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Heat release rate of high-speed train fire in railway tunnels

机译:铁路隧道高速火车火灾热释放率

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In this study, a cone calorimeter and an ignition temperature tester were used to conduct experiments on the combustible materials of the main structure of a train for determining its heat release rate and ignition temperature. According to the experimental data of the materials, a numerical model for high-speed train fires was established, and it was validated on the basis of full-scale train fire experiments reported in the literature. Numerical calculations were performed to study the effects of the area of the train carriage vents, power of the fire source, position of the fire source, and longitudinal ventilation velocity of the tunnel on the heat release rate. The results indicated that a higher power of the fire source corresponds to an earlier peak of the heat release rate of the train fire. When the fire source was set at the end wall corner of the carriage and the fire source power was 150-1000 kW, the peak heat release rate was 33.6-36.4 MW. The peak heat release rate of high-speed train fires has an exponential relationship with the area of the train carriage vents and an exponential decay relationship with the longitudinal ventilation velocity of the tunnel. When the fire source is below a seat and its power is low, the flame height is so small that the temperature of the smoke at the top of the train carriage is lower than the ignition temperature of the ceiling material. Hence, the ceiling material does not burn, and it is difficult for the fire to spread in the carriage. The flame spread characteristics of the fire are similar when the source is at other positions. The flame spreads along the ceiling to the two ends of the carriage, causing the seat and floor to burn owing to the heat radiation from the ceiling.
机译:在该研究中,使用锥形量热计和点火温度测试仪对火车的主要结构的可燃材料进行实验,以确定其热释放速率和点火温度。根据材料的实验数据,建立了一个高速列车火灾的数值模型,并在文献中报告的全规模列车消防实验的基础上进行了验证。进行数值计算以研究火车托架通风口,火源功率,火源位置,隧道纵向通风速度的效果研究热释放率。结果表明,火源的更高功率对应于火车火灾的热释放速率的早期峰值。当消防源设置在滑架的端部壁角,消防源功率为150-1000千瓦时,峰值热释放率为33.6-36.4 mw。高速列车火灾的峰值热释放速率与火车托架通风口的面积和与隧道的纵向通风速度的指数衰减关系具有指数关系。当消防源低于座椅并且其功率低时,火焰高度如此之小,使火车架顶部的烟雾的温度低于天花板材料的点火温度。因此,天花板材料不会燃烧,难以在托架中传播。当源位于其他位置时,火的火焰传播特性类似。火焰沿着天花板蔓延到托架的两端,导致座椅和地板由于来自天花板的热辐射而燃烧。

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