Microstructural evolution of CANDU spacer material Inconel X-750 under in situ ion irradiation

2013 ◽  
Vol 443 (1-3) ◽  
pp. 49-58 ◽  
Author(s):  
He Ken Zhang ◽  
Zhongwen Yao ◽  
Colin Judge ◽  
Malcolm Griffiths
2020 ◽  
Vol 198 ◽  
pp. 85-99 ◽  
Author(s):  
Calvin Parkin ◽  
Michael Moorehead ◽  
Mohamed Elbakhshwan ◽  
Jing Hu ◽  
Wei-Ying Chen ◽  
...  

Materialia ◽  
2019 ◽  
Vol 7 ◽  
pp. 100412 ◽  
Author(s):  
Kaustubh Bawane ◽  
Kathy Lu ◽  
Xian-Ming Bai ◽  
Wei-Ying Chen ◽  
Meimei Li

2018 ◽  
Vol 123 (16) ◽  
pp. 161539 ◽  
Author(s):  
Ashish Kumar ◽  
R. Singh ◽  
Parmod Kumar ◽  
Udai B. Singh ◽  
K. Asokan ◽  
...  

2020 ◽  
Author(s):  
Calvin Parkin ◽  
Michael Moorehead ◽  
Mohamed Elbakhshwan ◽  
Adrien Couet ◽  
Kumar Sridharan ◽  
...  

Author(s):  
D.I. Potter ◽  
A. Taylor

Thermal aging of Ni-12.8 at. % A1 and Ni-12.7 at. % Si produces spatially homogeneous dispersions of cuboidal γ'-Ni3Al or Ni3Si precipitate particles arrayed in the Ni solid solution. We have used 3.5-MeV 58Ni+ ion irradiation to examine the effect of irradiation during precipitation on precipitate morphology and distribution. The nearness of free surfaces produced unusual morphologies in foils thinned prior to irradiation. These thin-foil effects will be important during in-situ investigations of precipitation in the HVEM. The thin foil results can be interpreted in terms of observations from bulk irradiations which are described first.Figure 1a is a dark field image of the γ' precipitate 5000 Å beneath the surface(∿1200 Å short of peak damage) of the Ni-Al alloy irradiated in bulk form. The inhomogeneous spatial distribution of γ' results from the presence of voids and dislocation loops which can be seen in the bright field image of the same area, Fig. 1b.


Author(s):  
Charles W. Allen ◽  
Robert C. Birtcher

The uranium silicides, including U3Si, are under study as candidate low enrichment nuclear fuels. Ion beam simulations of the in-reactor behavior of such materials are performed because a similar damage structure can be produced in hours by energetic heavy ions which requires years in actual reactor tests. This contribution treats one aspect of the microstructural behavior of U3Si under high energy electron irradiation and low dose energetic heavy ion irradiation and is based on in situ experiments, performed at the HVEM-Tandem User Facility at Argonne National Laboratory. This Facility interfaces a 2 MV Tandem ion accelerator and a 0.6 MV ion implanter to a 1.2 MeV AEI high voltage electron microscope, which allows a wide variety of in situ ion beam experiments to be performed with simultaneous irradiation and electron microscopy or diffraction.At elevated temperatures, U3Si exhibits the ordered AuCu3 structure. On cooling below 1058 K, the intermetallic transforms, evidently martensitically, to a body-centered tetragonal structure (alternatively, the structure may be described as face-centered tetragonal, which would be fcc except for a 1 pet tetragonal distortion). Mechanical twinning accompanies the transformation; however, diferences between electron diffraction patterns from twinned and non-twinned martensite plates could not be distinguished.


2020 ◽  
Author(s):  
Ítalo M. Oyarzabal ◽  
Matheus A. Tunes ◽  
Osmane Camara ◽  
Emily Aradi ◽  
Anamul H. Mir ◽  
...  

2021 ◽  
Vol 27 (S1) ◽  
pp. 2640-2643
Author(s):  
Chris McRobie ◽  
Ryan Schoell ◽  
Tiffany Kaspar ◽  
Daniel Schreiber ◽  
Djamel Kaoumi

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