Document details

Stainless and low-alloy steels additively manufactured by micro gas metal arc-based directed energy deposition

Author(s): Dornelas, Paulo Henrique Grossi ; Farias, Francisco Werley Cipriano ; da Silva, Tadeu C. ; da Cruz Payão Filho, João ; Ramos, A. S. ; Oliveira, J. P. ; Santos, Telmo G.

Date: 2024

Persistent ID: http://hdl.handle.net/10362/181431

Origin: Repositório Institucional da UNL

Project/scholarship: info:eu-repo/grantAgreement/FCT/6817 - DCRRNI ID/UIDB%2F00667%2F2020/PT; info:eu-repo/grantAgreement/FCT/6817 - DCRRNI ID/UIDP%2F00667%2F2020/PT; info:eu-repo/grantAgreement/FCT//2021.05298.BD/PT; info:eu-repo/grantAgreement/FCT//2022.13870.BD/PT; info:eu-repo/grantAgreement/FCT/6817 - DCRRNI ID/LA%2FP%2F0037%2F2020/PT; info:eu-repo/grantAgreement/FCT/Concurso de avaliação no âmbito do Programa Plurianual de Financiamento de Unidades de I&D (2017%2F2018) - Financiamento Programático/UIDP%2F50025%2F2020/PT; info:eu-repo/grantAgreement/FCT/Concurso de avaliação no âmbito do Programa Plurianual de Financiamento de Unidades de I&D (2017%2F2018) - Financiamento Base/UIDB%2F50025%2F2020/PT; info:eu-repo/grantAgreement/FCT/Concurso de avaliação no âmbito do Programa Plurianual de Financiamento de Unidades de I&D (2017%2F2018) - Financiamento Base/UIDB%2F00285%2F2020/PT; info:eu-repo/grantAgreement/FCT/Concurso para Atribuição do Estatuto e Financiamento de Laboratórios Associados (LA)/LA%2FP%2F0112%2F2020/PT;

Subject(s): Direct-energy deposition; Micro-additive manufacturing; Process downscaling; Industrial and Manufacturing Engineering; Direct-energy deposition; Direct-energy deposition; Micro-additive manufacturing; Micro-additive manufacturing; Process downscaling; Process downscaling; Industrial and Manufacturing Engineering; Industrial and Manufacturing Engineering


Description

Funding Information: Open access funding provided by FCT|FCCN (b-on). Authors acknowledge the Portuguese Fundação para a Ciência e a Tecnologia (FCT—MCTES) for its financial support via the project UIDB/00667/2020 and UIDP/00667/2020 (UNIDEMI). P. H. G. Dornelas acknowledges FCT—MCTES for funding the PhD grant 2021.05298.BD. F. W. C. F acknowledges FCT-MCTES for funding the Ph.D. Grant 2022.13870.BD. JPO acknowledges funding by national funds from FCT—Fundação para a Ciência e a Tecnologia, I.P., in the scope of the projects LA/P/0037/2020, UIDP/50025/2020 and UIDB/50025/2020 of the Associate Laboratory Institute of Nanostructures, Nanomodelling and Nanofabrication—i3N. This research is sponsored by national funds through FCT—Fundação para a Ciência e a Tecnologia, under projects UIDB/00285/2020 and LA/P/0112/2020. This activity has received funding from the European Institute of Innovation and Technology (EIT) RawMaterials through the project Smart WAAM: Microstructural Engineering and Integrated Non-Destructive Testing. This body of the European Union receives support from the European Union's Horizon 2020 research and innovation programme. Publisher Copyright: © The Author(s) 2024.

Rising demands for miniaturization in industries such as aerospace and electronics have motivated advancements in metal additive manufacturing (AM), resulting in downscaled strategies using direct-energy deposition (DED) processes, now termed micro-DED (µ-DED). Within this context, micro gas metal arc DED (μ-GMA) has demonstrated the ability to deposit layers approximately 1 mm wide with a build rate of 30 cm3/h, positioning this technology between GMA-based DED and other µ-DED processes in terms of regarding dimensional accuracy and build rate. Despite promising initial results, further evaluation of the process impact on the microstructure and mechanical behavior of various alloys is necessary due to the pioneering nature of μ-GMA. The present work focuses on the evaluation of the microstructure (via scanning electron microscopy, energy dispersive spectroscopy, thermodynamic simulations, and electron backscatter diffraction analyses) and mechanical behavior (using nanoindentation maps) of single-layer depositions of low alloy and stainless steels using μ-GMA. In addition, traditional GMA-based DED using larger diameter wires was employed to deposit comparably alloys for further discussion. μ-GMA successively deposited a low-alloy steel with a microstructure composed of ferrite and martensite–austenite constituents, achieving a nanohardness (NH) of 3.1 GPa and an elastic modulus (NE) of 196 GPa. In addition, μ-GMA additively manufactured stainless steel with a microstructure composed of a γ matrix and δ-ferrite, exhibiting an NH of 3.7 GPa and an NE of 188 GPa. These results for both deposited materials are comparable to those reported in the literature for regular GMA-based DED depositions, indicating that this new variant has promising potential as a printing technology for small and detailed parts.

Document Type Journal article
Language English
Contributor(s) DEMI - Departamento de Engenharia Mecânica e Industrial; UNIDEMI - Unidade de Investigação e Desenvolvimento em Engenharia Mecânica e Industrial; DCM - Departamento de Ciência dos Materiais; CENIMAT-i3N - Centro de Investigação de Materiais (Lab. Associado I3N); RUN
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