Efficient thermal finite element modeling of selective laser melting of Inconel 718

被引:41
作者
Luo, Zhibo [1 ]
Zhao, Yaoyao [1 ]
机构
[1] McGill Univ, Dept Mech Engn, Montreal, PQ, Canada
基金
加拿大自然科学与工程研究理事会;
关键词
Finite element method; Adaptive mesh; Selective laser melting; Heat transfer; MPI; EXPERIMENTAL VALIDATION; THERMOMECHANICAL MODEL; NUMERICAL-SIMULATION; TITANIUM POWDER; TEMPERATURE; DISTORTION; STRESS; HEAT; DEPOSITION; BEHAVIOR;
D O I
10.1007/s00466-019-01794-0
中图分类号
O1 [数学];
学科分类号
0701 ; 070101 ;
摘要
In the powder bed fusion process, an accurate prediction of the transient temperature field of a part is essential to calculate the subsequent thermal stress evolution and microstructure propagation in that part. The experimental method is time-consuming and expensive since the temperature field is controlled by many process parameters. Numerical heat transfer models can be used to estimate the temperature field at any time point. However, traditional numerical simulation schemes are not suitable for the layer-wised fabrication process due to the extremely high computational cost. The computational cost mainly relies on the element number and time step size. This research provides a new efficient and part-level simulation scheme based on an open-source finite element library, which is able to adaptively refine and coarsen the mesh and solve finite element equations with multiple processors in a parallel way. Here, a new mesh strategy that aims to reduce the element number while keeping the solution accuracy is developed. The simulation speed is 12x to 18x faster compared with the traditional simulation scheme depending on the scale of the simulated domain and number of processors. Simulation results have been compared with the experimental results of an Inconel 718 component. It is shown that the testing point in the simulation experiences the same thermal cycles of the same point in the experiment. This simulation scheme can also be used to optimize the process parameters such as scanning pattern, scan velocity, and layer thickness and can be easily extended to other additive manufacturing processes.
引用
收藏
页码:763 / 787
页数:25
相关论文
共 55 条
[11]   Additive manufacturing of metallic components - Process, structure and properties [J].
DebRoy, T. ;
Wei, H. L. ;
Zuback, J. S. ;
Mukherjee, T. ;
Elmer, J. W. ;
Milewski, J. O. ;
Beese, A. M. ;
Wilson-Heid, A. ;
De, A. ;
Zhang, W. .
PROGRESS IN MATERIALS SCIENCE, 2018, 92 :112-224
[12]   Thermomechanical model development and in situ experimental validation of the Laser Powder-Bed Fusion process [J].
Denlinger, Erik R. ;
Gouge, Michael ;
Irwin, Jeff ;
Michaleris, Pan .
ADDITIVE MANUFACTURING, 2017, 16 :73-80
[13]   Effect of stress relaxation on distortion in additive manufacturing process modeling [J].
Denlinger, Erik R. ;
Michaleris, Pan .
ADDITIVE MANUFACTURING, 2016, 12 :51-59
[14]   Residual stress and distortion modeling of electron beam direct manufacturing Ti-6Al-4V [J].
Denlinger, Erik R. ;
Heigel, Jarred C. ;
Michaleris, Panagiotis .
PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART B-JOURNAL OF ENGINEERING MANUFACTURE, 2015, 229 (10) :1803-1813
[15]   Thermomechanical Modeling of Additive Manufacturing Large Parts [J].
Denlinger, Erik R. ;
Irwin, Jeff ;
Michaleris, Pan .
JOURNAL OF MANUFACTURING SCIENCE AND ENGINEERING-TRANSACTIONS OF THE ASME, 2014, 136 (06)
[16]   Finite element simulations of temperature distribution and of densification of a titanium powder during metal laser sintering [J].
Dong, L. ;
Correia, J. P. M. ;
Barth, N. ;
Ahzi, S. .
ADDITIVE MANUFACTURING, 2017, 13 :37-48
[17]   Development of experimental method for in situ distortion and temperature measurements during the laser powder bed fusion additive manufacturing process [J].
Dunbar, A. J. ;
Denlinger, E. R. ;
Heigel, J. ;
Michaleris, P. ;
Guerrier, P. ;
Martukanitz, R. ;
Simpson, T. W. .
ADDITIVE MANUFACTURING, 2016, 12 :25-30
[18]   Experimental validation of finite element modeling for laser powder bed fusion deformation [J].
Dunbar, Alexander J. ;
Denlinger, Erik R. ;
Gouge, Michael F. ;
Michaleris, Pan .
ADDITIVE MANUFACTURING, 2016, 12 :108-120
[19]   Sintering of commercially pure titanium powder with a Nd:YAG laser source [J].
Fischer, P ;
Romano, V ;
Weber, HP ;
Karapatis, NP ;
Boillat, E ;
Glardon, R .
ACTA MATERIALIA, 2003, 51 (06) :1651-1662
[20]   On thermal modeling of Additive Manufacturing processes [J].
Foteinopoulos, Panagis ;
Papacharalampopoulos, Alexios ;
Stavropoulos, Panagiotis .
CIRP Journal of Manufacturing Science and Technology, 2018, 20 :66-83