| HS Code | 617892 |
| Vinyl Acetate Content | 18% |
| Melt Flow Rate | 8 g/10 min (190°C/2.16 kg) |
| Density | 0.936 g/cm³ |
| Melting Point Dsc | 87°C |
| Vicat Softening Point | 52°C |
| Brittleness Temperature | -86°C |
| Tensile Strength At Break | 12.8 MPa |
| Elongation At Break | 800% |
| Flexural Modulus | 40.7 MPa |
| Hardness | 90 Shore A |
As an accredited ELVAX 450A Ethylene Vinyl Acetate Copolymer factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | ELVAX 450A Ethylene Vinyl Acetate Copolymer is supplied as free-flowing pellets in 25 kg polyethylene-lined bags. |
| Container Loading (20′ FCL) | 20' FCL loading of ELVAX 450A: use clean, dry containers; palletize bags securely; protect from moisture and shifting during transit. |
| Shipping | ELVAX 450A (EVA copolymer) ships as non-hazardous plastic pellets in sealed bags or bulk containers. Protect from moisture and excessive heat during transit. Store in a cool, dry area. Ensure clean, dry conveyance to prevent contamination. No special transport classification required. |
| Storage | Store ELVAX 450A 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 strong oxidizers. Maintain moderate temperatures and low humidity. Use proper personal protective equipment when handling, and follow manufacturer’s shelf-life recommendations. |
| Shelf Life | Shelf life is typically 2 years from shipment date when stored unopened in original containers below 30°C. |
ELVAX 450A is an ethylene-vinyl acetate copolymer with a nominal vinyl acetate content of 25% by weight, a melt index of 8 g/10 min when measured under ISO 1133-1:2022 at 190 °C/2.16 kg, and a nominal density of 0.95 g/cm³ per ISO 1183-1. The six downstream scenarios selected here are limited to application sectors where mid-range vinyl acetate EVA grades with melt indices in the 6–10 g/10 min range are commercially specified: hot-melt packaging adhesives, wax-based barrier coatings, polyolefin masterbatch carriers, polymer-modified bitumen, closed-cell footwear foam, and coextruded heat-seal layers. Where published data specific to ELVAX 450A is not available for a given formulation or process, the text explicitly identifies the information as typical or condition-specific rather than generating unsupported performance claims.
Regulatory boundary for food packaging adhesives is set by 21 CFR 175.105 for indirect food contact; formulations containing ELVAX 450A satisfy that reference only when the adhesive is separated from food by a functional barrier or when the intended use meets the conditions of the cited section. EU Regulation 10/2011 and REACH Annex XVII restrictions may also apply to the finished adhesive or converted package. The addition ratio in high-speed case and carton sealing formulations typically places ELVAX 450A at 20–35 wt% of the finished hot melt, with 35–50 wt% hydrogenated hydrocarbon or rosin ester tackifier, 20–30 wt% paraffin or Fischer-Tropsch wax, and 0.3–1.0 phr hindered phenolic antioxidant. The selection of tackifier type alters adhesion to recycled corrugated fiber; rosin ester tackifiers improve specific adhesion to printed clay-coated board, while hydrogenated hydrocarbon tackifiers reduce odor and edge-stick in stack storage at temperatures above 35 °C. Melt viscosity at 180 °C is used as the primary inline control parameter because it correlates with nozzle continuity, penetration into porous cold-set corrugated board, and open time on high-speed lines.
Production on jacketed sigma-blade or anchor agitated melters at 150–170 °C is standard. ELVAX 450A pellets are introduced into the pre-melted wax and tackifier phase under nitrogen to limit oxidative chain scission and color drift. The molten adhesive is transferred by heated gear pumps through 100–200 mesh screen packs to slot-die, wheel, or spiral spray applicators. Viscosity should remain between 800–2,500 mPa·s at 180 °C; below 500 mPa·s, strike-through and bond show-through on single-face corrugated stock increases, while above 2,500 mPa·s, discontinuous adhesive transfer on converting lines running above 25 m/min is observed. Thermal degradation above 200 °C releases acetic acid from the vinyl acetate comonomer, producing a sharp acid odor and corroding carbon-steel kettle surfaces; jacketed melters should be purged with low-melt-index polyethylene between campaigns. Amine-functional tackifiers or basic fillers should be avoided because they accelerate deacetylation and may cause crosslinking, char formation, and nozzle blockage within 4–8 h of continuous heating.
| ELVAX 450A content (wt%) | Tackifier resin content (wt%) | Wax content (wt%) | Indicative viscosity at 180 °C (mPa·s) | Typical converting application |
|---|---|---|---|---|
| 15 | 50 | 35 | 400–800 | Low-speed tray lamination and wrap-around blank closure |
| 25 | 45 | 30 | 900–1,600 | High-speed case sealing and carton erection |
| 35 | 40 | 25 | 1,800–2,500 | Perfect binding and difficult recycled board with high post-consumer fiber content |
Finished product types include single-wall and double-wall corrugated cases, tray- and hood-style cartons, and perfect-bound book spines. Bond performance is evaluated by fiber-tear testing and T-peel according to ASTM D1876; low-temperature bond at −10 °C may require tackifier modification or plasticizer adjustment because EVA crystallinity increases at lower service temperatures. Production-line failure modes include char accumulation in heated hose dead zones, viscosity drift from prolonged residence above 190 °C, and phase separation of paraffin-based waxes when cooling is too rapid. Open time and set time are controlled by wax crystallinity and EVA content; at 20–35 wt% ELVAX 450A, typical set time may fall from 0.5–1.5 s depending on board porosity and application temperature, but published data for the exact tackifier-wax system is required for line qualification.
Wax-based coating for corrugated produce boxes and molded pulp packaging uses ELVAX 450A at 2–15 wt% to modify paraffin or microcrystalline wax without shifting the application temperature into the range where corrugated board scorches or warps. Regulatory compliance for paper and paperboard components in contact with aqueous and fatty foods falls under 21 CFR 176.170, and for direct food wrappers the finished coated article is assessed under EU 1935/2004 with migration testing conducted according to EU 10/2011. The addition level below 5 wt% primarily raises melt viscosity and improves scuff resistance on stacked produce trays; from 5–15 wt%, the EVA phase forms a dispersed network that increases low-temperature flexural strength and reduces wax brittleness at 0–5 °C. This is especially relevant for corrugated boxes stored under refrigerated conditions or exposed to moisture condensation on dock levelers.
Production uses steam- or oil-heated wax kettles at 110–140 °C followed by a rotor-stator mill or high-shear disperser operating at 1,500–3,000 rpm to reduce EVA domain size below the visible haze threshold. The homogeneous melt is fed to a curtain coater, transfer roll, or blade coater; viscosity at 125 °C typically rises from 30 mPa·s for unmodified paraffin to 150–600 mPa·s depending on EVA content. Coating weight is controlled at 8–25 g/m² on corrugated board to balance moisture resistance against tray fold cracking. Needle penetration decreases from 20–30 dmm for unmodified paraffin to 8–15 dmm after modification, measured per ASTM D1321. The process must exclude water ingress because steam bubbles cause crater defects in curtain coating and pinholes in barrier films; wax storage tanks should be heated under a dry nitrogen sweep and maintained above 100 °C to prevent condensation. Terminal product types include wax-coated corrugated produce boxes, molded pulp containers, and laminated paperboard tray overwrap. With high post-consumer recycled fiber, the EVA-modified wax reduces surface dusting and maintains score-line flexibility. In direct food contact, vinyl acetate monomer migration is controlled by EU 10/2011 specific migration limits; published data for ELVAX 450A in this exact coating configuration is limited, so laboratory migration testing on the finished coated board is mandatory before commercial use.
ELVAX 450A functions as a carrier resin for color and additive masterbatches because the 25 wt% vinyl acetate content lowers crystallite size and disrupts polyolefin lamellae, allowing higher tinting loads while maintaining strand pelletization and later letdown in polyethylene film. Compliance is governed by REACH registration for polymer and additive components, 2011/65/EU RoHS where the final article is electrical or electronic equipment, and ISO 11469:2016 for material identification marking. In food-contact packaging masterbatches, the finished plastic article must satisfy EU 10/2011 overall migration and specific migration requirements; the carrier itself is not the compliance endpoint. Formulation addition ratio ranges from 20–40 wt% ELVAX 450A carrier with 40–60 wt% pigment or mineral filler and 5–15 wt% polyethylene wax or fatty acid processing aid. With carbon black having oil absorption values above 100 ml/100 g, carrier content toward 40 wt% is typically required to avoid agglomerates and downstream screen-pack pressure spikes above 80 bar.
Production uses a co-rotating twin-screw extruder with L/D ratios from 40:1 to 52:1, screw speeds 400–800 rpm, and barrel temperatures profiled from 120–180 °C. The EVA carrier is introduced by gravimetric feeder into the main feed throat, while pigments and mineral fillers are side-fed downstream to avoid feed zone blockage and to minimize heat history. Pelletization is performed with water-ring or underwater strand systems at die temperatures 150–170 °C; pellet shape is controlled because ELVAX 450A softens above 55 °C and may agglomerate in screw conveyors or vacuum receivers. In blown film extrusion, letdown ratios of 2–5 wt% masterbatch into LDPE or LLDPE produce films with visible specks below 20 μm particle size when distributive mixing is adequate. Downstream process failure modes include screw fouling when residual peroxides from previous crosslink-sensitive batches remain in the line; purging with low-melt-index polyethylene before EVA carrier campaigns is required. Terminal product types include colored polyethylene blown film, cast film, and injection molded packaging. Published data for specific pigment surface treatments in ELVAX 450A is limited; dispersive mixing performance should be confirmed by pressure-rise tests through a 150 μm screen pack.
In polymer-modified bitumen, a mid-range vinyl acetate content of 25 wt% in ELVAX 450A shifts the modified binder from purely plastomeric stiffening toward a more flexible dispersed phase, but storage stability remains the critical qualification threshold. The addition ratio used in waterproofing and paving trials is 3–7 wt% EVA based on bitumen weight, with typical penetration grade 50/70 or 70/100 base binder. Compliance is anchored to EN 14023 for polymer-modified bitumen, with softening point measured by ASTM D36 or EN 1427, penetration by ASTM D5 or EN 1426, and storage stability by EN 13399. Below 3 wt%, the modification effect is insufficient to offset bitumen aging embrittlement; above 7 wt%, phase separation may produce top-layer polymer enrichment under static heated storage and can create pumping viscosity beyond 3,000 mPa·s at 135 °C.
Production requires a high-shear mill or colloid mill at 160–190 °C with rotor tip speeds of 18–25 m/s for 30–60 min. The EVA pellets are added to dehydrated bitumen at 120–140 °C under slow agitation, then sheared at the final temperature to reach dispersed domains below 10 μm. Viscosity at 135 °C is monitored by rotating spindle per EN 13302; a stable modified binder typically remains below 3,000 mPa·s for pumping and spraying. Storage stability in a vertical tube at 180 °C for 72 h should show a softening point difference below 5 °C between top and bottom sections. Because ELVAX 450A contains 25% VA, it disperses more readily than low-VA EVA, but its lower crystalline melting point may reduce rutting resistance compared with 9–18 wt% VA grades. Published data for ELVAX 450A in highly aromatic bitumen is limited; laboratory PG grading and multiple stress creep recovery testing are required before road binder certification. Terminal product types include waterproofing membranes for below-grade structures, bridge deck covering, and polymer-modified asphalt sheets. Finished membranes are often laminated with polyester or fiberglass reinforcement. In paving, EVA-modified bitumen is primarily used in medium-traffic areas and repair mixes; it is not a substitute for SBS in high-stress porous asphalt or heavily trafficked highway surfaces.
ELVAX 450A is compounded into closed-cell EVA foam for footwear where azodicarbonamide decomposition is timed against crosslink density and melt viscosity. Compliance for footwear components entering the EU is under REACH Annex XVII, with restrictions on specific SVHCs in foams and plasticizers; finished articles may be tested under ISO 20344 for footwear physical properties and ISO 845 for apparent density of cellular plastics. The formulation addition ratio places ELVAX 450A at 60–80 phr as the base polymer, with 1.5–3.5 phr azodicarbonamide blowing agent, 0.5–1.2 phr dicumyl peroxide crosslinker, 1–3 phr zinc oxide activator, and 10–30 phr calcium carbonate filler. Higher filler loadings reduce cost and increase hardness but at the expense of cell-wall extensibility and flex-crack resistance; when calcium carbonate exceeds 30 phr, tear strength measured by ASTM D624 may decline sharply after repeated flexing.
Production begins in an internal mixer at 100–120 °C to disperse fillers without decomposing the blowing agent, followed by two-roll milling and sheet calendering to a controlled thickness. Compression molding is conducted in hydraulic presses at 170–180 °C for 5–10 min with mold clamping pressure between 100–300 kg/cm²; the mold is then cooled while pressure is maintained to prevent shrink-back and cell collapse. The decomposition exotherm of azodicarbonamide overlaps the peroxide cure exotherm; if the blowing agent decomposes before a minimum crosslink density is reached, cell rupture and surface collapse occur. The melt flow index of ELVAX 450A at 8 g/10 min provides adequate mold filling for undersole contours but requires adequate crosslinker at 0.7–1.0 phr to stabilize cell walls during expansion. Terminal product types include midsoles, insoles, and full-sheet foam for athletic, casual, and orthotic footwear. Density after expansion is commonly 0.15–0.30 g/cm³, with hardness in the 45–70 Shore A range before final assembly. Batch-to-batch variance observed on production lines arises from azodicarbonamide particle size distribution and atmospheric moisture; pre-drying of hygroscopic fillers at 80–100 °C for 2–4 h is required when relative humidity exceeds 60%.
ELVAX 450A is used in heat seal layers of coextruded and extrusion-laminated flexible packaging because the vinyl acetate comonomer lowers seal initiation temperature and broadens hot-tack strength. Food-contact compliance is established by 21 CFR 177.1350 for ethylene-vinyl acetate copolymers, provided the finished article meets extractables limitations and the EVA conforms to density and melt index specifications; EU Regulation 10/2011 applies for food-contact plastics. Formulation addition ratio in a sealant layer is 10–30 wt% ELVAX 450A blended with LDPE or lower-VA EVA; higher EVA content to 70–100% is used for high-seal-strength lidding films where seal-through-contamination performance is required on particulate product powders or liquid residues. Production is by multi-layer cast coextrusion or tandem extrusion lamination with melt temperatures between 215–250 °C. The sealant layer is fed by a single-screw extruder with L/D 24:1–30:1, a barrier screw, and melt filtration to 250 μm. Sealing performance is measured on a gradient heat seal instrument per ASTM F88 and hot tack per ASTM F1921. At 25 wt% VA, a seal initiation temperature below 100 °C is typical, but the exact value depends on the coextruded substrate and sealant thickness. Operational boundaries include purging at shutdown with LDPE to prevent stagnant EVA degradation; acetic acid generated above 250 °C corrodes chrome-plated screw and die surfaces. Sealant films produced from this process supply lidding films for polyethylene terephthalate trays, medical peel pouches, aseptic paperboard packages, and frozen food films. In medical packaging, ISO 11607-1 seal strength and integrity testing is required; EVA sealant layers are selected when low sealing temperature protects temperature-sensitive device contents.
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| Grade | Vinyl acetate content (wt%) | Melt flow rate (g/10 min) | Processing implication |
|---|---|---|---|
| ELVAX 450A | 18 | 8 | Medium melt viscosity suitable for hot-melt spray and bead deposition |
| ELVAX 460 | 18 | 2.5 | Higher melt viscosity for extrusion and profile applications |
| ELVAX 470 | 18 | 0.8 | High melt viscosity for high-shear compounding and crosslinked systems |
| ELVAX 350 | 25 | 19 | Low melt viscosity and higher polar-substrate adhesion |
| ELVAX 660 | 12 | 2.5 | Higher modulus, reduced tack, and greater polyolefin compatibility |