Show/Hide Menu
Hide/Show Apps
Logout
Türkçe
Türkçe
Search
Search
Login
Login
OpenMETU
OpenMETU
About
About
Open Science Policy
Open Science Policy
Open Access Guideline
Open Access Guideline
Postgraduate Thesis Guideline
Postgraduate Thesis Guideline
Communities & Collections
Communities & Collections
Help
Help
Frequently Asked Questions
Frequently Asked Questions
Guides
Guides
Thesis submission
Thesis submission
MS without thesis term project submission
MS without thesis term project submission
Publication submission with DOI
Publication submission with DOI
Publication submission
Publication submission
Supporting Information
Supporting Information
General Information
General Information
Copyright, Embargo and License
Copyright, Embargo and License
Contact us
Contact us
Influence of the heat treatment on the microstructure, mechanical and high-temperature oxidation behavior of Hastelloy X alloy fabricated via laser powder bed fusion
Date
2025-01-25
Author
Ozer, Seren
Yalçın, Mustafa Alp
Bilgin, Güney Mert
Davut, Kemal
Esen, Ziya
Dericioğlu, Arcan Fehmi
Metadata
Show full item record
This work is licensed under a
Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License
.
Item Usage Stats
20
views
0
downloads
Cite This
The effect of building direction and heat treatment on the microstructure, mechanical properties, and high-temperature oxidation behavior of Hastelloy X (HX) alloy fabricated by the laser powder bed fusion (L-PBF) method was studied. Electron backscatter diffraction analyses revealed that the development of textured columnar grains with varying average grain sizes, boundary fractions, and dislocation densities induced the mechanical anisotropy observed in both horizontally and vertically fabricated samples. The yield strength (YS) values of the horizontally and vertically as-fabricated samples were determined as 605.7 ± 15.9 MPa and 552.3 ± 8.5 MPa, respectively. The post-processing heat treatment increased the ductility remarkably and reduced YS value down to ∼445 MPa for all samples by the elimination of microstructural anisotropy and increased grain size subsequent to recrystallization. Oxidation tests conducted at 900 °C up to 100 h on as-fabricated samples exhibited severe intergranular oxidation, which was accompanied by the formation of large voids and microcracks as well as spallation of the oxide layer. In contrast, the heat-treatment improved the oxidation resistance of the alloy possibly due to the formation of uniform and dense Cr₂O₃ layer on the substrate surface.
Subject Keywords
EBSD analysis
,
Hastelloy X
,
Heat treatment
,
High-temperature oxidation behavior
,
L-PBF
,
Mechanical properties
URI
https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=85214346388&origin=inward
https://hdl.handle.net/11511/113297
Journal
Journal of Alloys and Compounds
DOI
https://doi.org/10.1016/j.jallcom.2025.178465
Collections
Department of Metallurgical and Materials Engineering, Article
Citation Formats
IEEE
ACM
APA
CHICAGO
MLA
BibTeX
S. Ozer, M. A. Yalçın, G. M. Bilgin, K. Davut, Z. Esen, and A. F. Dericioğlu, “Influence of the heat treatment on the microstructure, mechanical and high-temperature oxidation behavior of Hastelloy X alloy fabricated via laser powder bed fusion,”
Journal of Alloys and Compounds
, vol. 1012, pp. 0–0, 2025, Accessed: 00, 2025. [Online]. Available: https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=85214346388&origin=inward.