砂岩气圈闭的先进数字尺度测量方法

Ying Gao, T. Sorop, N. Brussee, Hilbert Van der Linde, A. Coorn, M. Appel, S. Berg
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引用次数: 2

摘要

圈闭气饱和度(Sgr)在地下碳捕集与封存、储氢效率以及天然气生产等工程中发挥着重要作用。不幸的是,人马座是出了名的难以在实验室或现场测量。传统的测量方法-低速率非稳态岩心驱油-经常受到气体溶解效应的影响,导致测量的Sgr不确定度很大。此外,人们还不明白为什么这种效应会发生,即使是对小心地与气体预平衡的盐水也是如此。为了解决这个问题,我们使用了高分辨率x射线计算机断层扫描(micro-CT)成像技术来直接观察气体捕获过程中的孔隙尺度过程。与前人研究一致,我们发现对于预平衡盐水,随着预平衡盐水注入量的增加,甚至在停止注盐水后,剩余气饱和度持续下降,导致孔隙尺度上的Sgr值非常低(甚至可能为零)。此外,我们能够清楚地观察到,通过断裂效应,气体的最初捕获,随后是没有连接到外部通道的气团的进一步收缩。我们的实验结果表明,这种效应与多孔介质内气体的有效相行为有关,由于几何约束,气体的有效相行为可能不同于散装流体的相行为。潜在的机制可能与成熟动力学有关,成熟动力学涉及相平衡与组分的溶解/分配、扩散输运和孔隙空间几何限制中的毛细作用之间的耦合。
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Advanced Digital-SCAL Measurements of Gas Trapped in Sandstone
Trapped gas saturation (Sgr) plays an important role in subsurface engineering, such as carbon capture and storage, H2 storage efficiency as well as the production of natural gas. Unfortunately, Sgr is notoriously difficult to measure in the laboratory or field. The conventional method of measurement—low-rate unsteady-state coreflooding—is often impacted by gas dissolution effects, resulting in large uncertainties of the measured Sgr. Moreover, it is not understood why this effect occurs, even for brines carefully pre-equilibrated with gas. To address this question, we used high-resolution X-ray computed tomography (micro-CT) imaging techniques to directly visualize the pore-scale processes during gas trapping. Consistent with previous studies, we find that for pre-equilibrated brine, the remaining gas saturation continually decreased with more (pre-equilibrated) brine injected and even after the brine injection was stopped, resulting in very low Sgr values (possibly even zero) at the pore-scale level. Furthermore, we were able to clearly observe the initial trapping of gas by the snap-off effect, followed by a further shrinkage of the gas clusters that had no connected pathway to the outside. Our experimental insights suggest that the effect is related to the effective phase behavior of gas inside the porous medium, which due to the geometric confinement, could be different from the phase behavior of bulk fluids. The underlying mechanism is likely linked to ripening dynamics, which involves a coupling between phase equilibrium and dissolution/partitioning of components, diffusive transport, and capillarity in the geometric confinement of the pore space.
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