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Numerical simulation of microstructural evolution during sintering at the mesoscale in a 3D powder compact

Authors :
Veena Tikare
Michael V. Braginsky
Alexander Vagnon
Didier Bouvard
Sandia National Laboratories [Albuquerque] (SNL)
Sandia National Laboratories - Corporation
Universal Energy Syst. INC Dayton
Universal Energy Syst. Inc. Dayton
Science et Ingénierie des Matériaux et Procédés (SIMaP)
Université Joseph Fourier - Grenoble 1 (UJF)-Institut polytechnique de Grenoble - Grenoble Institute of Technology (Grenoble INP )-Institut National Polytechnique de Grenoble (INPG)-Institut de Chimie du CNRS (INC)-Centre National de la Recherche Scientifique (CNRS)
Source :
Computational Materials Science, Computational Materials Science, Elsevier, 2010, 48 (2), pp.317-325. ⟨10.1016/j.commatsci.2010.01.013⟩
Publication Year :
2010
Publisher :
Elsevier BV, 2010.

Abstract

International audience; This paper presents a numerical model that is capable of simulating microstructural evolution during simple solid-state sintering of a complex 3D powder particle compact. This model, a Potts kinetic Monte Carlo model, is a true mesoscale model that can simulate a large number of particles while resolving microstructural features such as particles, necks, pores and more in detail. Furthermore, it is shown that this model can simulate all the stages of sintering from the initial particle contact to neck growth with open, percolating porosity to closed isolated pores seamlessly. The various kinetic processes that lead to densification and other microstructural changes are shown to be simulated correctly. The model is demonstrated by comparing the microstructural evolution resulting from simulation to experimental results, namely 3D microtomographic images obtained from synchrotron radiation of a Cu-powder compact while it was sintering. For quantitative comparison, we extrapolated a grain structure into the simple microtomographic image that consists of mass distribution only.

Details

ISSN :
09270256
Volume :
48
Database :
OpenAIRE
Journal :
Computational Materials Science
Accession number :
edsair.doi.dedup.....f6528602daaedac3daffdf7d77b53d9e
Full Text :
https://doi.org/10.1016/j.commatsci.2010.01.013