Please use this identifier to cite or link to this item: http://elar.urfu.ru/handle/10995/118325
Title: Mathematical modeling of bulk and directional crystallization with the moving phase transition layer
Authors: Toropova, L. V.
Aseev, D. L.
Osipov, S. I.
Ivanov, A. A.
Issue Date: 2022
Publisher: John Wiley and Sons Ltd
Citation: Mathematical modeling of bulk and directional crystallization with the moving phase transition layer / L. V. Toropova, D. L. Aseev, S. I. Osipov et al. // Mathematical Methods in the Applied Sciences. — 2022. — Vol. 45. — Iss. 13. — P. 8011-8021.
Abstract: This paper is devoted to the mathematical modeling of a combined effect of directional and bulk crystallization in a phase transition layer with allowance for nucleation and evolution of newly born particles. We consider two models with and without fluctuations in crystal growth velocities, which are analytically solved using the saddle-point technique. The particle-size distribution function, solid-phase fraction in a supercooled two-phase layer, its thickness and permeability, solidification velocity, and desupercooling kinetics are defined. This solution enables us to characterize the mushy layer composition. We show that the region adjacent to the liquid phase is almost free of crystals and has a constant temperature gradient. Crystals undergo intense growth leading to fast mushy layer desupercooling in the middle of a two-phase region. The mushy region adjacent to the solid material is filled with the growing solid-phase structures and is almost desupercooled. © 2021 The Authors. Mathematical Methods in the Applied Sciences published by John Wiley & Sons, Ltd.
Keywords: CRYSTAL GROWTH
HEAT AND MASS TRANSFER
MUSHY LAYER
NUCLEATION
PHASE TRANSITIONS
CRYSTAL GROWTH
CRYSTALLIZATION
DISTRIBUTION FUNCTIONS
MASS TRANSFER
NUCLEATION
PARTICLE SIZE ANALYSIS
APPLIED SCIENCE
BULK CRYSTALLIZATION
COMBINED EFFECT
CRYSTAL GROWTH VELOCITY
DIRECTIONAL CRYSTALLIZATION
HEAT AND MASS TRANSFER
MATHEMATICAL METHOD
MUSHY LAYER
NUCLEATION AND EVOLUTIONS
TRANSITION LAYERS
PARTICLE SIZE
URI: http://elar.urfu.ru/handle/10995/118325
Access: info:eu-repo/semantics/openAccess
SCOPUS ID: 85116869823
WOS ID: 000706864100001
PURE ID: 30718434
ISSN: 1704214
DOI: 10.1002/mma.7864
Sponsorship: Russian Science Foundation, RSF: 21-79-10012
The authors gratefully acknowledge financial support from the Russian Science Foundation (project no. 21-79-10012). Open Access funding enabled and organized by Projekt DEAL.
RSCF project card: 21-79-10012
Appears in Collections:Научные публикации ученых УрФУ, проиндексированные в SCOPUS и WoS CC

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