Numerical simulation and analytical modelling of temperature and morphology of melt pool in electron beam powder bed fusion of copper

被引:0
|
作者
Sharabian, Elmira [1 ]
Khorasani, Mahyar [2 ]
Gulizia, Stefan [1 ]
Ghasemi, Amir Hossein [3 ]
MacDonald, Eric [4 ]
Downing, David [5 ]
Rolfe, Bernard [6 ]
Brandt, Milan [7 ]
Leary, Martin [8 ]
机构
[1] RMIT Univ, Melbourne, Australia
[2] Univ Texas El Paso, Dept Engn, El Paso, TX 79968 USA
[3] Univ Twente, Enschede, Netherlands
[4] Univ Texas El Paso, Dept Mech Engn, El Paso, TX USA
[5] RMIT Univ, Sch Engn, Melbourne, Australia
[6] Deakin Univ, Fac Sci Engn & Built Environm, Sch Engn, Geelong, Australia
[7] RMIT Univ, Sch Aerosp Mech & Mfg Engn, Melbourne, Australia
[8] RMIT Univ, Sch Mech Engn, Melbourne, Australia
关键词
Additive manufacturing; Electron beam powder bed fusion; Temperature estimation; Simulation; Copper; FLUID-FLOW; LASER; POROSITY;
D O I
10.1108/RPJ-03-2024-0141
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
PurposeThis study aims to comprehensively investigate the electron beam powder bed fusion (EB-PBF) process for copper, offering validated estimations of melt pool temperature and morphology through numerical and analytical approaches. This work also assesses how process parameters influence the temperature fluctuations and the morphological changes of the melt pool.Design/methodology/approachTwo distinct methods, an analytical model and a numerical simulation, were used to assess temperature profiles, melt pool morphology and associated heat transfer mechanisms, including conduction and keyhole mode. The analytical model considers conduction as the dominant heat transfer mechanism; the numerical model also includes convection and radiation, incorporating specific parameters such as beam power, scan speed, thermophysical material properties and powder interactions.FindingsBoth the analytical model and numerical simulations are highly correlated. Results indicated that the analytical model, emphasising material conduction, exhibited exceptional precision, although at substantially reduced cost. Statistical analysis of numerical outcomes underscored the substantial impact of beam power and scan speed on melt pool morphology and temperature in EB-PBF of copper.Originality/valueThis numerical simulation of copper in EB-PBF is the first high-fidelity model to consider the interaction between powder and substrate comprehensively. It accurately captures material properties, powder size distribution, thermal dynamics (including heat transfer between powder and substrate), phase changes and fluid dynamics. The model also integrates advanced computational methods such as computational fluid dynamics and discrete element method. The proposed model and simulation offer a valuable predictive tool for melt pool temperature, heat transfer processes and morphology. These insights are critical for ensuring the bonding quality of subsequent layers and, consequently, influencing the overall quality of the printed parts.
引用
收藏
页码:127 / 144
页数:18
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