Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
7964389 | Journal of Nuclear Materials | 2016 | 8 Pages |
Abstract
Irradiation hardening behavior of Zr-1Nb was examined by nanoindentation, slow positron annihilation technique, transmission electron microscopy and coplanar extremely asymmetric X-ray diffraction technique. Samples were irradiated at a dose rate of 2.78Â ÃÂ 10â4Â dpa/s to peak doses of 0.15, 0.5, 1.5 and 2.5Â dpa with 6.37Â MeV Xe26+ ion beam at room temperature. The increase in hardness as a function of dose followed a power law expression with the exponent of 0.46. With increasing irradiation dose, more mono-, di- and trivacancies were induced, but their concentration remained constant once formed due to the equilibrium between the formation and recombination of vacancy type clusters during irradiation. Meanwhile, the dislocation loops were also introduced and their linear density increased with dose. The dislocation loops played an important role in the irradiation hardening behavior. But the exact contribution of each microstructural components to the overall hardness still needs further study.
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Authors
Chunguang Yan, Rongshan Wang, Xianyuan Dai, Yanli Wang, Xitao Wang, Guanghai Bai, Yanwei Zhang,