Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
1565467 | Journal of Nuclear Materials | 2013 | 4 Pages |
Abstract
This study investigates the effect of neutron irradiation on the functional properties of pure tungsten (W) and advanced tungsten alloys (e.g., lanthanum (La)-doped W, potassium (K)-doped W, and ultra-fine-grained (UFG) W-TiC alloys) tested in the Japan Materials Testing Reactor (JMTR) or experimental fast reactor Joyo. The irradiation temperature and damage were in the range 804-1073Â K and 0.15-0.47Â dpa, respectively. TEM images of all samples after 0.42Â dpa irradiation at 1023Â K showed voids, black dots, and dislocation loops, indicating that similar damage structures were formed in pure W, La-doped W, K-doped W, and UFG W-0.5Â wt% TiC. The electrical resistivity of all specimens increased following neutron irradiation. Nearly identical electrical resistivity and irradiation hardening were observed in pure W, La-doped W, and K-doped W. The electrical resistivity of UFG W-TiC was higher than that of other specimens before and after irradiation, which may be attributed to its ultra-fine-grain structure, as well as the presence of impurities introduced during the alloying process. Compared to the other specimens, the UFG W-TiC was more resistant to irradiation hardening.
Related Topics
Physical Sciences and Engineering
Energy
Nuclear Energy and Engineering
Authors
Makoto Fukuda, Akira Hasegawa, Takashi Tanno, Shuhei Nogami, Hiroaki Kurishita,