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Γ0 resistivity monitoring for environmental and engineering applications

机译:Γ0电阻率监测,用于环境和工程应用

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Resistivity imaging has become widely used in engineering and environmental applications thanks to enhanced capabilities in the past couple of decades. A problem is ambiguities in the geological interpretation due to similar resistivity or insufficient contrast between different materials. Monitoring, or time-lapse, resistivity investigations can overcome some of these problems, as it makes it possible to separate change in resistivity due to for example chemical composition of pore fluid from the spatial variation due to the geology. The presented results demonstrate that resistivity monitoring is a powerful tool to trace changes in the ground that occur as a result of variation in water, ion or gas content, or temperature. The results show a strong potential for resistivity monitoring in 2D and 3D for engineering and environmental applications. This includes natural or man-induced movement of fluids or gas in natural ground as well as man-made structures, and change in material properties by for example internal erosion. The method can be used not only to monitor transport of water and solutes in the ground, but also to study e.g. the development of plant root systems.
机译:由于在过去的几十年中功能的增强,电阻率成像已广泛用于工程和环境应用中。由于相似的电阻率或不同材料之间的对比度不足,导致地质解释中存在歧义。监测或随时间推移进行的电阻率研究可以克服其中的一些问题,因为它可以将由于例如孔隙流体的化学成分引起的电阻率变化与由于地质因素引起的空间变化分开。呈现的结果表明,电阻率监测是追踪由于水,离子或气体含量或温度变化而发生的地面变化的强大工具。结果表明,在工程和环境应用的2D和3D电阻率监测中具有很大的潜力。这包括流体或气体在自然地面以及人造结构中的自然或人为运动,以及由于内部腐蚀等引起的材料特性变化。该方法不仅可以用于监测土壤中水和溶质的运移,还可以用于研究例如土壤中的水和溶质。植物根系的发展。

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