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首页> 外文期刊>Applied thermal engineering: Design, processes, equipment, economics >Thermal smoke back-layering flow length with ceiling extraction at upstream side of fire source in a longitudinal ventilated tunnel
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Thermal smoke back-layering flow length with ceiling extraction at upstream side of fire source in a longitudinal ventilated tunnel

机译:纵向通风隧道火源上游侧带顶棚抽烟的热烟逆流长度

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This paper investigates experimentally the thermal buoyant smoke back-layering flow length beneath the tunnel ceiling with combination ceiling extraction and longitudinal ventilation, especially focusing on the condition that the ceiling extraction is employed at upstream side of the fire source, which has not previously been reported. Experiments are conducted in a model tunnel. A square gas burner was used to simulate the fire source, whose side dimension is 0.3 m. The heat release rates (HRRs) of fire source were 30 kW, 40 kW and 50 kW. Ceiling extraction opening with circular outlet of 0.3 m diameter was located at 1 m upstream from the fire source. Six different longitudinal ventilation velocities with six different ceiling extraction flow velocity were considered. Thermocouples are employed to measure the longitudinal temperature profile of the thermal smoke flow beneath the tunnel ceiling, to determine the upstream back-layering flow length. It was found that the upstream back-layering flow length increases with increase in heat release rate, meanwhile decreases with increase in longitudinal ventilation velocity or ceiling extraction velocity. A new non-dimensional factor was proposed to predict the thermal smoke back-layering flow length, which is shown to be in good agreement with the experimental results. (C) 2016 Elsevier Ltd. All rights reserved.
机译:本文以顶棚抽风和纵向通风相结合的方式,对隧道顶棚下的热浮力烟层流长进行了实验研究,重点研究了在火源的上游侧采用顶棚抽风的情况,这一点以前没有报道。 。实验在模型隧道中进行。使用方形燃气燃烧器模拟火源,其侧面尺寸为0.3 m。火源的热释放率(HRR)为30 kW,40 kW和50 kW。直径0.3 m的圆形出口的天花板排出口位于火源上游1 m。考虑了六种不同的纵向通风速度以及六种不同的天花板抽出流速。使用热电偶来测量隧道顶棚下方的热烟流的纵向温度分布,以确定上游的背层流长度。发现上游层流长度随着放热率的增加而增加,同时随着纵向通风速度或顶板抽气速度的增加而减小。提出了一种新的无因次因子来预测烟气热分层流长,与实验结果吻合良好。 (C)2016 Elsevier Ltd.保留所有权利。

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