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Development of a modular directional and spectral neutron detection system using solid-state detectors

机译:使用固态探测器开发模块化方向性和光谱中子探测系统

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A detection system using room-temperature, microstructured solid-state thermal neutron detectors with very low leakage current has been developed at Rensselaer Polytechnic Institute (RPI) with the ability to provide positional and spectral information about an unknown neutron source. The Directional and Spectral Neutron Detection System (DSNDS) utilizes a set of small-but-scalable, zero-bias solid-state thermal neutron detectors which have demonstrated high thermal neutron efficiency and adequate gamma insensitivity. The DSNDS can gather spectral information about an unknown neutron source with a relatively small number of detectors, simplifying the detector electronics and minimizing cost; however, the DSNDS is modular in design, providing the capability to increase the detection efficiency and angular resolution. The system used in this paper was comprised of a stack of five high-density polyethylene (HDPE) disks with a thickness of 5 cm and a diameter of 30 cm, the middle disk containing 16 detectors positioned as one internal (moderated) and one external (unmoderated) ring of solid-state neutron detectors. These two detector rings provide the ability to determine the directionality of a neutron source. The system gathers spectral information about a neutron source in two ways: by measuring the relative responses of the internal ring of detectors as well as measuring the ratio of the internal-to-external detector responses. Experiments were performed with variable neutron spectra: a ~(252)Cf spontaneous fission neutron source which was HDPE moderated, HDPE reflected, lead (Pb) shielded, and bare in order to benchmark the system for spectral sensitivity. Simulations were performed in order to characterize the neutron spectra corresponding to each of the source configurations and showed agreement with experimental measurements. The DSNDS demonstrates the ability to determine the relative angle of the source and the hardness of the neutron spectrum. By using the single HDPE disk with two detector rings and stacking four moderator disks, the intrinsic efficiency for ~(252)Cf spectrum of such detector is about 0.4% ± 0.04%.
机译:Rensselaer Polytechnic Institute(RPI)已开发出一种使用室温微结构固态热中子探测器且泄漏电流极低的检测系统,它能够提供有关未知中子源的位置和光谱信息。方向性和光谱中子探测系统(DSNDS)使用了一组小型但可缩放的零偏置固态热中子探测器,这些探测器已经证明了高的中子效率和足够的伽马不敏感性。 DSNDS可以使用相对较少的探测器来收集有关未知中子源的光谱信息,从而简化了探测器电子设备并最小化了成本。但是,DSNDS是模块化设计,具有提高检测效率和角度分辨率的能力。本文使用的系统由一叠五个5厘米厚,直径30厘米的高密度聚乙烯(HDPE)磁盘组成,中间磁盘包含16个检测器,一个内部(中等),一个外部(非节制的)固态中子探测器环。这两个探测器环提供了确定中子源方向性的能力。该系统以两种方式收集有关中子源的光谱信息:通过测量探测器内部环的相对响应以及测量内部与外部探测器响应之比。实验采用可变中子光谱进行:〜(252)Cf自发裂变中子源,其经HDPE调节,HDPE反射,铅(Pb)屏蔽和裸露,以对光谱灵敏度进行基准测试。进行模拟是为了表征与每种放射源配置相对应的中子光谱,并表明与实验测量结果一致。 DSNDS证明了确定源的相对角度和中子光谱硬度的能力。通过使用具有两个检测器环的单个HDPE盘并堆叠四个减速器盘,此类检测器的〜(252)Cf光谱的固有效率约为0.4%±0.04%。

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