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Fault detection and diagnosis of complex engineering systems based on a NNARX multi model applied to a fossil fuel electric power plant

机译:基于NNARX多重模型的复杂工程系统的故障检测与诊断,应用于化石燃料发电厂

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In this paper, we present a Fault Detection and Diagnostic method for complex engineering systems and its application to a Fossil Fuel Electric Power Plant. It is a model-based approach with a multi-variable generation of residuals of the main fault situations, organized in a characteristic matrix of fault signatures, which establishes a reference pattern to continuously evaluate the residuals generated on-line in normal operation conditions. Residuals are calculated as the difference between the measured dynamics of the plant and a reference given by a simulated multi NNARX model presented in a companion paper. In our proposal, false detections are reduced by the introduction of hierarchic memories that filter spurious faults and threats compensated by the internal loops of control. The system identifies the kind of fault and the severity of the abnormal behavior in a four level scale, from threats to imminent faults. We describe the main procedures of the method and we illustrate them with examples obtained using data of the Steam Generation and Reheating/Super-heating Subsystem from the Electric Power Plant. We also present some results of the real time application implemented in a co-simulation architecture using a high performance simulator under the main faults situations of a Steam Generator sub-system.
机译:在本文中,我们提出了一种用于复杂工程系统的故障检测和诊断方法,并将其应用于化石燃料发电厂。这是一种基于模型的方法,可以将主要故障情况的残差多变量生成,并以故障特征的特征矩阵进行组织,从而建立了一个参考模式,可以连续评估正常运行条件下在线生成的残差。残余物的计算方法是,测得的植物动力学与参考文件中所提供的参考值之间的差异,该参考值由随附论文中的模拟多NNARX模型给出。在我们的建议中,通过引入分层内存来减少错误检测,这些内存可以过滤虚假故障和威胁,并通过内部控制回路进行补偿。该系统从威胁到迫在眉睫的故障,从四个级别确定故障的种类和异常行为的严重性。我们描述了该方法的主要步骤,并以使用发电厂的蒸汽产生和再加热/过热子系统的数据获得的示例为例进行了说明。我们还介绍了在蒸汽发生器子系统的主要故障情况下使用高性能模拟器在协同仿真体系结构中实现的实时应用程序的一些结果。

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