Turbulent boundary layer under the control of different schemes
Author(s) -
Z. X. Qiao,
Yu Zhou,
Zhi Wu
Publication year - 2017
Publication title -
proceedings of the royal society a mathematical physical and engineering sciences
Language(s) - English
Resource type - Journals
eISSN - 1471-2946
pISSN - 1364-5021
DOI - 10.1098/rspa.2017.0038
Subject(s) - drag , boundary layer , turbulence , flow control (data) , control theory (sociology) , mechanics , dissipation , feed forward , actuator , perturbation (astronomy) , microscale chemistry , feedback control , boundary layer control , flow separation , physics , control (management) , computer science , engineering , mathematics , control engineering , thermodynamics , telecommunications , mathematics education , quantum mechanics , artificial intelligence
This work explores experimentally the control of a turbulent boundary layer over a flat plate based on wall perturbation generated by piezo-ceramic actuators. Different schemes are investigated, including the feed-forward, the feedback, and the combined feed-forward and feedback strategies, with a view to suppressing the near-wall high-speed events and hence reducing skin friction drag. While the strategies may achieve a local maximum drag reduction slightly less than their counterpart of the open-loop control, the corresponding duty cycles are substantially reduced when compared with that of the open-loop control. The results suggest a good potential to cut down the input energy under these control strategies. The fluctuating velocity, spectra, Taylor microscale and mean energy dissipation are measured across the boundary layer with and without control and, based on the measurements, the flow mechanism behind the control is proposed.
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