HR: 0800h
AN: H21B-1023 [Abstracts]
TI: On the Hydrological Setup of a Complex Basin Through its Hydrochemical Puzzle
AU: * Dahan, O
EM: odahan@bgu.ac.il
AF: Institute for Water Sciences & Technologies, Department of Environmental Hydrology & Microbiology,
Ben-Gurion University of the Negev, Sede Boqer Campus, Israel, Midreshet Ben Gurion, 84990
Israel
AU: McGraw, D
AF: Desert Research Institute, 2215 Raggio Parkway, Reno, NV 89512
United States
AU: Adar, E M
AF: Institute for Water Sciences & Technologies, Department of Environmental Hydrology & Microbiology,
Ben-Gurion University of the Negev, Sede Boqer Campus, Israel, Midreshet Ben Gurion, 84990
Israel
AU: Pohll, G
AF: Desert Research Institute, 2215 Raggio Parkway, Reno, NV 89512
United States
AU: Bohm, B
AF: Plumas Geo-Hydrology - Land and Water Resources, Blairsden-Graeagle, Portola, CA 96103
United States
AU: Thomas, J
AF: Desert Research Institute, 2215 Raggio Parkway, Reno, NV 89512
United States
AB:
Agricultural irrigation can make substantial changes to groundwater systems. This study focuses on an arid area in northern
Nevada, where 100 years of extensive irrigation has occurred. In particular, the impacts of long-term agricultural activities
on the groundwater fluid balance, geochemistry and potential changes to the water quality of a nearby river were
investigated. The study, conducted in the Fernley Basin in western Nevada, utilized two different modeling approaches to
construct a conceptual model that honors both the chemical and physical aspects of the basin groundwater flow regime. A
multi-variable mixing cell model was constructed to represent the hydrochemical approach, while a MODFLOW model was
constructed to represent the hydrogeological model. A geochemical and isotopic analysis of the basin and its margin
groundwater was conducted to identify all of the water sources that potentially flow through the basin and all water bodies
within the basin. Those water bodies and sources were incorporated into a mixing cell model that allowed delineation of the
general flow lines connecting the different water bodies within the basin with their sources. The mixing cell model results
were used to calibrate the hydrogeological model until a general agreement between the flow lines of both models was
achieved. The calibration of the hydrogeologic model included adjustments of the hydraulic conductivities the use of various
interpolation methods in order to calibrate the model flow lines into those found by the mixing cell model. The study showed
that parallel application of two different modeling approaches, the mixing cell model along with a hydrogeological model,
provides an excellent tool for the validation of the conceptual model. Moreover, it allowed calibration of the hydrogeologic
model not only to the water heads, as usually done in hydrogeological models, but also to the general flow lines that honors
the basin geochemistry.
DE: 3210 Modeling
DE: 1800 HYDROLOGY
DE: 1829 Groundwater hydrology
DE: 1832 Groundwater transport
DE: 1040 Isotopic composition/chemistry
SC: Hydrology [H]
MN: 2004 AGU Fall Meeting