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Comparative analysis of pyrolysis and combustion of bisphenol A polycarbonate and poly(ether ether ketone) using two-dimensional modeling: A relation between thermal transport and the physical structure of the intumescent char

机译:双酚和聚(醚酮)使用二维建模的热解和燃烧的比较分析:热传输与膨胀型炭的物理结构之间的关系

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摘要

A quantitative understanding of the thermal transport within a growing intumescent char layer remains largely unsolved. The development of improved techniques to analyze charring and intumescent materials is necessary to investigate the physics of heat transfer within the char. To aid in this endeavor, a systematic methodology to parameterize comprehensive pyrolysis models for charring and intumescent materials is presented. Thermogravimetric analysis, differential scanning calorimetry and microscale combustion calorimetry were conducted on 4-7 mg samples to analyze the kinetics and thermodynamics of thermal decomposition and determine heats of complete combustion of gaseous pyrolyzates. A multistep reaction mechanism, consisting of sequential first-order reactions, was constructed to capture the physical transformations and chemical reactions observed in the milligram-scale experiments. 0.07 m diameter disk-shaped samples were gasified in the Controlled Atmosphere Pyrolysis Apparatus II to characterize the thermal transport within the condensed phase material and evolving char layer. ThermaKin2Ds was employed to interpret the experimental data using inverse analysis techniques. Bisphenol A polycarbonate and poly(ether ether ketone), widely used intumescent materials, were analyzed within this study. The resulting two-dimensional models of bisphenol A polycarbonate and poly(ether ether ketone) were capable of predicting the experimental gasification mass loss rates with a mean error of 17.8% and 16.9%, respectively. An analysis of the char pore structure was also conducted from which quantitative relationships were subsequently developed between relevant thermal transport quantities and physical descriptors of the char's physical structure. Two prominent linear correlations were discovered: the char's effective thermal conductivity increased as a function of increasing volume-weighted mean pore diameter and the product of density and thermal conductivity increased with an increasing char porosity based on image analysis. Finally, a brief sensitivity analysis of the polycarbonate and poly(ether ether ketone) burning rates was conducted to determine which key material properties were responsible for the observed differences in flammability. (C) 2019 The Combustion Institute. Published by Elsevier Inc. All rights reserved.
机译:对生长型膨胀型焦炭层内的热传输的定量理解在很大程度上是未解决的。有必要开发改进的分析炭化和膨胀材料的技术,以研究Char内的热传递物理。为了帮助实现这一努力,提出了一种用于参数化用于炭化和膨胀材料的综合热解模型的系统方法。在4-7毫克样品上进行了热重分析,差示扫描量热法和微观燃烧量热法,分析了热分解的动力学和热力学,并确定气态热解的完全燃烧热量。构建由序贯一阶反应组成的多步骤反应机制,以捕获在毫克规模实验中观察到的物理转化和化学反应。在受控气氛热解装置II中,0.07M直径的盘状样品在受控气氛热解装置II中进行气化,以表征冷凝相材料内的热传输和进化的炭层。使用Thermakin2DS使用逆分析技术来解释实验数据。在本研究中分析了双酚和聚碳酸酯和聚(醚醚酮),广泛使用的膨胀材料。由此得到的双酚和聚碳酸酯和聚(醚醚酮)的二维模型能够预测实验气化质量损失率,分别具有17.8%和16.9%的平均误差。还进行了对Char孔结构的分析,随后在Char物理结构的相关热传输量和物理描述符之间进行定量关系。发现了两个突出的线性相关性:Char的有效导热率随着体积加权平均孔径的增加而增加,并且密度和导热率的产物随着基于图像分析而增加的Char孔隙率而增加。最后,进行了对聚碳酸酯和聚(醚醚酮)燃烧速率的简要敏感性分析,以确定哪种关键材料性质对观察到的易燃性差异负责。 (c)2019燃烧研究所。由elsevier Inc.出版的所有权利保留。

著录项

  • 来源
    《Combustion and Flame》 |2020年第2期|469-485|共17页
  • 作者单位

    Univ Maryland Dept Fire Protect Engn 4356 Stadium Dr College Pk MD 20742 USA|Exponent Inc 17000 Sci Dr Suite 200 Bowie MD 20715 USA;

    Univ Maryland Dept Fire Protect Engn 4356 Stadium Dr College Pk MD 20742 USA|PolyOne Corp 33587 Walker Rd Avon Lake OH 44012 USA;

    Univ Maryland Dept Fire Protect Engn 4356 Stadium Dr College Pk MD 20742 USA;

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

    Material flammability; Pyrolysis modeling; Thermal transport; Charring; Intumescence; ThermaKin;

    机译:材料易燃性;热解模拟;热运输;炭化;吹动;热敏;

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