Modeling of binary alloy solidification under conditions representative of Additive Manufacturing

被引:27
作者
Rolchigo, M. R. [1 ]
LeSar, R. [1 ]
机构
[1] Iowa State Univ, Dept Mat Sci & Engn, Ames, IA 50011 USA
基金
美国国家科学基金会;
关键词
Cellular automata; Alloy solidification; Dendritic growth; Non-equilibrium; CELLULAR-AUTOMATON MODEL; DENDRITE GROWTH; LATTICE BOLTZMANN; PHASE-FIELD; DIRECTIONAL SOLIDIFICATION; 3-DIMENSIONAL SIMULATION; MICROSTRUCTURE EVOLUTION; RAPID SOLIDIFICATION; LASER DEPOSITION; BANDED STRUCTURE;
D O I
10.1016/j.commatsci.2018.04.004
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Understanding the interplay among process parameters, microstructure, and presence of defects is critical to optimizing Additive Manufacturing (AM) routes for producing specialty alloy parts with unique geometry, properties, and compositional features. However, since it is not feasible to obtain experimental results for every possible set of AM process, process conditions, and alloy composition, computational modeling is becoming an increasingly important tool for understanding key physical processes, with the hope of developing a framework for AM materials design. One such physical process of interest is the dendritic solidification within grains; we implement a Cellular Automata (CA) model for coupled solute transport and growth of cellular and dendritic beta-Ti alloy colonies under thermal conditions typically encountered in AM processes. Quantitative agreement with analytical models of the undercooling-solidification velocity relationship was achieved, as well as qualitative agreement with trends in primary dendrite arm spacing (PDAS), secondary arm development, and compositional profile with changes in solidification conditions. The roles of solute diffusivity, interfacial energy, and alloying addition are considered as well. Under rapid solidification conditions, extension to include local nonequilibrium for solute allowed for the modeling of solute trapping along dendrite stems as well as qualitative representation of the dendritic to banded morphology transition. To quantitatively reproduce non-equilibrium solidification at the dendritic colony scale and more accurately estimate rapid solidification microstructures, use of multiple grids or more complex CA rules would be in order.
引用
收藏
页码:535 / 545
页数:11
相关论文
共 50 条
  • [31] Molecular dynamics simulations of nanoscale solidification in the context of Ni additive manufacturing
    Bizot, Q.
    Politano, O.
    Turlo, V.
    Baras, F.
    MATERIALIA, 2023, 27
  • [32] Solidification of Cu-Co alloy under rapid cooling conditions
    Zhao Jiuzhou
    Li Haili
    He Jie
    Mang Xianfei
    ACTA METALLURGICA SINICA, 2008, 44 (06) : 693 - 697
  • [33] Modeling of alloy casting solidification
    Guo, Jianzheng
    Samonds, Mark
    JOM, 2011, 63 (07) : 19 - 28
  • [34] Modeling of alloy casting solidification
    Jianzheng Guo
    Mark Samonds
    JOM, 2011, 63 : 19 - 28
  • [35] Numerical Modeling of the Complex Link Between Grain Refinement and Microsegregation in Binary Alloy Solidification
    Daneshifar, M. H.
    Jabbareh, M. A.
    METALLURGICAL AND MATERIALS TRANSACTIONS A-PHYSICAL METALLURGY AND MATERIALS SCIENCE, 2022, 53 (01): : 50 - 62
  • [36] Three-dimensional phase field modeling of columnar to equiaxed transition in directional solidification of Inconel 718 alloy
    Nabavizadeha, Seyed Amin
    Eshraghib, Mohsen
    Felicellia, Sergio D.
    JOURNAL OF CRYSTAL GROWTH, 2020, 549
  • [37] Solidification microstructure formation of an Al-Ce-Sr alloy under conventional and rapid solidification conditions
    Zhang, ZH
    Bian, XF
    Wang, Y
    Zhang, JY
    JOURNAL OF ALLOYS AND COMPOUNDS, 2002, 346 (1-2) : 134 - 141
  • [38] Modeling on the Solidification of 1J51 Fe-Ni-Based Alloy Ingot Under Vacuum Conditions
    Zhang, Lifeng
    Gao, Chen
    Li, Chongwei
    Peng, Jie
    JOM, 2014, 66 (07) : 1175 - 1183
  • [39] Numerical simulation of powder effect on solidification in directed energy deposition additive manufacturing
    Yao, Xin-xin
    Li, Jian-yu
    Wang, Yi-fei
    Gao, Xiang
    Zhang, Zhao
    TRANSACTIONS OF NONFERROUS METALS SOCIETY OF CHINA, 2021, 31 (09) : 2871 - 2884
  • [40] A study on the snowing phenomenon in binary alloy solidification
    Saffie, M. G. M.
    Tan, F. L.
    Tso, C. F.
    APPLIED THERMAL ENGINEERING, 2013, 50 (01) : 562 - 571