材料科学技术(英文版)2022,Issue(29) :26-40.

Hybrid Cellular Automaton-Parabolic Thick Needle model for equiaxed dendritic solidification

Romain Fleurisson Oriane Senninger Gildas Guillemot Charles-André Gandin
材料科学技术(英文版)2022,Issue(29) :26-40.

Hybrid Cellular Automaton-Parabolic Thick Needle model for equiaxed dendritic solidification

Romain Fleurisson 1Oriane Senninger 1Gildas Guillemot 1Charles-André Gandin1
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作者信息

  • 1. MINES ParisTech,PSL Research University,CEMEF UMR CNRS 7635,CS10207,06904 Sophia Antipolis,France
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Abstract

A hybrid Cellular Automaton(CA)-Parabolic Thick Needle(PTN)model is developed for the simulation of an equiaxed dendritic grain.It is implemented by solving conservation equations with the Finite Element(FE)method at two scales.At the scale of the microstructure,dendritic branches are approximated by a network of PTN.The solute field is computed in the liquid using a FE mesh with minimum size smaller than the diffusion length ahead of the dendrite tips,giving access to a detailed description of each den-drite tip growth velocity as well as solutal interactions between branches.At the simulation domain scale,volume averaged heat and solute transfers are solved on a coarser FE mesh.The average volumetric frac-tion of phases is deduced from a field giving the fraction of dendritic microstructure together with a microsegregation model.Because the PTN themselves grow on CA cells,the dendrite tip growth velocity is transferred to the vertices of the polygon associated to the CA growth shape.Similarly,the field giving the fraction of dendritic microstructure is deduced from the fraction of CA cells part of the mushy zone,which include cells containing PTN network.Advantages of the new multiple scale CAPTN model include solutal interaction between dendrite branches together with long range transfer of heat and solute mass,together with the role of latent heat release on equiaxed solidification.

Key words

Solidification/Dendrite growth law/Multiscale/Finite element method

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基金项目

出版年

2022
材料科学技术(英文版)
中国金属学会 中国材料研究学会 中国科学院金属研究所

材料科学技术(英文版)

CSTPCDCSCDSCI
影响因子:0.657
ISSN:1005-0302
参考文献量44
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