4.5 Article

Numerical study of coupled slosh modes in a 3D vessel subjected to multi-directional excitations

期刊

ANNALS OF NUCLEAR ENERGY
卷 175, 期 -, 页码 -

出版社

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.anucene.2022.109197

关键词

Sloshing; Multi-phase flows; Seismic excitation; Computational fluid dynamics; Shake table; OpenFOAM

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This study investigates the liquid sloshing in a three-dimensional rectangular tank subjected to surge and coupled surge, sway, and heave excitations. The findings are significant for practical applications in nuclear systems, as they can provide insights into the behavior of fluid and structural response, thus enhancing the safety of storage tanks.
Present study explores liquid sloshing in a three-dimensional (3D) rectangular tank subjected to surge and coupled surge, sway and heave excitations. A number of applications of practical interest in nuclear systems such as, spent fuel storage tanks, fast reactor vessels, pool type coolant etc will be benefited from such analysis. Effect of harmonic excitation is investigated emphasizing finite liquid depth when the internal resonance condition 1:1 is satisfied between the natural frequencies of dominant modes (1,0), (0,1) and (0,2). The numerical model was validated against available in-house experimental shake table studies. Temporal snapshots of velocity magnitudes and free surface time history at different locations are presented when the tank is excited under two different loading conditions. The amplification of diagonal slosh modes were observed under planar excitation. This analysis assumes significance, as the attendant hydrodynamic forces could eventually cause fatigue failure of the tank structure. Non-linear square-like, swirling and wave breaking features were observed, when the tank was subjected to earth-quake excitation.(c) 2022 Published by Elsevier Ltd.

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