Laboratory simulations of self-potential signals to assist groundwater studies

Carlos Alberto Mendonça, Suzan Sousa de Vasconcelos, André Campos Guaragna Kowalski

Abstract


We present a brief history of experimental simulations with electrokinetic potential signals observed when common porous geological media are subjected to water flow regimes. The laboratory simulations at Instituto de Astronomia, Geofísica e Ciências Atmosféricas (IAG) of the Universidade de São Paulo (USP) had to overcome several challenges over years of research work, by developing experimental design, choice of materials, and software development to guide real data interpretation and definition of acquisition procedures to be implemented in practice. In this commemorative issue honouring the IAG/USP graduate program, we discuss some of our former results, including a set of original data for two laboratory experiments developed. The first experiment characterizes electrokinetic signals under controlled pumping regimes to illustrate the sensitivity of such potentials to structures with contrasting properties. The second study discusses model response for discrete fractures to guide field data interpretation to determine the hydraulic head in unconnected fractured systems by monitoring the variation of the electrokinetic potential after a borehole is pumped. In both cases, the experimental simulations are useful to understand the electric potentials of electrokinetic origin, pointing out their advantages in characterizing the subsurface hydraulic conditions when a borehole is pumped.

Keywords


electrokinetic potential; laboratory simulation; hydrogeophysics; crystalline aquifers; groundwater flow.

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References


Boleve, A., A. Crespy, A. Revil, F. Janod, and J.-L. Mattiuzzo, 2007, Streaming potentials of granular media: Influence of the Dukhin and Reynolds numbers: Journal of Geophysical Research: Solid Earth, 112, B08204, doi: 10.1029/2006JB004673.

Christensen, T. H., P. L. Bjerg, S. A. Banwart, R. Jakobsen, G. Heron, and H. J. Albrechtsen, 2000, Characterization of redox conditions in groundwater contaminant plumes: Journal of Contaminant Hydrology, 45, 165–241, doi: 10.1016/S0169-7722(00)00109-1.

Fachin, S. J., E. L. Abreu, C. A. Mendonça, A. Revil, G. C. Novaes, and S. S. Vasconcelos, 2012, Self-potential signals from an analog biogeobattery model: Geophysics, 77, EN29–EN37, doi: 10.1190/geo2011-0352.1.

Ishido, T., and J. W. Pritchett, 1999, Numerical simulation of electrokinetic potentials associated with subsurface fluid flow: Journal of Geophysical Research: Solid Earth, 104, 15247–15259, doi: 10.1029/1999JB900093.

Kowalski, A. C., C. A. Mendonça, and U. S. Ofterdinger, 2020, Fracture flow characterization with low-noise spontaneous potential logging: Groundwater, 59, 16–23, doi: 10.1111/gwat.13009.

Kowalski, A. C., C. A. Mendonça, U. S. Ofterdinger, and H. R. Rocha, 2021, Fracture critical length estimative using percolation theory and well logging data: Journal of Environmental and Engineering Geophysics, 26, 279–286, doi: 10.32389/JEEG21-019.

Marshall, D. J., and T. R. Madden, 1959, Induced polarization, a study of its causes: Geophysics, 24, 790–816, doi: 10.1190/1.1438659.

Masliyah, J., and S. Bhattacharjee, 2006, Electrokinetic and colloidal transport phenonema: Wiley-Interscience: Hoboken, New Jersey. 707 pp.

Mendonça, C. A., 2008, Forward and inverse self-potential modeling in mineral exploration.: Geophysics, 73, F33–F43, doi: 10.1190/1.2821191.

Morgan, F., E. Williams, and T. Madden, 1989, Streaming potential properties of westerly granite with applications: Journal of Geophysical Research: Solid Earth, 94, 12449–12461, doi: 10.1029/JB094iB09p12449.

Nourbehecht, B., 1963, Irreversible thermodynamic effects in inhomogeneous media and their applications in certain geoelectric problems: PhD thesis, Massachusetts Institute of Technology, Colorado School of Mine. Cambridge, Massachusetts. 121 pp.

Onsager, L., 1931, Reciprocal relations in irreversible processes. I.: Physical Review, 37, 405, doi: 10.1103/PhysRev.37.405.

Revil, A., M. Karaoulis, T. Johnson, and A. Kemma, 2012, Review: Some low-frequency electrical methods for subsurface characterization and monitoring in hydrogeology: Hydrogeology Journal, 20, 617–658, doi: 10.1007/s10040-011-0819-x.

Revil, A., C. A. Mendonça, E. A. Atekwana, B. Kulessa, S. S. Hubbard, and K. J. Bohlen, 2010, Understanding biogeobatteries: Where geophysics meets microbiology: Journal Geophysical Research, 115, G00G02, doi: doi:10.1029/2009JG001065.

Silva, N., 2011, Estudo de sinal elétrico de potencial espontâneo associado ao fluxo de água em meios porosos: PhD thesis, São Paulo, SP, Brazil. 98 pp.

Silva, N., S. S. de Vasconcelos, and C. A. Mendonça, 2021, Constraints for mapping subsurface current sources: Brazilian Journal of Geophysics, 39, 479–488, doi: 10.22564/rbgf.v39i4.2099.

Vasconcelos, S. S., C. A. Mendonça, and N. Silva, 2014, Self-potential signals from pumping tests in laboratory experiments: Geophysics, 79, EN125–EN133, doi: 10.1190/geo2013-0444.1.




DOI: http://dx.doi.org/10.22564/brjg.v40i6.2201

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