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隧道与地下工程灾害防治
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盾构隧道疏散通道临界防烟风速计算模型研究
罗驰恒1,郭元俊2,贾瑶2,姜学鹏2
(1.中铁第四勘察设计院集团有限公司,湖北 武汉 430063;2.武汉科技大学资源与环境工程学院,湖北 武汉 430081)
Research on calculation model of critical smoke control velocity for evacuation passages in shield tunnels
Luo Chiheng1, Guo Yuanjun2, Jia Yao2, Jiang Xuepeng2
(1.China Railway Siyuan Survey And Design Group Co., Ltd., Wuhan 430063,Hubei,China; 2.School of Resource and Environmental Engineering, Wuhan University of Science and Technology, Wuhan 430081,Hubei,China)
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摘要 为解决盾构隧道行车道下方安全疏散通道的临界防烟风速计算问题,本研究建立基于Froude数的理论计算模型,并结合火灾动力学模拟器(fire dynamics simulator,FDS)数值模拟与缩尺寸试验进行验证。通过理论推导,构建包含隧道纵向风速、火源功率及隧道高度的临界防烟风速隐式控制方程。结果表明:临界防烟风速随隧道纵向风速增大而线性降低,随火源功率升高而线性递增,随隧道高度增加呈指数型衰减;确定了控制烟气侵入的临界Froude数为12;1:10缩尺寸模型试验验证了理论公式的准确性,计算值与实测值偏差≤0.05m/s。研究成果可为盾构隧道安全疏散通道加压送风系统设计提供理论依据。
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罗驰恒
郭元俊
贾瑶
姜学鹏
关键词:  盾构隧道  疏散通道  临界防烟风速  Froude数  纵向通风  缩尺寸试验    
Abstract: To determine the critical smoke control velocity for safety evacuation passageways located beneath the carriageway of shield tunnels, a theoretical model based on the Froude number was developed and validated via FDS numerical simulations and reduced-scale experiments. An implicit governing equation for the critical smoke control velocity was theoretically derived by considering the effects of longitudinal tunnel velocity, fire heat release rate, and tunnel height. The results showed that the critical smoke control velocity decreased linearly with increasing longitudinal tunnel velocity, increased linearly with increasing fire heat release rate, and decreased exponentially with increasing tunnel height. Meanwhile, a critical Froude number of 12 was identified as the threshold for preventing smoke ingress into the safety evacuation passageway. The proposed theoretical model was further validated in a 1:10 reduced-scale experiment, and the maximum absolute deviation between the calculated and measured velocities did not exceed 0.05 m/s, demonstrating the satisfactory predictive accuracy of the model. The results can provide a theoretical basis for the design of pressurized ventilation systems and the determination of critical smoke control velocities in safety evacuation passageways of shield tunnels.
Key words:  shield tunnel    evacuation passage    critical smoke control velocity    Froude number    longitudinal ventilation    scale model experiment
收稿日期:  2026-04-21      修回日期:  2026-05-19      发布日期:  2026-09-14     
中图分类号:  U458  
  X951  
基金资助: 国家自然科学基金资助项目(52376130,52476127)
通讯作者:  姜学鹏(1976—),男,山东青岛人,教授,博士生导师,博士,主要研究方向为隧道及地下空间火灾动力学与火灾防治。    E-mail:  jxp5276@126.com
作者简介:  罗驰恒(1990—),男,湖北天门人,高级工程师,硕士,主要研究方向为隧道工程设计。E-mail:tjulch@163.com
引用本文:    
罗驰恒, 郭元俊, 贾瑶, 姜学鹏. 盾构隧道疏散通道临界防烟风速计算模型研究[J]. 隧道与地下工程灾害防治, .
Luo Chiheng, Guo Yuanjun, Jia Yao, Jiang Xuepeng. Research on calculation model of critical smoke control velocity for evacuation passages in shield tunnels. Hazard Control in Tunnelling and Underground Engineering, 0, (): 1-12.
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