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Massively Parallel Solution of the BiGlobal Eigenvalue Problem Using Dense Linear Algebra

机译:使用密集线性代数的BiGlobal特征值问题的大规模并行解

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摘要

Linear instability of complex flows may be analyzed by numerical solutions of partial-derivative-based eigenvalue problems; the concepts are, respectively, referred to as BiGlobal or TriGlobal instability, depending on whether two or three spatial directions are resolved simultaneously. Numerical solutions of the BiGlobal eigenvalue problems in flows of engineering significance, such as the laminar separation bubble in which global eigenmodes have been identified, reveal that recovery of (two-dimensional) amplitude functions of globally stable but convectively unstable flows (i.e., flows which sustain spatially amplifying disturbances in a local instability analysis context) requires resolutions well beyond the capabilities of serial, in-core solutions of the BiGlobal eigenvalue problems. The present contribution presents a methodology capable of overcoming this bottleneck via massive parallel solution of the problem at hand; the approach discussed is especially useful when a large window of the eigenspectrum is sought. Two separated flow applications, one in the boundary-layer on a flat plate and one in the wake of a stalled airfoil, are briefly discussed as demonstrators of the class of problems in which the present enabling technology permits the study of global instability in an accurate manner.
机译:复杂流的线性不稳定性可以通过基于偏导数的特征值问题的数值解来分析。这些概念分别称为BiGlobal或TriGlobal不稳定性,具体取决于是同时解析两个还是三个空间方向。具有工程意义的流中的BiGlobal特征值问题的数值解,例如层流分离气泡,其中已经确定了全局本征模式,这表明全局稳定但对流不稳定的流(即那些流动的流)(二维)振幅函数的恢复在局部不稳定性分析环境中维持空间放大扰动)需要的分辨率远远超出了BiGlobal特征值问题的串行,核内解决方案的能力。本文稿提出了一种能够通过大规模并行解决当前问题来克服这一瓶颈的方法。当寻求本征谱的大窗口时,所讨论的方法特别有用。简要讨论了两种分离的流动应用,一种在平板的边界层,另一种在失速的机翼后,作为这类问题的演示者,在这些问题中,当前的使能技术允许精确地研究全局不稳定性方式。

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