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A NEW DIAGNOSIS METHOD USING ALARM ANNUNCIATION FOR NUCLEAR POWER PLANTS

机译:一种基于报警的核电厂诊断新方法

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We discuss the methodology diversity for diagnosis reasoning in an autonomous operation system, and propose a new diagnosis method using an alarm annunciation system. The combination of annunciated alarms is expected to be peculiar to the anomalous phenomenon or accident. Moreover, as the state of affairs is developing, each appearance of the pattern is changing with time peculiarly to each anomaly or accident. The matter is utilized for the new diagnosis method. The patterns of annunciated alarms with progress of the events are prepared in advance under the condition of the anomalies or accidents by use of a plant simulator. The diagnostic reasoning can be done by comparing the obtained combination of annunciated alarms with the reference templates by using pattern matching method. On the other hand, we have another method, called COBWEB used for conceptual classification in cognitive science, to reason for diagnosis. We have carried out the experiments using the loop type LMFBR plant simulator to obtain the various combinations of annunciated alarms with progress of the events under the conditions of anomalies and accidents. The examined cases were related to the anomalies and accidents in the water/steam system of the LMFBR power plant. The simulation examination shelved that each change of the pattern of annunciated alarms is specific to each anomaly or accident, and we have applied the pattern matching technique and COBWEB methods into the diagnostic reasoning using annunciated alarms. We could show the capability of these two methods to reason and focus among various candidates of causes of anomalies with gradually improved conviction degree as time passes from the occurrence of anomalies. It was also confirmed that these methods are effective in diagnosis reasoning as a way the operators are doing the diagnosis reasoning in existing plants. [References: 11]
机译:我们讨论了自治操作系统中诊断推理的方法学多样性,并提出了一种使用警报通知系统的新诊断方法。报警警报的组合预计是异常现象或事故所特有的。此外,随着事务状态的发展,模式的每种外观都会随着时间的变化而随各种异常或事故而变化。该问题被用于新的诊断方法。通过使用工厂模拟器,可以在异常情况或事故情况下预先准备事件发生时的警报方式。通过使用模式匹配方法将获得的报警警报与参考模板进行比较,可以完成诊断推理。另一方面,我们有另一种方法,称为COBWEB,用于认知科学中的概念分类,以进行诊断。我们已经使用回路型LMFBR工厂模拟器进​​行了实验,以获取异常情况和事故情况下事件发生进度的各种警报组合。检查的案例与LMFBR电厂的水/蒸汽系统的异常和事故有关。通过模拟检查,搁置了警报模式的每种变化都是特定于每种异常或事故的,我们已将模式匹配技术和COBWEB方法应用于使用警报的诊断推理中。我们可以证明这两种方法能够在各种异常原因候选者之间进行推理和集中注意力,并且随着时间的推移,从发生异常现象开始,定罪程度会逐渐提高。还证实了这些方法作为操作员在现有工厂中进行诊断推理的方式在诊断推理中是有效的。 [参考:11]

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