High-Throughput Nanomechanical Screening of Phase-Specific and Temperature-Dependent Hardness in AlxFeCrNiMn High-Entropy Alloys

被引:0
|
作者
Youxing Chen
Eric Hintsala
Nan Li
Bernard R. Becker
Justin Y. Cheng
Bartosz Nowakowski
Jordan Weaver
Douglas Stauffer
Nathan A. Mara
机构
[1] University of North Carolina,Department of Mechanical Engineering and Engineering Science
[2] University of Minnesota,Department of Chemical Engineering and Materials Science
[3] Bruker Nano Surfaces,Engineering Laboratory
[4] MPA-CINT,undefined
[5] Los Alamos National Laboratory,undefined
[6] National Institute of Standards and Technology,undefined
来源
JOM | 2019年 / 71卷
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摘要
Development of structural materials for service under extreme conditions is slowed by the lack of high-throughput test protocols. Here, a method that integrates high-throughput nanoindentation mapping with precise temperature control under a vacuum atmosphere is demonstrated. High-entropy alloys (HEAs) may possess the strength and stability required of high-temperature structural materials in next-generation nuclear applications. These alloys, including the compositional variation AlxFeCrNiMn (x = 0, 0.3, 1) presented in this work, have distinct microstructural morphologies, and nanoindentation mapping reveals the mechanical behavior of the distinct phases as a function of temperature up to 400°C. FeCrNiMn (Al = 0) consists of a face-centered cubic (FCC) matrix with body-centered cubic (BCC) precipitates and exhibits significant softening in both phases at elevated temperature. In contrast, both the FCC phase and FCC–BCC phases present in Al0.3FeCrNiMn show approximately 90% retention of the room temperature hardness at 400°C, and AlFeCrNiMn with BCC and B2 structures shows a similar 85% retention of hardness.
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页码:3368 / 3377
页数:9
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