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Improved finite difference method for phase-field modelling of dendritic solidification
ID
Dobravec, Tadej
(
Author
),
ID
Mavrič, Boštjan
(
Author
),
ID
Šarler, Božidar
(
Author
)
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MD5: 0044B23315949C1AAEC5C2AF3871ADE9
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https://www.sciencedirect.com/science/article/pii/S0021999126000665
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Abstract
This paper introduces a novel numerical approach for solving phase-field models of dendritic solidification in 3-D. Traditional approaches utilising finite difference or finite element methods often introduce discretisation-induced anisotropy in the phase-field modelling of dendrite growth, particularly noticeable at low surface energy anisotropy strengths, necessitating adjustments to phase-field model parameters. Our study demonstrates an effective reduction of discretisation-induced anisotropy without altering phase-field model parameters, achieved by employing the generalised finite difference method (GFDM) with sufficiently large local support domains (stencils). We show that the GFDM can employ larger node spacings than the finite difference method and, therefore, larger time steps in the explicit time marching schemes, mitigating the increased computational cost due to the requirement for larger stencils. The GFDM is based on the polynomial weighted least squares approximation in the local support domains. Although the GFDM is usually applied to scattered node distributions, we apply the standard uniform regular distribution of nodes; hence, the insights of the current study can be straightforwardly applied to any phase-field modelling utilising the finite difference method by simply increasing the stencil size and updating the finite difference coefficients. The efficacy of the novel numerical procedure is assessed through simulations of dendrite growth in a supercooled pure melt, varying the strength of surface energy anisotropy. Additionally, we test how the nonlinear preconditioning of the phase-field model enhances computational efficiency. We mitigate the high computational cost of phase-field simulations by employing an octree-based space-time adaptive algorithm.
Language:
English
Keywords:
dendritic solidification
,
phase-field model
,
GFDM
,
generalized finite difference method
,
space-time adaptivity
Work type:
Article
Typology:
1.01 - Original Scientific Article
Organization:
FS - Faculty of Mechanical Engineering
Publication status:
Published
Publication version:
Version of Record
Year:
2026
Number of pages:
21 str.
Numbering:
Vol. 553, art. 114716
PID:
20.500.12556/RUL-181740
UDC:
532:519.876.5
ISSN on article:
0021-9991
DOI:
10.1016/j.jcp.2026.114716
COBISS.SI-ID:
267350019
Publication date in RUL:
15.04.2026
Views:
69
Downloads:
17
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Record is a part of a journal
Title:
Journal of computational physics
Shortened title:
J. comput. phys.
Publisher:
Elsevier
ISSN:
0021-9991
COBISS.SI-ID:
989199
Licences
License:
CC BY 4.0, Creative Commons Attribution 4.0 International
Link:
http://creativecommons.org/licenses/by/4.0/
Description:
This is the standard Creative Commons license that gives others maximum freedom to do what they want with the work as long as they credit the author.
Secondary language
Language:
Slovenian
Keywords:
dendritsko strjevanje
,
model faznega polja
,
GFDM
,
posplošena metoda končnih razlik
,
krajevno-časovna prilagodljivost
Projects
Funder:
ARIS - Slovenian Research and Innovation Agency
Project number:
Z2-4479
Name:
Napredno brezmrežno modeliranje in simulacija razvoja mikrostrukture za vrhunske kovinske izdelke
Funder:
ARIS - Slovenian Research and Innovation Agency
Project number:
P2-0162
Name:
Večfazni sistemi
Funder:
ARIS - Slovenian Research and Innovation Agency
Project number:
J2-4477
Name:
RAZVOJ INOVATIVNIH BREZMREŽNIH METOD ZA VEČFIZIKALNE IN VEČNIVOJSKE SIMULACIJE VRHUNSKIH TEHNOLOGIJ
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