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首页> 外文期刊>International Journal of Electrical and Computer Engineering >Speed controller design for three-phase induction motor based on dynamic adjustment grasshopper optimization algorithm
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Speed controller design for three-phase induction motor based on dynamic adjustment grasshopper optimization algorithm

机译:基于动态调整蝗虫优化算法的三相感应电动机速度控制器设计

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摘要

Three-phase induction motor (TIM) is widely used in industrial application like paper mills, water treatment and sewage plants in the urban area. In these applications, the speed of TIM is very important that should be not varying with applied load torque. In this study, direct on line (DOL) motor starting without controller is modelled to evaluate the motor response when connected directly to main supply. Conventional PI controller for stator direct current and stator quadrature current of induction motor are designed as an inner loop controller as well as a second conventional PI controller is designed in the outer loop for controlling the TIM speed. Proposed combined PI-lead (CPIL) controllers for inner and outer loops are designed to improve the overall performance of the TIM as compared with the conventional controller. In this paper, dynamic adjustment grasshopper optimization algorithm (DAGOA) is proposed for tuning the proposed controller of the system. Numerical results based on well-selected test function demonstrate that DAGOA has a better performance in terms of speed of convergence, solution accuracy and reliability than SGOA. The study results revealed that the currents and speed of TIM system using CPIL-DAGOA are faster than system using conventional PI and CPIL controllers tuned by SGOA. Moreover, the speed controller of TIM system with CPIL controlling scheme based on DAGOA reached the steady state faster than others when applied load torque.
机译:三相感应电机(TIM)广泛用于城市地区造纸厂,水处理和污水厂等工业应用。在这些应用中,TIM的速度非常重要,应该与施加的负载扭矩不变化。在本研究中,直接在没有控制器的没有控制器的线路(DOL)电机上,以便在直接连接到主电源时进行评估电机响应。用于定子的定子直流和感应电动机的定子正交电流的传统PI控制器被设计为内环控制器以及第二传统PI控制器设计在外环中以控制TIM速度。用于内部和外部环路的提出的PI-铅(CPIL)控制器旨在改善与传统控制器相比的TIM的整体性能。本文提出了动态调整蚱蜢优化算法(DAGOA),用于调整系统建议的控制器。基于良好选择的测试函数的数值结果表明,Dagoa在收敛速度,溶液精度和可靠性方面具有比SGoA更好的性能。研究结果表明,使用CPIL-DAGOA的TIM系统的电流和速度比使用SGOA调整的传统PI和CPIL控制器的系统更快。此外,当施加负载扭矩时,基于DAGOA的CPIL控制方案具有CPIL控制方案的TIM系统的速度控制器达到稳定状态。

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