A new ray tracing heat source model for mesoscale CFD simulation of selective laser melting (SLM)

被引:78
作者
Liu, Binqi [1 ]
Fang, Gang [2 ]
Lei, Liping [1 ]
Liu, Wei [3 ]
机构
[1] Tsinghua Univ, Dept Mech Engn, Beijing 100084, Peoples R China
[2] Tsinghua Univ, Dept Mech Engn, State Key Lab Tribol, Beijing 100084, Peoples R China
[3] Tsinghua Univ, Sch Mat Sci & Engn, Beijing 10084, Peoples R China
基金
中国国家自然科学基金;
关键词
Additive manufacturing; Selective laser melting; Mesoscopic simulation; Ray tracing; Absorptivity; POWDER-BED FUSION; METAL POWDERS; MECHANISMS; DYNAMICS; BEHAVIOR; POROSITY; VOLUME; FLOW;
D O I
10.1016/j.apm.2019.10.049
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The present work was aimed to develop a new ray tracing heat source model used in mesoscale finite volume method (FVM) simulations for the selective laser melting (SLM) process. By means of the metal-gas interface built via the volume of fluid (VOF) method, the developed model simulated the interactions between the laser beam and the powder bed. Multiple reflections of the laser beam at the surface of the metal powders were taken into account in the modeling. Integrated into the commercial software, FLOW3D, the heat source model was validated by the comparison between the calculation results and previous experiments. 3-D mesoscale simulations for the SLM process of 3161, stainless steel were performed. The result indicated that the proposed ray tracing heat source model was able to model the laser heating process of the SLM. Better than the conventional one, the new heat source model identified the local defects during the SLM process, such as the balling behavior. (C) 2019 Elsevier Inc. All rights reserved.
引用
收藏
页码:506 / 520
页数:15
相关论文
共 33 条
[1]   Three-dimensional thermal simulation of nanosecond laser ablation for semitransparent material [J].
Ahn, Junsu ;
Na, Suck-Joo .
APPLIED SURFACE SCIENCE, 2013, 283 :115-127
[2]  
[Anonymous], REFRACTIVE INDICES D
[3]   Calculation of laser absorption by metal powders in additive manufacturing [J].
Boley, C. D. ;
Khairallah, S. A. ;
Rubenchik, A. M. .
APPLIED OPTICS, 2015, 54 (09) :2477-2482
[4]  
Born M, 2013, Principles of optics
[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]   A Multiscale Understanding of the Thermodynamic and Kinetic Mechanisms of Laser Additive Manufacturing [J].
Gu, Dongdong ;
Ma, Chenglong ;
Xia, Mujian ;
Dai, Donghua ;
Shi, Qimin .
ENGINEERING, 2017, 3 (05) :675-684
[7]   Modelling of radiation transfer in metallic powders at laser treatment [J].
Gusarov, AV ;
Kruth, JP .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2005, 48 (16) :3423-3434
[8]   VOLUME OF FLUID (VOF) METHOD FOR THE DYNAMICS OF FREE BOUNDARIES [J].
HIRT, CW ;
NICHOLS, BD .
JOURNAL OF COMPUTATIONAL PHYSICS, 1981, 39 (01) :201-225
[9]   Density of additively-manufactured, 316L SS parts using laser powder-bed fusion at powers up to 400 W [J].
Kamath, Chandrika ;
El-dasher, Bassem ;
Gallegos, Gilbert F. ;
King, Wayne E. ;
Sisto, Aaron .
INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY, 2014, 74 (1-4) :65-78
[10]   Laser powder-bed fusion additive manufacturing: Physics of complex melt flow and formation mechanisms of pores, spatter, and denudation zones [J].
Khairallah, Saad A. ;
Anderson, Andrew T. ;
Rubenchik, Alexander ;
King, Wayne E. .
ACTA MATERIALIA, 2016, 108 :36-45