Thermodynamically consistent microstructure prediction of additively manufactured materials

被引:0
作者
Jacob Smith
Wei Xiong
Jian Cao
Wing Kam Liu
机构
[1] Northwestern University,Department of Mechanical Engineering
[2] Northwestern University,Department of Material Science and Engineering
来源
Computational Mechanics | 2016年 / 57卷
关键词
Additive manufacturing; Non-equilibrium solution; Finite element analysis; CALPHAD; Alloys;
D O I
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中图分类号
学科分类号
摘要
Additive manufacturing has risen to the top of research interest in advanced manufacturing in recent years due to process flexibility, achievability of geometric complexity, and the ability to locally modify and optimize materials. The present work is focused on providing an approach for incorporating thermodynamically consistent properties and microstructure evolution for non-equilibrium supercooling, as observed in additive manufacturing processes, into finite element analysis. There are two primary benefits of this work: (1) the resulting prediction is based on the material composition and (2) the nonlinear behavior caused by the thermodynamic properties of the material during the non-equilibrium solution is accounted for with extremely high resolution. The predicted temperature response and microstructure evolution for additively manufactured stainless steel 316L using standard handbook-obtained thermodynamic properties are compared with the thermodynamic properties calculated using the CALculation of PHAse Diagrams (CALPHAD) approach. Data transfer from the CALPHAD approach to finite element analysis is discussed.
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页码:359 / 370
页数:11
相关论文
共 46 条
[1]  
Andersson JO(2002)Thermo-Calc & DICTRA, computational tools for materials science Calphad 26 273-312
[2]  
Helander T(2000)Dictra, a tool for simulation of diffusional transformations in alloys J Ph Equilib 21 269-280
[3]  
Höglund L(2002)Computation of partial equilibrium solidification with complete interstitial and negligible substitutional solute back diffusion Mater Trans 43 551-559
[4]  
Shi P(1913)The quantitative effect of rapid cooling upon the constitution of binary alloys J Inst Met 9 120-157
[5]  
Sundman B(2009)Model of radiation and heat transfer in laser-powder interaction zone at selective laser melting J Heat Transf 131 072101-176
[6]  
Borgenstam A(2001)The compound energy formalism J Alloys Compd 320 161-968
[7]  
Höglund L(2015)Overview of modelling and simulation of metal powder bed fusion process at lawrence livermore national laboratory Mater Sci Technol 31 957-1637
[8]  
Ågren J(2008)Coupling of the phase-field and CALPHAD methods for predicting multicomponent, solid-state phase transformations Philos Mag 88 1615-930
[9]  
Engström A(2015)Spatial variation of melt pool geometry, peak temperature and solidification parameters during laser assisted additive manufacturing process Mater Sci Technol 31 924-72
[10]  
Chen Q(1942)Bemerkungen zur schichtkristallbildung Zeitschrift fuer Metallkunde 34 70-326