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Detection and isolation of incipient sensor faults for a class of uncertain non-linear systems

机译:一类不确定非线性系统的初始传感器故障检测与隔离

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The present study proposes a new scheme for detection and isolation of incipient sensor faults for a class of uncertain non-linear systems by combining sliding mode observers (SMOs) with a Luenberger observer. Initially, a state and output transformation is introduced to transform the original system into two subsystems such that the first subsystem (subsystem-1) has system uncertainties but is free from sensor faults and the second subsystem (subsystem-2) has sensor faults but without any uncertainties. The sensor faults in subsystem-2 are then transformed to actuator faults using integral observerbased approach. The states of subsystem-1 are estimated using an SMO to eliminate the effects of uncertainties. However, since subsystem-2 does not have any uncertainties, the incipient faults present in this subsystem are detected by designing a Luenberger observer. These faults are then isolated by applying a bank of SMOs to subsystem-2. The sufficient condition of stability of the proposed scheme has been derived and expressed as linear matrix inequalities (LMIs). The design parameters of the observers are determined by using LMI techniques. The effectiveness of the proposed scheme in detecting and isolating sensor faults is illustrated considering an example of a single-link robotic arm with revolute elastic joint. The results of the simulation demonstrate that the proposed scheme can successfully detect and isolate sensor faults even in the presence of system uncertainties.
机译:本研究通过结合滑模观测器(SMO)和Luenberger观测器,为一类不确定的非线性系统提出了一种用于检测和隔离初始传感器故障的新方案。最初,引入状态和输出转换以将原始系统转换为两个子系统,以使第一个子系统(子系统-1)具有系统不确定性但没有传感器故障,而第二个子系统(子系统-2)具有传感器故障但没有传感器故障任何不确定性。然后,使用基于积分观测器的方法将子系统2中的传感器故障转换为执行器故障。使用SMO估计子系统1的状态,以消除不确定性的影响。但是,由于子系统2没有任何不确定性,因此可以通过设计Luenberger观测器来检测此子系统中出现的早期故障。然后,通过将一堆SMO应用于子系统2来隔离这些故障。已经推导了所提出方案的稳定性的充分条件,并表示为线性矩阵不等式(LMI)。观察者的设计参数是通过使用LMI技术确定的。以带旋转弹性关节的单连杆机械臂为例,说明了所提出方案在检测和隔离传感器故障中的有效性。仿真结果表明,所提出的方案即使在系统不确定的情况下也可以成功地检测和隔离传感器故障。

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