Technical Papers
Jun 9, 2020

Impact of Coal Ranks and Confining Pressures on Coal Strength, Permeability, and Acoustic Emission

Publication: International Journal of Geomechanics
Volume 20, Issue 8

Abstract

Hydraulic fracturing is extensively applied as an effective stimulation technology to enhance coalbed methane recovery. Coal strength and permeability play critical roles in the performance of hydraulic fracturing, and acoustic emission (AE) provides useful information to evaluate this. Coal strength, permeability, and AE are all governed by coal rank and stress condition. However, the influence of coal rank and stress condition remains unclear. In this work, the coal strength, permeability, and AE are investigated under different confining pressures for different coal ranks in the laboratory. The results show these properties are mainly controlled by coal structure, particularly the development of pores and cracks. The compressive strength of coal presents a U-shaped trend with the vitrinite reflectance. However, as the confining pressure increases, the compressive strength raises, but its increase rate declines. In the process of loading stress, the permeability, and AE activities can be divided into three phases: compaction and elastic deformation phase, nonelastic deformation phase, and macroscopic failure phase. The initial permeability of low and medium-rank coals is higher than those of high-rank coals. In addition, as the confining pressure increases, AE activities and permeability weaken. The occurrence of abundant AE activities do not always suggest the generation of new cracks, but it can be regarded as an indicator, where the coalbed reservoir exhibits high permeability. Finally, based on these results, a new damaged model and a constitutive relationship between AE counts and stress are proposed to describe the coal-damaged evolution and predict its stress–strain behavior.

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Acknowledgments

This work is financially supported by the Shanxi Province Science and Technology Major Project (Grants 20191102001 and 20181101013), the National Science and Technology Major Project of the Ministry of Science and Technology of China During “13th Five-Year Plan” (Grants 2016ZX05067001-006).

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International Journal of Geomechanics
Volume 20Issue 8August 2020

History

Received: Jul 29, 2019
Accepted: Feb 24, 2020
Published online: Jun 9, 2020
Published in print: Aug 1, 2020
Discussion open until: Nov 9, 2020

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Peng Zhang, Ph.D. [email protected]
College of Geosciences and Surveying Engineering, China Univ. of Mining and Technology (Beijing), Beijing 100083, P. R. China. Email: [email protected]
Zhaoping Meng [email protected]
College of Geosciences and Surveying Engineering, China Univ. of Mining and Technology (Beijing), Beijing 100083, P. R. China; State Key Laboratory of Coal and CBM Co-mining, Shanxi Jincheng Anthracite Mining Group Company, Ltd., Jincheng, Shanxi 048000, P. R. China (corresponding author). Email: [email protected]
College of Geosciences and Surveying Engineering, China Univ. of Mining and Technology (Beijing), Beijing 100083, P. R. China. Email: 1258342712 @qq.com
Key Laboratory of Tectonics and Petroleum Resources of Ministry of Education and School of Earth Resources, China University of Geosciences, Wuhan 430074, P. R. China; Energy & Geoscience Institute, Univ. of Utah, Salt Lake City, Utah 84108. Email: [email protected]

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