Drag Reduction and Energy Saving by Spanwise Traveling Transversal Surface Waves for Flat Plate Flow
Abstract
Wall-resolved large-eddy simulations are performed to study the impact of spanwise traveling transversal surface waves in zero-pressure gradient turbulent boundary layer flow. Eighty variations of wavelength, period, and amplitude of the space- and time-dependent sinusoidal wall motion are considered for a boundary layer at a momentum thickness based Reynolds number of . The results show a strong decrease of friction drag of up to and considerable net power saving of up to . However, the highest net power saving does not occur at the maximum drag reduction. The drag reduction is modeled as a function of the actuation parameters by support vector regression using the LES data. A substantial attenuation of the near-wall turbulence intensity and especially a weakening of the near-wall velocity streaks are observed. Similarities between the current actuation technique and the method of a spanwise oscillating wall without any normal surface deflection are reported. In particular, the generation of a directional spanwise oscillating Stokes layer is found to be related to skin-friction reduction.
Keywords
Cite
@article{arxiv.1908.09565,
title = {Drag Reduction and Energy Saving by Spanwise Traveling Transversal Surface Waves for Flat Plate Flow},
author = {Marian Albers and Pascal S. Meysonnat and Daniel Fernex and Richard Semaan and Bernd R. Noack and Wolfgang Schröder},
journal= {arXiv preprint arXiv:1908.09565},
year = {2019}
}