Comparison of two adaptive identification methods for monitoring and diagnosis of an experimental nuclear reactor

G. Zwingelstein, P. Blanc
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Abstract

This paper deals with the comparison of two adaptive methods based upon sensitivity equations for use in the surveillance and diagnosis of an experimental nuclear reactor. The surveillance and diagnosis are obtained by a real-time comparison of reference parameters and the actual parameters given by the adaptive algorithm. The first algorithm uses an on-line, steepest descent method. Results obtained with this algorithm using experimental data from a reactor are given using two different criteria. The second algorithm uses both sensitivity equations and a recursive least squares method. An example is given using the experimental model of the same reactor. Both algorithms described in this paper are easily implementable on a mini computer and are not sensitive to a priori knowledge of the statistical properties of the noise. These algorithms are also suitable for the surveillance of nonlinear processes.
实验核反应堆监测与诊断两种自适应识别方法的比较
本文比较了两种基于灵敏度方程的自适应方法在实验核反应堆监测与诊断中的应用。通过将参考参数与自适应算法给出的实际参数进行实时比较,获得监测和诊断结果。第一种算法使用在线最速下降法。用该算法对反应器的实验数据采用两种不同的判据给出了结果。第二种算法同时使用灵敏度方程和递归最小二乘法。用同一反应器的实验模型给出了一个算例。本文中描述的两种算法都很容易在小型计算机上实现,并且对噪声的统计特性的先验知识不敏感。这些算法也适用于非线性过程的监测。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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