Acoustic resolvent analysis of turbulent jets
B. Bugeat, U. Karban, A. Agarwal, L. Lesshafft, P. Jordan

TL;DR
This study introduces an acoustic resolvent analysis focusing on the acoustic field of turbulent jets, revealing modes associated with Mach wave radiation and assessing their potential for jet-noise modeling.
Contribution
It develops an acoustic resolvent framework that isolates acoustic response modes, providing new insights into jet noise mechanisms and guiding noise source modeling.
Findings
Acoustic resolvent modes align better with SPOD modes than standard resolvent modes.
Optimal acoustic beam angles match SPOD modes at moderate frequencies.
Suboptimal modes may contain irrelevant structures for jet noise.
Abstract
We perform a resolvent analysis of a compressible turbulent jet, where the optimisation domain of the response modes is located in the acoustic field, excluding the hydrodynamic region, in order to promote acoustically efficient modes. We examine the properties of the acoustic resolvent and assess its potential for jet-noise modelling, focusing on the subsonic regime. Resolvent forcing modes, consistent with previous studies, are found to contain supersonic waves associated with Mach wave radiation in the response modes. This differs from the standard resolvent in which hydrodynamic instabilities dominate. We compare resolvent modes with SPOD modes educed from LES data. Acoustic resolvent response modes generally have better alignment with acoustic SPOD modes than standard resolvent response modes. For the optimal mode, the angle of the acoustic beam is close to that found in SPOD modes…
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Taxonomy
TopicsAerodynamics and Acoustics in Jet Flows · Fluid Dynamics and Turbulent Flows · Meteorological Phenomena and Simulations
