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Study of the fluid flow characteristics in a porous medium for CO2 geological storage using MRI
Authors:Yongchen Song  Lanlan Jiang  Yu Liu  Mingjun Yang  Xinhuan Zhou  Yuechao Zhao  Binlin Dou  Abuliti Abudula  Ziqiu Xue
Institution:1. Key Laboratory of Ocean Energy Utilization and Energy Conservation of Ministry of Education, Dalian University of Technology, Dalian, Liaoning 116024, China;2. North Japan New Energy Research Center, Hirosaki University, Aomori City 0300813, Japan;3. Research Institute of Innovative Technology for the Earth, Kizugawa City, Kyoto 6190292, Japan
Abstract:The objective of this study was to understand fluid flow in porous media. Understanding of fluid flow process in porous media is important for the geological storage of CO2. The high-resolution magnetic resonance imaging (MRI) technique was used to measure fluid flow in a porous medium (glass beads BZ-02). First, the permeability was obtained from velocity images. Next, CO2–water immiscible displacement experiments using different flow rates were investigated. Three stages were obtained from the MR intensity plot. With increasing CO2 flow rate, a relatively uniform CO2 distribution and a uniform CO2 front were observed. Subsequently, the final water saturation decreased. Using core analysis methods, the CO2 velocities were obtained during the CO2–water immiscible displacement process, which were applied to evaluate the capillary dispersion rate, viscous dominated fractional flow, and gravity flow function. The capillary dispersion rate dominated the effects of capillary, which was largest at water saturations of 0.5 and 0.6. The viscous-dominant fractional flow function varied with the saturation of water. The gravity fractional flow reached peak values at the saturation of 0.6. The gravity forces played a positive role in the downward displacements because they thus tended to stabilize the displacement process, thereby producing increased breakthrough times and correspondingly high recoveries. Finally, the relative permeability was also reconstructed. The study provides useful data regarding the transport processes in the geological storage of CO2.
Keywords:CO2 immiscible displacement  Velocity  Relative permeability  CO2 storage  MRI
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