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中国物理学会期刊

金属材料界面与辐照缺陷的交互作用机理

CSTR: 32037.14.aps.68.20190128

Mechanism of interaction between interface and radiation defects in metal

CSTR: 32037.14.aps.68.20190128
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  • 高能粒子辐照在材料内部产生大量的辐照缺陷, 如间隙原子、空位、位错环、空洞和气泡等. 大量辐照缺陷的形成和演化引起材料微观结构的失稳并造成严重的辐照硬化和脆化. 界面工程是一种调控材料抗辐照性能的有效方法. 通过引入高密度的晶界、相界、自由表面等来增加空位和间隙原子的复合概率, 能有效降低辐照缺陷的积聚, 提高材料的结构稳定性, 消除或减弱辐照的有害效应. 本文简述了几种典型金属材料界面与不同类型辐照缺陷的交互作用机理, 分析了界面结构、缺陷类型和辐照条件对交互作用过程的影响, 最后讨论了本领域需进一步关注的热点问题, 期望运用多学科知识和研究方法更好地揭示辐照损伤过程并设计新型抗辐照损伤材料.

     

    High-energy particles’ radiation produces a large number of radiation defects in material, such as interstitial atoms, vacancies, dislocation loops, voids and helium bubbles. The formation and evolution of massive radiation defects cause the instability of microstructure in metal, which further degrades its mechanical performance. Interface engineering is an effective method to tune the radiation resistance of metal and alloy. By introducing a large number of grain boundaries, phase interfaces, free surfaces, etc., the recombination probability of radiation-induced vacancies and interstitial atoms increases, thereby reducing the accumulation of radiation defects, improving the structural stability of the metal and eliminating the harmful effects of radiation. In this paper, we briefly review the recent progress of the mechanisms of interactions between several typical interfaces and various types of irradiation defects. The influence of interface structure, irradiation condition and defect character on their interaction behavior are reviewed and discussed. We also propose some critical questions about the radiation damage to material which remain to be understood. It is necessary to combine multidisciplinary techniques, knowledge and theories in order to fully understand the mechanism of radiation damage and design the advanced radiation-tolerant materials.

     

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