| HS Code | 737577 |
| Melt Flow Rate 190 C 2 16kg | 1.5-3.5 g/10min |
| Density | 1.15-1.20 g/cm³ |
| Melting Point | 165-185°C |
| Glass Transition Temperature | 55-70°C |
| Oxygen Transmission Rate | 0.1-1.0 cc·mm/m²·day·atm |
| Ethylene Content | 27-32 mol% |
| Tensile Strength | 60-80 MPa |
| Elongation At Break | 200-400% |
| Flexural Modulus | 2000-3000 MPa |
| Water Absorption 24h | 0.2-0.5% |
As an accredited Blow Molding Grade EVOH for Bottles & Fuel Tanks factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Blow Molding Grade EVOH pellets for bottles/fuel tanks, packaged in 25 kg sealed bags on pallets. |
| Container Loading (20′ FCL) | 20′ FCL safely loads blow molding grade EVOH resin in sealed packaging for bottles and fuel tanks. |
| Shipping | Blow Molding Grade EVOH ships as moisture-resistant sealed pellets in lined paper bags or FIBCs. Keep dry, avoid punctures, and store in ventilated, cool conditions. Standard freight is fine; no dangerous goods classification. Use clean handling equipment to prevent contamination, and follow regional packaging and labeling regulations. |
| Storage | Store blow molding grade EVOH in sealed, moisture-proof containers in a cool, dry, well-ventilated area. Protect from direct sunlight, heat sources, and humidity, as the resin is hygroscopic. Ideal temperature: below 30°C. Keep away from incompatible materials. Ensure containers are fully resealed after use to prevent moisture pickup and contamination. |
| Shelf Life | Shelf life is typically 1–2 years when stored in original sealed packaging, away from moisture, heat, and direct sunlight. |
Continuous coextrusion blow molding lines for oxygen-sensitive food sauce bottles typically operate six-layer wall stacks: HDPE outer skin, post-industrial regrind, maleic anhydride grafted polyolefin tie, EVOH barrier layer, second tie, and HDPE inner skin. The EVOH layer is held at 2–5 wt% of total bottle wall weight, corresponding to a dry-layer thickness of 0.02–0.10 mm within 0.7–1.5 mm total wall thickness. Blow molding grades used in this sector exhibit melt flow rates of 1.5–3.0 g/10 min measured under ISO 1133-1 at 190°C/2.16 kg; a batch-to-batch MFR shift above 0.4 g/10 min is known to alter parison sag and produce uneven barrier-layer distribution at the bottle sidewall. The melt temperature at the die head is maintained at 190–225°C. Barrel zones exceeding 230°C accelerate vinyl alcohol dehydration, generating oxidized gels that appear as pinholes at the shoulder and pinch-off. Shuttle blow molders with accumulator heads and shot volumes above 250 cm³ require parison programming to correct wall thinning; clamp force on production machines commonly ranges from 300–1,200 kN depending on cavity count, but published data for this specific configuration is limited. For food-contact compliance, the EVOH layer must meet FDA 21 CFR 177.1360 and Regulation (EU) 10/2011; migration testing is performed by the container producer under the intended filling and retort conditions. Oxygen transmission is measured on finished bottles by ASTM F1307 or on film by ASTM D3985 at 23°C and 50% RH; sauce bottle specifications commonly require package OTR below 0.5 cm³/(m²·day·atm) to suppress browning and vitamin C loss over a 12–18 month shelf life.
In high-humidity liquids such as UHT milk, meal replacement shakes, and protein formulations, sorbed water plasticizes the EVOH lattice and raises oxygen permeability by 1–2 orders of magnitude when conditioned from 0% RH to 90% RH at 23°C, as shown in published barrier resin permeability curves. Because EVOH is not placed in direct contact with the liquid product, the inner polyolefin layer functions as a moisture buffer; inner HDPE layer thickness is therefore raised to 0.05–0.12 mm while the EVOH content is increased to 4–7 wt% of total wall weight, compared with 2–5 wt% for dry food sauces. The oxygen barrier target for a 500 mL high-humidity bottle is frequently set at 0.1–0.3 cm³/(m²·day·atm) under ASTM F1307 at 23°C and 65% RH to maintain ascorbic acid retention and prevent protein oxidation. Processing lines that coextrude EVOH in dairy bottle applications use screw designs with low compression ratios in the barrier extruder, typically 1.8:1–2.5:1, to limit shear heating; barrier melt temperature is capped at 215°C because dairy formulations are more sensitive to EVOH degradation odor than dry sauce bottles. Pre-drying of EVOH to below 0.3 wt% moisture is mandatory using desiccant dryers at 80–100°C for 4–6 h; otherwise, steam-generated splay and interlayer voids occur during die exit. At the blow station, mold temperature is controlled at 8–15°C for high-humidity bottle walls to shorten evaporative cooling time, but excessive cooling below 8°C can increase residual stress at the parting line. The finished containers are tested under USP 671 where relevant for nutritional products, and food-contact status is maintained through FDA 21 CFR 177.1360 and Regulation (EU) 10/2011 with total migration below 10 mg/dm² for general food simulants.
Passenger car and light truck fuel tanks produced by coextrusion blow molding use six-layer accumulator-head construction: HDPE outer cap, regrind, maleic anhydride grafted HDPE tie, central EVOH barrier, second tie, and HDPE inner cap. In this construction, EVOH is typically 1.5–3.0 wt% of the total tank wall, translating to a dry barrier layer of 0.05–0.15 mm within a 5–9 mm wall. The EVOH layer is not in direct contact with fuel; the inner HDPE layer blocks liquid hydrocarbons from swelling the barrier material, because direct exposure to aromatic fuel components causes EVOH plasticization and reduces interlayer adhesion. Continuous coextrusion blow molders run HDPE at 220–240°C and EVOH at 195–215°C; the lower EVOH melt temperature is required to suppress thermal degradation, while the HDPE temperature must remain high enough to weld at pinch-off. Barrier extruders are specified with L/D 24:1–30:1 and barrel zones no higher than 230°C; if barrel temperature exceeds 230°C, gel formation in the EVOH layer results in parison tearing during inflation. Accumulator head residence time is controlled below 20 min at melt temperature; longer residence produces yellowed EVOH streaks and generates weak weld lines. Parison programming sets die gap from 2–10 mm across the tank profile, with the highest wall thickness programmed at pinch-off zones and fill-cap bosses. Hydrocarbon permeation is tested on finished tanks by SAE J1737 after fuel conditioning; regulatory conformity for North American passenger vehicles is demonstrated under CARB LEV III and US EPA evaporative emission protocols rather than by testing the EVOH layer alone. Published data for this specific configuration is limited, but tank-level permeation values below 0.3 g/day are referenced in LEV III certification discussions for light-duty vehicles; heavy-duty and off-road configurations use separate limits. Interlayer peel adhesion is verified with ASTM F904; peel strengths below 20 N/cm in laboratory coupons are considered insufficient because tank drop tests produce delamination at the pinch-off tail. Regrind content up to 30–40 wt% is re-introduced into the regrind layer only; post-consumer material is not used in the EVOH layer. Pre-drying of EVOH to below 0.3 wt% moisture is required before processing at relative humidity above 60%.
| Layer | Typical wall weight fraction | Primary function | Controlling test or standard |
|---|---|---|---|
| HDPE outer cap | 20–30 wt% | Impact and structural skin | ISO 6603-2 |
| Maleic anhydride grafted HDPE tie | 1–2 wt% | Interlayer adhesion | ASTM F904 |
| HDPE regrind | 30–40 wt% | Mechanical bulk | ISO 178 |
| EVOH barrier | 1.5–3.0 wt% | Hydrocarbon permeation barrier | SAE J1737 |
| Maleic anhydride grafted HDPE tie | 1–2 wt% | Interlayer adhesion | ASTM F904 |
| HDPE inner cap | 25–35 wt% | Fuel contact and weld integrity | SAE J1737 |
Portable fuel containers blow molded with EVOH barrier layers are governed by evaporative emission limits distinct from passenger car tanks. A 20 L jerrycan wall stack commonly uses HDPE skins, regrind, tie layers, and EVOH at 2–4 wt% of total wall weight, with total wall thickness 1.2–2.0 mm at the sidewall. The pinch-off tail is the primary failure zone because parison welding compresses the barrier layer into a folded seam; if the EVOH does not completely encapsulate the weld, local hydrocarbon permeation rises sharply. Blow molding machines for these containers typically run accumulator heads with clamp force of 600–1,500 kN and shot capacity sized for 20–40 L containers; published data for this specific configuration is limited, but the equipment class is selected so that parison drop time remains short enough to reduce HDPE melt sag. Barrier-layer melt temperature is held at 190–215°C; HDPE melt temperature is set at 210–230°C. The tie layer thickness at the pinch-off zone is critical: dry-film tie layers below 0.01 mm produce visual delamination after drop testing, while tie layers at 0.02–0.05 mm are used in commercial container structures. Permeation testing on finished containers is conducted under US EPA 40 CFR Part 59 for portable fuel containers, with component-level screening performed by SAE J1737 or ASTM D2684 depending on the test fluid. EVOH barrier layers reduce toluene and isooctane permeation by 90–99% relative to monolayer HDPE in published barrier resin comparisons, but the finished-container reduction is lower because of the pinch-off weld and parison thickness variation. The fuel-contact layer remains HDPE, not EVOH; direct EVOH exposure to oxygenated fuels containing methanol or ethanol blends above 10 wt% can increase plasticization and should be evaluated on a formulation-specific basis. Pre-dried EVOH is fed through a barrier extruder with vacuum venting; moisture above 0.3 wt% generates surface splay in the barrier layer and creates spark-test pinholes in the safety-critical wall.
Agricultural chemical bottles and UN jerricans for emulsifiable concentrates, pesticide formulations, and organic solvents use multilayer HDPE/EVOH walls to control both water vapor ingress and hydrocarbon-carrying odor loss. EVOH is selected for oxygen and aliphatic hydrocarbon barrier; however, aromatic solvents such as xylene, toluene, and trimethylbenzene can plasticize EVOH if the layer is directly contacted. The wall stack therefore positions the EVOH layer behind an HDPE inner skin of 0.10–0.30 mm and uses tie layers of maleic anhydride grafted polyolefin at 0.02–0.05 mm to prevent delamination when the container is exposed to hot-fill liquids at 40–50°C. EVOH content in agricultural bottle walls is commonly 1.5–3.0 wt% of total weight, but aggressive solvent mixtures may require barrier layer thickness at the upper end of this range. Permeation resistance is determined by ASTM D2684 or ASTM D543 on finished containers; test conditions use the actual packaged formulation because solvent uptake in polyolefin skins reduces the concentration gradient before permeating species reach the EVOH layer. UN certification for hazardous liquids requires drop, stack, hydraulic and leak tests under UN 3H1/3H2 packaging provisions; the EVOH layer contributes no structural strength and is not counted in the wall thickness calculation for UN type approval. Processing lines for this sector run continuous coextrusion blow molders with parison programming; the die gap is ramped from 1.5 mm at the parison bottom to 4.0 mm at the top for a 1,000 mL handleware bottle to maintain EVOH continuity at the handle pinch-off. Melt temperature for the barrier layer is controlled at 195–215°C; at temperatures above 230°C the EVOH decomposes and forms black specks that are unacceptable in light-colored containers. Pre-drying at 80–100°C for 4–6 h to below 0.3 wt% moisture prevents steam bubbles at the die lip. Published data for specific solvent mixtures is limited; each new formulation is therefore subjected to container-level permeation and storage stability trials rather than relying on generic EVOH permeability coefficients.
Oxygen-sensitive solid-dose pharmaceutical and nutraceutical products, including probiotics, fish oil softgels, and vitamin C powders, are packaged in multilayer polyolefin bottles with EVOH barrier layers. The non-food-contact outer and inner layers are usually HDPE or polypropylene; the EVOH layer is buried in a five-layer wall at 3–6 wt% of total bottle weight. Dry-product conditions preserve the oxygen barrier: at 23°C and 0% RH, extrusion-grade EVOH film typically exhibits oxygen transmission below 0.1 cm³/(m²·day·atm) under ASTM D3985, while at 60% RH the same film may exceed 0.5 cm³/(m²·day·atm). Therefore pharmaceutical bottles include desiccant canisters or desiccant-entrained polymer to keep the headspace below 30% RH and maintain EVOH barrier performance. Finished package oxygen transmission is measured by ASTM F1307 or coulometric package methods; product-specific limits are validated against stability protocols under USP 671 and ICH Q1A storage conditions. Blow molding lines for pharmaceutical bottles use shuttle machines with parison programming to hold uniform EVOH distribution across a 50–500 mL bottle range; clamp force is typically 100–600 kN depending on cavity count and container diameter. The EVOH melt stream is held at 190–215°C; shear heating from screw speeds above 80 rpm in the barrier extruder can generate gel specks and raise the risk of pinhole failure in barrier layer continuity. Tie layers are processed at 0.02–0.05 mm dry thickness; adhesion is verified by ASTM F904 peel testing. The inner HDPE layer is specified free of antislip additives and migratory lubricants that could affect desiccant capacity or sorb active pharmaceutical ingredients. Regulatory compliance follows FDA 21 CFR 177.1360 for EVOH and USP 661.1 for plastic packaging components, with extractables data generated under ISO 10993-18 where applicable for higher-risk dosage forms. Published data for this specific configuration is limited; barrier performance is therefore confirmed on completed bottles rather than on monolayer film coupons.
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| Designation | Ethylene content | Melt mass-flow rate | Density | Oxygen transmission rate | Typical use |
|---|---|---|---|---|---|
| EVAL™ F101A | 32 mol% | 1.6 g/10 min | 1.19 g/cm³ | 0.2 cm³·20 µm/(m²·day·atm) | rigid multilayer bottles |
| EVAL™ H101B | 38 mol% | 1.7 g/10 min | 1.17 g/cm³ | 0.5 cm³·20 µm/(m²·day·atm) | high-toughness containers |
| EVAL™ E105B | 44 mol% | 5.5 g/10 min | 1.14 g/cm³ | 1.3 cm³·20 µm/(m²·day·atm) | large-part blow molding and fuel tank interlayers |