Investigation of process characteristics of quasi-continuous-wave laser-based directed energy deposition

Yijie Peng, Wei Fan, Yongxia Wang, Hua Tan, Fengying Zhang, Xin Lin

Research output: Contribution to journalArticlepeer-review

2 Scopus citations

Abstract

Directed energy deposition (DED) is an advanced additive manufacturing technique that has garnered considerable success in various industrial sectors. However, the conventional continuous-wave laser mode employed in DED often results in excessive heat buildup and coarse microstructure, leading to compromised performance. The utilization of quasi-continuous-wave laser-based DED (QCW-DED) has emerged as a promising solution to these challenges. Nevertheless, limited understanding of the process characteristics associated with QCW-DED has impeded further exploration of thermal and microstructural control. Therefore, this study aims to comprehensively evaluate QCW-DED process characteristics, including deposition point morphology and surface quality, through a combination of experimental measurements and simulation analysis. The findings indicate that the height of the deposition point is primarily governed by heat and mass transfer, while the diameter is predominantly influenced by heat transfer. Consequently, optimizing process parameters based solely on laser input energy calculations is inadequate for QCW-DED. Furthermore, the phenomenon of powder adhesion was observed to accumulate more prominently at the periphery of the deposition point rather than in its central region. As a result, suggesting higher laser power and shorter laser exposure time is recommended to enhance the quality of the deposition point and mitigate powder adhesion issues.

Original languageEnglish
Article number111023
JournalOptics and Laser Technology
Volume176
DOIs
StatePublished - Sep 2024

Keywords

  • Additive manufacturing
  • Directed energy deposition
  • Process characteristics
  • Quasi-continuous-wave laser
  • Surface quality

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