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Numerical modeling of flow past a volumeless and thin rigid body using direct forcing immersed boundary method
Authors:Desta Goytom Tewolde  Zi-Hsuan Wei  Ming-Jyh Chern
Affiliation:Department of Mechanical Engineering, National Taiwan University of Science and Technology, Taipei, Taiwan
Abstract:The new capability has been added as the numerical method for modeling volumeless and thin rigid bodies to the direct forcing immersed boundary (DFIB) method. The DFIB approach is based on adding a virtual force to the Navier–Stokes equations of incompressible flow to account for the interaction between the fluid and structures. The volume of a solid function (VOS) identifies the stationary or moving solid structures in a given fluid domain. A new VOS-based algorithm was developed to identify thin, rigid structure boundary points in fluid flow and ensure that the fluid cannot cross through the boundary of a thin rigid structure while moving or stationary. The DFIB method was first validated in a three-dimensional (3D) turbulent flow over a circular cylinder. The large-eddy simulation simulated the turbulent flow scales. The proposed algorithm was tested using a 3D turbulent flow past a stationary and rotating Savonius wind turbine that functions as a thin, rigid body. The validation results showed that the selected DFIB approach, combined with the novel algorithm, could simulate a thin, volumeless, rigid structure that is stationary and rotating in incompressible turbulent flows. The current method is also applicable for two-way fluid-structure interaction problems.
Keywords:direct forcing immersed boundary method  large eddy simulation  Savonius wind turbine  volume of solid  volumeless rigid bodies
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