Nonlinear optimals and their role in sustaining turbulence in channel flow
Published version
Peer-reviewed
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Abstract
We investigate the energy transfer from the mean profile to velocity fluctuations in channel flow by calculating nonlinear optimal disturbances, i.e. the initial condition of a given finite energy that achieves the highest possible energy growth during a given fixed time horizon. It is found that for a large range of time horizons and initial disturbance energies, the nonlinear optimal exhibits streak spacing and amplitude consistent with direct numerical simulation (DNS) at least at
${Re}_\tau = 180$
, which suggests that they isolate the relevant physical mechanisms that sustain turbulence. Moreover, the time horizon necessary for a nonlinear disturbance to outperform a linear optimal is consistent with previous DNS-based estimates using eddy turnover time, which offers a new perspective on how some turbulent time scales are determined.
Description
Acknowledgements: We thank Sergio Hoyas and Patrick Keuchel for fruitful discussions about the solver implementation.
Publication status: Published
Funder: German Ministry of Education and Research (BMBF)
Journal Title
Journal of Fluid Mechanics
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Journal ISSN
0022-1120
1469-7645
1469-7645
Volume Title
1015
Publisher
Cambridge University Press (CUP)
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Except where otherwised noted, this item's license is described as https://creativecommons.org/licenses/by/4.0/

