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Aeroacoustic Characterization of Single- and Multiscale Porous Fences
Author(s) -
Eduardo Rodríguez-López,
Laurent E. Brizzi,
Vincent Valeau,
Paul J. Bruce,
O. R. H. Buxton
Publication year - 2017
Publication title -
aiaa journal
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.828
H-Index - 158
eISSN - 1081-0102
pISSN - 0001-1452
DOI - 10.2514/1.j056057
Subject(s) - freestream , mach number , particle image velocimetry , noise (video) , wake , intermittency , aeroacoustics , physics , fractal , acoustics , mechanics , geometry , turbulence , optics , reynolds number , mathematics , computer science , sound pressure , mathematical analysis , artificial intelligence , image (mathematics)
An experimental characterization of the acoustic behavior and the flowfield past several wall-mounted porous fences is presented. Particle image velocimetry is conducted in the near field of the fences. It shows a spanwise periodicity (associated with the periodic geometry of the grid) of regions where well-defined wakes appear as opposed to regions with a lower mass flow rate influenced by strong recirculations. The acoustic behavior is characterized using a microphone array enabling the spatial locationof noise sourcesto bedetermined. Broadband noise is observed for all grids except for the fractal square grid, where a clear peak appears. The intensity of noise spectra displays scalabilitywith Machnumber M 6 (dipoles), and the preferentialfrequencyfor the fractal square case is shown to scale with thefreestreamvelocity(suggestingasheddingmechanism).For certaingrids, themeanandinstantaneous spatial locations of the noise sources also present a spanwise preferential arrangement coincident with regions where the flow presents well-defined wakes. Regarding the intermittency of the unsteady sources, they present smaller temporal width, separation, and spatial extent for increasing freestream velocity. However, the ratio between these quantities seems to be constant to within 6% for different Mach numbers

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