Numerical Simulation of Liquid Sloshing with Different Filling Levels Using OpenFOAM and Experimental Validation

A series of numerical simulations were performed to explore the influences of filling level, excitation frequency and amplitude on liquid sloshing by using the open source Computational Fluid Dynamics toolbox OpenFOAM (Open Field Operation and Manipulation), which was fully validated by the experime...

Full description

Bibliographic Details
Main Authors: Yichao Chen, Mi-An Xue
Format: Article
Language:English
Published: MDPI AG 2018-11-01
Series:Water
Subjects:
Online Access:https://www.mdpi.com/2073-4441/10/12/1752
id doaj-64e616799cad406782e96588b30063e5
record_format Article
spelling doaj-64e616799cad406782e96588b30063e52020-11-25T00:35:49ZengMDPI AGWater2073-44412018-11-011012175210.3390/w10121752w10121752Numerical Simulation of Liquid Sloshing with Different Filling Levels Using OpenFOAM and Experimental ValidationYichao Chen0Mi-An Xue1College of Harbour Coastal and Offshore Engineering, Hohai University, Nanjing 210098, ChinaCollege of Harbour Coastal and Offshore Engineering, Hohai University, Nanjing 210098, ChinaA series of numerical simulations were performed to explore the influences of filling level, excitation frequency and amplitude on liquid sloshing by using the open source Computational Fluid Dynamics toolbox OpenFOAM (Open Field Operation and Manipulation), which was fully validated by the experimental data. The results show that the dynamic impact pressure is proportional to the external excitation amplitude only in non-resonance frequency ranges. Pressure-frequency response curves demonstrate a transition process from a ‘soft-spring’ response to a ‘hard-spring’ response following the changes of the filling level. Such a transition process is found to be dominated by the ratio of the filling level to tank length and the critical value can be obtained. It is also found that wave breaking influences the period of sloshing wave in tanks and ultimately alters the resonance frequency from the linear theory.https://www.mdpi.com/2073-4441/10/12/1752sloshingfilling levelpressure-frequency responseOpenFOAMexperiment
collection DOAJ
language English
format Article
sources DOAJ
author Yichao Chen
Mi-An Xue
spellingShingle Yichao Chen
Mi-An Xue
Numerical Simulation of Liquid Sloshing with Different Filling Levels Using OpenFOAM and Experimental Validation
Water
sloshing
filling level
pressure-frequency response
OpenFOAM
experiment
author_facet Yichao Chen
Mi-An Xue
author_sort Yichao Chen
title Numerical Simulation of Liquid Sloshing with Different Filling Levels Using OpenFOAM and Experimental Validation
title_short Numerical Simulation of Liquid Sloshing with Different Filling Levels Using OpenFOAM and Experimental Validation
title_full Numerical Simulation of Liquid Sloshing with Different Filling Levels Using OpenFOAM and Experimental Validation
title_fullStr Numerical Simulation of Liquid Sloshing with Different Filling Levels Using OpenFOAM and Experimental Validation
title_full_unstemmed Numerical Simulation of Liquid Sloshing with Different Filling Levels Using OpenFOAM and Experimental Validation
title_sort numerical simulation of liquid sloshing with different filling levels using openfoam and experimental validation
publisher MDPI AG
series Water
issn 2073-4441
publishDate 2018-11-01
description A series of numerical simulations were performed to explore the influences of filling level, excitation frequency and amplitude on liquid sloshing by using the open source Computational Fluid Dynamics toolbox OpenFOAM (Open Field Operation and Manipulation), which was fully validated by the experimental data. The results show that the dynamic impact pressure is proportional to the external excitation amplitude only in non-resonance frequency ranges. Pressure-frequency response curves demonstrate a transition process from a ‘soft-spring’ response to a ‘hard-spring’ response following the changes of the filling level. Such a transition process is found to be dominated by the ratio of the filling level to tank length and the critical value can be obtained. It is also found that wave breaking influences the period of sloshing wave in tanks and ultimately alters the resonance frequency from the linear theory.
topic sloshing
filling level
pressure-frequency response
OpenFOAM
experiment
url https://www.mdpi.com/2073-4441/10/12/1752
work_keys_str_mv AT yichaochen numericalsimulationofliquidsloshingwithdifferentfillinglevelsusingopenfoamandexperimentalvalidation
AT mianxue numericalsimulationofliquidsloshingwithdifferentfillinglevelsusingopenfoamandexperimentalvalidation
_version_ 1725307543332323328