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DSP-Based Laboratory Implementation of Hybrid Fuzzy-PID Controller Using Genetic Optimization for High-Performance Motor Drives

机译:基于遗传优化的高性能电机驱动器基于DSP的混合Fuzzy-PID控制器的实验室实现

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摘要

This paper presents a real-time implementation of a genetic-based hybrid fuzzy-proportional-integral-derivative (PID) controller for industrial motor drives. Both the design of fuzzy-PID (FPID) controller and its integration with the conventional PID in global control system to produce a hybrid design are demonstrated. A genetic optimization technique is used to determine the optimal values of the scaling factors of the output variables of the FPID controller. The objective is to utilize the best attributes of the PID and FPID controllers to provide a controller which will produce better response than either the PID or FPID controller. The principle of the hybrid controller is to use a PID controller, which performs satisfactorily in most cases, while keeping in the background a FPID controller, which is ready to take over the PID controller when severe disturbances occur. The hybrid controller is formulated and implemented in real time, using the speed control of a brushless drive system as a testbed. The design, analysis, and implementation stages are carried out entirely using a dSPACE DS1104 digital-signal-processor-based real-time data acquisition control system and MATLAB/Simulink environment. Experimental results show that the proposed FPID controller-based genetic optimization produces better control performance than the conventional PID controllers, particularly in handling nonlinearities and external disturbances.
机译:本文提出了一种用于工业电机驱动器的基于遗传的混合模糊-比例-积分-微分(PID)控制器的实时实现。演示了模糊PID(FPID)控制器的设计及其与常规PID在全局控制系统中的集成以产生混合设计。遗传优化技术用于确定FPID控制器输出变量的比例因子的最佳值。目的是利用PID和FPID控制器的最佳属性来提供一种控制器,该控制器将产生比PID或FPID控制器更好的响应。混合控制器的原理是使用PID控制器,该控制器在大多数情况下都能令人满意地运行,同时将FPID控制器保持在后台,该FPID控制器可以在发生严重干扰时接管PID控制器。使用无刷驱动系统的速度控制作为测试平台,可实时制定和实施混合动力控制器。设计,分析和实施阶段完全使用基于dSPACE DS1104数字信号处理器的实时数据采集控制系统和MATLAB / Simulink环境执行。实验结果表明,所提出的基于FPID控制器的遗传优化方法比常规PID控制器具有更好的控制性能,特别是在处理非线性和外部干扰方面。

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