Surface & Coatings Technology2022,Vol.4375.DOI:10.1016/j.surfcoat.2022.128344

Quasi-continuous-wave laser directed energy deposition on inclined NV E690 steel plates: Melt pool and temperature evolution

Wang S. Ni Z. Sun G. Lu Y. Yang K. Wang Z. Chen M.
Surface & Coatings Technology2022,Vol.4375.DOI:10.1016/j.surfcoat.2022.128344

Quasi-continuous-wave laser directed energy deposition on inclined NV E690 steel plates: Melt pool and temperature evolution

Wang S. 1Ni Z. 1Sun G. 1Lu Y. 2Yang K. 1Wang Z. 1Chen M.1
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作者信息

  • 1. School of Mechanical Engineering and Jiangsu Key Laboratory for Design and Manufacture of Micro-Nano Biomedical Instruments Southeast University
  • 2. College of Mechanical and Electronic Engineering Nanjing Forestry University
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Abstract

© 2022 Elsevier B.V.A quasi-continuous-wave direct metal deposition (QCW-DMD), one of directed energy deposition (DED), with different pulse frequencies and duty cycles was performed on an inclined NV E690 steel plate. Comprehensive effects including the humping effect, the melt pool evolution process, the coalescence phenomenon, the deposition morphology, and the thermal behavior were investigated. The results show that during the continuous-wave direct metal deposition (CW-DMD) and the QCW-DMD with the pulse frequency of 1 Hz, the gravity-induced humping effect and the coalescence phenomenon contribute to the increase and decrease of the melt pool numbers, respectively. A small duty cycle leads to a decrease in the average melt pool numbers. Besides, the coalescence of melt pools is formed by establishing a liquid bridge which is first mainly driven by the surface tension and then by gravity. The humping effect is overcome when the pulse frequency ranges from 5 Hz to 50 Hz, presenting a small height variation. Furthermore, the QCW mode laser can modulate the powder catchment efficiency and produce a higher cooling rate that resulted in a higher microhardness.

Key words

Coalescence/Cooling rate/Humping/Laser additive manufacturing/Quasi-continuous-wave laser

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出版年

2022
Surface & Coatings Technology

Surface & Coatings Technology

ISTP
ISSN:0257-8972
参考文献量41
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