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MODELLING OF IRRADIATED MATERIALS

机译:辐照材料的建模

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摘要

Irradiation of materials by energetic particles causes significant degradation of the mechanical properties, most notably an increased yield stress and decrease ductility, thus limiting lifetime of materials used in nuclear reactors. The microstructure of irradiated materials evolves over a wide range of length and time scales, making radiation damage and inherently multi-scale phenomenon. At atomic length scale, the principal sources of radiation damage are the primary knock-on atoms that recoil under collision from energetic particles such as neutrons or ions. These knock-on atoms in turn produce vacancies and self-interstitial atoms, and stacking fault tetrahedra. At higher length scale, these defect clusters form loops around existing dislocations, leading to their decoration and immobilization, which ultimately leads to radiation hardening in most of the materials. All these defects finally effect the macroscopic mechanical and other properties. An attempt is made to understand these phenomena using molecular dynamics studies and discrete dislocation dynamics modelling.
机译:高能粒子对材料的辐照会导致机械性能的显着降低,最显着的是屈服应力的增加和延展性的降低,从而限制了核反应堆中所用材料的使用寿命。辐照材料的微观结构会在很宽的长度和时间范围内演变,从而造成辐射损伤和固有的多尺度现象。在原子长度尺度上,辐射损伤的主要来源是在能量粒子(如中子或离子)碰撞时回弹的主要撞击原子。这些敲除的原子依次产生空位和自填隙原子,并堆积断层四面体。在更高的长度尺度上,这些缺陷簇围绕现有的位错形成环,导致其装饰和固定化,最终导致大多数材料的辐射硬化。所有这些缺陷最终影响了宏观机械性能和其他性能。试图通过分子动力学研究和离散位错动力学建模来理解这些现象。

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