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Computing Radiative Heat Transfer Occurring in a Zone Fire Model

机译:计算区域火灾模型中发生的辐射传热

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References(17) Cited-By(2) Radiation, convection and conduction are the three mechanisms which a zone fire model must consider when calculating the heat transfer between fires, wall surfaces and room gases. Radiation dominates the other two modes of heat transfer in rooms where there are fires or hot smoke layers. The computational requirements of a radiation model can also easily dominate the work required to calculate other physical sub-models in a zone fire model.This paper presents algorithms for efficiently computing the radiative heat exchange between four wall surfaces, several fires and two interior gases. A two-wall and a ten-wall radiation model are also discussed. The structure of this radiation model is exploited to show that only a few configuration factors need to be calculated directly (two rather than 16 for the four-wall model and eight rather than 100 for the ten-wall model) and matrices needed to solve for the net radiative flux striking each surface are shown, after the appropriate transformation is taken, to be diagonally dominant. Iterative methods may then be used to solve the linear equations more efficiently than direct methods such as Gaussian elimination.
机译:参考文献(17)引用依据(2)辐射,对流和传导是区域火灾模型在计算火灾,墙壁表面和室内气体之间的热传递时必须考虑的三个机制。在有火或热烟层的房间中,辐射主导着其他两种传热方式。辐射模型的计算要求也可以轻松地控制区域火灾模型中计算其他物理子模型所需的工作。本文提出了有效计算四个墙面,几次火灾和两种内部气体之间的辐射热交换的算法。还讨论了两层和十层辐射模型。利用该辐射模型的结构表明,仅需要直接计算几个配置因子(四壁模型为两个而不是16,十壁模型为八个而不是100),并且需要求解矩阵经过适当的转换后,显示出撞击每个表面的净辐射通量是对角线主导的。与直接方法(例如高斯消元)相比,迭代方法可用于更有效地求解线性方程。

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