A Vaporization Model for Continuous Surface Force Approaches and Subcooled Configurations

Author:

Brissot Charles1,Cailly-Brandstäter Léa1,Hachem Elie1,Valette Rudy1

Affiliation:

1. MINES ParisTech, PSL Research University, CEMEF—Centre for Material Forming, CNRS UMR 7635, CS 10207 Rue Claude Daunesse, 06904 Sophia-Antipolis Cedex, France

Abstract

The integration of phase change phenomena through an interface is a numerical challenge that requires proper attention. Solutions to properly ensure mass and energy conservation were developed for finite difference and finite volume methods, but not for Finite Element methods. We propose a Finite Element phase change model based on an Eulerian framework with a Continuous Surface Force (CSF) approach. It handles both momentum and energy conservation at the interface for anisotropic meshes in a light an efficient way. To do so, a model based on the Level Set method is developed. A thick interface is considered to fit with the CSF approach. To properly compute the energy conservation, heat fluxes are extended through this interface thanks to the resolution of a transport equation. A dedicated pseudo compressible Navier–Stokes solver is added to compute velocity jumps with a source term at the interface in the velocity divergence equation. Several 1D and 2D benchmarks are considered with increasing complexity to highlight the performances of each feature of the framework. This stresses the capacity of the model to properly tackle phase change problems.

Publisher

MDPI AG

Subject

Fluid Flow and Transfer Processes,Mechanical Engineering,Condensed Matter Physics

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