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Effects of volumetric energy density on melting modes, printability, microstructures, and mechanical properties of laser powder bed fusion (L-PBF) printed pure nickel

Yue, Tianyang; Zou, Zhiyi; Zhang, Sheng; Liu, Haodong; Chen, Qingyu; Wen, Wei; Zang, Yong

Authors

Tianyang Yue

ZHIYI ZOU Zhiyi.Zou2@nottingham.ac.uk
Research Fellow

Sheng Zhang

Haodong Liu

Qingyu Chen

Wei Wen

Yong Zang



Abstract

Volumetric energy density (VED) is a fundamental criterion for the laser powder bed fusion (L-PBF) process, influencing various forming characteristics. This study employed L-PBF to print pure nickel (Ni) using different VEDs across various melting modes. The thermodynamics in the different melt pools, obtained microstructural features, and tensile properties were characterized and investigated. The results reveal a higher likelihood of keyhole mode melt pool formation than the conduction mode due to the peak temperature exceeding 3005 K. The larger size and slower cooling rate of the keyhole mode melt pool facilitate the formation of cellular subgrains in the central zone and the overall grain coarsening. Compared to the conduction mode, the microstructure in the keyhole mode exhibits a higher dislocation density and a distinct distribution pattern for each type of dislocation. Unlike the L-PBF of commercial Ni alloys, where alloy element distribution significantly impacts tensile performance, the tensile performance of L-PBF Ni is governed by the interaction between grain morphology, dislocation density and distribution.

Citation

Yue, T., Zou, Z., Zhang, S., Liu, H., Chen, Q., Wen, W., & Zang, Y. (2024). Effects of volumetric energy density on melting modes, printability, microstructures, and mechanical properties of laser powder bed fusion (L-PBF) printed pure nickel. Materials Science and Engineering: A, 909, Article 146871. https://doi.org/10.1016/j.msea.2024.146871

Journal Article Type Article
Acceptance Date Jun 21, 2024
Online Publication Date Jun 26, 2024
Publication Date 2024-09
Deposit Date Sep 27, 2024
Publicly Available Date Jun 27, 2026
Journal Materials Science and Engineering: A
Print ISSN 0921-5093
Electronic ISSN 0921-5093
Publisher Elsevier
Peer Reviewed Peer Reviewed
Volume 909
Article Number 146871
DOI https://doi.org/10.1016/j.msea.2024.146871
Keywords Laser powder bed fusion; Pure nickel; Forming characteristics; Volumetric energy density; Grain morphology; Dislocation
Public URL https://nottingham-repository.worktribe.com/output/39998312
Publisher URL https://linkinghub.elsevier.com/retrieve/pii/S0921509324008025