Thermodynamics‐Guided High‐Throughput Discovery of Eutectic High‐Entropy Alloys for Rapid Solidification

Author:

Han Liuliu1,Sun Zhongji2ORCID,Xia Wenzhen3,Tsai Shao‐Pu4,Zhang Xukai1,Rao Jing1,Wang Pei2,Ngo Andrew Chun Yong2,Li Zhiming5,Liu Yong6,Raabe Dierk1

Affiliation:

1. Max‐Planck‐Institut für Eisenforschung Max‐Planck‐Straße 1 40237 Düsseldorf Germany

2. Institute of Materials Research and Engineering Agency for Science Technology and Research Singapore 138634 Singapore

3. School of Metallurgical Engineering Anhui University of Technology Maanshan 243002 China

4. Department of Materials Science and Engineering National Taiwan University Taipei 10617 Taiwan

5. School of Materials Science and Engineering Central South University Changsha 410083 China

6. State Key Laboratory of Powder Metallurgy Central South University Changsha 410083 China

Abstract

AbstractExcellent castability, significantly refined microstructure, and good mechanical properties make eutectic high‐entropy alloys (EHEAs) a natural fit for rapid solidification processes, e.g., additive manufacturing. Previous investigations have focused on developing EHEAs through trial and error and mixing known binary eutectic materials. However, eutectic compositions obtained from near‐equilibrium conditions do not guarantee a fully eutectic microstructure under rapid solidifications. In this work, a thermodynamically guided high‐throughput framework is proposed to design EHEAs for rapid solidification. Empirical formulas derived from past experimental observations and thermodynamic computations are applied and considered phase growth kinetics under rapid solidification (skewed phase diagram). The designed alloy candidate, Co25.6Fe17.9Ni22.4Cr19.1Ta8.9Al6.1 (wt.%), contains nanostructured eutectic lamellar and shows a high Vickers hardness of 675 Hv. In addition to this specific composition, the alloy design toolbox enables the development of new EHEAs for rapid solidification without the limitation of previous knowledge.

Funder

China Scholarship Council

Publisher

Wiley

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