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首页> 外文期刊>Fire Safety Journal >Determination of pyrolysis and combustion properties of poly(vinylidene fluoride) using comprehensive modeling: Relating heat transfer to the intumescent char's porous structure
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Determination of pyrolysis and combustion properties of poly(vinylidene fluoride) using comprehensive modeling: Relating heat transfer to the intumescent char's porous structure

机译:综合造型测定聚(偏二氟乙烯氟化物)热解和燃烧性能:将热传递与膨胀型炭的多孔结构相关

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摘要

A systematic methodology, utilizing improved experimental and numerical techniques, is used to analyze the heat transfer within an intumescent char. Thermogravimetric analysis, differential scanning calorimetry and microscale combustion calorimetry were conducted on 4-7 mg samples to determine the kinetics and thermodynamics of thermal decomposition and heats of complete combustion of gaseous pyrolyzates. Subsequently, 0.07 m diameter disk-shaped samples were pyrolyzed in the Controlled Atmosphere Pyrolysis Apparatus II to characterize the thermal transport within the decomposing solid and evolving char layer. ThermaKin2Ds was employed to analyze all the experimental data, using inverse analysis techniques, and to perform predictions. Poly(vinylidene fluoride), a widely used intumescent polymer, was investigated in this study. The model parameterization process revealed notable instabilities in the sample surface emissivity during pyrolysis. However, the resulting model can predict the experimental gasification mass loss rate with a mean error of 29%. Additionally, the physical structure of the porous char was analyzed to enable the formulation of quantitative relationships between relevant thermal transport parameters and the intumescent char's structure. A prominent linear correlation was revealed during this exercise: the product of density and thermal conductivity was directly proportional to an increasing char porosity derived from image analysis.
机译:利用改进的实验和数值技术利用改进的实验和数值技术来分析膨胀型焦炭内的热传递系统方法。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,以确定热分解的动力学和热力学和气溶液完全燃烧的热力学。随后,在受控气氛热解装置II中热解液0.07M直径的盘状样品,以表征分解固体和进化的炭层内的热传输。使用逆分析技术和执行预测,使用Thermakin2DS分析所有实验数据。本研究研究了聚(偏二氟乙烯),广泛使用的膨胀聚合物。模型参数化过程显示出在热解期间样品表面发射率的显着不稳定性。然而,所得模型可以预测实验气化质量损失率,平均误差为29%。另外,分析多孔炭的物理结构以使得能够在相关的热传输参数和膨胀型炭结构之间制定定量关系。在该练习期间揭示了突出的线性相关性:密度和导热率的产物与来自图像分析的增加的Char孔隙率成正比。

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