A fully coupled thermo-poroelastic model for energy extraction in naturally fractured geothermal reservoirs: sensitivity analysis and flow simulation

被引:0
|
作者
Azim, Reda Abdel [1 ]
Alatefi, Saad [2 ]
Aljehani, Abdulrahman [3 ]
机构
[1] Amer Univ Kurdistan, Petr Engn Dept, Duhok, Kurdistan Regio, Iraq
[2] PAAET, Coll Technol Studies, Dept Petr Engn Technol, Kuwait 70654, Kuwait
[3] King Abdulaziz Univ, Fac Earth Sci, Jeddah 21589, Saudi Arabia
来源
GEOTHERMAL ENERGY | 2024年 / 12卷 / 01期
关键词
FINITE-ELEMENT-METHOD; SOULTZ-SOUS-FORETS; NUMERICAL-SIMULATION; PERMEABILITY TENSORS; DISCRETE FRACTURES; HEAT EXTRACTION; POROUS-MEDIA; TRANSPORT; POROSITY; SYSTEMS;
D O I
10.1186/s40517-024-00305-6
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
The development of a novel method for modelling fluid flow and heat transfer in naturally fractured geothermal reservoirs represents a significant advancement in geothermal energy research. This Study presents a hybrid approach, which combines discrete fracture and single continuum techniques, to effectively capture the complex interactions between fluid flow and heat transfer in geothermal fractured reservoirs. In addition, the incorporation of the local thermal nonequilibrium method for simulating heat transmission accounts for the disparities in temperature between the rock matrix and the fluid, providing a more realistic representation of heat transfer processes. The study also presents a fully coupled thermo-poro-elastic framework that integrates fluid flow and heat transfer to comprehensively evaluate reservoir responses to injection/production scenarios. This coupled approach allows for the prediction of changes in reservoir properties, such as permeability and porosity, under varying fluid pressure and temperature conditions. The application of the proposed model to evaluate a geothermal reservoir's long-term response to injection/production scenarios provides valuable insights into the reservoir's behaviour and potential energy production capacity. The sensitivity analysis further enhances the model's utility by identifying the key reservoir parameters that significantly influence the thermal depletion of the reservoir. Overall, this novel modelling approach holds promise for improving the understanding and management of naturally fractured geothermal reservoirs, contributing to the optimization of geothermal energy extraction strategies.
引用
收藏
页数:33
相关论文
共 36 条
  • [31] Impact of fracture shear dilation on long-term heat extraction in Enhanced Geothermal Systems: Insights from a fully-coupled thermo-hydro-mechanical simulation
    Zhang, Xu
    Huang, Zhaoqin
    Lei, Qinghua
    Yao, Jun
    Gong, Liang
    Sun, Zhixue
    Yang, Wendong
    Yan, Xia
    Li, Yang
    GEOTHERMICS, 2021, 96
  • [32] A constitutive model for coupled thermo-hydro-mechanical analysis of multiphase flow in local thermal non-equilibrium in fractured media
    Bai, Y.
    Khalili, N.
    UNSATURATED SOILS: RESEARCH & APPLICATIONS, VOLS 1 AND 2, 2014, : 643 - 649
  • [33] Numerical simulation and analysis of thermo-hydro-mechanical behaviors of hydraulic fracturing in naturally fractured formation using a THM-XFEM coupling model
    Luo, Zhifeng
    Cheng, Long
    Zhao, Liqiang
    Xie, Yaozeng
    JOURNAL OF NATURAL GAS SCIENCE AND ENGINEERING, 2022, 103
  • [34] Sequentially coupled flow and geomechanical simulation with a discrete fracture model for analyzing fracturing fluid recovery and distribution in fractured ultra-low permeability gas reservoirs
    Liu, Yongzan
    Liu, Lijun
    Leung, Juliana Y.
    Moridis, George J.
    JOURNAL OF PETROLEUM SCIENCE AND ENGINEERING, 2020, 189
  • [35] A fully coupled thermo-poro-elastic model predicting the stability of wellbore in deep-sea drilling. Part B: Sensitivity analysis
    Zhang, Li
    Zhang, Zongfeng
    Wu, Bisheng
    Zhang, Xi
    Nie, Yuanxun
    Zhang, Haitao
    Wang, Guangjin
    Yang, Liu
    GEOENERGY SCIENCE AND ENGINEERING, 2023, 228
  • [36] THM (Thermo-hydro-mechanical) coupled mathematical model of fractured media and numerical simulation of a 3D enhanced geothermal system at 573 K and buried depth 6000-7000 M
    Zhao, Yangsheng
    Feng, Zijun
    Feng, Zengchao
    Yang, Dong
    Liang, Weiguo
    ENERGY, 2015, 82 : 193 - 205