Back to Search Start Over

Revealing the mechanical behavior of Ti48-xZrxHf26Nb26 high-entropy alloy through zirconium content variations.

Authors :
Zhang, Cong
Xie, Shuyi
Li, Xi
Sun, Ruixia
Liu, Binbin
Liu, Wei
Yu, Qiuying
Xiong, Huaping
Zhang, Ruijie
Yin, Haiqing
Source :
Journal of Alloys & Compounds. Jul2024, Vol. 992, pN.PAG-N.PAG. 1p.
Publication Year :
2024

Abstract

Refractory high-entropy alloys (RHEAs) composed of Ti, Zr, Hf, and Nb have emerged as promising materials for high-temperature aerospace applications due to their exceptional balance of strength and toughness, coupled with a reduced density and softening resistance. This study delves into the influence of alloy composition on the mechanical properties, a pivotal aspect in the design of RHEAs. We investigate a series of Ti 48-x Zr x Hf 26 Nb 26 (x = 14, 18, 22, 26, 30, 34) alloys, prepared through suction casting and homogenization treatments. The phases, microstructure, and fracture morphology of these alloys are analyzed using X-ray diffraction (XRD), scanning electron microscopy (SEM), and electron backscattered diffraction (EBSD), subsequent tensile tests provide insights into the strength and elongation characteristics of alloys. The homogenized alloys consistently exhibit one BCC phase with equiaxed grains, whereas the fracture mode shifts from intergranular to transgranular, and return to intergranular as the Zr content increases. Experimental results reveal an asymmetry mechanical behavior, alloys with higher Ti content display superior toughness (elongation 17.83 % for Ti = 34 at%) compared to those with higher Zr content (elongation 16.05 % for Zr = 34 at%). Among them, the Ti 22 Zr 26 Hf 26 Nb 26 alloy achieves the peak tensile strength of 695.25 MPa, indicating an inverse relationship between strength and toughness. Solid-solution strengthening and chemical short-range orderings emerge as the predominant contributors to the overall strength of the TiZrHfNb alloys. To gain a deeper understanding of the mechanical behavior at the atomic scale, we performed first-principles calculations to investigate the elastic properties and charge density of Ti 48-x Zr x Hf 26 Nb 26 alloys in the BCC structure. These calculations shed light on the underlying mechanisms governing the strength and toughness behavior. The present work offers valuable insights into the design of mechanical properties of TiZrHfNb RHEAs, serving as a paradigm for future materials development in this field. • Microstructure and mechanical behaviors of TiZrHfNb RHEAs are investigated. • The asymmetrical tensile strength and elongation exhibited, alloys with a lower content of Zr have superior toughness. • DFT calculations of the elastic modulus and charge density are performed to elucidate the experimental findings. • CSROs and solid-solution strengthening significantly contribute to tensile strength, the peak value reaching 695.25 MPa. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
09258388
Volume :
992
Database :
Academic Search Index
Journal :
Journal of Alloys & Compounds
Publication Type :
Academic Journal
Accession number :
177026908
Full Text :
https://doi.org/10.1016/j.jallcom.2024.174578