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A Cartesian cut-cell based multiphase flow model for large-eddy simulation of three-dimensional wave-structure interaction

Zhihua Xie, Thorsten Stoesser, Shiqiang Yan, Qingwei Ma, Pengzhi Lin

2020Computers & Fluids29 citationsDOIOpen Access PDF

Abstract

A multiphase flow numerical approach for performing large-eddy simulations of three-dimensional (3D) wave-structure interaction is presented in this study. The approach combines a volume-of-fluid method to capture the air-water interface and a Cartesian cut-cell method to deal with complex geometries. The filtered Navier–Stokes equations are discretised by the finite volume method with the PISO algorithm for velocity-pressure coupling and the dynamic Smagorinsky subgrid-scale model is used to compute the unresolved (subgrid) scales of turbulence. The versatility and robustness of the presented numerical approach are illustrated by applying it to solve various three-dimensional wave-structure interaction problems featuring complex geometries, such as a 3D travelling wave in a closed channel, a 3D solitary wave interacting with a vertical circular cylinder, a 3D solitary wave interacting with a horizontal thin plate, and a 3D focusing wave impacting on an FPSO-like structure. For all cases, convincing agreement between the numerical predictions and the corresponding experimental data and/or analytical or numerical solutions is obtained. In addition, for all cases, water surface profiles and turbulent vortical structures are presented and discussed.

Topics & Concepts

Volume of fluid methodLarge eddy simulationCartesian coordinate systemTurbulenceFinite volume methodMechanicsMultiphase flowBreaking waveRobustness (evolution)Turbulence modelingFlow (mathematics)GeometryPhysicsClassical mechanicsMathematicsWave propagationOpticsBiochemistryGeneChemistryCoastal and Marine DynamicsTropical and Extratropical Cyclones ResearchLattice Boltzmann Simulation Studies
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