Topographic and canopy controls on snow deposition, snow-cover energy balance and snowmelt

被引:0
|
作者
Marks, D. [1 ]
Winstral, A. [1 ]
Van Vactor, S.S. [1 ]
Robertson, D. [1 ]
机构
[1] USDA Agricultural Research Service, Northwest Watershed Research Center, Boise, Idaho 83712, United States
来源
IAHS-AISH Publication | 2000年 / 267期
关键词
Computer simulation - Deposition - Drainage - Snow - Watersheds;
D O I
暂无
中图分类号
学科分类号
摘要
Significant differences in snow deposition, development of the seasonal snow cover, and the timing of melt, occur between two experimental sites located in a headwater sub-drainage of the Reynolds Creek Experimental Watershed (RCEW) in the Owyhee Mountains of southwestern Idaho, USA. Snow, climate and stream discharge data were used to drive and verify a point snow-cover energy and mass balance model, SNOBAL, to evaluate these differences for three water years: 1984, the largest discharge year on record (204% of average), 1992, the smallest discharge year on record (36% of average), and 1999 (140% of average). The simulations showed that wind differences between sites are the most important cause of the snow cover differences between the sites. Though differences do occur in the snow-cover energy balance, these are primarily caused by the fact that reduced precipitation causes melt-out to occur earlier at site 176. This analysis shows the importance of understanding and accounting for variable patterns of snow deposition and redistribution of snow in semiarid regions.
引用
收藏
页码:129 / 135
相关论文
共 50 条
  • [21] MAPS OF SNOW-COVER PROBABILITY FOR NORTHERN HEMISPHERE
    DICKSON, RR
    POSEY, J
    MONTHLY WEATHER REVIEW, 1967, 95 (06) : 347 - &
  • [22] Snow-cover variability in central Asia between 2000 and 2011 derived from improved MODIS daily snow-cover products
    Dietz, Andreas Juergen
    Kuenzer, Claudia
    Conrad, Christopher
    INTERNATIONAL JOURNAL OF REMOTE SENSING, 2013, 34 (11) : 3879 - 3902
  • [23] Drivers of Eurasian Spring Snow-Cover Variability
    Zhang, Taotao
    Wang, Tao
    Zhao, Yutong
    Xu, Chaoyi
    Feng, Yingying
    Liu, Dan
    JOURNAL OF CLIMATE, 2021, 34 (06) : 2037 - 2052
  • [24] Utilizing multiple datasets for snow-cover mapping
    Tait, AB
    Hall, DK
    Foster, JL
    Armstrong, RL
    REMOTE SENSING OF ENVIRONMENT, 2000, 72 (01) : 111 - 126
  • [25] Estimating snow-cover trends from space
    Kat J. Bormann
    Ross D. Brown
    Chris Derksen
    Thomas H. Painter
    Nature Climate Change, 2018, 8 : 924 - 928
  • [26] Quantifying the impacts of snow on surface energy balance through assimilating snow cover fraction and snow depth
    Chunlei Meng
    Meteorology and Atmospheric Physics, 2017, 129 : 529 - 538
  • [27] Quantifying the impacts of snow on surface energy balance through assimilating snow cover fraction and snow depth
    Meng, Chunlei
    METEOROLOGY AND ATMOSPHERIC PHYSICS, 2017, 129 (05) : 529 - 538
  • [28] Evaluation of the Snowmelt Runoff Model in the Moroccan High Atlas Mountains using two snow-cover estimates
    Boudhar, Abdelghani
    Hanich, Lahoucine
    Boulet, Gilles
    Duchemin, Benoit
    Berjamy, Brahim
    Chehbouni, Abdelghani
    HYDROLOGICAL SCIENCES JOURNAL-JOURNAL DES SCIENCES HYDROLOGIQUES, 2009, 54 (06): : 1094 - 1113
  • [29] Visual simulation of snowfall, snow cover and snowmelt
    Muraoka, K
    Chiba, N
    SEVENTH INTERNATIONAL CONFERENCE ON PARALLEL AND DISTRIBUTED SYSTEMS: WORKSHOPS, PROCEEDINGS, 2000, : 187 - 194
  • [30] Monitoring recent changes in snow cover in Central Asia using improved MODIS snow-cover products
    LIU Jinping
    ZHANG Wanchang
    LIU Tie
    Journal of Arid Land, 2017, 9 (05) : 763 - 777