Acta Metallurgica Sinica (English Letters) ›› 2021, Vol. 34 ›› Issue (4): 485-494.DOI: 10.1007/s40195-020-01156-3

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Prediction of Primary Dendrite Arm Spacing in Pulsed Laser Surface Melted Single Crystal Superalloy

Shiwei Ci1,2, Jingjing Liang1,3(), Jinguo Li1,3, Haiwei Wang1,2, Yizhou Zhou1, Xiaofeng Sun1, Hongwei Zhang1,4, Yutian Ding5, Xin Zhou6()   

  1. 1Shi-Changxu Innovation Center for Advanced Materials, Institute of Metal Research, Chinese Academy of Sciences, Shenyang, 110016, China
    2School of Materials Science and Engineering, University of Science and Technology of China, Shenyang, 110016, China
    3Space Manufacturing Technology (CAS Key Lab), Beijing, 100094, China
    4Taizhou Xinma Technology Industry Develepment Co. Ltd, Taizhou, 318000, China
    5State Key Laboratory of Advanced Processing and Recycling of Non-Ferrous Metal, Lanzhou University of Technology, 287 Langongping Road, Lanzhou, 730000, China
    6Science and Technology On Plasma Dynamics Laboratory, Air Force Engineering University, Xi’an, 710000, China
  • Received:2020-07-08 Revised:2020-08-26 Accepted:2020-08-31 Online:2021-04-10 Published:2021-03-30
  • Contact: Jingjing Liang,Xin Zhou
  • About author:Yizhou Zhou, yzzhou@imr.ac.cn
    Jingjing Liang, jjliang@imr.ac.cn;

Abstract:

Primary dendritic arm spacing (PDAS) is an important microstructure feature of the nickel-base single crystal superalloys. In this paper, a numerical model predicting the PDAS evolution with additive manufacturing parameters using pulsed laser is established, which combines the theoretical PDAS models with the temperature field calculation model during pulsed laser process. Based on this model, processing maps that related process parameters to the evolution of PDAS are generated. To obtain more accurate prediction model, the parameters of different solidification conditions, $\overline{{G^{ - 0.5} V^{ - 0.25} }}$ and $\overline{{G}^{-0.5}{V}^{-0.25}}$, are selected to calculate PDAS. The simulation results show that the PDAS increases as the arise of P and t. The processing-PDAS map can accurately predict the evolution of PDAS with pulsed laser process parameters, which is well in accordance with the experimental results. Additionally, the PDAS values calculated by the $\overline{{G}^{-0.5}{V}^{-0.25}}$ are more in line with the experimental results than those calculated by the ${\bar{G}}^{-0.5}{\bar{V}}^{-0.25}$.

Key words: Additive manufacturing, Nickel-base superalloy, Single crystal, Pulsed laser, Primary dendritic arm spacing