A model for predicting smoke back-layering length in tunnel fires with the combination of longitudinal ventilation and point extraction ventilation in the roof

被引:45
作者
Wang, Junheng [1 ,2 ,3 ]
Yuan, Jianping [1 ,2 ]
Fang, Zheng [1 ,2 ]
Tang, Zhi [1 ,2 ]
Qian, Peng [3 ]
Ye, Jianqiao [1 ,3 ]
机构
[1] Wuhan Univ, Sch Civil Engn, Wuhan 430072, Hubei, Peoples R China
[2] Engn Res Ctr Urban Disasters Prevent & Fire Rescu, Wuhan 430072, Hubei, Peoples R China
[3] Univ Lancaster, Dept Engn, Lancaster LA1 4YR, England
关键词
Tunnel fire; Longitudinal ventilation; Point extraction; Back-layering length; CEILING EXTRACTION; FLOW LENGTH; NATURAL VENTILATION; HORIZONTAL TUNNEL; GAS TEMPERATURE; VELOCITY; JET; UPSTREAM; CORRIDOR; DISTANCE;
D O I
10.1016/j.tust.2018.05.022
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
An analytical model is developed for quantifying the fire smoke back-layering length in a tunnel with a combination of longitudinal ventilation and point extraction ventilation in the roof. The distance of smoke vent to fire source is incorporated as well as mass flow rate during the whole smoke flow process according to the mass conservation principle. The model input quantities are the heat release rate of the fire source, the longitudinal velocity, the exhaust velocity, the width and the height of the tunnel, the distance of the smoke vent to the fire source and the area of the smoke vent. The quality of the model predictions is illustrated for a range of experimental conditions. After that, extensive model predictions on the back layering length are presented to show its trends by varying the velocity of the longitudinal ventilation, the exhaust velocity and the position of the smoke vent in the roof. Discussions are given at last. It is highlighted that shortening the distance between the smoke vent and the fire source benefits shortening the back-layering length, and this phenomenon is more pronounced for higher exhaust velocity.
引用
收藏
页码:16 / 25
页数:10
相关论文
共 31 条
[1]   Thermal buoyant smoke back-layering flow length in a longitudinal ventilated tunnel with ceiling extraction at difference distance from heat source [J].
Chen, L. F. ;
Hu, L. H. ;
Zhang, X. L. ;
Zhang, X. Z. ;
Zhang, X. C. ;
Yang, L. Z. .
APPLIED THERMAL ENGINEERING, 2015, 78 :129-135
[2]   Studies on buoyancy driven two-directional smoke flow layering length with combination of point extraction and longitudinal ventilation in tunnel fires [J].
Chen, L. F. ;
Hu, L. H. ;
Tang, W. ;
Yi, L. .
FIRE SAFETY JOURNAL, 2013, 59 :94-101
[3]   Smoke movement in tilted tunnel fires with longitudinal ventilation [J].
Chow, W. K. ;
Gao, Y. ;
Zhao, J. H. ;
Dang, J. F. ;
Chow, C. L. ;
Miao, L. .
FIRE SAFETY JOURNAL, 2015, 75 :14-22
[4]  
Deberteix P, 2001, P INT C TUNN FIR ESC
[5]   THE FLOW OF FIRE GASES UNDER A BEAMED CEILING [J].
DELICHATSIOS, MA .
COMBUSTION AND FLAME, 1981, 43 (01) :1-10
[6]  
Drysdale D, 2011, INTRO FIRE DYNAMICS, P132
[7]  
Hacck A, 1998, TUNN UNDERGR SP TECH, V13, P5
[8]   Studies on buoyancy-driven back-layering flow in tunnel fires [J].
Hu, L. H. ;
Huo, R. ;
Chow, W. K. .
EXPERIMENTAL THERMAL AND FLUID SCIENCE, 2008, 32 (08) :1468-1483
[9]   A global model on temperature profile of buoyant ceiling gas flow in a channel with combining mass and heat loss due to ceiling extraction and longitudinal forced air flow [J].
Hu, L. H. ;
Chen, L. F. ;
Tang, W. .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2014, 79 :885-892
[10]   A non-dimensional global correlation of maximum gas temperature beneath ceiling with different blockage-fire distance in a longitudinal ventilated tunnel [J].
Hu, L. H. ;
Tanga, W. ;
Chen, L. F. ;
Yi, L. .
APPLIED THERMAL ENGINEERING, 2013, 56 (1-2) :77-82