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Determination of optimal boundary for algorithmic method of plastic scintillator-based radiation detector against nuclear terrorism

机译:基于核恐怖主义的塑料闪烁体辐射探测器算法算法的最佳边界测定

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A plastic scintillator-based radiation portal monitoring system has played an important role in preventing and detecting illicit trafficking of nuclear and radioactive materials. The limited spectroscopic information of the plastic scintillator material makes it difficult to discriminate radioactive materials of concern from naturally occurring radioactive materials (NORM) or background radiation. This has an impact on operations and surveillance costs. Various studies including energy windowing algorithm have been conducted to deal with this problem. However, few papers have been published on how to determine the optimal boundary of energy windowing algorithm. This paper discusses the algorithmic method for a plastic scintillator-based radiation detection system and how to determine the optimal boundary of the energy windowing. Comparing the calculated and experimental results, it appeared that the algorithmic method using energy window boundary presented in this paper could improve the ability of a plastic scintillator-based radiation detection system to discriminate certain threat materials from NORM or background radiation. Furthermore, nuclear materials (natural and low-enriched uranium) which have the similar spectral distributions with ambient background radiation could also be separated from it.
机译:塑料闪烁体的辐射门户监测系统在预防和检测非法贩运核和放射性物质方面发挥了重要作用。塑料闪烁体材料的有限光谱信息使得难以区分基于自然发生的放射性物质(规范)或背景辐射的关注的放射性物质。这对运营和监测成本产生了影响。已经进行了各种研究,包括能量窗口算法以处理这个问题。然而,关于如何确定能量窗口算法的最佳边界,已经发表了很少的论文。本文讨论了基于塑料闪烁体的辐射检测系统的算法方法以及如何确定能量窗口的最佳边界。比较计算和实验结果,似乎采用本文所呈现的能量窗边界的算法方法可以提高基于塑料闪烁体的辐射检测系统的能力,以区分来自规范或背景辐射的某些威胁材料。此外,具有与环境背景辐射相似的光谱分布的核材料(天然和低富含铀)也可以与其分离。

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