Implementation of a physically based water percolation routine in the Crocus/SURFEX (V7.3) snowpack model

被引:17
作者
D'Amboise, Christopher J. L. [1 ,2 ]
Mueller, Karsten [1 ]
Oxarango, Laurent [3 ]
Morin, Samuel [4 ]
Schuler, Thomas V. [2 ]
机构
[1] Norwegian Water Resources & Energy Directorate, N-0368 Oslo, Norway
[2] Univ Oslo, Dept Geosci, N-0316 Oslo, Norway
[3] Univ Grenoble Alpes, CNRS, IRD, IGE, F-38000 Grenoble, France
[4] Ctr Etud Neige, CNRM UMR 3589, Meteo France CNRS, Grenoble, France
关键词
FUNICULAR LIQUID TRANSITION; PREFERENTIAL FLOW; WET SNOW; THERMAL-CONDUCTIVITY; NUMERICAL-SOLUTION; LAYERED SNOWPACKS; SIMULATION-MODEL; MELTWATER; TRANSPORT; EQUATION;
D O I
10.5194/gmd-10-3547-2017
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
We present a new water percolation routine added to the one-dimensional snowpack model Crocus as an alternative to the empirical bucket routine. This routine solves the Richards equation, which describes flow of water through unsaturated porous snow governed by capillary suction, gravity and hydraulic conductivity of the snow layers. We tested the Richards routine on two data sets, one recorded from an automatic weather station over the winter of 2013-2014 at Filefjell, Norway, and the other an idealized synthetic data set. Model results using the Richards routine generally lead to higher water contents in the snow layers. Snow layers often reached a point at which the ice crystals' surface area is completely covered by a thin film of water (the transition between pendular and funicular regimes), at which feedback from the snow metamorphism and compaction routines are expected to be nonlinear. With the synthetic simulation 18% of snow layers obtained a saturation of > 10% and 0.57% of layers reached saturation of > 15 %. The Richards routine had a maximum liquid water content of 173.6 kg m(-3) whereas the bucket routine had a maximum of 42.1 kg m(-3). We found that wet-snow processes, such as wet-snow metamorphism and wet-snow compaction rates, are not accurately represented at higher water contents. These routines feed back on the Richards routines, which rely heavily on grain size and snow density. The parameter sets for the water retention curve and hydraulic conductivity of snow layers, which are used in the Richards routine, do not represent all the snow types that can be found in a natural snowpack. We show that the new routine has been implemented in the Crocus model, but due to feedback amplification and parameter uncertainties, meaningful applicability is limited. Updating or adapting other routines in Crocus, specifically the snow compaction routine and the grain metamorphism routine, is needed before Crocus can accurately simulate the snowpack using the Richards routine.
引用
收藏
页码:3547 / 3566
页数:20
相关论文
共 64 条
[31]   A multiple snow layer model including a parameterization of vertical water channel process in snowpack [J].
Katsushima, Takafumi ;
Kumakura, Toshiro ;
Takeuchi, Yukari .
COLD REGIONS SCIENCE AND TECHNOLOGY, 2009, 59 (2-3) :143-151
[32]   A multiphysical ensemble system of numerical snow modelling [J].
Lafaysse, Matthieu ;
Cluzet, Bertrand ;
Dumont, Marie ;
Lejeune, Yves ;
Vionnet, Vincent ;
Morin, Samuel .
CRYOSPHERE, 2017, 11 (03) :1173-1198
[33]   Model ling capillary hysteresis effects on preferential flow through melting and cold layered snowpacks [J].
Leroux, Nicolas R. ;
Pomeroy, John W. .
ADVANCES IN WATER RESOURCES, 2017, 107 :250-264
[34]  
Machguth H, 2016, NAT CLIM CHANGE, V6, P390, DOI [10.1038/nclimate2899, 10.1038/NCLIMATE2899]
[35]   WETTING FRONT ADVANCE AND FREEZING OF MELTWATER WITHIN A SNOW COVER .2. A SIMULATION-MODEL [J].
MARSH, P ;
WOO, MK .
WATER RESOURCES RESEARCH, 1984, 20 (12) :1865-1874
[36]  
Marsh P., 1991, Advances in Porous Media, V1, P61
[37]  
McClung D., 2006, AVALANCHE HDB, V3rd ed.
[38]   An 18-yr long (1993-2011) snow and meteorological dataset from a mid-altitude mountain site (Col de Porte, France, 1325m alt.) for driving and evaluating snowpack models [J].
Morin, S. ;
Lejeune, Y. ;
Lesaffre, B. ;
Panel, J-M ;
Poncet, D. ;
David, P. ;
Sudul, M. .
EARTH SYSTEM SCIENCE DATA, 2012, 4 (01) :13-21
[39]   The ISBA land surface parameterisation scheme [J].
Noilhan, J ;
Mahfouf, JF .
GLOBAL AND PLANETARY CHANGE, 1996, 13 (1-4) :145-159
[40]  
NVE, 2017, FIL DAT SET