Three-dimensional modeling of a thermal dendrite using the phase field method with automatic anisotropic and unstructured adaptive finite element meshing

  • C. Sarkis
  • , L. Silva
  • , Ch A. Gandin
  • , M. Plapp

Research output: Contribution to journalConference articlepeer-review

Abstract

Dendritic growth is computed with automatic adaptation of an anisotropic and unstructured finite element mesh. The energy conservation equation is formulated for solid and liquid phases considering an interface balance that includes the Gibbs-Thomson effect. An equation for a diffuse interface is also developed by considering a phase field function with constant negative value in the liquid and constant positive value in the solid. Unknowns are the phase field function and a dimensionless temperature, as proposed by [1]. Linear finite element interpolation is used for both variables, and discretization stabilization techniques ensure convergence towards a correct non-oscillating solution. In order to perform quantitative computations of dendritic growth on a large domain, two additional numerical ingredients are necessary: automatic anisotropic unstructured adaptive meshing [2,[3] and parallel implementations [4], both made available with the numerical platform used (CimLib) based on C++ developments. Mesh adaptation is found to greatly reduce the number of degrees of freedom. Results of phase field simulations for dendritic solidification of a pure material in two and three dimensions are shown and compared with reference work [1]. Discussion on algorithm details and the CPU time will be outlined.

Original languageEnglish
Article number012008
JournalIOP Conference Series: Materials Science and Engineering
Volume117
Issue number1
DOIs
Publication statusPublished - 31 Mar 2016
Event4th International Conference on Advances in Solidification Processes, ICASP 2014 - Windsor, United Kingdom
Duration: 8 Jul 201411 Jul 2014

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