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Investigation or magnet segmentation techniques for eddy current losses reduction in permanent magnets electrical machines

机译:用于减少永磁电机中涡流损耗的研究或磁体分段技术

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Purpose - Reducing eddy current losses in magnets of electrical machines can be obtained by means of several techniques. The magnet segmentation is the most popular one. It imposes the least restrictions on machine performances. This paper investigates the effectiveness of the magnet circumferential segmentation technique to reduce these undesirable losses. The full and partial magnet segmentation are both studied for a frequency range from few Hz to a dozen of kHz. To increase the efficiency of these techniques to reduce losses for any working frequency, an optimization strategy based on coupling of finite elements analysis and genetic algorithm is applied. The purpose of this paper is to define the parameters of the total and partial segmentation that can ensure the best reduction of eddy current losses. Design/methodology/approach - First, a model to analyze eddy current losses is presented. Second, the effectiveness of full and partial magnet circumferential segmentation to reduce eddy loss is studied for a range of frequencies from few Hz to a dozen of kHz. To achieve these purposes a 2-D finite element model is developed under MATLAB environment. In a third step of the work, an optimization process is applied to adjust the segmentation design parameters for best reduction of eddy current losses in case of surface mounted permanent magnets synchronous machine. Findings - In case of the skin effect operating, both full and partial magnet segmentations can lead to eddy current losses increases. Such deviations of magnet segmentation techniques can be avoided by an appropriate choice of their design parameters. Originality/value - Few works are dedicated to investigate partial magnet segmentation for eddy current losses reduction. This paper studied the effectiveness and behaviour of partial segmentation for different frequency ranges. To avoid eventual anomalies related to the skin effect an optimization process based on the association of the finite elements analysis to genetic algorithm method is adopted.
机译:目的-可以通过多种技术来减少电机磁体中的涡流损耗。磁铁分割是最流行的一种。它对机器性能的限制最小。本文研究了磁体圆周分割技术减少这些不良损耗的有效性。在从几赫兹到十几kHz的频率范围内都研究了全部和部分磁体分段。为了提高这些技术的效率以减少任何工作频率下的损耗,应用了基于有限元分析和遗传算法耦合的优化策略。本文的目的是定义总分割和部分分割的参数,以确保最佳地减少涡流损耗。设计/方法/方法-首先,提出了一种分析涡流损耗的模型。其次,研究了从几赫兹到十几千赫兹的整个和部分磁体圆周分段减小涡流损失的有效性。为了实现这些目的,在MATLAB环境下开发了二维有限元模型。在工作的第三步中,应用了优化过程来调整分段设计参数,以在表面安装永磁同步电机的情况下最大程度地减少涡流损耗。发现-如果趋肤效应起作用,完全和部分磁体分割都会导致涡流损耗增加。磁体分段技术的这种偏差可以通过适当选择其设计参数来避免。原创性/价值-很少有工作致力于研究部分磁体分段以减少涡流损耗。本文研究了在不同频率范围内部分分割的有效性和行为。为了避免最终与集肤效应有关的异常,采用了基于有限元分析与遗传算法方法的关联的优化过程。

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