Study on Electrical Characteristics and Formation Mechanism of Micro-Ion Capacitor in Shale Pore and Fracture Structure

Hongqi Liu, Haibo Liao, Zhanshan Xiao, Shanjun Li, Liquan Ran, Dong Chen
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Abstract

Due to the micro/nanoscale and intricate pore structure, poor connectivity, complex pathways, the presence of microfractures, and the coexistence of organic and inorganic pores, shale and other tight reservoirs exhibit increasingly complex conductive characteristics. This paper mainly studied the electrical properties of shale based on experimental test data, including scanning electron microscope (SEM) thin-section and microtomography CT (μ-CT) images, and analyzed the shale pore type, pore structure characteristics, and development of fracture. Then, the distribution of pyrite, content, and graphitization of organics and their influence on the electrical properties are discussed. Furthermore, the double electrical layer and zeta potential in the shale zone were discussed in depth. The results revealed that, within the content of pyrite, organics, and its graphitization, the vitrinite maturity are inversely proportional to shale resistivity. It was also found that in the presence of an external electromagnetic field, the fluid in shale pores is subjected to the combined strength of pore pressure and external field potential difference. Thus, its response equation should be an improved Navier-Stokes equation, which considers pore pressure, zeta potential, and Coulomb force. When shale is subjected to an external electromagnetic field, due to the complex pores structure and organic and inorganic minerals, it will represent more of a dielectric-like property than electricity. So, it will form special microscopic ionic capacitors, which are different from common plate capacitors. There are three special kinds of microscopic ionic capacitors, they are (I) the intergranular pore microscopic ionic capacitor model, (II) the particle with isolated pore microscopic ionic capacitor model, and (III) the pyrite or graphite or other organics microscopic ionic capacitor model. Finally, the characteristics of microscopic ion capacitors are summarized: irregular polar area and varying distance between poles, varying charges with time, and salinity of the formation water.
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页岩孔隙和裂缝结构中微离子电容器的电气特性和形成机理研究
由于页岩和其他致密储层具有微/纳米尺度和错综复杂的孔隙结构、连通性差、通路复杂、存在微裂缝、有机孔隙和无机孔隙共存等特点,页岩和其他致密储层表现出越来越复杂的导电特性。本文主要基于实验测试数据,包括扫描电子显微镜(SEM)薄片和显微层析 CT(μ-CT)图像,研究页岩的电学特性,分析页岩孔隙类型、孔隙结构特征和裂缝发育情况。然后,讨论了黄铁矿、有机物含量和石墨化的分布及其对电性的影响。此外,还深入讨论了页岩区的双电层和 zeta 电位。结果表明,在黄铁矿、有机物及其石墨化含量范围内,玻璃光泽成熟度与页岩电阻率成反比。研究还发现,在外部电磁场的作用下,页岩孔隙中的流体会受到孔隙压力和外部场势差的共同作用。因此,其响应方程应该是一个改进的纳维-斯托克斯方程,其中考虑了孔隙压力、zeta 电位和库仑力。当页岩受到外部电磁场作用时,由于其复杂的孔隙结构以及有机和无机矿物质,它将更多地表现出类似电介质的特性,而不是电。因此,它会形成特殊的微观离子电容器,与普通的板式电容器不同。有三种特殊的微观离子电容器,它们是:(I)粒间孔隙微观离子电容器模型;(II)具有孤立孔隙的颗粒微观离子电容器模型;(III)黄铁矿或石墨或其他有机物微观离子电容器模型。最后,总结了微观离子电容器的特点:不规则的极区和不同的极距、电荷随时间变化以及地层水的盐度。
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