Structure optimization of permanent magnet spherical motor utilizing improved Particle Swarm algorithm

Liang Yan, Jingying Zhang, H. Duan, Zongxia Jiao
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引用次数: 3

Abstract

The improved particle swarm optimization (PSO) algorithm is used to optimize the structure of permanent magnetic spherical motor with four pairs of rotor poles. The objective is to maximize peak value of output torque and peak value of magnetic flux density. Seven variables are selected which are rotor radius, rotor core radius, the longitudinal angle and the latitudinal angle of single rotor pole, coil length, coil angle. Firstly, the magnetic field model and torque model of optimization is built. Based on the two models above, the objective function is deduced. Then the spherical motor is optimized based on the improved PSO algorithm. Finally, the optimization results indicate that the optimal structure parameters are obtained. In a word, Improved PSO algorithm shows great advantage in the optimal design of motor.
基于改进粒子群算法的永磁球形电机结构优化
采用改进的粒子群算法对四对转子极的永磁球形电机进行结构优化。目标是使输出转矩的峰值和磁通密度的峰值最大化。选取转子半径、转子铁心半径、单转子极纵、纬向角、线圈长度、线圈角7个变量。首先,建立了优化的磁场模型和转矩模型;在上述两种模型的基础上,推导了目标函数。然后基于改进的粒子群算法对球面电机进行优化。优化结果表明,得到了最优的结构参数。总之,改进粒子群算法在电机优化设计中显示出很大的优势。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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