Elevated-temperature creep of high-entropy alloys via nanoindentation

被引:0
|
作者
P. H. Lin
H. S. Chou
J. C. Huang
W. S. Chuang
J. S. C. Jang
T. G. Nieh
机构
[1] National Sun Yat-sen University,Department of Materials and Optoelectronic Science
[2] National Sun Yat-sen University,Institute of Materials Science and Engineering
[3] City University of Hong Kong,undefined
[4] National Central University,undefined
[5] The University of Tennessee,undefined
来源
MRS Bulletin | 2019年 / 44卷
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摘要
High-entropy alloys (HEAs) have been the focus of wide-ranging studies for their applications as next-generation structural materials. For high-temperature industrial applications, creep behavior of structural materials is critical. In addition to high-temperature tensile, compressive, and notched tests, elevated-temperature nanoindentation is a relatively new testing method for HEAs. With the high accuracy of depth-sensing technology and a stable temperature-controlling stage, elevated-temperature time-dependent mechanical behavior of HEAs can be investigated, especially at localized regions without the limitations of the standard specimen size used for traditional creep testing. Also, the creep response from each grain in polycrystalline samples with various crystalline orientations can be explored in detail. This article overviews current progress in studying creep behavior in HEAs via nanoindentation technology.
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页码:860 / 866
页数:6
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