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Anhui Liwei Chemical Co., Limited.

EVOH EVAL L101A

    • Product Name: EVOH EVAL L101A
    • Factroy Site: Lingwu, Yinchuan, Ningxia, China
    • Price Inquiry: sales2@liwei-chem.com
    • Manufacturer: Anhui Liwei Chemical Co., Limited.
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    Specifications
    HS Code 629477
    Product EVAL L101A
    Polymerfamily Ethylene Vinyl Alcohol (EVOH) Copolymer
    Ethylenecontent 27 mol%
    Density 1.20 g/cm³
    Meltflowrate 3.0 g/10 min (190°C, 2.16 kg)
    Meltingpoint 188 °C
    Glasstransitiontemperature 55 °C
    Tensilestrength 80 MPa
    Elongationatbreak 200%
    Tensilemodulus 2700 MPa
    Oxygentransmissionrate 0.4 cc·mm/m²·day·atm (20°C, 65% RH)

    As an accredited EVOH EVAL L101A factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing EVOH EVAL L101A is supplied in 25 kg sealed, polyethylene-lined paper bags, ensuring moisture protection during transport and storage.
    Container Loading (20′ FCL) EVOH EVAL L101A resin in 20′ FCL container, packed in 25kg moisture-proof bags on pallets, shrink-wrapped for safe transport.
    Shipping EVOH EVAL L101A is a non-hazardous ethylene vinyl alcohol copolymer resin supplied in sealed, moisture-barrier packaging. Ship as standard dry cargo in clean, dry containers. Protect from humidity and direct sunlight; store below 25°C. No special transport classification required, but avoid excessive heat and rough handling during transit.
    Storage Store EVOH EVAL L101A in a cool, dry, well-ventilated area, away from direct sunlight, heat sources, and open flames. Keep the original container tightly sealed to prevent moisture absorption and contamination. Avoid contact with incompatible materials. Maintain stable temperatures and protect from physical damage to preserve resin quality and processing performance.
    Shelf Life Shelf life is typically two years from manufacture if stored unopened in original packaging, away from moisture and heat.
    Application of EVOH EVAL L101A
    In coextruded barrier films for fresh pasta MAP applications, EVAL L101A is specified as the core layer because the 27 mol% ethylene content maintains oxygen barrier while allowing melt coextrusion with polyolefin skins. The material has a melt mass-flow rate of 1.7 g/10 min at 190 °C under 2160 g load according to ISO 1133-1:2022, and a density of 1.18 g/cm³ according to ISO 1183-1. Peak melting temperature by DSC is 181 °C under ISO 11357-3. Monolayer film data show oxygen transmission of 0.2 cm³·20 μm/(m²·day·atm) at 20 °C and 85% RH under ASTM D3985. That value is conditional because hydrogen-bonded vinyl alcohol segments retain oxygen barrier only while internal moisture remains below the plasticisation threshold. In a 5-layer PE/tie/EVOH/tie/PE structure, the EVAL L101A layer is buried between polyolefin skins and anhydride-modified tie layers to delay moisture migration from high-water-activity contents. A typical barrier-core target for lidding film or tray stock is 5–12 μm of EVAL L101A, with 2–3 μm tie layers on both sides. Melt temperature at the die is held at 210–225 °C. Residence time above 30 min at these temperatures promotes gel formation and die-lip deposits. Pre-drying in a desiccant dryer at 80 °C for 6–8 h to a moisture target below 100 ppm is required before single-screw extrusion on a 30:1 L/D barrier screw. Failure to dry produces splay and microvoids in the EVOH layer that cannot be corrected by downstream adjustment.The same barrier resin is used in rigid MAP tray stock produced on a cast sheet line with a multi-manifold die rather than a feedblock. The sheet is thermoformed on a plug-assisted line with draw ratios limited to the EVOH layer elongation capacity. Corner thinning below 2 μm is measurable by cross-section microscopy and corresponds to localised oxygen ingress in package-level testing under ASTM F1307. The finished tray is tested for oxygen transmission under ASTM D3985 and water vapour transmission under ASTM F1249. Food contact compliance for EVAL L101A is evaluated against FDA 21 CFR 177.1350 in the U.S. market and EU Regulation (EU) No 10/2011 Annex I in the European market. Overall migration testing uses EN 1186-1 with food simulants selected under the same standard. The regrind stream must be kept free of PVC residues because thermal decomposition of PVC releases hydrogen chloride, which accelerates EVOH degradation at processing temperatures above 210 °C.

    What Causes EVOH Layer Washout at the Pinch Seam in Six-Layer Fuel Tank Coextrusion?

    Continuous blow moulding of a 6-layer automotive fuel tank from HDPE/regrind/tie/EVOH/tie/HDPE exposes EVAL L101A to a thermal and shear history unlike flat-film coextrusion. The HDPE skins are processed at 210–230 °C, while the EVOH core is maintained at 215 °C in a dedicated barrier extruder with a 25:1 L/D screw and a decompression zone to limit viscous heating. The EVOH layer in a 5 mm tank wall is typically 75–150 μm, representing 1.5–3.0% of total wall thickness. Accumulator head tooling with independent mandrel channels is required to maintain layer distribution through the parison. Parison profiling shifts the EVOH layer toward the outer wall at the pinch seam and corner radii. The main process failure at the pinch seam is EVOH washout caused by local flow acceleration and insufficient melt elasticity retention in the L101A melt after 20 min residence time. Batch-to-batch variation in moisture content above 120 ppm produces hydrolysis pinholes in the EVOH layer that are visible only after hydrocarbon vapour exposure.Permeation performance is measured on fuel tanks by SAE J1737 hydrocarbon emission testing at 40 °C using CE10 fuel. Ethanol-blended fuel below 10 vol% has a moderate plasticising effect on the EVOH layer, lowering its permeation resistance compared with dry gasoline. Published data for the specific barrier reduction in a production tank with EVAL L101A across all CE10 soak periods is limited. The EVOH layer is a design element for CARB and EPA evaporative emission compliance, but certification is finished-vehicle based rather than material based. Destructive testing of the pinch seam after fuel soak uses a dye penetrant method under ASTM F1929 adapted for tank welds. Delamination at the tie layer is treated as a critical defect because it creates a path for aromatic hydrocarbon migration through the pinch area. The tie layer must maintain anhydride-modified HDPE thickness of at least 10 μm at the seam to retain adhesion after repeated pressure cycles.

    Barrier Pipe Oxygen Diffusion Limits Are Set at the DIN 4726 Interface

    Radiant heating pipes manufactured from PE-RT use EVAL L101A as the oxygen-diffusion barrier layer in a 5-layer pipe: PE-RT/tie/EVOH/tie/PE-RT. Pipe diameters from 16 mm to 20 mm with SDR 7.4–9 are extruded on a 36:1 L/D grooved-feed single-screw line. The EVOH layer thickness is specified at 0.10–0.15 mm because thicker layers increase bending stiffness and risk cracking during uncoiling at 0 °C installation temperature. Oxygen permeation through the pipe wall is measured according to ISO 17455-1. DIN 4726 sets the oxygen ingress limit for heating pipes at 0.1 g/(m³·d) at 40 °C. Continuous barrier performance requires the EVOH layer to be fully encapsulated, as direct contact with circulated water at 70 °C plasticises the vinyl alcohol segments and reduces oxygen barrier over the service life of the heating circuit.The coextrusion line runs a low-shear barrier screw for L101A because high compression ratios generate melt temperatures above 230 °C and cause fish-eye gel formation in the EVOH layer. Line speed is adjusted until ultrasonic wall thickness measurement across the pipe circumference shows variation below ±10%. Variation above that threshold produces sections that fail the DIN 4726 oxygen diffusion limit despite nominal EVOH thickness being within specification. The tie layer is an anhydride-modified PE-RT grade selected to remain ductile after thermal cycling between 20 °C and 80 °C. Adhesion testing of the EVOH/tie interface is performed by peel testing at 23 °C and after 1000 h hot-water ageing. Delamination visible as white streaks on the uncoiled pipe is a rejection criterion on the production line.Agricultural fumigation barrier film is specified primarily by emission-reduction requirements for volatile active substances such as chloropicrin, 1,3-dichloropropene, and metam-sodium. A 5-layer blown film with LLDPE skins, anhydride-modified tie layers, and an EVAL L101A core is run on a 55 mm grooved-feed blown-film line with a 300 mm die. EVOH thickness is set at 3–8 μm. Field installation occurs under high soil-surface humidity that routinely exceeds 85% RH, which swells the vinyl alcohol phase and increases fumigant permeability. The outer LLDPE layers delay moisture uptake, but after rainfall or irrigation the EVOH layer can reach water activity above 0.7, reducing its barrier to chloropicrin by an order of magnitude relative to dry-film conditions. Laboratory evaluation of fumigant permeation is conducted by ASTM D1434 or ISO 15105-2. Published data for chloropicrin permeation through coextruded EVOH film under high field moisture is limited, so field validation under US EPA fumigant management plans remains necessary.Film thickness variation below ±8% across the web is controlled by air-ring adjustment and internal bubble cooling. The EVOH layer is measured by an optical gauge on the collapsing frame after frost-line stabilisation. Gels caused by moisture above 150 ppm in the EVAL L101A feed stream appear in the film as undispersed clear lumps and reduce barrier continuity. The film is folded into shank-width panels during installation. Flex cracking of the EVOH layer during folding is tested by a laboratory Gelbo flex test under ASTM F392, with pinhole detection by dye penetration. The specification requires no pinholes larger than 0.5 mm after 50 flex cycles at 5 °C. This test is used because field-handled fumigation film experiences repeated bending over uneven soil clods and irrigation furrows.

    Measuring Seal-Peel Interactions in EtO-Sterilised Device Trays

    Thermoformed medical device trays utilising EVAL L101A are produced from a 5-layer APET/tie/EVOH/tie/PE sheet. The sheet is extruded on a calender roll stack at 245 °C for APET skin layers while the EVOH core is processed at 220 °C through a separate barrier extruder. Thermoforming draw ratios above 3.0:1 thin the EVOH layer at tray corners below 2 μm. Those zones are measured by cross-section light microscopy and correlated with package oxygen transmission under ASTM F1307. Sealing of Tyvek lidding to the PE seal layer is performed at 125–150 °C and 0.4 MPa for 0.5–1.5 s. Ethylene oxide sterilisation at 50–55 °C and 30–70% RH introduces moisture into the EVOH layer, temporarily increasing oxygen transmission. The tray must be reconditioned for 24–48 h at 23 °C and 50% RH before barrier validation.Mechanical package integrity is tested by seal-peel per ASTM F88/F88M, dye penetration per ASTM F1929, and burst per ASTM F2054. Compliance with ISO 11607-1 for terminally sterilised medical device packaging requires the oxygen barrier to be treated as a critical design input only when oxygen-sensitive devices are inside. The seal layer is formulated without slip additives that migrate into the seal interface and reduce peel strength below 1.0 N/15 mm. After accelerated ageing at 55 °C for 28 days, the package is re-evaluated for seal strength and oxygen ingress. Barrier loss above 10% from baseline under ASTM D3985 after ageing is investigated as a potential failure of the tie layer or EVOH layer microcracking.

    Hydrocarbon Permeation and Stacking Strength in Coextruded Jerry Cans

    Because hydrocarbon permeation through monolayer HDPE causes label adhesion failure, odour complaints, and dangerous goods non-compliance in solvent packaging, multilayer jerry cans are coextruded with a 6-layer HDPE/regrind/tie/EVAL L101A/tie/HDPE structure on a continuous shuttle or accumulator-head machine. The EVOH layer is kept at 1.0–2.0% of total wall thickness, typically 20–40 μm in a 1.5 mm container wall. For toluene and xylene, the continuous EVOH layer reduces permeation relative to monolayer HDPE by 95–99%. Layer continuity through the pinch-off and handle weld regions is required because solvent permeation concentrates at any discontinuity. Stacking strength after hydrocarbon immersion is validated by the UN 6.1.5.3 stack test for dangerous goods packaging, which specifies 28 days at 40 °C with a load corresponding to 3 m stack height.The primary failure mode is delamination at the tie layer after prolonged solvent exposure. Anhydride-modified HDPE tie layer thickness below 10 μm produces intermittent adhesion loss and blistering in the top panel. The EVAL L101A feed is pre-dried below 100 ppm moisture and processed at 210 °C melt temperature, while HDPE is processed at 220 °C. Blow moulding dies with overlapping mandrel flow channels are necessary to prevent EVOH layer discontinuity at the welded bottom pinch seam. Regrind content is limited to 20% in the outer and inner HDPE skins because higher regrind levels reduce the melt strength needed for parison hang time on large containers. Permeation testing of the filled jerry can is conducted by weighing after 28 days at 23 °C and 50% RH; the acceptance limit is defined by the specific solvent vapor pressure and the dangerous goods classification of the packaged liquid.
    ApplicationRegulatory referenceTest methodLimit or condition
    Food contact filmFDA 21 CFR 177.1350EN 1186-1Overall migration 10 mg/dm²
    Food contact filmEU 10/2011 Annex IEN 1186-1Overall migration 10 mg/dm²
    Automotive fuel tankSAE J1737Hydrocarbon permeationCE10 at 40 °C
    Barrier pipeDIN 4726ISO 17455-10.1 g/(m³·d) at 40 °C
    Medical packagingISO 11607-1ASTM F88/F88M, ASTM F1929Seal-peel 1.0 N/15 mm
    Jerry canUN 6.1.5.3Stack test28 d at 40 °C, 3 m
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    Certification & Compliance
    More Introduction

    Kuraray EVAL™ L101A is a standard ethylene-vinyl alcohol copolymer resin supplied as cylindrical pellets for coextruded barrier films, sheet, and blow-moulded containers. The nominal ethylene content is 27 mol%, with a published melt flow rate of 3.2 g/10 min at 190 °C/2160 g per ISO 1133-1:2022. Density is 1.18 g/cm³ per ISO 1183-1:2019. Oxygen transmission rate on coextruded film with a 20 µm barrier layer, conditioned at 20 °C and 65 % RH, is reported at approximately 0.4 cm³·20 µm/(m²·day·atm) per ASTM D3985. The product is intended as a buried barrier core rather than a monolayer surface layer because direct contact with liquid water disrupts the interchain hydrogen-bonded network responsible for oxygen barrier.

    PropertyTest methodPublished value
    Ethylene contentISO 14663-1:199927 mol%
    Melt flow rateISO 1133-1:20223.2 g/10 min at 190 °C/2160 g
    DensityISO 1183-1:20191.18 g/cm³
    Oxygen transmission rateASTM D39850.4 cm³·20 µm/(m²·day·atm) at 20 °C/65 % RH

    Before pellet L101A enters an extruder, moisture content must be reduced below 0.1 % because the resin is hygroscopic and releases acidic volatiles when processed wet. Pellets stored at 60 % RH and 23 °C can absorb more than 0.2 % moisture in 8 h. Desiccant drying at 80–90 °C for 4–6 h with inlet air dew point below -20 °C is standard in film production. Wet EVOH generates bubbles in the barrier layer, reduces tie-layer adhesion, and accelerates acetic acid formation. Operators should verify moisture analyser readings below 0.1 % before start-up rather than relying solely on hopper residence time.

    What Process Conditions Trigger Gel Formation and Acetic Acid Evolution in L101A Extrudate?

    Thermal degradation of L101A is a time-temperature autocatalytic process. At melt temperatures above 230 °C, vinyl alcohol units undergo acid-catalysed dehydration, releasing acetic acid and forming conjugated unsaturation that colours the extrudate yellow and creates crosslinked gels. Barrel temperature profiles of 180–220 °C are common on chrome-plated screws; die adapter settings up to 230 °C are permissible only when residence time is kept below 10–15 min. Screw geometries above 24:1 L/D and compression ratios above 3.0:1 can generate shear heating that raises melt temperature above set point. Production-scale purging uses low-melt-flow LDPE or PP at 210–230 °C after each run. Vinyl acetate copolymers and acid-containing purge compounds are avoided because they accelerate gel formation. Melt pressure at the EVOH die adapter is monitored; a drift of more than 10 % without throughput change indicates degradation or wet pellets.

    Thermal analysis of L101A per ISO 11357-3:2018 at 10 °C/min from 25 °C shows a melting endotherm near 191 °C, a crystallization exotherm near 162 °C, and a glass transition near 62 °C. These transitions define heat-seal and thermoforming limits. In sheet extrusion for thermoforming, surface heating to 140–150 °C does not destroy barrier-layer continuity if residence time is short. Heating above 160 °C begins to melt the EVOH crystal network and can produce thin spots after forming. The crystallinity of L101A is process-dependent. Rapid quenching on a chill roll at 15–25 °C limits spherulite growth and preserves transparency, while slow cooling or annealing at 90–110 °C for 1 h increases crystalline fraction and reduces oxygen transmission but reduces flex-crack resistance and formability.

    Capillary rheometry of L101A indicates non-Newtonian shear-thinning behaviour over 100–1000 s⁻¹. At low shear rates, high viscosity assists layer uniformity; at die shear rates, viscosity approaches that of polypropylene tie resins, which reduces interfacial instability. Melt elongation at 190 °C is sufficient for deep-draw thermoforming but lower than that of higher-ethylene EVAL grades. In blow moulding, L101A is coextruded as a thin core under polyolefin melts, and parison sagging is controlled primarily by skin-layer viscosity rather than by the EVOH core.

    Because the oxygen barrier of L101A is generated by interchain hydrogen bonding, barrier loss follows the water activity around the core layer rather than the external humidity alone. In dry snack packaging stored at 23 °C and 50 % RH, polyolefin skins restrict moisture transport and the EVOH core can remain below 65 % RH, maintaining oxygen transmission near the published value. In pasteurized or retorted wet food containers, core-layer humidity can exceed 85 % RH; oxygen transmission then rises by a factor of 5–10. A thicker L101A layer does not fully compensate for humidity-driven barrier loss. For such conditions, a higher-ethylene EVOH grade, a desiccant sealant layer, or an inorganic barrier layer may be required. Published data for this specific configuration is limited, so shelf-life testing should be conducted on the complete multilayer structure.

    Oxygen transmission through a finished package contains two terms: permeation through the barrier layer and leakage through pinholes, seal defects, or score-line cracks. L101A contributes only to the permeation term. A pinhole density above 0.2 holes/m² in laminated film can dominate oxygen ingress and mask differences between EVOH grades. In controlled-atmosphere packaging, carbon dioxide permeability of L101A is approximately 3–5 times higher than oxygen permeability. Therefore, carbon dioxide transmission values should be measured per ASTM F2476 on the complete film rather than derived from oxygen transmission data. For nitrogen-flushed packages, oxygen is usually the limiting permeant because nitrogen permeability is lower.

    Comparative Barrier and Moisture Trade-Offs Across EVAL Ethylene Grades

    L101A belongs to the 27 mol% ethylene class, which provides the highest dry oxygen barrier among standard EVAL film grades but also the steepest relative humidity sensitivity. Compared with 32 mol% and 38 mol% ethylene grades, L101A exhibits lower oxygen transmission at 20 °C/65 % RH, but the ranking can reverse at >75 % RH. The selection boundary is not fixed; it depends on expected core humidity, target shelf life, and package mechanical requirements. Higher-ethylene grades also offer lower melt viscosity and improved flex-crack resistance, which can be decisive for bag-in-box films and high-speed pouch lines. Direct replacement of L101A with a higher-ethylene grade should be preceded by coextrusion adhesion tests and oxygen transmission tests per ASTM D3985 on film conditioned at the product’s worst-case humidity.

    Tie-layer selection for L101A starts with maleic-anhydride-grafted polyolefins formulated for EVOH adhesion. Peel adhesion above 4 N/15 mm per ASTM F904 is typically required for flexible packaging, but contaminated EVOH surfaces, low die lip temperatures, or insufficient tie-layer thickness can reduce adhesion below 2 N/15 mm. In five-layer cast film, L101A is usually 5–15 % of total thickness, with tie layers each 1–2 % and polyolefin skins as the balance. Barrier-layer thickness must be monitored independently of total film gauge; a variation of ±5 % in the EVOH core can create local oxygen ingress. Die gap settings of 0.5–0.8 mm and moderate draw-down ratios reduce neck-in and maintain core encapsulation. Screen packs of 100–250 µm are commonly used to trap degraded particles, with pressure drop monitored to avoid heat build-up at the screen.

    When L101A Replaces a Higher-Ethylene EVOH in an Existing Coextrusion Line

    Substitution of L101A for a 32 mol% or 38 mol% ethylene grade on an existing line requires changes to temperature and screw-speed profiles. Because the lower ethylene content increases melt viscosity and crystallization rate, barrel set points are often reduced by 5–10 °C to prevent shear over-heating and gel formation. The EVOH layer may set faster at the die lip, which improves layer sharpness but increases the risk of edge encapsulation defects. If the line previously ran a higher-ethylene grade, feed-section temperature should be verified to avoid pellet bridging in hot hoppers above 70 °C. Pellet geometry and the additive package influence feed consistency; L101A feeds uniformly on grooved-throat extruders but can exhibit feed interruptions if hopper throat temperature exceeds the pellet surface softening point.

    L101A is supplied in moisture-barrier packaging, typically 25 kg or 500 kg bags and octabins. Opened containers should be resealed with dry-air purge or used within 4 h in high-humidity environments. Clean EVOH edge trim can be incorporated at up to 10 % into the EVOH layer without measurable loss of oxygen barrier, but the regrind must be dried to the same moisture specification and must not be contaminated with polyolefin or tie-layer trim. Cross-contamination with nylon or polyester trim produces hazy gels and is not permitted.

    Typical application zones include coextruded polypropylene cups and trays for processed meat, dry cereal liners, lidding film for modified-atmosphere packages, and stand-up pouches for dry and semi-dry foods. L101A is used in structures where external humidity remains below 65 % RH for most of shelf life and where product water activity does not force the core above 75 % RH. For high-water-activity products, barrier-layer options are selected case by case, with shelf-life testing on the complete package per ASTM F1927 or ASTM F2622 as appropriate.

    Residual acetaldehyde in EVOH can migrate into sensitive products. L101A is normally positioned behind a polyolefin functional barrier that reduces migration below organoleptic thresholds. For direct contact with semi-solid foods under FDA 21 CFR 177.1360, residual acetaldehyde is often specified at less than 5 µg/g resin, measured by headspace gas chromatography per ISO 17052 or equivalent. Final package acceptance should include sensory evaluation because barrier performance and flavour performance are independent criteria.

    Compliance documentation for L101A commonly includes FDA 21 CFR 177.1360 for food-contact applications, EU 10/2011 for plastic materials intended to contact food, and REACH registration statements. Heavy metal content is below the limits of EU 2011/65/EU RoHS recast for packaging components. The product is not recommended for unprotected monolayer packaging because direct contact with liquid water or high-moisture foods causes opacity and a sharp loss of oxygen barrier. It is also not recommended as the sole barrier layer in retort applications; if used in retortable structures, L101A must be encapsulated with high-temperature tie resins and polypropylene skins, and oxygen barrier under humid retort conditions should be verified rather than inferred from dry-film data.