多孔介质中的地下氢存储:岩石物理学的潜在作用

E. Okoroafor, Lokesh Kumar Sekar, Henry Galvis
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引用次数: 0

摘要

本研究的目的是展示影响地下储氢的关键地质和储层工程参数,证明一些岩石物理数据的价值,并说明在储层和地质力学建模方面,枯竭气田和含盐含水层的储氢情况有何不同。我们利用数值模拟建模创建了一个合成储层的基础案例模型,该模型准确地反映了多孔介质地下储氢的相关流体力学条件。然后进行了两步敏感性分析。首先,我们确定了对多孔介质中氢的存储和流动有重大影响的关键参数。随后,我们分析了地下储氢的地质力学影响。此外,我们还将储氢行为与天然气储氢行为进行了比较。研究表明,储层深度或当前压力、储层倾角和流动能力是影响氢气最佳提取的三大因素。研究还显示,岩石位移和应力变化是需要监测的重要因素,而应变变化并不重要。如果假定注入发生在极度受压的岩石中,那么与贫化油田的氢气存储或甚至贫化油田的天然气存储相比,在含盐含水层中注入和提取氢气可能会导致更多的微地震发生。本研究对数据中的不确定性进行了量化,并指出了岩石物理测量可将与地下储氢相关的关键参数的不确定性降至最低的领域。它还确定了多孔介质储氢测量中的差距。在监测多孔介质地下储氢时,这些具有较大不确定性的参数对于选择最佳储氢地点和检测地下完整性问题至关重要。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Underground Hydrogen Storage in Porous Media: The Potential Role of Petrophysics
The objective of this study is to showcase the key geological and reservoir engineering parameters that influence underground hydrogen storage, demonstrate the value of some petrophysical data, and show how hydrogen storage differs between depleted gas fields and saline aquifers for reservoir and geomechanical modeling. We utilized numerical simulation modeling to create a base-case model of a synthetic reservoir that accurately represented the hydrodynamic conditions relevant to underground hydrogen storage in porous media. A two-step sensitivity analysis was then conducted. Firstly, we identified the critical parameters that significantly influence the storage and flow of hydrogen in porous media. Subsequently, we analyzed the geomechanical impact of underground hydrogen storage. In addition, we compared the behavior of hydrogen storage to natural gas storage. The study showed that the reservoir depth or current pressure, the reservoir dip, and the flow capacity were the top three factors impacting the optimal withdrawal of hydrogen. The study also revealed that rock displacement and stress changes were important to be monitored, while changes in strain were not significant. If it is assumed that injection occurs in a critically stressed rock, hydrogen injection and withdrawal in saline aquifers could result in more incidence of microseismicity compared to hydrogen storage in depleted fields or even gas storage in depleted fields. This study quantifies uncertainties in data and pinpoints areas where petrophysical measurements could minimize the uncertainty associated with critical parameters relevant to underground hydrogen storage. It also identifies gaps in measurements for hydrogen storage in porous media. These parameters with large uncertainty are crucial for selecting optimal sites for hydrogen storage and detecting subsurface integrity issues when monitoring for underground hydrogen storage in porous media.
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