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FEASIBILITY STUDY OF NOISE ANALYSIS METHODS ON VIRTUAL THERMAL REACTOR SUBCRITICALITY MONITORING

机译:虚拟热反应器亚临界监测的噪声分析方法的可行性研究

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This paper presents the analysis results of Rossi-alpha, cross-correlation, Feynman-alpha, and Feynman difference methods applied to the subcriticality monitoring of nuclear reactors. A thermal spectrum Godiva model has been designed for the analysis of the four methods. This Godiva geometry consists of a spherical core containing the isotopes of H-1, U-235 and U-238, and the H_2O reflector outside the core. A Monte Carlo code, McCARD, is used in real time mode to generate virtual detector signals to analyze the feasibility of the four methods. The analysis results indicate that the four methods can be used with high accuracy for the continuous monitoring of subcriticality. In addition to that, in order to analyze the impact of the random noise contamination on the accuracy of the noise analysis, the McCARD-generated signals are contaminated with arbitrary noise. It is noticed that, even when the detector signals are contaminated, the four methods can predict the subcriticality with reasonable accuracy. Nonetheless, in order to reduce the adverse impact of the random noise, eight detector signals, rather than a single signal, are generated from the core, one signal from each equally divided eighth part of the core. The preliminary analysis with multiple virtual detector signals indicates that the approach of using many detectors is promising to improve the accuracy of criticality prediction and further study will be performed in this regard.
机译:本文介绍了应用于核反应堆亚临界监测的Rossi-α,互相关,Feynman-alpha和Feynman差分方法的分析结果。设计了一个热谱Godiva模型来分析这四种方法。 Godiva的几何形状由一个球形核构成,该核包含H-1,U-235和U-238的同位素,以及位于核外部的H_2O反射器。实时模式使用蒙特卡洛代码McCARD生成虚拟检测器信号,以分析这四种方法的可行性。分析结果表明,这四种方法均可用于连续监测亚临界状态。除此之外,为了分析随机噪声污染对噪声分析准确性的影响,McCARD产生的信号会受到任意噪声的污染。注意,即使当检测器信号被污染时,这四种方法也可以以合理的精度预测亚临界。但是,为了减少随机噪声的不利影响,从内核生成了八个检测器信号,而不是单个信号,一个信号来自内核的每个等分的八分之一部分。对具有多个虚拟探测器信号的初步分析表明,使用多个探测器的方法有望提高临界预测的准确性,并将在这方面进行进一步的研究。

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