HR: 0800h
AN: C31A-0280 [Abstracts]
TI: Snow, Shrubs, Grasses, and Footprint Theory: Measuring Moisture and Energy Fluxes in Patchy
Landscapes
AU: * Strack, J E
EM: jstrack@atmos.colostate.edu
AF: Department of Atmospheric Science, 1371 Campus Delivery,
Colorado State University, Fort Collins, CO 80523-1371
United States
AU: Liston, G E
EM: liston@atmos.colostate.edu
AF: Department of Atmospheric Science, 1371 Campus Delivery,
Colorado State University, Fort Collins, CO 80523-1371
United States
AU: Hiemstra, C A
EM: hiemstra@atmos.colostate.edu
AF: Department of Atmospheric Science, 1371 Campus Delivery,
Colorado State University, Fort Collins, CO 80523-1371
United States
AU: Pielke, R A
EM: pielke@atmos.colostate.edu
AF: Department of Atmospheric Science, 1371 Campus Delivery,
Colorado State University, Fort Collins, CO 80523-1371
United States
AB:
When measuring sensible and latent heat flux from a tower within a heterogeneous landscape, one must consider which part of
the landscape influences the flux sampled by the instruments. This variable landscape fraction, known as a footprint, is
dependent upon wind direction, wind speed and atmospheric stability (thermal and mechanical).
From 1 December 2002 - 31 March 2003, the FLuxes Over Snow Surfaces II (FLOSS II) field campaign measured sensible and latent
heat fluxes at various heights on a 34 m tower in North Park, Colorado. North Park is an intermountain basin covered with a
mixture of shrubs and graminoids (grasses and sedges) that interact with winter snow and wind to produce heterogeneous snow
covers and, depending on the depth, protruding vegetation. During this period, snow depth measurements were made along
transects extending 400-600 m upwind of the tower roughly every ten days. These snow depth data, in combination with
blowing-snow model (SnowTran-3D) simulations, provided daily snow-depth distributions on a 1-meter grid over the area
surrounding the flux tower. In addition, shrub height and vertical biomass profiles were measured and combined with a
vegetation map having a 1-meter sampling scale. Merging the snow-depth distributions with the vegetation-height map allowed
us to quantify the amount of vegetation protruding above the snow. This, in turn, allowed us to analyze the influence of
exposed vegetation on observed energy and moisture fluxes. In this poster we describe our model for identifying the landscape
fraction gauged by the flux-tower instruments as a function of commonly observed atmospheric conditions.
DE: 3322 Land/atmosphere interactions
DE: 3307 Boundary layer processes
SC: Cryosphere [C]
MN: 2004 AGU Fall Meeting