The BlueSky smoke modeling framework

被引:156
作者
Larkin, Narasimhan K. [1 ]
O'Neill, Susan M. [2 ]
Solomon, Robert [1 ]
Raffuse, Sean [3 ]
Strand, Tara [1 ]
Sullivan, Dana C. [3 ]
Krull, Candace [1 ]
Rorig, Miriam [1 ]
Peterson, Janice L.
Ferguson, Sue A. [1 ]
机构
[1] US Forest Serv, AirFire Team, Pacific NW Res Stn, Seattle, WA 98103 USA
[2] Nat Resources Conservat Serv, USDA, Portland, OR 97232 USA
[3] Sonoma Technol Inc, Petaluma, CA 94954 USA
关键词
FORECASTING SYSTEM; VERIFICATION; FIRES;
D O I
10.1071/WF07086
中图分类号
S7 [林业];
学科分类号
0829 ; 0907 ;
摘要
Smoke from fire is a local, regional and often international issue that is growing in complexity as competition for airshed resources increases. BlueSky is a smoke modeling framework designed to help address this problem by enabling simulations of the cumulative smoke impacts from fires (prescribed, wildland, and agricultural) across a region. Versions of BlueSky have been implemented in prediction systems across the contiguous US, and land managers, air-quality regulators, incident command teams, and the general public can currently obtain BlueSky-based predictions of smoke impacts for their region. A highly modular framework, BlueSky links together a variety of state-of-the-art models of meteorology, fuels, consumption, emissions, and air quality, and offers multiple model choices at each modeling step. This modularity also allows direct comparison between similar component models. This paper presents the overall model framework Version 2.5 - the component models, how they are linked together, and the results from case studies of two wildfires. Predicted results are affected by the specific choice of modeling pathway. With the pathway chosen, the modeled output generally compares well with plume shape and extent as observed by satellites, but underpredicts surface concentrations as observed by ground monitors. Sensitivity studies show that knowledge of fire behavior can greatly improve the accuracy of these smoke impact calculations.
引用
收藏
页码:906 / 920
页数:15
相关论文
共 39 条
[1]  
[Anonymous], P 21 ANN M AIR POLL
[2]  
[Anonymous], MAN IMP WILDF COMM E
[3]  
Battye W., 2002, DEV EMISSIONS INVENT
[4]  
BRIGGS GA, 1975, ATDL7614 AIR RES ATM, P425
[5]   Review of the governing equations, computational algorithms, and other components of the models-3 Community Multiscale Air Quality (CMAQ) modeling system [J].
Byun, Daewon ;
Schere, Kenneth L. .
APPLIED MECHANICS REVIEWS, 2006, 59 (1-6) :51-77
[6]  
CHEN J, 2008, ATMOSPHERIC CHEM PHY, V8, P15165
[7]   Enhancement and evaluation of the AIRPACT ozone and PM2.5 forecast system for the Pacific Northwest [J].
Chen, Jack ;
Vaughan, Joe ;
Avise, Jeremy ;
O'Neill, Susan ;
Lamb, Brian .
JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2008, 113 (D14)
[8]  
Cohen J.D., 1985, The national fire-danger rating system: basic equations, V82
[9]  
Draxler R R, 1997, NOAA Tech. Memo. ERL ARL-224, P24
[10]  
*EPA, 1999, EPA600R99030