论文标题

基于流线的二氧化碳二氧化碳蓄积仿真

Streamline-Based Simulation of Carbon Dioxide Sequestration in Saline Aquifers

论文作者

Olalotiti-Lawal, Feyi, Tanaka, Shusei, Datta-Gupta, Akhil

论文摘要

二氧化碳的地下隔离已引起全球科学界的关注,以应对气候变化问题,这是由于大气中二氧化碳浓度较高而引起的。因此,已经开发了数学模型,以帮助理解二氧化碳的多相流和地下隔离期间的捕获机制。这些模型的解决方案的范围从分析,半分析和数值方法不等,每种方法都具有基本物理,计算速度和准确性的优点和局限性。我们提出了一种基于流线的方法,用于在盐水含水层中建模二氧化碳传输,该方法利用流线的子网格分辨率能力在捕获二氧化碳注射过程中捕获小和大规模异质性效应方面。我们的方法是基于迭代意义的计划,并说明了盐水含水层中二氧化碳注入的物理过程。这些包括可压缩性,重力,毛细血管,相互溶解度,降水和形成干燥效果。我们的流线仿真方法通过严格处理由可压缩性,重力和毛细管效应引起的横向通量来扩展基于流线的模型。我们提出了一系列示例,包括不同级别的地质和几何复杂性,以说明方法的相关性,准确性和计算效率。

Subsurface sequestration of CO2 has received attention from the global scientific community in response to climate change concerns due to higher concentrations of CO2 in the atmosphere. Mathematical models have thus been developed to aid the understanding of multiphase flow of CO2 and trapping mechanisms during subsurface sequestration. Solutions to these models have ranged from analytical, semi-analytical and numerical methods, each having its merits and limitations in terms of underlying physics, computational speed and accuracy. We present a streamline-based method for modeling CO2 transport in saline aquifers which leverages sub-grid resolution capabilities of streamlines in capturing small- and large-scale heterogeneity effects during CO2 injection. Our approach is based on an iterative IMPES scheme and accounts for the physical processes characteristic of CO2 injection in saline aquifers. These include compressibility, gravity, capillarity, mutual solubility, precipitation and formation dry-out effects. Our streamline simulation method provides an extension of previous streamline-based models through rigorous treatment of transverse fluxes arising from compressibility, gravity and capillary effects. We present series of examples encompassing different levels of geologic and geometrical complexity to illustrate the relevance, accuracy and computational efficiency of the approach.

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