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Fuzzy logic: a modelling tool for transient diagnostics

机译:模糊逻辑:用于瞬态诊断的建模工具

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The identification and classification of signal trends is a fundamental phase for the reliable monitoring and timely diagnosing of nuclear components. The main target is the early detection of the onset of a transient and the classification of its causes. Given the safety and economical importance of the problem, various approaches have been investigated and applied for trend identification, and many efforts are still devoted to the improvement of the results so far obtained. In this paper, a new fuzzy-logic based method for classification of transients' initiating events is proposed. The if-then rules, which constitute the heart of the model, are inferred from the available input-output signal data. The method is applied to the early classification of the causes of transients in a steam generator of a Pressurized Water Reactor (PWR). Based on the measured signals, the forcing function responsible for the transient is readily classified.
机译:信号趋势的识别和分类是可靠监测和及时诊断核组件的基本阶段。主要目标是早期检测瞬态的发作和其原因的分类。鉴于该问题的安全和经济的重要性,已经调查了各种方法,并申请趋势识别,许多努力仍然致力于改善迄今为止的结果。本文提出了一种新的基于模糊逻辑的分类方法,用于分类瞬态启动事件。从可用的输入输出信号数据推断出构成模型核心的IF-DON规则。该方法应用于加压水反应器(PWR)的蒸汽发生器中瞬变原因的早期分类。基于测量信号,迫使瞬态负责的强制功能易于分类。

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