On the recirculation zone suppression behind HUMP profile using the DBD actuator

Previously, the DBD (dielectric barrier discharge) plasma actuator was used in rectangular channel to modify the properties of the boundary layer in spanwise and in streamwise orientation. The actuator was redesigned for using on the surface of the Glauert-Goldschmied body in different position to i...

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Main Authors: Procházka Pavel, Uruba Václav
Format: Article
Language:English
Published: EDP Sciences 2017-01-01
Series:EPJ Web of Conferences
Online Access:https://doi.org/10.1051/epjconf/201714302095
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spelling doaj-ea0fdf6adea242c084a3b786560acb192021-08-02T05:10:10ZengEDP SciencesEPJ Web of Conferences2100-014X2017-01-011430209510.1051/epjconf/201714302095epjconf_efm2017_02095On the recirculation zone suppression behind HUMP profile using the DBD actuatorProcházka Pavel0Uruba Václav1Institute of Thermomechanics, Czech Academy of SciencesInstitute of Thermomechanics, Czech Academy of SciencesPreviously, the DBD (dielectric barrier discharge) plasma actuator was used in rectangular channel to modify the properties of the boundary layer in spanwise and in streamwise orientation. The actuator was redesigned for using on the surface of the Glauert-Goldschmied body in different position to influence the point of the separation and the reattachment point as well as the total extent of the separation bubble. The most intensive effect occurs when the actuator takes effect in the point of separation. Further downstream, the ionic wind produced by DBD causes complex coherent structures in the wake for spanwise orientation in both direction. The effect of streamwise orientation is studied also. Actuator is operated in steady regime to produces continuous ionic wind as well as in unsteady regime when the vortex street is generated. The properties of vortex street is given by modulation parameters (frequency and duty cycle). The effect of these parameters on the wake is evaluated. This experiment is realized in the perspex channel connected to the blow-down wind tunnel. The HUMP profile is flush-mounted to the bottom side. The wire electrode of the actuator is situated in x/L = 0.63, 0.66, 0.69 and 0.72 of the chord length. The time-resolved PIV (Particle Image Velocimetry) is used as a main measurement technique. The flow field behind the profile is captured in longitudinal plane as well as in cross-section planes using 3D PIV. The results based on statistical quantities will be presented in this paper. More, next part will be devoted to the decomposition analysis of the flow dynamics (BOD, OPD).https://doi.org/10.1051/epjconf/201714302095
collection DOAJ
language English
format Article
sources DOAJ
author Procházka Pavel
Uruba Václav
spellingShingle Procházka Pavel
Uruba Václav
On the recirculation zone suppression behind HUMP profile using the DBD actuator
EPJ Web of Conferences
author_facet Procházka Pavel
Uruba Václav
author_sort Procházka Pavel
title On the recirculation zone suppression behind HUMP profile using the DBD actuator
title_short On the recirculation zone suppression behind HUMP profile using the DBD actuator
title_full On the recirculation zone suppression behind HUMP profile using the DBD actuator
title_fullStr On the recirculation zone suppression behind HUMP profile using the DBD actuator
title_full_unstemmed On the recirculation zone suppression behind HUMP profile using the DBD actuator
title_sort on the recirculation zone suppression behind hump profile using the dbd actuator
publisher EDP Sciences
series EPJ Web of Conferences
issn 2100-014X
publishDate 2017-01-01
description Previously, the DBD (dielectric barrier discharge) plasma actuator was used in rectangular channel to modify the properties of the boundary layer in spanwise and in streamwise orientation. The actuator was redesigned for using on the surface of the Glauert-Goldschmied body in different position to influence the point of the separation and the reattachment point as well as the total extent of the separation bubble. The most intensive effect occurs when the actuator takes effect in the point of separation. Further downstream, the ionic wind produced by DBD causes complex coherent structures in the wake for spanwise orientation in both direction. The effect of streamwise orientation is studied also. Actuator is operated in steady regime to produces continuous ionic wind as well as in unsteady regime when the vortex street is generated. The properties of vortex street is given by modulation parameters (frequency and duty cycle). The effect of these parameters on the wake is evaluated. This experiment is realized in the perspex channel connected to the blow-down wind tunnel. The HUMP profile is flush-mounted to the bottom side. The wire electrode of the actuator is situated in x/L = 0.63, 0.66, 0.69 and 0.72 of the chord length. The time-resolved PIV (Particle Image Velocimetry) is used as a main measurement technique. The flow field behind the profile is captured in longitudinal plane as well as in cross-section planes using 3D PIV. The results based on statistical quantities will be presented in this paper. More, next part will be devoted to the decomposition analysis of the flow dynamics (BOD, OPD).
url https://doi.org/10.1051/epjconf/201714302095
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