干热岩石的断裂网特征对热萃取性能的影响:数值模拟研究

0 ENERGY & FUELS
Shijie Chen , Haiyan Zhu , Peng Zhao , Yanyong Wang , Rongcai Song , Yinhui Zuo , Yu Shi , Tao Zhou
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引用次数: 0

摘要

中国干热岩(HDR)资源丰富,高效开发地热能是实现碳中和与碳净零排放的有效途径。提高地热储层断裂网的热交换效率是实现干热岩资源效益开发的有效方法。为了分析断裂网特征对 HDR 热回收性能的影响,本研究研究了各种物理场之间的耦合关系,并开发了一种热-流-固多场耦合数值模拟方法,该方法结合了低温和岩石基质渗透率演化的影响。此外,还利用热耦合理论解、实验和 Hijiori 油田的监测数据对所建立的模型进行了验证。在此基础上,考虑到青海省共和盆地断裂网的特点,建立了 THM 注采耦合传热模型。然后系统分析了断裂网对地热开发的影响。结果表明,增加断裂数量和加宽断裂间距更有利于提高采热性能。优势通道会降低周围断裂的传热效率。此外,当主导通道宽度大于 2 毫米时,传热区内主导通道宽度与裂缝宽度之比会成倍增加。总之,低温流体注入后,随着时间的推移,主导通道的影响是显而易见的。断裂网络的特征,尤其是优势通道的特征,对于设计 HDR 系统的地热开发战略至关重要。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Influence of fracture network characteristics of hot dry rock on heat extraction performance: A numerical simulation study
Considering the many hot dry rock (HDR) fields in China, efficient development of geothermal energy is an effective means to achieve carbon neutrality and net zero carbon emissions. Enhancing the heat exchange efficiency of the geothermal reservoir fracture network is an effective method for realizing the beneficial development of HDR resources. To analyze the influence of the characteristics of fracture network on the heat recovery performance of HDR, this study examines the coupling relationships among various physical fields and develops a thermal-fluid-solid multi-field coupling numerical simulation method that incorporates the effects of low-temperature and evolution of rock matrix permeability. Furthermore, the established model was verified using the thermal-coupled theoretical solution, experiment, and monitoring data from the Hijiori field. Based on these findings, a THM coupled injection-production heat transfer model, considering the characteristics of the fracture network in the Gonghe Basin of Qinghai Province, was developed. The influence of fracture network on geothermal development was then systematically analyzed. The results indicate that increased number of fractures and wider fracture spacing are more conducive to improving heat extraction performance. The dominant channel reduces heat transfer efficiency in surrounding fractures. Besides, when the width of the dominant channel is more than 2 mm, there is a double increase in the ratio of the dominant channel width to the width of fractures in the heat transfer zone. Overall, the impact of the dominant channel is evident after low-temperature fluid injection over time. The characteristics of the fracture network, especially the dominant channels, are critical for designing geothermal exploitation strategies in HDR systems.
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