INTEC   05402
INSTITUTO DE DESARROLLO TECNOLOGICO PARA LA INDUSTRIA QUIMICA
Unidad Ejecutora - UE
artículos
Título:
A Finite Element Formulation Satisfying the Discrete Geometric Conservation Law Based on Averaged Jacobians
Autor/es:
MARIO A. STORTI; LUCIANO GARELLI; RODRIGO R. PAZ
Revista:
INTERNATIONAL JOURNAL FOR NUMERICAL METHODS IN FLUIDS
Editorial:
JOHN WILEY & SONS LTD
Referencias:
Lugar: London, UK; Año: 2011
ISSN:
0271-2091
Resumen:
In this article a new methodology for developing DGCL (for Discrete Geometric Conservation Law) compliant formulations is presented. It is carried out in the context of the Finite Element Method (FEM) for general advective-diffusive systems on moving domains using an Arbitrary Lagrangian Eulerian (ALE) scheme. There is an extensive literature about the impact of DGCL compliance on the stability and precision of time integration methods. In those articles it has been proved that satisfying the DGCL is a necessary and sufficient condition for any ALE scheme to maintain on moving grids the nonlinear stability properties of its fixed-grid counterpart. However, only a few works propose a methodology for obtaining a compliant scheme. In this work, a DGCL compliant scheme based on an Averaged ALE Jacobians Formulation (AJF) is obtained. This new formulation is applied to the -family of time integration methods. In addition, an extension to the three-point Backward Difference Formula (BDF) is given. With the aim to validate the AJF formulation a set of numerical tests are performed. These tests include 2D and 3D diffusion problems with different mesh movements and the 2D compressible Navier-Stokes equations.