首页> 外文期刊>Nuclear Instruments & Methods in Physics Research >Enhancing the performance of a tensioned metastable fluid detector based active interrogation system for the detection of SNM in <1 m~3 containers using a D-D neutron interrogation source in moderated/reflected geometries
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Enhancing the performance of a tensioned metastable fluid detector based active interrogation system for the detection of SNM in <1 m~3 containers using a D-D neutron interrogation source in moderated/reflected geometries

机译:增强基于张力的亚稳流体检测器的主动询问系统的性能,该系统使用D-D中子询问源在中等/反射的几何形状中检测<1 m〜3容器中的SNM

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This paper describes the development of a SNM detection system for interrogating 1m3cargos via the combination of a D–D neutron interrogation source (with and without reflectors) and tensioned metastable fluid detectors (TMFDs). TMFDs have been previously shown (Taleyarkhan et al., 2008; Grimes et al., 2015; Grimes and Taleyarkhan, 2016; Archambault et al., 2017; Hagen et al., 2016) to be capable of using Threshold Energy Neutron Analysis (TENA) techniques to reject the∼2.45 MeV D–D interrogating neutrons while still remaining sensitive to >2.45 MeV neutrons resulting from fission in the target (HEU) material.In order to enhance the performance, a paraffin reflector was included around the accelerator head. This reflector was used to direct neutrons into the package to increase the fission signal, lower the energy of the interrogating neutrons to increase the fission cross-section with HEU, and, also to direct interrogating neutrons away from the detectors in order to enhance the required discrimination between interrogating and fission neutrons.Experiments performed with a239Pu–Be neutron source and MnO2indicated that impressive performance gains could be made by placing a parabolic paraffin moderator between the interrogation source and an air-filled cargo container with HEU placed at the center. However, experiments with other cargo fillers (as specified in the well-known ANSI N42.41-2007 report), and with HEU placed in locations other than the center of the package indicated that other reflector geometries might be superior due to over-“focusing” and the increased solid angle effects due to the accommodation of the moderator geometry. The best performance for the worst case of source location and box fill was obtained by placing the reflector only behind the D–D neutron source rather than in front of it.Finally, it was shown that there could be significant gains in the ability to detect concealed SNM by operating the system in multiple geometric configurations. Worst case scenarios were created by filling the box with hydrogenous material and placing the HEU as far away as possible from the neutron source. The performance of the system in the worst-case scenarios were greatly improved by exchanging the location of the accelerator and the opposite TMFD panel half way through interrogation. Using this operation, scenarios with positions of the concealed SNM that were once the most challenging to successfully detect became readily detectable.
机译:本文描述了一种通过将D–D中子询问源(带和不带反射器)和张紧的亚稳流体探测器(TMFD)组合来询问1m3货物的SNM检测系统的开发。以前已经证明了TMFDs(Taleyarkhan等,2008; Grimes等,2015; Grimes和Taleyarkhan,2016; Archambault等,2017; Hagen等,2016)能够使用阈值能量中子分析( TENA)技术可拒绝〜2.45 MeV D–D询问中子,同时仍对目标(HEU)材料裂变产生的> 2.45 MeV中子保持敏感。为了提高性能,在加速器头周围装有石蜡反射器。该反射器用于将中子引导到组件中以增加裂变信号,降低询问中子的能量以利用HEU增大裂变截面,并且还用于将询问中子从探测器中引出以增强所需的能量用239Pu-Be中子源和MnO2进行的实验表明,通过在抛物面石蜡缓和剂和充有HEU的充气货物集装箱之间放置抛物线状石蜡缓和剂,可以显着提高性能。但是,使用其他填充物(如众所周知的ANSI N42.41-2007报告中所指定)以及将HEU放置在包装中心以外的位置进行的实验表明,由于“聚焦”和由于调节器几何形状的调整而增加的立体角效果。通过将反射器仅放置在D–D中子源的后面而不是其前面,可以获得在最坏的源位置和箱填充情况下的最佳性能。最后,结果表明,探测能力可能会得到显着提高通过以多种几何配置操作系统来隐藏SNM。最坏的情况是通过在包装箱中填充含氢物质并将HEU放置在尽可能远离中子源的位置。通过在查询过程中途交换加速器和相对的TMFD面板的位置,可以大大改善系统在最坏情况下的性能。使用此操作,具有隐藏的SNM位置的场景曾经是成功检测最困难的场景,因此可以轻松检测到。

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