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Impact of changes in grain size and pore space on the hydraulic conductivity and spectral induced polarization response of sand

机译:粒度和孔隙空间变化对砂的水力传导率和光谱感应极化响应的影响

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Understanding the influence of pore space characteristics on the hydraulic conductivity and spectral induced polarization (SIP) response is critical for establishing relationships between the electrical and hydrological properties of surficial unconsolidated sedimentary deposits, which host the bulk of the world's readily accessible groundwater resources. Here, we present the results of laboratory SIP measurements on industrial-grade, saturated quartz samples with granulometric characteristics ranging from fine sand to fine gravel. We altered the pore space characteristics by changing (i) the grain size spectra, (ii) the degree of compaction, and (iii) the level of sorting. We then examined how these changes affect the SIP response, the hydraulic conductivity, and the specific surface area of the considered samples. In general, the results indicate a clear connection between the SIP response and the granulometric as well as pore space characteristics. In particular, we observe a systematic correlation between the hydraulic conductivity and the relaxation time of the Cole-Cole model describing the observed SIP effect for the entire range of considered grain sizes. The results do, however, also indicate that the detailed nature of these relations depends strongly on variations in the pore space characteristics, such as, for example, the degree of compaction. This underlines the complexity of the origin of the SIP signal as well as the difficulty to relate it to a single structural factor of a studied sample, and hence raises some fundamental questions with regard to the practical use of SIP measurements as site- and/or sample-independent predictors of the hydraulic conductivity.
机译:了解孔隙空间特征对水力传导率和频谱感应极化(SIP)响应的影响对于建立表层未固结沉积物的电和水文特性之间的关系至关重要,该沉积物是世界上随时可获取的大部分地下水资源。在这里,我们介绍了对工业级饱和石英样品进行实验室SIP测量的结果,这些样品的粒度特征从细砂到细砾石不等。我们通过改变(i)晶粒尺寸光谱,(ii)压实度和(iii)排序水平来改变孔隙空间特性。然后,我们检查了这些变化如何影响SIP响应,水力传导率以及所考虑样品的比表面积。通常,结果表明SIP响应与粒度以及孔隙空间特性之间存在明确的联系。特别是,我们观察到了水力传导率与Cole-Cole模型的弛豫时间之间的系统相关性,该模型描述了在考虑的晶粒尺寸的整个范围内观察到的SIP效应。然而,结果的确也表明,这些关系的详细性质强烈地取决于孔隙空间特征的变化,例如压紧程度。这突显了SIP信号起源的复杂性以及将其与研究样本的单个结构因子相关联的难度,因此就实际使用SIP测量作为站点和/或位置提出了一些基本问题水力传导率的样本独立预测因子。

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