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Experimental and numerical study on critical ventilation velocity for confining fire smoke in metro connected tunnel

机译:地铁联络隧道限制火灾烟气临界通风速度的实验与数值研究。

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Extensive studies have been conducted on critical velocity in ordinary single tunnels while still lacking the direct guidance for smoke confinement in connected metro tunnels, which is noteworthy as metro networks have expanded in recent years. Focusing on this issue, this study aimed to predict the critical velocity for confining fire smoke in connected metro tunnels. Model experiments and numerical simulations were carried out while considering the inclination of connected tunnels and the incorporation of longitudinal ventilation in a main tunnel, which represent the typical structure and ventilation characteristics of metro connected tunnels. The results show that, under a node-area fire scenario, the critical velocity for confining upstream smoke in a connected tunnel was lower than that for an ordinary single tunnel, caused by the discrepancy in smoke density and heat allocation. Additionally, due to the stack effect driving and hindering smoke diffusion in upward and downward connected tunnels, the dimensionless critical velocity increased and decreased with the increase in upward and downward slopes, respectively. Meanwhile, smoke diffusion was reduced by incorporated longitudinal ventilation in the main tunnel, resulting from a decrease in smoke temperature. A prediction model of the critical velocity for confining smoke in metro connected tunnels was developed, which achieved an improvement on previous model and could support the smoke control design in such metro systems.
机译:在普通单隧道中对临界速度进行了广泛的研究,但仍缺乏对连通地铁隧道中的烟雾限制的直接指导,随着近年来地铁网络的扩大,这一点值得注意。着眼于这个问题,本研究旨在预测在相连的地铁隧道中限制火灾烟雾的临界速度。在考虑连接隧道的倾斜度和在主隧道中引入纵向通风的同时,进行了模型实验和数值模拟,这些代表了地铁连接隧道的典型结构和通风特性。结果表明,在节点区域火灾的情况下,由于烟气密度和热量分配的差异,在连接的隧道内限制上游烟气的临界速度要比普通的单个隧道低。另外,由于烟囱效应驱动和阻碍烟气在向上和向下连接的隧道中扩散,无因次临界速度分别随向上和向下倾斜度的增加而增加和减小。同时,由于烟道温度的降低,通过在主隧道内引入纵向通风减少了烟道的扩散。建立了地铁连接隧道内限制烟气临界速度的预测模型,该模型对以前的模型进行了改进,可以支持此类地铁系统的烟气控制设计。

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