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首页> 外文期刊>Nuclear Materials and Energy >Depth distribution of irradiation-induced dislocation loops in an Fe-9Cr model alloy irradiated with Fe ions: The effect of ion energy
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Depth distribution of irradiation-induced dislocation loops in an Fe-9Cr model alloy irradiated with Fe ions: The effect of ion energy

机译:用Fe离子照射Fe-9CR模型合金中辐照诱导的位错环的深度分布:离子能量的影响

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摘要

It is generally accepted that the microstructure of ion-irradiated Fe-based alloys does not only depend on the local level of displacement damage and the initial microstructure. Other factors such as the vicinity of a surface and the injected ions also play a role and may give rise to peculiar depth dependencies of the irradiated microstructure. Some investigators reported a band-like appearance indicating depth ranges of relatively uniform microstructure clearly distinguished from other ranges. Clarification is important for at least two purposes: first, to identify a depth range suitable for gaining meaningful information about the behaviour of materials exposed to neutron irradiation and, second, to correctly interpret results obtained by methods, such as nanoindentation, that integrate over extended depth ranges. A variation of the ion energy is expected to gain additional insight. In this work, two samples of Fe-9%Cr were irradiated at 300?°C with Fe2+ions, one sample using 1?MeV ions and another sample using 5?MeV ions. Calculations using the binary collision code SRIM indicate displacement damage peaks at depths of 0.3 and 1.3?μm for ion energies of 1 and 5?MeV, respectively. The depth distribution of irradiation-induced dislocation loops was studied by cross-sectional scanning transmission electron microscopy (STEM). Loops visible in the STEM images were found to be arranged within two bands with the positions of these bands depending on the profiles of displacement damage and injected interstitials. The first and second band exhibit noticeably different number densities and mean sizes of the loops. For the 5?MeV irradiation, an extended range between the sample surface and the first band was observed, where decoration of preexisting line dislocations with loops is dominant. This microstructure resembles cases reported for neutron irradiation. For the 1?MeV irradiation, such a range does not exist. Estimates characterizing the loop size and number density in the distinct depth ranges are provided.
机译:通常接受离子照射的Fe基合金的微观结构不仅取决于位移损坏的局部水平和初始微观结构。其他因素,例如表面附近和注射的离子也发挥作用,并且可以产生辐照微观结构的特殊深度依赖性。一些调查员报告了一种像样的外观,其指示相对均匀的微观结构的深度范围清楚地与其他范围区分开。澄清对于至少有两个目的是重要的:首先,识别适合于获得有关暴露于中子辐射的材料行为的有意义信息的深度范围,而第二种目的是正确地解释通过延长的方法(如纳米茚命)获得的结果深度范围。预计离子能量的变化将获得额外的洞察力。在这项工作中,用Fe2 +离子在300℃下照射两种Fe-9%Cr样品,使用1〜MeV离子和另一种样品使用5〜MeV离子的样品。使用二进制碰撞代码SRIM的计算分别表示位移损伤的深度为0.3和1.3Ωμm的深度,分别为1和5?MEV的离子能量。通过横截面扫描透射电子显微镜(茎)研究了照射引起的位错环的深度分布。发现在杆图像中可见的环,根据位移损坏和注射间质性的曲线,在两个带内布置在两个带内。第一和第二频段具有明显不同的数量密度和循环的均值。对于5?MEV照射,观察到样品表面和第一频段之间的延伸范围,其中具有环状线脱位的预装配是显性的。这种微观结构类似于中子辐射报告的病例。对于1?MEV辐照,这种范围不存在。提供了表征在不同深度范围内的循环尺寸和数密度的估计。

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