Circular Cylinder Drag Reduction By Three-Electrode Plasma Symmetric Forcing

Author:

D'Adamo Juan1,Leonardo Leandro2,Castro Federico2,Sosa Roberto2,Duriez Thomas3,Artana Guillermo2

Affiliation:

1. CONICET, Facultad de Ingenieria, Universidad de Buenos Aires, Buenos Aires C1063ACV, Argentina e-mail:

2. CONICET, Facultad de Ingenieria, Universidad de Buenos Aires, Buenos Aires C1063ACV, Argentina

3. CONICET, Facultad de Ingenieria, Universidad de Buenos Aires, Buenos Aires C1063ACV, Argentina; Laboratorio de Microfluídica, Universidad de la afarina Mercante, Marina Mercante C1034ACO, Argentina

Abstract

This study reports an efficient reduction of the drag exerted by a flow on a cylinder when the former is forced with a plasma actuator. A three-electrode plasma device (TED) disposed on the surface of the body is considered, and the effect of the actuation frequency and amplitude is studied. Particle image velocimetry (PIV) measurements provided a detailed information that was processed to obtain the time-averaged drag force and to compare the performances of TED actuator and the canonical dielectric discharge barrier actuator. For the Reynolds number considered (Re = 5500), excitations with the TED actuator were more efficient, achieving drag reductions that attained values close to 40% with high net energy savings. The reduction of coherent structures using the instantaneous vorticity fields and a clustering technique allowed us to gain insight into the physical mechanisms involved in these phenomena. This highlights that the symmetrical forcing of the wake flow at its resonant frequency with the TED promotes symmetrical vorticity patterns which favor drag reductions.

Funder

Consejo Nacional de Investigaciones Científicas y Técnicas

Universidad de Buenos Aires

Publisher

ASME International

Subject

Mechanical Engineering

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