Vapor-induced flow and its impact on powder entrainment in laser powder bed fusion

Zhiyong Li, Gang Yu, Xiuli He*, Zhengtao Gan*, Wing Kam Liu*

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

3 Scopus citations

Abstract

A 2D axisymmetric transient Thermal-Fluid-Evaporation model coupled with melt pool dynamics and gas kinetics is developed to study the formation mechanisms of vapor-induced flow and the resulting powder entrainment in powder bed fusion using laser beam (PBF-LB) for 316 L powders. The interactions between keyhole formation inside the melt pool, vapor plume flow, and vapor-induced shielding gas flow are investigated. Vapor plume flow results in powder spattering with much higher speed, while vapor-induced gas flow significantly contributes to powder denudation with lower speed. It is also reported that powder spattering is stronger in 1 atm argon than that in 1 atm helium because the drag force for spattering is 2.72 times larger in 1 atm argon, but powder denudation becomes greater in 1 atm helium as the ratio of drag force for denudation in 1 atm argon to that in 1 atm helium is only 0.582. Furthermore, the vapor plume results in more spatters with the decrease of ambient pressure from 1 atm to 0.05 atm in argon because the plume is diluted faster with a twofold wider plume head and the two times higher peak velocity as a result of the pressure drop-induced significant reduction of viscosity restriction. A larger divergency angle in 0.05 atm argon is also recorded at the same time for the weaker restriction and faster dilution. In combination with in-situ observations, the proposed model provides insights into the vapor-induced flow, and its impact on powder entrainment under different gas types and ambient pressures.

Original languageEnglish (US)
Article number106669
JournalMaterials Today Communications
Volume36
DOIs
StatePublished - Aug 2023

Funding

The computational work is performed at Northwestern University while Zhiyong Li was a visiting scholar. The financial supports from National Natural Science Foundation of China (No. 12202448) and the Chinese Scholarship Council (CSC) are acknowledged by Zhiyong Li. Zhengtao Gan and Wing Kam Liu are grateful for the support of the US NSF grant CMMI-1934367. All the authors thank Abdullah Al Amin in Northwestern University for the help on editing. The computational work is performed at Northwestern University while Zhiyong Li was a visiting scholar. The financial supports from National Natural Science Foundation of China (No. 12202448 ) and the Chinese Scholarship Council (CSC) are acknowledged by Zhiyong Li. Zhengtao Gan and Wing Kam Liu are grateful for the support of the US NSF grant CMMI-1934367 . All the authors thank Abdullah Al Amin in Northwestern University for the help on editing.

Keywords

  • 3D printing and additive manufacturing
  • Numerical modeling
  • Powder spattering and denudation
  • Vapor plume flow
  • Vapor-induced gas flow

ASJC Scopus subject areas

  • General Materials Science
  • Mechanics of Materials
  • Materials Chemistry

Fingerprint

Dive into the research topics of 'Vapor-induced flow and its impact on powder entrainment in laser powder bed fusion'. Together they form a unique fingerprint.

Cite this