scholarly journals Novel fully Implicit Collocated grid incompressible flow solver on unstructured meshes

2017 ◽  
Vol 822 ◽  
pp. 012035
Author(s):  
Jobin Joseph Unnupatt ◽  
N. Munikrishna ◽  
N. Balakrishnan
2007 ◽  
Vol 51 (5) ◽  
pp. 463-486 ◽  
Author(s):  
Y. P. Cheng ◽  
T. S. Lee ◽  
H. T. Low ◽  
W. Q. Tao

2019 ◽  
Vol 390 ◽  
pp. 380-404 ◽  
Author(s):  
A. Karakus ◽  
N. Chalmers ◽  
K. Świrydowicz ◽  
T. Warburton

Author(s):  
João Muralha ◽  
Luís Eça ◽  
Christiaan M. Klaij

Abstract Although most flows in maritime applications can be modeled as incompressible, for certain phenomena like sloshing, slamming, and cavitation, this approximation falls short. For these events, it is necessary to consider compressibility effects. This paper presents the first step toward a solver for multiphase compressible flows: a single-phase compressible flow solver for perfect gases. The main purpose of this work is code verification of the solver using the method of manufactured solutions. For the sake of completeness, the governing equations are described in detail including the changes to the SIMPLE algorithm used in the incompressible flow solver to ensure mass conservation and pressure–velocity–density coupling. A manufactured solution for laminar subsonic flow was therefore designed. With properly defined boundary conditions, the observed order of grid convergence matches the formal order, so it can be concluded that the flow solver is free of coding mistakes, to the extent tested by the method of manufactured solutions. The performance of the pressure-based SIMPLE solver is quantified by reporting iteration counts for all grids. Furthermore, the use of pressure–weighted interpolation (PWI), also known as Rhie–Chow interpolation, to avoid spurious pressure oscillations in incompressible flow, though not strictly necessary for compressible flow, does show some benefits in the low Mach number range.


Author(s):  
Chi Yang ◽  
Haidong Lu ◽  
Rainald Lo¨hner ◽  
William C. Sandberg

An unstructured grid-based, parallel incompressible flow solver has been developed for solving the three-dimensional non-linear flow around a body in or near the free surface. The incompressible Euler/Navier-Stokes equations are solved together with or without the free surface equation. The overall scheme combines a finite-element, equal-order, projection-type three-dimensional incompressible flow solver with a finite element, two-dimensional advection equation solver for the free surface equation. The solution is marched in time until a steady state is reached. The computer code developed based on the method described above has been applied to the simulation study of the three-dimensional nonlinear flow around a flying fish when it swims underwater, taxis on the free surface, and glides above water.


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