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Optimum Design of Rotor for High-Speed Switched Reluctance Motor Using Level Set Method

机译:基于水平集法的高速开关磁阻电动机转子的优化设计

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摘要

This paper presents a novel rotor structure optimized by using the level set method (LSM) to improve the static torque characteristics of a two-phase 4/2 high-speed switched reluctance motor. The magnetic equivalent circuit approach is used to analyze the influence factors on the static torque. The inner material boundary contained in the rotor saliency, which will be optimized, is implicitly represented by an embedded level set function. The evolution of the inner material boundaries is driven by the normal velocity derived through sensitivity analysis and adjoint variable computation. Optimal rotor configuration produces the nonuniform distribution of magnetic flux density in the air gap at aligned position, which can make the ratio of maximum and minimum inductances increased. High-permeability material is applied to enhance the mean torque. In order to achieve the optimal static torque, the strategy combining finite-element electromagnetic computation with LSM is conducted to optimize the rotor saliency at different rotor positions. The comparison of the optimized rotor configuration using LSM with that using density-based method suggests that the optimized rotor structure obtained using this presented method is easier to implement.
机译:本文提出了一种新的转子结构,该结构通过使用水平设置方法(LSM)进行了优化,以改善两相4/2高速开关磁阻电机的静态转矩特性。磁等效电路方法用于分析对静态转矩的影响因素。转子显着性中包含的内部材料边界(将被优化)由嵌入的水平集函数隐式表示。内部材料边界的演化是由通过敏感性分析和伴随变量计算得出的法向速度驱动的。最佳的转子配置会在对齐位置的气隙中产生磁通密度的不均匀分布,这会使最大和最小电感之比增加。高磁导率材料可提高平均扭矩。为了获得最佳的静态转矩,进行了将有限元电磁计算与LSM相结合的策略,以优化不同转子位置处的转子凸度。使用LSM的优化转子配置与基于密度的方法的优化转子配置的比较表明,使用此方法获得的优化转子结构更易于实现。

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