4.7 Article

Effect of physical aging and cyclic loading on power-law creep of high-entropy metallic glass

期刊

出版社

JOURNAL MATER SCI TECHNOL
DOI: 10.1016/j.jmst.2021.10.043

关键词

High-entropy metallic glass; Physical aging; Cyclic loading; Power-law creep; Shear transformation zone

资金

  1. National Natural Science Foundation of China (NSFC) [51971178]
  2. Natural Science Basic Research Plan for Distinguished Young Scholars in Shaanxi Province [2021JC-12]
  3. Natural Science Foundation of Chongqing [cstc2020jcyj-jqX0001]
  4. Innovation Foundation for Doctor Dissertation ofNorthwestern Polytechnical University [CX2021015]
  5. MICINN [PID2020-112975GB-I00]
  6. Generalitat de Catalunya [2017SGR0042]

向作者/读者索取更多资源

The influence of physical aging and cyclic loading on the power-law creep mechanism of a La30Ce30Ni10Al20Co10 high-entropy metallic glass was investigated. The results revealed significant discrepancies between thermal treatment and mechanical treatment in terms of the creep mechanism.
The power-law relationship between creep rate decay and time is one of the intrinsic characteristics of metallic glasses. In the current work, a La30Ce30Ni10Al20Co10 high-entropy metallic glass was selected as the model alloy to test the influences of physical aging and cyclic loading on the power-law creep mechanism, which was probed by the dynamic mechanical analysis in terms of the stochastic activation, and contiguous interplay and permeation of shear transformation zones. It is demonstrated that a notable discrepancy appears between thermal treatment and mechanical treatment on the power-law creep mechanism of this high-entropy metallic glass. On the one hand, physical aging below the glass transition temperature introduces the annihilation of potential shear transformation zones which contribute to creep. On the other hand, cyclic loading can tailor the forward jump operations competing with the backward ones of shear transformation zones by controlling the interval time (recovery time). The current research offers a new pathway towards understanding the creep mechanism of high-entropy metallic glasses. (C) 2022 Published by Elsevier Ltd on behalf of The editorial office of Journal of Materials Science & Technology.

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