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Study on fracture characteristics in coal and shale for coal-measure gas reservoir based on 3D CT reconstruction and fractal features |
Huijun WANG1, Shangbin CHEN1,2( ), Shaojie ZHANG1,2, Chengxing ZHANG3, Yang WANG1,2, Gaofeng YI1, Yixuan PENG1 |
1. School of Resources and Geoscience, China University of Mining and Technology, Xuzhou 221116, China 2. Key Laboratory of Coalbed Methane Resources and Reservoir Formation Process (the Ministry of Education), China University of Mining and Technology, Xuzhou 221116, China 3. School of Earth Sciences and Engineering, Sun Yat-sen University, Guangzhou 510275, China |
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Abstract Pores and fractures are important components of flow channels in coal-measure gas reservoirs. While considerable studies have been conducted on pore structure evolution, very few studies have investigated the fracture distribution and self-similarity characteristics. To reveal the characteristics of fracture distribution in coal and shale reservoirs, computed tomography studies were performed on 15 coal and shale samples from the Shanxi and Taiyuan formations. The results show that the fracture distribution of samples of the same lithology differs significantly, and the fracture distribution heterogeneity of shale samples is much higher than that of coal samples. In shale, the heterogeneity of fracture distribution is mainly caused by pores and fractures smaller than 2 μm in the z-direction, with relatively little contributions from pores and fractures in the x and y directions. However, the heterogeneity of fracture distribution in coal is mainly controlled by pores and fractures larger than 2 μm in all directions, and the difference between the three directions is minor. It was shown that a great number of microscopic pores and fractures contribute to the highest fractions of porosity in different lithological samples. This method is useful for determining the fracture distribution characteristics in shale and coal-measure gas reservoir.
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| Keywords
pore-fracture system
fracture distribution
directionality
heterogeneity
CT experiment
coal-measure gas reservoirs
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Corresponding Author(s):
Shangbin CHEN
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Online First Date: 12 June 2023
Issue Date: 04 August 2023
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