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Vertically integrated dual-porosity and dual-permeability models for CO2 sequestration in fractured geological formation

机译:垂直集成的双孔隙度和双渗透模型,用于裂缝地质形成中的CO2封存

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Analysis of geological storage of carbon dioxide (CO2) in deep saline aquifers requires computationally efficient mathematical models to predict the pressure evolution and the injected CO2 plume migration. The subsurface system of CO2 injection into saline aquifers can be modeled as a two-phase flow system, with a non-Wetting less dense (supercritical) CO2 phase and a denser brine as the wetting phase. For unfractured geological formations, one type of simplified model can be developed by integrating the three-dimensional governing equations in the vertical dimension. The vertically integrated models that assume buoyant segregation and vertical pressure equilibrium are referred to as vertical equilibrium (VE) models. VE models are computationally efficient owing to the dimension reduction from vertical integration, and have been extensively applied to field-scale modeling of CO2 injection, migration, and leakage in the past decade. For fractured geological formations, it is challenging to directly use vertically integrated models, because CO2 migration in fractured formations involves two different characteristic time scales due to significant contrast of permeability between the fractures and matrix. The high permeability of the fractures leads to fast buoyant segregation of CO2 and brine in the vertical direction within the fractures, while lower permeability of the matrix typically leads to much slower flow dynamics that involve longer time scales for segregation. In this paper, we use a dual-continuum approach to conceptualize the fractured geological formation, treating the fractures and the rock matrix blocks as overlapping continua, and develop vertically integrated models for CO2 injection in fractured geological formation. We use a VE model for the fracture domain and explore different model options for the matrix domain, including the classical dual-porosity model that treats the matrix as a source/sink term for the fracture as well as other more advanced models that explicitly account for the two-phase flow dynamics of the CO2 and brine in the matrix domain. We present the modeling framework and show preliminary model comparison results to demonstrate the applicability of the new models.
机译:深盐含水层中二氧化碳(CO2)的地质储存分析需要计算上有效的数学模型来预测压力进化和注射的CO2羽流迁移。将CO 2注射到盐水含水层中的地下系统可以被建模为两相流动系统,具有非润湿的致密(超临界)CO 2相和更密集的盐水作为润湿相。对于未裂变的地质形成,可以通过将三维控制方程集成在垂直尺寸中的三维控制方程来开发一种类型的简化模型。垂直集成的模型,其具有浮力隔离和垂直压力平衡被称为垂直均衡(VE)模型。由于垂直集成的尺寸减小,VE模型是计算的,并且已经广泛应用于过去十年中的CO2注射,迁移和泄漏的现场级模型。对于骨折地质形成,直接使用垂直整合模型是挑战性的,因为由于裂缝和基质之间的渗透性显着对比,裂缝形成中的CO2迁移涉及两个不同的特征时间尺度。裂缝的高渗透率导致裂缝内的垂直方向上的CO 2和盐水的快速偏析,而基质的较低渗透性通常导致大大较慢的流动动态,涉及较长的偏差时间尺度进行偏差。在本文中,我们使用双连续方法来概念化骨折地质形成,将骨折和岩石基质块作为重叠连续,并在裂缝地质形成中开发用于CO2注射的垂直集成模型。我们使用裂缝域的VE模型,并为矩阵域探索不同的模型选项,包括经典双孔隙度模型,该模型将矩阵视为骨折的源/下沉术语以及明确占用的其他更高级模型基质结构域的CO2和盐水的两相流动动态。我们介绍了建模框架并显示了初步模型比较结果,以证明新模型的适用性。

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