Circle condition-based PID controller design considering robust stability against plant perturbations

Y. Maeda, M. Iwasaki
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引用次数: 4

Abstract

This paper presents a novel proportional-integral-derivative (PID) controller design considering the robust stability against plant perturbations for the fast and precise positioning control of mechatronic systems. Since parameter fluctuations in plant mechanisms and/or actuators, due to temperature variations, aged deteriorations, etc., generally deteriorate the motion performance as well as the system stability, an improvement in disturbance suppression capability of feedback (FB) control system is a general and important index to provide robust properties against the fluctuations. In this study, therefore, a circle condition-based PID controller design considering the robust stability is presented as well as a genetic algorithm (GA)-based optimization process of a PID-type FB controller with resonance compensation filters, to balance a trade-off between the disturbance suppression and the system stability. Effectiveness of the proposed approach has been verified by numerical simulations using a laboratory prototype of galvano scanner.
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考虑抗植物扰动鲁棒稳定性的基于循环条件的PID控制器设计
为实现机电系统的快速精确定位控制,提出了一种考虑抗摄动鲁棒稳定性的比例-积分-导数(PID)控制器设计。由于植物机构和/或执行器的参数波动,由于温度变化、老化等,通常会使运动性能和系统稳定性恶化,因此提高反馈(FB)控制系统的扰动抑制能力是提供抗波动鲁棒性的一般和重要指标。因此,本研究提出了一种考虑鲁棒稳定性的基于圆条件的PID控制器设计,以及一种基于遗传算法的带谐振补偿滤波器的PID型FB控制器的优化过程,以平衡干扰抑制与系统稳定性之间的权衡。通过实验样机的数值模拟,验证了该方法的有效性。
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