HR: 0800h
AN: H21B-0512 [Abstracts]
TI: A New Multiple-layer Snow Model for Land Surface Models
AU: * Jeong, S
EM: jeong@ce.berkeley.edu
AF: Department of Civil and Environmental Engineering, University of California at Berkeley,
651 Davis Hall, University of California, Berkeley, CA 94720, United States
AU: Liang, X
EM: xuliang@engr.pitt.edu
AF: Department of Civil and Environmental Engineering, University of Pittsburgh, 941 Benedum
Hall, University of Pittsburgh, Pittsburgh, PA 15261, United States
AU: Dracup, J
EM: dracup@ce.berkeley.edu
AF: Department of Civil and Environmental Engineering, University of California at Berkeley,
651 Davis Hall, University of California, Berkeley, CA 94720, United States
AB:
Snow is an important component of the land surface energy and water budgets. In the western U.S., mountain
snowmelt accounts for 70-90% of the annual streamflow. The ability to prescribe and predict mountain snowpack
is critically important to hydrologic and atmospheric predictions. Recent studies have shown that significant
underestimations of snow water equivalent (SWE) by land surface models exist for mountainous regions, when
compared to observations. Our analysis has shown that uncertainties in the forcings due to scale incompatibility
and possibly other factors cannot explain the majority of the large SWE underestimation found between the model
and SNOpack TELemetry (SNOTEL) for mountainous regions, especially for moderate and deep snowpacks.
Motivated by the significant underestimations of SWE, especially during the snow melt process, we develop a
new snow model which includes a more complete description of the snow physics of the heat transfer processes
(e.g., heat conduction, heat transfer by vapor diffusion, liquid water retention, extinction of short wave radiation,
melting and refreezing, etc.) within a snow pack. A flexible time-varying multi-layer approach is employed for the
new snow model. The new layer structure and physical processes of the new snow model allow the snow
properties of each of the multiple snow layers to be simulated more accurately, especially for deep snowpacks,
where current models do not perform well. This new model is coupled with the Variable Infiltration Capacity (VIC)
land surface model and will be tested using 18-year observed data available in the Valdai water-balance
research site in Russia for shallow snowpacks, and data from the California SNOTEL sites for deep snowpacks.
DE: 0736 Snow (1827, 1863)
DE: 0764 Energy balance
DE: 1843 Land/atmosphere interactions (1218, 1631, 3322)
DE: 1847 Modeling
DE: 1863 Snow and ice (0736, 0738, 0776, 1827)
SC: Hydrology [H]
MN: 2007 Fall Meeting