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Influence of laser powder bed fusion process parameters on the microstructure of solution heat-treated nickel-based superalloy Alloy 247LC.

Authors :
Adegoke, Olutayo
Polisetti, Satyanarayana Rao
Xu, Jinghao
Andersson, Joel
Brodin, Håkan
Pederson, Robert
Harlin, Peter
Source :
Materials Characterization. Jan2022, Vol. 183, pN.PAG-N.PAG. 1p.
Publication Year :
2022

Abstract

In this study, Alloy 247LC samples were built with different laser powder bed fusion (L-PBF) process parameters. The samples were then subjected to solution heat treatment at 1260 °C for 2 h. The grain size of all the samples increased significantly after the heat treatment. The relationship between the process parameters and grain size of the samples was investigated by performing a design of experiment analysis. The results indicated that the laser power was the most significant process parameter that influenced the grain height and aspect ratio. The laser power also significantly influenced the grain width. The as-built and as-built + heat-treated samples with high, medium, and low energy densities were characterized using a field emission gun scanning electron microscope equipped with an electron backscatter diffraction detector. The micrographs revealed that the cells present in the as-built samples disappeared after the heat treatment. Isolated cases of twinning were observed in the grains of the as-built + heat-treated samples. The disappearance of cells, increase in the grain size, and appearance of twins suggested that recrystallization occurred in the alloy after the heat treatment. The occurrence of recrystallization was confirmed by analyzing the grain orientation spread of the alloy, which was lower and more predominantly <1° in the as-built + heat-treated conditions than in the as-built conditions. The microhardness of the as-built + heat-treated samples were high which was plausible because γ' precipitates were observed in the samples. However, the L-PBF process parameters had a very low correlation with the microhardness of the as-built + heat-treated samples. • The process parameter employed will affect the material condition obtained after heat-treatment. • The material condition that resisted cracking during the laser powder bed fusion process produced large grain size. • The heating rate required to avoid cracking during post processing heat-treatment was calculated. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
10445803
Volume :
183
Database :
Academic Search Index
Journal :
Materials Characterization
Publication Type :
Academic Journal
Accession number :
154143210
Full Text :
https://doi.org/10.1016/j.matchar.2021.111612