Noise dissipation mechanisms of an acoustic liner under grazing flow
Francesco Scarano, Angelo Paduano, Francesco Avallone

TL;DR
This study uses high-fidelity simulations to analyze how grazing flow affects noise dissipation in acoustic liners, revealing flow topology's critical role in energy loss mechanisms.
Contribution
It provides new insights into the impact of grazing flow on acoustic energy dissipation mechanisms and flow topology in acoustic liners under turbulent conditions.
Findings
Grazing flow alters vortex shedding and viscous loss contributions.
Viscous losses increase at low SPL with grazing flow.
Net acoustic dissipation decreases due to flow topology changes.
Abstract
High-fidelity lattice-Boltzmann very-large-eddy simulations are performed to describe the noise dissipation mechanisms in a single cavity acoustic liner subjected to grazing turbulent flow at a centreline Mach number of 0.3 and plane acoustic waves. The study examines the effects of sound pressure level (ranging from 130 to 160 dB) and source frequency, as well as of the direction of acoustic-wave propagation relative to the grazing flow. The acoustic energy dissipation mechanisms are the viscous losses within the shear layer forming along the internal walls of the orifice and the vortex-shedding. The latter is quantified through Howe's energy corollary. In the absence of grazing flow, acoustic energy is dissipated almost equally during both inflow and outflow phases, with vortex shedding dominating at high SPL and viscous losses at low SPL. The introduction of a grazing flow alters the…
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