Xiazi Xiao
Peking University
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Publication
Featured researches published by Xiazi Xiao.
Proceedings of the Royal Society A: Mathematical, Physical and Engineering Sciences | 2015
Xiazi Xiao; Dingkun Song; Haijian Chu; Jianming Xue; Huiling Duan
In this paper, a self-consistent plasticity theory is proposed to model the mechanical behaviours of irradiated face-centred cubic nanocrystalline metals. At the grain level, a tensorial crystal model with both irradiation and grain size effects is applied for the grain interior (GI), whereas both grain boundary (GB) sliding with irradiation effect and GB diffusion are considered in modelling the behaviours of GBs. The elastic-viscoplastic self-consistent method with considering grain size distribution is developed to transit the microscopic behaviour of individual grains to the macroscopic properties of nanocrystals (NCs). The proposed theory is applied to model the mechanical properties of irradiated NC copper, and the feasibility and efficiency have been validated by comparing with experimental data. Numerical results show that: (i) irradiation-induced defects can lead to irradiation hardening in the GIs, but the hardening effect decreases with the grain size due to the increasing absorption of defects by GBs. Meanwhile, the absorbed defects would make the GBs softer than the unirradiated case. (ii) There exists a critical grain size for irradiated NC metals, which separates the grain size into the irradiation hardening dominant region (above the critical size) and irradiation softening dominant region (below the critical size). (iii) The distribution of grain size has a significant influence on the mechanical behaviours of both irradiated and unirradiated NCs. The proposed model can offer a valid theoretical foundation to study the irradiation effect on NC materials.
Journal of Micromechanics and Molecular Physics | 2016
Long Yu; Lirong Chen; Xiazi Xiao; Qianying Chen; Huiling Duan
In this paper, a theoretical framework including the micro-mechanical method and crystal plasticity model is developed to characterize the macroscopic mechanical behaviors of irradiated metallic materials. At the microscale, a rate-dependent crystal plasticity model is applied to capture the effects of irradiation-induced defects and helium (He) bubbles for individual grains. Then, the micro-mechanical method is adopted to establish the relationship between microscopic individual grains and macroscopic polycrystals. The developed theoretical framework is applied to simulate the mechanical behaviors of neutron irradiated polycrystalline Cu and He implanted Cu/Nb nano-metallic-multilayers (NMMs), and the numerical results match well with corresponding experimental data.
Proceedings of the Royal Society A: Mathematical, Physical and Engineering Science | 2018
Lirong Chen; Xiazi Xiao; Lei Yu; Haijian Chu; Huiling Duan
A physically based theoretical model is proposed to investigate the mechanical behaviour and crystallographic texture evolution of irradiated face-centred cubic metals. This model is capable of capturing the main features of irradiated polycrystalline materials including irradiation hardening, post-yield softening and plasticity localization. Numerical results show a good agreement with experimental data for both unirradiated and irradiated stress–strain relationships. The study of crystallographic texture reveals that the initial randomly distributed texture of unirradiated metals under tensile loading can evolve into a mixture of [111] and [100] textures. Regarding the irradiated case, crystallographic texture develops in a different way, and an extra part of [110] texture evolves into [100] and [111] textures. Thus, [100] and [111] textures become dominant more quickly compared with those of the unirradiated case for the reason that [100] and [111]-oriented crystals have higher strength, and their plastic deformation behaviours are more active than other oriented crystals. It can be concluded that irradiation-induced defects can affect both the mechanical behaviour and texture evolution of metals, both of which are closely related to irradiation hardening.
International Journal of Plasticity | 2015
Xiazi Xiao; Dingkun Song; Jianming Xue; Haijian Chu; Huiling Duan
Journal of The Mechanics and Physics of Solids | 2015
Xiazi Xiao; Dingkun Song; Jianming Xue; Haijian Chu; Huiling Duan
Journal of The Mechanics and Physics of Solids | 2015
Dmitry Terentyev; Xiazi Xiao; Andrii Dubinko; Anastasiia Bakaeva; Huiling Duan
Journal of Nuclear Materials | 2017
Xiazi Xiao; Qianying Chen; Hui Yang; Huiling Duan; Jianmin Qu
International Journal of Plasticity | 2015
Xiazi Xiao; Dingkun Song; Haijian Chu; Jianming Xue; Huiling Duan
Acta Mechanica Sinica | 2015
Dingkun Song; Xiazi Xiao; Jianming Xue; Haijian Chu; Huiling Duan
International Journal of Plasticity | 2017
Xiazi Xiao; Dmitry Terentyev; Qianying Chen; Long Yu; Lirong Chen; A. Bakaev; Huiling Duan