English

Linking Phase-Field and Atomistic Simulations to Model Dendritic Solidification in Highly Undercooled Melts

Materials Science 2007-05-23 v1

Abstract

Even though our theoretical understanding of dendritic solidification is relatively well developed, our current ability to model this process quantitatively remains extremely limited. This is due to the fact that the morphological development of dendrites depends sensitively on the degree of anisotropy of capillary and/or kinetic properties of the solid-liquid interface, which is not precisely known for materials of metallurgical interest. Here we simulate the crystallization of highly undercooled nickel melts using a computationally efficient phase-field model together with anisotropic properties recently predicted by molecular dynamics simulations. The results are compared to experimental data and to the predictions of a linearized solvability theory that includes both capillary and kinetic effects at the interface.

Keywords

Cite

@article{arxiv.cond-mat/0112163,
  title  = {Linking Phase-Field and Atomistic Simulations to Model Dendritic Solidification in Highly Undercooled Melts},
  author = {Jean Bragard and Alain Karma and Youngyih H. Lee and Mathis Plapp},
  journal= {arXiv preprint arXiv:cond-mat/0112163},
  year   = {2007}
}

Comments

33 pages + 10 figures, RevTeX preprint, submitted to Interface Science

R2 v1 2026-07-22T10:31:44.879Z