Optimization of FLUKA detector model for HPGe array

C. Charubala, V. Santhanakrishnan, G. Ganesh, M. Kulkarni
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Abstract

Monte Carlo codes, such as FLUKA, are widely used to optimize calibration of spectrometric systems. HPGe detector array (HDA) for lung monitoring was modeled in FLUKA code using available information about their geometry and optimized for efficiency using 241Am point source at smaller distances (<10 cm) as in case of in-vivo monitoring scenarios. Thickness of dead layer (DL) on the top and lateral detector surfaces for low energy counting was determined by considering the experimental and simulated efficiency for various energies. Using trial and error method, optimized DL thickness was found out to be 2.5 μm on top surface and 1.8 mm on lateral surfaces for each HPGe detector in the array. For the optimized model, it was found that the simulated and experimental efficiency and the simulated and experimental spectra were in reasonable agreement. Optimization of the HDA was an important benchmarking step to reduce the simulation errors before they are implemented in complex numerical problems using computational phantoms.
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HPGe阵列FLUKA探测器模型的优化
蒙特卡罗代码,如FLUKA,被广泛用于优化光谱系统的校准。用于肺部监测的HPGe探测器阵列(HDA)在FLUKA代码中使用有关其几何形状的可用信息进行建模,并在体内监测场景中使用较小距离(<10 cm)的241Am点源进行效率优化。考虑不同能量下的实验效率和模拟效率,确定了低能量计数时探测器顶部和侧面的死层厚度。通过试错法确定了阵列中每个HPGe探测器的最优DL厚度为上表面2.5 μm,侧表面1.8 mm。结果表明,优化模型的模拟效率与实验效率、模拟光谱与实验光谱基本一致。HDA的优化是在复杂数值问题中使用计算幻影实现之前减少仿真误差的重要基准测试步骤。
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Theme 8. Emergency preparedness and response Theme 2. Radiation Safety and Protection in Nuclear Facilities Theme 1. Foundation Topics on Radiation Protection Philosophy and Risk Estimates Theme 7. Existing Exposures Theme 5. Nuclear instrumentation and system development
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