Fully coupled thermo-hydro-mechanical approach to model fracture response to injection process in enhanced geothermal systems using displacement discontinuity and finite element method
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Ebrahimi, Mohammad
[1
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Ameri, Mohammad Javad
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Amirkabir Univ Technol, Dept Petr Engn, Tehran, IranAmirkabir Univ Technol, Dept Petr Engn, Tehran, Iran
Ameri, Mohammad Javad
[1
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Vaghasloo, Younes Alizadeh
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Amirkabir Univ Technol, Dept Petr Engn, Tehran, IranAmirkabir Univ Technol, Dept Petr Engn, Tehran, Iran
Vaghasloo, Younes Alizadeh
[1
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Sabah, Mohammad
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Amirkabir Univ Technol, Dept Petr Engn, Tehran, IranAmirkabir Univ Technol, Dept Petr Engn, Tehran, Iran
Sabah, Mohammad
[1
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[1] Amirkabir Univ Technol, Dept Petr Engn, Tehran, Iran
Assessing, predicting, and controlling injection-induced seismicity is a major challenge for developing enhanced geothermal systems (EGS) due to the complexity of coupled thermo-hydro-mechanical (THM) processes. This study aimed to develop a fully coupled numerical model to assess the complex behavior of a low permeable matrix-fracture during non-isothermal single-phase fluid injection process. A thermo-poroelastic displacement discontinuity (DD) method combining with different forms of finite element method are implemented to encapsulate the fractured medium response and transport processes, respectively. The nonlinear characteristics of normal (changing the joint to hydraulic fracture status) and shear (changing the stick to slip fracture status) fracture deformation are taken into account through fracture constitutive relations. Developed numerical approach was applied to simulate cool water injection into fracture/matrix systems, analyzing the role of coupled processes on spatiotemporal variation of matrix-fracture stresses, temperature and pore pressure and assessing induced seismicity (slippage) and permeability alteration. Numerical simulations demonstrate a fully coupled relation between matrix dilation, shrinkage, and non-linear fracture deformation. The redistribution of dynamic and kinematic parameters along with non-linear fracture deformation showed that although the poroelastic effects are dominant in the early stages, thermoelastic effects dominate in the long-term injection stages.
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AF Energy & Environm Ltd, SE-40515 Gothenburg, Sweden
NCC Tekn, NCC AB, SE-40551 Gothenburg, SwedenAF Energy & Environm Ltd, SE-40515 Gothenburg, Sweden
Zeng, Lingfu
Wiberg, Nils-Erik
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Chalmers Univ Technol, Dept Struct Mech, SE-41296 Gothenburg, SwedenAF Energy & Environm Ltd, SE-40515 Gothenburg, Sweden
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Univ Western Australia, Sch Civil Environm & Min Engn, Perth, WA 6009, AustraliaUniv Western Australia, Sch Civil Environm & Min Engn, Perth, WA 6009, Australia
Wang, Yang
Li, Tuo
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Univ Western Australia, Sch Civil Environm & Min Engn, Perth, WA 6009, AustraliaUniv Western Australia, Sch Civil Environm & Min Engn, Perth, WA 6009, Australia
Li, Tuo
Chen, Yun
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Univ Western Australia, Sch Civil Environm & Min Engn, Perth, WA 6009, AustraliaUniv Western Australia, Sch Civil Environm & Min Engn, Perth, WA 6009, Australia
Chen, Yun
Ma, Guowei
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Univ Western Australia, Sch Civil Environm & Min Engn, Perth, WA 6009, Australia
Hebei Univ Technol, Sch Civil & Transportat Engn, Tianjin 300401, Peoples R ChinaUniv Western Australia, Sch Civil Environm & Min Engn, Perth, WA 6009, Australia
机构:
Univ Hong Kong, Dept Earth Sci, Pokfulam, Hong Kong, Peoples R China
Univ Hong Kong, Shenzhen Inst Res & Innovat HKU SIRI, Hong Kong, Peoples R ChinaUniv Hong Kong, Dept Earth Sci, Pokfulam, Hong Kong, Peoples R China
Cui, Xin
Wong, Louis Ngai Yuen
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Univ Hong Kong, Dept Earth Sci, Pokfulam, Hong Kong, Peoples R China
Univ Hong Kong, Shenzhen Inst Res & Innovat HKU SIRI, Hong Kong, Peoples R ChinaUniv Hong Kong, Dept Earth Sci, Pokfulam, Hong Kong, Peoples R China