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Numerical analysis of unstable propagation of three-dimensional parallel hydraulic fractures induced by interferences of adjacent perforation clusters and thermal diffusion

Yongliang Wang (School of Mechanics and Civil Engineering, State Key Laboratory of Coal Resources and Safe Mining, China University of Mining and Technology (Beijing), Beijing, China)

Engineering Computations

ISSN: 0264-4401

Article publication date: 20 July 2023

Issue publication date: 15 August 2023

59

Abstract

Purpose

The purpose of this study is to investigate the unstable propagation of parallel hydraulic fractures induced by interferences of adjacent perforation clusters and thermal diffusion. Fracture propagation in the process of multistage fracturing of a rock mass is deflected owing to various factors. Hydrofracturing of rock masses in deep tight reservoirs involves thermal diffusion, fluid flow and deformation of rock between the rock matrix and fluid in pores and fractures.

Design/methodology/approach

To study the unstable propagation behaviours of three-dimensional (3D) parallel hydraulic fractures induced by the interferences of adjacent perforation clusters and thermal diffusion, a 3D engineering-scale numerical model is established under different fracturing scenarios (sequential, simultaneous and alternate fracturing) and different perforation cluster spacings while considering the thermal-hydro-mechanical coupling effect. Stress disturbance region caused by fracture propagation in a deep tight rock mass is superimposed and overlaid with multiple fractures, resulting in a stress shadow effect and fracture deflection.

Findings

The results show that the size of the stress shadow areas and the interaction between fractures increase with decreasing multiple perforation cluster spacing in horizontal wells. Alternate fracturing can produce more fracture areas and improve the fracturing effect compared with those of sequential and simultaneous fracturing. The larger the temperature gradient between the fracturing fluid and rock matrix, the stronger the thermal diffusion effect, and the effect of thermal diffusion on the fracture propagation is significant.

Originality/value

This study focuses on the behaviours of the unstable dynamic propagation of 3D parallel hydraulic fractures induced by the interferences of adjacent perforation clusters and thermal diffusion. Further, the temperature field affects the fracture deflection requires could be investigated from the mechanisms; this paper is to study the unstable propagation of fractures in single horizontal well, which can provide a basis for fracture propagation and stress field disturbance in multiple horizontal wells.

Keywords

Acknowledgements

The authors gratefully acknowledge financial support from the Beijing Natural Science Foundation (grant number 212004), China National Petroleum Corporation (CNPC) Innovation Found (grant number 2022DQ02-0204), National Natural Science Foundation of China (grant numbers 41877275 and 51608301), Open Fund of Tianjin Key Lab of Soft Soil Characteristics and Engineering Environment (grant number 2017SCEEKL003), Yue Qi Young Scholar Project Foundation of China University of Mining and Technology, Beijing (grant number 2019QN14), Fundamental Research Funds for the Central Universities, Ministry of Education of China (grant number 2019QL02), and Teaching Reform and Research Projects of Undergraduate Education of China University of Mining and Technology, Beijing (grant numbers J210613, J200709, and J190701).

Citation

Wang, Y. (2023), "Numerical analysis of unstable propagation of three-dimensional parallel hydraulic fractures induced by interferences of adjacent perforation clusters and thermal diffusion", Engineering Computations, Vol. 40 No. 6, pp. 1371-1389. https://doi.org/10.1108/EC-06-2022-0408

Publisher

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Emerald Publishing Limited

Copyright © 2023, Emerald Publishing Limited

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