Influence of laser power and scanning strategy on residual stress distribution in additively manufactured 316L steel

被引:111
作者
Bian, Peiying [1 ]
Shi, Jing [2 ]
Liu, Yang [2 ]
Xie, Yanxiang [1 ]
机构
[1] Xian Univ, Sch Mech & Mat Engn, Xian 710065, Shaanxi, Peoples R China
[2] Univ Cincinnati, Dept Mech & Mat Engn, Coll Engn & Appl Sci, Cincinnati, OH 45221 USA
关键词
Additive manufacturing; Selective laser melting; Finite element simulation; Residual stress; Laser power; Scanning strategy; POWDER-BED FUSION; FINITE-ELEMENT SIMULATION; STAINLESS-STEEL; MELTING PROCESS; DISTORTION; MICROSTRUCTURE; TEMPERATURE; ANISOTROPY; TEXTURE; TI6AL4V;
D O I
10.1016/j.optlastec.2020.106477
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Residual stress control in the metal components by additive manufacturing (AM) has been a major challenge. To mitigate this challenge, proper selection of AM process parameters is of great importance. In this study, we investigate the influence of laser power and scanning strategies on residual stress distribution in 316L steel by a metal AM process, namely, selective laser melting (SLM). Finite element simulation and experimental verification are conducted by using the identical process parameters and part geometry to ensure that the results are indeed comparable and can shed light on the challenging issue of residual stress control. With two levels of laser power (i.e., 160 W and 200 W) and two scanning strategies (i.e., stripe scanning and chessboard scanning), four process conditions are investigated. For all four conditions, both simulation and experiment show that the tensile residual stress in the area of interest (the center area of each layer) tends to gradually increase along the depth into surface. Also, the increase of laser power from 160 W to 200 W and the adoption of stripe scanning (instead of chessboard scanning) generally lead to the increase of tensile residual stress in the area of interest. The trends are also confirmed by both simulation and experiment. In addition, the laser power increase from 160 W to 200 W appears to have more significant effect, compared with the switch of two scanning strategies.
引用
收藏
页数:13
相关论文
共 52 条
[1]   Residual stress development in selective laser-melted Ti6Al4V: a parametric thermal modelling approach [J].
Ali, Haider ;
Ghadbeigi, Hassan ;
Mumtaz, Kamran .
INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY, 2018, 97 (5-8) :2621-2633
[2]   Neutron residual stress measurement and numerical modeling in a curved thin-walled structure by laser powder bed fusion additive manufacturing [J].
An, Ke ;
Yuan, Lang ;
Dial, Laura ;
Spinelli, Ian ;
Stoica, Alexandru D. ;
Gao, Yan .
MATERIALS & DESIGN, 2017, 135 :122-132
[3]   Revealing mechanisms of residual stress development in additive manufacturing via digital image correlation [J].
Bartlett, Jamison L. ;
Groom, Brendan P. ;
Burdick, Jeffrey ;
Henkel, Daniel ;
Li, Xiaodong .
ADDITIVE MANUFACTURING, 2018, 22 :1-12
[4]  
Bian P., 2018, P MSEC2018 ASME 2018
[5]   Evolution of cyclic thermal stress in selective laser melting of 316L stainless steel: a realistic numerical study with experimental verification [J].
Bian, Peiying ;
Shi, Jing ;
Shao, Xiaodong ;
Du, Jingli .
INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY, 2019, 104 (9-12) :3867-3882
[6]   Effect of overlap rate and pattern on residual stress in selective laser melting [J].
Chen, Changpeng ;
Yin, Jie ;
Zhu, Haihong ;
Xiao, Zhongxu ;
Zhang, Luo ;
Zeng, Xiaoyan .
INTERNATIONAL JOURNAL OF MACHINE TOOLS & MANUFACTURE, 2019, 145
[7]   Sensitivity analysis of material and process parameters in finite element modeling of selective laser melting of Inconel 625 [J].
Criales, Luis E. ;
Arisoy, Yigit M. ;
Ozel, Tugrul .
INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY, 2016, 86 (9-12) :2653-2666
[8]   Analytical modelling of residual stress in additive manufacturing [J].
Fergani, O. ;
Berto, F. ;
Welo, T. ;
Liang, S. Y. .
FATIGUE & FRACTURE OF ENGINEERING MATERIALS & STRUCTURES, 2017, 40 (06) :971-978
[9]   Finite Element Simulation of Selective Laser Melting process considering Optical Penetration Depth of laser in powder bed [J].
Foroozmehr, Ali ;
Badrossamay, Mohsen ;
Foroozmehr, Ehsan ;
Golabi, Sa'id .
MATERIALS & DESIGN, 2016, 89 :255-263
[10]   Metal Additive Manufacturing: A Review [J].
Frazier, William E. .
JOURNAL OF MATERIALS ENGINEERING AND PERFORMANCE, 2014, 23 (06) :1917-1928