Multiphase Flow Simulation of ITTC Standard Cavitator for Underwater Radiated Noise Prediction

Author:

Hynninen Antti1ORCID,Viitanen Ville1ORCID,Tanttari Jukka1ORCID,Klose Rhena2,Testa Claudio3,Martio Jussi1

Affiliation:

1. VTT Technical Research Centre of Finland Ltd., Tekniikantie 21, 02150 Espoo, Finland

2. Schiffbau-Versuchsanstalt Potsdam GmbH, Marquardter Chaussee 100, 14469 Potsdam, Germany

3. CNR-INM, Institute of Marine Engineering, Via di Vallerano 139, 00128 Rome, Italy

Abstract

This work focuses on the main issues related to noise measurements in cavitation tunnels. The scope of the paper is to twofold: to obtain a better understanding on the main phenomena underlying experiments and to define consistent cavitation tunnel measurement corrections for background noise, wall reflections, and distance normalisation. To this aim, the acoustic field generated by the ITTC standard cavitator model inside a cavitation tunnel is predicted by Lighthill’s acoustic analogy and solved through a finite element method that inherently accounts for the presence of the walls. Sources of sound detection relies on two multiphase CFD solvers, namely, the homogeneous mixture model—Volume of Fluid method and the Euler–Euler formulations. Starting from the computation of the sound pressure level in the free field with the assumption of spherical spreading without absorption, corrections from losses and spreading are detected by the above approach. Background-corrected sound pressure levels are identified and then compared with the source levels measured in the cavitation tunnel of the Potsdam Model Basin (SVA). It is found that free-field computations corrected by tunnel-induced effects match well with experiments up to 100 Hz (in the one-third octave band), whereas relevant discrepancies arise out of this range that need further investigations.

Funder

VTT Technical Research Centre of Finland Ltd.

Business Finland

Publisher

MDPI AG

Subject

Ocean Engineering,Water Science and Technology,Civil and Structural Engineering

Reference74 articles.

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2. Doolan, C., Brandner, P., Butler, D., Pearce, B., Moreau, D., and Brooks, L. (2013). Acoustics 2013 Victor Harbor: Science, Technology and Amenity, Australian Acoustical Society.

3. Felli, M. (2011). HydroTesting Alliance HTA, European Commission. Sustainable Surface Transport Project 31316.

4. Jeona, J., and Joob, W. (2014, January 22–27). Prediction of propeller radiated noise by onboard measurement. Proceedings of the UA2014 2nd Underwater Acoustics Conference and Exhibition, Rhodes, Greece.

5. Propeller underwater radiated noise: A comparison between model scale measurements in two different facilities and full scale measurements;Tani;Appl. Ocean Res.,2016

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