西安交通大学能源与动力工程学院,710049,西安
作者简介:乔明正(1998—),男,博士生;
景泽锋(通信作者),男,副教授,博士生导师。
收稿:2025-07-13,
纸质出版:2026-02-10
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乔明正, 景泽锋, 周雨娟, 等. 超临界二氧化碳开采干热岩热量过程中裂隙网络的热流固耦合分析[J]. 西安交通大学学报, 2026,60(2):82-91.
QIAO Mingzheng, JING Zefeng, ZHOU Yujuan, et al. Thermo-Hydro-Mechanical Coupling Analysis of Fracture Networks During Heat Extraction from Hot Dry Rock Using Supercritical Carbon Dioxide[J]. Journal of Xi'an Jiaotong University, 2026, 60(2): 82-91.
乔明正, 景泽锋, 周雨娟, 等. 超临界二氧化碳开采干热岩热量过程中裂隙网络的热流固耦合分析[J]. 西安交通大学学报, 2026,60(2):82-91. DOI: 10.7652/xjtuxb202602008.
QIAO Mingzheng, JING Zefeng, ZHOU Yujuan, et al. Thermo-Hydro-Mechanical Coupling Analysis of Fracture Networks During Heat Extraction from Hot Dry Rock Using Supercritical Carbon Dioxide[J]. Journal of Xi'an Jiaotong University, 2026, 60(2): 82-91. DOI: 10.7652/xjtuxb202602008.
针对使用超临界二氧化碳(SC-CO
2
)开发干热岩深层地热能时,裂隙储层在多物理场耦合作用下的特性演变规律,以及裂隙网络连通性对热采性能影响不明确的问题,使用数值模拟的方法,探究了裂隙储层网络的热流固(THM)耦合作用,并且模拟了不同压裂工况下裂隙网络的热采过程。研究对比了SC-CO
2
与水作为工作介质的取热效果,探究储层特性演变规律,分析了裂隙网络连通性对各物理场和储层特性的影响。研究结果表明:SC-CO
2
较水具有更高的生产温度和更缓的温度下降趋势,且对储层位移影响更小,更适合长期开采;多条水力裂隙网络的生产温度比单条水力裂隙网络的生产温度高出约24 K;单条水力裂隙网络中,断路距离的增加能够延缓温度下降,但也增大压力损失;多条水力裂隙网络中,断路会减少换热面积并降低换热量,但不影响热突破时间;储层孔隙度、渗透率及裂隙开度受THM耦合作用显著,井眼附近因流体压力梯度导致裂隙开度变化剧烈。该研究为增强型地热系统中裂隙网络的优化及高效热采提供理论依据。
To address the unclear issues concerning the evolution of properties in fractured reservoirs under multi-physical field coupling effects and the influence of fracture network connectivity on thermal extraction performance during the development of deep geothermal energy from hot dry rock using supercritical carbon dioxide(SC-CO
2
),a numerical simulation study was conducted. The thermo-hydro-mechanical(THM)coupling in fractured reservoir networks was investigated,and the heat extraction processes of fracture networks under different fracturing conditions were simulated.A comparison of heat extraction efficiency was made between SC-CO
2
and water as working fluids,the evolution of reservoir properties was explored,and the impact of fracture network connectivity on various physical fields and reservoir characteristics was analyzed.The results indicate that,compared with water,SC-CO
2
yields a higher production temperature,a slower temperature decline trend,and less impact on reservoir displacement,rendering it more suitable for long-term extraction.The production temperature of the multi-hydraulic fracture network is approximately 24 K higher than that of the single hydraulic fracture network.In a single
hydraulic fracture network,an increase in disconnection distance delays the temperature decline but raises the pressure loss.In multi-hydraulic fracture networks,disconnection reduces the heat exchange area and total heat transfer,yet does not affect the thermal breakthrough time. Reservoir porosity,permeability,and fracture aperture are significantly influenced by THM coupling.Notably,the fracture aperture near the wellbore undergoes drastic changes due to the high fluid pressure gradient.This study provides a theoretical basis for the optimization of fracture networks and efficient heat extraction in enhanced geothermal systems.
QIAO Mingzheng, JING Zefeng, FENG Chenchen, et al. Review on heat extraction systems of hot dry rock:classifications, benefits, limitations, research status and future prospects[J].Renewable and Sustainable Energy Reviews, 2024, 196:114364.
QIAO Mingzheng, ZHOU Yujuan, JING Zefeng, et al. Heat extraction analysis of an innovative single-well open-loop geothermal system using scCO 2 [J ] .Energy, 2025, 328:136502.
ZHANG Wei, WANG Chunguang, GUO Tiankui, et al. Study on the cracking mechanism of hydraulic and supercritical CO 2 fracturing in hot dry rock under thermal stress[J ] .Energy, 2021, 221:119886.
LIAO Jianxing, HU Ke, MEHMOOD F, et al.Embedded discrete fracture network method for numerical estimation of long-term performance of CO 2 -EGS under THM coupled framework[J ] .Energy, 2023, 285 :128734.
ATRENS A D, GURGENCI H, RUDOLPH V.CO 2 thermosiphon for competitive geothermal power generation[J ] .Energy & Fuels, 2009, 23(1):553-557.
蒋恕,张凯,杜凤双,等.二氧化碳地质封存及提高油气和地热采收率技术进展与展望[J].地球科学, 2023, 48(7):2733-2749.
JIANG Shu, ZHANG Kai, DU Fengshuang, et al. Progress and prospects of CO 2 storage and enhanced oil, gas and geothermal recovery[J ] .Earth Science, 2023, 48(7):2733-2749 .
XIE Zhiqiang, HAN Dongya, LI Jiangteng, et al.A state-of-the-art review of hydraulic fracturing in geothermal systems[J].Sustainability, 2024, 16 (24):11087.
许天福,文冬光,袁益龙.干热岩地热能开发技术挑战与发展战略[J].地球科学, 2024, 49(6):2131-2147.
XU Tianfu, WEN Dongguang, YUAN Yilong.Technical challenges and strategy of geothermal energy development from hot dry rock[J]. Earth Science, 2024, 49(6):2131-2147.
ZHANG Xu, HUANG Zhaoqin, LEI Qinghua, et al. Improving heat extraction performance of enhanced geothermal systems: insights from critical fracture network parameter and multi-obj ective optimization method[J]. Applied Thermal Engineering, 2022, 213:118671.
谢紫霄,黄中伟,熊建华,等.天然裂缝对干热岩水力压裂裂缝扩展的影响规律[J].天然气工业, 2022 , 42(4):63-72.
XIE Zixiao, HUANG Zhongwei, XIONG Jianhua, et al. Influence of natural fractures on the propagation of hydraulic fractures in hot dry rock[J].Natural Gas Industry, 2022, 42(4):63-72.
史璨,林伯韬.页岩储层压裂裂缝扩展规律及影响因素研究探讨[J].石油科学通报, 2021, 6(1):92-113.
SHI Can, LIN Botao.Principles and influencing factors for shale formations[J].Petroleum Science Bulletin, 2021, 6(1):92-113.
ZHOU Zhou, JIN Yan, ZENG Yijin, et al.Investigation on fracture creation in hot dry rock geothermal formations of China during hydraulic fracturing[J]. Renewable Energy, 2020, 153:301-313.
LIU Shiduo, XIONG Tingsong, LIU Yong, et al.Optimization design of hydraulic fracturing fracture parameters of horizontal wells in algal limestone reservoir[J]. Processes, 2024, 12(7):1302.
FU Xiaofei, MA Yuanyuan, LI Shibin, et al.Sensitivity analysis of mechanical field parameters in fractured HDR reservoir based on THM coupling[J].Energy, 2025, 320:135360.
ZHAO Yangsheng, FENG Zijun, FENG Zengchao, et al.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[J].Energy, 2015, 82 (15):193-205.
GUO Tiankui, GONG Facheng, WANG Xiaozhi, et al. Performance of enhanced geothermal system (EGS)in fractured geothermal reservoirs with CO 2 as working fluid[J ] .Applied Thermal Engineering, 2019 , 152:215-230.
PANDEY S N, CHAUDHURI A, KELKAR S.A coupled thermo-hydro-mechanical modeling of fracture aperture alteration and reservoir deformation during heat extraction from a geothermal reservoir[J].Geothermics, 2017, 65:17-31.
MA Yuanyuan, FU Xiaofei, LI Shibin, et al.Investigation on the effect of the relative position between fracture and injection-production well on thermal extraction performance[J].Applied Thermal Engineering, 2024, 254:123876.
XUE Zhenqian, WEI Zichao, MA Haoming, et al. Exploring the role of fracture networks in enhanced geothermal systems:insights from integrated thermal-hydraulic-mechanical-chemical and wellbore dynamics simulations[J].Renewable and Sustainable Energy Reviews, 2025, 215:115636.
SONG Guofeng, SONG Xianzhi, XU Fuqiang, et al. Contributions of thermo-poroelastic and chemical effects to the production of enhanced geothermal system based on thermo-hydro-mechanical-chemical modeling[J].Journal of Cleaner Production, 2022, 377:134471 .
SHI Honglei, WANG Guiling, LU Chuan, et al.Enhancing geothermal energy recovery in Yangbajing:the role of natural and artificial fracture connectivity in EGS performance[J].Geothermics, 2025, 132:103438.
SONG Guofeng, SONG Xianzhi, JI Jiayan, et al.Evolution of fracture aperture and thermal productivity influenced by chemical reaction in enhanced geothermal system[J].Renewable Energy, 2022, 186:126-142.
LEI Zhihong, ZHANG Yanjun, ZHANG Senqi, et al. Electricity generation from a three-horizontal-well enhanced geothermal system in the Qiabuqia geothermal field, China:slickwater fracturing treatments for different reservoir scenarios[J]. Renewable Energy, 2020, 145 :65-83.
MAHMOODPOUR S, SINGH M, TURAN A, et al. Simulations and global sensitivity analysis of the thermo-hydraulic-mechanical processes in a fractured geothermal reservoir[J].Energy, 2022, 247:123511.
SONG Guofeng, SHI Yu, XU Fuqiang, et al.The magnitudes of multi-physics effects on geothermal reservoir characteristics during the production of enhanced geothermal system[J].Journal of Cleaner Production, 2024, 434:140070.
ZHANG Wei, WANG Mingjian, WEI Zhengnan, et al.Study of the fracture propagation and the corresponding heat mining performance of multi-branch radial wells geothermal system based on the THM-D coupling model[J].Geoenergy Science and Engineering, 2024, 243:213302.
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