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Optimization of Moderator Design for Explosive Detection by Thermal Neutron Activation Using a Genetic Algorithm

机译:基于遗传算法的热中子活化炸药探测慢化剂设计的优化

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An optimal design analysis is carried out for an explosives' detection system (EDS) based on thermal neutron activation (TNA) of a sample under investigation. The objective of this work is to use a genetic algorithm (GA) to obtain the optimized moderator design that would yield the "best" signal in a detection system. In a preliminary analysis, a full Monte Carlo (MC) simulation is carried out to estimate the effectiveness of various moderators, namely, water, graphite, and beryllium with respect to radiative capture (n, γ) reactions in a sample under investigation. Since MC simulation is computationally "expensive," it is generally not used for random-search-based optimization analysis. Thus, more efficient methods are required for the design of optimal nuclear systems, where neutron transport is accurately modeled and iteratively solved for estimating the effect of independent design parameters. This paper proposes a computational scheme in which GA is coupled with the two-group neutron diffusion equation (DE) for carrying out an optimization analysis. The coupled GA-DE optimization scheme is demonstrated for obtaining the optimal moderator design. It is found that with considerably less computational effort than in an elaborate MC computation, the GA-DE approach can be used for the optimal design of detection systems.
机译:基于被调查样品的热中子活化(TNA),对炸药检测系统(EDS)进行了最佳设计分析。这项工作的目的是使用遗传算法(GA)获得优化的主持人设计,该设计将在检测系统中产生“最佳”信号。在初步分析中,进行了完整的蒙特卡洛(MC)仿真,以评估各种调节剂(即水,石墨和铍)对所研究样品中的辐射捕获(n,γ)反应的有效性。由于MC模拟在计算上“昂贵”,因此通常不用于基于随机搜索的优化分析。因此,需要更有效的方法来设计最佳核系统,在此系统中,对中子输运进行精确建模并迭代求解以估计独立设计参数的影响。本文提出了一种将GA与两组中子扩散方程(DE)耦合的计算方案,以进行优化分析。演示了耦合的GA-DE优化方案,以获得最佳的主持人设计。可以发现,与复杂的MC计算相比,GA-DE方法的计算量要少得多,可以用于检测系统的优化设计。

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