Flow control simulation with synthetic and pulsed jet actuator

Two active flow control methods are investigated numerically to understand the mechanism by which they control aerodynamics in the presence of severe flow separation on an airfoil. In particular, synthetic jets are applied to separated flows generated by additional surface feature (the actuators) ne...

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Main Author: Jee, Sol Keun, 1979-
Format: Others
Language:English
Published: 2010
Subjects:
Online Access:http://hdl.handle.net/2152/ETD-UT-2010-08-1676
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spelling ndltd-UTEXAS-oai-repositories.lib.utexas.edu-2152-ETD-UT-2010-08-16762015-09-20T16:56:13ZFlow control simulation with synthetic and pulsed jet actuatorJee, Sol Keun, 1979-Flow controlSynthetic jetPulsed jetAirfoilsMoving gridsTurbulence modelsTwo active flow control methods are investigated numerically to understand the mechanism by which they control aerodynamics in the presence of severe flow separation on an airfoil. In particular, synthetic jets are applied to separated flows generated by additional surface feature (the actuators) near the trailing edge to obtain Coanda-like effects, and an impulse jet is used to control a stalled flow over an airfoil. A moving-grid scheme is developed, verified and validated to support simulations of external flow over moving bodies. Turbulent flow is modeled using detached eddy simulation (DES) turbulence models in the CFD code CDP (34) developed by Lopez (54). Synthetic jet actuation enhances turbulent mixing in flow separation regions, reduces the size of the separation, deflects stream lines closer to the surface and changes pressure distributions on the surface, all of which lead to bi-directional changes in the aerodynamic lift and moment. The external flow responds to actuation within about one convective time, which is significantly faster than for conventional control surfaces. Simulation of pitching airfoils shows that high-frequency synthetic jet affects the flow independently of the baseline frequencies associated with vortex shedding and airfoil dynamics. These unique features of synthetic jets are studied on a dynamically maneuvering airfoil with a closed-loop control system, which represents the response of the airfoil in wind-tunnel experiments and examines the controller for a rapidly maneuvering free-flight airfoil. An impulse jet, which is applied upstream of a nominal flow separation point, generates vortices that convect downstream, interact with the separating shear layer, dismantle the layer and allow following vortices to propagate along the surface in the separation region. These following vortices delay the separation point reattaching the boundary layer, which returns slowly to its initial stall condition, as observed in wind-tunnel experiments. A simple model of the impulse jet actuator used herein is found to be sufficient to represent the global effects of the jet on the stalled flow because it correctly represents the momentum injected into the flow.text2010-12-07T22:25:47Z2010-12-07T22:26:03Z2010-12-07T22:25:47Z2010-12-07T22:26:03Z2010-082010-12-07August 20102010-12-07T22:26:03Zthesisapplication/pdfhttp://hdl.handle.net/2152/ETD-UT-2010-08-1676eng
collection NDLTD
language English
format Others
sources NDLTD
topic Flow control
Synthetic jet
Pulsed jet
Airfoils
Moving grids
Turbulence models
spellingShingle Flow control
Synthetic jet
Pulsed jet
Airfoils
Moving grids
Turbulence models
Jee, Sol Keun, 1979-
Flow control simulation with synthetic and pulsed jet actuator
description Two active flow control methods are investigated numerically to understand the mechanism by which they control aerodynamics in the presence of severe flow separation on an airfoil. In particular, synthetic jets are applied to separated flows generated by additional surface feature (the actuators) near the trailing edge to obtain Coanda-like effects, and an impulse jet is used to control a stalled flow over an airfoil. A moving-grid scheme is developed, verified and validated to support simulations of external flow over moving bodies. Turbulent flow is modeled using detached eddy simulation (DES) turbulence models in the CFD code CDP (34) developed by Lopez (54). Synthetic jet actuation enhances turbulent mixing in flow separation regions, reduces the size of the separation, deflects stream lines closer to the surface and changes pressure distributions on the surface, all of which lead to bi-directional changes in the aerodynamic lift and moment. The external flow responds to actuation within about one convective time, which is significantly faster than for conventional control surfaces. Simulation of pitching airfoils shows that high-frequency synthetic jet affects the flow independently of the baseline frequencies associated with vortex shedding and airfoil dynamics. These unique features of synthetic jets are studied on a dynamically maneuvering airfoil with a closed-loop control system, which represents the response of the airfoil in wind-tunnel experiments and examines the controller for a rapidly maneuvering free-flight airfoil. An impulse jet, which is applied upstream of a nominal flow separation point, generates vortices that convect downstream, interact with the separating shear layer, dismantle the layer and allow following vortices to propagate along the surface in the separation region. These following vortices delay the separation point reattaching the boundary layer, which returns slowly to its initial stall condition, as observed in wind-tunnel experiments. A simple model of the impulse jet actuator used herein is found to be sufficient to represent the global effects of the jet on the stalled flow because it correctly represents the momentum injected into the flow. === text
author Jee, Sol Keun, 1979-
author_facet Jee, Sol Keun, 1979-
author_sort Jee, Sol Keun, 1979-
title Flow control simulation with synthetic and pulsed jet actuator
title_short Flow control simulation with synthetic and pulsed jet actuator
title_full Flow control simulation with synthetic and pulsed jet actuator
title_fullStr Flow control simulation with synthetic and pulsed jet actuator
title_full_unstemmed Flow control simulation with synthetic and pulsed jet actuator
title_sort flow control simulation with synthetic and pulsed jet actuator
publishDate 2010
url http://hdl.handle.net/2152/ETD-UT-2010-08-1676
work_keys_str_mv AT jeesolkeun1979 flowcontrolsimulationwithsyntheticandpulsedjetactuator
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