TY - JOUR
T1 - Elemental partitioning as a route to design precipitation-hardened high entropy alloys
AU - He, Feng
AU - Han, Bin
AU - Yang, Zhongsheng
AU - Chen, Da
AU - Yeli, Guma
AU - Tong, Yang
AU - Wei, Daixiu
AU - Li, Junjie
AU - Wang, Zhijun
AU - Wang, Jincheng
AU - Kai, Ji jung
N1 - Funding Information:
This work was financially supported by the Hong Kong Research Grant Council (Nos. CityU 11212915 and CityU 11205018 ), the National Natural Science foundation of China (Nos. 51771149 , 52001266, and 51901119 ), and Natural Science Foundation of ShaanXi Province in China (No. 2020JQ-720 ). Feng He and Zhijun Wang would like to thank Dr. Wenquan Zhou for his support in data analysis.
Funding Information:
This work was financially supported by the Hong Kong Research Grant Council (Nos. CityU 11212915 and CityU 11205018), the National Natural Science foundation of China (Nos. 51771149, 52001266, and 51901119), and Natural Science Foundation of ShaanXi Province in China (No. 2020JQ-720). Feng He and Zhijun Wang would like to thank Dr. Wenquan Zhou for his support in data analysis.
Publisher Copyright:
© 2020
PY - 2021/5/10
Y1 - 2021/5/10
N2 - Precipitation-hardened high entropy alloys (HEAs) with carefully tuned compositions have shown excellent mechanical properties, demonstrating great potential for engineering applications. However, due to the lack of precise multiple phase diagrams, the composition design of multi-principal-component HEAs still inevitably relies on the extremely time-consuming trial-and-error approach. The present study, on the basis of powerful composition quantification ability of atom probe tomography (APT) technology, proposed a framework to guide the quantitative design of precipitation-hardened HEAs. In this framework, the elemental partitioning was used as a crucial route to avoid the thermodynamic challenge of designing precipitation-hardened HEAs. As a case study, the role of Ti/Al ratio in the design of γ-γ′ HEAs was predicted through the proposed framework and then validated by experimental studies. The framework predicted that when the total content of Ti and Al is fixed, a higher Ti/Al ratio makes γ-γ′ HEA stronger. APT and mechanical results agreed well with these predictions and validated the feasibility of the framework. These findings provided a new route to design the precipitation-hardened alloys and a deeper insight into the design of γ-γ′ HEA.
AB - Precipitation-hardened high entropy alloys (HEAs) with carefully tuned compositions have shown excellent mechanical properties, demonstrating great potential for engineering applications. However, due to the lack of precise multiple phase diagrams, the composition design of multi-principal-component HEAs still inevitably relies on the extremely time-consuming trial-and-error approach. The present study, on the basis of powerful composition quantification ability of atom probe tomography (APT) technology, proposed a framework to guide the quantitative design of precipitation-hardened HEAs. In this framework, the elemental partitioning was used as a crucial route to avoid the thermodynamic challenge of designing precipitation-hardened HEAs. As a case study, the role of Ti/Al ratio in the design of γ-γ′ HEAs was predicted through the proposed framework and then validated by experimental studies. The framework predicted that when the total content of Ti and Al is fixed, a higher Ti/Al ratio makes γ-γ′ HEA stronger. APT and mechanical results agreed well with these predictions and validated the feasibility of the framework. These findings provided a new route to design the precipitation-hardened alloys and a deeper insight into the design of γ-γ′ HEA.
KW - Alloy design
KW - Atom probe tomography
KW - Elemental partitioning
KW - High entropy alloys
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U2 - 10.1016/j.jmst.2020.09.021
DO - 10.1016/j.jmst.2020.09.021
M3 - Article
AN - SCOPUS:85092066399
SN - 1005-0302
VL - 72
SP - 52
EP - 60
JO - Journal of Materials Science and Technology
JF - Journal of Materials Science and Technology
ER -