Analysis of the Migration of Carbon Dioxide in Deep Saline Fractured Aquifer

Bin Liu, Chen Xu, Junchang Sun, Hongqi Yuan
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Abstract

 In order to control greenhouse gases and protect the environment, carbon dioxide emission reduction has become a global research hotspot. Fractures in the deep saline aquifer enhance the heterogeneity of the aquifer, and have an important effect on CO2 migration, thus the detailed description and characterization of fractures in geological structure are very important. Existing research on the impact of fractures on CO2 migration, however, ignores the role that the fractures' characteristics play in this process. This work aims at addressing this gap. Based on the embedded discrete fractured model (EDFM), we quantified the role of the fractures in the mechanism of CO2 migration and studied the length, aperture, and orientation of the fractures. It is found that the CO2 plume takes the fracture as its preferred channel and changes the migration direction. The longer the fracture length and wider the fracture aperture, the faster the CO2 migration rate is. The change in fracture orientation mainly affects the migration direction of the CO2 plume. Due to the different angles of the plume entering the fracture, the influences on the CO2 migration rate are also different. When the orientation is 45°, the CO2 migration rate is the fastest, while it is the slowest at 135°. When there is a complex fracture network in the aquifer, the heterogeneity of the aquifer is enhanced. Compared with the non-fractured aquifer, the direction and rate of CO2 migration are greatly changed, and the instability of CO2 sequestration is increased.
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深层含盐裂缝含水层中二氧化碳运移分析
为了控制温室气体排放,保护环境,二氧化碳减排已成为全球研究的热点。深层咸水含水层的裂缝增强了含水层的非均质性,对CO2运移有重要影响,因此对地质构造中裂缝的详细描述和表征非常重要。然而,现有的裂缝对CO2运移影响的研究忽略了裂缝特征在这一过程中的作用。这项工作旨在解决这一差距。基于嵌入离散裂缝模型(EDFM),量化了裂缝在CO2运移机制中的作用,研究了裂缝的长度、孔径和方向。研究发现,CO2羽流以裂缝为首选通道,改变了运移方向。裂缝长度越长,裂缝孔径越宽,CO2运移速率越快。裂缝方向的变化主要影响CO2柱的运移方向。由于地幔柱进入裂缝的角度不同,对CO2运移速率的影响也不同。当取向为45°时,CO2迁移速率最快,而当取向为135°时,CO2迁移速率最慢。当含水层中存在复杂的裂缝网络时,含水层的非均质性增强。与无裂缝含水层相比,CO2运移方向和速率发生了较大变化,CO2封存的不稳定性增加。
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