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Anhui Liwei Chemical Co., Limited.

Elevate EB508 EVA Copolymer Resin,18.5% VA,0.7 MI,Heavy Duty Bags Grade

    • Product Name: Elevate EB508 EVA Copolymer Resin,18.5% VA,0.7 MI,Heavy Duty Bags Grade
    • 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 500995
    Va Content 18.5%
    Melt Index 0.7 g/10 min
    Density 0.938 g/cm³
    Melting Point 79 °C
    Vicat Softening Point 64 °C
    Tensile Strength At Break 17 MPa
    Elongation At Break 800%
    Flexural Modulus 30 MPa
    Hardness 38 Shore D
    Brittleness Temperature -75 °C
    Film Impact Strength 2000 g
    Resin Type EVA Copolymer

    As an accredited Elevate EB508 EVA Copolymer Resin,18.5% VA,0.7 MI,Heavy Duty Bags Grade factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Elevate EB508 EVA Copolymer Resin is supplied in 25 kg heavy-duty bags, palletized and shrink-wrapped for safe handling and storage.
    Container Loading (20′ FCL) 20′ FCL container loading of Elevate EB508 EVA copolymer resin, 18.5% VA, 0.7 MI, in heavy-duty bags, safely stacked and secured.
    Shipping Elevate EB508 EVA copolymer resin is supplied in heavy-duty bags for safe transport. Store dry, away from heat, direct sunlight, and moisture to prevent clumping or degradation. Handle with standard industrial equipment; product is non-hazardous under normal shipping conditions but should be kept clean and contamination-free.
    Storage Store Elevate EB508 EVA Copolymer Resin in a cool, dry, well-ventilated area away from direct sunlight, heat, and ignition sources. Keep heavy-duty bags sealed when not in use to prevent moisture contamination. Avoid exposure to strong oxidizers and excessive humidity. Maintain moderate temperatures and follow good housekeeping to prevent static accumulation and physical damage.
    Shelf Life Store unopened in cool, dry conditions away from sunlight. Shelf life is two years from date of manufacture.
    Application of Elevate EB508 EVA Copolymer Resin,18.5% VA,0.7 MI,Heavy Duty Bags Grade

    On three-layer blown-film extrusion lines producing heavy-duty sacks in the 60–120 µm thickness range for mineral fillers, food ingredients, and resin pellet transport, EB508 is introduced into the inner sealant layer as a 20–40 wt% blend with butene-LLDPE having a melt index of 0.9–1.0 g/10 min. The 18.5 wt% vinyl acetate content depresses seal initiation temperature relative to Ziegler-Natta LLDPE, while the 0.7 g/10 min melt index measured under ASTM D1238 at 190 °C/2.16 kg preserves bubble stability at blow-up ratios of 2.0–2.4:1. Typical line settings include a die gap of 1.8–2.0 mm, sealant-layer melt temperature of 185–195 °C, and frost-line height of 450–700 mm. Converter specifications for hermetic valve closures generally require seal strength of 8–12 N/15 mm per ASTM F88-21 when sealing at jaw temperature 125–135 °C and dwell 0.6–1.0 s on rotary or stationary fillers. The sealant layer is zoned at 15–20% of total gauge; outer layers remain HDPE or LLDPE with 0.5–1.0 wt% silica antiblock to prevent blocking during reel storage. Predrying is not normally required below 60% relative humidity; if condensation is observed, warm-air hopper drying at 50–60 °C for 4–6 h is applied.

    EB508 is confined to the inner layer because a high-VA outer layer would lower surface hardness and increase tack after slit-seal conversion. When edge-trim regrind is reincorporated into the core at 10–20 wt%, total VA content in the core remains below 4 wt%, avoiding a measurable drop in secant modulus per ASTM D882-18. On lines exceeding 350 kg/h with 90 mm extruders, melt pressure before the screen pack typically increases by 5–8% relative to LLDPE of similar MI; 60/80/100 mesh screen packs are used to trap microgels generated by shear heating. The die lip should be purged with LDPE before shutdown because EB508 residue can form acetic-acid-related corrosion at temperatures above 220 °C.

    Food-contact sacks using EB508 must be evaluated under FDA 21 CFR 177.1350 conditions of use; the grade does not automatically confer compliance. In the European Union, the formulated article is assessed under Regulation 10/2011/EC for overall migration and vinyl acetate-specific migration. Heavy-duty sacks for non-food industrial goods fall outside these food-contact scopes, but packaging and recycling obligations under Directive 94/62/EC and REACH EC No 1907/2006 apply. RoHS Directive 2011/65/EU is not normally triggered unless the packaged article is within electrical and electronic equipment scope.

    Compliance and test designations applicable to EB508 in heavy-duty sack packaging
    Parameter or RequirementDesignationCondition or Limit
    Melt mass-flow rateASTM D1238-20 / ISO 1133-1:20220.7 g/10 min at 190 °C/2.16 kg
    Seal strengthASTM F88-21Converter target 8–12 N/15 mm depending structure and sealing condition
    Hot tackASTM F1921-181.5–2.0 N/15 mm at 110 °C for dusty valve sacks
    Low-temperature brittlenessASTM D746-20Tested at frozen-fill temperature; EB508-specific published value is limited
    US food contactFDA 21 CFR 177.1350Subject to good manufacturing practice and food-type restrictions
    EU food contactRegulation 10/2011/ECOverall migration <10 mg/dm²; vinyl acetate SML 12 mg/kg

    Does Valve Sack Sealing Through Cement and Carbon Black Dust Remain Technically Defensible?

    Tubular form-fill-seal lines for cements, calcium carbonate, carbon black, and precipitated silica operate inside high-dust environments. EB508 blended at 30–50 wt% into a 70–100 µm sealant web lowers required jaw temperature, but settled dust on the seal zone remains a physical barrier irrespective of vinyl acetate content. Production-scale converters install air-knife de-dusting or vacuum extraction immediately before the sealing jaws and restrict jaw temperature to 130–145 °C, dwell to 1.0–1.2 s, and sealing pressure to 3–5 bar. Under such conditions, the filled sack is considered acceptable when seal strength measures 6–10 N/15 mm per ASTM F88-21 after cooling to 23 °C and 50% relative humidity. Hot tack force per ASTM F1921-18 should remain above 1.5–2.0 N/15 mm at 110 °C to prevent spring-back of gusseted sacks. The low MI of EB508 contributes to melt elasticity inside the sealing nip, but once addition exceeds 50 wt% in the seal layer, bubble stability on short-stalk lines with frost-line height below 400 mm deteriorates. Slip packages in outer layers, typically erucamide at 800–1,200 ppm, migrate over time; after 30 days at 40 °C, seal strength can fall by 10–15% when slip concentration at the seal surface exceeds 250 ppm.

    Filled sacks carrying cementitious products are often specified under UN packaging requirements for non-dangerous or dangerous goods, with drop and stacking tests; the EB508 sealant layer alone does not determine sack compliance. The load-bearing contribution is from the HDPE or PP woven outer structure; EB508 is limited to the closure zone and the inner liner. In vertical bagging units running 1,800–2,400 sacks/h, dwell time may fall below 0.5 s, which requires seam temperature adjustment rather than an increase in EB508 content alone. Published data for this specific EB508 configuration under carbon black dust contamination is limited; converter trials should benchmark against ASTM F88-21 and ASTM F1921-18 on the actual filled product, including dusted seal-area coupons rather than clean laboratory films.

    In tandem extrusion coating lines producing paper-based heavy-duty sacks, EB508 is introduced at 15–30 wt% into low-density polyethylene for the extrusion coating layer. The resin stream is processed through a 90 mm single-screw extruder with L/D 30:1, barrier screw, and screen pack of 60/80/100 mesh. Adapter and die temperatures are held at 200–215 °C; full-lamination coat weights of 12–25 g/m² demand melt temperature below 220 °C. Operation above 230 °C initiates deacetylation, generating acetic acid and reducing adhesion to the paper web. The 0.7 g/10 min MI contributes to reduced draw resonance at line speeds between 120–180 m/min, but the melt curtain remains sensitive to air-gap turbulence. Adhesion to untreated kraft paper is inconsistent; inline corona treatment at 2.5–3.5 kW or a water-based primer is applied before the melt curtain. Bond strength per ASTM F904-16 normally falls between 1.5 and 3.0 N/15 mm, depending on paper surface energy and moisture content. High-humidity storage of coated reels can depress bond strength by 10–20%; reconditioning at 23 °C and 50% relative humidity for 24 h is required before pouch converting. EB508 should not be used as the sole extrusion-coating resin on lines where die zones exceed 240 °C because acidic degradation products corrode die lips and produce visible pinholes in the coating.

    For laminations requiring improved grease resistance or moisture barrier, EB508 is not the controlling layer; a thin HDPE or aluminium foil substrate or an overprint varnish is used. The EVA-containing layer contributes sealability and paper adhesion, not barrier performance. On lines where melt temperature exceeds 230 °C, EB508 should be excluded from the blend and a higher-MI LDPE sealant grade used instead. When EB508 is added to coating blends, the melt curtain edge bead is often less stable in high-humidity conditions; edge trim from the coating operation can be recycled into the centre layer at 10–15 wt% without exceeding vinyl acetate concentrations that would reduce the heat seal performance of the final structure.

    Frozen-Fill Mechanical Response of Linear Low-Density Films Modified with EB508

    Cold-chain liners for frozen meat blocks, bulk frozen vegetables, and ice-pack fillers are converted at 80–120 µm total thickness. EB508 is blended at 20–35 wt% into the sealant layer of a three-layer frost-resistant film in which the outer layer is hexene-LLDPE with 1.0 MI. The 18.5 wt% vinyl acetate content shifts the low-temperature flexibility window relative to linear low-density polyethylenes; brittleness temperature is evaluated per ASTM D746-20, and frozen-filled sack drop performance is tested at −25 °C to −40 °C using the actual filled mass. Published data for EB508 in this specific frozen configuration is limited; converter trials usually benchmark against ASTM D1709-22 Method A for dart impact and ASTM D882-18 for tensile elongation at break. The low 0.7 g/10 min MI supports higher molecular orientation that stabilises the frost line at 600–900 mm and BUR 2.2:1. Melt temperature in the sealant extruder is kept at 180–195 °C to avoid acetic acid evolution while maintaining adequate melt homogeneity. Because EVA has lower ambient-temperature modulus than HDPE, EB508 is confined to the inner sealing ply; load-bearing body layers remain LLDPE or HDPE to resist pallet strapping damage.

    In frozen-fill conversion, the surface of the sealant layer must be free of frost and condensation before sealing; interfacial water reduces seal strength more than the EVA phase itself. Converters operating at high drawdown ratios above 3.0:1 report increased film orientation in the machine direction, which reduces transverse tear resistance per ASTM D1922-19. Published data for EB508 in this specific frozen configuration is limited; the standard practice is to run film on the actual packaging line and inspect for seal-area fractures after drop testing at −25 °C. EB508 should not be predried above 60 °C for extended periods, because vinyl acetate comonomers can undergo surface adhesion changes that affect blocking at ambient warehouse storage.

    When Heavy-Duty Dunnage Bags Demand Creep Resistance and Seal Integrity Under Cyclic Compression

    Shipping-container dunnage bags manufactured from multilayer films require creep resistance under cyclic air pressure from 3 to 5 bar. EB508 is used in the seal collar around the polypropylene inflation valve because the 18.5 wt% vinyl acetate concentration permits sealing at 120–130 °C without distorting the valve body. The seal collar contains 25–40 wt% EB508; the outer load-bearing panels are produced from HDPE or polyamide/LLDPE blends. Seal strength per ASTM F88-21 typically reaches 7–10 N/15 mm at 0.5–0.8 s dwell in the valve insertion station. The 0.7 g/10 min MI supports melt strength around the valve insert, but the EVA seal collar alone exhibits inferior creep resistance to HDPE under sustained load at 40 °C; EB508 is therefore confined to the collar and does not replace the body film. On 80 mm extruders running 180–220 kg/h, pressure drop across the screen pack increases by 8–12% compared with LLDPE of 1.0 MI, and a 60/80/100 mesh screen configuration is used to trap EVA microgels.

    Failure analysis from production-scale container dunnage bag lines indicates that valve-area buckling after 200–500 cycles of compression fatigue occurs at the EVA/HDPE interface rather than within the EVA matrix, especially when EB508 loading in the collar exceeds 50 wt%. The failure mode is interfacial stress concentration from differential creep compliance between HDPE and EVA at 40 °C. To reduce this, a tie layer of grafted LLDPE is inserted between the EB508-containing collar and the HDPE body at 5–10 wt% of the total film thickness. Sealability is maintained at 120–130 °C, but the tie layer raises the continuous compressive load limit by reducing interfacial slip. Production trials on 80 mm extruders running 180–220 kg/h should record melt temperature at the die exit every 15 min; drift above 215 °C indicates shear heating from the 0.7 MI resin and warrants screw speed reduction or a change to a lower-compression screw.

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    Certification & Compliance
    More Introduction

    Elevate EB508 EVA Copolymer Resin, 18.5% VA, 0.7 MI, Heavy Duty Bags Grade is a high-molecular-weight ethylene-vinyl acetate copolymer with a nominal vinyl acetate comonomer content of 18.5 wt% and a melt mass-flow rate of 0.7 dg/min when measured at 190°C under 2.16 kg load according to ISO 1133-1:2022 or ASTM D1238. The grade is positioned for thick-gauge industrial sack film where high melt strength, impact toughness, and low heat-seal initiation are required. Vinyl acetate content is verified by Fourier transform infrared spectroscopy using ASTM D5594 or ISO 8985, and density by ASTM D1505 at 23°C typically falls between 0.939 g/cm³ and 0.942 g/cm³. The crystalline melt peak recorded by differential scanning calorimetry under ASTM D3418 is commonly 84–88°C, consistent with substantial disruption of polyethylene crystallinity. The product is synthesized by high-pressure free-radical copolymerization, which introduces long-chain branching and a broad molecular weight distribution; these structural features contribute to strain-hardening melt behaviour in blown-film operation.

    For heavy-duty bags, EB508 may be extruded as a monolayer or as the sealing layer of a coextruded structure. The 18.5 wt% VA content lowers the seal initiation temperature to the 75–85°C range in 150 µm film tested per ASTM F88, while maintaining cold-temperature flexibility to at least -20°C, as inferred from dynamic mechanical analysis of similar VA copolymers. At 0.7 dg/min, EB508 has higher melt viscosity than general-purpose EVA film grades at 1.5–3.0 dg/min; this raises melt strength and bubble stability in large-diameter, thick-gauge lines but reduces screw throughput by roughly 15–30% at fixed torque compared with higher-MI grades. The material is not a low-temperature heat seal resin for thin packaging, nor is it a high-cling film grade; its VA level and additive system are balanced to reduce blocking at heavy-gauge contact while retaining toughness for loaded sack drop and puncture events.

    What Limits the Extrusion Processing Window for EB508 in Heavy-Duty Blown Film?

    The processing window is controlled on one side by thermal deacetylation of vinyl acetate and on the other by melt strength thresholds needed to stabilize a thick-gauge bubble. Deacetylation of EVA begins measurably above 210–240°C under non-oxidative thermogravimetric analysis, releasing acetic acid and causing oxidation, crosslinking, and gel formation. Therefore, melt temperature should be kept below 205°C at the die and below 215°C in the metering zone, except for very short residence times. Barrel temperature profiles on a 30:1 L/D single-screw extruder commonly follow a rising sequence of 150–165–175–185–195–200°C from feed throat to die, with the feed throat cooled to 40–60°C to prevent resin bridging. Screw speed should be selected to keep melt temperature measured by an immersion probe at the adapter below 205°C. Adapter and die set temperatures are typically 175–195°C; die temperatures above 210°C may accelerate surface oxidation of acetate moieties and cause smoky off-gas, die lip buildup, and film surface roughness.

    Viscosity of EB508 at typical blown-film shear rates between 100 s⁻¹ and 1000 s⁻¹ is substantially higher than that of LLDPE or low-VA EVA at equivalent melt index. Capillary rheometry on comparable grades indicates apparent shear viscosity of 800–1500 Pa·s at 190°C, with pronounced shear thinning at higher output. In a grooved-feed extruder, this translates to die pressures of 280–420 bar at outputs of 90–120 kg/h on a 65 mm line. A melt pump is recommended when upstream pressure fluctuations exceed ±5%, because unstable melt flow through the die gap creates thick-thin gauge bands in sacks. The use of a barrier screw with a Maddock-style mixing section improves melting homogeneity; a general-purpose screw without adequate mixing may produce unmolten high-molecular-weight domains visible as gel-like inclusions. Screen packs of 20/40/60/100 mesh or finer are installed to trap degraded particles, with backpressure monitored to avoid exceeding the extruder thrust bearing rating.

    Melt fracture in low-MI EVA can appear as sharkskin at die land shear stresses above approximately 150–200 kPa. When this occurs, die lip temperature is raised in increments of 3–5°C and die land length is maintained at 10–15 times the die gap; a fluoropolymer process aid at the supplier-recommended concentration may also be added. Bubble instability will develop if melt temperature drops below 160°C at the die because melt strength becomes too high and web tension rises. Therefore, the practical lower melt limit for large bubbles is close to 165°C. These two thermal limits create a usable melt temperature range of approximately 165–205°C, which is narrower than that of LDPE-only heavy-duty formulations.

    On a production blown-film line with 65 mm screw diameter, 30:1 L/D, and 2.2–2.4 mm die gap, EB508-type heavy-duty grades are usually operated at blow-up ratio 2.0–2.5, frozen-line height 6–10 die diameters, and die temperature 175–195°C. The die gap is wider than used for LLDPE stretch films to reduce shear rate and die lip oxidation, and also to allow draw-down to thick films without excessive orientation. Film thickness in heavy-duty sacks ranges from 100 µm to 250 µm; below 100 µm, the high VA content and low MI produce surface tack that can impair bubble collapse and layflat, while above 250 µm, cooling rate limits production speed and increases blocking risk. Pre-drying is not required when resin is stored below 60% relative humidity, but if condensate has formed on pellets, drying at 55–65°C for 2–4 h to a residual moisture content below 0.05 wt% is required. Purging after shutdown should use fractional-melt LDPE or a commercial purging compound until melt temperature at the die is below 160°C; leaving EB508 in a hot barrel longer than 30 min may generate acetic acid corrosion on brass or copper-alloy instrumentation if internal pH drops.

    Mechanical Response and Seal Performance in Filled Industrial Sack Films

    For fill-and-drop service, the relevant mechanical properties are dart impact, puncture, tear, and heat-seal integrity. On 150 µm blown film, comparable ethylene-vinyl acetate copolymers with 18–19 wt% VA and 0.6–0.9 dg/min melt index show dart impact values of 700–1200 g per ASTM D1709 Method A, puncture resistance of 55–85 N per ASTM D5748, and normalized Elmendorf tear values that are 20–40% higher in the transverse direction than LLDPE film of equal thickness. Tensile secant modulus at 1% strain is commonly 30–60 MPa per ASTM D638-14, which is lower than LLDPE and high-pressure LDPE film grades. The low modulus contributes to stress distribution around sharp fillers, reducing localized strain at the tip of punctures.

    Seal initiation temperature measured on 150 µm film by ASTM F88 at 0.5 MPa seal pressure and 0.5 s dwell typically begins between 75°C and 85°C. Hot tack force measured by ASTM F1921 Method B remains in the 2.5–4.0 N/25 mm range across sealing temperatures from 90°C to 120°C, which is broader than low-VA EVA and LLDPE sealant grades. This hot tack plateau permits sealing through dusty or filled sack top folds and reduces leaker rates after sack drop. The seal-strength plateau at higher temperature is attributable to moderate VA content: enough to accelerate molecular interdiffusion at the seal interface, but not so high that cohesive failure dominates at elevated temperature. For heavy-duty sack closures, a sealant layer containing EB508 is often converted at heat-seal bar temperatures of 100–135°C, with cooling before load stacking to prevent seal creep.

    Performance parameterMethodEB508 typical observationLow-VA EVA comparison
    Melt flow rateISO 1133-1:20220.7 dg/minLower flow than 2.0 dg/min film grades
    Seal initiation temperatureASTM F8875–85°C15–25°C below 12 wt% VA EVA
    Hot tack plateauASTM F1921 Method B2.5–4.0 N/25 mm at 90–120°CWider than LLDPE sealants
    Dart impact, 150 µmASTM D1709 Method A700–1200 gHigher than LLDPE; lower than 28% VA EVA
    Puncture resistance, 150 µmASTM D574855–85 NImproved over LLDPE of equal thickness
    Secant modulus 1%ASTM D638-1430–60 MPaLower than LLDPE; supports stress redistribution

    Differences from other products in the ethylene-vinyl acetate family follow a composition-property pattern. At lower vinyl acetate content, such as 9–12 wt%, melt temperature rises, crystallinity increases, tensile modulus and yield stress increase, but seal initiation increases by 15–25°C and low-temperature toughness in filled-drop applications decreases. At higher vinyl acetate content, such as 25–28 wt%, film blocking and coefficient of friction increase substantially, molecular stiffness decreases, and extraction of low-molecular-weight amorphous fractions becomes more likely; such grades are normally reserved for cling film, hot-melt adhesive, and high-cling lamination. EB508 is distinguished by its 0.7 dg/min melt index within the heavy-duty bag segment, because most heavy-duty sack formulations use 1.0–2.5 dg/min LLDPE or EVA. The low MI improves melt strength but makes EB508 less suitable for cast film lines or high-speed extruders with torque limits.

    When EB508 Replaces LLDPE or LDPE in Coextruded Heavy-Duty Sack Layers

    In coextruded sack films, EB508 is generally placed in the sealant layer or used as a high-toughness modifier. A typical three-layer configuration uses a skin layer containing EB508 at 20–40% of total film thickness, a core of medium-molecular-weight LLDPE or recycled film scrap, and an outer layer of LLDPE or LDPE for stiffness and printability. When EB508 is dry-blended with LLDPE, recommended blend ratios are 20–40 wt% EB508; below 20 wt%, seal initiation remains closer to the LLDPE base, while above 40 wt%, film stiffness may fall below the requirement for tall filled sacks. The difference in seal behaviour is measurable by ASTM F88: a 30 wt% EB508/LLDPE blend on 120 µm film lowers seal initiation by 10–15°C compared with the LLDPE alone. At 50 wt% and above, the blend’s melt elasticity improves bubble stability, but blocking requires addition of synthetic silica antiblock at 2000–6000 ppm.

    Direct substitution of LDPE with EB508 in a monolayer sack increases heat-seal strength and puncture resistance, but the lower Young’s modulus and higher elongation at break must be assessed against stack compression and creep. In extended load-holding tests, unmodified EB508 thick films can exhibit creep under sustained stress above 5 MPa at room temperature, whereas LDPE may have secant modulus values 2–4 times higher. For heavy-duty construction bags and resin sacks, thickness compensation of 10–20% or blending with LLDPE is used to maintain dimensional stability. The high VA content also increases oxygen permeability relative to LDPE and LLDPE; therefore, EB508 is not selected for oxygen-sensitive fill materials unless the bag includes a barrier core layer such as metallized film or polyamide.

    Regulatory compliance for EB508 is conditional on the additive package and conversion cleanliness. The resin should be accompanied by a REACH registration number under 1907/2006/EC and a RoHS declaration under 2011/65/EU for cadmium, lead, mercury, hexavalent chromium, polybrominated biphenyls, and polybrominated diphenyl ethers. Food-contact suitability for EVA copolymers is referenced in FDA 21 CFR 177.1350; because EB508 may contain antioxidant and processing stabilizers not listed in that citation, food-contact use should be verified for each final package. In storage, EB508 should remain in sealed containers at 5–35°C and below 60% relative humidity. Exposure to strong amines, alkaline residues, or certain transition-metal stearates should be avoided because these species can catalyze deacetylation at elevated melt temperatures, increasing gel formation and diminishing seal strength. The material should not be blended with polypropylene or high-density polyethylene beyond conventional recycling ratios because immiscible domain formation reduces film impact strength and creates delamination in heavy-gauge sacks.

    Compliance areaStandard or regulationTest method conditionStatus for EB508
    Melt flow rateISO 1133-1:2022190°C, 2.16 kg0.7 dg/min nominal
    Vinyl acetate contentASTM D5594 / ISO 8985FTIR pellet/film18.5 wt% nominal
    DensityASTM D150523°C immersion0.940 g/cm³ typical
    DSC melt peakASTM D341810°C/min N₂84–88°C
    EU chemical registrationREACH 1907/2006/ECAnnex II safety data sheetConfirmed by supplier
    Restricted substancesRoHS 2011/65/EUXRF screeningConfirmed by supplier
    Food-contact referenceFDA 21 CFR 177.1350End-use extraction testingConditional on additive package and exposure

    Quality control for EB508 includes pellet size distribution, melt flow rate, density, and vinyl acetate content. The producer’s certificate of analysis should report melt flow rate per ISO 1133-1:2022, density per ASTM D1505, and VA content per ASTM D5594. Gel count testing by film extrusion on a laboratory blower with a 20/40/60 screen pack and visual inspection of 0.5 m² film sections may be used by converters to verify cleanliness. The material’s heavy-duty bag grade designation does not imply a food-contact certification; it indicates targeted rheology and additive content for thick films. Silo or box packaging should be inert plastic or aluminium-lined to avoid metallic contamination; iron debris from conveying systems can catalyze polymer degradation on hot surfaces.

    The product should be removed from production at the end of the run by transitioning to a purge grade; extended hold at processing temperatures above 160°C leads to progressive discoloration, gel contamination, and corrosive off-gas. Filtered granulate and edge-trim regrind may be re-extruded at levels up to 20–30 wt% in heavy-duty sacks, provided molecular homogeneity is confirmed by melt flow measurement and gel count inspection, because repeated heat history degrades VA sites and shrinks the usable heat-seal plateau.