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Online Adaptive Local-Global Model Reduction for Flows in Heterogeneous Porous Media

机译:异质多孔介质中流动的在线自适应局部-全局模型约简

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We propose an online adaptive local-global POD-DEIM model reduction method for flows in heterogeneous porous media. The main idea of the proposed method is to use local online indicators to decide on the global update, which is performed via reduced cost local multiscale basis functions. This unique local-global online combination allows (1) developing local indicators that are used for both local and global updates (2) computing global online modes via local multiscale basis functions. The multiscale basis functions consist of offline and some online local basis functions. The approach used for constructing a global reduced system is based on Proper Orthogonal Decomposition (POD) Galerkin projection. The nonlinearities are approximated by the Discrete Empirical Interpolation Method (DEIM). The online adaption is performed by incorporating new data, which become available at the online stage. Once the criterion for updates is satisfied, we adapt the reduced system online by changing the POD subspace and the DEIM approximation of the nonlinear functions. The main contribution of the paper is that the criterion for adaption and the construction of the global online modes are based on local error indicators and local multiscale basis function which can be cheaply computed. Since the adaption is performed infrequently, the new methodology does not add significant computational overhead associated with when and how to adapt the reduced basis. Our approach is particularly useful for situations where it is desired to solve the reduced system for inputs or controls that result in a solution outside the span of the snapshots generated in the offline stage. Our method also offers an alternative of constructing a robust reduced system even if a potential initial poor choice of snapshots is used. Applications to single-phase and two-phase flow problems demonstrate the efficiency of our method.
机译:我们提出了一种在线自适应局部-全局POD-DEIM模型简化方法,用于非均质多孔介质中的流动。提出的方法的主要思想是使用本地在线指示器来决定全局更新,该更新是通过降低成本的本地多尺度基函数执行的。这种独特的本地-全局在线组合允许(1)开发用于本地和全局更新的本地指标(2)通过本地多尺度基础函数计算全局在线模式。多尺度基础功能包括离线和一些在线本地基础功能。用于构造全局简化系统的方法基于适当的正交分解(POD)Galerkin投影。非线性可通过离散经验内插法(DEIM)进行近似。在线调整是通过合并新数据来执行的,这些新数据可在在线阶段获得。一旦满足更新标准,我们就可以通过更改POD子空间和非线性函数的DEIM逼近来在线调整简化系统。本文的主要贡献在于,适应准则和全局在线模式的构建基于可以廉价计算的局部误差指标和局部多尺度基函数。由于不经常执行调整,因此新方法不会增加与何时以及如何调整简化基础相关的大量计算开销。对于需要解决简化的输入或控件系统而导致解决方案超出脱机阶段所生成快照范围的情况,我们的方法特别有用。我们的方法还提供了一种构建健壮的精简系统的替代方法,即使使用的快照最初可能是较差的选择。单相和两相流动问题的应用证明了我们方法的有效性。

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