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Scaling laws for two-dimensional dendritic crystal growth in a narrow channel

Younggil Song1,2, Damien Tourret3, and Alain Karma1,*

  • 1Department of Physics and Center for Interdisciplinary Research on Complex Systems, Northeastern University, Boston, Massachusetts 02115, USA
  • 2Materials Science Division, Lawrence Livermore National Laboratory, Livermore, California 94550, USA
  • 3IMDEA Materials Institute, Getafe, 28906 Madrid, Spain

  • *Corresponding author: a.karma@northeastern.edu

Phys. Rev. E 107, L052801 – Published 12 May, 2023

DOI: https://doi.org/10.1103/PhysRevE.107.L052801

Abstract

We investigate analytically and computationally the dynamics of two-dimensional needle crystal growth from the melt in a narrow channel. Our analytical theory predicts that, in the low supersaturation limit, the growth velocity V decreases in time t as a power law V∼t−2/3, which we validate by phase-field and dendritic-needle-network simulations. Simulations further reveal that, above a critical channel width Λ≈5lD, where lD is the diffusion length, needle crystals grow with a constant V<Vs, where Vs is the free-growth needle crystal velocity, and approaches Vs in the limit Λ≫lD.

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