Shape optimization of a Helmholtz resonator using an adjoint method

This paper proposes a method for shape optimization in aero-acoustics and applies it to a Helmholtz resonator. The objective is to realize a desired acoustic impedance by optimizing the shape of the neck of the resonator, in due consideration of the excitation level. The optimization problem is form...

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Main Authors: Faisal Caeiro, Carlo Sovardi, Kilian Förner, Wolfgang Polifke
Format: Article
Language:English
Published: SAGE Publishing 2017-12-01
Series:International Journal of Spray and Combustion Dynamics
Online Access:https://doi.org/10.1177/1756827717703576
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spelling doaj-9074a2fbb7fb4335ba6b411f402d48e82020-11-25T03:15:42ZengSAGE PublishingInternational Journal of Spray and Combustion Dynamics1756-82771756-82852017-12-01910.1177/1756827717703576Shape optimization of a Helmholtz resonator using an adjoint methodFaisal CaeiroCarlo SovardiKilian FörnerWolfgang PolifkeThis paper proposes a method for shape optimization in aero-acoustics and applies it to a Helmholtz resonator. The objective is to realize a desired acoustic impedance by optimizing the shape of the neck of the resonator, in due consideration of the excitation level. The optimization problem is formulated with a suitable objective functional, where the Navier–Stokes equations act as a partial differential equation (PDE) constraint in a Lagrangian functional. By exploiting the understanding of the relevant flow physics, it is possible to formulate the objective functional in the time domain, although the optimization target, i.e. the acoustic impedance, is a quantity defined in the frequency domain. This optimization problem is solved by a gradient-based optimization. The shape gradient of the objective functional is determined by an adjoint method, which requires solving two sets of PDEs in time: the so-called forward and backward problems. The forward problem is represented by the Navier–Stokes equations and is solved in the positive time direction. The set of equations for the backward problem, which has to be solved in the negative time direction, is derived in the current study. From the solutions of the forward and backward problems, the shape derivative for the current optimization step is calculated. Iterative optimization steps then bring the impedance to the target value.https://doi.org/10.1177/1756827717703576
collection DOAJ
language English
format Article
sources DOAJ
author Faisal Caeiro
Carlo Sovardi
Kilian Förner
Wolfgang Polifke
spellingShingle Faisal Caeiro
Carlo Sovardi
Kilian Förner
Wolfgang Polifke
Shape optimization of a Helmholtz resonator using an adjoint method
International Journal of Spray and Combustion Dynamics
author_facet Faisal Caeiro
Carlo Sovardi
Kilian Förner
Wolfgang Polifke
author_sort Faisal Caeiro
title Shape optimization of a Helmholtz resonator using an adjoint method
title_short Shape optimization of a Helmholtz resonator using an adjoint method
title_full Shape optimization of a Helmholtz resonator using an adjoint method
title_fullStr Shape optimization of a Helmholtz resonator using an adjoint method
title_full_unstemmed Shape optimization of a Helmholtz resonator using an adjoint method
title_sort shape optimization of a helmholtz resonator using an adjoint method
publisher SAGE Publishing
series International Journal of Spray and Combustion Dynamics
issn 1756-8277
1756-8285
publishDate 2017-12-01
description This paper proposes a method for shape optimization in aero-acoustics and applies it to a Helmholtz resonator. The objective is to realize a desired acoustic impedance by optimizing the shape of the neck of the resonator, in due consideration of the excitation level. The optimization problem is formulated with a suitable objective functional, where the Navier–Stokes equations act as a partial differential equation (PDE) constraint in a Lagrangian functional. By exploiting the understanding of the relevant flow physics, it is possible to formulate the objective functional in the time domain, although the optimization target, i.e. the acoustic impedance, is a quantity defined in the frequency domain. This optimization problem is solved by a gradient-based optimization. The shape gradient of the objective functional is determined by an adjoint method, which requires solving two sets of PDEs in time: the so-called forward and backward problems. The forward problem is represented by the Navier–Stokes equations and is solved in the positive time direction. The set of equations for the backward problem, which has to be solved in the negative time direction, is derived in the current study. From the solutions of the forward and backward problems, the shape derivative for the current optimization step is calculated. Iterative optimization steps then bring the impedance to the target value.
url https://doi.org/10.1177/1756827717703576
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AT kilianforner shapeoptimizationofahelmholtzresonatorusinganadjointmethod
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