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Sensitive and transportable gadolinium-core plastic scintillator sphere for neutron detection and counting

机译:灵敏且可运输的ado芯塑料闪烁体球,用于中子检测和计数

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Neutron detection forms a critical branch of nuclear-related issues, currently driven by the search for competitive alternative technologies to neutron counters based on the helium-3 isotope. The deployment of plastic scintillators shows a high potential for efficient detectors, safer and more reliable than liquids, more easily scalable and cost-effective than inorganic In the meantime, natural gadolinium, through its 155 and mostly 157 isotopes, presents an exceptionally high interaction probability with thermal neutrons. This paper introduces a dual system including a metal gadolinium core inserted at the center of a high-scale plastic scintillator sphere. Incident fast neutrons are thermalized by the scintillator shell and then may be captured with a significant probability by gadolinium 155 and 157 nuclei in the core. The deposition of a sufficient fraction of the capture high-energy prompt gamma signature inside the scintillator shell will then allow discrimination from background radiations by energy threshold, and therefore neutron detection. The scaling of the system with the Monte Carlo MCNPX2.7 code was carried out according to a tradeoff between the moderation of incident fast neutrons and the probability of slow neutron capture by a moderate-cost metal gadolinium core. Based on the parameters extracted from simulation, a first laboratory prototype for the assessment of the detection method principle has been synthetized. The robustness and sensitivity of the neutron detection principle are then assessed by counting measurement experiments. Experimental results confirm the potential for a stable, highly sensitive, transportable and cost-efficient neutron detector and orientate future investigation toward promising axes.
机译:中子探测形成了与核有关的问题的重要分支,目前正由对基于氦3同位素的中子计数器的竞争性替代技术的寻找推动。塑料闪烁体的部署显示出高效检测器的潜力,比液体更安全,更可靠,比无机闪烁体更易扩展和更具成本效益。同时,天然g通过其155种同位素(主要是157种同位素)具有极高的相互作用概率用热中子。本文介绍了一种双重系统,该系统包括一个插入在大型塑料闪烁体球中心的金属g芯。入射的快速中子被闪烁器壳加热,然后被堆芯中的155和157原子核捕获的可能性很高。然后,在闪烁器壳内沉积足够数量的捕获高能提示伽玛信号,将可以通过能量阈值与中子检测相区别,从而与背景辐射区分开。使用蒙特卡洛MCNPX2.7代码对系统进行缩放是根据入射的快中子的缓和与中等成本的金属g芯捕获慢中子的可能性之间的权衡而进行的。基于从仿真中提取的参数,已经合成了第一个用于评估检测方法原理的实验室原型。然后通过对测量实验进行计数来评估中子检测原理的鲁棒性和灵敏度。实验结果证实了稳定,高度灵敏,可运输且具有成本效益的中子探测器的潜力,并使未来的研究朝着有希望的方向发展。

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