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Evaluating the impact of caprock and reservoir properties on potential risk of CO2 leakage after injection

机译:评估盖层和储层性质对注入后CO 2 泄漏的潜在风险的影响

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Numerical models are essential tools in fully understanding the fate of injected CO2 for commercial-scale sequestration projects and should be included in the life cycle of a project. Common practice involves modeling the behavior of CO2 during and after injection using site-specific reservoir and caprock properties. Little has been done to systematically evaluate and compare the effects of a broad but realistic range of reservoir and caprock properties on potential CO2 leakage through caprocks. This effort requires sampling the physically measurable range of caprock and reservoir properties, and performing numerical simulations of CO2 migration and leakage. In this study, factors affecting CO2 leakage through intact caprocks are identified. Their physical ranges are determined from the literature from various field sites. A quasi-Monte Carlo sampling approach is used such that the full range of caprock and reservoir properties can be evaluated without bias and redundant simulations. For each set of sampled properties, the migration of injected CO2 is simulated for up to 200 years using the water–salt–CO2 operational mode of the STOMP simulator. Preliminary results show that critical factors determining CO2 leakage rate through caprocks are, in decreasing order of significance, the caprock thickness, caprock permeability, reservoir permeability, caprock porosity, and reservoir porosity. This study provides a function for prediction of potential CO2 leakage risk due to permeation of intact caprock and identifies a range of acceptable seal thicknesses and permeability for sequestration projects. The study includes an evaluation of the dependence of CO2 injectivity on reservoir properties.
机译:数值模型是充分理解用于商业规模封存项目的注入CO 2 的命运的基本工具,应包括在项目的生命周期中。常见的做法是使用特定位置的储层和盖层特性对注入期间和注入后CO 2 的行为建模。很少有系统地评估和比较储层和盖层性质的实际影响范围对盖层潜在的CO 2 泄漏的影响。这项工作需要对盖层和储层物性的物理可测量范围进行采样,并对CO 2 运移和渗漏进行数值模拟。在这项研究中,确定了影响CO 2 通过完整盖岩渗漏的因素。它们的物理范围是根据来自各个现场站点的文献确定的。使用了准蒙特卡洛采样方法,因此可以评估整个盖层和储层属性,而无需进行偏差和多余的模拟。对于每组采样属性,使用STOMP模拟器的水-盐-CO 2 操作模式对注入的CO 2 的迁移进行长达200年的模拟。初步结果表明,决定CO 2 通过盖层渗漏速率的关键因素,按降序排列,依次为盖层厚度,盖层渗透率,储层渗透率,盖层孔隙度和储层孔隙度。这项研究为预测​​由于完整盖层渗透而造成的潜在CO 2 泄漏风险提供了一种功能,并为封存项目确定了可接受的密封厚度和渗透率范围。该研究包括对CO 2 注入量对储层物性的依赖性评估。

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