Investigation on Microsegregation of IN718 Alloy During Additive Manufacturing via Integrated Phase-Field and Finite-Element Modeling

被引:84
作者
Wang, X. [1 ]
Liu, P. W. [1 ,2 ]
Ji, Y. [3 ]
Liu, Y. [1 ]
Horstemeyer, M. H. [1 ]
Chen, L. [1 ]
机构
[1] Mississippi State Univ, Dept Mech Engn, Mississippi State, MS 39762 USA
[2] Hunan Univ, State Key Lab Adv Design & Mfg Vehicle Body, Changsha 410082, Hunan, Peoples R China
[3] Penn State Univ, Dept Mat Sci & Engn, University Pk, PA 16802 USA
关键词
Laves phase; micro-segregation; phase-field simulation; solidification microstructure; ELASTOPLASTIC DEFORMATION; MICROSTRUCTURE EVOLUTION; RAPID SOLIDIFICATION; GROWTH; INCONEL-718; SUPERALLOYS; SIMULATION; PATTERNS; KINETICS;
D O I
10.1007/s11665-018-3620-3
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
In this work, we apply a multi-scale model combining finite-element method (FEM) and phase-field model (PFM) to simulate the evolution of solidification microstructures at different locations within a molten pool of an additively manufactured IN718 alloy. Specifically, the FEM is used to calculate the shape of molten pool and the relative thermal gradient G at the macroscale. Then, the calculated thermal information is input into PFM for microstructure simulation. Finally, the morphology of solidification structures and formation of Laves phase at different sites are studied and compared. We found that the solidification site with a large angle between the temperature gradient and the preferred crystalline orientation could build up a high niobium (Nb) concentration in the liquid during solidification but has less possibility of forming continuous long chain morphology of Laves phase particles. This finding provides an understanding of the microstructure evolution inside the molten pool of IN718 alloy during solidification. Further, the finding indicates that the site with a large misorientation angle will have a good hot cracking resistance after solidification.
引用
收藏
页码:657 / 665
页数:9
相关论文
共 50 条
  • [31] Influence of material parameters on 2D-martensitic transformation based on the phase-field finite-element method
    Li Chang
    Gao Jingxiang
    Zhang Dacheng
    Chen Zhengwei
    Han Xing
    METALLURGICAL RESEARCH & TECHNOLOGY, 2019, 116 (06)
  • [32] Phase-field modeling of dendritic growth under forced flow based on adaptive finite element method
    Zhu, Chang-sheng
    Lei, Peng
    Xiao, Rong-zhen
    Feng, Li
    TRANSACTIONS OF NONFERROUS METALS SOCIETY OF CHINA, 2015, 25 (01) : 241 - 248
  • [33] Phase-field modeling of solute trapping in a Al-Sn alloy during rapid solidification
    Yang, Xiong
    Zhang, Lijun
    Du, Yong
    ALUMINIUM ALLOYS 2014 - ICAA14, 2014, 794-796 : 740 - 745
  • [34] DYNAMIC RECRYSTALLIZATION MODEL DURING HOT WORKING BY COUPLING PHASE-FIELD METHOD AND FINITE ELEMENT METHOD
    Takaki, Tomohiro
    COMPUTATIONAL PLASTICITY XI: FUNDAMENTALS AND APPLICATIONS, 2011, : 610 - 617
  • [35] PRISMS-PF: A general framework for phase-field modeling with a matrix-free finite element method
    DeWitt, Stephen
    Rudraraju, Shiva
    Montiel, David
    Andrews, W. Beck
    Thornton, Katsuyo
    NPJ COMPUTATIONAL MATERIALS, 2020, 6 (01)
  • [36] Dendrite formation in rechargeable lithium-metal batteries: Phase-field modeling using open-source finite element library
    Arguello, Marcos E.
    Labanda, Nicolas A.
    Calo, Victor M.
    Gumulya, Monica
    Utikar, Ranjeet
    Derksen, Jos
    JOURNAL OF ENERGY STORAGE, 2022, 53
  • [37] Examination of dendritic growth and microsegregation during solidification of Al-Li binary alloy using the phase-field simulation coupling CALPHAD data
    Chen, Qingqing
    Zhang, Lu
    Tang, Sai
    Liang, Chaoping
    Ma, Yunzhu
    Liu, Wensheng
    CALPHAD-COMPUTER COUPLING OF PHASE DIAGRAMS AND THERMOCHEMISTRY, 2021, 74
  • [38] Moving mesh finite element simulation for phase-field modeling of brittle fracture and convergence of Newton's iteration
    Zhang, Fei
    Huang, Weizhang
    Li, Xianping
    Zhang, Shicheng
    JOURNAL OF COMPUTATIONAL PHYSICS, 2018, 356 : 127 - 149
  • [39] Optimizing solidification dendrites and process parameters for laser powder bed fusion additive manufacturing of GH3536 superalloy by finite volume and phase-field method
    Liu, Dong
    Pei, Jiaqi
    Hou, Hua
    Niu, Xiaofeng
    Zhao, Yuhong
    JOURNAL OF MATERIALS RESEARCH AND TECHNOLOGY-JMR&T, 2023, 27 : 3323 - 3338
  • [40] Phase Field Simulations of Microstructure Evolution in IN718 Using a Surrogate Ni-Fe-Nb Alloy during Laser Powder Bed Fusion
    Radhakrishnan, Balasubramaniam
    Gorti, Sarma B.
    Turner, John A.
    Acharya, Ranadip
    Sharon, John A.
    Staroselsky, Alexander
    El-Wardany, Tahany
    METALS, 2019, 9 (01)