edge trim is amorphous and hydrolysis-sensitive; regrind addition at 10-25 % is possible only when the trim is re-dried to below 250 ppm moisture and melt-blended before the die. Clip fouling from low-molecular-weight lactide deposits creates tracking instability and requires periodic cleaning with alkaline detergent solutions; chlorinated solvents should be avoided because they can stress-crack PLA under residual orientation. Static discharge is controlled with ionizing bars at the cast unit and tenter entrance because PLA surface resistivity can produce web wander and dust pick-up under dry conditions or at line speeds above 150 m/min. Melt filtration at 20-40 µm is standard to remove gel particles and die-lip deposits that form after 4-6 h continuous extrusion. These bottlenecks are more pronounced than on polypropylene lines and require scheduled shutdown intervals for die and tenter clip maintenance.
On production-scale conversion lines, undried PLA resin causes viscosity loss, bubble instability, and die-lip deposits because PLA hydrolyses at melt temperature. Resin suppliers specify pre-drying to below 250 ppm moisture, typically in a desiccant-wheel dryer with dew point ≤ -40 °C, drying air temperature of 80 °C, and residence time of 4-6 h. When storage RH exceeds 60 %, pre-drying is mandatory even if resin was supplied in moisture-barrier packaging. Moisture above 500 ppm produces measurable molecular-weight reduction at 200-220 °C melt temperature, observed as pressure loss at the die and lower tensile strength. Single-screw extruders with barrier screws and L/D 30:1-40:1 are used for cast and orientation feed; neat film grades do not require twin-screw compounding unless masterbatch or regrind dispersion is required. Melt temperature at the die is held at 200-210 °C for most grades; temperatures above 230 °C initiate lactide reformation, yellowing, and acetaldehyde generation. Residence time in hot end and die should remain under 10 min to limit degradation. Filtration through 20-40 µm breaker plates or candle filters removes gel particles generated by partial degradation. These constraints are tighter than for polypropylene or PET and constitute the main operational boundary for PLA film extrusion.
Biaxially oriented PLA film is produced by casting an amorphous sheet and stretching it in a tenter frame at preheat temperatures of 70-85 °C. The processing window is narrow: if preheat is below 65 °C, stress whitening and tearing occur; if above 90 °C, crystallisation competes with orientation and haze increases. Typical draw ratios range from 2.5:1 to 4.0:1 in machine direction and 3.0:1 to 5.0:1 in transverse direction, depending on grade and thickness. Annealing at 110-130 °C after stretching fixes orientation and raises thermal stability. Datasheet values for 20-25 µm biaxially oriented film under ASTM D882 commonly include tensile strength of 110-150 MPa in MD and 100-140 MPa in TD, elongation at break of 70-110 %, tensile modulus of 3.3-3.9 GPa, haze of 2-6 %, and gloss at 60 ° above 90. Orientation reduces water-vapour transmission rate by 30-50 % relative to cast film of the same thickness because strain-induced crystallinity densifies the amorphous phase. The main differences from biaxially oriented PET are lower modulus, lower continuous use temperature, and higher water-vapour transmission; BOPLA is therefore selected for renewable-content labels and twist wrap rather than retort or high-temperature barrier applications.
The narrow orientation window of BOPLA is a direct consequence of PLA crystallisation kinetics. At preheat temperatures above 90 °C, spherulites form within seconds and create haze; at temperatures below 65 °C, tensile stress during stretching exceeds the amorphous network strength. Draw ratios above 4.0:1 in either axis can cause microvoiding and loss of tear resistance, while draw ratios below 2.5:1 produce insufficient strain-induced crystallinity and higher shrinkage in storage. Annealing at 110-130 °C for 10-30 s fixes orientation and reduces unrestrained shrink at 100 °C from more than 5 % to below 2 %. These thresholds explain why BOPLA production requires tighter tenter control than biaxially oriented PET or polypropylene and why batch-to-batch variation in D-lactide content shifts the usable draw window.
Chill-roll cast PLA film is produced without intentional orientation by quenching a 200-210 °C melt on a polished roll held at 15-25 °C. Rapid cooling suppresses spherulitic crystallisation and yields an amorphous, transparent film with low haze of 1-4 % per ASTM D1003, high elongation of 250-500 % per ASTM D882, and low tensile strength of 35-60 MPa MD and 25-50 MPa TD. Cast PLA is used as heat-seal layers in flow-wrap and lidding because seal initiation occurs at 85-95 °C, lower than many BOPLA grades. Seal strength increases rapidly above 100 °C, but the narrow softening range requires precise jaw-temperature control; overheating above 120 °C causes film shrinkage and wrinkle at the seal. Cast film also serves as print webs, window patching, and thermoformable base film for trays. Cast PLA processing uses an air-knife or electrostatic pinning system to ensure contact with the chill roll. Without pinning, the low melt strength of PLA at 200-210 °C causes neck-in and thickness variation above ±5 %. Chill-roll surface temperature is maintained within ±2 °C; excursions produce blocking or differential crystallinity. For heat-sealable cast grades, the seal layer is often coextruded with a higher-D-lactide amorphous grade to lower seal initiation and reduce blocking at reel temperatures above 35 °C.
Shrink PLA film is manufactured by stretching the film at 65-80 °C and partially annealing while retaining frozen-in stress. Under ASTM D2732 free-shrink testing at 90 °C for 10 s, commercial grades are typically specified at 40-60 % in both MD and TD, with shrink initiation near 55-60 °C. The shrink window is lower and narrower than PVC or PETG shrink films, which allows use on heat-sensitive containers but demands tight tunnel-temperature control; exceeding 100 °C can induce crystallisation, shrink-force decay, and visual haze in PLA. Published shrink-force data for PLA sleeves is less standardised than for PVC or PETG; comparisons should be made using ASTM D2838 or ISO 14616 on identical thickness and seamed-tube geometry. PLA shrink film is used for tamper-evident bands, multipack collation, and full-body labels where industrial compostability is required. Shrink film line operators monitor preheat, stretch, and annealing temperatures independently. A temperature offset of ±3 °C in the stretch zone changes final free shrink by several percentage points because PLA orientation release stress drops rapidly as the film approaches 60 °C. If the film is quenched too quickly after stretching, shrinkage can be unstable; if annealed too long, shrink is reduced below specification. The double-bubble process permits higher MD/TD balance, while tenter-line shrink film gives higher TD shrink and is preferred for sleeve labels. Edge trim from shrink grades contains oriented crystallites and is more difficult to re-disperse than cast trim.
Relative to biaxially oriented PET, BOPLA exhibits lower tensile modulus, lower continuous-use temperature, and higher water-vapour transmission. Relative to polypropylene, PLA has higher stiffness but lower moisture barrier and a narrower heat-seal window. Relative to uncoated cellophane, PLA offers better dimensional stability in humid environments and can be heat-sealed at lower temperatures, but oxygen barrier is generally lower. These differences dictate that PLA film be selected for renewable-origin and compostability requirements rather than for high-barrier or hot-fill performance.
Substitution of PVC or PETG sleeves with PLA requires verification of shrink force, solvent seaming, and storage stability. PLA sleeve film has density of 1.24-1.25 g/cm³, close to PETG but lower than PVC; sleeve yields per kilogram therefore differ on a thickness basis. Solvent seaming of PLA sleeves typically uses tetrahydrofuran/cyclohexanone blends or dedicated low-VOC solvents, whereas PETG uses different solvent systems; PLA seam strength can be lower and more sensitive to residual solvent. PLA sleeves perform best at tunnel temperatures below 95 °C; they are not a direct drop-in for high-speed steam tunnels operating above 105 °C because shrinkage force and optical clarity are more temperature-sensitive than PVC or PETG. Storage above 60 % RH can plasticise PLA and shift shrink initiation, so sleeves should remain in barrier packaging until use. For low-temperature beverage and dairy sleeves, PLA provides compostable end-of-life but requires revalidation of tunnel dwell time, air velocity, and nozzle distance.
The following property ranges are representative of uncoated film and should be revalidated against supplier certificates for each grade and thickness.
| Property | Test method | Biaxially oriented PLA | Cast PLA | Shrink PLA |
|---|---|---|---|---|
| Thickness, µm | ISO 4593 | 15-50 | 20-150 | 30-60 |
| Tensile strength MD/TD, MPa | ASTM D882 | 110-150 / 100-140 | 35-60 / 25-50 | 40-70 / 30-60 |
| Elongation at break MD/TD, % | ASTM D882 | 70-110 / 70-100 | 250-500 / 300-550 | 50-150 / 50-150 |
| Haze, % | ASTM D1003 | 2-6 | 1-4 | 3-6 |
| WVTR at 38 °C, 90 % RH, 25 µm, g/m²/day | ASTM F1249 | 180-300 | 300-500 | 250-400 |
| OTR at 23 °C, 0 % RH, 25 µm, cm³/m²/day/atm | ASTM D3985 | 400-700 | 550-800 | 500-750 |
| Free shrink at 90 °C, 10 s, % | ASTM D2732 | <5 | <2 | 40-60 |
PLA film must be verified against the following standards for intended use.
| Standard or regulation | Scope | Required value or test |
|---|---|---|
| EN 13432 | Industrial compostability of packaging | Biodegradation ≥ 90 % in 180 days; disintegration ≥ 90 % in 12 weeks; ecotoxicity pass |
| ASTM D6400 | Compostable plastics in municipal or industrial facilities | Equivalent to EN 13432 with heavy-metal limits |
| EU 10/2011 | Food-contact plastics | Overall migration < 10 mg/dm²; lactide SML per positive list |
| FDA 21 CFR | US food-contact status | Supplier-specific FCN or GRAS clearance; verify condition of use |
| ASTM D6866 | Biobased carbon content | Typically 95-100 % modern carbon |
| ISO 1133-1:2022 | Melt-flow rate | 2-10 g/10 min at 210 °C, 2.16 kg |
| RoHS Directive 2011/65/EU | Restricted substances in electrical/electronic applications | Verify lead, cadmium, mercury, hexavalent chromium, PBB, PBDE in additives and colorants |
Operating boundaries include mandatory pre-drying when ambient storage RH exceeds 60 %, melt temperature not exceeding 230 °C, and avoiding residence time above 10 min to prevent lactide reformation. Additives and colorants must be checked for heavy metals under RoHS Directive 2011/65/EU Annex II when electrical/electronic applications are claimed.