Technical Papers
Aug 26, 2022

A Thermal-Hydraulic-Mechanical Coupling Simulation of Fluid Flow and Heat Transfer Specifically in Crossed-Rough Fractures in a Geothermal Reservoir

Publication: Journal of Energy Engineering
Volume 148, Issue 6

Abstract

For the development and utilization of geothermal reservoirs, a thorough understanding of fluid flow and heat transfer characteristics in rock fractures is crucial. The effect of two interacting crossed-rough fractures on heat recovery capacity was studied in this research, in which a three-dimensional thermal-hydraulic-mechanical (THM) model is established to simulate heat extraction from a granite reservoir. The impact of fracture surface roughness and the angle between the two rough fractures on heat extraction performance are examined, where thermal power and reservoir recovery rate were taken as indicators to access the heat extraction performance. The geometry of the fluid flow line on the rough fracture surface changes as the fracture aperture changes, according to simulation data. From the injection well to the production well, the fluid flows in a circuitous route, skipping the smaller fracture opening and passing through the bigger one. The fracture permeability and fracture aperture increase as the distance between the location and the injection well becomes closer. When the angle between the two fracture surfaces is fixed, the high-pressure zone is concentrated, and the faster the flow rate, the faster the matrix in the rock matrix between the fractures is exploited, resulting in a reduction in production thermal power later in the mining period, which is not conducive to sustainable development. With the passage of time, the rate of reservoir recovery rises essentially linearly.

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Data Availability Statement

All data, models, or code that support the findings of this study are available from the corresponding author upon reasonable request.

Acknowledgments

This research was supported by the National Key Research and Development Programs of China Grant Nos. 2019YFB1504201, 2019YFB1504203, and 2019YFB1504204, the National Nature Science Foundation of China under Grant No. 51505439, and the Open Fund of Key Laboratory of Deep Geothermal Resources, Ministry of Natural Resources, China University of Geosciences, Wuhan, under Grant No. KLDGR2022K01.

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Information & Authors

Information

Published In

Go to Journal of Energy Engineering
Journal of Energy Engineering
Volume 148Issue 6December 2022

History

Received: Feb 9, 2022
Accepted: Jun 17, 2022
Published online: Aug 26, 2022
Published in print: Dec 1, 2022
Discussion open until: Jan 26, 2023

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Authors

Affiliations

Jun Zheng, Ph.D. [email protected]
Associate Professor, Faculty of Engineering, Key Laboratory of Deep Geothermal Resource, Ministry of Natural Resources (MNR), China Univ. of Geosciences, Wuhan 430074, PR China. Email: [email protected]
M.Sc. Student, Faculty of Engineering, Key Laboratory of Deep Geothermal Resource, Ministry of Natural Resources (MNR), China Univ. of Geosciences, Wuhan 430074, PR China. ORCID: https://orcid.org/0000-0002-9504-2670. Email: [email protected]
Bin Dou, Ph.D. [email protected]
Professor, Faculty of Engineering, Key Laboratory of Deep Geothermal Resource, Ministry of Natural Resources (MNR), China Univ. of Geosciences, Wuhan 430074, PR China (corresponding author). Email: [email protected]
Guodong Cui, Ph.D. [email protected]
Associate Professor, Faculty of Engineering, Key Laboratory of Deep Geothermal Resource, Ministry of Natural Resources (MNR), China Univ. of Geosciences, Wuhan 430074, PR China. Email: [email protected]
Hong Tian, Ph.D. [email protected]
Associate Professor, Faculty of Engineering, Key Laboratory of Deep Geothermal Resource, Ministry of Natural Resources (MNR), China Univ. of Geosciences, Wuhan 430074, PR China. Email: [email protected]

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  • Numerical Analysis of the Impacts of Multiscale Fractures on Geothermal Reservoir Capacity, Journal of Energy Engineering, 10.1061/JLEED9.EYENG-4925, 149, 6, (2023).

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