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Energy Utilization of Building Insulation Waste Expanded Polystyrene: Pyrolysis Kinetic Estimation by a New Comprehensive Method

机译:建筑保温废物扩展聚苯乙烯的能源利用:通过新的综合方法热解动力学估算

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摘要

Expanded polystyrene (EPS) has excellent thermal insulation properties and is widely applied in building energy conservation. However, these thermal insulation materials have caused numerous fires because of flammability. Pyrolysis is necessary to support combustion, and more attention should be paid to the pyrolysis characteristics of EPS. Moreover, pyrolysis is considered to be an effective method for recycling solid waste. Pyrolysis kinetics of EPS were analyzed by thermogravimetric experiments, both in nitrogen and air atmospheres. A new method was proposed to couple the Flynn–Wall–Ozawa model-free method and the model-fitting method called the Coats–Redfern as well as the particle swarm optimization (PSO) global algorithm to establish reaction mechanisms and their corresponding kinetic parameters. It was found that the pyrolysis temperature of EPS was concentrated at 525–800 K. The activation energy of EPS in nitrogen was about 163 kJ/mol, which was higher than that in air (109.63 kJ/mol). Furthermore, coupled with Coats–Redfern method, reaction functions and should be responsible for nitrogen and air reactions, respectively. The PSO algorithm was applied to compute detailed pyrolysis kinetic parameters. Kinetic parameters could be used in further large-scale fire simulation and provide guidance for reactor design.
机译:扩增的聚苯乙烯(EPS)具有优异的隔热性能,广泛应用于建筑节能。然而,由于易燃性,这些绝热材料导致了许多火灾。热解是支持燃烧所必需的,并且应该更多地关注EPS的热解特征。此外,热解被认为是用于再循环固体废物的有效方法。通过热重分析在氮气和空气气氛中分析了EPS的热解动力学。提出了一种新方法,以耦合Flynn-Wall-ozawa模型方法和称为涂层 - Refern的模型拟合方法以及粒子群优化(PSO)全局算法,建立反应机制及其相应的动力学参数。发现EPS的热解温度为525-800K。氮气中的EPS的活化能约为163kJ / mol,其高于空气(109.63kJ / mol)。此外,与涂层 - 铁丝法,反应功能相结合,并应对氮气和空气反应负责。 PSO算法用于计算详细的热解动力学参数。动力学参数可用于进一步大规模的火灾模拟,并为反应堆设计提供指导。

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