A Study on the Numerical Simulation Method of Two-dimensional Incompressible Fluid Flows using ISPH Method
Author(s) -
CheolHo Kim,
Young-Gill Lee,
Kwang-Leol Jeong
Publication year - 2011
Publication title -
journal of the society of naval architects of korea
Language(s) - English
Resource type - Journals
eISSN - 2287-7355
pISSN - 1225-1143
DOI - 10.3744/snak.2011.48.6.560
Subject(s) - computation , compressibility , projection method , smoothed particle hydrodynamics , pressure correction method , projection (relational algebra) , mechanics , barge , numerical analysis , computational fluid dynamics , mathematics , classical mechanics , physics , mathematical analysis , mathematical optimization , dykstra's projection algorithm , engineering , algorithm , marine engineering
In SPH(Smoothed Particle Hydrodynamics) method, the fluid has been assumed that it is weakly compressible to solve the basic equations composed of Navier-Stokes equations and continuity equation. That leads to some drawbacks such as non-physical pressure fluctuations and a restriction as like small time steps in computation. In this study, to improve these problems we assume that the fluid is incompressible and the velocity-pressure coupling problem is solved by a projection method(that is, by ISPH method). The two-dimensional computation results of dam breaking and gravitational wave generation are respectively compared with the results of finite volume method and analytical method to confirm the accuracy of the present numerical computation technique. And, the agreements are comparatively acceptable. Subsequently, the green water simulations of a two-dimensional fixed barge are carried out to inspect the possibility of practical application to ship hydrodynamics, those correspond to one of the violent free surface motions with impact loads. The agreement between the experimental data and the present computational results is also comparatively good.
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