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Published in: Journal of Materials Engineering and Performance 7/2021

07-05-2021

Characterization and Optimization of Process Parameters for Directed Energy Deposition Powder-Fed Laser System

Authors: German Barragan, Daniel Andres Rojas Perilla, Johan Grass Nuñez, Fabio Mariani, Reginaldo Coelho

Published in: Journal of Materials Engineering and Performance | Issue 7/2021

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Abstract

Laser-directed energy deposition (L-DED) is a type of additive manufacturing (AM) technology that allows the manufacture of complex geometry components in a layer-by-layer way and can be considered an emerging manufacturing technique. The process efficiency and properties of produced parts are closely linked to its parameters, i.e., laser power, deposition speed, material flow rate and, inert gas flows. These operational parameters usually are different depending on the machine and material employed. The best combination of process parameters is fundamental to obtain the best characteristics together with process sustainability for each manufactured component. At the present work, an L-DED head and a powder feeding system are combined in a particular machine to deposit Inconel 625 on a substrate made of AISI 304 stainless steel. A combination of analytical studies, CFD simulations, and experimental tests was carried out, finding a process setting that offers a higher concentration of particles, quality depositions, and optimal cooling rates, reducing gas and material consumption during the process. After some in-situ tests, the best results were employed to fabricate thin wall structures and solid components. The specimens were characterized by laser confocal microscopy, roughness, and Vickers microhardness measurements, finding exciting results with a significant reduction in gas consumption and metal powder usage.

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Literature
1.
go back to reference M.N. Niaki, S.A. Torabi and F. Nonino, Why Manufacturers Adopt Additive Manufacturing Technologies: The Role Of Sustainability, J. Clean. Prod., 2019, 222(381–392), p 381–392.CrossRef M.N. Niaki, S.A. Torabi and F. Nonino, Why Manufacturers Adopt Additive Manufacturing Technologies: The Role Of Sustainability, J. Clean. Prod., 2019, 222(381–392), p 381–392.CrossRef
2.
go back to reference D. Gu, Laser Additive Manufacturing of High-Performance Materials, Springer, Berlin, 2015.CrossRef D. Gu, Laser Additive Manufacturing of High-Performance Materials, Springer, Berlin, 2015.CrossRef
3.
go back to reference S.M. Thompson, L. Bian, N. Shamsaei and A. Yadollahi, An Overview of Direct Laser Deposition for Additive Manufacturing; Part I: Transport Phenomena, Modeling and Diagnostics, Addit. Manuf., 2015, 8, p 36–62. S.M. Thompson, L. Bian, N. Shamsaei and A. Yadollahi, An Overview of Direct Laser Deposition for Additive Manufacturing; Part I: Transport Phenomena, Modeling and Diagnostics, Addit. Manuf., 2015, 8, p 36–62.
4.
go back to reference A. Dass and A. Moridi, State of the Art in Directed Energy Deposition: From Additive Manufacturing to Materials Design, Coatings, 2019, 9(7), p 418.CrossRef A. Dass and A. Moridi, State of the Art in Directed Energy Deposition: From Additive Manufacturing to Materials Design, Coatings, 2019, 9(7), p 418.CrossRef
5.
go back to reference N. Shamsaei, A. Yadollahi, L. Bian and S.M. Thompson, An Overview of Direct Laser Deposition for Additive Manufacturing; Part II: Mechanical Behavior, Process Parameter Optimization and Control, Addit. Manuf., 2015, 8, p 12–35. N. Shamsaei, A. Yadollahi, L. Bian and S.M. Thompson, An Overview of Direct Laser Deposition for Additive Manufacturing; Part II: Mechanical Behavior, Process Parameter Optimization and Control, Addit. Manuf., 2015, 8, p 12–35.
6.
go back to reference R. Vilar, Laser Powder Deposition, Comprehensive Materials Processing. Elsevier, Lisboa, 2014, p 163–216CrossRef R. Vilar, Laser Powder Deposition, Comprehensive Materials Processing. Elsevier, Lisboa, 2014, p 163–216CrossRef
7.
go back to reference I. Prestes, Laser Metal Deposition Parameter Analysis Based on Morphological, Metallurgical and Efficiency Aspects, InstitutoTecnologico de Aeronautica, Sao Jose Dos Campos, 2020. I. Prestes, Laser Metal Deposition Parameter Analysis Based on Morphological, Metallurgical and Efficiency Aspects, InstitutoTecnologico de Aeronautica, Sao Jose Dos Campos, 2020.
8.
go back to reference M. Rozmus-Górnikowska, J. Kusiński and L. Cieniek, Effect of Laser Shock Peening on the Microstructure and Properties of the Inconel 625 Surface Layer, J. Mater. Eng. Perform., 2020, 29, p 1544–1549.CrossRef M. Rozmus-Górnikowska, J. Kusiński and L. Cieniek, Effect of Laser Shock Peening on the Microstructure and Properties of the Inconel 625 Surface Layer, J. Mater. Eng. Perform., 2020, 29, p 1544–1549.CrossRef
9.
go back to reference K. Winans, A. Kendall and H. Deng, The History and Current Applications of the Circular Economy Concept, Renew. Sustain. Energy Rev., 2017, 68(1), p 825–833.CrossRef K. Winans, A. Kendall and H. Deng, The History and Current Applications of the Circular Economy Concept, Renew. Sustain. Energy Rev., 2017, 68(1), p 825–833.CrossRef
11.
go back to reference T. Bhardwaj, M. Shukla, C.P. Paul and K.S. Bindra, Direct Energy Deposition-Laser Additive Manufacturing of Titanium-Molybdenum Alloy: Parametric Studies, Microstructure and Mechanical Properties, J. Alloy. Compd., 2019, 787, p 1238–1248.CrossRef T. Bhardwaj, M. Shukla, C.P. Paul and K.S. Bindra, Direct Energy Deposition-Laser Additive Manufacturing of Titanium-Molybdenum Alloy: Parametric Studies, Microstructure and Mechanical Properties, J. Alloy. Compd., 2019, 787, p 1238–1248.CrossRef
13.
go back to reference Z.J. Zhai, Z. Zhang, W. Zhang and Q.Y. Chen, Evaluation of Various Turbulence Models in Predicting Airflow and Turbulence in Enclosed Environments by CFD: Part 1-Summary of Prevalent Turbulence Models, HVAC & R Res., 2007, 13(6), p 853–870.CrossRef Z.J. Zhai, Z. Zhang, W. Zhang and Q.Y. Chen, Evaluation of Various Turbulence Models in Predicting Airflow and Turbulence in Enclosed Environments by CFD: Part 1-Summary of Prevalent Turbulence Models, HVAC & R Res., 2007, 13(6), p 853–870.CrossRef
14.
go back to reference S. Wang, J.R. Bell, D. Burton, A. Herbst, J. Sheridan and M.C. Thompson, The Performance of Different Turbulence Models (URANS, SAS and DES) for Predicting High-Speed Train Slipstream, J. Wind Eng. Ind. Aerodyn., 2017, 165, p 46–57.CrossRef S. Wang, J.R. Bell, D. Burton, A. Herbst, J. Sheridan and M.C. Thompson, The Performance of Different Turbulence Models (URANS, SAS and DES) for Predicting High-Speed Train Slipstream, J. Wind Eng. Ind. Aerodyn., 2017, 165, p 46–57.CrossRef
15.
go back to reference P.R. Spalart and S.R. Allmaras, One-Equation Turbulence Model for Aerodynamic Flows, Rechercheaerospatiale, 1994, 1, p 5–21. P.R. Spalart and S.R. Allmaras, One-Equation Turbulence Model for Aerodynamic Flows, Rechercheaerospatiale, 1994, 1, p 5–21.
16.
go back to reference S. Murakami, Overview of Turbulence Models Applied in CWE–1997, J. Wind Eng. Ind. Aerodyn., 1998, 74–76, p 1–24.CrossRef S. Murakami, Overview of Turbulence Models Applied in CWE–1997, J. Wind Eng. Ind. Aerodyn., 1998, 74–76, p 1–24.CrossRef
17.
go back to reference Y. Liu, L. Lu, L. Fang and F. Gao, Modification of Spalart-Allmaras Model with Consideration of Turbulence Energy Backscatter Using Velocity Helicity, Phys. Lett. A, 2011, 375(24), p 2377–2381.CrossRef Y. Liu, L. Lu, L. Fang and F. Gao, Modification of Spalart-Allmaras Model with Consideration of Turbulence Energy Backscatter Using Velocity Helicity, Phys. Lett. A, 2011, 375(24), p 2377–2381.CrossRef
18.
go back to reference J. Blazek, Computational Fluid Dynamics: Principles and Applications, Elsevier, Amsterdam, 2005. J. Blazek, Computational Fluid Dynamics: Principles and Applications, Elsevier, Amsterdam, 2005.
19.
go back to reference A. Saboori, A. Aversa, F. Bosio, E. Bassini, E. Librera, M. De Chirico, S. Biamino, D. Ugues, P. Fino and M. Lombardi, An investigation on the Effect of Powder Recycling on the Microstructure and Mechanical Properties of AISI 316L Produced by Directed Energy Deposition, Mater. Sci. Eng.: A, 2019, 766, p 138360.CrossRef A. Saboori, A. Aversa, F. Bosio, E. Bassini, E. Librera, M. De Chirico, S. Biamino, D. Ugues, P. Fino and M. Lombardi, An investigation on the Effect of Powder Recycling on the Microstructure and Mechanical Properties of AISI 316L Produced by Directed Energy Deposition, Mater. Sci. Eng.: A, 2019, 766, p 138360.CrossRef
20.
go back to reference S.K. Nayak, S.K. Mishra, A.N. Jinoop, C.P. Paul and K.S. Bindra, Experimental Studies on Laser Additive Manufacturing of Inconel-625 Structures Using Powder Bed Fusion at 100 µm Layer Thickness, J. Mater. Eng. Perform., 2020, 29(11), p 7636–7647.CrossRef S.K. Nayak, S.K. Mishra, A.N. Jinoop, C.P. Paul and K.S. Bindra, Experimental Studies on Laser Additive Manufacturing of Inconel-625 Structures Using Powder Bed Fusion at 100 µm Layer Thickness, J. Mater. Eng. Perform., 2020, 29(11), p 7636–7647.CrossRef
21.
go back to reference S. Cecchel, D. Ferrario, C. Mondini, M. Montani and B. Previtali, Application of Laser Metal Deposition for a New Model of Assembled Camshaft, J. Mater. Eng. Perform., 2019, 28, p 7756–7767.CrossRef S. Cecchel, D. Ferrario, C. Mondini, M. Montani and B. Previtali, Application of Laser Metal Deposition for a New Model of Assembled Camshaft, J. Mater. Eng. Perform., 2019, 28, p 7756–7767.CrossRef
Metadata
Title
Characterization and Optimization of Process Parameters for Directed Energy Deposition Powder-Fed Laser System
Authors
German Barragan
Daniel Andres Rojas Perilla
Johan Grass Nuñez
Fabio Mariani
Reginaldo Coelho
Publication date
07-05-2021
Publisher
Springer US
Published in
Journal of Materials Engineering and Performance / Issue 7/2021
Print ISSN: 1059-9495
Electronic ISSN: 1544-1024
DOI
https://doi.org/10.1007/s11665-021-05762-9

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