HR: 0800h
AN: C31A-0278 INVITED [Abstracts]
TI: A Distributed Snow Evolution Modeling System (SnowModel)
AU: * Liston, G E
EM: liston@atmos.colostate.edu
AF: Colorado State University, Department of Atmospheric Science, Fort Collins, CO 80523-1371
United States
AU: Elder, K
EM: kelder@fs.fed.us
AF: Rocky Mountain Research Station, USDA Forest Service, Fort Collins, CO 80526
United States
AB:
A spatially distributed snow-evolution modeling system (SnowModel) has been specifically designed to be applicable over a
wide range of snow landscapes, climates, and conditions. To reach this goal, SnowModel is composed of four sub-models:
MicroMet defines the meteorological forcing conditions, EnBal calculates surface energy exchanges, SnowMass simulates snow
depth and water-equivalent evolution, and SnowTran-3D accounts for snow redistribution by wind. While other distributed snow
models exist, SnowModel is unique in that it includes a well-tested blowing-snow sub-model (SnowTran-3D) for application in
windy arctic, alpine, and prairie environments where snowdrifts are common. These environments comprise 68% of the
seasonally snow-covered Northern Hemisphere land surface. SnowModel also accounts for snow processes occurring in forested
environments (e.g., canopy interception related processes).
SnowModel is designed to simulate snow-related physical processes occurring at spatial scales of 5-m and greater, and
temporal scales of 1-hour and greater. These include: accumulation from precipitation; wind redistribution and sublimation;
loading, unloading, and sublimation within forest canopies; snow-density evolution; and snowpack ripening and melt. To
enhance its wide applicability, SnowModel includes the physical calculations required to simulate snow evolution within each
of the global snow classes defined by Sturm et al. (1995), e.g., tundra, taiga, alpine, prairie, maritime, and ephemeral snow
covers. The three, 25-km by 25-km, Cold Land Processes Experiment (CLPX) mesoscale study areas (MSAs: Fraser, North Park,
and Rabbit Ears) are used as SnowModel simulation examples to highlight model strengths, weaknesses, and features in
forested, semi-forested, alpine, and shrubland environments.
DE: 1863 Snow and ice (1827)
SC: Cryosphere [C]
MN: 2004 AGU Fall Meeting