Phase-field simulation of dendritic solidification using a full threaded tree with adaptive meshing

Simulation of the microstructure evolution during solidification is greatly beneficial to the control of solidification microstructures. A phase-field method based on the full threaded tree (FTT) for the simulation of casting solidification microstructure was proposed in this paper, and the structur...

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Main Authors: Yin Yajun, Zhou Jianxin, Liao Dunming
Format: Article
Language:English
Published: Foundry Journal Agency 2014-11-01
Series:China Foundry
Subjects:
Online Access:http://foundryworld.com/uploadfile/2014122352311701.pdf
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spelling doaj-b101123c911347949a35bd60832bfd862020-11-24T22:27:42ZengFoundry Journal AgencyChina Foundry1672-64211672-64212014-11-01116493497Phase-field simulation of dendritic solidification using a full threaded tree with adaptive meshingYin Yajun0Zhou Jianxin1Liao Dunming2State Key Laboratory of Materials Processing and Die & Mould Technology, Huazhong University of Science and Technology, Wuhan 430074, ChinaState Key Laboratory of Materials Processing and Die & Mould Technology, Huazhong University of Science and Technology, Wuhan 430074, ChinaState Key Laboratory of Materials Processing and Die & Mould Technology, Huazhong University of Science and Technology, Wuhan 430074, ChinaSimulation of the microstructure evolution during solidification is greatly beneficial to the control of solidification microstructures. A phase-field method based on the full threaded tree (FTT) for the simulation of casting solidification microstructure was proposed in this paper, and the structure of the full threaded tree and the mesh refinement method was discussed. During dendritic growth in solidification, the mesh for simulation is adaptively refined at the liquid-solid interface, and coarsened in other areas. The numerical results of a three-dimension dendrite growth indicate that the phase-field method based on FTT is suitable for microstructure simulation. Most importantly, the FTT method can increase the spatial and temporal resolutions beyond the limits imposed by the available hardware compared with the conventional uniform mesh. At the simulation time of 0.03 s in this study, the computer memory used for computation is no more than 10 MB with the FTT method, while it is about 50 MB with the uniform mesh method. In addition, the proposed FTT method is more efficient in computation time when compared with the uniform mesh method. It would take about 20 h for the uniform mesh method, while only 2 h for the FTT method for computation when the solidification time is 0.17 s in this study.http://foundryworld.com/uploadfile/2014122352311701.pdfsolidification; phase-field model; full threaded tree; adaptive meshing
collection DOAJ
language English
format Article
sources DOAJ
author Yin Yajun
Zhou Jianxin
Liao Dunming
spellingShingle Yin Yajun
Zhou Jianxin
Liao Dunming
Phase-field simulation of dendritic solidification using a full threaded tree with adaptive meshing
China Foundry
solidification; phase-field model; full threaded tree; adaptive meshing
author_facet Yin Yajun
Zhou Jianxin
Liao Dunming
author_sort Yin Yajun
title Phase-field simulation of dendritic solidification using a full threaded tree with adaptive meshing
title_short Phase-field simulation of dendritic solidification using a full threaded tree with adaptive meshing
title_full Phase-field simulation of dendritic solidification using a full threaded tree with adaptive meshing
title_fullStr Phase-field simulation of dendritic solidification using a full threaded tree with adaptive meshing
title_full_unstemmed Phase-field simulation of dendritic solidification using a full threaded tree with adaptive meshing
title_sort phase-field simulation of dendritic solidification using a full threaded tree with adaptive meshing
publisher Foundry Journal Agency
series China Foundry
issn 1672-6421
1672-6421
publishDate 2014-11-01
description Simulation of the microstructure evolution during solidification is greatly beneficial to the control of solidification microstructures. A phase-field method based on the full threaded tree (FTT) for the simulation of casting solidification microstructure was proposed in this paper, and the structure of the full threaded tree and the mesh refinement method was discussed. During dendritic growth in solidification, the mesh for simulation is adaptively refined at the liquid-solid interface, and coarsened in other areas. The numerical results of a three-dimension dendrite growth indicate that the phase-field method based on FTT is suitable for microstructure simulation. Most importantly, the FTT method can increase the spatial and temporal resolutions beyond the limits imposed by the available hardware compared with the conventional uniform mesh. At the simulation time of 0.03 s in this study, the computer memory used for computation is no more than 10 MB with the FTT method, while it is about 50 MB with the uniform mesh method. In addition, the proposed FTT method is more efficient in computation time when compared with the uniform mesh method. It would take about 20 h for the uniform mesh method, while only 2 h for the FTT method for computation when the solidification time is 0.17 s in this study.
topic solidification; phase-field model; full threaded tree; adaptive meshing
url http://foundryworld.com/uploadfile/2014122352311701.pdf
work_keys_str_mv AT yinyajun phasefieldsimulationofdendriticsolidificationusingafullthreadedtreewithadaptivemeshing
AT zhoujianxin phasefieldsimulationofdendriticsolidificationusingafullthreadedtreewithadaptivemeshing
AT liaodunming phasefieldsimulationofdendriticsolidificationusingafullthreadedtreewithadaptivemeshing
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