PAT 钚分析计划的新功能

Ray Gunnink , Andriy Berlizov
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引用次数: 0

摘要

钚属性测试(PAT)是一个软件程序,最初是为确定钚样品的类别而开发的。开发该软件的前提是,要将钚样本归入特定类别,没有必要确定其所有同位素的丰度。相反,只需确定 239Pu 丰度即可,因为 239Pu 丰度普遍用于确定类别分配,即 90 wt% 的 239Pu 为低燃烧度 (LBPu),70 wt% 的 239Pu 为高燃烧度 (HBPu),介于两者之间的丰度可视为中等燃烧度 (MBPu) 钚等级。与以往使用 HPGe 探测器分析光谱的钚同位素分析程序不同,PAT 分析中开发的算法使用的是中等分辨率探测器(如 LaBr3(Ce) 和 CZT 探测器)拍摄的光谱。初步测试表明,PAT 不仅能确定材料类别,还能准确确定 239Pu 丰度,典型的相对综合标准不确定性为百分之几。此外,还增加了一种高级算法(A-PAT),以便对样品进行全面的同位素鉴定。本文介绍了 PAT/A-PAT 算法在分析重屏蔽样品、不同大小和年代的样品以及混合氧化物 (MOX)材料方面的进一步改进。
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New capabilities of the PAT plutonium analysis program
The Plutonium Attribute Test (PAT) is a software program originally developed for determining the category of a plutonium sample. The premise for its development was that, to assign Pu samples to particular categories, it is not necessary to determine the abundance of all its isotopes. Rather, it is sufficient to determine only 239Pu abundance, which is universally used to establish a category assignment, i.e., >90 wt% 239Pu is low burnup (LBPu), <70 wt% is high burnup (HBPu), and the abundances in between could be considered medium burnup (MBPu) plutonium grade. In contrast to previous Pu isotopic analysis programs which analyse spectra taken with HPGe detectors, the algorithms developed in PAT analyses use spectra taken with medium resolution detectors such as LaBr3(Ce) and CZT detectors. As demonstrated by initial tests, PAT was found capable of not only assigning the material category, but also accurately determining 239Pu abundance, with several per cent typical relative combined standard uncertainty. Furthermore, an advanced algorithm (A-PAT) was added to allow full isotopic characterization of samples. This paper presents further enhancements of the PAT/A-PAT algorithms towards analysis of heavily shielded samples, samples with varied size and age, as well as mixed oxide (MOX) materials.
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来源期刊
CiteScore
3.20
自引率
21.40%
发文量
787
审稿时长
1 months
期刊介绍: Section A of Nuclear Instruments and Methods in Physics Research publishes papers on design, manufacturing and performance of scientific instruments with an emphasis on large scale facilities. This includes the development of particle accelerators, ion sources, beam transport systems and target arrangements as well as the use of secondary phenomena such as synchrotron radiation and free electron lasers. It also includes all types of instrumentation for the detection and spectrometry of radiations from high energy processes and nuclear decays, as well as instrumentation for experiments at nuclear reactors. Specialized electronics for nuclear and other types of spectrometry as well as computerization of measurements and control systems in this area also find their place in the A section. Theoretical as well as experimental papers are accepted.
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