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Original Article | Open Access

Expansion-induced fracture propagation in deep geothermal reservoirs under alternate-temperature loading

School of Mechanical Engineering, Beijing Institute of Petrochemical Technology, Beijing 102617, P. R. China
Department of Energy and Mineral Engineering, The Pennsylvania State University, University Park, PA 16802, USA
School of Petroleum Engineering, China University of Petroleum (Beijing), Beijing 102249, P. R. China
School of Petroleum Engineering, Yangtze University, Wuhan 430100, P. R. China
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Abstract

Hydraulic fracturing is a crucial technique for the extraction of geothermal energy from hot dry rock reservoirs. However, the development of such reservoirs faces significant challenges due to the high in-situ stress and strong elastic-plastic behavior of these rocks, which often result in simplified fracture geometries and subsequent low heat extraction efficiency. To address this issue, a novel reservoir treatment method based on thermal expansion and contraction principles is proposed. By applying alternating heating-cooling treatments to the reservoir, cyclic thermal stress is generated within the rock to enhance the complexity of post-fracturing fracture networks. To investigate the resultant hydraulic fracture propagation under alternate-temperature loading, a custom-developed thick-walled cylinder expansion fracturing device was employed to study the fracture propagation mechanisms in hot dry rock samples under cyclic thermal loading. The fracture network complexity was characterized by the fractal dimension method. Experimental results demonstrated that alternate thermal load cycling significantly enhances the fracture network complexity compared to conventional single-phase heat treatment. The maximum improvement in fractal dimension (3.86% increase) was observed at 500 ℃. Under alternating temperature loads, the upper surface fractures predominantly exhibited bilateral symmetric structures. At 600 ℃, a substantial increase in branched fractures and rock debris near boreholes occurred, indicating that alternating temperature loads significantly enhance the complexity of engineered fracture networks in hot dry rock. These findings suggest that incorporating thermal cycling into hydraulic fracturing processes can significantly improve the fracture network complexity, thereby enhancing the efficiency of heat extraction from hot dry rock reservoirs.

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Advances in Geo-Energy Research
Pages 261-272

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Cite this article:
Wang D, Dong Y, Wei C, et al. Expansion-induced fracture propagation in deep geothermal reservoirs under alternate-temperature loading. Advances in Geo-Energy Research, 2025, 15(3): 261-272. https://doi.org/10.46690/ager.2025.03.08

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Received: 05 January 2025
Revised: 01 February 2025
Accepted: 25 February 2025
Published: 02 March 2025
© The Author(s) 2025.

This article is distributed under the terms and conditions of the Creative Commons Attribution (CC BY-NC-ND) license, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.