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Optimization of a transverse flux machine with claw-pole and flux-concentrating structure

机译:具有爪极和磁通浓缩结构的横向磁通机的优化

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This paper deals with the multi-objective optimization of a transverse flux machine with claw-pole and flux-concentrating structure (CPTFM), which is especially suitable for low-speed and high-torque applications due to its high pole pair number. Compared with conventional radial flux machine, the main flux path in CPTFM is three dimensional and transverse to the rotation of the rotor. For this reason, the time-consuming 3D finite element method is necessary to accurately investigate the performance of CPTFM. In order to optimize the electrometric design of CPTFM and meanwhile to limit the calculation time to an acceptable level, a method mainly based on the Taguchi method and the Nondominated Sorting Genetic Algorithm 2 is developed in this paper. From the comparison between the final optimized design and the original design, it is concluded that all the specified five objectives are improved and the developed method is feasible and effective, which makes a appropriate compromise between the calculation time and optimization results.
机译:这与横向磁通机的与爪极和集磁结构(CPTFM),这是特别适用于低速和高转矩的应用由于其高的极对数的多目标优化纸交易。与传统的径向磁通机器相比,在CPTFM主磁通路径是三维的,并且横向于所述转子的旋转。出于这个原因,耗时三维有限元方法需要准确地调查CPTFM的性能。为了优化CPTFM同时的电测设计的计算时间,以限制到可接受的水平,一种方法主要是基于Taguchi法和非支配排序遗传算法2在本文中开发的。从最终的优化设计与原始设计之间的比较,可以得出结论,所有指定的五个目标得到改善,并且所提出的方法是可行的,有效的,这使得计算时间和优化结果之间的适当折衷。

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