PUBLIC SAFETY

Spread law and temperature distribution of spill fires in confined space

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  • Institute of Disaster Prevention Science and Safety Technology, Central South University, Changsha 410075, China

Received date: 2024-01-22

  Online published: 2024-05-14

Abstract

[Objective] A spill fire can cause considerable property damage and casualties. Although research on spill fires in open spaces is abundant domestically and internationally, research on spill fires in confined spaces is limited.[Methods] To investigate the combustion spread law and temperature field distribution characteristics of spill fires in confined spaces, a 1:10 reduced-size confined space model was constructed. Seven types of spill fire tests with different mass leakage rates and 12 types of oil pool fire tests with varying sizes were carried out. The analysis focused on the fire source diameter, mass combustion rate, and temperature field distribution characteristics in the confined space. The dimensions of the confined space model were 9 m long, 0.6 m wide, and 0.45 m high. The walls were covered with 2 cm-thick asbestos panels. A fireproof glass with a length of 1 m and a width of 0.45 m was placed horizontally in the center of the model as a spilling burning platform for leaking fuel. The platform was 4 cm away from the bottom of the model. To simulate fuel leakage, a stainless-steel pipe with a diameter of 1 cm was used as a leakage pipe, extending vertically from the ceiling down to the flowing platform. In addition, an electronic balance with an accuracy of 0.1 g was placed under the fuel barrel to measure the fuel leakage rate in real time.[Results] The spill fires in the confined space undergo three stages in accordance with the changes in the fire source diameter over time. These stages are combustion diffusion, stabilization, and extinction. The transition between stages is mainly determined by the relative sizes of the fuel mass leakage rate and mass combustion rate. Equilibrium between the mass combustion rate and mass leakage rate leads to complete fuel combustion before reaching the flame front, the fire source diameter stops increasing, and the combustion enters the stabilization stage. The mass combustion rate of ethanol fuel in a confined space demonstrates a linear correlation with the fire source area because the change in mass combustion rate per unit area exerts less influence on the fuel mass combustion rate than the change in fire source area. During the combustion stabilization, the temperature field distributions of the spill and oil pool fires are similar. The temperature at the root of the fire source gradually decreases as the power of the fire source increases, while the temperature at the top rises continuously. Moreover, the temperature of the ceiling in the confined space increases with the power of the fire source and decreases longitudinally. Finally, a prediction model of ceiling maximum smoke temperature rise during the steady combustion stage of spill and oil pool fires is established.[Conclusions] The findings can provide theoretical support for the detection design of spill fires in confined spaces.

Cite this article

JIAO Weibing, CHEN Changkun, DU Wuhao, SHI Lang . Spread law and temperature distribution of spill fires in confined space[J]. Journal of Tsinghua University(Science and Technology), 2024 , 64(6) : 1016 -1023 . DOI: 10.16511/j.cnki.qhdxxb.2024.22.025

References

[1] LI H H, LIU H Q, LIU J H, et al. Spread and burning characteristics of continuous spill fires in a tunnel[J]. Tunnelling and Underground Space Technology, 2021, 109:103754.
[2] INGASON H, LI Y Z. Spilled liquid fires in tunnels[J]. Fire Safety Journal, 2017, 91:399-406.
[3] LI Y Z, INGASON H. Overview of research on fire safety in underground road and railway tunnels[J]. Tunnelling and Underground Space Technology, 2018, 81:568-589.
[4] HURLEY M J, GOTTUK D T, HALL J R, et al. SFPE handbook of fire protection engineering[M]. New York:Springer, 2015.
[5] PUTORTI A D, MCELROY J A, MADRZYKOWSKI D M. Flammable and combustible liquid spill/burn patterns[R/OL].(2001-03-01)[2023-12-28]. NIJ Report 604-00. https://www.nist.gov/publications/flammable-and-combustible-liquid-spillburn-patterns.
[6] MEALY C, BENFER M, GOTTUK D. Liquid fuel spill fire dynamics[J]. Fire Technology, 2014, 50(2):419-436.
[7] 蔡宾斌.流淌火与油池火燃烧特性对比实验研究[J].消防科学与技术, 2013, 32(8):829-831. CAI B B. The comparative experiments research between oil flowing fire and pool fire[J]. Fire Science and Technology, 2013, 32(8):829-831.(in Chinese)
[8] LI Y T, HUANG H, ZHANG L H, et al. An experimental investigation into the effect of substrate slope on the continuously released liquid fuel spill fires[J]. Journal of Loss Prevention in the Process Industries, 2017, 45:203-209.
[9] LI Y T, HUANG H, SHUAI J, et al. Experimental study of continuously released liquid fuel spill fires on land and water in a channel[J]. Journal of Loss Prevention in the Process Industries, 2018, 52:21-28.
[10] 刘全义,杨锐,张辉.大尺度正庚烷流淌火试验[J].河南科技大学学报(自然科学版), 2017, 38(6):95-99. LIU Q Y, YANG R, ZHANG H. Experiment of large scale n-heptane spill fire[J]. Journal of Henan University of Science and Technology (Natural Science), 2017, 38(6):95-99.(in Chinese)
[11] 刘全义,杨锐,张辉.航空煤油流淌火蔓延特性试验研究[J].中国安全科学学报, 2017, 27(5):47-51. LIU Q Y, YANG R, ZHANG H. Experimental study on spreading characteristics of jet fuel spill fire[J]. China Safety Science Journal, 2017, 27(5):47-51.(in Chinese)
[12] LI M H, LU S X, CHEN R Y, et al. Pulsating behaviors of flame spread across n-butanol fuel surface[J]. Applied Thermal Engineering, 2017, 112:1445-1451.
[13] LI M H, LU S X, GUO J, et al. Effects of pool dimension on flame spread of aviation kerosene coating on a metal substrate[J]. International Journal of Heat and Mass Transfer, 2015, 84:54-60.
[14] 李满厚.液体表面火焰传播及表面流传热特性研究[D].合肥:中国科学技术大学, 2015. LI M H. Flame spread over liquid fuels and heat transfer characters of subsurface convection flow[D]. Hefei:University of Science and Technology of China, 2015.(in Chinese)
[15] ZHAO J L, ZHU H Q, HUANG H, et al. Experimental study on the liquid layer spread and burning behaviors of continuous heptane spill fires[J]. Process Safety and Environmental Protection, 2019, 122:320-327.
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