Progress of Cryogenic Deformation and Strengthening-Toughening Mechanisms of High-Entropy Alloys
Received date: 2022-11-21
Revised date: 2023-03-20
Online published: 2023-04-06
Supported by
National Key Research and Development Program of China(2022YFE0110800);National Key Research and Development Program of China(2021YFB3702300);National Natural Science Foundation of China(52101169);National Natural Science Foundation of China(52273280)
Owing to the multi-principal element and higher intrinsic configurational entropy, high-entropy alloys exhibit excellent mechanical and physicochemical performance, which has garnered extensive attention from researchers. By virtue of the excellent performances in terms of superior strength, ductility, toughness, impact resistance property, and adjustable phase stability, especially in cryogenic environments, high-entropy alloys have broad application prospects in fields such as deep-space exploration, low temperature superconducting, and the gas industry. In this paper, the deformation and strengthening-toughening mechanisms of high-entropy alloys are summarized by reviewing the cryogenic progress. Furthermore, the promising research directions of high-entropy alloys in cryogenic engineering application combined with the performance of traditional cryogenic materials are also presented.
LIU Junpeng , CHEN Hao , ZHANG Chi , YANG Zhigang , ZHANG Yong , DAI Lanhong . Progress of Cryogenic Deformation and Strengthening-Toughening Mechanisms of High-Entropy Alloys[J]. Acta Metall Sin, 2023 , 59(6) : 727 -743 . DOI: 10.11900/0412.1961.2022.00598
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