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Microyielding of Core-Shell Crystal Dendrites in a Bulk-metallic-glass Matrix Composite

Author(s)
Huang, E-Wen; Qiao, Junwei; Winiarski, Bartlomiej; Lee, Wen-Jay; Scheel, Mario; Chuang, Chih-Pin; Liaw, Peter K.; Lo, Yu-Chieh; Zhang, Yong; Di Michiel, Marco; ... Show more Show less
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Abstract
In-situ synchrotron x-ray experiments have been used to follow the evolution of the diffraction peaks for crystalline dendrites embedded in a bulk metallic glass matrix subjected to a compressive loading-unloading cycle. We observe irreversible diffraction-peak splitting even though the load does not go beyond half of the bulk yield strength. The chemical analysis coupled with the transmission electron microscopy mapping suggests that the observed peak splitting originates from the chemical heterogeneity between the core (major peak) and the stiffer shell (minor peak) of the dendrites. A molecular dynamics model has been developed to compare the hkl-dependent microyielding of the bulk metallic-glass matrix composite. The complementary diffraction measurements and the simulation results suggest that the interface, as Maxwell damper, between the amorphous matrix and the (211) crystalline planes relax under prolonged load that causes a delay in the reload curve which ultimately catches up with the original path.
Date issued
2014-03
URI
http://hdl.handle.net/1721.1/88189
Department
Massachusetts Institute of Technology. Department of Nuclear Science and Engineering
Journal
Scientific Reports
Publisher
Nature Publishing Group
Citation
Huang, E-Wen, Junwei Qiao, Bartlomiej Winiarski, Wen-Jay Lee, Mario Scheel, Chih-Pin Chuang, Peter K. Liaw, Yu-Chieh Lo, Yong Zhang, and Marco Di Michiel. “Microyielding of Core-Shell Crystal Dendrites in a Bulk-Metallic-Glass Matrix Composite.” Sci. Rep. 4 (March 18, 2014).
Version: Final published version
ISSN
2045-2322

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