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A Novel Algorithm for Solving the True Coincident Counting Issues in Monte Carlo Simulations for Radiation Spectroscopy

机译:一种解决蒙特卡罗模拟辐射光谱中真实重合计数问题的新算法

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摘要

Coincident counts can be observed in experimental radiation spectroscopy. Accurate quantification of the radiation source requires the detection efficiency of the spectrometer, which is often experimentally determined. However, Monte Carlo analysis can be used to supplement experimental approaches to determine the detection efficiency a priori. The traditional Monte Carlo method overestimates the detection efficiency as a result of omitting coincident counts caused mainly by multiple cascade source particles. In this study, a novel multi-primary coincident counting algorithm was developed using the Geant4 Monte Carlo simulation toolkit. A high-purity Germanium detector for Co-60 gamma-ray spectroscopy problems was accurately modeled to validate the developed algorithm. The simulated pulse height spectrum agreed well qualitatively with the measured spectrum obtained using the high-purity Germanium detector. The developed algorithm can be extended to other applications, with a particular emphasis on challenging radiation fields, such as counting multiple types of coincident radiations released from nuclear fission or used nuclear fuel.
机译:符合计数可以在实验辐射光谱学中观察到。辐射源的准确定量需要光谱仪的检测效率,这通常是通过实验确定的。但是,蒙特卡洛分析可用于补充实验方法,以事先确定检测效率。传统的蒙特卡洛方法由于忽略了主要由多个级联源粒子引起的重复计数,因此高估了检测效率。在这项研究中,使用Geant4蒙特卡洛模拟工具包开发了一种新颖的多基元同时计数算法。精确建模了用于Co-60伽玛射线光谱学问题的高纯度锗探测器,以验证所开发的算法。模拟的脉冲高度光谱与使用高纯度锗探测器获得的测量光谱在质量上非常吻合。所开发的算法可以扩展到其他应用,特别强调挑战性的辐射场,例如计算从核裂变或用过的核燃料释放的多种同时发生的辐射。

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