HR: 1340h
AN: H53F-1493 [Abstracts]
TI: Land Retirement as a Habitat Restoration Tool
AU: * Singh, P N
EM: pnsingh@ucdavis.edu
AF: University of California, Davis, One Shields Avenue, Davis, CA 95616, United States
AU: Wallender, W W
EM: wwwallender@ucdavis.edu
AF: University of California, Davis, One Shields Avenue, Davis, CA 95616, United States
AB:
Use of intensive irrigation in arid and semi-arid areas usually leads to gradual salination of the soil leading to
crop yield decline. The salination problem is mitigated by applying irrigation in excess of crop requirements,
which leaches the excess salt load to the groundwater. Insufficient natural or man made drainage to dispose off
this saline recharge to the groundwater leads to a gradual rise in the water table and eventual encroachment
upon the root zone. This may ultimately make the land unfit for any economically productive activity. The
abandoned land may even lead to desertification with adverse environmental consequences. In drainage basins
with no surface outflow (sometimes called closed basins), land retirement has been proposed as a
management tool to address this problem. Land retirement essentially entails intentionally discontinuing
irrigation of selected farmlands with the expectation that the shallow water table beneath those lands should drop
and the root zone salinity level should decrease.
In the San Joaquin Valley of California, intensive irrigation in conjunction with a shallow underlying layer of clay,
known as the Corcoran clay layer and absence of a drainage system caused the root zone to become highly
saline and the shallow water table to rise. Land retirement would remove from production those farmlands
contributing the poorest quality subsurface drain water. Based on numerical models results, it was expected that
with land retirement of substantial irrigated lands with poor drainage characteristics, beneath which lies shallow
groundwater with high salt load, the shallow water table beneath those lands should drop. A part of the retired
lands could also be used for wildlife habitat. A potential negative side of the land retirement option that has to be
considered is that in certain enabling evapotranspiration, soil and water table conditions, water will be drawn
upwards and evaporated, leaving a deposit of salts on the surface and in the root zone. Salt on the surface may
then be wind blown to adjacent areas creating a potential environmental hazard.
Using field results from the U.S. Department of the Interior Land Retirement Demonstration Project at the
Tranquillity site located in western Fresno County, principles of mass balance in a fixed control volume, the
HYDRUS-1D Software Package for Simulating the One-Dimensional Movement of Water, Heat, and Multiple
Solutes in Variably-Saturated Media, and PEST, a model-independent parameter optimizer, we have
investigated the processes of soil water and salinity movement in the root zone and the deep vadose zone.
Various combinations of evapotranspiration, soil water retention properties, water table condition and top and
bottom boundary condition were tested. We show that certain Land Retirement scenarios decrease shallow
water table and soil water salinity and enhance development of native plants as a means to facilitate habitat
restoration for certain combination of soil and bottom boundary condition. Other combinations are not sustainable.
DE: 1813 Eco-hydrology
DE: 1865 Soils (0486)
DE: 1875 Vadose zone
DE: 1880 Water management (6334)
SC: Hydrology [H]
MN: 2007 Fall Meeting