PG-EAM - Graduate Program in Aeronautical and Mechanical Engineering
PT EN
Article 2025

Directed Energy Deposition-Laser Beam of Semi-Austenitic Precipitation-Hardening Stainless Steel

Authors

Barbosa, Alex Lourenço
Mariani, Fábio Edson
Pereira, Fernanda Mariano
Cintho, Osvaldo Mitsuyuki
Coelho, Reginaldo Teixeira
Gargarella, Piter

Journal of Manufacturing and Materials Processing , vol. 9 , no. 4 , Article 114

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Citations
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Authors

Abstract

© 2025 by the authors.Directed Energy Deposition-Laser Beam (DED-LB) is an ideal Additive Manufacturing (AM) process to obtain very complex geometries, which can be important for several applications in industries such as aerospace and biomedical engineering. The present study aims to determine optimized DED-LB parameters for printing 17-7 PH stainless steel, a semi-austenitic precipitation-hardening alloy renowned for its exceptional combination of high yield strength, toughness, and corrosion resistance. The experimental work used different combinations of laser power, scanning speed, and powder feed rate to investigate the effects on the morphology, surface roughness, and microstructure of the deposited material. The results indicated that a powder feed rate of 4.7 g/min yielded uniform beads, reduced surface roughness, and increased substrate dilution, enhancing the metallurgical bond between the bead and substrate. Conversely, higher feed rates, such as a rate of 9.2 g/min, resulted in increased surface irregularities due to an excessive amount of partially melted powder particles. Microstructural analysis, supported by thermodynamic calculations, confirmed a ferritic–austenitic solidification mode. The austenite and ferrite fractions varied significantly, depending mainly on the substrate dilution due to the decrease in aluminum content. The combination of 400 W laser power and a 2000 mm/min scanning speed resulted in the optimal set of parameters, with an approximately 30% dilution and 80% austenite.

Keywords

additive manufacturing directed energy deposition microstructure precipitation-hardening stainless steels process optimization surface roughness

Mechanics of Materials (ENGI) Mechanical Engineering (ENGI) Industrial and Manufacturing Engineering (ENGI)
: Scopus
Last Update: 2026-06-25
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