Development and validation of a material evaporation assisted thermal model for time-efficient calculation of thermal and solidification parameters during laser powder bed fusion process for Ti6Al4V

被引:11
作者
Mishra, Ashish Kumar [1 ]
Kumar, Arvind [1 ]
Govind [2 ]
机构
[1] Indian Inst Technol Kanpur, Dept Mech Engn, Addit Mfg Grp, Kanpur 208016, India
[2] Vikram Sarabhai Space Ctr, Mat Management Act Grp, Thiruvananthapuram 695583, Kerala, India
关键词
Heat source modification; Material evaporation; Melt pool hydrodynamics; Experimental validation; LPBF; Ti6Al4V; FINITE-ELEMENT; ENERGY DENSITY; HEAT-TRANSFER; PHASE-FIELD; SIMULATION; TEMPERATURE; FLOW; DENUDATION; SPATTER;
D O I
10.1016/j.addma.2023.103453
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The computational models used to study the laser powder bed fusion (LPBF) process incorporate numerous physics that make the model heavy and time consuming, rendering them unfit to run large scale LPBF simula-tions, such as multi-track/multi-layer LPBF or thermo-mechanical analyses. Hence, a new computational model has been proposed for the LPBF of Ti6Al4V, which incorporated material evaporation and heat source modifi-cation to accurately predict the melt pool characteristics without including the melt pool hydrodynamics in the model. The omission of the hydrodynamics allowed the model to run faster and consume less computational time, while the material evaporation and heat source modification facilitated reliable prediction of the tem-perature field and melt pool dimensions. The heat source has been modified by coupling the heat source depth with process parameters through multiple regression analyses on the experimental and numerical results and applying material evaporation as a heat loss flux. The proposed model has been validated by comparing the simulation results with experimental data and simulation results considering melt pool hydrodynamics. It was seen that proposed model predicted melt pool dimensions with very high accuracy against the experiments (-2.76% in depth and +7.68% in width) while consuming nearly 1/100th of the time consumed by model with fluid flow. The present model, therefore, proved its potential for application in large scale LPBF simulations mentioned earlier and can also be combined with other physics that do not require melt pool hydrodynamic details, such as the thermo-mechanical studies.
引用
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页数:13
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共 58 条
  • [11] Three-Dimensional Temperature Gradient Mechanism in Selective Laser Melting of Ti-6Al-4V
    Fu, C. H.
    Guo, Y. B.
    [J]. JOURNAL OF MANUFACTURING SCIENCE AND ENGINEERING-TRANSACTIONS OF THE ASME, 2014, 136 (06):
  • [12] Finite Element Analysis of Interaction of Laser Beam with Material in Laser Metal Powder Bed Fusion Process
    Fu, Guang
    Zhang, David Z.
    He, Allen N.
    Mao, Zhongfa
    Zhang, Kaifei
    [J]. MATERIALS, 2018, 11 (05)
  • [13] Numerical and experimental study of molten pool behaviour and defect formation in multi-material and functionally graded materials laser powder bed fusion
    Gu, Heng
    Wei, Chao
    Li, Lin
    Ryan, Michael
    Setchi, Rossitza
    Han, Quanquan
    Qian, Lili
    [J]. ADVANCED POWDER TECHNOLOGY, 2021, 32 (11) : 4303 - 4321
  • [14] Melt pool temperature and cooling rates in laser powder bed fusion
    Hooper, Paul A.
    [J]. ADDITIVE MANUFACTURING, 2018, 22 : 548 - 559
  • [15] Formation of SS316L Single Tracks in Micro Selective Laser Melting: Surface, Geometry, and Defects
    Hu, Zhiheng
    Nagarajan, Balasubramanian
    Song, Xu
    Huang, Rui
    Zhai, Wei
    Wei, Jun
    [J]. ADVANCES IN MATERIALS SCIENCE AND ENGINEERING, 2019, 2019
  • [16] Finite element simulation of the temperature and stress fields in single layers built without-support in selective laser melting
    Hussein, Ahmed
    Hao, Liang
    Yan, Chunze
    Everson, Richard
    [J]. MATERIALS & DESIGN, 2013, 52 : 638 - 647
  • [17] Numerical investigation of the mechanism of interfacial dynamics of the melt pool and defects during laser powder bed fusion
    Jin, Peng
    Tang, Qian
    Song, Jun
    Feng, Qixiang
    Guo, Fuyu
    Fan, Xiaojie
    Jin, Mengxia
    Wang, Fuyou
    [J]. OPTICS AND LASER TECHNOLOGY, 2021, 143
  • [18] Melting pool simulation of 316L samples manufactured by Selective Laser Melting method, comparison with experimental results
    Kazemi, Z.
    Soleimani, M.
    Rokhgireh, H.
    Nayebi, A.
    [J]. INTERNATIONAL JOURNAL OF THERMAL SCIENCES, 2022, 176
  • [19] Application of finite element, phase-field, and CALPHAD-based methods to additive manufacturing of Ni-based superalloys
    Keller, Trevor
    Lindwall, Greta
    Ghosh, Supriyo
    Ma, Li
    Lane, Brandon M.
    Zhang, Fan
    Kattner, Ursula R.
    Lass, Eric A.
    Heigel, Jarred C.
    Idell, Yaakov
    Williams, Maureen E.
    Allen, Andrew J.
    Guyer, Jonathan E.
    Levine, Lyle E.
    [J]. ACTA MATERIALIA, 2017, 139 : 244 - 253
  • [20] Laser powder-bed fusion additive manufacturing: Physics of complex melt flow and formation mechanisms of pores, spatter, and denudation zones
    Khairallah, Saad A.
    Anderson, Andrew T.
    Rubenchik, Alexander
    King, Wayne E.
    [J]. ACTA MATERIALIA, 2016, 108 : 36 - 45