Steinberger William M, Ruch Marc L, Giha Nathan, Fulvio Angela Di, Marleau Peter, Clarke Shaun D, Pozzi Sara A
University of Michigan, Department of Nuclear Engineering and Radiological Sciences, Ann Arbor, MI, 48109, USA.
Los Alamos National Laboratory, Nuclear Engineering and Nonproliferation Division, Los Alamos, NM, 87544, USA.
Sci Rep. 2020 Feb 5;10(1):1855. doi: 10.1038/s41598-020-58857-z.
A compact radiation imaging system capable of detecting, localizing, and characterizing special nuclear material (e.g. highly-enriched uranium, plutonium…) would be useful for national security missions involving inspection, emergency response, or war-fighters. Previously-designed radiation imaging systems have been large and bulky with significant portions of volume occupied by photomultiplier tubes (PMTs). The prototype imaging system presented here uses silicon photomultipliers (SiPMs) in place of PMTs because SiPMs are much more compact and operate at low power and voltage. The SiPMs are coupled to the ends of eight stilbene organic scintillators, which have an overall volume of 5.74 × 5.74 × 7.11 cm. The prototype dual-particle imager's capabilities were evaluated by performing measurements with a Cf source, a sphere of 4.5 kg of alpha-phase weapons-grade plutonium known as the BeRP ball, a 6 kg sphere of neptunium, and a canister of 3.4 kg of plutonium oxide (7% Pu and 93% Pu). These measurements demonstrate neutron spectroscopic capabilities, a neutron image resolution for a Watt spectrum of 9.65 ± 0.94° in the azimuthal direction and 22.59 ± 5.81° in the altitude direction, imaging of gamma rays using organic scintillators, and imaging of multiple sources in the same field of view.
一种能够检测、定位和识别特殊核材料(如高浓缩铀、钚……)的紧凑型辐射成像系统,对于涉及检查、应急响应或作战人员的国家安全任务将非常有用。先前设计的辐射成像系统体积庞大,光电倍增管(PMT)占据了很大一部分体积。这里展示的原型成像系统使用硅光电倍增管(SiPM)取代了PMT,因为SiPM体积更小,且在低功率和低电压下运行。SiPM与八个芪有机闪烁体的末端相连,这些闪烁体的总体积为5.74×5.74×7.11厘米。通过使用Cf源、一个4.5千克的α相武器级钚球体(称为BeRP球)、一个6千克的镎球体以及一个3.4千克的氧化钚罐(7% Pu和93% Pu)进行测量,对该原型双粒子成像仪的性能进行了评估。这些测量展示了中子光谱分析能力、对于瓦特谱在方位角方向上9.65±0.94°以及在高度方向上22.59±5.81°的中子图像分辨率、使用有机闪烁体对伽马射线的成像以及在同一视场中对多个源的成像。