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Constraining CO2 simulations by coupled modeling and inversion of electrical resistance and gas composition data

机译:通过电阻和气体成分数据的耦合建模和反演约束二氧化碳模拟

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This study investigates how model predictions of subsurface CO2 migration can be constrained and improved with time-lapse electrical resistance tomography (ERT) data for a pilot experiment located at Cranfield, Mississippi. To this end, we first invert the time-lapse ERT dataset using structurally constrained and unconstrained inversions. With the ERT time-lapse inversions, we image the increasing supercritical CO2 saturation in the reservoir and find that including the reservoir boundaries as structural constraints significantly improves the images. We then use ERT-derived changes in subsurface electrical resistivity along with gas composition data to constrain and calibrate hydrological models. We use the inversion framework iTOUGH2 and test several simplified conceptual models for the reservoir. Our analysis shows that the reservoir response cannot be adequately reproduced with a radial model; rather, the system exhibits 1D behavior. A model with three 1D layers, whose permeability values and width were estimated by inversion, is able to explain the ERT and gas composition data. Derived permeabilities agree with those from core measurements and a well test. Despite high noise levels, the ERT data provided crucial information in the inversion thanks to its high sensitivity at the inter-well scale, its stabilizing effect on the inversion, and the direct link it provides between electrical resistivity and CO2 saturation
机译:这项研究调查了如何通过位于密西西比州克兰菲尔德的延时实验层析成像(ERT)数据来约束和改进地下CO2迁移的模型预测。为此,我们首先使用结构约束和非约束反演来反转延时ERT数据集。通过ERT时移反演,我们对储层中不断增加的超临界CO2饱和度进行了成像,发现包括储层边界作为结构约束条件可以显着改善图像。然后,我们使用ERT派生的地下电阻率变化以及气体成分数据来约束和校准水文模型。我们使用反演框架iTOUGH2并测试了几个简化的储层概念模型。我们的分析表明,利用径向模型不能充分再现储层响应。而是,系统表现出一维行为。具有三个一维层的模型(其渗透率值和宽度通过反演估算)能够解释ERT和气体成分数据。推导的渗透率与岩心测量和试井的渗透率一致。尽管噪声水平很高,但由于ERT数据在井间尺度上具有很高的灵敏度,对反演的稳定作用以及在电阻率和CO2饱和度之间提供的直接联系,因此ERT数据在反演中提供了关键信息。

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