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Characterization of buoyant flow stratification behaviors by Richardson (Froude) number in a tunnel fire with complex combination of longitudinal ventilation and ceiling extraction

机译:利用纵向通风和顶棚抽采的复杂组合,利用理查森(弗洛德)数表征隧道火灾中的浮力流分层行为

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A series of experiments were carried out in a model-scale tunnel [72 m (length) x 1.5 m (width) x 1.3 m (height)] to investigate the buoyant flow stratification behaviors in a tunnel fire with complexity of combination of longitudinal ventilation and ceiling extraction, which had not been studied before. The horizontal traveling velocity and vertical temperature profile were measured. The buoyant flow stratification conditions were visualized by a laser-sheet, as well as determined objectively by the vertical temperature profile measured. Buoyancy and inertial force are the two important factors influencing the buoyancy stratification. The interaction between them can be expressed by the Froude number or Richardson number. It was found that the buoyant stratification pattern was divided into three regimes. At regime I (Ri > 2.0 or Fr < 0.66), the buoyant stratification was stable and with a clear interface between the upper buoyant flow layer and the lower air layer. At regime II (1.4 < Ri < 2.0 or 0.66 < Fr < 0.8), the buoyant stratification was basically stable, but some vortexes existed at the interface. At regime III (Ri < 1.4 or Fr > 0.8), a strong mixing existed between the upper buoyant flow and the lower air flow, that the buoyant flow stratification became unstable. (C) 2016 Elsevier Ltd. All rights reserved.
机译:在模型规模的隧道(长72 m(长)x 1.5 m(宽)x 1.3 m(高))中进行了一系列实验,以研究隧道火灾中具有纵向通风组合复杂性的浮流分层行为。和天花板提取,这是以前没有研究过的。测量水平行进速度和垂直温度曲线。浮力流分层条件通过激光薄片可视化,并通过测量的垂直温度曲线客观确定。浮力和惯性力是影响浮力分层的两个重要因素。它们之间的相互作用可以用弗劳德数或理查森数表示。发现浮力分层模式被分为三个区域。在方案I(Ri> 2.0或Fr <0.66)下,浮力分层是稳定的,并且在上浮力流动层和下空气层之间具有清晰的界面。在II型区域(1.4 0.8)下,上浮力流与下浮力流之间存在强烈混合,从而使浮流分层变得不稳定。 (C)2016 Elsevier Ltd.保留所有权利。

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