首页> 外文期刊>Nuclear Instruments & Methods in Physics Research. Section A, Accelerators, Spectrometers, Detectors and Associated Equipment >Development of a passive gold-foil Nested Neutron Spectrometer to validate the active current-mode He-3 measurements in a high neutron fluence rate radiotherapy environment
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Development of a passive gold-foil Nested Neutron Spectrometer to validate the active current-mode He-3 measurements in a high neutron fluence rate radiotherapy environment

机译:开发被动金箔嵌套中子光谱仪,以验证高中中子流量放射治疗环境中的有源电流模式HE-3测量

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Nested Neutron Spectrometers™ (NNS) can be used to measure neutron fluence rate spectra under diverse circumstances with a working principle similar to Bonner sphere systems. Conventionally, the NNS consists of an active-readout He-3 detector core and concentric moderator shells. In environments where the neutron fluence rate exceeds ~10~4 neutrons/s, these spectrometers may be operated in a current-mode to avoid the effects of pulse pile-up and deadtime. A current-to-pulse conversion factor is used to convert current-mode measurements to pulse-mode. However, the conversion factor can only be directly calibrated under low-flux conditions due to the pulse pile-up in high-flux situations. In order to have confidence in the use of the conversion factor in high neutron fluence rate environments such as in high-energy radiotherapy, its use must be experimentally validated. To perform this validation, we developed a passive-readout NNS with gold activation foils. Our work included the generation of system response functions using the Monte Carlo toolkit, GEANT4, and an experimental workflow. The passive NNS and the active NNS were then used to measure the secondary neutron fluence rate spectra produced by a Varian TrueBeam™ STx linac under identical experimental conditions. We found that the spectrum obtained using the active NNS agreed well with that obtained using the passive NNS within uncertainties. This serves as validation of the use of the current-mode of the active NNS in the high neutron fluence rate conditions encountered in radiotherapy.
机译:嵌套中子光谱仪TM(NNS)可用于在不同的情况下测量中子流量光谱,其工作原理类似于Bonner Sphere Systems。传统上,NNS由主动读出的HE-3检测器芯和同心主持人壳组成。在中子流量超过〜10〜4中子的环境中,这些光谱仪可以以电流模式操作,以避免脉冲堆叠和死区时间的影响。电流到脉冲转换因子用于将电流模式测量转换为脉冲模式。然而,由于高通量情况下的脉冲堆叠,转换因子只能在低通量条件下直接校准。为了在高中测量率环境中使用诸如高能放射治疗的高中流量环境中的转换因子,必须通过实验验证。为了执行此验证,我们开发了一种带金激活箔的被动读数NNS。我们的工作包括使用Monte Carlo Toolkit,Geant4和实验工作流程生成系统响应函数。然后,使用无源NN和活性NNS来测量由Varian TrueBeam TM STX LINAC在相同的实验条件下产生的二级中子流量率光谱。我们发现使用活性NNS获得的频谱与在不确定因素中使用无源NN获得的频谱很好地同意。这是在放疗中遇到的高中中子流量条件下使用活性NN的电流模式的验证。

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