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CFD STUDY OF GENERATION PROCESS AND STABILITY OF A FIRE WHIRL IN LARGE-SCALE FIRES

机译:大型火力产生过程和稳定性的CFD研究

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Large-scale urban and forest fires, especially earthquake-induced fires may produce huge fire whirls and cause serious damage, due to the involved tornado-like strong wind, together with radiation and swirling flame. If fire whirls are generated, the danger to firefighters increases extremely. Many small-scale experiments and CFD simulations on fire whirls have already been conducted and also our previous numerical studies examined the generation of a large fire whirl in an oil tank. However, details of large-scale fire whirls have not been clarified yet. In this study, developing the previous works, additional CFD simulations are conducted to examine the generation process and particularly the stability of fire whirls. Three schemes to generate fire whirls are employed, using the 15 × 15 PMMA fuel array in windy conditions and n-heptane burning in a steel pan placed centrally on the floor in a tall channel with staggered four corner gaps, also using a channel with a single corner gap. The numerical results showed that the relationship between the fire area and the wind blowing area is important on the fire whirl generation in the PMMA scheme and n-heptane fire burning scheme in a channel. In addition to the channel gap size to produce a maximum fire whirl, the effects of channel height and horizontal channel area upon the fire whirl are examined. The wall temperatures of the channel are important to keep the swirling motion stably, particularly the wall temperature at about 300°C can stabilize the fire whirl in a channel. Also multiple small fires placed surrounding the central swirling fire can increase the stability of the fire whirl, although too strong multiple fires may destroy the stability. These phenomena may be related to the real fire whirl generation in the natural environment.
机译:由于涉及龙卷风般的强风,辐射和旋转火焰,大规模的城市和森林火灾,尤其是地震引发的火灾可能会产生巨大的火涡并造成严重破坏。如果产生旋风,对消防员的危险将大大增加。已经进行了许多关于旋涡的小规模实验和CFD模拟,并且我们之前的数值研究还检查了油箱中大旋涡的产生。但是,大规模火灾回旋的细节尚未弄清。在这项研究中,在发展以前的工作的基础上,进行了额外的CFD模拟,以检查生成过程,尤其是火旋涡的稳定性。采用三种方案产生火涡,在有风的条件下使用15×15 PMMA燃料阵列,并在一个钢锅中正庚烷燃烧,该钢锅在地板上居中放置在一个高通道中,交错的四个角间隙,还使用一个带有单角间隙。数值结果表明,火区与吹风区之间的关系对于PMMA方案中的火旋风产生和通道中正庚烷火燃烧方案具有重要意义。除了通道间隙的大小以产生最大的火涡外,还研究了通道高度和水平通道面积对火涡的影响。通道的壁温对于稳定地保持涡旋运动很重要,特别是大约300°C的壁温可以稳定通道中的火涡。同样,围绕中心旋转火焰放置的多个小火也可以增加火漩涡的稳定性,尽管太强的多个火焰可能会破坏稳定性。这些现象可能与自然环境中真实的火旋风产生有关。

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