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Maximum gas temperature rise beneath the ceiling in a portals-sealed tunnel fire

机译:在门式密封隧道火灾中,最高温度升高到天花板以下

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Sealing tunnel portals is an important approach to control tunnel fires. The maximum gas temperature rise beneath the ceiling was studied under the effects of both fire location and size in a portals-sealed tunnel model. Previous studies showed that the maximum gas temperature rise decreases when fire source is away from the tunnel center, companied with increasing flame inclination angle. In this study, based on dimensional analysis, an empirical model was developed to predict the maximum gas temperature rise beneath the ceiling in a portals-sealed tunnel. It is known that this model can provide reasonably good predictions to different fire scenarios considering fire location and size. A 3/4-power relationship was shown between maximum gas temperature rise and dimensionless fire size, while the normalized maximum gas temperature rise follows an attenuation law ofe-φwith the fire location. The focus of the study is more of an academic nature than practical. This is an academic study with pioneering character, which in future may be solved in a more practical way than presented here. However, the outcomes from this study can provide a better understanding for the fire behavior in the portals-sealed tunnel fires and credible prediction about maximum gas temperature under related fire scenarios.
机译:密封隧道入口是控制隧道火灾的重要方法。在门密封隧道模型中,在火灾位置和大小的影响下,研究了天花板下方的最高气体温度升高。先前的研究表明,当火源远离隧道中心时,最大气体温度升高会降低,同时火焰倾角也会增加。在这项研究中,基于尺寸分析,建立了一个经验模型来预测门式密封隧道内天花板以下的最大气体温度升高。众所周知,考虑到火灾的位置和大小,该模型可以为不同的火灾场景提供合理的良好预测。在最大气体温度升高与无因次燃烧尺寸之间显示了3/4幂关系,而归一化的最大气体温度升高遵循着着火位置的e-φ衰减定律。研究的重点更多是学术性质而不是实践性质。这是一项具有开创性的学术研究,将来可能会以比此处介绍的更为实际的方式解决。但是,这项研究的结果可以更好地理解门式隧道火灾中的火灾行为,并可以可靠地预测相关火灾情况下的最高气体温度。

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