HR: 11:35h
AN: H42A-06 [Abstracts]
TI: Field Measurements of Contaminant Flux by Integrated Pump Tests
AU: * Brooks, M C
EM: Brooks.Michael@epamail.epa.gov
AF: US EPA, Kerr Research Center
919 Kerr Research Drive, Ada, OK 74820
United States
AU: Enfield, C G
EM: Enfield.Carl@epa.gov
AF: US EPA, 26 West Martin Luther King Drive, Cincinnati, OH 45268
United States
AU: Annable, M D
EM: annable@ufl.edu
AF: University of Florida, Department of Environmental Science
217 A.P. Black Hall, Gainesville, FL 32611
United States
AU: Wood, A L
EM: Wood.Lynn@epa.gov
AF: US EPA, Kerr Research Center
919 Kerr Research Drive, Ada, OK 74820
United States
AB:
Current remedial techniques are unable to completely eliminate all dense nonaqueous phase liquid (DNAPL) from source zone
areas and conflicting views on the benefits of partial DNAPL source zone remediation exist in the literature. A comparison
of flux measurements before and after remedial activities is one metric that has been proposed to elucidate benefits of
partially alleviating DNAPL source-zones. Historically, contaminant flux has been estimated from distinct field measurements
of hydraulic gradient, hydraulic conductivity, and contaminant concentration. The objective of this work is to investigate
the use of integrated pump tests for field flux measurements. This technique consists of extracting water from a series of
wells aligned perpendicular to the groundwater flow direction. Analytical solutions to pumping well(s) in a uniform flow
field are used with head measurements and pumping rates to directly estimate the Darcy velocity (without independent
estimates of hydraulic gradient and hydraulic conductivity), which is used with analytical chemistry results to estimate the
contaminant flux. Results are presented from four test sites located in Fort Lewis, Washington; Borden, Ontario;
Jacksonville, Florida; and Hill Air Force Base, Utah. A comparison is made to an independent flux measurement technique
based on tracer-laden absorbent material placed in the same well series. Both techniques give similar order-of-magnitude
results, and better agreement between the techniques may be hampered by differences in the underlying spatial scales of
measurement between the techniques. Overall, the results to date indicate that integrated pump tests may provide an
order-of-magnitude or better measure of mass flux.
DE: 1829 Groundwater hydrology
DE: 1831 Groundwater quality
DE: 1832 Groundwater transport
SC: Hydrology [H]
MN: 2004 AGU Fall Meeting