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Effect of in-situ generated Fe3AlC0.5 on the microstructure and mechanical property of twin-wire directed energy deposition-arc fabricated Fe3Al based iron aluminide.

Authors :
Wang, Li
Shen, Chen
Zhang, Peilei
Zhang, Yuelong
Hua, Xueming
Li, Fang
Wang, Lin
Zhou, Wenlu
Wu, Kanglong
Ruan, Gang
Source :
Materials Characterization. Nov2023, Vol. 205, pN.PAG-N.PAG. 1p.
Publication Year :
2023

Abstract

Fe 3 Al-based iron aluminide alloys are known for their satisfactory resistance to corrosion, oxidation, and sulfidation at both ambient and elevated temperatures. However, the brittleness induced by the intermetallic nature of these alloys at room temperature significantly increases the manufacturing costs. To address this issue, a recent innovation called twin-wire directed energy deposition-arc (TW-DED-arc) technique has been developed to fabricate binary Fe 3 Al alloys with enhanced flexibility and cost-effectiveness. Building upon the feasibility validation of this technique, the present research aims to improve mechanical properties of TW-DED-arc fabricated Fe 30Al alloy by in-situ generation of Fe 3 AlC 0.5 precipitates within Fe 3 Al matrix. The experimental results demonstrate the successful production of the target Fe-30Al-0.3C-1Si-1Mn alloy. The reinforcement Fe 3 AlC 0.5 precipitates exhibit good adherence to Fe 3 Al matrix, effectively increasing the tensile strength by nearly 15%. During tensile fracture, Fe 3 AlC 0.5 precipitates are observed to obstruct crack propagation. Higher magnification characterization reveals clear dislocation entanglement occurring at Fe 3 AlC 0.5 precipitate, confirming this phenomenon. Furthermore, preferential precipitation of Fe 3 AlC 0.5 at grain boundaries induces clean areas adjacent to the grain boundaries. This has a dual effect: strengthening the grain boundaries and guiding crack propagations. • Fe 3 AlC 0.5 particles are in-situ generated in Fe 3 Al matrix by TW-DED-arc process. • Homogeneous distribution of Fe 3 AlC 0.5 particles is achieved throughout the deposit. • Effective grain refinement is achieved by precipitation of Fe 3 AlC 0.5 particles. • Strengthening mechanism by Fe 3 AlC 0.5 precipitation is clarified by EBSD and TEM. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
10445803
Volume :
205
Database :
Academic Search Index
Journal :
Materials Characterization
Publication Type :
Academic Journal
Accession number :
173474840
Full Text :
https://doi.org/10.1016/j.matchar.2023.113271