Shuying Chen
University of Tennessee
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Publication
Featured researches published by Shuying Chen.
Scientific Reports | 2015
Robert Carroll; Chi Lee; Che Wei Tsai; J.W. Yeh; James Antonaglia; Braden A. W. Brinkman; Michael LeBlanc; Xie Xie; Shuying Chen; Peter K. Liaw; Karin A. Dahmen
High-entropy alloys (HEAs) are new alloys that contain five or more elements in roughly-equal proportion. We present new experiments and theory on the deformation behavior of HEAs under slow stretching (straining), and observe differences, compared to conventional alloys with fewer elements. For a specific range of temperatures and strain-rates, HEAs deform in a jerky way, with sudden slips that make it difficult to precisely control the deformation. An analytic model explains these slips as avalanches of slipping weak spots and predicts the observed slip statistics, stress-strain curves, and their dependence on temperature, strain-rate, and material composition. The ratio of the weak spots’ healing rate to the strain-rate is the main tuning parameter, reminiscent of the Portevin-LeChatellier effect and time-temperature superposition in polymers. Our model predictions agree with the experimental results. The proposed widely-applicable deformation mechanism is useful for deformation control and alloy design.
Scientific Reports | 2016
Shuying Chen; Liping Yu; Jingli Ren; Xie Xie; Xueping Li; Ying Xu; Guangfeng Zhao; Peizhen Li; Fuqian Yang; Yang Ren; Peter K. Liaw
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.
Acta Materialia | 2017
Tingting Zuo; Michael C. Gao; Lizhi Ouyang; Xiao Yang; Y. Q. Cheng; Rui Feng; Shuying Chen; Peter K. Liaw; Jeffrey A. Hawk; Yong Zhang
JOM | 2015
Shuying Chen; Xie Xie; Bilin Chen; Junwei Qiao; Yong Zhang; Yang Ren; Karin A. Dahmen; Peter K. Liaw
Journal of Alloys and Compounds | 2017
Gian Song; Chanho Lee; Sung Hwan Hong; Ki Buem Kim; Shuying Chen; Dong Ma; Ke An; Peter K. Liaw
Materials Chemistry and Physics | 2017
Shuying Chen; Xie Xie; Weidong Li; Rui Feng; Bilin Chen; Junwei Qiao; Yang Ren; Yong Zhang; Karin A. Dahmen; Peter K. Liaw
Journal of Alloys and Compounds | 2018
Shuying Chen; Weidong Li; Xie Xie; Jamieson Brechtl; Bilin Chen; Peizhen Li; Guangfeng Zhao; Fuqian Yang; Junwei Qiao; Peter K. Liaw
Progress in Materials Science | 2018
Haoling Jia; Gongyao Wang; Shuying Chen; Yanfei Gao; Weidong Li; Peter K. Liaw
Materials Science and Engineering A-structural Materials Properties Microstructure and Processing | 2015
Zhou Zheng; Qi Xing; Zhenxi Sun; Jing Xu; Zhengfeng Zhao; Shuying Chen; Peter K. Liaw; Yan Wang
Scripta Materialia | 2019
Shuying Chen; Y. Tong; K.-K. Tseng; J.W. Yeh; Jonathan D. Poplawsky; J.G. Wen; Michael C. Gao; G. Kim; W. Chen; Yang Ren; Rui Feng; Weidong Li; Peter K. Liaw