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首页> 外文期刊>Environmental Progress & Sustainable Energy >Interfacial tension and contact angle measurements for the evaluation of CO2-brine two-phase flow characteristics in porous media
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Interfacial tension and contact angle measurements for the evaluation of CO2-brine two-phase flow characteristics in porous media

机译:界面张力、接触角测量评估CO2-brine两相流在多孔介质特性

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摘要

It is of great importance to investigate gas and water flow characteristics to better understand the geological CO2 sequestration process. The interfacial tension between CO2 and brine and the wettability of reservoir rocks are the most important parameters for two-phase flow in porous media that have a significant influence on the capacity of CO2 storage. In this paper, we present a set of interfacial tension data between CO2 and a sodium chloride (NaCl) solution and the contact angle data between CO2, NaCl and quartz by using a visual experimental method at multiple pressure, temperature and salinity conditions. We also performed simulations of CO2 and NaCl solution two-phase flow in quartz bead-packed beds by introducing interfacial tension and contact angle data into the pore network model to evaluate the relative permeability and capillary pressure. We found that the phase alternation of CO2 from a gas to its supercritical state has a significant influence on the wettability of pore surfaces and thus governs the capillary trapping mechanism. This indicates that CO2 sequestration efficiency in a saline aquifer will be greatly affected while CO2 is in its different phase states. The simulation results showed that a pore network model is available for the study of CO2 and brine two-phase flow characteristics in porous media. (c) 2015 American Institute of Chemical Engineers Environ Prog, 34: 1756-1762, 2015
机译:研究气体和具有十分重要的意义为了更好地理解水流特征二氧化碳地质封存的过程。之间的界面张力二氧化碳和盐水储层岩石润湿性是最两相流在多孔的重要参数媒体产生显著的影响二氧化碳的储存能力。介绍了一套之间的界面张力数据二氧化碳,氯化钠(氯化钠)和解决方案接触角数据之间二氧化碳,氯化钠和石英通过使用多个视觉实验方法压力、温度和盐度条件。还进行了模拟的二氧化碳,氯化钠解决方案在石英bead-packed两相流引入界面张力和床接触角数据到孔隙网络模型评估相对渗透率和毛细管压力。气体CO2超临界状态有一个显著影响孔隙的润湿性表面,从而控制毛细管捕获机制。咸水层的效率将大大影响二氧化碳在不同的阶段州。网络模型用于二氧化碳的研究和盐水两相流特征多孔介质。化学工程师环境掠夺,34:1756 - 1762,2015

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