首页> 外文期刊>Nuclear Instruments & Methods in Physics Research. Section A, Accelerators, Spectrometers, Detectors and Associated Equipment >Development of a wide-range paired scintillator with optical fiber neutron monitor for BNCT irradiation field study
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Development of a wide-range paired scintillator with optical fiber neutron monitor for BNCT irradiation field study

机译:用于BNCT辐射野外研究的带有光纤中子监测器的宽范围配对闪烁体的研制

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摘要

A wide range thermal neutron detector was developed based on the Scintillator with Optical Fiber (SOF) detector which has been previously used for thermal neutron monitoring during boron neutron capture therapy irradiation. With this new detector system we intended to address the issues of real-time thermal neutron flux measurement and the simultaneous measurement of a wide range of thermal neutron flux in a BNCT irradiation field which were difficult to implement with the gold wire activation method. The dynamic range of linearity of the SOF detector was expanded by using a plastic scintillator with a rapid decay time. On the other hand, the contribution of gamma rays and fast neutrons in the measured signals were compensated from those obtained by a pair of SOF detectors, one with a ~6LiF neutron converter and the other without. The discrimination level for the measured signals was also optimized to further reduce the contribution of gamma rays and fast neutrons signals. A non-paralyzable system model was applied to correct for the dead-time in the detector system. A good agreement between the thermal neutron flux measured by the gold wire activation method and the paired SOF detector system was observed. However, measurements which would normally take a few days to perform with the gold wire activation method were obtained in just about 15 min using the SOF detector system. We also confirmed the dynamic range of linearity for the SOF detector system to be in the order of magnitude of 10~4.
机译:基于具有光纤闪烁器(SOF)的探测器开发了一种宽范围的热中子探测器,该探测器先前已用于硼中子俘获疗法照射期间的热中子监测。使用这种新的探测器系统,我们旨在解决实时热中子通量测量和同时测量BNCT辐照场中大范围热中子通量的问题,这些问题很难用金线激活方法实现。通过使用具有快速衰减时间的塑料闪烁器,扩大了SOF检测器线性度的动态范围。另一方面,伽马射线和快中子在测量信号中的贡献由一对SOF检测器获得的补偿,其中一个带有〜6LiF中子转换器,另一个没有。还优化了测量信号的辨别水平,以进一步减少伽马射线和快中子信号的贡献。应用不可瘫痪的系统模型来校正检测器系统中的死区时间。观察到通过金线活化法测量的热中子通量与配对的SOF检测器系统之间的良好一致性。但是,使用SOF检测器系统仅需15分钟即可获得通常需要几天时间才能用金线激活方法执行的测量。我们还确认了SOF检测器系统的线性度动态范围约为10〜4。

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