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Robust Model-Based Fault Detection Using Adaptive Robust Observers

机译:基于自适应鲁棒观测器的基于模型的鲁棒故障检测

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A goal in many applications is to combine a priori knowledge of the physical system with experimental data to detect faults in a system at an early enough stage as to conduct preventive maintenance. The mathematical model of the physical system is the information available before hand. One of the key issues in the design of model-based fault detection schemes is the effect of the model uncertainties such as severe parametric uncertainty and unmodeled dynamics on their performance. This paper presents the application of a nonlinear model-based adaptive robust observer design to help in the detection of faults in sensors for a class of nonlinear systems. The observer is designed by explicitly considering the nonlinear dynamics of the system under consideration. Robust filter structures are used to attenuate the effect of the model uncertainty which combined with controlled parameter adaptation helps in reducing the extent of model uncertainty and in increasing the sensitivity of the fault detection scheme to help in the detection of incipient failure. This continuous monitoring of the state estimates enables us to detect any offnominal system behavior and detect faults even in the presence of model uncertainties.
机译:许多应用程序的目标是将物理系统的先验知识与实验数据相结合,以在足够早的阶段检测系统中的故障以进行预防性维护。物理系统的数学模型是事先可获得的信息。基于模型的故障检测方案设计中的关键问题之一是模型不确定性(如严重的参数不确定性和未建模的动力学)对其性能的影响。本文介绍了基于非线性模型的自适应鲁棒观测器设计的应用,以帮助检测一类非线性系统中传感器的故障。通过明确考虑所考虑系统的非线性动力学来设计观察者。鲁棒的滤波器结构用于减弱模型不确定性的影响,并与可控参数自适应相结合,有助于减少模型不确定性的程度,并提高故障检测方案的灵敏度,以帮助检测早期故障。状态估计的这种连续监视使我们能够检测任何名义系统的行为,甚至在存在模型不确定性的情况下也能检测故障。

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