Role of buoyant flame dynamics in wildfire spread

被引:239
作者
Finney, Mark A. [1 ]
Cohen, Jack D. [1 ]
Forthofer, Jason M. [1 ]
McAllister, Sara S. [1 ]
Gollner, Michael J. [2 ]
Gorham, Daniel J. [2 ]
Saito, Kozo [3 ]
Akafuah, Nelson K. [3 ]
Adam, Brittany A. [3 ]
English, Justin D. [3 ]
机构
[1] US Forest Serv, Missoula Fire Sci Lab, Missoula, MT 59808 USA
[2] Univ Maryland, Dept Fire Protect Engn, College Pk, MD 20742 USA
[3] Univ Kentucky, Dept Mech Engn, Lexington, KY 40506 USA
关键词
wildfires; buoyant instability; flame spread; convective heating; TURBULENT-BOUNDARY-LAYER; FIRE SPREAD; LONGITUDINAL VORTICES; OSCILLATORY BEHAVIOR; PHYSICAL-MECHANISMS; GORTLER VORTICES; SURFACE; WIND; PLUMES; FLOW;
D O I
10.1073/pnas.1504498112
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Large wildfires of increasing frequency and severity threaten local populations and natural resources and contribute carbon emissions into the earth-climate system. Although wildfires have been researched and modeled for decades, no verifiable physical theory of spread is available to form the basis for the precise predictions needed to manage fires more effectively and reduce their environmental, economic, ecological, and climate impacts. Here, we report new experiments conducted at multiple scales that appear to reveal how wildfire spread derives from the tight coupling between flame dynamics induced by buoyancy and fine-particle response to convection. Convective cooling of the fine-sized fuel particles in wildland vegetation is observed to efficiently offset heating by thermal radiation until convective heating by contact with flames and hot gasses occurs. The structure and intermittency of flames that ignite fuel particles were found to correlate with instabilities induced by the strong buoyancy of the flame zone itself. Discovery that ignition in wildfires is critically dependent on nonsteady flame convection governed by buoyant and inertial interaction advances both theory and the physical basis for practical modeling.
引用
收藏
页码:9833 / 9838
页数:6
相关论文
共 62 条
[51]  
Quintiere J.G., 2006, FUNDAMENTALS FIRE PH
[52]   COHERENT MOTIONS IN THE TURBULENT BOUNDARY-LAYER [J].
ROBINSON, SK .
ANNUAL REVIEW OF FLUID MECHANICS, 1991, 23 :601-639
[53]  
Rothermel RC, 1966, INT30 US FOR SERV
[54]  
SARIC WS, 1994, ANNU REV FLUID MECH, V26, P379, DOI 10.1146/annurev.fluid.26.1.379
[55]   LONGITUDINAL VORTICES IN NATURAL CONVECTION FLOW ON INCLINED PLATES [J].
SPARROW, EM ;
HUSAR, RB .
JOURNAL OF FLUID MECHANICS, 1969, 37 :251-&
[56]   Thermal decomposition and combustion chemistry of cellulosic biomass [J].
Sullivan, A. L. ;
Ball, R. .
ATMOSPHERIC ENVIRONMENT, 2012, 47 :133-141
[57]   Wildland surface fire spread modelling, 1990-2007. 1: Physical and quasi-physical models [J].
Sullivan, Andrew L. .
INTERNATIONAL JOURNAL OF WILDLAND FIRE, 2009, 18 (04) :349-368
[58]   Variation in wind and crown fire behaviour in a northern jack pine-black spruce forest [J].
Taylor, SW ;
Wotton, BM ;
Alexander, ME ;
Dalrymple, GN .
CANADIAN JOURNAL OF FOREST RESEARCH, 2004, 34 (08) :1561-1576
[59]   RADIATION + CONVECTION IN CONIFERS [J].
TIBBALS, EC ;
CARR, EK ;
KREITH, F ;
GATES, DM .
AMERICAN JOURNAL OF BOTANY, 1964, 51 (05) :529-&
[60]   Highlights from 50 years of turbulent boundary layer research [J].
Wallace, James M. .
JOURNAL OF TURBULENCE, 2013, 13 (53) :1-70