Fault tolerant control of a permanent magnet synchronous machine using multiple constraints Takagi-Sugeno approach

L. Moussaoui, S. Aouaouda, R. Rouaibia
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引用次数: 1

Abstract

Introduction. Fault diagnosis, and fault tolerant control issues are becoming very important to ensure a good supervision of systems and guarantee the safety of human operators and equipments even if system complexity increases. Problem. In fact, the presence of faults in actuators, sensors and processes can lead to system performance degradation, system breakdown, economic loss, and even disastrous situations. Furthermore, Actuator saturation or control input saturation is probably the most usual nonlinearity encountered in control engineering because of the physical impossibility of applying unlimited control signals and/or safety constraints. Purpose. This article is dedicated to the problem of fault tolerant control for constrained nonlinear systems described by a Takagi-Sugeno model. One of the interests of this type of models is the possibility of extend some tools and methods from linear system case to the nonlinear one. The novelty of the work consists in developing a fault tolerant control algorithm for a nonlinear Permanent Magnet Synchronous Machine model using an observer based state-feedback control technique in order to enhance fault and state estimation despite actuator saturation and system disturbances. Methods. Indeed a sensor fault detection observer based residual generator is synthesized with a guaranteed L2 performance to attenuate the external disturbances effect from one side and to maximize the residual sensitivity to faults from the other side. Based on Lyapunov function, design conditions are formulated in terms of Linear Matrix Inequalities to ensure stability of the global system. Practical value. A detailed study concerning nonlinear permanent magnet synchronous machine model, which is consolidated by simulation results, is conducted to show the used algorithm’s effectiveness guarantying fault estimation and reconfiguration of the control law to maintain stable performance even in the presence of actuator faults, external perturbation and the phenomenon of actuator saturation.
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基于多约束的永磁同步电机容错控制
介绍。在系统复杂程度不断提高的情况下,故障诊断和容错控制问题对于保证系统的良好监控、保证操作人员和设备的安全变得越来越重要。问题。实际上,执行器、传感器和过程中的故障会导致系统性能下降、系统故障、经济损失,甚至是灾难性的情况。此外,执行器饱和或控制输入饱和可能是控制工程中最常见的非线性,因为物理上不可能应用无限的控制信号和/或安全约束。目的。本文研究了用Takagi-Sugeno模型描述的约束非线性系统的容错控制问题。这类模型的一个有趣之处在于可以将一些工具和方法从线性系统情况推广到非线性系统情况。这项工作的新颖之处在于,利用基于观测器的状态反馈控制技术,为非线性永磁同步电机模型开发了一种容错控制算法,以便在执行器饱和和系统干扰的情况下增强故障和状态估计。方法。实际上,我们合成了一个基于传感器故障检测观测器的残差发生器,它具有保证的L2性能,以衰减来自一侧的外部干扰影响,并最大限度地提高对另一侧故障的残差灵敏度。在Lyapunov函数的基础上,用线性矩阵不等式的形式给出了保证系统全局稳定性的设计条件。实用价值。对非线性永磁同步电机模型进行了详细的研究,并通过仿真结果加以巩固,表明所采用的算法在存在执行器故障、外部扰动和执行器饱和现象的情况下,仍能保证故障估计和控制律重构以保持稳定的性能。
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