Wave reflections and resonance in a Mach 0.9 turbulent jet

Fuente: arXiv
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Autori principali: Prinja, Robin, Martini, Eduardo, Jordan, Peter, Towne, Aaron, Cavalieri, André VG
Natura: Preprint
Pubblicazione: 2023
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author Prinja, Robin
Martini, Eduardo
Jordan, Peter
Towne, Aaron
Cavalieri, André VG
author_facet Prinja, Robin
Martini, Eduardo
Jordan, Peter
Towne, Aaron
Cavalieri, André VG
contents This work aims to provide a more complete understanding of the resonance mechanisms that occur in turbulent jets at high subsonic Mach number, as shown by Towne et al. (J. Fluid Mech., vol. 825, 2017, pp. 1113-1152). Resonance was suggested by that study to exist between upstream- and downstream-travelling guided waves. Five possible resonance mechanisms were postulated, each involving different families of guided waves that reflect in the nozzle exit plane and at a number of downstream turning points. However, that study did not identify which of the five resonance mechanisms underpin the observed spectral peaks. In this work, the waves underpinning resonance are identified via a biorthogonal projection of Large Eddy Simulation data on eigenbases provided by a locally parallel linear stability analysis. Two of the five scenarios postulated by Towne et al. are thus confirmed to exist in the turbulent jet. The reflection-coefficients in the nozzle exit and turning-point planes are, furthermore, identified. Such information is required as input for simplified resonance-modelling strategies such as developed in Jordan et al. (J. Fluid Mech., vol. 853, 2018, pp. 333-358) for jet-edge resonance, and in Mancinelli et al. (Exp. Fluids, vol. 60, 2019, pp. 1-9) for supersonic screech.
format Preprint
id arxiv_https___arxiv_org_abs_2304_04436
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Wave reflections and resonance in a Mach 0.9 turbulent jet
Prinja, Robin
Martini, Eduardo
Jordan, Peter
Towne, Aaron
Cavalieri, André VG
Fluid Dynamics
This work aims to provide a more complete understanding of the resonance mechanisms that occur in turbulent jets at high subsonic Mach number, as shown by Towne et al. (J. Fluid Mech., vol. 825, 2017, pp. 1113-1152). Resonance was suggested by that study to exist between upstream- and downstream-travelling guided waves. Five possible resonance mechanisms were postulated, each involving different families of guided waves that reflect in the nozzle exit plane and at a number of downstream turning points. However, that study did not identify which of the five resonance mechanisms underpin the observed spectral peaks. In this work, the waves underpinning resonance are identified via a biorthogonal projection of Large Eddy Simulation data on eigenbases provided by a locally parallel linear stability analysis. Two of the five scenarios postulated by Towne et al. are thus confirmed to exist in the turbulent jet. The reflection-coefficients in the nozzle exit and turning-point planes are, furthermore, identified. Such information is required as input for simplified resonance-modelling strategies such as developed in Jordan et al. (J. Fluid Mech., vol. 853, 2018, pp. 333-358) for jet-edge resonance, and in Mancinelli et al. (Exp. Fluids, vol. 60, 2019, pp. 1-9) for supersonic screech.
title Wave reflections and resonance in a Mach 0.9 turbulent jet
topic Fluid Dynamics
url https://arxiv.org/abs/2304.04436