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Multiple model-based fault diagnosis using unknown input observers

机译:基于多种模型的故障诊断使用未知输入观察者

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In this paper we have solved a problem that how to develop a method to establish a UIO to diagnose a liner system contains modeling uncertainty, actuators fault and external interference, and then built multiple models based on the UIO to diagnose the probably faults on the actuator. We use the technic of reduced-order UIO to separate the original system into two different subsystems. It not only reduce the amount of calculation but also robust for modeling uncertainty and the external interference through this method. After that we consider the case of multiple models, using the UIO to construct the different fault case respectively, and then the switch function will be used to select the optimal one from these models. Through that we should find the fault described by the relevant fault model since the switch function close to zero. Finally a numerical example was presented to illustration that the method with UIO can diagnose the fault effectively.
机译:在本文中,我们解决了如何开发建立UIO的方法来诊断衬里系统的问题,其中包含建模不确定性,执行器故障和外部干扰,然后基于UIO构建多个模型,以诊断执行器上可能的故障。 。 我们使用缩小订单UIO的技术将原始系统分为两个不同的子系统。 它不仅可以减少计算量,而且可以通过这种方法建模不确定性和外部干扰来稳健。 之后我们考虑多种模型的情况,使用UIO分别构造不同的故障情况,然后将使用交换机功能从这些模型中选择最佳。 通过此,我们应该找到相关故障模型描述的故障,因为交换机功能接近零。 最后,提出了一个数字示例以说明与UIO的方法可以有效地诊断故障。

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