Characterization of Pore Electrical Conductivity in Porous Media by Weakly Conductive and Nonconductive Pores

IF 4.9 2区 地球科学 Q1 GEOCHEMISTRY & GEOPHYSICS Surveys in Geophysics Pub Date : 2023-03-17 DOI:10.1007/s10712-022-09761-w
Linqi Zhu, Shiguo Wu, Chaomo Zhang, Siddharth Misra, Xueqing Zhou, Jianchao Cai
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引用次数: 1

Abstract

The formation factor, which reflects the electrical conductivity of porous sediments and rocks, is widely used in a range of research fields. Consequently, given the discovery of numerous porous reservoir rocks and sediments exhibiting complex conductivity characteristics, methods to quantitatively predict the formation factor have been actively pursued by many scholars. Nevertheless, the agreement between the theoretically calculated and measured formation factors remains unsatisfactory, partially because the distribution characteristics of the entire pore space affect the final formation factor. In this study, a new method for characterizing the formation factor is proposed that considers the impacts of different complex pore structures on the conductivity of pores at different positions in the pore space. With this method, the electrical transmission through a rock can be accurately and quantitatively estimated based on the conductivity and shape of pores, the tortuous conductivity, and the classification of the pore space into conductive, weakly conductive, and nonconductive pores. By evaluating 24 datasets encompassing 7 types of rocks and sediments, including marine hydrate-bearing sediments and shale, the proposed model achieves remarkable agreement with the experimental data. These excellent confirmation results are attributed to the ubiquitous presence of weakly conductive and nonconductive pores in almost all rocks and sediments. Through further research based on this paper, an increasing number of adaptation models and a comprehensive set of evaluation methods can be developed.

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弱导电性和非导电性孔隙表征多孔介质中孔隙电导率
反映多孔沉积物和岩石电导率的地层因子被广泛应用于一系列研究领域。因此,由于发现了许多具有复杂导电性特征的多孔储层岩石和沉积物,许多学者积极寻求定量预测地层因素的方法。然而,理论计算的地层因子与实测的地层因子之间的一致性并不理想,部分原因是整个孔隙空间的分布特征影响了最终的地层因子。本文提出了一种表征地层因子的新方法,该方法考虑了不同复杂孔隙结构对孔隙空间中不同位置孔隙导电性的影响。利用该方法,可以根据孔隙的导电性和形状、弯曲导电性以及孔隙空间分为导电、弱导电和非导电三种,准确定量地估计岩石中的电传输。通过对包括海相含水合物沉积物和页岩在内的7种岩石和沉积物类型的24个数据集进行评价,该模型与实验数据具有较好的一致性。这些极好的证实结果归功于几乎所有岩石和沉积物中普遍存在的弱导电性和非导电性孔隙。通过在本文基础上的进一步研究,可以发展出越来越多的适应模型和一套全面的评价方法。
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来源期刊
Surveys in Geophysics
Surveys in Geophysics 地学-地球化学与地球物理
CiteScore
10.00
自引率
10.90%
发文量
64
审稿时长
4.5 months
期刊介绍: Surveys in Geophysics publishes refereed review articles on the physical, chemical and biological processes occurring within the Earth, on its surface, in its atmosphere and in the near-Earth space environment, including relations with other bodies in the solar system. Observations, their interpretation, theory and modelling are covered in papers dealing with any of the Earth and space sciences.
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