Predicting the porosity defects in selective laser melting (SLM) by molten pool geometry

被引:67
作者
Liu, Binqi [1 ]
Fang, Gang [1 ]
Lei, Liping [1 ]
Yan, Xingchen [2 ]
机构
[1] Tsinghua Univ, Dept Mech Engn, Beijing 100084, Peoples R China
[2] Guangdong Acad Sci, Inst New Mat, Guangzhou 510651, Guangdong, Peoples R China
关键词
Selective laser melting; Porosity; Simulation; Analytical model; Processing window; POWDER-BED FUSION; MECHANICAL-PROPERTIES; ENERGY DENSITY; SCALING LAWS; MICROSTRUCTURE; COMPONENTS; THRESHOLD; MODEL;
D O I
10.1016/j.ijmecsci.2022.107478
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
A methodology to predict the porosity in selective laser melting (SLM) is put forward. A combination of experiments, numerical, and analytical calculations for predicting the proper SLM processing window of nearly fully dense parts is carried out. The molten pool dimensions, calculated by the analytical models, are used to assess the lack of fusion pores and keyhole pores of the SLM fabricated samples. Better than the previous process window predicting method, the accumulated heat of previous tracks is considered in the model, with the influence of the scanning strategies taken into account. Defect criterion of lack of fusion pores and keyhole pores are proposed, derived from the flow characteristic of the molten pool simulated with a meso-scale CFD numerical model. The calculated results of the molten pool dimensions are consistent with the conducted SLM experiments of SS 316L and Ti-6Al-4V, respectively. The predicted processing windows also match the porosities of corresponding fabricated cube samples. It demonstrates the present methodology will aid the process design and defect elimination during SLM as an effective tool potentially.
引用
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页数:14
相关论文
共 44 条
[1]   Unusual wavy weld pool boundary from dimensional analysis [J].
Arora, A. ;
Roy, G. G. ;
DebRoy, T. .
SCRIPTA MATERIALIA, 2009, 60 (02) :68-71
[2]   On the limitations of Volumetric Energy Density as a design parameter for Selective Laser Melting [J].
Bertoli, Umberto Scipioni ;
Wolfer, Alexander J. ;
Matthews, Manyalibo J. ;
Delplanque, Jean-Pierre R. ;
Schoenung, Julie M. .
MATERIALS & DESIGN, 2017, 113 :331-340
[3]   THERMOPHYSICAL PROPERTIES OF STAINLESS-STEELS [J].
BOGAARD, RH ;
DESAI, PD ;
LI, HH ;
HO, CY .
THERMOCHIMICA ACTA, 1993, 218 :373-393
[4]   Keyhole threshold and morphology in laser melting revealed by ultrahigh-speed x-ray imaging [J].
Cunningham, Ross ;
Zhao, Cang ;
Parab, Niranjan ;
Kantzos, Christopher ;
Pauza, Joseph ;
Fezzaa, Kamel ;
Sun, Tao ;
Rollett, Anthony D. .
SCIENCE, 2019, 363 (6429) :849-+
[5]   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
[6]  
EAGAR TW, 1983, WELD J, V62, pS346
[7]   Depth Dependence and Keyhole Stability at Threshold, for Different Laser Welding Regimes [J].
Fabbro, Remy .
APPLIED SCIENCES-BASEL, 2020, 10 (04)
[8]   Scaling laws for the laser welding process in keyhole mode [J].
Fabbro, Remy .
JOURNAL OF MATERIALS PROCESSING TECHNOLOGY, 2019, 264 :346-351
[9]   Universal scaling laws of keyhole stability and porosity in 3D printing of metals [J].
Gan, Zhengtao ;
Kafka, Orion L. ;
Parab, Niranjan ;
Zhao, Cang ;
Fang, Lichao ;
Heinonen, Olle ;
Sun, Tao ;
Liu, Wing Kam .
NATURE COMMUNICATIONS, 2021, 12 (01)
[10]  
Gladush GG, 2011, SPRINGER SER MATER S, V146, P1, DOI 10.1007/978-3-642-19831-1