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Adaptive Neuro-Fuzzy Inference System based speed controller for brushless DC motor

机译:基于自适应神经模糊推理系统的无刷直流电动机速度控制器

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摘要

In this paper, a novel controller for brushless DC (BLDC) motor has been presented. The proposed controller is based on Adaptive Neuro-Fuzzy Inference System (ANFIS) and the rigorous analysis through simulation is performed using simulink tool box in MATLAB environment. The performance of the motor with proposed ANFIS controller is analyzed and compared with classical Proportional Integral (PI) controller, Fuzzy Tuned PID controller and Fuzzy Variable Structure controller. The dynamic characteristics of the brushless DC motor is observed and analyzed using the developed MATLAB/simulink model. Control system response parameters such as overshoot, undershoot, rise time, recovery time and steady state error are measured and compared for the above controllers. In order to validate the performance of the proposed controller under realistic working environment, simulation result has been obtained and analyzed for varying load and varying set speed conditions.
机译:在本文中,提出了一种新型的无刷直流(BLDC)电机控制器。所提出的控制器基于自适应神经模糊推理系统(ANFIS),并且在MATLAB环境下使用Simulink工具箱进行了严格的仿真分析。分析了带有建议的ANFIS控制器的电动机的性能,并将其与经典的比例积分(PI)控制器,模糊调节PID控制器和模糊可变结构控制器进行了比较。使用开发的MATLAB / simulink模型观察并分析了无刷直流电动机的动态特性。测量并比较了上述控制器的控制系统响应参数,例如过冲,下冲,上升时间,恢复时间和稳态误差。为了验证所提出的控制器在实际工作环境下的性能,已经获得了仿真结果并针对变化的负载和变化的设定速度条件进行了分析。

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