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Numerical Investigation of Tip-Vortex Cavitation Noise of an Elliptic Wing Using Coupled Eulerian-Lagrangian Approaches

Authors
Ku, GaramCheong, CheolungSeol, Hanshin
Issue Date
9월-2020
Publisher
MDPI
Keywords
wing-tip vortex cavitation; cavitation noise; bubble dynamics; vortex model; nuclei distribution
Citation
APPLIED SCIENCES-BASEL, v.10, no.17
Journal Title
APPLIED SCIENCES-BASEL
Volume
10
Number
17
URI
https://www.kriso.re.kr/sciwatch/handle/2021.sw.kriso/219
DOI
10.3390/app10175897
ISSN
2076-3417
2076-3417
Abstract
In this study, a numerical methodology is developed to investigate the tip-vortex cavitation of NACA16-020 wings and their flow noise. The numerical method consists of a sequential one-way coupled application of Eulerian and Lagrangian approaches. First, the Eulerian method based on Reynolds-averaged Navier-Stokes equation is applied to predict the single-phase flow field around the wing, with particular emphasis on capturing high-resolution tip-vortex flow structures. Subsequently, the tip-vortex flow field is regenerated by applying the Scully vortex model. Secondly, the Lagrangian approach is applied to predict the tip-vortex cavitation inception and noise of the wing. The initial nuclei are distributed upstream of the wing. The subsequent time-varying size and position of each nucleus are traced by solving spherically symmetric bubble dynamics equations for the nuclei in combination with the flow field predicted from the Eulerian approach. The acoustic pressure at the observer position is computed by modelling each bubble as a point source. The numerical results of the acoustic pressure spectrum are best matched to the measured results when the nuclei number density of freshwater is used. Finally, the current numerical method is applied to the flows of various cavitation numbers. The results reveal that the cavitation inception determined by the predicted acoustic pressure spectrum well matched the experimental result.
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Seol, Hanshin
지능형선박연구본부 (함정공학연구센터)
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