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Modeling an HPGe detector response to gamma-rays using MCNP5 code

机译:使用MCNP5代码建模对伽马射线的HPGE探测器响应

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摘要

The response function is the important information for the precise interpretation of experimental data and also for characterizing the developing nuclear instruments. Measurement of the response function normally requires a number of mono-energetic gamma-ray sources, a long acquisition time and an appropriate experimental setup. The Monte Carlo method, as an alternative to response function measurement, has widely been used and recommended. In this study, a computational model of an HPGe detector has been developed by using the MCNP5 code. To validate the simulated model, the simulations from mono-energetic sources have been compared to the corresponding measured data. Any deviation from the measurement could be attributed to the unmodeled details of the detector crystal, so they needed adjustment. Moreover, an analysis has been undertaken on the dependency of detection efficiency on the dead layer thickness of the germanium crystal. Having developed a computational model of the crystal, a set of correction factors was extracted to take into account the gamma-ray selfabsorption within the source volume. The simulated model of the HPGe detector in this study can be used to calculate the detection efficiency when the samples are not of the standard geometry which require self-absorption considerations.
机译:响应函数是实验数据确切解释的重要信息,也是为了表征发展核工具。响应功能的测量通常需要许多单能量伽马射源,长采集时间和适当的实验设置。蒙特卡罗方法作为响应函数测量的替代方案,已被广泛使用和推荐。在本研究中,通过使用MCNP5代码开发了HPGE检测器的计算模型。为了验证模拟模型,已经将来自单能级来源的模拟与相应的测量数据进行了比较。从测量的任何偏差都可能归因于检测器晶体的未拼模节,因此它们需要调整。此外,已经对锗晶体死层厚度的检测效率的依赖性进行了分析。开发了晶体的计算模型,提取了一组校正因子,以考虑源体积内的伽马射线知识。该研究中的HPGE检测器的模拟模型可用于计算样品不是需要自吸收注意事项的标准几何形状时的检测效率。

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