The acoustic analogy is utilized to analyze the sound from a propeller-rudder system, exploiting data from high-fidelity Large-Eddy Simulations, performed on a cylindrical grid consisting of 3.8 billion points. Simulations were conducted with the downstream hydrofoil at incidence angles of 0°, 5°, 10° and 15°. The analysis demonstrates the significant effect of the downstream hydrofoil in increasing the sound pressure levels, especially due to the loading noise from its surface, but also as a result of the enhanced complexity of the wake topology. For increasing angles of incidence, the wake experiences a growing elongation in the direction of the span of the hydrofoil and higher values of cross-stream velocity, reinforcing the shear between the wakes shed by the propeller and the hydrofoil, respectively. A very complex directivity of the acoustic signature develops, whose dependence on the orientation of the hydrofoil is variable across both the azimuthal and the streamwise directions. Separation on the suction side of the hydrofoil for large incidence angles has the effect of reducing the loading component of noise from its surface, which is the leading one, with the exception of the radial coordinates within a few diameters from the axis of the propeller and its wake.

The signature of a propeller-rudder system: Acoustic analogy based on LES data

Posa A;Felli M;Broglia R
2022

Abstract

The acoustic analogy is utilized to analyze the sound from a propeller-rudder system, exploiting data from high-fidelity Large-Eddy Simulations, performed on a cylindrical grid consisting of 3.8 billion points. Simulations were conducted with the downstream hydrofoil at incidence angles of 0°, 5°, 10° and 15°. The analysis demonstrates the significant effect of the downstream hydrofoil in increasing the sound pressure levels, especially due to the loading noise from its surface, but also as a result of the enhanced complexity of the wake topology. For increasing angles of incidence, the wake experiences a growing elongation in the direction of the span of the hydrofoil and higher values of cross-stream velocity, reinforcing the shear between the wakes shed by the propeller and the hydrofoil, respectively. A very complex directivity of the acoustic signature develops, whose dependence on the orientation of the hydrofoil is variable across both the azimuthal and the streamwise directions. Separation on the suction side of the hydrofoil for large incidence angles has the effect of reducing the loading component of noise from its surface, which is the leading one, with the exception of the radial coordinates within a few diameters from the axis of the propeller and its wake.
2022
Istituto di iNgegneria del Mare - INM (ex INSEAN)
Large-Eddy Simulation
acoustic signature
Ffowcs-Williams and Hawkings equation
Propeller-rudder interaction
Immersed boundary method
File in questo prodotto:
File Dimensione Formato  
prod_473088-doc_192750.pdf

solo utenti autorizzati

Descrizione: 2022_OE_HydroAcu
Tipologia: Versione Editoriale (PDF)
Dimensione 9.5 MB
Formato Adobe PDF
9.5 MB Adobe PDF   Visualizza/Apri   Richiedi una copia

I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.

Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/415772
Citazioni
  • ???jsp.display-item.citation.pmc??? ND
  • Scopus 18
  • ???jsp.display-item.citation.isi??? ND
social impact