高能锗探测器的真巧合和修正

Anastasia Milioni, T. Vasilopoulou, M. Savva, M. Anagnostakis, I. Stamatelatos
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引用次数: 0

摘要

通过基于蒙特卡罗模拟的计算工具,研究了两个高纯锗(HPGe)探测器在各种同位素、源几何形状和源到探测器配置下的真重合效应。利用Τhe MCNP代码升级补丁MCNP - cp和2018版PENELOPE,考虑了每个级联发射器的衰变方案,计算了相应伽马射线能量的全能量峰值效率(FEPE)。真实符合校正因子(TCC)计算为考虑了真实符合效应的每个核素的FEPE与不考虑该现象的估计FEPE之比。在所有情况下,使用MCNP-CP和PENELOPE 2018计算的TCC因子之间存在令人满意的一致性。此外,计算结果与实验所得的效率值进行了比较。使用TrueCoinc软件获得的校正因子应用于实验确定的FEPE曲线,基于使用参考源进行的测量,从而将校正数据与“非重合”情况下的模拟数据进行比较。本工作的结果有助于验证用于研究真重合效应和确定相应校正因子的计算工具和代码,为级联发射器的伽马能谱研究提供有用的数据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
True coincidence summing corrections in HPGe detectors
The true coincidence effect is studied in two High Purity Germanium (HPGe) detectors for a variety of isotopes, source geometries and source to detector configurations, via computational tools based on Monte–Carlo simulations. Τhe upgraded patch of MCNP code MCNP–CP and the 2018 version of PENELOPE, which take into account the decay scheme of each cascade emitter, are used to calculate the Full Energy Peak Efficiency (FEPE) for the corresponding gamma-ray energies. The true coincidence correction (TCC) factor is calculated as the ratio of the FEPE derived for each nuclide taking into consideration the true coincidence effect, to the FEPE estimated without considering the phenomenon. In all cases, a satisfactory agreement is observed between the TCC factors calculated using MCNP–CP and PENELOPE 2018. Moreover, the results of the calculations are compared against experimentally derived efficiency values. The correction factors obtained using the TrueCoinc software are applied on experimentally determined FEPE curves, based on measurements performed using reference sources, and consequently the corrected data are compared against the simulations for the "non-coincidence" case. The results of this work contribute to the validation of the computational tools and codes used to study the true coincidence effect and determine the corresponding correction factors, providing useful data for gamma–spectrometry studies of cascade emitters.
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