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Using pilot wells to integrate geological modelling and history matching: applied to the Norne Benchmark case

机译:利用试点井整合地质建模和历史匹配:适用于Norne基准案例

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The inherent uncertainties in numerical reservoir simulation can lead to models with significant differences to observed dynamic data. History matching reduces these differences but often neglects the geological consistency of the models, compromising production forecasting reliability. To address this issue, this work proposes a geological modelling workflow integrated within a probabilistic, multi-objective history-matching workflow, using the concept of pilot points. The pilot-point method is a geostatistical parameterization technique that calibrates a pre-correlated field, generated from measured values, and a set of additional synthetic data at unmeasured locations in the reservoir, referred to as pilot points. In this study, the synthetic data correspond to synthetic wells; henceforth referred to as pilot wells. The methodology is applied to a real dataset, the Nome Field benchmark case. The flexibility of the pilot-well method is the principal advantage, while a key challenge is to optimize the pilot-well configuration. The configuration includes production data, the preferred fluid-flow paths and the geological framework. The flexibility of the method is demonstrated in the two case studies presented here: generating specific sedimentary features (G-segment) and finding the best location for the cemented stringers responsible for the fluid behaviour (C-segment).
机译:数值储层模拟中固有的不确定性可以导致模型,以观察到的动态数据具有显着差异。历史匹配会降低这些差异,但往往会忽略模型的地质一致性,损害生产预测可靠性。为了解决这个问题,这项工作提出了一种在概率,多目标历史匹配工作流中集成的地质建模工作流程,使用试验点的概念。导频点方法是地质统计参数化技术,其校准从测量值生成的预相关场,以及一组附加的储存器中的额外合成数据,称为导频点。在这项研究中,合成数据对应于合成孔;从此提到了飞行员井。该方法应用于真实数据集,Nome Field基准情况。试验井方法的灵活性是主要优势,而关键挑战是优化导频井配置。该配置包括生产数据,优选的流体流动路径和地质框架。该方法的灵活性在这里提出的两种情况下证明:产生特定的沉积特征(G段)并找到负责流体行为(C段)的粘合桁条的最佳位置。

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