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Thermo-catalytic decomposition of polystyrene waste: Comparative analysis using different kinetic models

机译:聚苯乙烯废料的热催化分解:使用不同动力学模型的比较分析

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Due to a huge increase in polymer production, a tremendous increase in municipal solid waste is observed. Every year the existing landfills for disposal of waste polymers decrease and the effective recycling techniques for waste polymers are getting more and more important. In this work pyrolysis of waste polystyrene was performed in the presence of a laboratory synthesized copper oxide. The samples were pyrolyzed at different heating rates that is, 5 degrees Cmin(-1), 10 degrees Cmin(-1), 15 degrees Cmin(-1) and 20 degrees Cmin(-1) in a thermogravimetric analyzer in inert atmosphere using nitrogen. Thermogravimetric data were interpreted using various model fitting (Coats-Redfern) and model free methods (Ozawa-Flynn-Wall, Kissinger-Akahira-Sunose and Friedman). Thermodynamic parameters for the reaction were also determined. The activation energy calculated applying Coats-Redfern, Ozawa-Flynn-Wall, Kissinger-Akahira-Sunose and Friedman models were found in the ranges 105-148.48 kJmol(-1), 99.41-140.52 kJmol(-1), 103.67-149.15 kJmol(-1) and 99.93-141.25 kJmol(-1), respectively. The lowest activation energy for polystyrene degradation in the presence of copper oxide indicates the suitability of catalyst for the decomposition reaction to take place at lower temperature. Moreover, the obtained kinetics and thermodynamic parameters would be very helpful in determining the reaction mechanism of the solid waste in a real system.
机译:由于聚合物产量的大幅增加,观察到城市固体废物的大量增加。每年,现有的用于处置废聚合物的垃圾填埋场都在减少,有效的废聚合物回收技术变得越来越重要。在这项工作中,废聚苯乙烯的热解是在实验室合成的氧化铜存在下进行的。使用惰性气体在热重分析仪中以5摄氏度(-1),10摄氏度(-1),15摄氏度(-1)和20摄氏度(-1)的不同加热速率将样品热解。氮。使用各种模型拟合(Coats-Redfern)和无模型方法(Ozawa-Flynn-Wall,Kissinger-Akahira-Sunose和Friedman)解释热重数据。还确定了反应的热力学参数。发现使用Coats-Redfern,Ozawa-Flynn-Wall,Kissinger-Akahira-Sunose和Friedman模型计算的活化能范围为105-148.48 kJmol(-1),99.41-140.52 kJmol(-1),103.67-149.15 kJmol (-1)和99.93-141.25 kJmol(-1)。在氧化铜存在下聚苯乙烯降解的最低活化能表明催化剂适合在较低温度下进行分解反应。而且,所获得的动力学和热力学参数将对确定固体废物在真实系统中的反应机理非常有帮助。

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