Selective Laser Melting of Non-Weldable Nickel Superalloy: Microstructure, Cracks and Texture

Author:

Starikov Kirill1,Polozov Igor1ORCID,Borisov Evgenii1,Kim Artem1,Voevodenko Daniil1,Gracheva Anna1,Shamshurin Alexey1,Popovich Anatoly1

Affiliation:

1. Institute of Mechanical Engineering, Materials, and Transport, Peter the Great St. Petersburg Polytechnic University (SPbPU), Polytechnicheskaya, 29, St. Petersburg 195251, Russia

Abstract

Additive manufacturing, particularly selective laser melting, presents exciting possibilities for fabricating components from high-temperature nickel-based superalloys. Controlling microstructural features and minimizing defects in fabricated specimens are critical challenges. This study explores the influence of process parameters on microstructure and defect formation in directionally solidified nickel-based superalloy specimens. We conducted a comprehensive analysis of selective laser melting process variables, including interdendritic spacing, crystallization times, and volumetric energy density. Electron backscatter diffraction analysis was employed to assess the feasibility of obtaining a directional structure in single-crystal nickel-based heat-resistant alloy specimens using selective laser melting. The study shows a significant correlation between reduced interdendritic spacing and increased defect formation. Longer crystallization times and higher volumetric energy density lead to decreased defect volumes and sizes. Electron backscatter diffraction analysis confirms the maintenance of preferential growth direction across subsequent layers. Our research underscores the importance of optimizing selective laser melting parameters, balancing refractory elements in alloy composition, and adopting strategies for enhancing crystallization times to minimize structural defects. This comprehensive approach ensures both heat resistance and minimal defects, facilitating the production of high-quality components. These findings contribute to advancing selective laser melting applications in critical industries like aerospace and power generation, where heat-resistant materials are paramount.

Funder

Russian Science Foundation

Publisher

MDPI AG

Subject

General Materials Science,Metals and Alloys

Reference22 articles.

1. Selective Laser Melting of Inconel 718 under High Laser Power;Borisov;Proc. Mater. Today Proc.,2019

2. Microstructure of the Nickel-Base Superalloy CMSX-4 Fabricated by Selective Electron Beam Melting;Ramsperger;Metall. Mater. Trans. A,2016

3. Gotterbarm, M.R., Rausch, A.M., and Körner, C. (2020). Fabrication of Single Crystals through a Μ-Helix Grain Selection Process during Electron Beam Metal Additive Manufacturing. Metals, 10.

4. Epitaxial Growth and Stray Grain Control toward Single-Crystal Metallic Materials by Additive Manufacturing: A Review;Liu;Adv. Eng. Mater.,2023

5. Popovich, V.A., Borisov, E.V., Heurtebise, V., Riemslag, T., Popovich, A.A., and Sufiiarov, V.S. (2018). TMS 2018 147th Annual Meeting & Exhibition Supplemental Proceedings, Springer International Publishing.

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