HR: 0800h
AN: H31C-0404 [Abstracts]
TI: ETRS Arrays: Boundary layer-to-water table total flux measurement system
AU: * Marks, D
EM: danny@nwrc.ars.usda.gov
AF: USDA-ARS Northwest Watershed Research Center, 800 Park Blvd., Suite 105, Boise, ID 83712-7742
United States
AU: Duffy, C J
EM: cxd11@psu.edu
AF: Civil and Environmental Engineering, Penn State University, 212 Sackett Bldg, University Park, PA 16802
United States
AU: Seyfried, M
EM: mseyfrie@nwrc.ars.usda.gov
AF: USDA-ARS Northwest Watershed Research Center, 800 Park Blvd., Suite 105, Boise, ID 83712-7742
United States
AB:
Developing an observing system that will close the water and energy balance over a specified region (site, hill slope,
catchment) in complex terrain is a difficult problem. In this research we propose to integrate three independent flux
measurement systems for evapotranspiration, snowmelt, and infiltration/recharge, into a single coherent measurement platform.
We refer to the measurement system as an ETRS Array (Evaporation, Transpiration, Recharge, Snowmelt). The goal of the ETRS
measurement system is to close the vertical and horizontal energy and moisture flux in a finite volume of soil, snow, and
atmosphere extending from the water table to the atmospheric boundary layer. The concept has recently been proposed to
measure ET from shallow water tables at riparian sites in the Rio Grande in New Mexico. Here we extend the concept to include
snowmelt processes. Eddy covariance (EC) systems with complete meteorological observations are used to monitor both above
and below canopy fluxes of heat and moisture. Snowcover energy, mass balance and melt for the site volume are computed from
above and below canopy precipitation, and canopy corrected radiation, temperature, humidity and wind. Validation of the snow
energy and mass state is derived from continuously monitored snow depth, temperature and water equivalent (SWE) and is
augmented with bi-weekly snow pits and courses, and a series of detailed snow surveys conducted during mid-winter, at peak
accumulation, and during ablation. Concurrent soil temperature and moisture arrays and water table measurements are use to
monitor the below ground portion of the volume. The experimental design requires sensor arrays to be deployed at the centroid
and boundaries of the soil volume such that the net vertical flux (E, T, and R) through the soil column and lateral flow
advected through the below ground portion of the volume can be formed along with the snowcover energy and mass balance and
the EC data into a complete water and energy balance of the soil-snow-atmosphere volume. For the subsurface, a local, dynamic
water balance is formed by direct integration of Richards' equation using a Finite Volume (FV) formulation of
unsaturated-saturated moisture storage. The resulting dynamical system is continuous in time, discrete in space. Using field
estimates of soil characteristic curves, the dynamical equations are solved numerically. An example design will presented
for a field site in a small headwater catchment within the Reynolds Creek Experimental Watershed in Idaho. This research will
show how the theory can be used for optimal sensor design given soil conditions and approximate depth to water table.
DE: 3307 Boundary layer processes
DE: 1829 Groundwater hydrology
DE: 1863 Snow and ice (1827)
DE: 1878 Water/energy interactions
DE: 1894 Instruments and techniques
SC: Hydrology [H]
MN: 2004 AGU Fall Meeting