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ELEVATE EM518AA is an ethylene vinyl acetate copolymer supplied in pellet form with a nominal vinyl acetate comonomer content of 18 wt% and a melt mass-flow rate of 8 g/10 min at 190 °C/2.16 kg determined according to ASTM D1238. The grade is positioned for thermoplastic fabrication processes including injection moulding, single-screw and twin-screw extrusion, calendering, and batch compounding. The polymer architecture consists of a random ethylene-vinyl acetate chain in which the 18 wt% VA content reduces crystallinity relative to low-density polyethylene, thereby lowering stiffness, broadening the softening range, and increasing polarity at polar substrates. This combination distinguishes EM518AA from low-VA grades that retain more polyethylene-like rigidity and from high-VA grades that approach elastomeric behaviour with higher surface tack and lower thermal stability.
Typical Property Data and Test Methodology
The following values are class-typical ranges for an 18 wt% VA, 8 g/10 min EVA copolymer. The manufacturer’s certificate of analysis controls lot-specific conformance; the table does not define specification limits.
| Property | Class-Typical Range | Test Method |
| Vinyl acetate comonomer content | 18 wt% | Manufacturer internal method |
| Melt mass-flow rate | 8 g/10 min | ASTM D1238 at 190 °C/2.16 kg |
| Density | 0.938 g/cm³ | ASTM D1505 |
| Tensile strength at break | 17–19 MPa | ASTM D638 |
| Elongation at break | 700–800 % | ASTM D638 |
| Hardness | 87–89 Shore A | ASTM D2240 |
| Vicat softening point | 58–62 °C | ASTM D1525 |
| Melting peak temperature | 84–86 °C | ASTM D3418 |
Because the 18 wt% vinyl acetate disrupts crystallite packing, EM518AA displays a broader melting endotherm and lower room-temperature flexural modulus than an 8 g/10 min low-density polyethylene. The residual crystallinity of the ethylene segments provides dimensional stability above ambient temperature, while the amorphous vinyl acetate domains contribute impact absorption, filler wetting, and compatibility with polar additives. The melt rheology is shear thinning; apparent viscosity decreases with increasing shear rate in capillary tests conducted according to ASTM D3835. No externally published complete viscosity curve at processing shear rates is included in the standard technical data sheet, but the 8 g/10 min melt flow value indicates moderate molecular weight and intermediate flow behaviour among EVA grades. In internal mixer operations, the product typically fluxes between 90 °C and 110 °C, and discharge from a roll mill is generally controlled at roll surface temperatures of 70–90 °C to avoid sticking. These temperatures are class-typical and must be confirmed with actual mechanical work input.
What Distinguishes EM518AA from Other EVA Copolymer Grades?
EVA grades within the same product family differ primarily in two independent variables: vinyl acetate content and melt mass-flow rate. In comparison with a 12 wt% VA grade of equivalent melt index, EM518AA exhibits lower crystallinity, lower Shore hardness, higher impact energy absorption at low temperature, and improved adhesion to polar substrates. In comparison with a 28 wt% VA grade of equivalent melt index, EM518AA retains higher room-temperature stiffness, lower surface tack, higher softening point, and better dimensional recovery after deformation. The melt mass-flow rate of 8 g/10 min defines an intermediate processing viscosity; a 3 g/10 min grade of the same VA content would provide higher melt strength and greater extrusion drawdown resistance, whereas a 25 g/10 min grade would permit lower injection pressures but would exhibit lower cohesive strength in adhesive and film applications. These differences are not additive; changing VA content and melt index simultaneously shifts mechanical, thermal, and rheological properties in non-linear directions that must be evaluated against the intended fabrication method.
Compared with maleic anhydride-modified EVA or ethylene-acrylic acid copolymers, EM518AA does not possess intentionally incorporated pendant carboxylic acid functionality. Adhesion to aluminium or polar engineering thermoplastics is therefore lower than acid-modified systems; however, the absence of reactive acid groups improves shelf stability and reduces corrosion potential on steel processing equipment when materials are dried appropriately.
In crosslinked closed-cell foam manufactured by compression moulding, ELEVATE EM518AA is typically combined with azodicarbonamide blowing agent, dicumyl peroxide crosslinking agent, zinc oxide activator, and fillers such as precipitated calcium carbonate. Mixing is carried out in an internal mixer or twin-screw extruder with 32:1 to 44:1 L/D ratio to disperse additives while maintaining a melt discharge temperature below 110 °C. This temperature constraint is critical because dicumyl peroxide has a one-hour half-life temperature near 135 °C; exceeding this threshold during compounding initiates premature crosslinking or scorch. After pelletising or calendering, the compound is expanded at 150–170 °C in a press or continuous oven where the decomposition rate of azodicarbonamide and the crosslinking rate of dicumyl peroxide must be balanced. If crosslinking occurs too slowly relative to gas evolution, cell walls rupture and the foam collapses; if crosslinking occurs too rapidly, expansion is suppressed and density remains high. The 18 wt% VA content contributes enough amorphous phase to accommodate filler and oil loadings without losing green strength during sheet formation. Pre-drying at 60 °C for 2–4 h is applied when storage relative humidity exceeds 60 % to reduce surface defects associated with moisture. Published data for this specific configuration is limited, and production trials are required to establish the exact peroxide and blowing agent ratios for a target foam density.
For injection-moulded foam footwear components, the same class of formulation is processed with screw plastication and mould filling at low to medium back pressure. Mould surface temperatures of 35–50 °C are used to control skin formation. The low melt viscosity of EM518AA permits short fill times but reduces melt strength during bubble growth; this limitation is addressed by raising crosslinking agent level or blending with a lower melt index EVA grade.
As a masterbatch carrier or impact modifier, EM518AA is used at addition levels typically below 20 wt% in polyolefin and engineering resin compounds. The polar vinyl acetate segments improve wetting of fillers such as calcium carbonate, alumina trihydrate, and magnesium hydroxide in flame-retardant polyolefin formulations. In these systems, the 8 g/10 min melt index enables rapid dilution into the host resin during twin-screw compounding at 180–200 °C. However, the product is not a coupling agent; interfacial adhesion to glass fibre or mineral surfaces is lower than maleic anhydride-grafted polyolefins. Flame-retardant compounds containing high loadings of metal hydroxides may require process stabilizers to prevent viscosity rise associated with acetate decomposition above 210 °C. Published data for this specific configuration is limited.
Melt Temperature Limits Govern Barrel Zone Profiling
In single-screw extrusion, a general-purpose polyolefin screw with 24:1 to 32:1 L/D and a compression ratio of 2.5:1 to 3.5:1 is suitable for EM518AA. Barrel temperatures are typically profiled from 150 °C in the feed zone to 190 °C at the adapter, with a maximum melt temperature of 210 °C. Operation above 220 °C can thermally degrade the vinyl acetate segments, liberating acetic acid and causing darkening or metallic corrosion in downstream equipment. The 8 g/10 min melt index allows moderate head pressures and permits extrusion through conventional screen packs and breaker plates. In injection moulding, the melt is processed at 180–200 °C with mould temperatures of 20–40 °C for rapid solidification; higher mould temperatures may increase cycle time and can promote surface tack. Hot runner channels should be streamlined and free of dead spots, and purging with a thermally stable polyolefin after shutdown is recommended. Repeated extrusion history can be monitored by melt mass-flow rate retention measured according to ASTM D1238; a significant upward shift indicates molecular weight reduction due to chain scission. Moisture above 0.05 wt% can cause surface splay; drying at 60 °C for 2–4 h is recommended when exposure to relative humidity above 60 % has occurred.
To Determine Conformity, Current Supplier Certification Is Reviewed
Regulatory evaluation requires review of the latest supplier certificate of analysis, safety data sheet, and product regulatory statement. EVA copolymers intended for food-contact applications may be evaluated under 21 CFR 177.1350, which lists ethylene-vinyl acetate copolymers permitted for use in contact with food under specified extractive and compositional conditions. The base resin does not carry a blanket approval for food-contact use; the converter must conduct end-use migration testing appropriate to the food type and contact conditions. For European Union operations, the grade is subject to REACH Regulation EC 1907/2006. The manufacturer’s registration covers the substance as registered; any use not described by the supplier should be confirmed. The product is not formulated with intentionally added cadmium, lead, mercury, or hexavalent chromium and is typically suitable for projects referencing RoHS Directive 2011/65/EU, but lot-level verification is required because raw-material trace contamination can occur. The following references summarize the main compliance contacts.
| Reference | Scope | Operational Boundary |
| 21 CFR 177.1350 | Ethylene-vinyl acetate copolymer food-contact use | End-use migration testing required; not a blanket approval |
| REACH EC 1907/2006 | European chemical registration and communication | Only registered uses are covered |
| RoHS 2011/65/EU | Restricted substance screening | Lot-level verification required |
| ASTM D1238 | Melt mass-flow rate quality control | Not a safety or regulatory standard |
When EM518AA Is Specified in Hot-Melt Adhesive Systems
In hot-melt adhesive compounding, ELEVATE EM518AA functions as the polymeric backbone in formulations containing tackifying resins, paraffin or microcrystalline wax, and antioxidant. The 18 wt% vinyl acetate content provides polarity for adhesion to paper, cardboard, wood, and coated surfaces, while the 8 g/10 min melt index yields a lower application viscosity than high-molecular-weight EVA grades. Typical hot-melt formulations based on medium-VA EVA include 25–40 wt% polymer, 30–50 wt% tackifier, and 5–30 wt% wax; these ranges are class-typical and must be rebalanced for the specific substrate and application temperature. Mixing is performed in heated vertical or horizontal mixers under nitrogen blanket at 150–180 °C, with high shear avoided after wax addition to limit temperature overshoot. Thermal degradation in the hot-melt is monitored by viscosity, ring-and-ball softening point according to ASTM E28, and Gardner color. The product does not inherently supply long-term heat stabilisation; an antioxidant system is required for sustained processing above 160 °C. Compared with a higher-VA EVA grade, EM518AA provides better cohesive strength and heat resistance after set-up but lower adhesion to highly polar or plasticized substrates. Compared with a lower-VA EVA grade, it provides improved surface wetting and low-temperature flexibility but can require more stabilizer due to the higher amorphous content. Application through slot-die, bead, or spiral-spray systems at 170–190 °C is possible; nozzle build-up may occur in dead zones due to degradation.