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A single scatter electron Monte Carlo approach for simulating gamma-ray stopping efficiencies of Geiger-Miiller counters

机译:用于模拟Geiger-Miiller计数器的伽马射线停止效率的单散射电子Monte Carlo方法

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摘要

In spite of their relatively poor gamma-ray stopping efficiencies, the Geiger-Muller (GM) counter is still preferred in many radioisotope gauges for industrial measurements. This is because these detectors exhibit a high degree of robustness in harsh environments, are relatively insensitive to temperature changes in the environment, and are inexpensive compared to other types of radiation detectors. These properties could make the use of GM counters very feasible in a number of industrial applications, such as gamma-ray tomography and gamma-ray density gauges, provided that their gamma-ray stopping efficiencies can be improved. The Monte Carlo (MC) method is a powerful computational physics tool that is utilized very often in the design of radiation detectors and radioisotope gauges. In this work a MC model for GM counters that is benchmarked with experiments at the primary photon energy of 59.5 keV is proposed. This is a specific purpose MC simulation code that, as opposed to publicly available general purpose MC codes, employs single scatter (or microscopic) electron transport and is currently under development. In this paper, the MC code is described in detail and the results of the specific purpose MC code are benchmarked with experiments and two general purpose MC codes, MCNP5 and PENELOPE. It was observed that the specific purpose MC code improved the reduced rhi-snuare value when comnared rn MCNP5 and PF.NF.I OPE.
机译:尽管它们的伽马射线截止效率相对较差,但在许多用于工业测量的放射性同位素测量仪中,Geiger-Muller(GM)计数器仍然是首选。这是因为这些探测器在恶劣的环境中表现出高度的耐用性,对环境中的温度变化相对不敏感,并且与其他类型的辐射探测器相比价格便宜。这些特性可以使GM计数器在许多工业应用(例如伽马射线断层扫描和伽马射线密度计)中非常可行,前提是可以提高它们的伽马射线停止效率。蒙特卡洛(MC)方法是一种功能强大的计算物理工具,在辐射探测器和放射性同位素仪的设计中经常使用。在这项工作中,提出了针对GM计数器的MC模型,该模型以59.5 keV的一次光子能量的实验为基准。这是一种专用的MC模拟代码,与可公开获得的通用MC代码相反,它采用单散射(或微观)电子传输,目前正在开发中。在本文中,详细描述了MC代码,并通过实验和两种通用MC代码MCNP5和PENELOPE对特定目的MC代码的结果进行了基准测试。观察到,当将MCNP5和PF.NF.I OPE进行比较时,专用MC代码可改善降低的Rhi-snaare值。

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    Department of Physics and Technology, University of Bergen, Allegaten 55, 5007 Bergen, Norway,The Mkhelsen Center for Industrial Science and Technology, P.O. Box 6031, 5892 Bergen, Norway,Center for Engineering Applications of Radioisotopes, Nuclear Engineering Department, North Carolina State University, Raleigh, NC 27695, USA;

    Department of Physics and Technology, University of Bergen, Allegaten 55, 5007 Bergen, Norway,The Mkhelsen Center for Industrial Science and Technology, P.O. Box 6031, 5892 Bergen, Norway;

    The Mkhelsen Center for Industrial Science and Technology, P.O. Box 6031, 5892 Bergen, Norway,CMR Instrumentation, Christian Michelsen Research AS, P.O. Box 6031, 5892 Bergen, Norway;

    Center for Engineering Applications of Radioisotopes, Nuclear Engineering Department, North Carolina State University, Raleigh, NC 27695, USA;

    Center for Engineering Applications of Radioisotopes, Nuclear Engineering Department, North Carolina State University, Raleigh, NC 27695, USA;

    Center for Engineering Applications of Radioisotopes, Nuclear Engineering Department, North Carolina State University, Raleigh, NC 27695, USA;

    Center for Engineering Applications of Radioisotopes, Nuclear Engineering Department, North Carolina State University, Raleigh, NC 27695, USA;

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  • 正文语种 eng
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  • 关键词

    computational physics; monte carlo simulation; single scatter electron transport; geiger-muller counter; stopping efficiency;

    机译:计算物理;蒙特卡罗模拟;单散射电子输运;盖革-米勒计数器;停止效率;

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