Modeling of Microstructure and Microsegregation in Solidification of Multi-Component Alloys

被引:0
|
作者
M.-F. Zhu
W. Cao
S.-L. Chen
C.-P. Hong
Y. A. Chang
机构
[1] Southeast University,School of Materials Science and Engineering
[2] University of Wisconsin-Madison,Department of Materials Science and Engineering
[3] CompuTherm LLC,Center for Computer
[4] Yonsei University,Aided Materials Processing (CAMP), Department of Metallurgical Engineering
关键词
cellular automaton; microsegregation; microstructure; modeling; multi-component alloys; PanEngine; solidification;
D O I
暂无
中图分类号
学科分类号
摘要
Driven by industrial demand, extensive efforts have been made to investigate microstructure evolution and microsegregation development during solidification of multicomponent alloys. This paper briefly reviews the recent progress in modeling of microstructures and microsegregation in solidification of multicomponent alloys using various models including micromodel, phase field, front tracking, and cellular automaton approaches. A two-dimensional modified cellular automaton (MCA) model coupled with phase diagram software PanEngine is presented for the prediction of microstructures and microsegregation in the solidification of ternary alloys. The model adopts MCA technique to simulate dendritic growth. The thermodynamic data needed for determining the dynamics of dendritic growth are calculated with PanEngine. After validating the model by comparing the simulated values with the prediction of the Scheil model for solute profiles in the primary dendrites as a function of solid fraction, the model was applied to simulate the microstructure and microsegregation in the solidification of Al-rich ternary alloys. The simulation results demonstrate the capabilities of the present model not only to simulate realistic dendrite morphologies, but also to predict quantitatively the microsegregation profiles in the solidification of multi-component alloys.
引用
收藏
页码:130 / 138
页数:8
相关论文
共 50 条
  • [1] Modeling of microstructure and microsegregation in solidification of multi-component alloys
    Zhu, M.-F.
    Cao, W.
    Chen, S.-L.
    Hong, C.-P.
    Chang, Y. A.
    JOURNAL OF PHASE EQUILIBRIA AND DIFFUSION, 2007, 28 (01) : 130 - 138
  • [2] A cellular automaton technique for the modeling of solidification microstructure in multi-component alloys
    Li, Daming
    Li, Ruo
    Zhang, Pingwen
    FIRST INTERNATIONAL MULTI-SYMPOSIUMS ON COMPUTER AND COMPUTATIONAL SCIENCES (IMSCCS 2006), PROCEEDINGS, VOL 2, 2006, : 800 - +
  • [3] Analysis of the solidification microstructure of multi-component γ-TiAl alloys
    Oehring, M.
    Kuestner, V.
    Appel, F.
    Lorenz, U.
    THERMEC 2006, PTS 1-5, 2007, 539-543 : 1475 - +
  • [4] Modeling rapid solidification of multi-component concentrated alloys
    Wang, Kang
    Wang, Haifeng
    Liu, Feng
    Zhai, Haimin
    ACTA MATERIALIA, 2013, 61 (04) : 1359 - 1372
  • [5] Instabilities in solidification of multi-component alloys
    Altieri, Anthony L.
    Davis, Stephen H.
    JOURNAL OF CRYSTAL GROWTH, 2017, 467 : 162 - 171
  • [6] Instabilities in rapid solidification of multi-component alloys
    Altieri, Anthony L.
    Davis, Stephen H.
    JOURNAL OF CRYSTAL GROWTH, 2017, 476 : 78 - 89
  • [7] A 2-dimensional microsegregation model coupled to a thermodynamic database for the prediction of solidification microstructures in multi-component alloys
    Jacot, A
    Du, Q
    Rappaz, M
    MODELING OF CASTING, WELDING AND ADVANCED SOLIDIFICATION PROCESSES-X, 2003, : 229 - 236
  • [8] Modeling of solidification and microsegregation in multicomponent alloys
    Banerjee, DK
    MATERIALS DESIGN APPROACHES AND EXPERIENCES, 2001, : 75 - 83
  • [9] The solute redistribution during solidification of multi-component alloys
    He, Zhi
    Zhou, Haobin
    Li, Yanming
    Li, Lanyun
    ADVANCED MATERIALS AND PROCESSES, PTS 1-3, 2011, 311-313 : 752 - 757
  • [10] Influence of Cooling Rate on Solidification Structures and Microsegregation of Multi-component White Cast Iron
    Yamamoto, Kaoru
    Sasaguri, Nobuya
    Matsubara, Yasuhiro
    TETSU TO HAGANE-JOURNAL OF THE IRON AND STEEL INSTITUTE OF JAPAN, 2013, 99 (02): : 87 - 93