Numerical Simulation of Three-Dimensional Dendrite Movement Based on the CA–LBM Method

At present, the calculation of three-dimensional (3D) dendrite motion using the cellular automata (CA) method is still in its infancy. In this paper, a 3D dendrite motion model is constructed. The heat, mass, and momentum transfer process in the solidification process of the alloy melt are calculate...

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Main Authors: Qi Wang, Yingming Wang, Shijie Zhang, Binxu Guo, Chenyu Li, Ri Li
Format: Article
Language:English
Published: MDPI AG 2021-09-01
Series:Crystals
Subjects:
Online Access:https://www.mdpi.com/2073-4352/11/9/1056
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spelling doaj-5dc2cfba59d249e598b359f5f4dbb1ad2021-09-25T23:57:31ZengMDPI AGCrystals2073-43522021-09-01111056105610.3390/cryst11091056Numerical Simulation of Three-Dimensional Dendrite Movement Based on the CA–LBM MethodQi Wang0Yingming Wang1Shijie Zhang2Binxu Guo3Chenyu Li4Ri Li5Simulation Laboratory, School of Materials Science and Engineering, Hebei University of Technology, Tianjin 300132, ChinaSimulation Laboratory, School of Materials Science and Engineering, Hebei University of Technology, Tianjin 300132, ChinaSimulation Laboratory, School of Materials Science and Engineering, Hebei University of Technology, Tianjin 300132, ChinaSimulation Laboratory, School of Materials Science and Engineering, Hebei University of Technology, Tianjin 300132, ChinaSimulation Laboratory, School of Materials Science and Engineering, Hebei University of Technology, Tianjin 300132, ChinaSimulation Laboratory, School of Materials Science and Engineering, Hebei University of Technology, Tianjin 300132, ChinaAt present, the calculation of three-dimensional (3D) dendrite motion using the cellular automata (CA) method is still in its infancy. In this paper, a 3D dendrite motion model is constructed. The heat, mass, and momentum transfer process in the solidification process of the alloy melt are calculated using a 3D Lattice–Boltzmann method (LBM). The growth process for the alloy microstructure is calculated using the CA method. The interactions between dendrites and the melt are assessed using the Ladd method. The solid–liquid boundary of the solute field in the movement process is assessed using the solute extrapolation method. The translational velocity of the equiaxed crystals in motion is calculated using the classical mechanical law. The rationality of the model is verified and the movement of single and multiple 3D equiaxed crystals is simulated. Additionally, the difference between 3D dendrite movement and two-dimensional (2D) dendrite movement is analyzed. The results demonstrate that the growth of moving dendrites is asymmetric. The growth velocity and falling velocity of the dendrite in the 3D model are faster than that in 2D model, while the simulation result is more realistic than that of the 2D model. When multiple dendrites move, the movement direction of the dendrites will change due to the merging of flow fields and other factors.https://www.mdpi.com/2073-4352/11/9/1056dendrite motionLadd methodCA–LBM modelgrowth modelnumerical simulation
collection DOAJ
language English
format Article
sources DOAJ
author Qi Wang
Yingming Wang
Shijie Zhang
Binxu Guo
Chenyu Li
Ri Li
spellingShingle Qi Wang
Yingming Wang
Shijie Zhang
Binxu Guo
Chenyu Li
Ri Li
Numerical Simulation of Three-Dimensional Dendrite Movement Based on the CA–LBM Method
Crystals
dendrite motion
Ladd method
CA–LBM model
growth model
numerical simulation
author_facet Qi Wang
Yingming Wang
Shijie Zhang
Binxu Guo
Chenyu Li
Ri Li
author_sort Qi Wang
title Numerical Simulation of Three-Dimensional Dendrite Movement Based on the CA–LBM Method
title_short Numerical Simulation of Three-Dimensional Dendrite Movement Based on the CA–LBM Method
title_full Numerical Simulation of Three-Dimensional Dendrite Movement Based on the CA–LBM Method
title_fullStr Numerical Simulation of Three-Dimensional Dendrite Movement Based on the CA–LBM Method
title_full_unstemmed Numerical Simulation of Three-Dimensional Dendrite Movement Based on the CA–LBM Method
title_sort numerical simulation of three-dimensional dendrite movement based on the ca–lbm method
publisher MDPI AG
series Crystals
issn 2073-4352
publishDate 2021-09-01
description At present, the calculation of three-dimensional (3D) dendrite motion using the cellular automata (CA) method is still in its infancy. In this paper, a 3D dendrite motion model is constructed. The heat, mass, and momentum transfer process in the solidification process of the alloy melt are calculated using a 3D Lattice–Boltzmann method (LBM). The growth process for the alloy microstructure is calculated using the CA method. The interactions between dendrites and the melt are assessed using the Ladd method. The solid–liquid boundary of the solute field in the movement process is assessed using the solute extrapolation method. The translational velocity of the equiaxed crystals in motion is calculated using the classical mechanical law. The rationality of the model is verified and the movement of single and multiple 3D equiaxed crystals is simulated. Additionally, the difference between 3D dendrite movement and two-dimensional (2D) dendrite movement is analyzed. The results demonstrate that the growth of moving dendrites is asymmetric. The growth velocity and falling velocity of the dendrite in the 3D model are faster than that in 2D model, while the simulation result is more realistic than that of the 2D model. When multiple dendrites move, the movement direction of the dendrites will change due to the merging of flow fields and other factors.
topic dendrite motion
Ladd method
CA–LBM model
growth model
numerical simulation
url https://www.mdpi.com/2073-4352/11/9/1056
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AT yingmingwang numericalsimulationofthreedimensionaldendritemovementbasedonthecalbmmethod
AT shijiezhang numericalsimulationofthreedimensionaldendritemovementbasedonthecalbmmethod
AT binxuguo numericalsimulationofthreedimensionaldendritemovementbasedonthecalbmmethod
AT chenyuli numericalsimulationofthreedimensionaldendritemovementbasedonthecalbmmethod
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