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Characterization of Thermo-Physical Properties of EVA/ATH: Application to Gasification Experiments and Pyrolysis Modeling. | LitMetric

Characterization of Thermo-Physical Properties of EVA/ATH: Application to Gasification Experiments and Pyrolysis Modeling.

Materials (Basel)

Unité Matériaux et Transformations (UMET)-CNRS UMR 8207-Group Reaction and Resistance to Fire (R2Fire), École Nationale Supérieure de Chimie de Lille, University of Lille, Avenue Mendeleiev, CS 90108, 59652 Villeneuve d'Ascq Cedex, France.

Published: November 2015

AI Article Synopsis

  • The pyrolysis of solid polymeric materials, particularly flame-retarded ones, involves complex interactions including chemical reactions and heat transfer, necessitating the characterization of properties driving these processes.
  • Protocols were developed to measure the thermal conductivity and heat capacity of an ethylene-vinyl acetate (EVA) copolymer with aluminum tri-hydroxide (ATH), revealing that thermal conductivity decreases with temperature prior to decomposition and that the ceramic residue has low conductivity.
  • The study also analyzed the material's optical properties and heat capacity of decomposition gases, using these characteristics to inform a pyrolysis model that accurately predicts gasification experiment outcomes, confirming the effectiveness of the property characterization.

Article Abstract

The pyrolysis of solid polymeric materials is a complex process that involves both chemical and physical phenomena such as phase transitions, chemical reactions, heat transfer, and mass transport of gaseous components. For modeling purposes, it is important to characterize and to quantify the properties driving those phenomena, especially in the case of flame-retarded materials. In this study, protocols have been developed to characterize the thermal conductivity and the heat capacity of an ethylene-vinyl acetate copolymer (EVA) flame retarded with aluminum tri-hydroxide (ATH). These properties were measured for the various species identified across the decomposition of the material. Namely, the thermal conductivity was found to decrease as a function of temperature before decomposition whereas the ceramic residue obtained after the decomposition at the steady state exhibits a thermal conductivity as low as 0.2 W/m/K. The heat capacity of the material was also investigated using both isothermal modulated Differential Scanning Calorimetry (DSC) and the standard method (ASTM E1269). It was shown that the final residue exhibits a similar behavior to alumina, which is consistent with the decomposition pathway of EVA/ATH. Besides, the two experimental approaches give similar results over the whole range of temperatures. Moreover, the optical properties before decomposition and the heat capacity of the decomposition gases were also analyzed. Those properties were then used as input data for a pyrolysis model in order to predict gasification experiments. Mass losses of gasification experiments were well predicted, thus validating the characterization of the thermo-physical properties of the material.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC5458891PMC
http://dx.doi.org/10.3390/ma8115428DOI Listing

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