Abstract

The complex thermal-hydraulic-mechanical (THM) coupling is the key issue to the energy extraction from a geothermal reservoir, where fractures are the main channels for fluid circulation and heat transfer. However, the effects of matrix deformation-induced aperture variation and fracture roughness on heat recovery efficiency are unclear. In this paper, a fully coupling THM model based on a discrete fracture network is proposed to explore these coupling effects. First, the fracture roughness and the fracture aperture variation with effective stress are introduced. Second, the water flow and heat transfer in the matrix and fractures as well as the deformation of the geothermal reservoir are individually formulated for a fractured geothermal reservoir. Third, the model is validated with analytical solution for its thermal-hydraulic (TH) coupling effect and literature data for its hydraulic-mechanical (HM) coupling effect. Finally, the features of heat transfer and fluid flow in the fractured geothermal reservoir are comparatively analyzed through four scenarios. The simulation results indicate that the discrete fracture network severely impacts the pressure distribution and temperature advance. The aperture variation induced by solid deformation can enhance heat transfer efficiency, and the fracture roughness can reduce the heat transfer efficiency.

Highlights

  • A general operation method for energy extraction from geothermal reservoirs is to inject cold fluid in and to pump hot fluid out [1]

  • This paper develops a THM coupling model to consider the effects of aperture variation and fracture roughness for the heat energy extraction from a geothermal reservoir

  • This study developed a fully coupling thermal-hydromechanical model based on a discrete fracture network

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Summary

Introduction

A general operation method for energy extraction from geothermal reservoirs is to inject cold fluid in and to pump hot fluid out [1]. The injection and pump of working fluid will redistribute in situ stress, resulting in the variation of fracture aperture and directly impacting the transmissivity of the fractured geothermal reservoir This may affect the energy extraction efficiency. TH coupling models were developed for the forced convection in geothermal exploitations They investigated the heterogeneity of porous media [7, 8], the system parameter optimization [9, 10], the heat exchange mechanism [11,12,13], and the effects of reservoir fracture treatments [14]. A DFN-based THM coupling model is necessary This model can include the aperture evolution and the fracture roughness in the heat extraction from a geothermal system. This paper develops a THM coupling model to consider the effects of aperture variation and fracture roughness for the heat energy extraction from a geothermal reservoir.

Generation of the Fracture Network
Coupling Model for Energy Extraction from a Geothermal Reservoir
Governing Equations for Fluid Flow
90 MPa Impermeable and thermally insulated
Simulation Implementation and Model Validation
Simulation Results and Discussion
66 Injection well Production well Water flow trend
Conclusions
Analytical Solution for Heat Transfer in a Smooth Fracture
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