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Optimization of Fracture Propagation in Coal Seams Using Discrete Lattice Method: Case Study of the L Block, China

Xuesong Xing1, Li Wang1, Guangai Wu1, Chengyong Peng1,2,3, Yanan Hou1, Jingyu Zi1, Biao Yin2,3,*

1 CNOOC Research Institute Company Limited, CNOOC Ltd., Beijing, 100028, China
2 School of Petroleum Engineering, Yangtze University, Wuhan, 430100, China
3 Hubei Key Laboratory of Oil and Gas Drilling and Production Engineering, Yangtze University, Wuhan, 430100, China

* Corresponding Author: Biao Yin. Email: email

Energy Engineering 2025, 122(7), 2911-2930. https://doi.org/10.32604/ee.2025.065384

Abstract

Hydraulic fracturing, an effective method for enhancing coal seam productivity, largely determines coalbed methane (CBM) production, which is significantly influenced by geological and engineering factors. This study focuses on the L block to investigate the mechanisms influencing efficient fracture propagation and enhanced stimulated reservoir volume (SRV) in fracturing. To explore the mechanisms influencing effective fracture propagation and enhanced SRV, the L block was selected as the research object, with a comprehensive consideration of geological background, reservoir properties, and dynamic production data. By combining the discrete lattice method with numerical analysis and true triaxial experimental simulation, the fracture morphology of a single cluster and the propagation patterns of multiple clusters of complex fractures were obtained. Additionally, the optimization of temporary plugging timing and the fracture map under multiple factors were innovatively proposed. Results indicate that greater flow rate and viscosity can effectively overcome the stress shadow effect of the outermost fractures (1st and 6th clusters), increasing the fracture pressure of the single cluster and the equilibrium degree of multiple fracture propagation, thus forming a more complex fracture network. Moreover, when viscosity exceeds 45 mPa·s, pressure concentrates at fracture tips, promoting discontinuous propagation and reducing flow resistance. Conversely, increased gangue thickness and spacing between horizontal wells increase the vertical propagation pressure, suppressing fracture growth and reducing central flow velocity. This study provides a multi-cluster fracture propagation map for optimizing volumetric fracturing in coal seams and suggests that the optimal temporary plugging time significantly enhances the SRV.

Keywords

Coalbed methane; hydraulic fracturing; discrete lattice method; multi-cluster fracturing; temporary plugging

Cite This Article

APA Style
Xing, X., Wang, L., Wu, G., Peng, C., Hou, Y. et al. (2025). Optimization of Fracture Propagation in Coal Seams Using Discrete Lattice Method: Case Study of the L Block, China. Energy Engineering, 122(7), 2911–2930. https://doi.org/10.32604/ee.2025.065384
Vancouver Style
Xing X, Wang L, Wu G, Peng C, Hou Y, Zi J, et al. Optimization of Fracture Propagation in Coal Seams Using Discrete Lattice Method: Case Study of the L Block, China. Energ Eng. 2025;122(7):2911–2930. https://doi.org/10.32604/ee.2025.065384
IEEE Style
X. Xing et al., “Optimization of Fracture Propagation in Coal Seams Using Discrete Lattice Method: Case Study of the L Block, China,” Energ. Eng., vol. 122, no. 7, pp. 2911–2930, 2025. https://doi.org/10.32604/ee.2025.065384



cc Copyright © 2025 The Author(s). Published by Tech Science Press.
This work is licensed under a Creative Commons Attribution 4.0 International License , which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
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