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首页> 外文期刊>Journal of Materials Science >Analytical solution for multi-component pyrolysis simulations of thermal protection materials
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Analytical solution for multi-component pyrolysis simulations of thermal protection materials

机译:热保护材料多组分热解模拟分析解决方案

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This paper provides the analytical solution to a one-parameter Sestak-Berggren kinetic model for the thermoanalytical study of pyrolysis reactions involving multiple independent parallel reactions. Such multiple independent parallel reactions are widely used, for instance, in the modeling of the pyrolysis of thermal protection materials used in heatshields for spacecraft during the atmospheric entry phase. Solving inverse problems to infer parameters of the kinetic model through optimization techniques or Bayesian inference methods for uncertainty quantification may require a large number of evaluations of the response and its sensitivities (derivatives with respect to parameters). Moreover, in the case of kinetic equations, the Arrhenius parameters can exhibit strong dependence that can require further model evaluations for an accurate parameter calibration. The interest of this analytical solution is to reduce computation cost while having high accuracy to perform parameter calibration from experiments and sensitivity analysis. We propose to use exponential-integral functions to express the solution of the temperature integral, and we derive the analytical solution and its sensitivities for the parallel reaction model both for constant temperature (isothermal) and for constant heating rate conditions. The solution is validated on a six-equation model using parameters inferred in a previous work from the experimental data of the pyrolysis of a phenolic-impregnated carbon ablator material, and we compare the computational cost and accuracy of the implemented analytical solution with a numerical solution. Our results show that the use of such analytical solution with an accurate computation of the exponential-integral function significantly reduces the computational cost compared to the numerical solution.
机译:本文提供了一个单参数Sestak-Berggren动力学模型的解析解,用于多个独立平行反应的热解反应的热分析研究。例如,这种多个独立的平行反应被广泛应用于大气进入阶段航天器隔热罩中使用的热防护材料的热解建模中。通过优化技术或用于不确定性量化的贝叶斯推理方法来求解逆问题以推断动力学模型的参数,可能需要对响应及其灵敏度(与参数有关的导数)进行大量评估。此外,在动力学方程的情况下,阿累尼乌斯参数可能表现出强烈的依赖性,这可能需要进一步的模型评估来进行精确的参数校准。该解析解的目的是在降低计算成本的同时,通过实验和灵敏度分析实现高精度的参数校准。我们建议使用指数积分函数来表示温度积分的解,并推导了恒温(等温)和恒升温速率条件下平行反应模型的解析解及其灵敏度。该解决方案在六方程模型上进行了验证,使用了先前工作中从酚醛浸渍碳烧蚀材料的热解实验数据推断出的参数,我们将实现的解析解的计算成本和精度与数值解进行了比较。我们的结果表明,与数值解相比,使用这种解析解并精确计算指数积分函数可以显著降低计算成本。

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