Physics-Informed Acoustic Liner Optimization: Balancing Drag and Noise

Fuente: arXiv
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Autores principales: Shahzad, Haris, Hickel, Stefan, Modesti, Davide
Formato: Preprint
Publicado: 2024
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author Shahzad, Haris
Hickel, Stefan
Modesti, Davide
author_facet Shahzad, Haris
Hickel, Stefan
Modesti, Davide
contents We present pore-resolved Direct Numerical Simulations (DNS) of turbulent flows grazing over acoustic liners with aerodynamically and/or acoustically optimized orifice configurations. Our DNS explore a large parameter space, studying various families of orifice geometries, including the influence of orifice shape, orientation, and the number of orifices. All flow cases show an increase in drag compared to the smooth wall. However, the added drag can be reduced by as much as $\sim$55\% as compared to conventional acoustic liners by simply altering the shape of the orifice or its orientation, in the case of a non-circular orifice. Complementary acoustic simulations demonstrate that this reduced drag may be achieved while maintaining the same noise reduction properties over a wide range of frequencies.
format Preprint
id arxiv_https___arxiv_org_abs_2405_00563
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Physics-Informed Acoustic Liner Optimization: Balancing Drag and Noise
Shahzad, Haris
Hickel, Stefan
Modesti, Davide
Fluid Dynamics
We present pore-resolved Direct Numerical Simulations (DNS) of turbulent flows grazing over acoustic liners with aerodynamically and/or acoustically optimized orifice configurations. Our DNS explore a large parameter space, studying various families of orifice geometries, including the influence of orifice shape, orientation, and the number of orifices. All flow cases show an increase in drag compared to the smooth wall. However, the added drag can be reduced by as much as $\sim$55\% as compared to conventional acoustic liners by simply altering the shape of the orifice or its orientation, in the case of a non-circular orifice. Complementary acoustic simulations demonstrate that this reduced drag may be achieved while maintaining the same noise reduction properties over a wide range of frequencies.
title Physics-Informed Acoustic Liner Optimization: Balancing Drag and Noise
topic Fluid Dynamics
url https://arxiv.org/abs/2405.00563