Multi-scale coupling simulation in directional solidification of superalloy based on cellular automaton-finite difference method

Casting microstructure evolution is difficult to describe quantitatively by only a separate simulation of dendrite scale or grain scale, and the numerical simulation of these two scales is difficult to render compatible. A three-dimensional cellular automaton model couplling both dendritic scale and...

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Main Authors: Zhao Guo, Jian-xin Zhou, Ya-jun Yin
Format: Article
Language:English
Published: Foundry Journal Agency 2017-11-01
Series:China Foundry
Subjects:
Online Access:http://ff.foundryworld.com/uploadfile/2017110133875577.pdf
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spelling doaj-c20e57ea00024d4c9cabd9fc4b0358482020-11-24T23:58:56ZengFoundry Journal AgencyChina Foundry1672-64211672-64212017-11-0114539840410.1007/s41230-017-7146-3Multi-scale coupling simulation in directional solidification of superalloy based on cellular automaton-finite difference methodZhao Guo0Jian-xin Zhou1Ya-jun Yin2State 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, ChinaCasting microstructure evolution is difficult to describe quantitatively by only a separate simulation of dendrite scale or grain scale, and the numerical simulation of these two scales is difficult to render compatible. A three-dimensional cellular automaton model couplling both dendritic scale and grain scale is developed to simulate the microstructure evolution of the nickel-based single crystal superalloy DD406. Besides, a macro–mesoscopic/microscopic coupling solution algorithm is proposed to improve computational efficiency. The simulation results of dendrite growth and grain growth of the alloy are obtained and compared with the results given in previous reports. The results show that the primary dendritic arm spacing and secondary dendritic arm spacing of the dendritic growth are consistent with the theoretical and experimental results. The mesoscopic grain simulation can be used to obtain results similar to those of microscopic dendrites simulation. It is indicated that the developed model is feasible and effective.http://ff.foundryworld.com/uploadfile/2017110133875577.pdfmulti-scale couplingdendritic growthgrain growthdirectional solidificationcellular automatanumerical simulation
collection DOAJ
language English
format Article
sources DOAJ
author Zhao Guo
Jian-xin Zhou
Ya-jun Yin
spellingShingle Zhao Guo
Jian-xin Zhou
Ya-jun Yin
Multi-scale coupling simulation in directional solidification of superalloy based on cellular automaton-finite difference method
China Foundry
multi-scale coupling
dendritic growth
grain growth
directional solidification
cellular automata
numerical simulation
author_facet Zhao Guo
Jian-xin Zhou
Ya-jun Yin
author_sort Zhao Guo
title Multi-scale coupling simulation in directional solidification of superalloy based on cellular automaton-finite difference method
title_short Multi-scale coupling simulation in directional solidification of superalloy based on cellular automaton-finite difference method
title_full Multi-scale coupling simulation in directional solidification of superalloy based on cellular automaton-finite difference method
title_fullStr Multi-scale coupling simulation in directional solidification of superalloy based on cellular automaton-finite difference method
title_full_unstemmed Multi-scale coupling simulation in directional solidification of superalloy based on cellular automaton-finite difference method
title_sort multi-scale coupling simulation in directional solidification of superalloy based on cellular automaton-finite difference method
publisher Foundry Journal Agency
series China Foundry
issn 1672-6421
1672-6421
publishDate 2017-11-01
description Casting microstructure evolution is difficult to describe quantitatively by only a separate simulation of dendrite scale or grain scale, and the numerical simulation of these two scales is difficult to render compatible. A three-dimensional cellular automaton model couplling both dendritic scale and grain scale is developed to simulate the microstructure evolution of the nickel-based single crystal superalloy DD406. Besides, a macro–mesoscopic/microscopic coupling solution algorithm is proposed to improve computational efficiency. The simulation results of dendrite growth and grain growth of the alloy are obtained and compared with the results given in previous reports. The results show that the primary dendritic arm spacing and secondary dendritic arm spacing of the dendritic growth are consistent with the theoretical and experimental results. The mesoscopic grain simulation can be used to obtain results similar to those of microscopic dendrites simulation. It is indicated that the developed model is feasible and effective.
topic multi-scale coupling
dendritic growth
grain growth
directional solidification
cellular automata
numerical simulation
url http://ff.foundryworld.com/uploadfile/2017110133875577.pdf
work_keys_str_mv AT zhaoguo multiscalecouplingsimulationindirectionalsolidificationofsuperalloybasedoncellularautomatonfinitedifferencemethod
AT jianxinzhou multiscalecouplingsimulationindirectionalsolidificationofsuperalloybasedoncellularautomatonfinitedifferencemethod
AT yajunyin multiscalecouplingsimulationindirectionalsolidificationofsuperalloybasedoncellularautomatonfinitedifferencemethod
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