Simulation of Tunnel Fire for Evacuation Safety Assessment
Abstract
:1. Introduction
2. Numerical Method
2.1. Simulation of Tunnel Fire by FDS
2.2. Evacuation Model by RCA
Cs = 1.73ln(103·M) + 4.94: Cs ≥ 2.5 (1/m)
3. Results and Discussion
3.1. Dynamics of Tunnel Fire without Ventilation System
3.2. Dynamics of Tunnel Fire with Ventilation System
3.3. Evacuation Simulation and Evacuation Time
4. Conclusions
Author Contributions
Conflicts of Interest
References
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Case | Ventilation | Flow Velocity | Averaged Velocity |
---|---|---|---|
1 | Non | 0 m/s | 0 m/s |
2-1 | Uniform flow | 0.5 m/s | 0.5 m/s |
2-2 | Uniform flow | 1.0 m/s | 1.0 m/s |
3-1 | Jet fan | 12.5 m/s | 0.5 m/s |
3-2 | Jet fan | 25.0 m/s | 1.0 m/s |
Time | Situation |
---|---|
−60 s | Car accident happens |
0 s | Fire breaks out |
120 s | Evacuee recognizes the fire and ventilation system starts |
240 s | All evacuees can get off the bus and start to walk |
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Yamamoto, K.; Sawaguchi, Y.; Nishiki, S. Simulation of Tunnel Fire for Evacuation Safety Assessment. Safety 2018, 4, 12. https://doi.org/10.3390/safety4020012
Yamamoto K, Sawaguchi Y, Nishiki S. Simulation of Tunnel Fire for Evacuation Safety Assessment. Safety. 2018; 4(2):12. https://doi.org/10.3390/safety4020012
Chicago/Turabian StyleYamamoto, Kazuhiro, Yuusuke Sawaguchi, and Shinnosuke Nishiki. 2018. "Simulation of Tunnel Fire for Evacuation Safety Assessment" Safety 4, no. 2: 12. https://doi.org/10.3390/safety4020012
APA StyleYamamoto, K., Sawaguchi, Y., & Nishiki, S. (2018). Simulation of Tunnel Fire for Evacuation Safety Assessment. Safety, 4(2), 12. https://doi.org/10.3390/safety4020012