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Estimation based Fault Diagnosis and identification in sequential Industrial batch processes modeled as Hybrid Petri nets

机译:估计基于杂交培养网的顺序工业批量过程中的故障诊断与识别

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Fault Diagnosis and identification (FDI) in a process plant refers to the concept of detecting and locating faults occurring in a process plant. Faults mostly include sensor and actuator faults. Identification or location of a fault requires a special technique or algorithm and hence the concept of Hybrid Petri nets are proposed to achieve FDI since it has a strong mathematical background. In this paper the concept of estimation based FDI is proposed and for this purpose Hybrid Petri nets are used to model the process which is followed by detailed analysis in Petri net environment. Corresponding FDI algorithms are developed for a typical sequential Industrial batch process- a three tank hybrid system (bench mark system) which is equivalent to the sewage treatment process application considered in this paper for study. The algorithms are coded in MATLAB and implemented using a Graphical User interface and corresponding numerical results are obtained.
机译:过程工厂中的故障诊断和识别(FDI)是指在过程厂中检测和定位故障的概念。故障主要包括传感器和执行器故障。故障的识别或位置需要一种特殊的技术或算法,因此提出了混合Petri网的概念来实现FDI,因为它具有强大的数学背景。在本文中,提出了基于估计的FDI的概念,并且对于此目的,混合Petri网用于建模该过程,然后在Petri Net环境中进行详细分析。相应的FDI算法是为典型的顺序工业批处理开发的三个坦克混合系统(台式标记系统),其等同于本文考虑的污水处理过程应用进行研究。算法在MATLAB中编码,并使用图形用户界面实现,并且获得了相应的数值结果。

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