Experimental and Numerical Simulation Study of Hydraulic Fracture Propagation during Coalbed Methane Development

Author:

Ren Qingshan1ORCID,Jiang Yaodong23,Wang Pengpeng1ORCID,Wu Guangjie2ORCID,Noraei Danesh Nima1ORCID

Affiliation:

1. School of Energy and Mining Engineering, China University of Mining and Technology (Beijing), Beijing, China

2. School of Mechanics and Civil Engineering, China University of Mining and Technology (Beijing), Beijing, China

3. State Key Laboratory of Coal Resources and Safe Mining, China University of Mining and Technology (Beijing), Beijing, China

Abstract

The extraction of low-permeability coalbed methane (CBM) has the dual significance of energy utilization and safe mining. Understanding hydraulic fracturing mechanism is vital to successful development of CBM. Therefore, it is important to improve the law of hydraulic fracture propagation in coal and rigorously study the influencing factors. In this paper, laboratory experiments and numerical simulation methods were used to investigate the hydraulic fracture propagation law of coal in coalbed methane reservoir with natural fractures. The results show that the maximum and minimum horizontal in situ stress and the difference in stress significantly affect the direction of crack propagation. The elastic modulus of coal, the mechanical properties of natural fractures, and the injection rate can affect the fracture length, fracture width, and the amount of fracturing fluid injected. To ensure the effectiveness of hydraulic fracturing, a reservoir environment with a certain horizontal stress difference under specific reservoir conditions can ensure the increase of fractured reservoir and the controllability of fracture expansion direction. In order to increase the volume of fractured reservoir and fracture length, the pumping speed of fracturing fluid should not be too high. The existence of stress shadow effect causes the hydraulic fracture to propagate along the main fracture track, where the branch fracture cannot extend too far. Complex fractures are the main hydraulic fracture typology in coalbed methane reservoir with natural fractures. The results can provide a benchmark for optimal design of hydraulic fracturing in coalbed methane reservoirs.

Funder

Open Fund of Key Laboratory of Safety and High-efficiency Coal Mining

Publisher

Hindawi Limited

Subject

General Earth and Planetary Sciences

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