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首页> 外文期刊>Electric Power Components and Systems >Cogging Torque Reduction and Optimization in Surface-mounted Permanent Magnet Motor Using Magnet Segmentation Method
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Cogging Torque Reduction and Optimization in Surface-mounted Permanent Magnet Motor Using Magnet Segmentation Method

机译:磁铁分段法降低表面贴装式永磁电动机的齿槽转矩及优化

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摘要

One of the main challenges in permanent magnet electrical machine design is cogging torque reduction. In this article, the magnet segmentation method is used for cogging torque reduction. For this end, each surface permanent magnet is divided into eight parts, and a symmetrical structure with equal angular widths and considering the angular gaps between them is used for minimizing a number of optimization parameters. In this article, three optimization algorithms-response surface methodology, genetic algorithm, and particle swarm optimization-are used to determine the optimal values of optimization parameters. Finally, the result is obtained that the optimum values of response surface methodology are more efficient than of those of the genetic algorithm and particle swarm optimization in cogging torque reduction, because the objective function of the response surface methodology is cogging torque that is calculated using the finite-element method, whereas the objective function in the genetic algorithm and particle swarm optimization is based on the analytical methods. However, the main objection of the magnet segmentation method is the simultaneous reduction of average torque with cogging torque.
机译:永磁电机设计中的主要挑战之一是降低齿槽转矩。在本文中,磁体分段方法用于降低齿槽转矩。为此,将每个表面永磁体分为八个部分,并使用具有相等角宽度并考虑它们之间的角间隙的对称结构来最小化许多优化参数。在本文中,使用三种优化算法-响应面方法,遗传算法和粒子群优化方法-确定优化参数的最优值。最后,得出的结果是,响应面方法的最优值比遗传算法和粒子群算法的最优值更有效地降低了齿槽转矩,这是因为响应面方法的目标函数是使用齿形函数计算的齿槽转矩。有限元法,而遗传算法和粒子群算法中的目标函数是基于解析法的。但是,磁体分割方法的主要目的是使平均转矩与齿槽转矩同时降低。

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