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Multiobjective Shape Optimization of Segmented Pole Permanent-Magnet Synchronous Machines With Improved Torque Characteristics

机译:具有改进转矩特性的分段磁极永磁同步电机的多目标形状优化

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摘要

Magnet segmentation is an effective and simple technique for cogging torque reduction in high power permanent-magnet (PM) synchronous machines; however, it deteriorates air gap flux density and decreases the output torque. Therefore, a multiobjective optimization framework is necessary for cogging torque minimization, and to diminish its adverse effect on the output torque in segmented-pole permanent-magnet synchronous machines (PMSMs). This can be fulfilled by proper selection of widths and displacements of the magnet segments. Finite-element analysis (FEA) is an accurate method for this purpose. However, it is very time consuming where finding optimal configuration needs a lot of simulations. Thus, an analytical based design optimization is very useful and eases the design process. In this paper, a novel semianalytical model for cogging torque computation in PMSMs is proposed. Based on the proposed model, a multiobjective optimization framework is developed. The particle swarm optimization (PSO) method is applied to find the optimum machine design. To show the effectiveness of the proposed method, two prototype segmented magnet PMSMs with two and three PM blocks per pole are optimized respectively. Performance characteristics are compared to the initial machine design and segmented PMSMs with design parameters chosen according to previous analytical models and initial uniform pole machines using FEA.
机译:磁分割是一种有效而简单的技术,用于降低大功率永磁(PM)同步电机中的齿槽转矩。但是,这会降低气隙磁通密度并降低输出转矩。因此,需要一个多目标优化框架来最小化齿槽转矩,并减小其对分段磁极永磁同步电机(PMSM)中输出转矩的不利影响。这可以通过适当选择磁体段的宽度和位移来实现。为此,有限元分析(FEA)是一种准确的方法。但是,在寻找最佳配置需要大量模拟的情况下,这非常耗时。因此,基于分析的设计优化非常有用,可以简化设计过程。本文提出了一种新型的永磁同步电机齿槽转矩计算的半解析模型。基于提出的模型,开发了一个多目标优化框架。应用粒子群优化(PSO)方法来找到最佳的机器设计。为了显示该方法的有效性,分别优化了两个原型分段磁体永磁同步电机,每极分别具有两个和三个永磁块。将性能特征与初始机器设计和分段PMSM进行比较,并根据先前的分析模型和使用FEA的初始均匀极点机器选择设计参数。

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