首页> 外文期刊>Nuclear Instruments & Methods in Physics Research. Section A, Accelerators, Spectrometers, Detectors and Associated Equipment >Delayed gamma-ray spectroscopy with lanthanum bromide detector for non-destructive assay of nuclear material
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Delayed gamma-ray spectroscopy with lanthanum bromide detector for non-destructive assay of nuclear material

机译:溴化镧检测器的延迟伽马射线光谱用于核材料的无损检测

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摘要

High-energy delayed y-ray spectroscopy is a potential technique for directly assaying spent fuel assemblies and achieving the safeguards goal of quantifying nuclear material inventories for spent fuel handling, interim storage, reprocessing facilities, repository sites, and final disposal. Requirements for the y-ray detection system, up to ~6 MeV, can be summarized as follows: high efficiency at high y-ray energies, high energy resolution, good linearity between y-ray energy and output signal amplitude, ability to operate at very high count rates, and ease of use in industrial environments such as nuclear facilities. High Purity Germanium Detectors (HPGe) are the state of the art and provide excellent energy resolution but are limited in their count rate capability. Lanthanum Bromide (LaBr_3) scintillation detectors offer significantly higher count rate capabilities at lower energy resolution. Thus, LaBr_3 detectors may be an effective alternative for nuclear spent-fuel applications, where count-rate capability is a requirement. This paper documents the measured performance of a 2" (length) x 2" (diameter) of LaBr_3 scintillation detector system, coupled to a negatively biased PMT and a tapered active high voltage divider, with count-rates up to ~3 Mcps. An experimental methodology was developed that uses the average current from the PMT's anode and a dual source method to characterize the detector system at specific very high count rate values. Delayed y-ray spectra were acquired with the LaBr_3 detector system at the Idaho Accelerator Center, Idaho State University, where samples of ~3g of ~(235)U were irradiated with moderated neutrons from a photo-neutron source. Results of the spectroscopy characterization and analysis of the delayed y-ray spectra acquired indicate the possible use of LaBr_3 scintillation detectors when high count rate capability may outweigh the lower energy resolution.
机译:高能延迟y射线光谱法是一种直接分析乏燃料组件并实现量化核材料清单的保障性目标的潜在技术,以用于乏燃料处理,临时存储,后处理设施,储存场所和最终处置。高达〜6 MeV的y射线检测系统的要求可总结如下:高y射线能量下的高效率,高能量分辨率,y射线能量与输出信号幅度之间的良好线性,在以下条件下工作的能力计数率非常高,并且易于在工业环境(如核设施)中使用。高纯度锗探测器(HPGe)是最新技术,具有出色的能量分辨率,但计数率能力受到限制。溴化镧(LaBr_3)闪烁检测器以较低的能量分辨率提供了更高的计数率功能。因此,对于需要计数率功能的核乏燃料应用,LaBr_3检测器可能是一种有效的替代方法。本文记录了2“(长)x 2”(直径)的LaBr_3闪烁检测器系统的测量性能,该系统与负偏置的PMT和锥形有源高压分压器相连,计数率高达〜3 Mcps。开发了一种实验方法,该方法使用来自PMT阳极的平均电流和双源方法在特定的非常高的计数率值下表征检测器系统。延迟的y射线光谱是在爱达荷州立大学爱达荷州加速器中心的LaBr_3检测器系统中获得的,在其中〜3g的〜(235)U样品被来自光中子源的缓和中子辐照。光谱表征结果和获得的延迟y射线光谱分析结果表明,当高计数率能力可能胜过较低的能量分辨率时,可能会使用LaBr_3闪烁探测器。

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