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Application of FDS to under-ventilated enclosure fires with external flaming

机译:FDs在外部火焰下通风外壳火灾中的应用

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摘要

Numerical simulations are conducted to investigate the accuracy of the fire dynamics simulator (FDS 6.0.1) for under-ventilated enclosure fires with external flaming. The accuracy is discussed first in terms of mass balance at the steady-state stage for the enclosure volume. The required fineness of the grid is determined by analyzing the mass balance using two non-dimensional length scales. The first considers the ratio of the ventilation factor to the grid cell size, and the second considers the ratio of the hydraulic diameter of the opening to the grid cell size. When these two length scales are larger than 10, the corresponding mass balance error as obtained from post-processing the output is lower than 4%. The simulation results, including flow through the vertical opening, heat release rate inside the enclosure, gas temperature inside the enclosure, neutral plane height, and external flame height are compared with experimental data and empirical correlations. The air inflow rate through the opening is found to correlate linearly to the ventilation factor as m˙=0.41*A*H^(1/2). For the heat release rate inside the enclosure, the predictions follow the empirical correlation Qin=1131*A*H^(1/2). This is directly related to the air inflow rate and incomplete combustion with the inflowing oxygen. Time-averaged gas temperatures inside the enclosure are under-predicted by maximum 13.1% compared with experimental data at the corner near the opening. Neutral plane height values at the opening, determined from the velocity profile of the vent flow, show good agreement with empirical estimations (Zf=0.4⋅H). Two methods are employed to determine the external flame height, namely a temperature based method and a volume heat release rate based method. The trends are captured correctly.
机译:进行了数值模拟,以研究火灾动态模拟器(FDS 6.0.1)对通风不足且外部起火的机舱火灾的准确性。首先,针对外壳体积在稳态阶段的质量平衡来讨论精度。通过使用两个无量纲的长度标尺分析质量平衡来确定所需的网格细度。第一个考虑通风系数与栅格单元尺寸的比率,第二个考虑开口的水力直径与栅格单元尺寸的比率。当这两个长度刻度大于10时,从后处理输出获得的相应质量平衡误差小于4%。仿真结果,包括通过垂直开口的流量,外壳内部的放热率,外壳内部的气体温度,中性平面高度和外部火焰高度,均与实验数据和经验相关性进行了比较。发现通过开口的空气流入速率与通风因子线性相关,为m˙= 0.41 * A * H ^(1/2)。对于外壳内部的放热率,预测遵循经验关系式Qin = 1131 * A * H ^(1/2)。这直接关系到空气的流入速度和氧气的不完全燃烧。与开口附近拐角处的实验数据相比,封闭室内的时间平均气体温度最高预测低了13.1%。由排气流量的速度曲线确定的开口处的中性面高度值与经验估计值非常吻合(Zf =0.4⋅H)。采用两种方法确定外部火焰高度,即基于温度的方法和基于体积放热率的方法。趋势被正确捕获。

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