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A computational study on effects of fire location on smoke movement in a road tunnel

机译:火灾位置对公路隧道烟气运动影响的计算研究

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In this work, a numerical model of tunnel fire is developed and aimed to investigate the influence of cross-sectional fire locations on critical velocity and smoke flow characteristic. It is shown that the critical velocity for a fire next to the wall is obviously higher than that for a fire in the middle or on the left/right lane. The ratio is estimated to be 1.12. The predictions of critical velocity from 'small-fire' models show a good agreement with that for a fire in the middle or on the left/right lane from CFD. The tunnel height at the fire location is proposed to be instead of the hydraulic tunnel height in the 'big-fire' model of Wu and Bakar for a fire next to the wall. The smoke moves backward in a tongue like form as the ventilation velocity is lower than the critical velocity. The back-layering length of a fire in the middle is shown to be approximate twice than that on the left/right lane under the same ventilation velocity, although they share the same critical velocity. Whereas a relatively short back-layering length for a fire next to the wall under the velocity of 2.6 and 2.7 m/s. In addition, a snaky high-temperature profile on the top wall at the initial downstream is observed for a fire on the left lane and next to the wall, and finally a steady and layered smoke flow. The likely cause of this phenomenon is subsequently explained in this study. (C) 2015 Elsevier Ltd. All rights reserved.
机译:在这项工作中,建立了隧道火灾的数值模型,旨在研究断面火灾位置对临界速度和烟流特性的影响。结果表明,墙旁火的临界速度明显高于中间或左/右车道的火的临界速度。该比率估计为1.12。 “小火”模型对临界速度的预测与CFD中火或左右车道的火势具有很好的一致性。在吴和巴卡尔的“大火”模型中,对于靠近墙的火灾,建议将火灾地点的隧道高度替换为液压隧道高度。当通风速度低于临界速度时,烟雾以舌状向后移动。在相同的通风速度下,尽管中间火的共享临界速度相同,但其在火中的后层长度大约是左右车道的两倍。而在2.6和2.7 m / s的速度下,靠近墙的火灾的背层长度相对较短。此外,在最初下游的顶壁上观察到一个弯曲的高温廓线,在左侧车道和壁附近起火,最终形成稳定且分层的烟流。随后在本研究中解释了这种现象的可能原因。 (C)2015 Elsevier Ltd.保留所有权利。

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