Modeling of Wood Surface Ignition by Wildland Firebrands

被引:10
作者
Matvienko, Oleg [1 ,2 ]
Kasymov, Denis [2 ]
Loboda, Egor [2 ]
Lutsenko, Anastasia [2 ]
Daneyko, Olga [1 ]
机构
[1] Tomsk State Univ Architecture & Bldg, Dept Phys Chem & Theoret Mech, Tomsk 634003, Russia
[2] Tomsk State Univ, Dept Phys & Computat Mech, Tomsk 634050, Russia
来源
FIRE-SWITZERLAND | 2022年 / 5卷 / 02期
基金
俄罗斯科学基金会;
关键词
firebrands; WUI; wood; ignition; mathematical modeling; heat transfer; pyrolysis; MOISTURE-CONTENT; GENERATION; COMBUSTION; FUEL; TRANSPORT; CHANNEL; HEAT; SIMULATION; EXCHANGE; TIME;
D O I
10.3390/fire5020038
中图分类号
Q14 [生态学(生物生态学)];
学科分类号
071012 ; 0713 ;
摘要
The probability of structural ignition is dependent both on physical properties of materials and the fire exposure conditions. In this study, the effect of firebrand characteristics (i.e., firebrand size, number of firebrands) on wood ignition behavior was considered. Mathematical modeling and laboratory experiment were conducted to better understand the conditions of wood ignition by a single or group of firebrands with different geometry. This model considers the heat exchange between the firebrands, wood layer and the gas phase, moisture evaporation in the firebrands and the diffusion gases of water vapor in the pyrolysis zone. In order to test and verify the model, a series of experiments to determine probability and conditions for ignition of wood-based materials (plywood, oriented strand board, chipboard) caused by wildland firebrands (pine twigs with a diameter of 6-8 mm and a length of 40 +/- 2 mm) were conducted. The experiments investigated the firebrand impact on the wood layer under different parameters, such as firebrand size and quantity, wind speed, and type of wood. The results of experiments showed that the increase in wind speed leads to the increase in probability of wood ignition. Based on the received results, it can be concluded that the ignition curve of wood samples by firebrands is nonlinear and depends on the wind speed and firebrand size as well as their quantity. At the same time, there is no ignition of wood samples in the range of wind speed of 0-1 m/s. The ignition of wood is possible with a decrease in the distance between the firebrands with a decrease in the firebrand length. This result agrees more closely with the model.
引用
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页数:24
相关论文
共 73 条
[1]   On the trajectories of embers initially elevated or lofted by small scale ground fire plumes in high winds [J].
Anthenien, RA ;
Tse, SD ;
Fernandez-Pello, AC .
FIRE SAFETY JOURNAL, 2006, 41 (05) :349-363
[2]   Numerical simulation of aerodynamics and combustion of a gas mixture in a channel with sudden expansion [J].
Arkhipov, V. A. ;
Egorov, A. G. ;
Ivanin, S. V. ;
Maslov, E. A. ;
Matvienko, O. V. .
COMBUSTION EXPLOSION AND SHOCK WAVES, 2010, 46 (06) :647-655
[3]   Combustion of sprayed liquid fuel in a swirling flow [J].
Arkhipov, VA ;
Matvienko, OV ;
Trofimov, VF .
COMBUSTION EXPLOSION AND SHOCK WAVES, 2005, 41 (02) :140-150
[4]  
Baum H.R., 2014, Fire Safety Science, V11, P1353, DOI 10.3801/IAFSS.FSS.11-1353
[5]   Statistical Assessment of Parameters Affecting Firebrand Pile Heat Transfer to Surfaces [J].
Bearinger, Elias ;
Lattimer, Brian Y. ;
Hodges, Jonathan L. ;
Rippe, Christian ;
Kapahi, Anil .
FRONTIERS IN MECHANICAL ENGINEERING-SWITZERLAND, 2021, 7
[6]   The 2018 Camp Fire: Meteorological Analysis Using In Situ Observations and Numerical Simulations [J].
Brewer, Matthew J. ;
Clements, Craig B. .
ATMOSPHERE, 2020, 11 (01)
[7]   Explaining Extreme Events of 2018 from a Climate Perspective [J].
Brown, Timothy ;
Leach, Steve ;
Wachter, Brent ;
Gardunio, Billlly .
BULLETIN OF THE AMERICAN METEOROLOGICAL SOCIETY, 2020, 101 (01) :S1-S4
[8]   Review of Pathways for Building Fire Spread in the Wildland Urban Interface Part I: Exposure Conditions [J].
Caton, Sara E. ;
Hakes, Raquel S. P. ;
Gollner, Michael J. ;
Gorham, Daniel J. ;
Zhou, Aixi .
FIRE TECHNOLOGY, 2017, 53 (02) :429-473
[9]  
Cohen J.D., 2020, J FOREST, V98, P21
[10]   Effect of the swirl of cocurrent high-velocity air flow on the geometry of an aluminum-air flame [J].
Egorov, A. G. ;
Tizilov, A. S. ;
Niyazov, V. Ya ;
Arkhipov, V. A. ;
Matvienko, O. V. .
RUSSIAN JOURNAL OF PHYSICAL CHEMISTRY B, 2014, 8 (05) :712-715