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Positron annihilation study of neutron irradiated model alloys and of a reactor pressure vessel steel

机译:中子辐照模型合金和反应堆压力容器钢的正电子an没研究

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摘要

The hardening and embrittlement of reactor pressure vessel steels are of great concern in the actual nuclear power plant life assessment. This embrittlement is caused by irradiation-induced damage, and positron annihilation spectroscopy has been shown to be a suitable method for analysing most of these defects. in this paper, this technique (both positron annihilation lifetime spectroscopy and coincidence Doppler broadening) has been used to investigate neutron irradiated model alloys, with increasing chemical complexity and a reactor pressure vessel steel. It is found that the clustering of copper takes place at the very early stages of irradiation using coincidence Doppler broadening, when this element is present in the alloy. On the other hand, considerations based on positron annihilation spectroscopy analyses suggest that the main objects causing hardening are most probably self-interstitial clusters decorated with manganese in Cu-free alloys. In low-Cu reactor pressure vessel steels and in (Fe, Mn, Ni, Cu) alloys, the main effect is still due to Cu-rich precipitates at low doses, but the role of manganese-related features becomes pre-dominant at high doses.
机译:反应堆压力容器钢的硬化和脆化在实际核电站寿命评估中非常重要。这种脆化是由辐照引起的损伤引起的,并且正电子hil没光谱法已被证明是分析大多数这些缺陷的合适方法。在本文中,这种技术(正电子an没寿命光谱法和巧合多普勒展宽法)已用于研究中子辐照模型合金,其化学复杂性不断提高,并且反应堆压力容器用钢也越来越多。已经发现,当合金中存在这种元素时,铜的聚集发生在辐射的早期,同时发生多普勒加宽。另一方面,基于正电子an没光谱分析的考虑表明,导致硬化的主要对象很可能是无铅合金中用锰装饰的自填隙团簇。在低铜反应堆压力容器钢和(Fe,Mn,Ni,Cu)合金中,主要作用仍然是由于低剂量时富含铜的沉淀物引起的,但是锰相关特征的作用在高剂量时占主导地位剂量。

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