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Numerical Wave Tank Using Two-Phase VOF Model

류진, 현범수, 김길원

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Abstract

In this paper, a numerical two-phase VOF model for incompressible viscous fluid based on Fluent is developed to simulate the wave generation and propagation, which induces the air phase and effects of air movement. The model couples standard turbulence model, piecewise-linear free surface tracking method, NITA-PISO algorithm and dynamic mesh technique with Naiver-Stokes and VOF function equations. The geometry and meshes is generated by GAMBIT. The 2-D and 3-D numerical linear waves which show reasonably good agreements with the analytical solutions is simulated and utilized in the wave energy converting application successfully.

About this research paper

What this paper is about

In this paper, a numerical two-phase VOF model for incompressible viscous fluid based on Fluent is developed to simulate the wave generation and propagation, which induces the air phase and effects of air movement. The model couples standard turbulence model, piecewise-linear free surface tracking method, NITA-PISO algorithm and dynamic mesh technique with Naiver-Stokes and VOF function equations. The geometry and meshes is generated by GAMBIT. The 2-D and 3-D numerical linear waves which show reasonably good agreements with the analytical solutions is simulated and utilized in the wave energy converting application successfully.

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OpenAlex reports 4 citations for this work. Citation counts describe recorded attention and do not establish research quality.

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Available abstract

In this paper, a numerical two-phase VOF model for incompressible viscous fluid based on Fluent is developed to simulate the wave generation and propagation, which induces the air phase and effects of air movement. The model couples standard turbulence model, piecewise-linear free surface tracking method, NITA-PISO algorithm and dynamic mesh technique with Naiver-Stokes and VOF function equations. The geometry and meshes is generated by GAMBIT. The 2-D and 3-D numerical linear waves which show reasonably good agreements with the analytical solutions is simulated and utilized in the wave energy converting application successfully.

Key concepts: Volume of fluid method, Mechanics, Gambit, Piecewise linear function, Turbulence, Fluent, Free surface, Computer simulation

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