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A simple correlation for predicting the rise time of fire-induced smoke flow in a tunnel with longitudinal ventilation

机译:一种简单的相关系数,用于预测纵向通风隧道中火灾引起的烟流上升时间

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摘要

The rise time of the smoke flow fronts is an important parameter for fire detection. However, very limited literatures, if not none, have been available to report the predictive correlation or data for the rise time of fire-induced smoke flow in a longitudinally ventilated tunnel. In this study, theoretical analyses were conducted to deduce a simple mathematical correlation considering the effect of longitudinal crosswind disturbance. Computational fluid dynamics (CFD) with large eddy simulation (LES) method was performed to simulate the rising smoke flow with various heat release rates, source-ceiling heights, and wind velocities. The results show that the rise time of smoke flow in the presence of longitudinal crosswind was much larger than that in the absence of longitudinal crosswind, which may be attributed to the enhanced air entrainment that decelerated the rising smoke flow. The numerical results then served as the validation data for the proposed correlation, which confirmed that the smoke flow rise time varied as the - 1/2 power of the convective heat release rate, 1/2 power of the ambient wind velocity, and 4/3 power of the height above the fire source. The proposed correlation was found to be capable of predicting the rise time of smoke flow in both windy and windless environments. The findings of this paper contribute to an improved understanding of rising smoke propagation in the tunnel under windy condition. It would also be beneficial to the design of fire detection system for the longitudinally ventilated tunnels.
机译:烟流前沿的上升时间是火灾探测的重要参数。但是,只有很少的文献(如果没有的话)可以报告纵向通风隧道中火灾引起的烟流上升时间的预测相关性或数据。在这项研究中,进行了理论分析以得出考虑纵向侧风扰动影响的简单数学关联。进行了具有大涡模拟(LES)方法的计算流体动力学(CFD),以模拟具有各种放热率,源顶高度和风速的上升烟流。结果表明,在存在纵向侧风的情况下,烟气的上升时间要比在没有纵向侧风的情况下的烟气上升时间大得多,这可能归因于增强的空气夹带使上升的烟气流量减速。然后,数值结果用作所提出相关性的验证数据,该数据确认烟气上升时间随对流放热速率的-1/2幂,环境风速的1/2幂和4 /火源上方高度的3倍。发现所提出的相关性能够预测在有风和无风环境中烟流的上升时间。本文的发现有助于更好地理解在大风条件下隧道中浓烟的传播。这对于纵向通风隧道的火灾探测系统的设计也将是有益的。

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