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辐照面心立方金属的织构演变与力学行为

Texture evolution and mechanical behaviour of irradiated face-centred cubic metals.

作者信息

Chen L R, Xiao X Z, Yu L, Chu H J, Duan H L

机构信息

State Key Laboratory for Turbulence and Complex Systems, Department of Mechanics and Engineering Science, BIC-ESAT, College of Engineering, Peking University, Beijing 100871, People's Republic of China.

CAPT, HEDPS and IFSA Collaborative Innovation Center of MoE, Peking University, Beijing 100871, People's Republic of China.

出版信息

Proc Math Phys Eng Sci. 2018 Feb;474(2210):20170604. doi: 10.1098/rspa.2017.0604. Epub 2018 Feb 28.

Abstract

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.

摘要

提出了一种基于物理的理论模型,以研究辐照面心立方金属的力学行为和晶体织构演变。该模型能够捕捉辐照多晶材料的主要特征,包括辐照硬化、屈服后软化和塑性局部化。数值结果表明,未辐照和辐照应力-应变关系的数值结果与实验数据吻合良好。晶体织构研究表明,未辐照金属在拉伸载荷下初始随机分布的织构可演变为[111]和[100]织构的混合。对于辐照情况,晶体织构以不同的方式发展,[110]织构的额外部分演变为[100]和[111]织构。因此,与未辐照情况相比,[100]和[111]织构更快地成为主导,原因是[100]和[111]取向的晶体具有更高的强度,并且它们的塑性变形行为比其他取向的晶体更活跃。可以得出结论,辐照诱导的缺陷会影响金属的力学行为和织构演变,这两者都与辐照硬化密切相关。

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本文引用的文献

1
Multiscale modelling of plastic flow localization in irradiated materials.
Nature. 2000 Aug 24;406(6798):871-4. doi: 10.1038/35022544.

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