Department of Materials Science and Engineering, The University of Tennessee, USA.
School of Mathematics and Statistics, Zhengzhou University, China.
Sci Rep. 2016 Jul 20;6:29798. doi: 10.1038/srep29798.
The statistical and dynamic analyses of the serrated-flow behavior in the nanoindentation of a high-entropy alloy, Al0.5CoCrCuFeNi, at various holding times and temperatures, are performed to reveal the hidden order associated with the seemingly-irregular intermittent flow. Two distinct types of dynamics are identified in the high-entropy alloy, which are based on the chaotic time-series, approximate entropy, fractal dimension, and Hurst exponent. The dynamic plastic behavior at both room temperature and 200 °C exhibits a positive Lyapunov exponent, suggesting that the underlying dynamics is chaotic. The fractal dimension of the indentation depth increases with the increase of temperature, and there is an inflection at the holding time of 10 s at the same temperature. A large fractal dimension suggests the concurrent nucleation of a large number of slip bands. In particular, for the indentation with the holding time of 10 s at room temperature, the slip process evolves as a self-similar random process with a weak negative correlation similar to a random walk.
对高熵合金 Al0.5CoCrCuFeNi 在不同保载时间和温度下的纳米压痕中锯齿形流动行为进行统计和动力学分析,以揭示与看似不规则的间歇流动相关的隐藏顺序。在高熵合金中识别出两种不同类型的动力学,它们基于混沌时间序列、近似熵、分形维数和赫斯特指数。在室温及 200°C 下的动态塑性行为均表现出正的 Lyapunov 指数,表明其潜在的动力学是混沌的。压痕深度的分形维数随温度的升高而增加,在相同温度下的保载时间为 10 s 时存在拐点。较大的分形维数表明大量的滑移带同时形核。特别是对于室温下保载时间为 10 s 的压痕,滑移过程表现为具有弱负相关性的自相似随机过程,类似于随机游走。