Improvement of distributed snowmelt energy balance modeling with MODIS-based NDSI-derived fractional snow-covered area data

被引:55
作者
Homan, Joel W. [1 ]
Luce, Charles H. [2 ]
McNamara, James P. [3 ]
Glenn, Nancy F. [4 ]
机构
[1] Univ Alaska Fairbanks, Water & Environm Res Ctr, Fairbanks, AK 99775 USA
[2] US Forest Serv, Rocky Mt Res Stn, Boise, ID USA
[3] Boise State Univ, Dept Geosci, Boise, ID 83725 USA
[4] Idaho State Univ, Dept Geosci, Boise, ID USA
基金
美国国家科学基金会;
关键词
hydrology; snow; remote sensing; arctic; GRAIN-SIZE; SPATIAL-DISTRIBUTION; MOUNTAIN CATCHMENT; WATER EQUIVALENT; DEPLETION CURVES; THEMATIC MAPPER; SEASONAL SNOW; ALASKA; VARIABILITY; TERRAIN;
D O I
10.1002/hyp.7857
中图分类号
TV21 [水资源调查与水利规划];
学科分类号
081501 ;
摘要
Describing the spatial variability of heterogeneous snowpacks at a watershed or mountain-front scale is important for improvements in large-scale snowmelt modelling. Snowmelt depletion curves, which relate fractional decreases in snow-covered area (SCA) against normalized decreases in snow water equivalent (SWE), are a common approach to scale-up snowmelt models. Unfortunately, the kinds of ground-based observations that are used to develop depletion curves are expensive to gather and for large areas. We describe an approach incorporating remotely sensed fractional SCA (FSCA) data with coinciding daily snowmelt SWE outputs during ablation to quantify the shape of a depletion curve. We joined melt estimates from the Utah Energy Balance Snow Accumulation and Melt Model (UEB) with FSCA data calculated from a normalized difference snow index snow algorithm using NASA's moderate resolution imaging spectroradiometer (MODIS) visible (0.545-0.565 mu m) and shortwave infrared (1.628-1.652 mu m) reflectance data. We tested the approach at three 500 m(2) study sites, one in central Idaho and the other two on the North Slope in the Alaskan arctic. The UEB-MODIS-derived depletion curves were evaluated against depletion curves derived from ground-based snow surveys. Comparisons showed strong agreement between the independent estimates. Copyright (C) 2010 John Wiley & Sons, Ltd.
引用
收藏
页码:650 / 660
页数:11
相关论文
共 56 条
  • [1] DEVELOPMENT AND TESTING OF SNOW PACK ENERGY BALANCE EQUATIONS
    ANDERSON, EA
    [J]. WATER RESOURCES RESEARCH, 1968, 4 (01) : 19 - &
  • [2] Evaluation of spatial variability in snow water equivalent for a high mountain catchment
    Anderton, SP
    White, SM
    Alvera, B
    [J]. HYDROLOGICAL PROCESSES, 2004, 18 (03) : 435 - 453
  • [3] Assimilating remotely sensed snow observations into a macroscale hydrology model
    Andreadis, Konstantinos M.
    Lettenmaier, Dennis P.
    [J]. ADVANCES IN WATER RESOURCES, 2006, 29 (06) : 872 - 886
  • [4] [Anonymous], 1973, NATL WEATHER SERVICE
  • [5] [Anonymous], THESIS UTAH STATE U
  • [6] [Anonymous], 1976, POINT ENERGY MASS BA
  • [7] BENSON CS, 1993, ANN GLACIOL-SER, V18, P261, DOI 10.1017/S0260305500011629
  • [8] MODELING THE AREAL DEPLETION OF SNOWCOVER IN A FORESTED CATCHMENT
    BUTTLE, JM
    MCDONNELL, JJ
    [J]. JOURNAL OF HYDROLOGY, 1987, 90 (1-2) : 43 - 60
  • [9] Assimilation of snow covered area information into hydrologic and land-surface models
    Clark, Martyn P.
    Slater, Andrew G.
    Barrett, Andrew P.
    Hay, Lauren E.
    McCabe, Gregory J.
    Rajagopalan, Balaji
    Leavesley, George H.
    [J]. ADVANCES IN WATER RESOURCES, 2006, 29 (08) : 1209 - 1221
  • [10] Estimating the spatial distribution of snow in mountain basins using remote sensing and energy balance modeling
    Cline, DW
    Bales, RC
    Dozier, J
    [J]. WATER RESOURCES RESEARCH, 1998, 34 (05) : 1275 - 1285