z-logo
open-access-imgOpen Access
A Vortex Lattice Method for the Hydrodynamic Solution of Lifting Bodies Traveling Close and Across a Free Surface
Author(s) -
Raffaele Solari,
Patrizia Bagnerini,
Giuliano Vernengo
Publication year - 2022
Publication title -
wseas transactions on fluid mechanics
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.234
H-Index - 11
eISSN - 2224-347X
pISSN - 1790-5087
DOI - 10.37394/232013.2022.17.4
Subject(s) - reynolds averaged navier–stokes equations , discretization , computational fluid dynamics , mechanics , vortex , hull , free surface , aerodynamics , reynolds number , potential flow , boundary layer , geometry , physics , mathematics , marine engineering , engineering , mathematical analysis , turbulence
The hydrodynamics performance of submerged and surface-piercing lifting bodies is analyzed by a potential flow model based on a Vortex Lattice Method (VLM). Such a numerical scheme, widely applied in aerodynamics, is particularly suitable to model the lifting effects thanks to the vortex distribution used to discretize the boundaries of the lifting bodies. The method has been developed with specific boundary conditions to account for the development of steady free surface wave patterns. Both submerged bodies, such as flat plates and hydrofoils, as well as planing hulls can be studied. The method is validated by comparison against available experimental data and other Computational Fluid Dynamic (CFD) results from Reynolds Averaged Navier Stokes (RANS) approaches. In all the analyzed cases, namely 2D and 3D flat plates, a NACA hydrofoil, planning flat plates and prismatic planing hulls, results have been found to be consistent with those taken as reference. The obtained hydrodynamic predictionsare discussed highlighting the advantages and the possible improvements of the developed approach.

The content you want is available to Zendy users.

Already have an account? Click here to sign in.
Having issues? You can contact us here