CCS中自然对流的实验和理论研究:开始时间、传质速率、毛细过渡区和溶解热

A. Eftekhari, R. Farajzadeh, J. Bruining
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引用次数: 2

摘要

本文从实验和理论两方面研究了饱和水多孔介质上CO2饱和层对水中CO2传质增强的影响。压力衰减实验采用长度为0.5 m、直径为0.15 m的较大实验装置,以尽量减少温度波动和小泄漏造成的压力测量误差。将实验结果与理论结果在自然对流发生时间和对流主导过程中CO2的传质速率方面进行了比较。此外,对多孔介质中非等温多组分流动模型进行了数值求解,研究了CO2在水中的溶解热对CO2传质速率的影响。从理论上研究了毛细管过渡区对CO2传质速率的影响。与不考虑毛细过渡区的模拟结果相比,考虑毛细过渡区的模拟结果与实验结果更加吻合。模拟结果还表明,溶解热对传质速率的影响可以忽略不计
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Experimental And Theoretical Investigation Of Natural Convection In CCS: Onset Time, Mass-Transfer Rate, Capillary Transition Zone, And Heat Of Dissolution
We study the enhanced mass transfer of CO2 in water for a CO2 saturated layer on top of a water saturated porous medium, experimentally and theoretically. A relatively large experimental set-up with a length of 0.5 m and a diameter of 0.15 m is used in pressure decay experiments to minimize the error of pressure measurement due to temperature fluctuations and small leakages. The experimental results were compared to the theoretical result in terms of onset time of natural convection and rate of mass transfer of CO2 in the convection dominated process. In addition, a non-isothermal multicomponent flow model in porous media, is solved numerically to study the effect of the heat of dissolution of CO2 in water on the rate of mass transfer of CO2. The effect of the capillary transition zone on the rate of mass transfer of CO2 is also studied theoretically. The simulation results including the effect of the capillary transition zone show a better agreement with experimental results compared to the simulation result without considering a capillary transition zone. The simulation results also show that the effect of heat of dissolution on the rate of mass transfer is negligible
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