Columnar dendritic solidification of TiAl under diffusive and hypergravity conditions investigated by phase-field simulations

被引:20
|
作者
Viardin, A. [1 ]
Zollinger, J. [2 ]
Sturz, L. [1 ]
Apel, M. [1 ]
Eiken, J. [1 ]
Berger, R. [1 ]
Hecht, U. [1 ]
机构
[1] ACCESS eV, Intzestr 5, D-52072 Aachen, Germany
[2] Univ Lorraine, Inst Jean Lamour, CNRS, ARTEM Campus,Allee Andre Guinier, F-54000 Nancy, France
关键词
Phase-field; Fluid flow; Solidification; Hypergravity; Microstructure; DIRECTIONAL SOLIDIFICATION; FORCED-FLOW; GROWTH; CONVECTION; ALLOYS; IMPLEMENTATION; TRANSITION; GRAVITY;
D O I
10.1016/j.commatsci.2019.109358
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Based on 2D phase-field simulations including fluid flow driven by natural convection, columnar dendritic growth of the beta-solidifying Ti-48 at.%Al alloy is characterised for different gravity levels ranging from 0 to +/- 15 g. Depending on the direction of the gravity g with respect to the growth direction, different flow regimes emerge which show stable or unstable dendritic growth dynamics. When gravity and growth directions are parallel, the dendrite tips experience downward melt flow and individual dendrites grow in a stable manner with a rather small modification of the operating state. When gravity and growth directions are antiparallel, the impact on the operating state is larger. Eventually, at higher gravity levels the upward melt flow around the dendrite tips "destabilises" the dendritic morphology resulting in tip splitting, branching and local changes in the apparent dendrite growth direction which is an alternative mechanism for the adjustment of the primary dendrite arm spacing in addition to tertiary arm formation.
引用
收藏
页数:10
相关论文
共 50 条
  • [21] A Phase-Field Model for the Diffusive Melting of Isolated Dendritic Fragments
    Andrew M. Mullis
    [J]. Metallurgical and Materials Transactions A, 2014, 45 : 3097 - 3102
  • [22] A Phase-Field Model for the Diffusive Melting of Isolated Dendritic Fragments
    Mullis, Andrew M.
    [J]. METALLURGICAL AND MATERIALS TRANSACTIONS A-PHYSICAL METALLURGY AND MATERIALS SCIENCE, 2014, 45A (07): : 3097 - 3102
  • [23] Phase Field Modelling of Dendritic Solidification Under Additive Manufacturing Conditions
    Tang, Chao
    Du, Hejun
    [J]. JOM, 2022, 74 (08) : 2996 - 3009
  • [24] Phase-field simulation of the columnar-to-equiaxed transition in alloy solidification
    Badillo, Arnoldo
    Beckermann, Christoph
    [J]. ACTA MATERIALIA, 2006, 54 (08) : 2015 - 2026
  • [25] Phase Field Modelling of Dendritic Solidification Under Additive Manufacturing Conditions
    Chao Tang
    Hejun Du
    [J]. JOM, 2022, 74 : 2996 - 3009
  • [26] Growth competition during columnar solidification of seaweed microstructuresInsights from 3-D phase-field simulations
    Kumar Ankit
    Martin E. Glicksman
    [J]. The European Physical Journal E, 2020, 43
  • [27] Phase-field simulations and geometrical characterization of cellular solidification fronts
    Ma, Yiwen
    Plapp, Mathis
    [J]. JOURNAL OF CRYSTAL GROWTH, 2014, 385 : 140 - 147
  • [28] Three-dimensional phase-field simulations of directional solidification
    Plapp, Mathis
    [J]. JOURNAL OF CRYSTAL GROWTH, 2007, 303 (01) : 49 - 57
  • [29] Three-dimensional phase-field simulations of directional solidification
    Dejmek, M
    Folch, R
    Parisi, A
    Plapp, M
    [J]. SOLIDIFICATION PROCESSES AND MICROSTRUCTURES: A SYMPOSIUM IN HONOR OF WILFRIED KURZ, 2004, : 387 - 392
  • [30] Phase-field simulations of nuclei and early stage solidification microstructures
    Nestler, B.
    Selzer, M.
    Danilov, D.
    [J]. JOURNAL OF PHYSICS-CONDENSED MATTER, 2009, 21 (46)