Title of article :
Modelling convection in solidification processes using stabilized finite element techniques
Author/Authors :
Deep Samanta، نويسنده , , Nicholas Zabaras، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2005
Abstract :
Solidification of dendritic alloys is modelled using stabilized finite element techniques to study convection
and macrosegregation driven by buoyancy and shrinkage. The adopted governing macroscopic
conservation equations of momentum, energy and species transport are derived from their microscopic
counterparts using the volume-averaging method. A single domain model is considered with a fixed
numerical grid and without boundary conditions applied explicitly on the freezing front. The mushy
zone is modelled here as a porous medium with either an isotropic or an anisotropic permeability.
The stabilized finite-element scheme, previously developed by authors for modelling flows with phase
change, is extended here to include effects of shrinkage, density changes and anisotropic permeability
during solidification. The fluid flow scheme developed includes streamline-upwind/Petrov–Galerkin
(SUPG), pressure stabilizing/Petrov–Galerkin, Darcy stabilizing/Petrov–Galerkin and other stabilizing
terms arising from changes in density in the mushy zone. For the energy and species equations a
classical SUPG-based finite element method is employed with minor modifications. The developed
algorithms are first tested for a reference problem involving solidification of lead–tin alloy where
the mushy zone is characterized by an isotropic permeability. Convergence studies are performed to
validate the simulation results. Solidification of the same alloy in the absence of shrinkage is studied
to observe differences in macrosegregation. Vertical solidification of a lead–tin alloy, where the mushy
zone is characterized by an anisotropic permeability, is then simulated. The main aim here is to
study convection and demonstrate formation of freckles and channels due to macrosegregation. The
ability of stabilized finite element methods to model a wide variety of solidification problems with
varying underlying phenomena in two and three dimensions is demonstrated through these examples
Keywords :
stabilized finite element method , convection , anisotropic permeability , density change , solidification , Shrinkage
Journal title :
International Journal for Numerical Methods in Engineering
Journal title :
International Journal for Numerical Methods in Engineering