J. Mater. Sci. Technol. ›› 2021, Vol. 71: 75-83.DOI: 10.1016/j.jmst.2020.07.025
• Research Article • Previous Articles Next Articles
Kaustubh Bawanea, Kathy Lua,*(
), Xian-Ming Baia, Jing Hub, Meimei Lib, Peter M. Baldob, Edward Ryanb
Received:2020-04-30
Revised:2020-07-11
Accepted:2020-07-12
Published:2021-04-30
Online:2021-04-30
Contact:
Kathy Lu
About author:* E-mail address: klu@vt.edu (K. Lu).Kaustubh Bawane, Kathy Lu, Xian-Ming Bai, Jing Hu, Meimei Li, Peter M. Baldo, Edward Ryan. Microstructural evolution of a silicon carbide-carbon coated nanostructured ferritic alloy composite during in-situ Kr ion irradiation at 300°C 450°C[J]. J. Mater. Sci. Technol., 2021, 71: 75-83.
Fig. 2. Bright field TEM images of the SiC-C@NFA composite with $g=(\bar{1}10)$ condition (zone axis =[113]) after in-situ ion irradiation at 300 °C at different dose levels: (a) 0 dpa, (b) 3 dpa, (c) 5 dpa, and (d) 10 dpa.
Fig. 3. Magnified TEM images of the 25 vol.% SiC-C@NFA sample with $g=(\bar{1}10)$ condition (zone axis =[113]) after in-situ ion irradiation at 450 °C using different dose levels: (a) 0 dpa, (b) 3 dpa, (c) 5 dpa, and (d) 10 dpa.
Fig. 4. (a) Kinematic bright field and (b) weak beam dark field TEM images with g=(002) condition near the [100] zone of the SiC-C@NFA composite after 10 dpa ion irradiation at 450 °C.
Fig. 7. (Ti,W)C precipitate size distribution in the SiC-C@NFA sample after irradiation at 450 °C with an ion dose of (a) 0 dpa, (b) 3 dpa, (c) 5 dpa, and (d) 10 dpa.
Fig. 11. Bright field TEM images of SiC-C@NFA in (a) underfocus and (b) overfocus imaging with $g=(\bar{1}10)$ condition (zone axis =[113]) after irradiation at 450 °C up to 5 dpa.
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