Litcius/Paper detail

Computational Evaluation of Shock Wave Interaction with a Cylindrical Water Column

Viola Rossano, Giuliano De Stefano

2021Applied Sciences15 citationsDOIOpen Access PDF

Abstract

Computational fluid dynamics was employed to predict the early stages of the aerodynamic breakup of a cylindrical water column, due to the impact of a traveling plane shock wave. The unsteady Reynolds-averaged Navier–Stokes approach was used to simulate the mean turbulent flow in a virtual shock tube device. The compressible flow governing equations were solved by means of a finite volume-based numerical method, where the volume of fluid technique was employed to track the air–water interface on the fixed numerical mesh. The present computational modeling approach for industrial gas dynamics applications was verified by making a comparison with reference experimental and numerical results for the same flow configuration. The engineering analysis of the shock–column interaction was performed in the shear-stripping regime, where an acceptably accurate prediction of the interface deformation was achieved. Both column flattening and sheet shearing at the column equator were correctly reproduced, along with the water body drift.

Topics & Concepts

MechanicsComputational fluid dynamicsFinite volume methodReynolds-averaged Navier–Stokes equationsTurbulenceShock waveVolume of fluid methodAerodynamicsPhysicsBreakupMaterials scienceFluid Dynamics and Heat TransferComputational Fluid Dynamics and AerodynamicsFluid Dynamics Simulations and Interactions
Computational Evaluation of Shock Wave Interaction with a Cylindrical Water Column | Litcius