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On screening for Special Nuclear Materials (SNMs) with X-ray diffraction

机译:用X射线衍射筛选特殊核材料(SNM)

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摘要

A novel detection technique employing X-ray diffraction (XRD) to screen for Special Nuclear Materials (SNMs), in particular for uranium, has been recently proposed. It is based on the interesting fact that uranium (and incidentally, plutonium) has a non-cubic lattice structure, in contrast to all other non-SNM, high-density elements of the Periodic Table. The principle of this screening technique is briefly elucidated by comparing the XRD lines of uranium with those of lead, a material of high atomic number (Z) commonly found in container traffic. Several physical conditions that must be satisfied to enable XRD for SNM screening are considered. To achieve adequate penetration, both of suspicious high-Z materials and their containers, photon energies of 1 MeV and above must be employed. Implications from partial coherence theory for the XRD measurement geometry at such photon energies are presented. The question of multiple scatter degradation of the coherent scatter signal is addressed. Technological considerations relevant to performing XRD at 1 MeV, particularly regarding the radiation source and detector, are discussed. A novel secondary aperture scheme permitting high energy XRD is presented. It is concluded that the importance of the application and the prospect of its feasibility are sufficient to warrant experimental verification.
机译:最近已经提出了一种新颖的检测技术,该技术采用X射线衍射(XRD)筛选特殊核材料(SNM),特别是铀。基于有趣的事实,与元素周期表中所有其他非SNM高密度元素相比,铀(以及ally)具有非立方晶格结构。通过比较铀的X射线衍射线与铅(通常在集装箱运输中常见的高原子序数(Z)的材料)的XRD线,简要阐明了这种筛选技术的原理。考虑了使XRD用于SNM筛选必须满足的几个物理条件。为了获得足够的穿透力,可疑的高Z材料及其容器都必须使用1 MeV及以上的光子能量。提出了部分相干理论在这种光子能量下对XRD测量几何的影响。解决了相干散射信号的多次散射劣化的问题。讨论了与在1 MeV下执行XRD有关的技术考虑,尤其是与辐射源和检测器有关的技术考虑。提出了允许高能量XRD的新颖的次级孔径方案。结论是,该应用的重要性及其可行性的前景足以进行实验验证。

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