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Detection of advected concentration and pH fronts from self-potential measurements

机译:通过自电位测量检测对流浓度和pH前沿

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In this paper, we report on a series of experiments aimed at testing the possibility of detecting concentration or pH fronts advected through a well-controlled, laboratory-scale, artificial aquifer system, using self-potential monitoring. A rectangular Plexiglas tank was filled up with water-saturated sand, inside of which an array of unpolarizable electrodes was installed. After a nearly uniform, steady state flow was established by tilting the tank and controlling the water level at both ends, we abruptly changed the salt concentration or pH of the upstream fluid. During the subsequent motion of the concentration or pH front thus generated, the electrical potential differences between each electrode and a reference were recorded. We observed systematic, sharp variations successively occurring at increasing distances in the flow direction. These signals precisely corresponded to the calculated arrival times of the front at the various electrodes. Additional experiments were performed, in which the lateral motion of a transverse concentration or pH front was monitored. In the case of a NaCl front, the self-potential signal can be modeled as the sum of two terms, (1) a junction potential term produced by the difference in ionic mobility of Na+ and Cl? and (2) an electrokinetic term corresponding to the variations of the electrokinetic coupling coefficient caused by changes in concentration. In the case of a pH front, only the electrokinetic term appears to be present.
机译:在本文中,我们报告了一系列实验,这些实验旨在测试通过自电势监测,通过良好控制的实验室规模的人工含水层系统,检测浓度或pH值前沿的可能性。矩形有机玻璃水箱中充满了水饱和的沙子,其内部安装了不可极化的电极阵列。通过倾斜水箱并控制两端的水位建立接近均匀的稳态流后,我们突然改变了上游流体的盐浓度或pH值。在随后产生的浓度或pH前沿的随后运动期间,记录每个电极与参比之间的电势差。我们观察到在流动方向上距离增加时相继发生的系统性急剧变化。这些信号精确地对应于所计算的正面到达各个电极的时间。进行了另外的实验,其中监测横向浓度或pH前沿的横向运动。在NaCl前沿的情况下,可以将自电位信号建模为两项的总和:(1)由Na +和Cl2的离子迁移率差异产生的结电位项。 (2)与浓度变化引起的电动耦合系数的变化相对应的电动项。在pH前沿的情况下,似乎仅存在电动术语。

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