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Design of a Control System using Linear Matrix Inequalities for the Active Vibration Control of a Plate

机译:利用线性矩阵不等式控制板的主动振动的控制系统设计

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The study of algorithms for active vibration control in smart structures is an area of interest, mainly due to the demand for better performance of mechanical systems, such as aircraft and aerospace structures. Smart structures, formed using actuators and sensors, can improve the dynamic performance with the application of several kinds of controllers. This article describes the application of a technique based on linear matrix inequalities (LMI) to design an active control system. The positioning of the actuators, the design of a robust state feedback controller and the design of an observer are all achieved using LMI. The following are considered in the controller design: limited actuator input, bounded output (energy) and robustness to parametric uncertainties. Active vibration control of a flat plate is chosen as an application example. The model is identified using experimental data by an eigensystem realization algorithm (ERA) and the placement of the two piezoelectric actuators and single sensor is determined using a finite element model (FEM) and an optimization procedure. A robust controller for active damping is designed using an LMI framework, and a reduced model with observation and control spillover effects is implemented using a computer. The simulation results demonstrate the efficacy of the approach, and show that the control system increases the damping in some of the modes.
机译:对智能结构中的主动振动控制算法的研究是一个有趣的领域,主要是由于对机械系统(如飞机和航空航天结构)的更好性能的需求。使用执行器和传感器形成的智能结构可以通过使用多种控制器来改善动态性能。本文介绍了基于线性矩阵不等式(LMI)的技术在设计主动控制系统中的应用。使用LMI可以实现执行器的定位,鲁棒状态反馈控制器的设计以及观察者的设计。控制器设计中考虑以下因素:有限的执行器输入,有限的输出(能量)和对参数不确定性的鲁棒性。选择平板的主动振动控制作为应用示例。通过本征系统实现算法(ERA)使用实验数据识别模型,并使用有限元模型(FEM)和优化程序确定两个压电致动器和单个传感器的位置。使用LMI框架设计了用于主动阻尼的鲁棒控制器,并使用计算机实现了具有观察和控制溢出效应的简化模型。仿真结果证明了该方法的有效性,并表明控制系统在某些模式下增加了阻尼。

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