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加载煤体复合电响应特性及主裂隙系统结构控制机制研究

Study on the Complex Electrical Response Characteristics of Loaded Coal and the Control Mechanism of the Main Fracture System Structure.

作者信息

Li Jian, Xu Xiaokai, Wu Jie, Zhang Yugui, Guo Zhiqi, Zhang Zehua, Xue Zhengzheng

机构信息

School of Safety Science and Engineering, Henan Polytechnic University, Jiaozuo, Henan 454003, China.

School of Energy Science and Engineering, Henan Polytechnic University, Jiaozuo, Henan 454003, China.

出版信息

ACS Omega. 2024 Feb 15;9(8):9686-9701. doi: 10.1021/acsomega.3c09733. eCollection 2024 Feb 27.

Abstract

The structure of coal seam fractures is the main physical property of coalbed methane reservoir evaluation, and the complex resistivity method is a potential geophysical evaluation method for coal seam fractures. In this study, cylindrical coal samples with axial directions perpendicular to the bedding, face cleat, and butt cleat were prepared. The complex electrical parameters of the loaded specimens were tested with test frequencies ranging from 1 Hz to 10 kHz. The complex electrical response characteristics of the loaded coal are summarized, and the control mechanism of the main fracture system structure is analyzed. The results indicated that (1) as the loading pressure increased, the resistance and the absolute values of reactance (||) gradually decreased, especially in the frequency band where slowly decreased and the characteristic frequency of , the decreased amplitude was more significant, and the cutoff frequency of and the characteristic frequency of all gradually increased. (2) The complex electrical properties of coal show obvious anisotropic characteristics. Both and || decreased sequentially according to the direction perpendicular to the bedding, face cleat, and butt cleat; the cutoff frequency of and the characteristic frequency of all increased sequentially. (3) The dispersion phenomenon of the complex electrical properties of coal is attributed to the induced polarization; the elevated loading stress enhances the polarization effects of the molecular-induced moments of the coal skeleton, and the anisotropic difference of the complex electrical properties is due to the difficulty in the degree of transport of charged particles induced by structural differences of the main fracture system. (4) The resistance and capacitance were selected as the complex electrically sensitive parameters of the loaded coal orthogonal fracture structures. A logarithmic inversion model reflecting the main fracture system structure of coal was constructed. This provides a certain theoretical basis for efficient electrical exploration of coal reservoir fracture structures.

摘要

煤层裂隙结构是煤层气储层评价的主要物性,复电阻率法是一种潜在的煤层裂隙地球物理评价方法。本研究制备了轴向垂直于层面、面割理和端割理的圆柱形煤样。在1 Hz至10 kHz的测试频率下测试了加载试样的复电参数。总结了加载煤体的复电响应特征,分析了主要裂隙系统结构的控制机制。结果表明:(1)随着加载压力的增加,电阻和电抗绝对值(||)逐渐减小,特别是在缓慢减小的频段和的特征频率处,减小幅度更为显著,和的截止频率以及的特征频率均逐渐增加。(2)煤的复电性质表现出明显的各向异性特征。和||均按照垂直于层面、面割理和端割理的方向依次减小;和的截止频率以及的特征频率均依次增加。(3)煤复电性质的频散现象归因于激发极化;加载应力的升高增强了煤骨架分子诱导偶极矩的极化效应,复电性质的各向异性差异是由于主要裂隙系统结构差异导致带电粒子输运难易程度不同所致。(4)选取电阻和电容作为加载煤正交裂隙结构的复电敏感参数。构建了反映煤主要裂隙系统结构的对数反演模型。这为煤层气储层裂隙结构的高效电法勘探提供了一定的理论依据。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6a12/10905723/0bfa51827e43/ao3c09733_0001.jpg

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