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Bang-Fuh Chen

Researcher at National Sun Yat-sen University

Publications -  45
Citations -  929

Bang-Fuh Chen is an academic researcher from National Sun Yat-sen University. The author has contributed to research in topics: Slosh dynamics & Free surface. The author has an hindex of 16, co-authored 40 publications receiving 817 citations.

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Time-independent finite difference analysis of fully non-linear and viscous fluid sloshing in a rectangular tank

TL;DR: In this paper, a 2D Navier-Stokes equation was used to analyze the 2D sloshing motion of a tank and the boundary of the tank was mapped onto a fixed square domain through proper mapping functions and stretched meshes were employed near boundaries to more accurately evaluate the large disturbance of fluid along the boundary.
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Sloshing waves and resonance modes of fluid in a 3D tank by a time-independent finite difference method

TL;DR: In this paper, a 3D time-independent finite difference method is developed to solve for wave sloshing in a three-dimensional tank excited by coupled surge and sway motions, where the 3D equations of fluid motion are derived in a moving coordinate system.
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Numerical study of sloshing liquid in tanks with baffles by time-independent finite difference and fictitious cell method

TL;DR: In this paper, a time-independent finite difference scheme with fictitious cell technique is used to study viscous fluid sloshing in 2D tanks with baffles, and the effects of baffles on the resonant frequency are discussed.
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Wavelet and artificial neural network analyses of tide forecasting and supplement of tides around Taiwan and South China Sea

TL;DR: The results show that the concept of tidal constituent phase-lags can improve ANN model of tidal forecasting and data supplement and the addition of the wavelet analysis to ANN method can prominently improve the prediction quality.
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Complete two-dimensional analysis of sea-wave-induced fully non-linear sloshing fluid in a rigid floating tank

TL;DR: In this article, the interaction effect between the fully non-linear sloshing fluid and the floating tank associated with coupled surge, heave and pitch motions of the tank is analyzed for the first time in the present pilot study.