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A comparison of subcycling algorithms for bridging disparities in temporal scale between the fire and solid domains

机译:用于弥合火域和固体域之间时间尺度差异的子循环算法的比较

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This paper explores two subcycling algorithms for exchanging surface flux data over disparate time scales between a computational fluid dynamics fire simulation and a conduction heat transfer model. The study specifically aims to evaluate the adequacy of a traditional time-sampled algorithm in comparison to a proposed time-averaged algorithm. A numerical study is carried out on a steel beam exposed to a heptane pool fire. The subcycling algorithms are assessed based on accuracy and the rate of convergence. The results show that the time-averaged algorithm offers greater accuracy and converges more rapidly than the time-sampled algorithm due to its ability to provide an energy-equivalent representation of the fire boundary conditions. The improved convergence rate provided by the time-averaged algorithm allows the time step in the conduction heat transfer analysis to be relaxed significantly. Reducing the step size in the heat transfer model directly corresponds to significant time savings, which is of great importance in the analysis of large-scale systems.
机译:本文探讨了两个子循环算法,用于在计算流体动力学火力模拟和传导传热模型之间的不同时间尺度上交换表面通量数据。该研究专门旨在评估与建议的时间平均算法相比,传统时间采样算法的适当性。对暴露于庚烷池火的钢梁进行了数值研究。子循环算法是基于准确性和收敛速度进行评估的。结果表明,时间平均算法比时间采样算法具有更高的准确性,并且收敛速度更快,这是由于其能够提供火边界条件的能量等效表示。时间平均算法提供的提高的收敛速度使传导传热分析中的时间步长显着放宽。在传热模型中减小步长直接对应于节省大量时间,这在分析大型系统中非常重要。

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