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DPIV-driven flow simulation: a new computational paradigm

机译:DPIV驱动的流动模拟:一种新的计算范例

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摘要

We present a new approach to simulating unsteady fluid flows, with only very few degrees of freedom, by employing directly eigenmodes extracted from digital particle image velocimetry experimental data. In particular, we formulate standard Galerkin and nonlinear Galerkin approximations of the incompressible Navier-Stokes equations using hierarchical empirical eigenfunctions extracted from an ensemble of flow snapshots. We demonstrate that standard Galerkin approaches produce simulations capable of capturing the short-term dynamics of the flow, but nonlinear Galerkin projections are more effective in capturing both the short- and long-term dynamics, leading to bounded solutions. These findings are documented by applying these approaches to flow past a stationary circular cylinder at Reynolds number 610. [References: 33]
机译:通过采用直接从数字粒子图像测速实验数据中提取的本征模,我们提出了一种新的方法来模拟非恒定流体,只有很少的自由度。特别是,我们使用从流快照集合中提取的分层经验特征函数来公式化不可压缩Navier-Stokes方程的标准Galerkin和非线性Galerkin近似。我们证明了标准的Galerkin方法产生的模拟能够捕获流动的短期动力学,但是非线性Galerkin投影在捕获短期和长期动力学方面更为有效,从而导致了有界解。通过应用这些方法流过雷诺数610的固定圆柱体,可以证明这些发现。[参考文献:33]

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