Helical Dislocations: Observation of Vacancy Defect Bias of Screw Dislocations in Neutron Irradiated Fe-9Cr

J. Haley, F. Liu, E. Tarleton, A. Cocks, G. Odette, S. Lozano-Perez, S. Roberts
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引用次数: 1

Abstract

We have analysed the microstructure of a model alloy of Fe9Cr irradiated with neutrons to a dose of 1.6 dpa at 325oC. Helical dislocations comprise a major part of the damage; these formed from the interaction of pre-existing screw dislocations with irradiation-induced defects. We have investigated the process behind how these helices form, and how they cause local clustering of dislocation loops. Specifically, we have shown experimentally that the interaction of vacancy defects with pre-existing screw dislocations causes the formation of mixed screw-edge helical dislocations. Interstitials and vacancies were generated in equal numbers, which shows that the screw dislocations must have acted as vacancy-biased sinks.Helical dislocations in general were analysed from a theoretical perspective, and three Dimensional Discrete Dislocation Dynamics (3D-DDD) was used to develop a model for the formation and growth of a vacancy-fed helical dislocation. Since the helical dislocations cause the removal of vacancies from the local microstructure, this leaves a higher supersaturation of interstitials close to the dislocations. We argue that this supersaturation is responsible for enhanced interstitial loop coarsening, leading to a higher proportion of visible interstitial clusters in the vicinity of helical dislocations. These findings offer a new perspective on how dislocations affect the spatial homogeneity of radiation damage.
螺旋位错:中子辐照Fe-9Cr中螺旋位错空位缺陷偏置的观察
我们分析了Fe9Cr模型合金在325oC下用1.6 dpa剂量的中子辐照后的微观结构。螺旋位错构成了损伤的主要部分;这些是由先前的螺钉位错与辐照引起的缺陷相互作用形成的。我们已经研究了这些螺旋如何形成的过程,以及它们如何引起位错环的局部聚集。具体来说,我们已经通过实验证明了空位缺陷与先前存在的螺位错的相互作用导致了混合螺边螺旋位错的形成。间隙和空位数量相等,表明螺杆位错一定起到了空位偏置槽的作用。从理论角度对螺旋位错进行了分析,并利用三维离散位错动力学(3D-DDD)建立了空位供给型螺旋位错的形成和生长模型。由于螺旋位错导致空位从局部微观结构中移除,这在位错附近留下了更高的过饱和间隙。我们认为,这种过饱和是导致间隙环粗化增强的原因,导致螺旋位错附近可见间隙团簇的比例更高。这些发现为研究位错如何影响辐射损伤的空间均匀性提供了新的视角。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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