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Numerical investigation on the maximum ceiling temperature and longitudinal decay in a sealing tunnel fire

机译:密封隧道火灾中最高天花板温度和纵向衰减的数值研究

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摘要

Sealing the tunnel entrance is one of tactic for railway tunnel firefighting. In order to understand the effect of tunnel entrance sealing ratio on fire behavior, Computational Fluid Dynamics (CFD) is used to simulate tunnel fire with different heat release rates and sealing ratios varied from 0% to 100%. Both the maximum temperature and the temperature distributions along the tunnel ceiling were calculated by the empirical model and compared with previous experimental data. Results show that the ceiling temperature increases with sealing ratio due to the heat accumulation inside the tunnel when the heat release rate is relatively small. Moreover, the longitudinal ceiling temperature decreases with the increase of the tunnel entrance sealing ratio at initial stage and then tends to stability due to less oxygen supply when the heat release rate is relatively large. The maximum temperature along the tunnel ceiling decays exponentially. The correlations determining the maximum temperature and temperature decay beneath the tunnel ceiling are proposed to modify the current model taking the tunnel entrance sealing ratio into account. The predictions agree well with the experimental and measured data by the modified equations of this paper.
机译:密封隧道入口是铁路隧道消防的策略之一。为了了解隧道入口密封率对火灾行为的影响,使用计算流体力学(CFD)来模拟具有不同放热率且密封率从0%到100%不等的隧道火灾。最高温度和沿隧道顶的温度分布都是通过经验模型计算的,并与先前的实验数据进行了比较。结果表明,当放热率相对较小时,由于隧道内部的热量积聚,天花板温度随密封比的增加而升高。此外,纵向顶棚温度在初始阶段随隧道入口密封率的增加而降低,然后在放热率相对较高时,由于供氧量减少而趋于稳定。沿隧道顶棚的最高温度呈指数衰减。提出了确定最大温度和隧道顶下温度衰减的相关性,以在考虑隧道入口密封率的情况下修改当前模型。通过本文的修正方程,预测结果与实验和测量数据吻合良好。

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