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Development of an extruded plastic array for narrow scintillation pulse widths

机译:用于窄闪烁脉冲宽度的挤出塑料阵列的研制

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This work describes and shows data from a prototype instrument designed to sample transitory gamma rays resulting from stockpile stewardship testing. The required instrumentation needs to be large, sensitive, low cost, and have the ability to measure pulse widths as narrow as 5 ns (or less). The natural material for an instrument to meet these criteria is an organic scintillator. In order to cover a large area and reduce the overall cost of the detection system (material and electronics), one approach would be large pixel elements to cover an array of a few square meters. Unfortunately, this approach will not provide the accuracy required for these experiments as large volume scintillation detectors broaden the intrinsic full-width at half maximum (FWHM) of the scintillation light pulse due to delays introduced by internal reflections within the scintillator volume. We devised an approach to mitigate these broadening effects from large volume detectors, while remaining at a low cost. Our detectors consist of a bundle of extruded plastic scintillation bars, readout by wavelength shifting fibers that pipe the scintillation light to a fast light readout device. In this paper we describe the detector unit and assembly procedure, the fast photomultiplier tube (PMT) and readout electronics, as well as data from the laboratory with a radioactive source and cosmic-ray muons. Additionally, we show results from a detector unit tested at the NRL Mercury pulsed power facility. The concluding section discusses the path forward for this instrument and possible improvements for a field-deployable system.
机译:这项工作描述并显示了由设计用于绘制由库存管道测试产生的暂时性伽马射线的原型仪器的数据。所需的仪器需要大,敏感,低成本,并且能够测量脉冲宽度为5 ns(或更少)。用于满足这些标准的仪器的天然材料是有机闪烁体。为了覆盖大面积并降低检测系统的总成本(材料和电子),一种方法将是大的像素元件,以覆盖几平方米的阵列。遗憾的是,这种方法不会提供这些实验所需的准确性,因为大容量闪烁探测器由于闪烁体积内的内部反射引入的延迟而导致闪烁光脉冲的半最大(FWHM)的固有全宽度。我们设计了一种方法来缓解大量探测器的这些扩大效果,同时保持低成本。我们的探测器由一束挤出的塑料闪烁棒组成,通过波长移位纤维读出,使闪烁光管在快速读出装置中。在本文中,我们描述了探测器单元和组装过程,快速光电倍增管(PMT)和读出电子设备,以及来自实验室的数据,具有放射源和宇宙射线μ的数据。此外,我们展示了在NRL汞脉冲电力设施上测试的检测器单元的结果。结束部分讨论了该仪器的前进路径以及可能对现场部署系统的改进。

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