January 2024

Journal

Dispersoid coarsening and slag formation during melt-based additive manufacturing of MA754

By:
Stubbs, Timothy; Hou, Roger; Leonard, Donovan N; Debeer-Schmitt, Lisa M; Zhu, Yuman; Cordero, Zachary; Huang, Aijun
Journal Name:
Additive Manufacturing Letters
Page Number:
100195-100195
Volume:
9
Issue Number:
n/a
Publication Date:
January 31, 2024
View DOI Listing:
https://doi.org/10.1016/j.addlet.2024.100195

Abstract

We have assessed the structural evolution and dispersoid coarsening behaviors of the oxide dispersion-strengthened superalloy MA754 during two different melt-based additive manufacturing techniques – metal laser powder bed fusion (PBF-LB/M) and directed energy deposition (DED). The mechanically alloyed MA754 powder posed challenges for both processes due to its irregular flaky morphology and large particle size. Successful consolidation with PBF-LB/M required increasing the layer height, decreasing the scanning speed, and increasing the laser power relative to typical Ni superalloy printing parameters. The resulting materials contained residual porosity and large Y-Al-oxide slag inclusions which formed in situ. The more prolonged thermal excursion during DED resulted in even larger, mm-scale slag inclusions, which spanned several build layers. In both PBF-LB/M and DED, these inclusions grew at the expense of nanoscale dispersoids, depleting the material of this strengthening phase. These observations motivate alternative approaches for preparing dispersion-strengthened powder feedstocks besides mechanical alloying and highlight the deleterious effects of Al microalloying on dispersoid stability and structure.


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