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ZrO 改性 W 复合材料的优异抗辐射性能

Superior Radiation Resistance of ZrO-Modified W Composites.

作者信息

Cui Bo, Luo Chunyang, Chen Xiaoxi, Zou Chengqin, Li Muhong, Xu Liujie, Yang Jijun, Meng Xianfu, Zhang Haibin, Zhou Xiaosong, Peng Shuming, Shen Huahai

机构信息

Institute of Nuclear Physics and Chemistry, China Academy of Engineering Physics, Mianyang 621900, China.

Henan Engineering Research Center for Wear of Materials, Henan University of Science and Technology, Luoyang 471003, China.

出版信息

Materials (Basel). 2022 Mar 8;15(6):1985. doi: 10.3390/ma15061985.

Abstract

The microstructure and mechanical properties of pure W, sintered and swaged W-1.5ZrO2 composites after 1.5 × 1015 Au+/cm2 radiation at room temperature were characterized to investigate the impact of the ZrO2 phase on the irradiation resistance mechanism of tungsten materials. It can be concluded that the ZrO2 phase near the surface consists of two irradiation damage layers, including an amorphous layer and polycrystallization regions after radiation. With the addition of the ZrO2 phase, the total density and average size of dislocation loops, obviously, decrease, attributed to the reason that many more glissile 1/2<111> loops migrate to annihilate preferentially at precipitate interfaces with a higher sink strength of 7.8 × 1014 m−2. The swaged W-1.5ZrO2 alloys have a high enough density of precipitate interfaces and grain boundaries to absorb large numbers of irradiated dislocations. This leads to the smallest irradiation hardening change in hardness of 4.52 Gpa, which is far superior to pure W materials. This work has a collection of experiments and conclusions that are of crucial importance to the materials and nuclear communities.

摘要

对纯钨、烧结及锻造的W-1.5ZrO₂复合材料在室温下经1.5×10¹⁵ Au⁺/cm²辐照后的微观结构和力学性能进行了表征,以研究ZrO₂相对钨材料抗辐照机理的影响。可以得出结论,表面附近的ZrO₂相由两个辐照损伤层组成,包括辐照后的非晶层和多晶区。随着ZrO₂相的加入,位错环的总密度和平均尺寸明显减小,这是因为更多的可滑移1/2<111>环优先迁移到具有7.8×10¹⁴ m⁻²更高汇强度的析出物界面处湮灭。锻造的W-1.5ZrO₂合金具有足够高的析出物界面和晶界密度,能够吸收大量辐照产生的位错。这导致硬度的辐照硬化变化最小,为4.52 GPa,远优于纯钨材料。这项工作有一系列对材料和核领域至关重要的实验和结论。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ae15/8950816/2ee383298c08/materials-15-01985-g001.jpg

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