For the process of laser cladding of multicomponent alloy, the model for heat and mass transfer of three-dimensional pool and solidification structure evolution were established based on the finite element method and cellular automata technology. The coupling of model for three-dimensional molten pool and model for multi-element alloy solidification structure evolution was realized by self-developed macro-micro coupling interface program. The heat and mass transfer and solidification structure evolution of IN718 laser cladding process were simulated. The effects of initial grain size, heterogeneous nucleation and scanning path of multilayer cladding on the solidification structure and morphology of cladding layer were investigated, and the simulation results were verified by experiments. The results showed that the simulation results were in good agreement with the actual physical process, and the developed coupling model truly reflected the laser cladding process of multicomponent alloys.
QI Haibo
,
ZHANG Yunhao
,
FENG Xiaofei
,
HAN Rihong
,
WU Dong
. Simulation of solidification microstructure evolution in laser addition manufacturing of multicomponent alloy[J]. Transactions of The China Welding Institution, 2020
, 41(5)
: 71
-77
.
DOI: 10.12073/j.hjxb.20190823001
[1] 黄安国, 余圣甫, 李志远. 焊缝金属凝固组织元胞自动机模拟[J]. 焊接学报, 2008, 29(4): 45-48
Huang Anguo, Yu Shengfu, Li Zhiyuan. Simulation on weld metal solidifying microstructure with cellular automaton[J]. Transactions of the China Welding Institution, 2008, 29(4): 45-48
[2] 马瑞, 董志波, 魏艳红, 等. 镍基合金焊缝凝固组织演变过程模拟和仿真[J]. 焊接学报, 2010, 31(7): 43-46
Ma Rui, Dong Zhibo, Wei Yanhong, et al. Simulation of solidification microstructure evolution in molten pool of nickel base alloy[J]. Transactions of the China Welding Institution, 2010, 31(7): 43-46
[3] Gandin C, Rappaz M. A 3D cellular automaton algorithm for the prediction of dendritic grain growth[J]. Acta Materialia, 1997, 45(5): 2187-2195.
[4] Yin H, Felicelli S. Dendrite growth simulation during solidification in the LENS process[J]. Acta Materialia, 2010, 58(4): 1455-1465.
[5] 魏雷, 林鑫, 王猛, 等. 激光立体成形中熔池凝固微观组织的元胞自动机模拟[J]. 物理学报, 2015, 64(01): 356-363
Wei Lei, Lin Xin, Wang Meng, et al. Cellular automaton simulation of the molten pool of laser solid forming process[J]. Acta Physica Sinica, 2015, 64(01): 356-363
[6] 王志坚, 王宗园, 宋鸿武, 等. Ti-6Al-4V激光快速成形熔池凝固过程研究[J]. 机械设计与制造, 2017, 01(08): 103-105
Wang Zhijian, Wang Zongyuan, Song Hongwu, et al. Study on solidification process of the molten pool of laser rapid forming of Ti-6Al-4V[J]. Machinery Design & Manufacture, 2017, 01(08): 103-105
[7] 张敏, 周玉兰, 薛覃, 等. Ti-45Al合金焊接熔池凝固过程数值模拟[J]. 焊接学报, 2018, 39(3): 6-10
Zhang Min, Zhou Yulan, Xue Tan, et al. Numerical simulation of solidification process of Ti-45Al alloy weld pool[J]. Transactions of the China Welding Institution, 2018, 39(3): 6-10
[8] Knapp G, Mukherjee T, Zuback J, et al. Building blocks for a digital twin of additive manufacturing[J]. Acta Materialia, 2017, 135: 390-399.
[9] Pottlacher G, Hosaeus H, Kaschnitz E, et al. Thermophysical properties of solid and liquid Inconel 718 Alloy[J]. Scandinavian Journal of Metallurgy, 2002, 31: 161–168.
[10] Parimi L, Ravi G, Clark D, et al. Microstructural and texture development in direct laser fabricated IN718[J]. Materials Characterization, 2014, 89: 102-111.
[11] Panwisawas C, Qiu C, Anderson M, et al. Mesoscale modelling of selective laser melting: thermal fluid dynamics and microstructural evolution[J]. Computational Materials Science, 2017, 126: 479-490.
[12] Kurz W, Giovanola B, Trivedi R. Theory of microstructural development during rapid solidification[J]. Acta Metallurgica, 1986, 34(5): 823-830.
[13] Rappaz M, Gandin C. Probabilistic modelling of microstructure formation in solidification processes[J]. Acta Metallurgica et Materialia, 1993, 41(2): 345-360.
[14] Gandin C, Rappaz M. A coupled finite element-cellular automaton model for the prediction of dendritic grain structures in solidification processes[J]. Acta Metallurgica et Materialia, 1994, 42(7): 2233-2246.
[15] Gandin C, Desbiolles G, Rappaz M, et al. A three-dimensional cellular automaton-finite element model for the prediction of solidification grain structures[J]. Metallurgical and Materials Transactions A, 1999, 30(12): 3153-3165.
[16] Zinoviev A, Zinovieva O, Ploshikhin V, et al. Evolution of grain structure during laser additive manufacutring. simulation by a cellular automata method[J]. Materials & Design, 2016, 106: 321-329.
[17] Wei H, Knapp G, Mukherjee T, et al. Three-dimensional grain growth during multi-layer printing of a nickel-based alloy Inconel 718[J]. Additive Manufacturing, 2019, 25: 448-459.