Jiang Lanlan, Wang Sijia, Liu Donglei, Zhang Weixin, Lu Guohuan, Liu Yu, Zhao Jiafei
Key Laboratory of Ocean Energy Utilization and Energy Conservation of Ministry of Education, Dalian University of Technology, Dalian 116024, China.
Polymers (Basel). 2020 Sep 14;12(9):2084. doi: 10.3390/polym12092084.
In this study, we visualised CO-brine, density-driven convection in a Hele-Shaw cell. Several experiments were conducted to analyse the effects of the salinity and temperature. The salinity and temperature of fluids were selected according to the storage site. By using charge coupled device (CCD) technology, convection finger formation and development were obtained through direct imaging and processing. The process can be divided into three stages: diffusion-dominated, convection-dominated and shutdown stages. Fingers were formed along the boundary at the onset time, reflecting the startup of convection mixing. Fingers formed, moved and aggregated with adjacent fingers during the convection-dominated stage. The relative migration of brine-saturated CO and brine enhanced the mass transfer. The effects of salinity and temperature on finger formation, number, and migration were analysed. Increasing the salinity accelerated finger formation but suppressed finger movement, and the onset time was inversely related to the salinity. However, the effect of temperature on convection is complex. The dissolved CO mass was investigated by calculating the CO mass fraction in brine during convection mixing. The results show that convection mixing greatly enhanced mass transfer. The study has implications for predicting the CO dissolution trapping time and accumulation for the geological storage of CO.
在本研究中,我们可视化了在赫勒肖盒中二氧化碳-盐水的密度驱动对流。进行了若干实验以分析盐度和温度的影响。流体的盐度和温度根据储存地点进行选择。通过使用电荷耦合器件(CCD)技术,通过直接成像和处理获得了对流指的形成和发展过程。该过程可分为三个阶段:扩散主导阶段、对流主导阶段和关闭阶段。在起始时刻,对流指沿着边界形成,这反映了对流混合的启动。在对流主导阶段,对流指形成、移动并与相邻的对流指聚集。盐水饱和的二氧化碳与盐水的相对迁移增强了传质。分析了盐度和温度对对流指形成、数量和迁移的影响。增加盐度加速了对流指的形成,但抑制了对流指的移动,且起始时间与盐度呈负相关。然而,温度对对流的影响较为复杂。通过计算对流混合过程中盐水中二氧化碳的质量分数来研究溶解的二氧化碳质量。结果表明,对流混合极大地增强了传质。该研究对于预测二氧化碳地质储存中的溶解捕集时间和积累具有重要意义。