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Modelling plastic heating and melting in a semi-batch pyrolysis reactor

机译:模拟塑料加热和半分批热解反应器中的熔化

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摘要

Plastic pyrolysis is a solution for the dilemma of enormous plastic waste accumulation and an alternative source of energy, which converts plastic wastes into a wide range of fuels and chemicals by thermal decomposition. The concept is widely validated and applied at lab-scale in terms of characterisation of the process and its by-products. On the other hand, numerical modelling and optimizing of the process for the sake of developing and efficient implementation at the industrial scale are seldom reported in literature. And since there exist different phenomena involved during this process (starting from feeding with raw material until the recovery of products), the aim of this work is to model and validate heating and melting phenomena of plastics, using finite element method, inside a semi-batch reactor as a first step preceding the cracking phenomenon. First, sensible heat transfer within the reactor, empty or loaded with solid and liquid materials, is modelled by coupling the energy and the momentum equations, where the results are validated experimentally at different heating rates. Moreover, a modified apparent heat capacity method (AHCM) is used to model the melting phenomena of plastics, which revealed good capability. As a result, the model is validated through temperature profiles measured at different points on the semi-batch reactor and by addressing energy balance on the whole experiment. Whereas, the average relative error between experimental and simulated results, at different heating rates didn't exceed 8%. Finally, the validated model has paved the way for modelling the whole pyrolysis process of plastics.
机译:塑料的热解是用于巨大塑料废物积累的困境和能量的替代源,其塑料废弃物转换成通过热分解广泛的燃料和化学品的溶液。这个概念被广泛验证,并在此过程中及其副产品的特性而言,在实验室规模应用。在另一方面,数值模拟和用于显影的缘故而有效地执行在工业规模的方法的优化在文献中很少报道。而且,由于存在着在此过程中所涉及的不同的现象(从与原料进料,直到产品的回收开始),这项工作的目的是模型和验证加热和熔化的塑料的现象,采用有限元法,内部半间歇式反应器作为开裂现象之前的第一步骤。第一,反应器,空的或载有固体和液体材料内显热传递,由能量和动量方程,其中该结果被在不同的升温速率实验验证耦合建模。此外,经修饰的表观热容量方法(AHCM)用于塑料,其揭示良好能力的熔解现象进行建模。其结果是,该模型是通过在在半间歇式反应器的不同点测得的温度分布和通过在整个实验寻址能量平衡验证。然而,实验和模拟结果,在不同的升温速率之间的平均相对误差不超过8%。最后,经过验证的模型铺平了模拟塑料的整个热解过程的方式。

著录项

  • 来源
    《Applied Energy》 |2021年第1期|116375.1-116375.14|共14页
  • 作者单位

    GEPEA UMR 6144 Energy Syst & Environm Dept IMT Atlantique 04 Rue Alfred Kastler CS 20722 F-44307 Nantes 3 France|Lebanese Int Univ Beirut Lebanon;

    GEPEA UMR 6144 Energy Syst & Environm Dept IMT Atlantique 04 Rue Alfred Kastler CS 20722 F-44307 Nantes 3 France;

    Lebanese Int Univ Beirut Lebanon;

    Lebanese Int Univ Beirut Lebanon;

    GEPEA UMR 6144 Energy Syst & Environm Dept IMT Atlantique 04 Rue Alfred Kastler CS 20722 F-44307 Nantes 3 France;

    GEPEA UMR 6144 Energy Syst & Environm Dept IMT Atlantique 04 Rue Alfred Kastler CS 20722 F-44307 Nantes 3 France;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Polypropylene; Simulation; Finite elements; Melting; AHCM method;

    机译:聚丙烯;仿真;有限元;熔化;AHCM方法;

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