4.7 Article

Segregation of 316L stainless steel powder during spreading in selective laser melting based additive manufacturing

期刊

POWDER TECHNOLOGY
卷 397, 期 -, 页码 -

出版社

ELSEVIER
DOI: 10.1016/j.powtec.2021.117096

关键词

Selective laser melting; Additive manufacturing; Spreading of 316L stainless steel powder; Segregation mechanics; Numerical simulation

资金

  1. National Natural Science Foundation [51374070]
  2. Liaoning Revitalization Talents Program [XLYC1805007]
  3. CAS Interdisciplinary Innovation Team Project of China [JCTD-2020-10]

向作者/读者索取更多资源

This paper investigates the segregation of 316L stainless steel powders during spreading and identifies the segregation mechanisms using the discrete element method. The results show that particle size and distribution have an influence on segregation behavior and properties of the powder bed, and increasing blade velocity can weaken the segregation behavior.
Understanding and controlling particle segregation during spreading are critical in improving the quality of the powder bed and the performance of final products in selective laser melting (SLM) based additive manufacturing. In this paper, the segregation of 316L stainless steel powders during spreading was investigated numerically by means of the discrete element method. The influences of particle size and distribution on the segregation behav-iors and related properties of the powder bed were systematically analyzed. The segregation mechanisms were identified from the microscopic particulate scale based on particle velocity, motion trajectory, and mechanical be-havior. Finally, corresponding solutions were proposed. Results show that for the powder with median diameter D-50 = 45 mu m of Gaussian distribution, the segregation behavior is less serious when the standard deviation <=& nbsp;4 mu m (i.e., the width of size distribution W-d <= 30 mu m). However, when W-d > 30 mu m, increasing W-d will lead to severe segregation. Compared with the powder size, W-d has less influence on the packing density and uniformity of the powder bed. Decreasing the particle size will aggravate segregation of the powder bed when D-50 >= 35 mu m and this phenomenon will be weakened when D-50 < 35 mu m. In the present work, the powder bed becomes more compact and uniform with the decrease of D-50. Different mechanics of large and small particles lead to differences in their motion behaviors, causing segregation during spreading. For the powders with a fixed size distribution, the segregation behavior could be weakened by increasing the blade velocity appropriately. The results presented here will provide valuable references for superior powder spreading as well as printing in practical applications.(c) 2022 Elsevier B.V. All rights reserved.

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