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Effects of scale ratio and aspect ratio in predicting the longitudinal smoke-temperature distribution during a fire in a road tunnel with vertical shafts

机译:比例和长宽比对竖井公路隧道火灾时纵向烟气温度分布的影响

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A series of fire experiments using 1:10 and 1:20 scale model tunnels with a number of vertical shafts was conducted to investigate the effects of the scale ratio and the aspect ratio of the model tunnels on the longitudinal smoke-temperature distribution and the performance of a natural ventilation system. These model tunnels had different aspect ratios of the tunnel cross section: the aspect ratios of the 1:10 and 1:20 scale model tunnels were unity and two, respectively. Furthermore, a new model for predicting the longitudinal smoke-temperature distribution during the one-dimensional smoke spreading stage was developed. Then, the temperature distribution predicted by the model was compared with that obtained by the fire experiments to evaluate the model. In this model, the heat transfer from the smoke to the tunnel walls was considered, but the thermal radiation exchange between the smoke and surroundings was not considered, because the temperature difference between the smoke and surroundings was small and the influence of the radiation could be neglected. The key findings obtained were: (1) Two forms of the smoke exhausted from shafts (plug-holing and boundary layer separation) can be classified by the Richardson number, and the critical Richardson number 1.4 (for transitioning from one form to other) was confirmed in this study as proposed by Ji et al (Int. J. Heat Mass Transf., 55, 6032–6041). (2) The efficiency of exhausting heat of the smoke could be estimated from the tunnel geometry, shaft height, and Richardson number. It was shown that the value of the efficiency depends on the aspect ratio of the model tunnel. (3) The developed model was able to predict the longitudinal smoke-temperature distribution under the conditions with and without shafts regardless of the scale ratio of the model tunnel and the aspect ratio of the tunnel cross section.
机译:进行了一系列使用多个垂直竖井的1:10和1:20比例模型隧道进行的火灾实验,以研究比例隧道和纵横比对纵向烟气温度分布和性能的影响。自然通风系统。这些模型隧道的横截面纵横比不同:1:10和1:20比例模型隧道的纵横比分别为1和2。此外,开发了一种用于预测一维烟气扩散阶段纵向烟气温度分布的新模型。然后,将模型预测的温度分布与火灾实验获得的温度分布进行比较,以评估模型。在该模型中,考虑了从烟气到隧道壁的热传递,但没有考虑烟气与周围环境之间的热辐射交换,因为烟气与周围环境之间的温差很小,并且辐射的影响可能很小。被忽略。获得的主要发现是:(1)可以通过理查森数对竖井排出的两种形式的烟尘(塞孔和边界层分离)进行分类,而临界理查森数1.4(用于从一种形式过渡到另一种形式)为在这项研究中得到了Ji等人(Int。J. Heat Mass Transf。,55,6032–6041)的建议。 (2)排烟的效率可以通过隧道的几何形状,竖井高度和理查森数来估算。结果表明,效率值取决于模型隧道的长宽比。 (3)无论模型隧道的比例比和隧道横截面的纵横比如何,开发的模型都能够预测在有竖井和无竖井条件下的纵向烟气温度分布。

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