A three-dimensional coupled thermo-hydro-mechanical model for deformable fractured geothermal systems
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Accepted version
Published version
Author(s)
Salimzadeh, S
Paluszny Rodriguez, A
Nick, HM
Zimmerman, RW
Type
Journal Article
Abstract
A fully coupled thermal-hydraulic-mechanical (THM) finite element model is presented for fractured geothermal reservoirs. Fractures are modelled as surface discontinuities within a three-dimensional matrix. Non-isothermal flow through the rock matrix and fractures are defined and coupled to a mechanical deformation model. A robust contact model is utilised to resolve the contact tractions between opposing fracture surfaces under THM loadings. A numerical model has been developed using the standard Galerkin method. Quadratic tetrahedral and triangular elements are used for spatial discretisation. The model has been validated against several analytical solutions, and applied to study the effects of the deformable fractures on the injection of cold water in fractured geothermal systems.
Results show that the creation of flow channelling due to the thermal volumetric contraction of the rock matrix is very likely. The fluid exchanges heat with the rock matrix, which results in cooling down of the matrix, and subsequent volumetric deformation. The cooling down of the rock matrix around a fracture reduces the contact stress on the fracture surfaces, and increases the fracture aperture. Stress redistribution reduces the aperture, as the area with lower contact stress on the fracture expands. Stress redistribution reduces the likelihood of fracture propagation under pure opening mode, while the expansion of the area with lower contact stress may increase the likelihood of shear fracturing.
Results show that the creation of flow channelling due to the thermal volumetric contraction of the rock matrix is very likely. The fluid exchanges heat with the rock matrix, which results in cooling down of the matrix, and subsequent volumetric deformation. The cooling down of the rock matrix around a fracture reduces the contact stress on the fracture surfaces, and increases the fracture aperture. Stress redistribution reduces the aperture, as the area with lower contact stress on the fracture expands. Stress redistribution reduces the likelihood of fracture propagation under pure opening mode, while the expansion of the area with lower contact stress may increase the likelihood of shear fracturing.
Date Issued
2018-01-01
Date Acceptance
2017-09-23
Citation
Geothermics, 2018, 71 (1), pp.212-224
ISSN
0375-6505
Publisher
Elsevier
Start Page
212
End Page
224
Journal / Book Title
Geothermics
Volume
71
Issue
1
Copyright Statement
© 2017 The Authors. Published by Elsevier Ltd. This is an open access article under the CC BY license (http://creativecommons.org/licenses/BY/4.0/).
License URL
Sponsor
Natural Environment Research Council (NERC)
Commission of the European Communities
Identifier
https://www.sciencedirect.com/science/article/pii/S0375650517301013?via%3Dihub
Grant Number
EP/K036025/1
309067
Subjects
Science & Technology
Technology
Physical Sciences
Energy & Fuels
Geosciences, Multidisciplinary
Geology
Coupled THM processes
Fractured geothermal reservoir
Contact model
Flow channelling
Enhanced geothermal systems
HEAT EXTRACTION
ROCK FRACTURES
CONDUCTIVITY
CONTACT
PROPAGATION
FRAMEWORK
RESERVOIR
APERTURE
MEDIA
FLOW
Geochemistry & Geophysics
0403 Geology
0404 Geophysics
0914 Resources Engineering and Extractive Metallurgy
Publication Status
Published
Date Publish Online
2017-10-16