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Evaluating effects of applying different kinetic models to pyrolysis modeling of fiberglass-reinforced polymer composites

机译:在玻璃纤维增​​强聚合物复合材料的热解模型中应用不同动力学模型的效果评估

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摘要

This research evaluates the effects of applying different kinetic models (KMs), developed based on thermal analysis using thermogravimetric analysis data, when used in typical 1D pyrolysis models of fiberglass-reinforced polymer (FRP) composites. The effect of different KMs is isolated from the FRP heating by conducting pyrolysis modeling based on measured temperature gradients. Mass loss rate simulations from this pyrolysis modeling with various KMs show changes in the simulations due to applying different KM approaches are minimal in general. Pyrolysis simulations with the most complex KM are conducted at several heat flux levels. Mass loss rate comparison shows there is good overlap between simulations and the experimental data at low incident heat fluxes. Comparison shows there is poor overlap at high incident heat fluxes. These results indicate that increasing complexity of KMs to be used in pyrolysis modeling is unnecessary for these FRP samples and that the basic assumption of considering thermal decomposition of each computational cell in comprehensive pyrolysis modeling as equivalent to that in a thermogravimetric analysis experiment becomes inapplicable at depth and higher heating rates.
机译:这项研究评估了在玻璃纤维增​​强的聚合物(FRP)复合材料的典型一维热解模型中使用基于热重分析数据的热分析而开发的不同动力学模型(KMs)的效果。通过基于测得的温度梯度进行热解建模,可以将不同KM的影响与FRP加热隔离开来。这种热解模型具有各种KM的质量损失率模拟显示,由于采用了不同的KM方法,模拟中的变化通常很小。在几个热通量水平下,使用最复杂的KM进行热解模拟。质量损失率比较表明,在低入射热通量下,模拟与实验数据之间存在良好的重叠。比较表明,在高入射热通量下重叠率很低。这些结果表明,对于这些FRP样品而言,用于热解建模的KM的复杂性增加是不必要的,并且在综合热解建模中将每个计算单元的热分解视为与热重分析实验等效的基本假设已不再适用。和更高的加热速率。

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