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A robust intelligent fault detection scheme for magnetorquer type actuators of satellites

机译:卫星磁磁型执行器的鲁棒智能故障检测方案

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In this paper, the problem of robust fault detection for general nonlinear systems subject to state and sensor uncertainties and disturbances is considered. A nonlinear observer-based strategy is proposed where a recurrent nonlinear-inparameters neural network (NLPNN) is employed to identify the general unknown fault. The neural network weights are updated based on a modified dynamic backpropagation scheme. The proposed fault detection scheme does not rely on the availability of all state measurements. The ultimate boundedness of the state estimation error, neural network weights errors, and neural network gradients in the presence of an unknown fault as well as plant and sensor uncertainties is shown using Lyapunov's direct method. The performance of the proposed fault detection strategy is evaluated via simulations performed on a satellite attitude control systems consisting of magnetorquer type actuators.
机译:本文认为,考虑了经受状态和传感器不确定性和干扰的一般非线性系统鲁棒故障检测问题。提出了一种基于非线性观察者的策略,其中采用经常性非线性 - inparameters神经网络(NLPNN)来识别一般未知故障。基于修改的动态反向化方案更新神经网络权重。所提出的故障检测方案不依赖于所有状态测量的可用性。使用Lyapunov的直接方法示出了存在未知故障以及工厂和传感器不确定性的状态估计误差,神经网络权重错误和神经网络梯度的最终界限。通过在由磁仪类型执行器组成的卫星姿态控制系统上执行的模拟评估所提出的故障检测策略的性能。

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