Predictive modeling of laser and electron beam powder bed fusion additive manufacturing of metals at the mesoscale

被引:51
|
作者
Zakirov, Andrey [1 ]
Belousov, Sergei [1 ]
Bogdanova, Maria [1 ]
Korneev, Boris [1 ]
Stepanov, Andrey [1 ]
Perepelkina, Anastasia [1 ]
Levchenko, Vadim [1 ]
Meshkov, Andrey [2 ]
Potapkin, Boris [1 ]
机构
[1] Kintech Lab Ltd, 3rd Khoroshevskaya St 12, Moscow 123298, Russia
[2] Gen Elect Global Res Ctr, 1 Res Circle, Niskayuna, NY 12309 USA
关键词
Powder bed fusion; 3D mesoscale modeling; Metal alloys; Lattice Boltzmann method; High-performance computing; LATTICE BOLTZMANN METHOD; MELT FLOW; MICROSTRUCTURE; ABSORPTIVITY; FLUID; CHALLENGES; DYNAMICS;
D O I
10.1016/j.addma.2020.101236
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
We present the results of 3D modeling of the laser and electron beam powder bed fusion process at the mesoscale with an in-house developed advanced multiphysical numerical tool. The hydrodynamics and thermal conductivity core of the tool is based on the lattice Boltzmann method. The numerical tool takes into account the random distributions of powder particles by size in a layer and the propagation of the laser (electron beam) with a full ray tracing (Monte Carlo) model that includes multiple reflections, phase transitions, thermal conductivity, and detailed liquid dynamics of the molten metal, influenced by evaporation of the metal and the recoil pressure. The model has been validated by a number of physical tests. We numerically demonstrate a strong dependence of the net energy absorption of the incoming heat source beam by the powder bed and melt pool on the beam power. We show the ability of our model to predict the measurable properties of a single track on a bare substrate as well as on a powder layer. We obtain good agreement with experimental data for the depth, width and shape of a track for a number of materials and a wide range of energy source parameters. We further apply our model to the simulation of the entire layer formation and demonstrate the strong dependence of the resulting layer morphology on the hatch spacing. The presented model could be very helpful for optimizing the additive process without carrying out a large number of experiments in a common trial-and-error method, developing process parameters for new materials, and assessing novel modalities of powder bed fusion additive manufacturing.
引用
收藏
页数:15
相关论文
共 50 条
  • [41] Powder Reuse and Regeneration by the Infiltration Technique in Electron Beam Melting (EBM)-powder Bed Fusion (PBF) Additive Manufacturing
    Nagase, Takeshi
    Imaki, Tatsuhiko
    Takeuchi, Akira
    Yanagitani, Akihiko
    Yamaguchi, Atsushi
    Yamasaki, Tohru
    Yosetsu Gakkai Shi/Journal of the Japan Welding Society, 2024, 93 (07): : 418 - 422
  • [42] Influences of Powder Packing Density in Laser Powder Bed Fusion Metal Additive Manufacturing
    Zhang Peng
    Zhang Shaoming
    Bi Zhongnan
    Tan Zhen
    Wang Rui
    Wang Rui
    LASER & OPTOELECTRONICS PROGRESS, 2024, 61 (05)
  • [43] Probability of detection of porosity defects for electron beam powder bed fusion additive manufacturing using total electron emissions
    Peverall, Dylan
    Mcdonald, Trevor
    Gbadamosi-Adeniyi, Temilola
    Horn, Tim
    JOURNAL OF MANUFACTURING PROCESSES, 2024, 131 : 2294 - 2309
  • [44] Probabilistic Data-Driven Modeling of a Melt Pool in Laser Powder Bed Fusion Additive Manufacturing
    Fang, Qihang
    Xiong, Gang
    Zhao, Meihua
    Tamir, Tariku Sinshaw
    Shen, Zhen
    Yan, Chao-Bo
    Wang, Fei-Yue
    IEEE TRANSACTIONS ON AUTOMATION SCIENCE AND ENGINEERING, 2024,
  • [45] Hybrid Modeling Approach for Melt-Pool Prediction in Laser Powder Bed Fusion Additive Manufacturing
    Moges, Tesfaye
    Yang, Zhuo
    Jones, Kevontrez
    Feng, Shaw
    Witherell, Paul
    Lu, Yan
    JOURNAL OF COMPUTING AND INFORMATION SCIENCE IN ENGINEERING, 2021, 21 (05)
  • [46] Physics-based modeling and predictive simulation of powder bed fusion additive manufacturing across length scales
    Meier C.
    Fuchs S.L.
    Much N.
    Nitzler J.
    Penny R.W.
    Praegla P.M.
    Proell S.D.
    Sun Y.
    Weissbach R.
    Schreter M.
    Hodge N.E.
    John Hart A.
    Wall W.A.
    GAMM Mitteilungen, 2021, 44 (03)
  • [47] Perspectives on recent breakthroughs in laser powder bed fusion for metal additive manufacturing
    Rajendran, Naveen Kumar
    Kumar, Sanjay
    Agrawal, Trapty
    Kumar, Mukesh
    Sellamuthu, Prabhukumar
    Gantra, Amit
    PROGRESS IN ADDITIVE MANUFACTURING, 2025,
  • [48] Investigation of novel metal additive manufacturing process using plasma electron beam based on powder bed fusion
    Ahn, Dong-Gyu
    Lee, Ho-Jin
    CIRP ANNALS-MANUFACTURING TECHNOLOGY, 2019, 68 (01) : 245 - 248
  • [49] Additive Manufacturing of Pure Mo and Mo plus TiC MMC Alloy by Electron Beam Powder Bed Fusion
    Rock, Christopher
    Lara-Curzio, Edgar
    Ellis, Betsy
    Ledford, Christopher
    Leonard, Donovan N.
    Kannan, Rangasayee
    Kirka, Michael
    Horn, Timothy
    JOM, 2020, 72 (12) : 4202 - 4213
  • [50] Alloy design for laser powder bed fusion additive manufacturing: a critical review
    Liu, Zhuangzhuang
    Zhou, Qihang
    Liang, Xiaokang
    Wang, Xiebin
    Li, Guichuan
    Vanmeensel, Kim
    Xie, Jianxin
    INTERNATIONAL JOURNAL OF EXTREME MANUFACTURING, 2024, 6 (02)