强化地热系统中热能提取引起的地热机械变化:概述与前瞻性方向

Mary C. Ngoma, Oladoyin Kolawole, Olufemi Olorode
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引用次数: 0

摘要

来自地下(或地质)深层的地热能源,无论是否与碳捕集与封存(CCS)相结合,都可以成为减少人为温室气体排放和实现 2050 年净零碳排放目标的关键技术。沉积序列中低渗透性和中高温储层中的地热资源需要通过水力刺激来增强地热系统(EGS)。然而,在 EGS 或 CO2-EGS 中潜在的二氧化碳封存中,用于地热能源的流体迁移都依赖于诱导流体注入所形成的原位流动路径网络。当工作流体为水(在 EGS 中)或超临界 CO2(在 CO2-EGS 中)时,这些热机械相互作用可能非常复杂,并引起机械响应的不同变化,这可能会影响地层中的地热能回收。因此,有必要深入了解 EGS 和 CO2-EGS 的热提取过程。本研究系统地综述了地下深层岩石力学性质和行为的变化对 EGS 储层(无论是否在 CO2-EGS 中封存二氧化碳)的诱导流动路径和热能回收的影响。此外,我们还提出了无水刺激 EGS 作为改善 EGS 热能提取的替代方法。最后,根据我们的文献综述结果和提出的想法,我们建议了一些有前景的研究领域,这些领域可能会为理解地热力学提供更多的见解,从而进一步激发新的研究,加快地热能作为一种可行的清洁能源技术的发展。
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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Geothermo-mechanical alterations due to heat energy extraction in enhanced geothermal systems: Overview and prospective directions

Geothermal energy from deep underground (or geological) formations, with or without its combination with carbon capture and storage (CCS), can be a key technology to mitigate anthropogenic greenhouse gas emissions and meet the 2050 net-zero carbon emission target. Geothermal resources in low-permeability and medium- and high-temperature reservoirs in sedimentary sequence require hydraulic stimulation for enhanced geothermal systems (EGS). However, fluid migration for geothermal energy in EGS or with potential CO2 storage in a CO2-EGS are both dependent on the in situ flow pathway network created by induced fluid injection. These thermo-mechanical interactions can be complex and induce varying alterations in the mechanical response when the working fluid is water (in EGS) or supercritical CO2 (in CO2-EGS), which could impact the geothermal energy recovery from geological formations. Therefore, there is a need for a deeper understanding of the heat extraction process in EGS and CO2-EGS. This study presents a systematic review of the effects of changes in mechanical properties and behavior of deep underground rocks on the induced flow pathway and heat recovery in EGS reservoirs with or without CO2 storage in CO2-EGS. Further, we proposed waterless-stimulated EGS as an alternative approach to improve heat energy extraction in EGS. Lastly, based on the results of our literature review and proposed ideas, we recommend promising areas of investigation that may provide more insights into understanding geothermo-mechanics to further stimulate new research studies and accelerate the development of geothermal energy as a viable clean energy technology.

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Issue Information Two-year growth of Deep Underground Science and Engineering: A perspective Acknowledgment of reviewers A review of mechanical deformation and seepage mechanism of rock with filled joints Issue Information
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