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Efficiency improvement of induction motor using fuzzy-genetic algorithm

机译:基于模糊遗传算法的感应电动机效率提高

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摘要

In most industrial zones, electric energy is one of the most important energy sources. Since electrical motors are the main energy consumers of industrial factories, consumption optimization in these motors can be considered as a main option related to energy saving. One very effective way to reduce the consumption of these equipment is to use a motor speed controllers or drives. Since the loss of inductive motor has a direct relationship with motor flux, in this paper, the rotor flux vector control has been used. Due to the strength of fuzzy controllers in load failure and noise generation states, this controller has been used to adjust the drive speed. Two fuzzy logic inputs including speed error and speed variation derivative, and a fuzzy output, motor reference torque (Te*) are estimated. The genetic optimization algorithm has been used in order to improve the Efficiency and reduce the losses. As such, the drive performance in GA and Fuzzy-Genetic (FG) states is reviewed and the simulation results are presented. Finally, the obtained results in this paper have been compared to the results of FOC inductive motor with PI controller and without optimization. It can be seen that when FG method is employed, the results show a higher performance and losses are reduced up to almost 40 to 50% in different loads, and the amount of input power is also reduced up to approximately 30%.
机译:在大多数工业区中,电能是最重要的能源之一。由于电动机是工业工厂的主要能源消耗者,因此这些电动机中的能耗优化可被视为与节能相关的主要选择。减少这些设备消耗的一种非常有效的方法是使用电动机速度控制器或驱动器。由于感应电动机的损耗与电动机磁通有直接关系,因此在本文中使用了转子磁通矢量控制。由于模糊控制器在负载故障和噪声产生状态下的优势,该控制器已被用于调节驱动速度。估算了两个模糊逻辑输入,包括速度误差和速度变化导数,以及一个模糊输出,电动机参考转矩(Te *)。为了提高效率并减少损失,已使用遗传优化算法。因此,对GA和Fuzzy-Genetic(FG)状态下的驱动性能进行了综述,并给出了仿真结果。最后,将本文获得的结果与没有优化的带有PI控制器的FOC感应电动机的结果进行了比较。可以看出,当采用FG方法时,结果显示出更高的性能,并且在不同负载下损耗降低了近40%至50%,输入功率也降低了约30%。

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