Use of artificial landscapes to isolate controls on burn probability

被引:58
作者
Parisien, Marc-Andre [2 ]
Miller, Carol [1 ]
Ager, Alan A. [3 ]
Finney, Mark A. [4 ]
机构
[1] US Forest Serv, Aldo Leopold Wilderness Res Inst, Rocky Mt Res Stn, USDA, Missoula, MT 59801 USA
[2] Nat Resources Canada, Canadian Forest Serv, No Forestry Ctr, Edmonton, AB T5H 3S5, Canada
[3] US Forest Serv, Western Wildlands Environm Threat Assessment Ctr, Pacific NW Res Stn, USDA, Prineville, OR 97754 USA
[4] US Forest Serv, Missoula Fire Sci Lab, Rocky Mt Res Stn, USDA, Missoula, MT 59808 USA
关键词
Burn probability; Burn-P3 simulation model; Ignitions; Fuels; Fire weather; HISTORICAL FIRE REGIMES; DISTURBANCE; PATTERNS; SPREAD; HETEROGENEITY; SUCCESSION; MIXEDWOOD; EVENTS; MODELS;
D O I
10.1007/s10980-009-9398-9
中图分类号
Q14 [生态学(生物生态学)];
学科分类号
071012 ; 0713 ;
摘要
Techniques for modeling burn probability (BP) combine the stochastic components of fire regimes (ignitions and weather) with sophisticated fire growth algorithms to produce high-resolution spatial estimates of the relative likelihood of burning. Despite the numerous investigations of fire patterns from either observed or simulated sources, the specific influence of environmental factors on BP patterns is not well understood. This study examined the relative effects of ignitions, fuels, and weather on mean BP and spatial patterns in BP (i.e., BP variability) using highly simplified artificial landscapes and wildfire simulation methods. Our results showed that a limited set of inputs yielded a wide range of responses in the mean and spatial patterning of BP. The input factors contributed unequally to mean BP and to BP variability: so-called top-down controls (weather) primarily influenced mean BP, whereas bottom-up influences (ignitions and fuels) were mainly responsible for the spatial patterns of BP. However, confounding effects and interactions among factors suggest that fully separating top-down and bottom-up controls may be impossible. Furthermore, interactions among input variables produced unanticipated but explainable BP patterns, hinting at complex topological dependencies among the main determinants of fire spread and the resulting BP. The results will improve our understanding of the spatial ecology of fire regimes and help in the interpretation of patterns of fire likelihood on real landscapes as part of future wildfire risk assessments.
引用
收藏
页码:79 / 93
页数:15
相关论文
共 55 条
[1]  
AGER AA, 2006, P RMRS P 41 PORTL OR
[2]  
[Anonymous], [No title captured]
[3]  
[Anonymous], 1996, FIRE PLANTS, DOI DOI 10.1007/978-94-009-1499-5
[4]   Spatial distribution of ignitions in Mediterranean periurban and rural areas:: the case of Catalonia [J].
Badia-Perpinya, Anna ;
Pallares-Barbera, Montserrat .
INTERNATIONAL JOURNAL OF WILDLAND FIRE, 2006, 15 (02) :187-196
[5]   RESTORATION OF LANDSCAPE STRUCTURE ALTERED BY FIRE SUPPRESSION [J].
BAKER, WI .
CONSERVATION BIOLOGY, 1994, 8 (03) :763-769
[6]   Effects of fire size and frequency and habitat heterogeneity on forest age distribution [J].
Barclay, Hugh J. ;
Li, Chao ;
Hawkes, Brad ;
Benson, Laura .
ECOLOGICAL MODELLING, 2006, 197 (1-2) :207-220
[7]   Characterizing extreme fire and weather events in the Boreal Shield ecozone of Ontario [J].
Beverly, JL ;
Martell, DL .
AGRICULTURAL AND FOREST METEOROLOGY, 2005, 133 (1-4) :5-16
[8]  
Burnham K.P., 1998, MODEL SELECTION INFE
[9]  
Butler BW, 2006, FUELS MANAGEMENT MEA
[10]   Comparison of the sensitivity of landscape-fire-succession models to variation in terrain, fuel pattern, climate and weather [J].
Cary, GJ ;
Keane, RE ;
Gardner, RH ;
Lavorel, S ;
Flannigan, MD ;
Davies, ID ;
Li, C ;
Lenihan, JM ;
Rupp, TS ;
Mouillot, F .
LANDSCAPE ECOLOGY, 2006, 21 (01) :121-137