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Modelling the interaction of primary irradiation damage and precipitates: implications for experimental irradiation of zirconium alloys

机译:模拟初级辐照损伤和沉淀物的相互作用:对锆合金实验辐照的影响

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摘要

Damage to materials by different irradiating particles is typically calibrated using displacements per atom (dpa). However dpa calculations usually neglect additional damage produced from primary interactions of irradiating particles with a bulk material and how localised microstructural features may change these interactions. We investigate how the current standard measures of irradiation damage are affected when the presence and distribution of alloying elements in zirconium alloys is taken into account and show that the difference in primary interactions of neutrons and protons with alloying elements causes differing dpa rates relative to bulk zirconium. As such, using dpa in the matrix to correlate damage between proton and neutron-irradiated samples may imply different damage rates in localised microstructural features and therefore differences in the damage phenomena observed. We argue that when comparing the evolution of microstructural features under different irradiation types, the displacement rate per unit volume may be a more useful measure of damage.
机译:通常使用每个原子的位移(dpa)来校准不同辐射粒子对材料造成的损坏。然而,dpa计算通常忽略了辐射粒子与散装材料的主要相互作用以及局部微结构特征如何改变这些相互作用所产生的额外损害。我们研究了当考虑到锆合金中合金元素的存在和分布时,如何影响当前标准的辐照损伤测量方法,并表明中子和质子与合金元素的主要相互作用的差异导致相对于大体积锆的dpa率不同。因此,在基质中使用dpa关联质子和中子辐照样品之间的损伤可能意味着局部微观结构特征的损伤率不同,因此暗示观察到的损伤现象也不同。我们认为,当比较不同辐射类型下微结构特征的演变时,每单位体积的位移速率可能是一种更有用的损伤度量。

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