A fractal model for the electrical conductivity of water-saturated porous media during mineral precipitation-dissolution processes
arXiv:2008.13673 · doi:10.1016/j.advwatres.2020.103742
Abstract
Precipitation and dissolution are prime processes in carbonate rocks and being able to monitor them is of major importance for aquifer and reservoir exploitation or environmental studies. Electrical conductivity is a physical property sensitive both to transport phenomena of porous media and to dissolution and precipitation processes. However, its quantitative use depends on the effectiveness of the petrophysical relationship to relate the electrical conductivity to hydrological properties of interest. In this work, we develop a new physically-based model to estimate the electrical conductivity by upscaling a microstructural description of water-saturated fractal porous media. This model is successfully compared to published data from both unconsolidated and consolidated samples, or during precipitation and dissolution numerical experiments. For the latter, we show that the permeability can be linked to the predicted electrical conductivity.
References in corpus (4)
- Modification of streaming potential by precipitation of calcite in a sand-water system: laboratory measurements pH range from 4 to 12
- A simple hysteretic constitutive model for unsaturated flow
- A physically-based analytical model to describe effective excess charge for streaming potential generation in water saturated porous media
- Variations of petrophysical properties and spectral induced polarization in response to drainage and imbibition: a study on a correlated random tube network