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Design optimization for minimizing cogging torque in Axial Flux Permanent Magnet machines

机译:优化设计以最大程度地减小轴向磁通永磁电机中的齿槽转矩

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摘要

This paper deals with the optimization of a single side Axial Flux Permanent Magnet machine (AFPMM) designs with respect to cogging torque. Although the AFPMMs run generally at high speed and high torque, these machines may run at lower operational speed for aircraft applications. At lower operational speed, the cogging torque is an undesirable effect. Firstly, a reference AFPMM is designed with Finite Element Methods (FEM) and is analyzed with Finite Element Analysis (FEA) in Ansoft Maxwell. According to analysis results, it is seen that the cogging torque of reference model is 6.53% of machines torque. Secondly, a parametric analysis is realized to find better stator and rotor height to lower cogging torque. Third, design parameters of AFPMM are estimated with artificial intelligence methods for minimum cogging torque under constant output torque in MATLAB. Finally, all methods are compared and discussed. The best parameters are modified according to the optimal results. In this part, different methods of the optimization problem of the AFPMM are presented.
机译:本文针对齿槽转矩对单侧轴向磁通永磁电机(AFPMM)设计进行了优化。尽管AFPMM通常以高速度和高扭矩运行,但对于飞机应用而言,这些机器可能以较低的运行速度运行。在较低的运行速度下,齿槽转矩是不希望的效果。首先,使用有限元方法(FEM)设计参考AFPMM,并在Ansoft Maxwell中使用有限元分析(FEA)进行分析。从分析结果可以看出,参考模型的齿槽转矩为机器转矩的6.53%。其次,进行参数分析以找到更好的定子和转子高度以降低齿槽转矩。第三,在MATLAB中采用人工智能方法估算AFPMM的设计参数,以在恒定输出转矩下实现最小齿槽转矩。最后,对所有方法进行了比较和讨论。最佳参数将根据最佳结果进行修改。在这一部分,介绍了AFPMM优化问题的不同方法。

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