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Fault diagnosis based on parameter estimation in closed-loop systems

机译:基于参数估计的闭环系统故障诊断

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In this study, parameter faults in a class of non-identifiable closed-loop multiple-input multiple-output systems are considered. A new parameter estimation-based fault diagnosis method is proposed. It is known that in open-loop systems, the system parameters can be identified directly and the on-line identification results can be used for fault detection and isolation. However, as the closed-loop system is non-identifiable because of the correlation introduced by the controller, unique optimal parameter estimation solution cannot be obtained. To address such an issue, a new method to detect and isolate parameter faults of closed-loop systems without persistent excitation condition is proposed. A reduced-order model is firstly constructed, which is the projection of the original model onto the orthogonal direction of the controller. By doing this, the aforementioned correlation can be successfully removed. The parameters of the newly constructed model, called as feature parameters, are then identified. The physical faults are finally detected and isolated based on the on-line identification results of the feature parameters, the projection direction and the known influence matrix. Simulation results are given to show the effectiveness of the proposed method.
机译:在这项研究中,考虑了一类不可识别的闭环多输入多输出系统中的参数故障。提出了一种新的基于参数估计的故障诊断方法。众所周知,在开环系统中,可以直接识别系统参数,并且可以将在线识别结果用于故障检测和隔离。然而,由于闭环系统由于控制器引入的相关性而无法识别,因此无法获得唯一的最佳参数估计解决方案。为了解决这一问题,提出了一种在不存在持续励磁条件的情况下检测和隔离闭环系统参数故障的新方法。首先构造一个降阶模型,该模型是原始模型在控制器正交方向上的投影。通过这样做,可以成功地消除上述相关性。然后识别新构建的模型的参数,称为特征参数。最后,基于特征参数,投影方向和已知影响矩阵的在线识别结果,对物理故障进行检测和隔离。仿真结果表明了该方法的有效性。

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