Energy and water balance studies of a snow cover during snowmelt period at a high arctic site

被引:0
|
作者
O. Bruland
D. Maréchal
K. Sand
Å. Killingtveit
机构
[1]  Department of Hydraulic and Environmental Engineering,
[2] Norwegian University of Science and Technology (NTNU),undefined
[3] Trondheim,undefined
[4] Norway,undefined
[5]  SINTEF Civil and Environmental Engineering,undefined
[6] Trondheim,undefined
[7] Norway,undefined
来源
关键词
Snow Cover; Outgoing Longwave Radiation; Arctic Tundra; Energy Balance Model; Snowmelt Period;
D O I
暂无
中图分类号
学科分类号
摘要
 The predicted global warming is supposed to have an enhanced effect on the arctic regions. How this will influence the water, carbon dioxide and methane balances in the European arctic tundra is the objective of the EU-funded project “Understanding Land Surface Physical Processes in the Arctic” (LAPP), to which where SINTEF is one of several contributors. The snow cover is one of the limiting factors for these exchange processes and knowledge of how it behaves and will behave under a different climate is important. Data collected for water and energy balance studies in an area close to Ny-Ålesund at 79°N at Svalbard are the basis of this study. Measurements during the ablation periods since 1992 show an average air temperature for the periods of 2.1 °C, an average incoming shorwave radiation of 230 W/m2 and an average measured runoff intensity of 14 mm/day with a maximum of 68 mm/day. Three models of different complexity are tested in order to simulate the water and energy balance of a snow cover on the arctic tundra. The three models are: a complex numerical model (CROCUS), a simple energy balance model and a temperature index model. The simulations were carried out for the melt periods in 1992 and 1996 as these two periods represent very different meteorological conditions. The results of these simulations exposed weaknesses in all the models. The energy balance model lacks calculation of cold content in the snowpack. This influences both the outgoing longwave radiation and the timing of the melt. Due to the effect of compensating errors in the simulations, CROCUS performed better than the simple energy balance model but also this model has problems with the simulation of outgoing longwave radiation. The temperature index model does not perform well for snowmelt studies in regions were radiation is the main driving energy source for the melt.
引用
收藏
页码:53 / 63
页数:10
相关论文
共 50 条
  • [1] Energy and water balance studies of a snow cover during snowmelt period at a high arctic site
    Bruland, O
    Maréchal, D
    Sand, K
    Killingtveit, Å
    THEORETICAL AND APPLIED CLIMATOLOGY, 2001, 70 (1-4) : 53 - 63
  • [2] Topographic and canopy controls on snow deposition, snow-cover energy balance and snowmelt
    Marks, D
    Winstral, A
    Van Vactor, SS
    Robertson, D
    Davis, RE
    REMOTE SENSING AND HYDROLOGY 2000, 2001, (267): : 129 - 135
  • [3] Topographic and canopy controls on snow deposition, snow-cover energy balance and snowmelt
    Marks, D.
    Winstral, A.
    Van Vactor, S.S.
    Robertson, D.
    IAHS-AISH Publication, 2000, (267): : 129 - 135
  • [4] Comparison of snow deposition, the snow cover energy balance, and snowmelt at two sites in a semiarid mountain basin
    Marks, D
    Winstral, A
    JOURNAL OF HYDROMETEOROLOGY, 2001, 2 (03) : 213 - 227
  • [5] Snow cover and snowmelt of an extensive high arctic wetland: Spatial and temporal seasonal patterns
    Enneigement et fonte des neiges d'une vaste zone humide du haute arctique: Tendances spatiales et temporelles saisonnières
    Young, K. L. (klyoung@yorku.ca), 1600, Taylor and Francis Ltd. (57): : 738 - 755
  • [6] Snow cover and snowmelt of an extensive High Arctic wetland: spatial and temporal seasonal patterns
    Assini, Jane
    Young, Kathy L.
    HYDROLOGICAL SCIENCES JOURNAL-JOURNAL DES SCIENCES HYDROLOGIQUES, 2012, 57 (04): : 738 - 755
  • [7] An energy balance snowmelt model in a Mediterranean site
    Herrero, J.
    Polo, M. J.
    Monino, A.
    Losada, M. A.
    JOURNAL OF HYDROLOGY, 2009, 371 (1-4) : 98 - 107
  • [8] Modeling the Spatial Distribution of Snow Cover during the Spring Snowmelt
    Kalinin, V. G.
    Sumaneeva, K. I.
    Rusakov, V. S.
    RUSSIAN METEOROLOGY AND HYDROLOGY, 2019, 44 (02) : 136 - 144
  • [9] Modeling the Spatial Distribution of Snow Cover during the Spring Snowmelt
    V. G. Kalinin
    K. I. Sumaneeva
    V. S. Rusakov
    Russian Meteorology and Hydrology, 2019, 44 : 136 - 144
  • [10] Prairie and arctic areal snow cover mass balance using a blowing snow model
    Pomeroy, JW
    Li, L
    JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2000, 105 (D21) : 26619 - 26634