Aeroacoustic computation of fluid-structure interaction problems with low Mach numbers

This contribution deals with the acoustic simulation of aerodynamical noise generated by a flow over an airfoil or by flow in a flexible channel. Since the considered flow has low Mach number the hybrid approach of acoustic analogies can be applied here with benefits. The fluid-structure-acoustic in...

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Main Authors: Valášek Jan, Sváček Petr
Format: Article
Language:English
Published: EDP Sciences 2018-01-01
Series:EPJ Web of Conferences
Online Access:https://doi.org/10.1051/epjconf/201817002113
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spelling doaj-b3e36c6d64044224ba3d5d3755607e642021-08-02T02:02:26ZengEDP SciencesEPJ Web of Conferences2100-014X2018-01-011800211310.1051/epjconf/201817002113epjconf_efm2018_02113Aeroacoustic computation of fluid-structure interaction problems with low Mach numbersValášek JanSváček PetrThis contribution deals with the acoustic simulation of aerodynamical noise generated by a flow over an airfoil or by flow in a flexible channel. Since the considered flow has low Mach number the hybrid approach of acoustic analogies can be applied here with benefits. The fluid-structure-acoustic interaction problem is generally described as a quite complicated problem comprising of three different physical fields - the vibration of the elastic body, the unsteady fluid flow and the acoustics together with mutual couplings. The fluid flow in time dependent domain is governed by the incompressible Navier-Stokes equations in arbitrary Langrangian-Eulerian formulation and the elastic structure is modelled by the means of linear elasticity theory. The Lighthill analogy and acoustic perturbation equation (APE) is considered to describe the sound propagation. The simulation of fluid-structure (FSI) interaction and acoustic field is implemented using the FEM in an in-house solver. The sound sources computed from FSI results are analyzed and within sound propagation simulation the perfectly matched layer technique is used. In the end the results of Lighthill and APE analogy are compared.https://doi.org/10.1051/epjconf/201817002113
collection DOAJ
language English
format Article
sources DOAJ
author Valášek Jan
Sváček Petr
spellingShingle Valášek Jan
Sváček Petr
Aeroacoustic computation of fluid-structure interaction problems with low Mach numbers
EPJ Web of Conferences
author_facet Valášek Jan
Sváček Petr
author_sort Valášek Jan
title Aeroacoustic computation of fluid-structure interaction problems with low Mach numbers
title_short Aeroacoustic computation of fluid-structure interaction problems with low Mach numbers
title_full Aeroacoustic computation of fluid-structure interaction problems with low Mach numbers
title_fullStr Aeroacoustic computation of fluid-structure interaction problems with low Mach numbers
title_full_unstemmed Aeroacoustic computation of fluid-structure interaction problems with low Mach numbers
title_sort aeroacoustic computation of fluid-structure interaction problems with low mach numbers
publisher EDP Sciences
series EPJ Web of Conferences
issn 2100-014X
publishDate 2018-01-01
description This contribution deals with the acoustic simulation of aerodynamical noise generated by a flow over an airfoil or by flow in a flexible channel. Since the considered flow has low Mach number the hybrid approach of acoustic analogies can be applied here with benefits. The fluid-structure-acoustic interaction problem is generally described as a quite complicated problem comprising of three different physical fields - the vibration of the elastic body, the unsteady fluid flow and the acoustics together with mutual couplings. The fluid flow in time dependent domain is governed by the incompressible Navier-Stokes equations in arbitrary Langrangian-Eulerian formulation and the elastic structure is modelled by the means of linear elasticity theory. The Lighthill analogy and acoustic perturbation equation (APE) is considered to describe the sound propagation. The simulation of fluid-structure (FSI) interaction and acoustic field is implemented using the FEM in an in-house solver. The sound sources computed from FSI results are analyzed and within sound propagation simulation the perfectly matched layer technique is used. In the end the results of Lighthill and APE analogy are compared.
url https://doi.org/10.1051/epjconf/201817002113
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AT svacekpetr aeroacousticcomputationoffluidstructureinteractionproblemswithlowmachnumbers
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