Dynamic mechanical analysis and thermal properties of LLDPE/EVA/modified silica nanocomposites |
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Affiliation: | 1. Iran Polymer and Petrochemical Institute, P.O. Box 14965/115, Tehran, Iran;2. Leibniz Institute of Polymer Research, D-01067 Dresden, Germany;1. Nexans Research Center, 29 rue du Pré Gaudry, 69353 Lyon Cedex 07, France;2. Nexans Research Center, Sieboldstraße 10, 90411 Nürnberg, Germany;1. Physical Chemistry I, University of Bayreuth, 95440, Bayreuth, Germany;2. JCNS-1/ICS-1, Forschungszentrum Jülich, 52428, Jülich, Germany;1. University of Cincinnati, Cincinnati, OH, 45242-0012, United States;2. Nonstructural Materials Division, University of Dayton Research Institute, Dayton, OH, 45469, United States;3. Advanced Photon Source, Argonne National Laboratory, Argonne, IL, 60439, United States;4. Bridgestone Americas Center for Research and Technology, Akron, OH, 44301, United States |
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Abstract: | The effect of hexamethylene disilazane modified nanosilica on the dynamic mechanical analysis (DMA), crystallization, melting and thermal degradation behavior of linear low density polyethylene/ethylene vinyl acetate copolymer (LLDPE/EVA) blends are explored.Detailed DMA analysis is carried out in order to investigate the reinforcing behavior of nanosilica adopting Kerner–Nielson model. Oxidative degradation and thermal stabilities of samples are also studied by the thermogravimetery analysis. The high content of nanosilica particles results in significant shift of degradation temperature to higher temperatures in the oxygen atmosphere. This behavior might be attributed to the barrier properties of nanoparticles against oxygen and gaseous degradation products. However, incorporation of modified nanosilica into LLDPE/EVA blend is decreased the onset of degradation temperature of the unfilled system. In nitrogen atmosphere, no changes are observed in the thermal degradation range and only a reduction is documented in the onset of degradation temperature. Considering important role of onset of degradation temperature, activation energy of starting of degradation temperature is calculated utilizing Kissinger-Ozawa model in both oxygen and nitrogen atmospheres. Results showed that activation energy of degradation reaction is decreased by ∼ 20 kJ/mol. This decrease is owing to the release of modifiers from the nanoparticles. |
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Keywords: | A. Polymer–matrix composites (PMCs) B. Mechanical properties B. High-temperature properties B. Thermal properties D. Thermal analysis |
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