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首页> 外文期刊>International Journal of Advanced Robotic Systems >PID-Controller Tuning Optimization with Genetic Algorithms in Servo Systems
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PID-Controller Tuning Optimization with Genetic Algorithms in Servo Systems

机译:伺服系统中遗传算法的PID控制器调整优化

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摘要

Performance improvement is the main goal of the study of PID control and much research has been conducted for this purpose. The PID filter is implemented in almost all industrial processes because of its well-known beneficial features. In general, the whole system's performance strongly depends on the controller's efficiency and hence the tuning process plays a key role in the system's behaviour. In this work, the servo systems will be analysed, specifically the positioning control systems. Among the existent tuning methods, the Gain-Phase Margin method based on Frequency Response analysis is the most adequate for controller tuning in positioning control systems. Nevertheless, this method can be improved by integrating an optimization technique. The novelty of this work is the development of a new methodology for PID control tuning by coupling the Gain-Phase Margin method with the Genetic Algorithms in which the micro-population concept and adaptive mutation probability are applied. Simulations using a positioning system model in MATLAB and experimental tests in two CNC machines and an industrial robot are carried out in order to show the effectiveness of the proposal. The obtained results are compared with both the classical Gain-Phase Margin tuning and with a recent PID controller optimization using Genetic Algorithms based on real codification. The three methodologies are implemented using software.
机译:绩效改进是对PID控制研究的主要目标,并为此目的进行了许多研究。由于其知名的有益特征,PID过滤器几乎可以在所有工业过程中实现。通常,整个系统的性能强烈取决于控制器的效率,因此调整过程在系统的行为中起着关键作用。在这项工作中,将分析伺服系统,特别是定位控制系统。在存在的调谐方法中,基于频率响应分析的增益相位裕度方法是定位控制系统中最适合的控制器调整。然而,通过集成优化技术可以提高该方法。这项工作的新颖性是通过耦合利用遗传算法来开发PID控制调整的新方法,其中应用了微人群概念和自适应突变概率。在MATLAB中使用定位系统模型的模拟和两个数控机器的实验测试和工业机器人,以显示提案的有效性。将获得的结果与经典增益相位保证金调谐和最近的PID控制器优化进行比较,基于实际编码。三种方法是使用软件实现的。

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