Numerical Study on Tip Vortex Cavitation Inception on a Foil

In this paper, the inception of tip vortex cavitation in weak water has been predicted using a numerical simulation, and a new scaling concept with variable exponent has also been suggested for cavitation inception index. The numerical simulations of the cavitating flows over an elliptic planform hy...

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Main Authors: Ilryong Park, Jein Kim, Bugeun Paik, Hanshin Seol
Format: Article
Language:English
Published: MDPI AG 2021-08-01
Series:Applied Sciences
Subjects:
Online Access:https://www.mdpi.com/2076-3417/11/16/7332
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author Ilryong Park
Jein Kim
Bugeun Paik
Hanshin Seol
author_facet Ilryong Park
Jein Kim
Bugeun Paik
Hanshin Seol
author_sort Ilryong Park
collection DOAJ
description In this paper, the inception of tip vortex cavitation in weak water has been predicted using a numerical simulation, and a new scaling concept with variable exponent has also been suggested for cavitation inception index. The numerical simulations of the cavitating flows over an elliptic planform hydrofoil were performed by using the RANS approach with a Eulerian cavitation model. To ensure the accuracy of the present simulations, the effects of the turbulence model and grid resolution on the tip vortex flows were investigated. The turbulence models behaved differently in the boundary layer of the tip region where the tip vortex is developed, which resulted in different pressure and velocity fields in the vortex region. Furthermore, the Reynolds stress model for the finest grid showed a better agreement with the experimental data. The tip vortex cavitation inception numbers for the foil, predicted by using both wetted and cavitating flow simulation approaches, were compared with the measured cavitation index values, showing a good correlation. The current cavitation scaling study also suggested new empirical relations as a function of the Reynolds number substitutable for the two classic constant scaling exponents. This scaling concept showed how the scaling law changes with the Reynolds number and provided a proper scaling value for any given Reynolds numbers under turbulent flow conditions.
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spelling doaj.art-3825e7bc4f404d25bb1818899997b8002023-11-22T06:40:00ZengMDPI AGApplied Sciences2076-34172021-08-011116733210.3390/app11167332Numerical Study on Tip Vortex Cavitation Inception on a FoilIlryong Park0Jein Kim1Bugeun Paik2Hanshin Seol3Department of Naval Architecture and Ocean Engineering, Dong-Eui University, Busan 47340, KoreaDepartment of Naval Architecture and Ocean Engineering, Dong-Eui University, Busan 47340, KoreaKorea Research Institute of Ships & Ocean Engineering, Daejeon 34103, KoreaKorea Research Institute of Ships & Ocean Engineering, Daejeon 34103, KoreaIn this paper, the inception of tip vortex cavitation in weak water has been predicted using a numerical simulation, and a new scaling concept with variable exponent has also been suggested for cavitation inception index. The numerical simulations of the cavitating flows over an elliptic planform hydrofoil were performed by using the RANS approach with a Eulerian cavitation model. To ensure the accuracy of the present simulations, the effects of the turbulence model and grid resolution on the tip vortex flows were investigated. The turbulence models behaved differently in the boundary layer of the tip region where the tip vortex is developed, which resulted in different pressure and velocity fields in the vortex region. Furthermore, the Reynolds stress model for the finest grid showed a better agreement with the experimental data. The tip vortex cavitation inception numbers for the foil, predicted by using both wetted and cavitating flow simulation approaches, were compared with the measured cavitation index values, showing a good correlation. The current cavitation scaling study also suggested new empirical relations as a function of the Reynolds number substitutable for the two classic constant scaling exponents. This scaling concept showed how the scaling law changes with the Reynolds number and provided a proper scaling value for any given Reynolds numbers under turbulent flow conditions.https://www.mdpi.com/2076-3417/11/16/7332tip vortex cavitationRANSReynolds stress modelcavitation inceptionscaling lawelliptic planform foil
spellingShingle Ilryong Park
Jein Kim
Bugeun Paik
Hanshin Seol
Numerical Study on Tip Vortex Cavitation Inception on a Foil
Applied Sciences
tip vortex cavitation
RANS
Reynolds stress model
cavitation inception
scaling law
elliptic planform foil
title Numerical Study on Tip Vortex Cavitation Inception on a Foil
title_full Numerical Study on Tip Vortex Cavitation Inception on a Foil
title_fullStr Numerical Study on Tip Vortex Cavitation Inception on a Foil
title_full_unstemmed Numerical Study on Tip Vortex Cavitation Inception on a Foil
title_short Numerical Study on Tip Vortex Cavitation Inception on a Foil
title_sort numerical study on tip vortex cavitation inception on a foil
topic tip vortex cavitation
RANS
Reynolds stress model
cavitation inception
scaling law
elliptic planform foil
url https://www.mdpi.com/2076-3417/11/16/7332
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AT hanshinseol numericalstudyontipvortexcavitationinceptiononafoil