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Conceptual design of a hybrid neutron-gamma detector for study of -delayed neutrons at the RIB facility of RIKEN

机译:RIKEN RIB设施中用于研究延迟中子的混合中子伽马探测器的概念设计

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摘要

The conceptual design of the BRIKEN neutron detector at the radioactive ion beam factory (RIBF) of the RIKEN Nishina Center is reported. The BRIKEN setup is a complex system aimed at detecting heavy-ion implants, β particles, γ rays and β-delayed neutrons. The whole setup includes the Advanced Implantation Detection Array (AIDA), two HPGe Clover detectors and up to 166 3He-filled counters embedded in a high-density polyethylene moderator. The design is quite complex due to the large number and different types of 3He-tubes involved and the additional constraints introduced by the ancillary detectors for charged particles and γ rays. This article reports on a novel methodology developed for the conceptual design and optimisation of the 3He-counter array, aiming for the best possible performance in terms of neutron detection. The algorithm is based on a geometric representation of two selected detector parameters of merit, namely, the average neutron detection efficiency and the efficiency flatness as a function of a reduced number of geometric variables. The response of the neutron detector is obtained from a systematic Monte Carlo simulation implemented in Geant4. The robustness of the algorithm allowed us to design a versatile detection system, which operated in hybrid mode includes the full neutron counter and two clover detectors for high-precision gamma spectroscopy. In addition, the system can be reconfigured into a compact mode by removing the clover detectors and re-arranging the 3He tubes in order to maximize the neutron detection performance. Both operation modes shows a rather flat and high average efficiency. In summary, we have designed a system which shows an average efficiency for hybrid mode (3He tubes + clovers) of 68.6% and 64% for neutron energies up to 1 and 5 MeV, respectively. For compact mode (only 3He tubes), the average efficiency is 75.7% and 71% for neutron energies up to 1 and 5 MeV, respectively. The performance of the BRIKEN detection system has been also quantified by means of Monte Carlo simulations with different neutron energy distributions.
机译:据报道,RIKEN Nishina中心的放射性离子束工厂(RIBF)的BRIKEN中子探测器的概念设计。 BRIKEN装置是一个复杂的系统,旨在检测重离子植入物,β粒子,γ射线和β延迟中子。整个装置包括先进的植入物检测阵列(AIDA),两个HPGe Clover检测器以及嵌入在高密度聚乙烯减速器中的多达166个3He填充计数器。由于涉及的3He管数量众多且类型不同,并且辅助检测器对带电粒子和γ射线引入了其他限制,因此设计非常复杂。本文报告了一种为3He计数器阵列的概念设计和优化而开发的新颖方法,旨在在中子检测方面实现最佳性能。该算法基于两个选定的优值检测器参数的几何表示,即平均中子检测效率和效率平坦度随几何变量数量的减少而变化。中子探测器的响应是从Geant4中实施的系统性蒙特卡洛模拟获得的。该算法的鲁棒性使我们能够设计一种多功能的检测系统,该系统以混合模式运行,包括完整的中子计数器和两个用于高精度伽马光谱的三叶草检测器。另外,可以通过移除三叶草检测器并重新布置3He管将系统重新配置为紧凑模式,以最大化中子检测性能。两种操作模式均显示出相当平坦且较高的平均效率。总而言之,我们设计了一个系统,对于中子能量高达1和5 MeV,混合模式(3He管+三叶草)的平均效率分别为68.6%和64%。对于紧凑模式(仅3He射线管),中子能量高达1 MeV和5 MeV时的平均效率分别为75.7%和71%。 BRIKEN检测系统的性能也已通过具有不同中子能量分布的Monte Carlo模拟进行了量化。

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