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A Graphical Solution To Model the Flow of Compressible CO2 in Aquifers

机译:模拟含水层中可压缩二氧化碳流量的图解解决方案

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This paper presents a graphical solution to model fluid flow in permeable media in the presence of compressibility. Analytical solutions are important as numerical simulations do not yield explicit expressions in terms of the model parameters. Furthermore, simulations that provide the most comprehensive solutions to multiphase flow problems are computationally intensive. The method of characteristics (MOC) solution of the overall mass conservation equation of CO2 in two-phase two-component flow through permeable media is derived while considering the compressibility of fluids and the rock. The previously developed MOC solutions rely on the incompressible fluid and rock assumptions that are rarely met in practice; hence, the incompressible assumption is relaxed and the first graphical/analytical solution for compressible flow is derived. The analytical solution is validated by simulation results. The results suggest that the velocity of a wave, which is associated with the transport of a certain mass of CO2 along the permeable medium, is a function of compressibility of the rock and fluid, fractional flow terms, gas saturation, and the slope of fractional flow curve. Furthermore, the wave velocity will be only function of fractional flow terms, gas saturation, and the slope of fractional flow curve if the compressibility of the rock is negligible compared to that of CO2. Thus, this paper explains how fast a compressible CO2 plume will travel along the aquifers length. In practice, the fate of the injected CO2 plume is essential to determine the storage capacity of aquifers and to evaluate the risk associated with the CO2 sequestration projects.
机译:本文介绍了在压缩性存在下在可渗透介质中模拟流体流的图解解决方案。分析解决方案很重要,因为数值模拟在模型参数方面不会产生显式表达式。此外,为多相流动问题提供最全面的解决方案的模拟是计算密集的。在考虑流体和岩石的可压缩性的同时得出了通过可渗透介质的两相双组分流动中CO2的整体质量保护方程的特性(MOC)溶液。先前开发的MOC解决方案依赖于在实践中很少达到的不可压缩的流体和岩石假设;因此,促进不可压缩的假设,并推导出用于可压缩流的第一图形/分析溶液。通过仿真结果验证分析解决方案。结果表明,波浪的速度与透过介质的一定量的CO2相关联的波是岩石和流体,分数流动术语,气体饱和度和分数斜率的压缩性的函数流动曲线。此外,如果岩石的可压缩性与CO2相比可忽略不计,则波速仅是分数流动术语,气体饱和度和分数流动曲线的斜率。因此,本文解释了可压缩二氧化碳羽流沿含水层长度的快速。在实践中,注入的CO2羽流的命运对于确定含水层的储存能力是必不可少的,并评估与CO2封存项目相关的风险。

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