Analysis and control of self-sustained instabilities in a cavity using reduced order modelling

We consider a two dimensional compressible flow around an open cavity. The Flow around a cavity is characterised by a self-sustained mechanism in which the shear layer impinges on the downstream edge of the cavity resulting in an acoustic feedback mechanism which must be reduced. Direct Numerical Si...

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Main Author: Nagarajan, Kaushik Kumar
Format: Others
Published: 2010
Online Access:http://oatao.univ-toulouse.fr/7183/1/nagarajan1.pdf
http://oatao.univ-toulouse.fr/7183/2/nagarajan2.pdf
http://oatao.univ-toulouse.fr/7183/3/nagarajan3.pdf
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spelling ndltd-univ-toulouse.fr-oai-oatao.univ-toulouse.fr-71832017-10-11T05:08:48Z Analysis and control of self-sustained instabilities in a cavity using reduced order modelling Nagarajan, Kaushik Kumar We consider a two dimensional compressible flow around an open cavity. The Flow around a cavity is characterised by a self-sustained mechanism in which the shear layer impinges on the downstream edge of the cavity resulting in an acoustic feedback mechanism which must be reduced. Direct Numerical Simulations (DNS) of the flow at a representative Reynolds number has been carried to obtain pressure and velocity fields, both for the case of unactuated and multi frequency actuation. These fields are then used to extract energy ranked coherent structures also called as the Proper Orthogonal Decomposition (POD) modes. A Reduced Order Model is constructed by a Galerkin projections of the isentropic compressible equations. The model is then extended to include the effect of control. To avoid the divergence of the model while integrating in time various calibration techniques has been utillized. A new method of calibration which minimizes a linear functional of error, based on modal sensitivity is proposed. The calibrated low order model is used to design a feedback control of the Linear Quadratic Gaussian (LQG) type, coupled with an observer. For the experimental implementation of the controller, a state estimate based on the observed pressure measurements at 6 different locations, is obtained through a Linear Stochastic Estimation (LSE). The optimal control obtained is periodic with a frequency corresponding to the second Rossiter mode of the cavity. Finally the control obtained is introduced into the DNS to obtain a decrease in spectra of the cavity acoustic mode. 2010-02-08 PhD Thesis PeerReviewed application/pdf http://oatao.univ-toulouse.fr/7183/1/nagarajan1.pdf application/pdf http://oatao.univ-toulouse.fr/7183/2/nagarajan2.pdf application/pdf http://oatao.univ-toulouse.fr/7183/3/nagarajan3.pdf info:eu-repo/semantics/doctoralThesis info:eu-repo/semantics/openAccess Nagarajan, Kaushik Kumar. Analysis and control of self-sustained instabilities in a cavity using reduced order modelling. PhD, Institut National Polytechnique de Toulouse, 2010 http://ethesis.inp-toulouse.fr/archive/00001104/ http://oatao.univ-toulouse.fr/7183/
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description We consider a two dimensional compressible flow around an open cavity. The Flow around a cavity is characterised by a self-sustained mechanism in which the shear layer impinges on the downstream edge of the cavity resulting in an acoustic feedback mechanism which must be reduced. Direct Numerical Simulations (DNS) of the flow at a representative Reynolds number has been carried to obtain pressure and velocity fields, both for the case of unactuated and multi frequency actuation. These fields are then used to extract energy ranked coherent structures also called as the Proper Orthogonal Decomposition (POD) modes. A Reduced Order Model is constructed by a Galerkin projections of the isentropic compressible equations. The model is then extended to include the effect of control. To avoid the divergence of the model while integrating in time various calibration techniques has been utillized. A new method of calibration which minimizes a linear functional of error, based on modal sensitivity is proposed. The calibrated low order model is used to design a feedback control of the Linear Quadratic Gaussian (LQG) type, coupled with an observer. For the experimental implementation of the controller, a state estimate based on the observed pressure measurements at 6 different locations, is obtained through a Linear Stochastic Estimation (LSE). The optimal control obtained is periodic with a frequency corresponding to the second Rossiter mode of the cavity. Finally the control obtained is introduced into the DNS to obtain a decrease in spectra of the cavity acoustic mode.
author Nagarajan, Kaushik Kumar
spellingShingle Nagarajan, Kaushik Kumar
Analysis and control of self-sustained instabilities in a cavity using reduced order modelling
author_facet Nagarajan, Kaushik Kumar
author_sort Nagarajan, Kaushik Kumar
title Analysis and control of self-sustained instabilities in a cavity using reduced order modelling
title_short Analysis and control of self-sustained instabilities in a cavity using reduced order modelling
title_full Analysis and control of self-sustained instabilities in a cavity using reduced order modelling
title_fullStr Analysis and control of self-sustained instabilities in a cavity using reduced order modelling
title_full_unstemmed Analysis and control of self-sustained instabilities in a cavity using reduced order modelling
title_sort analysis and control of self-sustained instabilities in a cavity using reduced order modelling
publishDate 2010
url http://oatao.univ-toulouse.fr/7183/1/nagarajan1.pdf
http://oatao.univ-toulouse.fr/7183/2/nagarajan2.pdf
http://oatao.univ-toulouse.fr/7183/3/nagarajan3.pdf
work_keys_str_mv AT nagarajankaushikkumar analysisandcontrolofselfsustainedinstabilitiesinacavityusingreducedordermodelling
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