Literature DB >> 23969406

Complex resistivity signatures of ethanol biodegradation in porous media.

Yves Robert Personna1, Lee Slater, Dimitrios Ntarlagiannis, Dale Werkema, Zoltan Szabo.   

Abstract

Numerous adverse effects are associated with the accidental release of ethanol (EtOH) and its persistence in the subsurface. Geophysical techniques may permit non-invasive, real time monitoring of microbial degradation of hydrocarbon. We performed complex resistivity (CR) measurements in conjunction with geochemical data analysis on three microbial-stimulated and two control columns to investigate changes in electrical properties during EtOH biodegradation processes in porous media. A Debye Decomposition approach was applied to determine the chargeability (m), normalized chargeability (m(n)) and time constant (τ) of the polarization magnitude and relaxation length scale as a function of time. The CR responses showed a clear distinction between the bioaugmented and control columns in terms of real (σ') and imaginary (σ″) conductivity, phase (ϕ) and apparent formation factor (F(app)). Unlike the control columns, a substantial decrease in σ' and increase in F(app) occurred at an early time (within 4 days) of the experiment for all three bioaugmented columns. The observed decrease in σ' is opposite to previous studies on hydrocarbon biodegradation. These columns also exhibited increases in ϕ (up to ~9 mrad) and σ″ (up to two order of magnitude higher) 5 weeks after microbial inoculation. Variations in m and m(n) were consistent with temporal changes in ϕ and σ″ responses, respectively. Temporal geochemical changes and high resolution scanning electron microscopy imaging corroborated the CR findings, thus indicating the sensitivity of CR measurements to EtOH biodegradation processes. Our results offer insight into the potential application of CR measurements for long-term monitoring of biogeochemical and mineralogical changes during intrinsic and induced EtOH biodegradation in the subsurface.
© 2013 Elsevier B.V. All rights reserved.

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Keywords:  Biodegradation; Biofuels; Biogeophysics; Complex resistivity; Ethanol; Redox reactions

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Year:  2013        PMID: 23969406     DOI: 10.1016/j.jconhyd.2013.07.005

Source DB:  PubMed          Journal:  J Contam Hydrol        ISSN: 0169-7722            Impact factor:   3.188


  1 in total

1.  Geophysical methods for monitoring soil stabilization processes.

Authors:  Sina Saneiyan; Dimitrios Ntarlagiannis; D Dale Werkema; Andréa Ustra
Journal:  J Appl Geophy       Date:  2018       Impact factor: 2.121

  1 in total

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