Back to Search Start Over

Estimating kinetic mass transfer by resting-period measurements in flow-interruption tracer tests

Authors :
Scott C. Brooks
Jian Luo
Craig S. Criddle
Chunhui Lu
Peter K. Kitanidis
Philip M. Jardine
Baohua Gu
David B. Watson
Rulan Gong
Hefa Cheng
Wei-Min Wu
Source :
Journal of Contaminant Hydrology. 117:37-45
Publication Year :
2010
Publisher :
Elsevier BV, 2010.

Abstract

Flow-interruption tracer test is an effective approach to identify kinetic mass transfer processes for solute transport in subsurface media. By switching well pumping and resting, one may alter the dominant transport mechanism and generate special concentration patterns for identifying kinetic mass transfer processes. In the present research, we conducted three-phase (i.e., pumping, resting, and pumping) field-scale flow-interruption tracer tests using a conservative tracer bromide in a multiple-well system installed at the US Department of Energy Site, Oak Ridge, TN. A novel modeling approach based on the resting-period measurements was developed to estimate the mass transfer parameters. This approach completely relied on the measured breakthrough curves without requiring detailed aquifer characterization and solving transport equations in nonuniform, transient flow fields. Additional measurements, including hydraulic heads and tracer concentrations in large pumping wells, were taken to justify the assumption that mass transfer processes dominated concentration change during resting periods. The developed approach can be conveniently applied to any linear mass transfer model. Both first-order and multirate mass transfer models were applied to analyze the breakthrough curves at various monitoring wells. The multirate mass transfer model was capable of jointly fitting breakthrough curve behavior, showing the effectiveness and flexibility for incorporating aquifer heterogeneity and scale effects in upscaling effective mass transfer models.

Details

ISSN :
01697722
Volume :
117
Database :
OpenAIRE
Journal :
Journal of Contaminant Hydrology
Accession number :
edsair.doi.dedup.....43497dce9d15d5459ebac99206600fe7
Full Text :
https://doi.org/10.1016/j.jconhyd.2010.06.003