首页> 外文期刊>Nuclear Instruments & Methods in Physics Research. Section A, Accelerators, Spectrometers, Detectors and Associated Equipment >Monte Carlo uncertainty analysis of germanium detector response to gamma-rays with energies below 1 MeV
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Monte Carlo uncertainty analysis of germanium detector response to gamma-rays with energies below 1 MeV

机译:能量低于1 MeV的锗探测器对伽马射线响应的蒙特卡洛不确定性分析

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摘要

Monte Carlo method was used to simulate the pulse-height response function of high-precision germanium (HPGe) detector for photon energies below 1 MeV. The calculations address the uncertainty estimation due to inadequate specifications of source positioning and to variations in the detector's physical components: dead layer thickness, spectrometer angular positioning and the presence/absence of aluminium holder. A detailed Monte Carlo model was developed using the MCNP4C code. The simulation results indicate that the uncertainty due to the dead layer thickness has larger effect on photons energies below 100 keV, where for 15 keV incident photon energy the total counts are by a factor of 7 times higher when the thickness is 50% larger. Small variations in source position and angular spectrometer have minimum effect on the photon energies modelled. The absence of A1-holder in the Monte Carlo model reduces the Compton region information for higher energy regions. This analysis has indicated that Monte Carlo methods can represent a valuable tool for the quantitative uncertainty analysis of radiation spectrometers. They can furthermore be instrumental in the gamma-ray detector quantitative calibration and benchmarking processes, thus minimizing the need for deployment of radioactive sources. (C) 2004 Elsevier B.V. All rights reserved.
机译:蒙特卡罗方法用于模拟高精度锗(HPGe)检测器对低于1 MeV的光子能量的脉冲高度响应函数。该计算解决了不确定性估计的问题,这是由于源位置规格不正确以及检测器物理组件的变化而引起的:死层厚度,光谱仪角度定位以及铝支架的存在/不存在。使用MCNP4C代码开发了详细的蒙特卡洛模型。仿真结果表明,死区厚度导致的不确定性对低于100 keV的光子能量有更大的影响,对于15 keV入射的光子能量,当厚度增加50%时,总计数将增加7倍。源位置和角度光谱仪的微小变化对建模的光子能量影响最小。蒙特卡洛模型中缺少A1受体会降低高能区的康普顿区信息。该分析表明,蒙特卡洛方法可以代表用于辐射光谱仪定量不确定性分析的有价值的工具。它们还可以在伽马射线探测器的定量校准和基准化过程中发挥作用,从而最大限度地减少了对放射源的部署需求。 (C)2004 Elsevier B.V.保留所有权利。

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