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D. Jougnot

Publications and source records attributed to D. Jougnot.

5 recordsLinked to original sources

EA-ERT: a new ensemble approach to convert time-lapse ERT data to soil water content

Electrical Resistivity Tomography (ERT) is increasingly used to study subsurface hydrological processes. It shows promising potential for estimating soil water content, a key but challenging property to quantify. However, converting the resistivity signal into water content is complex. This encourages developing approaches to increase the robustness of estimates while facilitating the evaluation of uncertainties. In this paper, we propose an innovative method, called the Ensemble Approach ERT (EA-ERT), to build an ensemble model of electrical resistivity calibrated from field data and then to convert it into a spatial distribution of water content. This approach combines time-lapse ERT data with point-based in-situ soil water content measurements. It enables i) circumventing inversion parameter choice by evaluating the performance of a large number of models, ii) estimating uncertainty in the final model by calculating the coefficient of variation among the models composing the ensemble, and iii) converting electrical resistivity models to water content. The method was tested at two dissimilar field sites in southern France. For each site, an ensemble model, built from multiple inversions, was selected and converted into soil water content. The calculated values showed a good fit, with small differences compared to in-situ measurements. Areas of high uncertainty were identified, providing complementary information to the more classical indicators from the inversion code. EA-ERT provides a robust and automatable method to convert ERT data to related parameters, contributing to improved monitoring and understanding processes in the subsurface.

physics.geo-ph

Petrophysical Characterization of Fractured Limestone from Beauce Aquifer Vadose Zone (O-ZNS Observatory, France)

In recent years, water needs increased, driven by climate change and world population growth. In this context, we study groundwater flow in the vadose zone of Beauce aquifer (O-ZNS site, France). This lacustrine limestone vadose zone is characterized by multi-scale heterogeneities. They are defined by strongly various pore structures. This leads to uncertainties for reservoir properties prediction using geophysical methods which impacts reservoir models for flow simulations.In this study, we combined microstructure description and petrophysical analysis in order to model and predict reservoir properties based on different limestones facies and to infer the influence of weathering/fracturing on both acoustics and electrical properties.A total of 16 samples from these facies were cored and characterized by their porosity, permeability, acoustic velocities, complex electrical properties and microstructure analysis.Based on our multi-method approach, we demonstrated the influence of rock structure on reservoir properties prediction and modelling. Petrophysical and microstructure characterization have highlighted two main facies (microporous and homogenous facies and macroporous and heterogenous facies) which can be used to improve reservoir and flow models. However, further development is needed in order to quantify macropores and their link with weathering and to assess permeability models using electrical properties.

physics.geo-ph

Streaming potential modeling in fractured rock: Insights into the identification of hydraulically active fractures

Numerous field experiments suggest that the self-potential (SP) geophysical method may allow for the detection of hydraulically active fractures and provide information about fracture properties. However, a lack of suitable numerical tools for modeling streaming potentials in fractured media prevents quantitative interpretation and limits our understanding of how the SP method can be used in this regard. To address this issue, we present a highly efficient two-dimensional discrete-dual-porosity approach for solving the fluid flow and associated self-potential problems in fractured rock. Our approach is specifically designed for complex fracture networks that cannot be investigated using standard numerical methods. We then simulate SP signals associated with pumping conditions for a number of examples to show that (i) accounting for matrix fluid flow is essential for accurate SP modeling and (ii) the sensitivity of SP to hydraulically active fractures is intimately linked with fracture-matrix fluid interactions. This implies that fractures associated with strong SP amplitudes are likely to be hydraulically conductive, attracting fluid flow from the surrounding matrix.

physics.geo-ph

Seismoelectric effects due to mesoscopic heterogeneities

While the seismic effects of wave-induced fluid flow due to mesoscopic heterogeneities have been studied for several decades, the role played by these types of heterogeneities on seismoelectric phenomena is largely unexplored. To address this issue, we have developed a novel methodological framework which allows for the coupling of wave-induced fluid flow, as inferred through numerical oscillatory compressibility tests, with the pertinent seismoelectric conversion mechanisms. Simulating the corresponding response of a water-saturated sandstone sample containing mesoscopic fractures, we demonstrate for the first time that these kinds of heterogeneities can produce measurable seismoelectric signals under typical laboratory conditions. Given that this phenomenon is sensitive to key hydraulic and mechanical properties, we expect that the results of this pilot study will stimulate further exploration on this topic in several domains of the Earth, environmental, and engineering sciences.

physics.geo-ph

Self-potentials in partially saturated media: the importance of explicit modeling of electrode effects

Self-potential (SP) data are of interest to vadose zone hydrology because of their direct sensitivity to water flow and ionic transport. There is unfortunately little consensus in the literature about how to best model SP data under partially saturated conditions and different approaches (often supported by one laboratory data set alone) have been proposed. We argue herein that this lack of agreement can largely be traced to electrode effects that have not been properly taken into account. A series of drainage and imbibition experiments are considered, in which we find that previously proposed approaches to remove electrode effects are unlikely to provide adequate corrections. Instead, we explicitly model the electrode effects together with classical SP contributions using a flow and transport model. The simulated data agree overall with the observed SP signals and allow decomposing the different signal contributions to analyze them separately. By reviewing other published experimental data, we suggest that most of them include electrode effects that have not been properly taken into account. Our results suggest that previously presented SP theory works well when considering the modeling uncertainties presently associated with electrode effects. Additional work is warranted to not only develop suitable electrodes for laboratory experiments, but also to assure that associated electrode effects that appear inevitable in longer-term experiments are predictable, such that they can be incorporated in the modeling framework.

physics.geo-ph