Frequency Scaling Laws for Flat Plate Wing Active Separation Control

Fuente: arXiv
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Main Authors: Vey, Stefan, Paschereit, Christian Oliver, Greenblatt, David
Format: Preprint
Published: 2025
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_version_ 1866915675506737152
author Vey, Stefan
Paschereit, Christian Oliver
Greenblatt, David
author_facet Vey, Stefan
Paschereit, Christian Oliver
Greenblatt, David
contents Dimensionless frequency scaling laws for active separation control on flat-plate wings, using dielectric barrier discharge plasma actuators, were examined on the basis of maximum increases to lift coefficient, and compared with hovering insect wing-flapping frequencies. Data for a range of angles of attack ($24^\circ$ to $32^\circ$), Reynolds numbers (3,000 to 20,000) and semispan wing aspect ratios (0.75 to $\infty$), collapsed best when scaled with the streamwise-directed height of the chord length. The ``forcing Strouhal number'' that produced the largest lift coefficient increments, equal to $0.26 \pm 0.04$, was linked to the conventional bluff-body Strouhal number by recognizing that drag and lift on flat plate wings are directly proportional at a fixed angle of attack. Flowfield measurements, to determine the time-averaged separation bubble height and local velocity at separation, showed that the universal Strouhal number of approximately $0.16 \pm 0.01$ --developed for bluff-body and separation bubble vortex shedding--can be further generalized to active separation control, when the natural shedding frequency is substituted by the forcing frequency. Insect wing flapping frequencies in hover were examined on the basis of Strouhal number scaling and corresponded reasonably well to the optimum forcing Strouhal number range, although angle of attack estimates were a source of uncertainty. Furthermore, universal Strouhal number scaling can only be validated with accurate separation bubble height and separation velocity measurements.
format Preprint
id arxiv_https___arxiv_org_abs_2512_13045
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Frequency Scaling Laws for Flat Plate Wing Active Separation Control
Vey, Stefan
Paschereit, Christian Oliver
Greenblatt, David
Fluid Dynamics
Dimensionless frequency scaling laws for active separation control on flat-plate wings, using dielectric barrier discharge plasma actuators, were examined on the basis of maximum increases to lift coefficient, and compared with hovering insect wing-flapping frequencies. Data for a range of angles of attack ($24^\circ$ to $32^\circ$), Reynolds numbers (3,000 to 20,000) and semispan wing aspect ratios (0.75 to $\infty$), collapsed best when scaled with the streamwise-directed height of the chord length. The ``forcing Strouhal number'' that produced the largest lift coefficient increments, equal to $0.26 \pm 0.04$, was linked to the conventional bluff-body Strouhal number by recognizing that drag and lift on flat plate wings are directly proportional at a fixed angle of attack. Flowfield measurements, to determine the time-averaged separation bubble height and local velocity at separation, showed that the universal Strouhal number of approximately $0.16 \pm 0.01$ --developed for bluff-body and separation bubble vortex shedding--can be further generalized to active separation control, when the natural shedding frequency is substituted by the forcing frequency. Insect wing flapping frequencies in hover were examined on the basis of Strouhal number scaling and corresponded reasonably well to the optimum forcing Strouhal number range, although angle of attack estimates were a source of uncertainty. Furthermore, universal Strouhal number scaling can only be validated with accurate separation bubble height and separation velocity measurements.
title Frequency Scaling Laws for Flat Plate Wing Active Separation Control
topic Fluid Dynamics
url https://arxiv.org/abs/2512.13045