Numerical Simulation of Geothermal Energy Development at Mount Meager and Its Impact on In Situ Thermal Stress

Energies Pub Date : 2024-07-14 DOI:10.3390/en17143466
Yutong Chai, Zhuoheng Chen, Shunde Yin
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Abstract

The Meager Mountain Geothermal Project stands as one of the pioneering geothermal energy initiatives in its early stages of resource development. Despite its abundant geothermal heat resources, no prior studies have systematically evaluated the potential of implementing coaxial borehole heat exchangers on site. This study addresses this research gap by presenting a comprehensive heat transfer model for an underground closed-loop geothermal system utilizing a single coaxial well. Finite element analysis incorporated fluid and solid heat transfer, as well as solid mechanics. The results obtained facilitated the construction of the temperature and thermal stress profiles induced by the cooling effects resulting from years of heat extraction. After 25 years of operation, the outlet temperature has reached approximately 74 °C, and the maximum radial tensile thermal stress amounts to ~47 MPa. Furthermore, the analysis demonstrates that higher fluid velocities contribute to more perturbed temperature and stress distributions. The study attained maximum thermal and electric power outputs of 208 kW and 17 kW, respectively. This research also underscores the significant impact of geothermal gradient and well length on BHE design, with longer wells yielding more power, especially at higher injection velocities.
米格山地热能开发的数值模拟及其对原地热应力的影响
米格山地热项目是处于资源开发早期阶段的开创性地热能源项目之一。尽管该项目拥有丰富的地热资源,但此前没有任何研究系统地评估过在现场安装同轴钻孔热交换器的潜力。本研究针对这一研究空白,提出了一个利用单个同轴井的地下闭环地热系统的综合传热模型。有限元分析包括流体和固体传热以及固体力学。所获得的结果有助于构建由多年热量提取产生的冷却效应引起的温度和热应力曲线。经过 25 年的运行,出口温度达到约 74 °C,最大径向拉伸热应力达到约 47 兆帕。此外,分析表明,流体速度越高,温度和应力分布的扰动越大。该研究获得的最大热功率和电功率输出分别为 208 千瓦和 17 千瓦。这项研究还强调了地热梯度和油井长度对 BHE 设计的重要影响,较长的油井可产生更多的功率,尤其是在较高的注入速度下。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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