Alyssa M. Dausman
United States Geological Survey
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Featured researches published by Alyssa M. Dausman.
Ground Water | 2010
Alyssa M. Dausman; John Doherty; Christian D. Langevin; Michael C. Sukop
The present study demonstrates a methodology for optimization of environmental data acquisition. Based on the premise that the worth of data increases in proportion to its ability to reduce the uncertainty of key model predictions, the methodology can be used to compare the worth of different data types, gathered at different locations within study areas of arbitrary complexity. The method is applied to a hypothetical nonlinear, variable density numerical model of salt and heat transport. The relative utilities of temperature and concentration measurements at different locations within the model domain are assessed in terms of their ability to reduce the uncertainty associated with predictions of movement of the salt water interface in response to a decrease in fresh water recharge. In order to test the sensitivity of the method to nonlinear model behavior, analyses were repeated for multiple realizations of system properties. Rankings of observation worth were similar for all realizations, indicating robust performance of the methodology when employed in conjunction with a highly nonlinear model. The analysis showed that while concentration and temperature measurements can both aid in the prediction of interface movement, concentration measurements, especially when taken in proximity to the interface at locations where the interface is expected to move, are of greater worth than temperature measurements. Nevertheless, it was also demonstrated that pairs of temperature measurements, taken in strategic locations with respect to the interface, can also lead to more precise predictions of interface movement.
Ground Water | 2010
Christian D. Langevin; Alyssa M. Dausman; Michael C. Sukop
SEAWAT is a coupled version of MODFLOW and MT3DMS designed to simulate variable-density ground water flow and solute transport. The most recent version of SEAWAT, called SEAWAT Version 4, includes new capabilities to represent simultaneous multispecies solute and heat transport. To test the new features in SEAWAT, the laboratory experiment of Henry and Hilleke (1972) was simulated. Henry and Hilleke used warm fresh water to recharge a large sand-filled glass tank. A cold salt water boundary was represented on one side. Adjustable heating pads were used to heat the bottom and left sides of the tank. In the laboratory experiment, Henry and Hilleke observed both salt water and fresh water flow systems separated by a narrow transition zone. After minor tuning of several input parameters with a parameter estimation program, results from the SEAWAT simulation show good agreement with the experiment. SEAWAT results suggest that heat loss to the room was more than expected by Henry and Hilleke, and that multiple thermal convection cells are the likely cause of the widened transition zone near the hot end of the tank. Other computer programs with similar capabilities may benefit from benchmark testing with the Henry and Hilleke laboratory experiment.
Techniques and Methods | 2008
Christian D. Langevin; Daniel T. Thorne; Alyssa M. Dausman; Michael C. Sukop; Weixing Guo
Scientific Investigations Report | 2005
Alyssa M. Dausman; Christian D. Langevin
Hydrogeology Journal | 2009
Alyssa M. Dausman; John Doherty; Christian D. Langevin; Joann F. Dixon
Techniques and Methods | 2013
Mark Bakker; Frans Schaars; Joseph D. Hughes; Christian D. Langevin; Alyssa M. Dausman
Archive | 2010
Alyssa M. Dausman; Christian D. Langevin; Mark Bakker; Frans Schaars
Hydrogeology Journal | 2011
Ivana La Licata; Christian D. Langevin; Alyssa M. Dausman; Luca Alberti
Scientific Investigations Report | 2010
Alyssa M. Dausman; Christian D. Langevin; Danny T. Thorne; Michael C. Sukop
IAHS-AISH publication | 2007
Alyssa M. Dausman; Christian D. Langevin; Michael C. Sukop