Prediction of spatially explicit rainfall intensity-duration thresholds for post-fire debris-flow generation in the western United States

被引:161
作者
Staley, Dennis M. [1 ]
Negri, Jacquelyn A. [1 ]
Kean, Jason W. [1 ]
Laber, Jayme L. [2 ]
Tillery, Anne C. [3 ]
Youberg, Ann M. [4 ]
机构
[1] US Geol Survey, Golden, CO USA
[2] Natl Weather Serv, Los Angeles, CA USA
[3] US Geol Survey, Albuquerque, NM USA
[4] Arizona Geol Survey, Tucson, AZ USA
关键词
Wildfire; Debris flow; Rainfall thresholds; Hazard assessment; SEDIMENT TRANSPORT; SHALLOW LANDSLIDES; WATER REPELLENCY; EMPIRICAL-MODELS; NATIONAL-PARK; DRY-RAVEL; WILDFIRE; FIRE; SOIL; EROSION;
D O I
10.1016/j.geomorph.2016.10.019
中图分类号
P9 [自然地理学];
学科分类号
0705 ; 070501 ;
摘要
Early warning of post-fire debris-flow occurrence during intense rainfall has traditionally relied upon a library of regionally specific empirical rainfall intensity-duration thresholds. Development of this library and the calculation of rainfall intensity-duration thresholds often require several years of monitoring local rainfall and hydrologic response to rainstorms, a time-consuming approach where results are often only applicable to the specific region where data were collected. Here, we present a new, fully predictive approach that utilizes rainfall, hydrologic response, and readily available geospatial data to predict rainfall intensity-duration thresholds for debris-flow generation in recently burned locations in the western United States. Unlike the traditional approach to defining regional thresholds from historical data, the proposed methodology permits the direct calculation of rainfall intensity-duration thresholds for areas where no such data exist. The thresholds calculated by this method are demonstrated to provide predictions that are of similar accuracy, and in some cases outperform, previously published regional intensity-duration thresholds. The method also provides improved predictions of debris-flow likelihood, which can be incorporated into existing approaches for post-fire debris-flow hazard assessment. Our results also provide guidance for the operational expansion of post-fire debris-flow early warning systems in areas where empirically defined regional rainfall intensity-duration thresholds do not currently exist. Published by Elsevier B.V.
引用
收藏
页码:149 / 162
页数:14
相关论文
共 100 条
[61]   Infiltration and runoff generation processes in fire-affected soils [J].
Moody, John A. ;
Ebel, Brian A. .
HYDROLOGICAL PROCESSES, 2014, 28 (09) :3432-3453
[62]   Current research issues related to post-wildfire runoff and erosion processes [J].
Moody, John A. ;
Shakesby, Richard A. ;
Robichaud, Peter R. ;
Cannon, Susan H. ;
Martin, Deborah A. .
EARTH-SCIENCE REVIEWS, 2013, 122 :10-37
[63]   Hyper-dry conditions provide new insights into the cause of extreme floods after wildfire [J].
Moody, John A. ;
Ebel, Brian A. .
CATENA, 2012, 93 :58-63
[64]  
Negri J.A., 2016, THESIS
[65]  
NOAA, 2016, NAT OC ATM ADM HYDR
[66]  
Noske P.J., 2016, WATER RESOUR RES, V2015
[67]   Predicting sediment delivery from debris flows after wildfire [J].
Nyman, Petter ;
Smith, Hugh G. ;
Sherwin, Christopher B. ;
Langhans, Christoph ;
Lane, Patrick N. J. ;
Sheridan, Gary J. .
GEOMORPHOLOGY, 2015, 250 :173-186
[68]   Sediment availability on burned hillslopes [J].
Nyman, Petter ;
Sheridan, Gary J. ;
Moody, John A. ;
Smith, Hugh G. ;
Noske, Philip J. ;
Lane, Patrick N. J. .
JOURNAL OF GEOPHYSICAL RESEARCH-EARTH SURFACE, 2013, 118 (04) :2451-2467
[69]   Evidence of debris flow occurrence after wildfire in upland catchments of south-east Australia [J].
Nyman, Petter ;
Sheridan, Gary J. ;
Smith, Hugh G. ;
Lane, Patrick N. J. .
GEOMORPHOLOGY, 2011, 125 (03) :383-401
[70]   Wildfire impacts on the processes that generate debris flows in burned watersheds [J].
Parise, M. ;
Cannon, S. H. .
NATURAL HAZARDS, 2012, 61 (01) :217-227