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Spatio-temporal Proper Orthogonal Decomposition of turbulent channel flow

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arxiv 1805.01494 v3 pith:WMDLFM7L submitted 2018-05-03 physics.flu-dyn

classification physics.flu-dyn
keywords decompositionflowwallchanneleigenfunctionsenergylayerorthogonal
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An extension of Proper Orthogonal Decomposition is applied to the wall layer of a turbulent channel flow (Re {\tau} = 590), so that empirical eigenfunctions are defined in both space and time. Due to the statistical symmetries of the flow, the igenfunctions are associated with individual wavenumbers and frequencies. Self-similarity of the dominant eigenfunctions, consistent with wall-attached structures transferring energy into the core region, is established. The most energetic modes are characterized by a fundamental time scale in the range 200-300 viscous wall units. The full spatio-temporal decomposition provides a natural measure of the convection velocity of structures, with a characteristic value of 12 u {\tau} in the wall layer. Finally, we show that the energy budget can be split into specific contributions for each mode, which provides a closed-form expression for nonlinear effects.

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  1. Lumley Decomposition of the Turbulent Round Jet Far-field. Part 2 -- Dynamics

    physics.flu-dyn 2019-09 conditional novelty 5.0 of 10

    A modal decomposition of the round jet far field shows that the first Lumley mode dominates shear-stress production and that many modes draw energy directly from the mean flow, including in the -5/3 spectral range.

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