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Deployment of the First Photofission Measurement System Dedicated to SNM Detection in Europe: Outcomes and Future Prospects

机译:在欧洲部署首个专门用于SNM检测的光裂变测量系统:成果和未来前景

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Special Nuclear Material (SNM) such as uranium and plutonium isotopes could be potentially used to make a nuclear bomb involved in a terrorist attack. To prevent illicit trafficking of SNM in Europe, inspection of cargo containers at borders is required. X-ray scanning is widely used by customs to control suspect containers. However, this technology is not the most adapted to bring to light SNM signature. Therefore, a second line technology based on the photofission reaction could enable to detect SNM in a non-destructive manner. In the frame of the C-BORD European project, several teams specialized in photofission have joined forces to design an active photon interrogation system enabling to detect SNM hidden in cargo containers. The system is based on the use of a linear electron accelerator (linac). First, high-energy photons generated by Bremsstrahlung in the conversion target of the linac irradiate a suspect area of the cargo container. Secondly, prompt and delayed particles emitted following photofission reactions are detected if SNM is present. The largest seaport in Europe (Maasvlakte, in the suburbs of Rotterdam, Netherlands), where 9 MeV linacs are used by Dutch customs for X-ray scanning, has been chosen as test site. In order to deploy a full system taking advantage of all photofission signatures, different subsystems have been developed. In this paper, first, we give an overview of the photofission system. Then, we show how the system has been deployed at the Rotterdam seaport in September and October 2018 and tested on mock-ups of cargo containers. Finally, we show that setting up a photon interrogation system on an industrial facility initially designed for X-ray scanning is a challenge which has been successfully met in the frame of the C-BORD project to deploy the first photofission measurement system on an industrial site in Europe. The outcomes of this first deployment will be exposed and the future challenges to be addressed will be discussed.
机译:铀和p同位素之类的特殊核材料(SNM)可能被用来制造涉及恐怖袭击的核弹。为了防止在欧洲非法贩运SNM,需要对边境的货柜进行检查。海关广泛使用X射线扫描来控制可疑容器。但是,此技术不是最适合用来揭示SNM签名的。因此,基于光裂变反应的第二线技术可以以无损方式检测SNM。在C-BORD欧洲项目的框架中,几个专门从事光裂变的团队联合起来设计了一个主动光子询问系统,该系统能够检测隐藏在货物集装箱中的SNM。该系统基于线性电子加速器(直线加速器)的使用。首先,在直线加速器的转换目标中,由ms致辐射产生的高能光子辐照了货柜的可疑区域。其次,如果存在SNM,则检测到在光裂变反应后发出的迅速而延迟的颗粒。已选择欧洲最大的海港(荷兰鹿特丹郊区的马斯维拉克特)作为测试地点,荷兰海关在那里使用9 MeV直线加速器进行X射线扫描。为了利用所有光裂变特征来部署完整的系统,已经开发了不同的子系统。在本文中,首先,我们对光裂变系统进行了概述。然后,我们展示了该系统如何在2018年9月和10月在鹿特丹海港部署,并在货柜模型上进行了测试。最后,我们表明,在最初设计用于X射线扫描的工业设施上建立光子询问系统是一项挑战,已在C-BORD项目的框架内成功解决,以在工业现场部署首个光裂变测量系统在欧洲。首次部署的结果将暴露出来,并将讨论将来要解决的挑战。

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