On the measurement of effective powder layer thickness in laser powder-bed fusion additive manufacturing of metals

被引:39
|
作者
Mahmoodkhani, Yahya [1 ]
Ali, Usman [1 ]
Shahabad, Shahriar Imani [1 ]
Kasinathan, Adhitan Rani [1 ]
Esmaeilizadeh, Reza [1 ]
Keshavarzkermani, Ali [1 ]
Marzbanrad, Ehsan [1 ]
Toyserkani, Ehsan [1 ]
机构
[1] Univ Waterloo, Dept Mech & Mechatron Engn, Multiscale Addit Mfg Lab, 200 Univ Ave West, Waterloo, ON N2L 3G1, Canada
基金
加拿大自然科学与工程研究理事会;
关键词
Additive manufacturing; Laser-powder bed fusion; Effective layer thickness; DENSITY;
D O I
10.1007/s40964-018-0064-0
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
In laser powder-bed fusion (LPBF), the actual thickness of powder particles that spread on solidified zones, so-called effective layer thickness (ELT), is higher than the nominal layer thickness. The source cause of this discrepancy is the fact that powder particles substantially shrink after selective melting, followed by solidification. ELT, as an unknown parameter, depends on process parameters and material properties. In this study, an effective method to measure ELT is proposed and applied to 17-4 PH stainless steel for a nominal build layer thickness of 20 mu m. The measured ELT was larger than 100 mu m, which is far beyond the values reported in the literature. Results obtained from the current study show the effect of applying the ELT rather than the nominal build layer thickness in numerical modeling studies as well as understanding the governing physics in the LPBF process.
引用
收藏
页码:109 / 116
页数:8
相关论文
共 50 条
  • [41] Pulsed laser powder bed fusion additive manufacturing of A356
    Chou, S. C.
    Trask, M.
    Danovitch, J.
    Wang, X. L.
    Choi, J. P.
    Brochu, M.
    MATERIALS CHARACTERIZATION, 2018, 143 : 27 - 33
  • [42] Processing parameters in laser powder bed fusion metal additive manufacturing
    Oliveira, J.P.
    LaLonde, A.D.
    Ma, J.
    Materials and Design, 2020, 193
  • [43] Melt pool sensing and size analysis in laser powder-bed metal additive manufacturing
    Cheng, Bo
    Lydon, James
    Cooper, Kenneth
    Cole, Vernon
    Northrop, Paul
    Chou, Kevin
    JOURNAL OF MANUFACTURING PROCESSES, 2018, 32 : 744 - 753
  • [44] Influence of layer thickness and substrate bed on the void fraction of powder layers for laser powder bed fusion
    Li, Zhenjun
    Mizutani, Masayoshi
    POWDER TECHNOLOGY, 2023, 418
  • [45] A technical review of the challenges of powder recycling in the laser powder bed fusion additive manufacturing process
    Soundarapandiyan, Gowtham
    Johnston, Carol
    Khan, Raja H. U.
    Chen, Bo
    Fitzpatrick, Michael E.
    JOURNAL OF ENGINEERING-JOE, 2021, 2021 (02): : 97 - 103
  • [46] Predictive model for porosity in powder-bed fusion additive manufacturing at high beam energy regime
    Vastola, G.
    Pei, Q. X.
    Zhang, Y-W
    ADDITIVE MANUFACTURING, 2018, 22 : 817 - 822
  • [47] Gold plating of AlSi10Mg parts produced by a laser powder-bed fusion additive manufacturing technique
    Inberg, Alexandra
    Ashkenazi, Dana
    Kimmel, Giora
    Shacham-Diamand, Yosi
    Stern, Adin
    PROGRESS IN ADDITIVE MANUFACTURING, 2020, 5 (04) : 395 - 404
  • [48] Discrete element simulation of powder layer thickness in laser additive manufacturing
    Han, Quanquan
    Gu, Heng
    Setchi, Rossitza
    POWDER TECHNOLOGY, 2019, 352 : 91 - 102
  • [49] A Lagrangian meshfree mesoscale simulation of powder bed fusion additive manufacturing of metals
    Fan, Zongyue
    Wang, Hao
    Huang, Zhida
    Liao, Huming
    Fan, Jiang
    Lu, Jian
    Liu, Chong
    Li, Bo
    INTERNATIONAL JOURNAL FOR NUMERICAL METHODS IN ENGINEERING, 2021, 122 (02) : 483 - 514
  • [50] An Extended Rosenthal’s Model for Laser Powder-Bed Fusion Additive Manufacturing: Energy Auditing of Thermal Boundary Conditions
    Imani Shahabad S.
    Karimi G.
    Toyserkani E.
    Lasers in Manufacturing and Materials Processing, 2021, 8 (03) : 288 - 311