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Exergy-based fault detection on the Tennessee Eastman process

机译:田纳西州伊斯特曼流程的基于电气的故障检测

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The exergy-based fault detection method has not yet been applied to a complex industrial system that adequately represents a dynamically changing process. One such system, the Tennessee Eastman process, is commonly used as a benchmark for fault detection methods. In this paper, an exergy-based fault detection approach is applied to the Tennessee Eastman process. This is done to investigate the feasibility of using this approach when confronted with noisy sensor data and control loops masking faulty behaviour. An exergy characterisation was performed on stream data obtained from the Tennessee Eastman process. The exergy characterisation included a new approach to calculate the standard chemical exergy of unknown components. For fault detection, threshold limits were determined for the exergy characterisation when normal operating conditions are assumed. The threshold limits were calculated following the upper and lower control limit determination of the Shewhart control chart. The results showed that this method could quantify both the physical state as well as the chemical features of the process and that 17 out of the 20 considered faults could be detected. This shows that the exergy-based method could be adequately applied to the Tennessee Eastman process.
机译:基于漏洞的故障检测方法尚未应用于复杂的工业系统,充分代表动态变化的过程。一个这样的系统,田纳西州的Eastman进程,通常用作故障检测方法的基准。本文采用了基于电气的故障检测方法,应用于田纳西州伊斯坦德工艺。这样做是为了调查使用这种方法时使用这种方法的可行性,当面对嘈杂的传感器数据和控制回路屏蔽有错误的行为时。对从田纳西州伊士曼流程获得的流数据进行了讲解表征。 Deertgy表征包括一种计算未知组件的标准化学漏极的新方法。对于故障检测,当假设正常操作条件时,确定用于出现的阈值限制。在削减控制图的上下控制极限确定之后计算阈值限制。结果表明,该方法可以量化物理状态以及该过程的化学特征,并且可以检测到20个考虑的故障中的17个。这表明基于Deergy的方法可以充分应用于田纳西州的伊斯曼进程。

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