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基于担架几何结构,采用碘化钠(铊)探测器对全身计数器进行蒙特卡罗校准。

Monte Carlo calibration of whole-body counters with NaI(Tl) detectors in stretcher geometry.

作者信息

Breustedt B, Eschner W

机构信息

Institute for Radiation Research, Karlsruhe Institute of Technology, Herrmann-von-Helmholtz-Platz 1, 76344 Eggenstein-Leopoldshafen, Germany.

出版信息

Radiat Prot Dosimetry. 2010 Jun;139(4):510-8. doi: 10.1093/rpd/ncp296. Epub 2010 Jan 19.

Abstract

A usercode for the EGSnrc Monte Carlo package has been developed for the simulation of whole-body counters with NaI(Tl) detectors in stretcher geometry. The geometry of the whole-body counter and the information about the detectors are specified in a plain text file, which enables users to easily adapt the codes to their installation. Bottle phantoms consisting of 1 and 2 l Cautex bottles filled with the radionuclide dissolved in water have been modelled as phantoms depicting the human body to be measured. These kind of phantoms can be defined by the users in the input file. Sets of efficiency factors for calculating activities from counts in measured spectra have been generated by two methods: 'direct simulation of nuclide decay' uses compiled data on photon energies and yields for all nuclides of interest and simulates a given number of decays of those nuclides for phantom masses from 10 to 100 kg while 'single-energy simulation' uses idealized 'nuclides' with single-energy emissions of 100 % yield to study the response of the systems over the energy range of interest (0-2000 keV in 20-keV steps). At University Hospital of Cologne and Karlsruhe Institute of Technology both methods have been successfully applied for the evaluation of spectra measured within intercomparison exercises.

摘要

已为EGSnrc蒙特卡罗软件包开发了一个用户代码,用于模拟担架式几何结构中配备碘化钠(铊)探测器的全身计数器。全身计数器的几何结构和探测器信息在一个纯文本文件中指定,这使得用户能够轻松地根据自己的设备调整代码。已将装有溶解在水中的放射性核素的1升和2升Cautex瓶组成的瓶体模型作为描绘待测人体的模型。用户可以在输入文件中定义这类模型。通过两种方法生成了用于从测量光谱中的计数计算活度的效率因子集:“核素衰变直接模拟”使用了关于所有感兴趣核素的光子能量和产额的编译数据,并针对10至100千克的模型质量模拟了这些核素给定数量的衰变;而“单能模拟”使用具有100%产额的单能发射的理想化“核素”,以研究系统在感兴趣的能量范围(0 - 2000 keV,步长为20 keV)内的响应。在科隆大学医院和卡尔斯鲁厄理工学院,这两种方法都已成功应用于比对实验中测量光谱的评估。

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