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Pyrolysis model development for a polymeric material containing multiple flame retardants: Relationship between heat release rate and material composition

机译:含有多阻燃剂的聚合物材料的热解模型开发:热释放率和材料组合物之间的关系

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This work details an approach to the development of a model of polymeric material fire behavior and its relation to flame retardant content. This approach employs a new controlled atmosphere pyrolysis apparatus to measure mass loss rate, back surface temperature, and sample shape profile evolution for 0.07-m-diameter disk-shaped samples exposed to well-defined radiant heating. Interpretation of these measurements using a thermal decomposition reaction mechanism, derived from thermal analysis experiments, and a numerical pyrolysis model, ThermaKin, yields properties that define heat and mass transport in the pyrolyzing solids. In the current study, this approach was extended to the analysis of flame retardant materials and applied to a set of materials comprised of glass-fiber-reinforced polybutylene terephthalate blended with aluminum diethyl phosphinate and melamine polyphosphate. Additionally, this work found evidence of so-called "wick" effect through which the molten polymer, when blended with glass fiber, was observed to be transported from regions of higher concentration to regions of lower concentration. Incorporation of the wick effect into the pyrolysis model was required to correctly capture the pyrolysis dynamics. The resulting pyrolysis model was found to be capable of predicting mass loss rate data as a function of material composition and external radiative heat fluxes ranging from 30 to 60 kW m(-2) with an average error of 15%. Using heats of complete combustion of gaseous decomposition products determined in an earlier work, idealized cone calorimetry simulations were conducted to show that, when the gas-phase combustion inhibition effect is excluded, aluminum diethyl phosphinate has a relatively minor impact on the heat release rate, while the impact of melamine polyphosphate is significant. This work demonstrates, for the first time, that it is possible to establish a quantitative relation between the burning rate and material composition and thus, enables intelligent design of flame retardant materials tailored for specific applications. (C) 2019 The Combustion Institute. Published by Elsevier Inc. All rights reserved.
机译:这项工作详述了一种探讨了聚合物材料火灾行为模型及其与阻燃含量的关系。该方法采用新的受控气氛热解装置来测量质量损失率,后表面温度和样品形状轮廓展开,用于暴露于明确定义的辐射加热的0.07 m型直径的盘状样品。使用从热分析实验中衍生的热分解反应机制解释这些测量,以及数值热解模型,热蛋白,产生定义热解固体中的热量和质量传输的性质。在目前的研究中,这种方法扩展到阻燃材料的分析,并应用于由玻璃纤维增​​强的聚对苯二甲酸丁二醇酯与铝氨基铝和三聚氰胺多磷酸二磷酸二磷酸酯组成的一组材料。另外,这项工作发现了所谓的“芯”作用的证据,通过该熔融聚合物在与玻璃纤维混合时,被观察到从更高浓度的区域输送到较低浓度的区域。需要将芯效应掺入热解模型中,以正确捕获热解动力学。发现所得的热解模型能够以材料组合物的函数和范围为30至60kW m(-2)的外辐射热通量来预测质量损失率数据,其平均误差为15%。利用在较早的工作中确定的气态分解产物的完全燃烧的热量,进行了理想的锥形量热法模拟,表明,当排除燃气相燃烧抑制效果时,磷酸铝对热释放率的影响相对轻微,虽然三聚氰胺多磷酸盐的影响是显着的。这项工作首次表现出来,可以在燃烧速率和材料组合物之间建立定量关系,因此可以实现针对特定应用量身定制的阻燃材料的智能设计。 (c)2019燃烧研究所。由elsevier Inc.出版的所有权利保留。

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