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Theoretical and experimental studies on the fire-induced smoke flow in naturally ventilated tunnels with large cross-sectional vertical shafts

机译:大截面竖井自然通风隧道火灾烟气流动的理论和实验研究

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摘要

The study focuses on the fire-induced smoke flow in a naturally ventilated tunnel with large cross-sectional vertical shafts. For the shaft with large cross-section, the smoke is exhausted along four sides of the shaft, in which condition, the complete plug-holing occurs and the fresh air is entrained into the shaft strongly. In this work, studies on the longitudinal smoke temperature rise, smoke mass and heat exhausted as well as air entrainment from the shaft with large cross-section are performed theoretically. A method to predict the maximum smoke temperature rise downstream the shaft and the smoke back-layering length in naturally ventilated tunnel fires is proposed. Meanwhile, a series of small-scale fire tests was carried out by considering heat release rates (HRR) of the fires, shaft heights and adjacent shaft intervals. Experimental results indicate that the smoke back-layering length decreases with the increasing shaft heights, but it seems to be independent of the HRRs that are greater than 25.8 kW employed in the present work. Lastly, the validation of the proposed models is conducted by comparing with experimental results, which indicates that the models predict well the maximum smoke temperature rise on the downstream side of the shaft and the smoke back-layering length for small fires. The present study contributes to a guidance for smoke control in naturally ventilated tunnel fires with vertical shafts.
机译:该研究的重点是大截面垂直竖井的自然通风隧道中由火引起的烟流。对于具有大横截面的轴,烟雾沿轴的四个侧面排出,在这种情况下,会发生完全的塞孔,并且新鲜空气会强烈地带入轴中。在这项工作中,从理论上研究了纵向烟气温度升高,烟气质量和排出的热量以及从大横截面的井筒中夹带的空气。提出了一种预测竖井下游最大烟温升高和自然通风隧道火灾中烟气反层长度的方法。同时,通过考虑大火的放热率(HRR),竖井高度和相邻竖井间隔,进行了一系列小规模的火灾测试。实验结果表明,烟层的背层长度随竖井高度的增加而减小,但似乎与当前工作中采用的大于25.8 kW的HRR无关。最后,通过与实验结果进行比较,对所提出的模型进行了验证,这表明模型可以很好地预测竖井下游最大烟温的升高以及小火时烟层的回覆长度。本研究有助于对带有竖井的自然通风隧道火灾中的烟气控制指南。

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  • 来源
    《Tunnelling and underground space technology》 |2020年第5期|103359.1-103359.12|共12页
  • 作者

  • 作者单位

    Tongji Univ Dept Geotech Engn 1239 Siping Rd Shanghai 200092 Peoples R China|Tongji Univ Minist Educ Key Lab Geotech & Underground Engn 1239 Siping Rd Shanghai 200092 Peoples R China;

    Tongji Univ State Key Lab Disaster Reduct Civil Engn 1239 Siping Rd Shanghai 200092 Peoples R China|Tongji Univ Dept Geotech Engn 1239 Siping Rd Shanghai 200092 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Tunnel fire; Vertical shaft; Air entrainment; Smoke temperature; Back-layering length;

    机译:隧道起火;竖井;空气夹带;烟雾温度;背层长度;

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