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Application of spectral induced polarization for characterizing surfactant-enhanced DNAPL remediation in laboratory column experiments.

Authors :
Deng, Yaping
Shi, Xiaoqing
Zhang, Zhenyu
Sun, Yuanyuan
Wu, Jichun
Qian, Jiazhong
Source :
Journal of Contaminant Hydrology. Mar2020, Vol. 230, pN.PAG-N.PAG. 1p.
Publication Year :
2020

Abstract

The widespread presence of entrapped dense non-aqueous phase liquid (DNAPL) in the subsurface poses a continuing challenge to groundwater remediation. Cost-effective and high-resolution subsurface characterization is a critical issue for further DNAPL recovery due to the complexity of DNAPL source zone architecture (SZA). Geophysical techniques provide a noninvasive, spatially continuous and cost-effective way for monitoring the DNAPL remediation process. In particular, the spectral induced polarization (SIP) method has shown great potential in environmental problems. In this study, we performed real-time SIP measurements on DNAPL contaminated soil in columns to quantitatively assess the ability of SIP method for monitoring surfactant-enhanced DNAPL remediation process. Chemical data was simultaneously collected during the remediation process to verify the results obtained by SIP method. Taking account into the variations of subsurface environment, we conducted a series of column flushing experiments under different flow rate, surfactant concentrations and fluid salinities. The results highlight that SIP method is able to effectively monitor the DNAPL remediation process, as well as to evaluate the remediation efficiency under different conditions. The variations in the flow rate, the concentration of surfactant and the salinity of pore water not only affect remediation effectiveness, but also have an impact on the SIP signatures. This study shows that SIP performs better for monitoring DNAPL remediation at a relatively low flow rate of ~ 0.4 m/d, low surfactant concentration of 5000 mg/L and high salinity of 1.0 S/m, with an error of saturation estimation (RMSE S) <0.1. • The SIP method was effectively applied to monitor the surfactant-enhanced DNAPL remediation process in column experiments. • The in-phase conductivity increases while the phase decreases during the continuous surfactant flushing. • The DNAPL saturation and remediation efficiency estimated by SIP method was in good accordance with the chemical analysis. • The SIP method performs better under the condition of low flow rate, low surfactant concentration and high fluid salinity. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
01697722
Volume :
230
Database :
Academic Search Index
Journal :
Journal of Contaminant Hydrology
Publication Type :
Academic Journal
Accession number :
142044875
Full Text :
https://doi.org/10.1016/j.jconhyd.2020.103603