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Optimal Design and Experimental Test of Surface-Mounted Permanent Magnet Motors with Cost-Effective Magnet Utilization to Suppress Torqu Pulsations.

机译:具有成本效益的磁铁抑制转矩脉动的表面贴装式永磁电动机的优化设计和实验测试。

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The surface-mounted permanent magnet (SPM) motors with NdFeB magnets, offering high torque density and high efficiency, have been widely applied to various domestic and industrial applications [1]. However, the adoption of NdFeB magnets not only brings high torque density, but also leads to high torque pulsations and high magnet cost. The approaches to suppress torque pulsations in SPM motors have been heavily investigated through drive control or motor design methods [2], [3]. In particular, the suppression of cogging torque has received great attention along with numerous methods, such as skewing [4], auxiliary slots [5], teeth notching [6], and slot-opening shifting [7], etc. However, most of the methods to suppress cogging torque may not result in low torque ripple due to the effects of armature reaction fields. Hence, the approaches to suppress both cogging torque and torque ripple simultaneously are more desired. It is well known that the magnet flux density distribution has a significant effect on torque performance. Accordingly, extensive magnet shaping methods, such as magnet pole shape optimization [8] and sinusoidal magnet poles [9], have been reported to obtain a sinusoidal magnet flux density distribution, thus to reduce torque pulsations. However, these reported methods inevitably lead to manufacturing difficulty and performance degradation. Regarding to the magnet cost saving, the approaches by using ferrite magnets, or hybrid ferrite and NdFeB magnets are investigated, but generally neglecting the issues on torque pulsations [10]. In this paper, an optimal design is proposed for the SPM motor to reduce the cogging torque and toque ripple, and save the magnet cost using multi-grade NdFeB and ferrite magnets. Based on a conventional SPM motor with single-grade NdFeB magnets, the proposed SPM motor is designed with three-grade NdFeB and ferrite magnets, and then optimized to further reduce torque pulsations and save the magnet cost by maintaining the high average torque using the Kriging method and a genetic algorithm. All the motor characteristics are first predicted using the finite element method (FEM) at the same operating conditions. Then the experimental test is performed for the optimized model to validate the optimal design and analysis results.
机译:具有NdFeB磁体的表面安装式永磁(SPM)电动机具有高转矩密度和高效率,已广泛应用于各种家庭和工业应用[1]。然而,采用钕铁硼磁体不仅带来高扭矩密度,而且导致高扭矩脉动和高磁体成本。通过驱动控制或电动机设计方法[2],[3],对抑制SPM电动机中的转矩脉动的方法进行了大量研究。尤其是,随着许多方法的出现,齿槽转矩的抑制受到了广泛的关注,例如偏斜[4],辅助槽[5],齿槽[6]和开槽移位[7]等。但是,大多数由于电枢反作用场的影响,抑制齿槽转矩的方法中的某些方法可能不会导致低转矩波动。因此,更需要同时抑制齿槽转矩和转矩脉动的方法。众所周知,磁通量密度分布对转矩性能有显着影响。因此,已经报道了广泛的磁体成形方法,例如磁极形状​​优化[8]和正弦磁极[9],以获得正弦磁通量密度分布,从而降低了扭矩脉动。但是,这些报道的方法不可避免地导致制造困难和性能下降。关于节省磁铁成本,研究了使用铁氧体磁铁或混合铁氧体和NdFeB磁铁的方法,但通常忽略了转矩脉动问题[10]。本文针对SPM电机提出了一种优化设计,以减少齿槽转矩和转矩脉动,并使用多级NdFeB和铁氧体磁体节省磁体成本。基于具有单级NdFeB磁体的常规SPM电机,建议的SPM电机设计有三级NdFeB和铁氧体磁体,然后进行了优化,以通过使用Kriging保持较高的平均扭矩来进一步减少转矩脉动并节省磁体成本方法和遗传算法。首先使用有限元方法(FEM)在相同的运行条件下预测所有电动机的特性。然后对优化后的模型进行实验测试,以验证优化后的设计和分析结果。

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