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Experimental and numerical study of low frequency oscillatory behaviour of a large-scale hydrocarbon pool fire in a mechanically ventilated compartment

机译:机械通风室内大型烃池火低频振荡行为的实验和数值研究

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The contribution presents an experimental and numerical study of the oscillatory behaviour of a pool fire in a confined and mechanically ventilated enclosure. The fire safety issue concerns the loss of dynamic confinement of the enclosure due to large pressure variations and therefore the possible release of toxic products outside the compartment. The experimental analysis is based on large fire tests showing a periodic low frequency oscillatory behaviour of the burning rate. The frequency is 0.005-0.007 Hz (period of 150-200 s) with amplitude of about twice the mean level of the burning rate. A parametric analysis is performed to identify the most influential parameters. This oscillatory phenomenon is explained as a coupling process between the burning rate, the room pressure, the ventilation flowrate, the oxygen concentration and then a feedback effect on the burning rate. The phenomenon occurs for under ventilated conditions for which the burning region moves within the room leading to the displacement of the flame. Numerical simulations with the fire field model ISIS is performed to check the ability of a standard CFD modelling. to reproduce the flame oscillatory behaviour and to give perspective issues for numerical developments. The average values of fuel mass loss rate, compartment pressure, ventilation flow rate, oxygen concentrations and gas temperatures are well predicted. The oscillatory behaviour of the fuel mass loss rate is also obtained with a dominant low frequency although the amplitude of the fluctuations is underestimated due to a poor simulation of the flame displacement inside the compartment. The simulations points out the key effect of the pyrolysis model, the combustion model, the treatment of local extinction and the effect the ventilation flow rate. (C) 2016 Elsevier Ltd. All rights reserved.
机译:该贡献提供了在密闭且机械通风的围护中水池火的振荡行为的实验和数值研究。消防安全问题涉及由于大的压力变化而导致外壳动态封闭的损失,以及因此有毒产品可能在舱外释放的问题。实验分析基于大型燃烧测试,显示燃烧速率的周期性低频振荡行为。频率为0.005-0.007 Hz(周期为150-200 s),幅度约为燃烧速率平均水平的两倍。执行参数分析以识别最有影响力的参数。这种振荡现象被解释为燃烧速率,房间压力,通风流量,氧气浓度以及燃烧速率的反馈效应之间的耦合过程。该现象发生在通风条件下,在该条件下燃烧区域在室内移动导致火焰移位。用火场模型ISIS进行了数值模拟,以检查标准CFD建模的能力。再现火焰的振荡行为,并为数值发展提供透视问题。可以很好地预测燃料质量损失率,车厢压力,通风流量,氧气浓度和气体温度的平均值。尽管由于对车厢内火焰位移的模拟较差而导致波动幅度被低估,但燃料质量损失率的振荡行为也以低频为主。仿真指出了热解模型,燃烧模型,局部消光的处理以及通风流量的影响。 (C)2016 Elsevier Ltd.保留所有权利。

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