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MULTI-GROUP TRANSPORT METHODS FOR HIGH-RESOLUTION NEUTRON ACTIVATION ANALYSIS

机译:高分辨率中子活化分析的多组传输方法

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The accurate and efficient simulation of coupled neutron-photon problems is necessary for several important radiation detection applications. Examples include the detection of nuclear threats concealed in cargo containers and prompt gamma neutron activation analysis for nondestructive determination of elemental composition of unknown samples. In these applications, high-resolution gamma-ray spectrometers are used to preserve as much information as possible about the emitted photon flux, which consists of both continuum and characteristic gamma rays with discrete energies. Monte Carlo transport is the most commonly used modeling tool for this type of problem, but computational times for many problems can be prohibitive. This work explores the use of multi-group deterministic methods for the simulation of neutron activation problems.Central to this work is the development of a method for generating multi-group neutron-photon cross-sections in a way that separates the discrete and continuum photon emissions so that the key signatures in neutron activation analysis (I.e., the characteristic line energies) are preserved. The mechanics of the cross-section preparation method are described and contrasted with standard neutron-gamma cross-section sets. These custom cross-sections are then applied to several benchmark problems. Multi-group results for neutron and photon flux are compared to MCNP results. Finally, calculated responses of high-resolution spectrometers are compared. Preliminary findings show promising results when compared to MCNP. A detailed discussion of the potential benefits and shortcomings of the multi-group-based approach, in terms of accuracy, and computational efficiency, is provided.
机译:耦合中子-光子问题的精确而有效的仿真对于几个重要的辐射检测应用来说是必需的。实例包括检测隐藏在货物集装箱中的核威胁,以及及时进行伽马中子活化分析,以无损确定未知样品的元素组成。在这些应用中,高分辨率伽马射线光谱仪用于保存有关发射光子通量的尽可能多的信息,该信息由连续的和特征性的,具有离散能量的伽马射线组成。蒙特卡洛运输是此类问题最常用的建模工具,但是许多问题的计算时间可能会令人望而却步。这项工作探索了使用多组确定性方法来模拟中子活化问题。 这项工作的核心是开发一种以分离离散光子和连续光子发射的方式生成多组中子光子截面的方法,以便中子活化分析的关键特征(即特征线能量)为保留。描述了截面制备方法的原理,并与标准中子-γ截面集进行了对比。然后将这些自定义横截面应用于几个基准问题。将中子和光子通量的多组结果与MCNP结果进行比较。最后,比较了高分辨率光谱仪的计算响应。初步发现与MCNP相比显示出令人鼓舞的结果。在准确性和计算效率方面,提供了对基于多组方法的潜在好处和缺点的详细讨论。

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