Numerical Investigation of Sphere Cavitation Dynamics and Pressure-Wave Propagation for Underwater Noise Prediction using OpenFOAM
Paper i proceeding, 2026

Cloud cavitation involves highly unsteady vapor-cloud growth and collapse, generating intense pressure pulses and broadband acoustic emissions in marine and hydraulic systems. While incompressible simulations are widely used to predict cavitation dynamics, their ability to represent collapse-induced pressure-wave propagation remains limited. In this study, a comparative computational investigation of cloud cavitation around a sphere is performed using incompressible and compressible multiphase formulations, with validation against experimental benchmark data. The influence of compressibility on cavitation behavior, pressure fluctuations, and acoustic-spectrum characteristics is systematically examined. The results indicate that resolving localized collapse events is key to capturing high-frequency pressure fluctuations.

CFD

Ffowcs Williams-Hawkings method

Cavitation

Undersater radiated noise

Författare

Seoyun Ryu

Chalmers, Mekanik och maritima vetenskaper, Marin teknik

Marta Cianferra

Universita degli Studi di Trieste

Rickard Everyd Bensow

Chalmers, Mekanik och maritima vetenskaper, Marin teknik

36th Symposium on Naval Hydrodynamics

36th Symposium on Naval Hydrodynamics
Busan, South Korea,

BluEcho - Från vetenskap till policy: utvärdera påverkan av och utveckla lösningar för fartygstrafik och havsbaserad vindkraftsparker genom detaljerade ljudkartor

Formas, 2024-04-01 -- 2027-03-31.

Drivkrafter

Hållbar utveckling

Innovation och entreprenörskap

Styrkeområden

Transport

Energi

Ämneskategorier (SSIF 2025)

Strömningsmekanik

Infrastruktur

Chalmers e-Commons (inkl. C3SE, 2020-)

Mer information

Skapat

2026-09-14