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Synchrotron Light Techniques for the Investigation of Advanced Nuclear Reactor Structural Materials

机译:同步光技术在先进核反应堆结构材料研究中的应用

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In the frame of the Generation IV initiative, different structural material candidates are investigated at the Paul Scherrer Institute. These are oxide dispersion strengthened (ODS) steels, intermetallic materials and ceramic composite materials. The response of the material to different potential loads (irradiation, temperature ...) is addressed in a multi-scale approach, both, modelling wise and also experimentally. The investigation of each scale delivers at least a qualitative understanding of possibly evolving damage in the material and also delivers a validation of the corresponding scale on the modelling side.rnFrom the experimental side, the lower end of the scale, the atomistic and structural level, can be investigated by conventional techniques, as for example transmission electron microscopy (TEM) and X-ray diffraction (XRD). However, the use of synchrotron radiation techniques offers an ideal, complementary way to investigate the material structure and other properties. This paper presents applications in the field of the ODS research, where the structural behaviour of the nanoscopic dispersoids can selectively be investigated, although only being present with roughly 5 wt % in the matrix. A study showing the structural behaviour of these oxide particles as a function of irradiation illustrates the potential of the extended X-ray absorption fine structure (EXAFS) technique. Using X-ray magnetic circular dichroism (XMCD), which is a difference-signal of two X-ray absorption spectra recorded for positive and negative helicities of the beam, the magnetic structure and some magnetic parameters, can be resolved. An example shows, how this can be applied to understand (Fe,Cr) systems, which is the base alloy of the investigated ODS steel. The results deliver an important crosscheck for modelling.rnBeside the presentation of these techniques, this paper shows how beamline techniques can serve nuclear research, with possibly activated materials. At the Paul Scherrer Institute, a sample holder for highly active materials has been developed, and has already served for EXAFS measurements at the Swiss Light Source (SLS). The set-up of this sample holder is briefly presented here.
机译:在第四代计划的框架内,保罗·谢勒研究所(Paul Scherrer Institute)研究了不同的候选结构材料。这些是氧化物弥散强化(ODS)钢,金属间材料和陶瓷复合材料。无论是在建模方面还是在实验方面,都可以通过多尺度方法解决材料对不同潜在负载(辐射,温度等)的响应。对每个比例尺的研究至少可以定性地了解材料中可能发生的损坏,并且还可以在建模方面对相应的比例尺进行验证。rn从实验的角度来看,比例尺的下端,原子级和结构水平,可以通过常规技术研究,例如透射电子显微镜(TEM)和X射线衍射(XRD)。但是,同步辐射技术的使用为研究材料结构和其他性能提供了一种理想的补充方法。本文介绍了在ODS研究领域中的应用,在该领域中可以选择性地研究纳米级分散体的结构行为,尽管在基质中仅存在约5 wt%的情况。一项研究显示了这些氧化物颗粒的结构行为随辐射的变化,说明了扩展X射线吸收精细结构(EXAFS)技术的潜力。使用X射线磁性圆二色性(XMCD),它是记录的两个X射线吸收光谱的正负离子斜度,磁结构和某些磁参数的差分信号。一个例子说明了如何将其应用于理解(Fe,Cr)系统,这是所研究的ODS钢的基础合金。这些结果为建模提供了重要的交叉检验。除了这些技术的介绍之外,本文还展示了束线技术如何通过可能的活化材料为核研究服务。在Paul Scherrer研究所,已经开发出了一种用于高活性材料的样品架,并且已经在瑞士光源(SLS)进行了EXAFS测量。在此简要介绍此样品架的设置。

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