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首页> 外文期刊>Nuclear Instruments & Methods in Physics Research. Section A, Accelerators, Spectrometers, Detectors and Associated Equipment >Spatial response characterization of liquid scintillator detectors using collimated gamma-ray and neutron beams
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Spatial response characterization of liquid scintillator detectors using collimated gamma-ray and neutron beams

机译:使用准直伽马射线和中子束的液体闪烁体探测器的空间响应特性

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摘要

Liquid scintillators are suitable for many applications because they can detect and characterize fast neutrons as well as gamma-rays. This paper presents the response of a 15-cm-in-length × 15-cm-in-height × 8.2-cm-in-width EJ-309 liquid scintillator with respect to the position of neutron and gamma-ray interactions. Liquid scintillator cells are typically filled with 97% of the scintillating cocktail to address thermal expansion of the liquid in varying temperature conditions. Measurements were taken with collimated ~(137)Cs and ~(252)Cf sources for gamma-ray and neutron mapping of the detector, respectively. MCNPX-PoliMi (ver. 2.0) simulations were also performed to demonstrate the spatial response of the detector. Results show that the detector response is greatest at the center and decreases when the collimated neutron and gamma-ray beam is moved toward the edge of the detector. The measured response in the voxels surrounding the detector center decreased by approximately 6% and 12% for gamma-ray and neutron scans, respectively, when compared to the center voxel. The measured decrease in the detector response was most pronounced at the corners of detector assembly. For the corner voxels located in the bottom row of the detector, the measured response decreased by approximately 39% for both gamma-ray and neutron scans. For the corner voxels located in the top row of the detector, the measured response decreased by approximately 66% and 48% for gamma-ray and neutron scans, respectively. Both measurements and simulations show the inefficient production of secondary charged particles in the voxels located in the top portion of the detector due to the presence of expansion volume. Furthermore, the presence of the expansion volume potentially affects the transport of the scintillation light through the coupling window between the liquid scintillator and the photocathode in the photomultiplier tube.
机译:液体闪烁体适用于许多应用,因为它们可以检测和表征快速中子以及伽马射线。本文介绍了15厘米长×15厘米高×8.2厘米宽的EJ-309液体闪烁体对中子和伽马射线相互作用位置的响应。液体闪烁器电池通常填充97%的闪烁混合物,以解决在不同温度条件下液体的热膨胀。用准直的〜(137)Cs和〜(252)Cf光源分别对探测器的伽马射线和中子测绘进行测量。还进行了MCNPX-PoliMi(2.0版)仿真,以证明探测器的空间响应。结果表明,当准直的中子和伽马射线束朝探测器边缘移动时,探测器的响应在中心处最大,而在中心处减小。与中心体素相比,在探测器中心周围的体素中,对于伽马射线和中子扫描,测得的响应分别降低了约6%和12%。在检测器组件的拐角处,检测到的检测器响应下降最为明显。对于位于探测器底行的角部体素,对于伽马射线和中子扫描,所测得的响应降低了约39%。对于位于探测器顶行的角部体素,对于伽马射线和中子扫描,测得的响应分别降低了约66%和48%。测量和模拟均显示由于存在膨胀体积,位于检测器顶部的体素中二次带电粒子的产生效率低下。此外,膨胀体积的存在可能会影响闪烁光通过光电倍增管中液体闪烁体和光电阴极之间的耦合窗口的传输。

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