In this paper a new finite-volume non-hydrostatic and shock-capturing three-dimensional model for the simulation of wave-structure interaction and hydrodynamic phenomena (wave refraction, diffraction, shoaling and breaking) is proposed. The model is based on an integral formulation of the Navier-Stokes equations which are solved on a time dependent coordinate system: a coordinate transformation maps the varying coordinates in the physical domain to a uniform transformed space. The equations of motion are discretized by means of a finite-volume shock-capturing numerical procedure based on high order WENO reconstructions. The solution procedure for the equations of motion uses a third order accurate Runge-Kutta (SSPRK) fractional-step method and applies a pressure corrector formulation in order to obtain a divergence-free velocity field at each stage. The proposed model is validated against several benchmark test cases.

A new three-dimensional finite-volume non-hydrostatic shock-capturing model for free surface flow / Gallerano, Francesco; Cannata, Giovanni; Lasaponara, Francesco; Petrelli, Chiara. - In: JOURNAL OF HYDRODYNAMICS. - ISSN 1001-6058. - STAMPA. - 29:4(2017), pp. 552-566. [10.1016/S1001-6058(16)60768-0]

A new three-dimensional finite-volume non-hydrostatic shock-capturing model for free surface flow

GALLERANO, Francesco
;
CANNATA, Giovanni;LASAPONARA, FRANCESCO;PETRELLI, CHIARA
2017

Abstract

In this paper a new finite-volume non-hydrostatic and shock-capturing three-dimensional model for the simulation of wave-structure interaction and hydrodynamic phenomena (wave refraction, diffraction, shoaling and breaking) is proposed. The model is based on an integral formulation of the Navier-Stokes equations which are solved on a time dependent coordinate system: a coordinate transformation maps the varying coordinates in the physical domain to a uniform transformed space. The equations of motion are discretized by means of a finite-volume shock-capturing numerical procedure based on high order WENO reconstructions. The solution procedure for the equations of motion uses a third order accurate Runge-Kutta (SSPRK) fractional-step method and applies a pressure corrector formulation in order to obtain a divergence-free velocity field at each stage. The proposed model is validated against several benchmark test cases.
2017
flow-structure interaction; non-hydrostatic; shock-capturing; three-dimensional simulation; wave-structure interaction; modeling and simulation; condensed matter physics; mechanics of materials; mechanical engineering
01 Pubblicazione su rivista::01a Articolo in rivista
A new three-dimensional finite-volume non-hydrostatic shock-capturing model for free surface flow / Gallerano, Francesco; Cannata, Giovanni; Lasaponara, Francesco; Petrelli, Chiara. - In: JOURNAL OF HYDRODYNAMICS. - ISSN 1001-6058. - STAMPA. - 29:4(2017), pp. 552-566. [10.1016/S1001-6058(16)60768-0]
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11573/1002034
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