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首页> 外文期刊>Magnetics, IEEE Transactions on >Armature-Reaction Magnetic Field Analysis for Interior Permanent Magnet Motor Based on Winding Function Theory
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Armature-Reaction Magnetic Field Analysis for Interior Permanent Magnet Motor Based on Winding Function Theory

机译:基于绕线函数理论的内装永磁电动机电枢反应磁场分析

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As the magnets are embedded in a rotor for the interior permanent magnet (IPM) motor, the distribution of the armature reaction magnetic field is different from that of the surface permanent magnet motor (SPM) type. Various methods have been used for the magnetic field solution, including analytical methods based on the winding function and the Laplacian–Poisson equation. However, in the IPM motor, the boundary condition is too complicated for using the Laplacian–Poisson equation. What is more, the equivalent air-gap inverse function presented in literature is not suitable for the IPM motor. A new armature reaction magnetic field model is proposed for the IPM motor, considering the effect of the embedded magnet in the rotor, which is named a pole-cap effect in this paper. The proposed model is derived from the winding function theory, and the rotor magnetic motive force (MMF) function is employed to model the so-called pole-cap effect. The proposed model is used to predict the armature reaction field under a different type of stator MMF, such as different orientation of the excitation current as well as various MMF wavelengths. The calculation result is validated by the finite element analysis (FEA) and shows remarkable advantages over the traditional method. The new model proposed in the paper is quite useful for evaluating various IPM motor performances in an accurate and time-effective manner, such as inductance, stator core losses, and magnet eddy current losses. Complete demonstration of the method to calculate the aforementioned performance indices will be presented in a separate paper, and inductance calculation of a primitive winding is given as an example at the end of this paper.
机译:由于磁体嵌入到内部永磁体(IPM)电动机的转子中,因此电枢反作用磁场的分布与表面永磁电动机(SPM)类型的分布不同。磁场解决方案已经使用了多种方法,包括基于绕组函数和Laplacian-Poisson方程的分析方法。但是,在IPM电机中,边界条件对于使用Laplacian-Poisson方程来说太复杂了。此外,文献中介绍的等效气隙反函数不适用于IPM电机。考虑到转子中嵌入磁铁的影响,提出了一种新型的电抗电机模型,该模型被称为极帽效应。所提出的模型是从绕组函数理论推导而来的,并且使用转子磁动力(MMF)函数来对所谓的极帽效应进行建模。所提出的模型用于预测在不同类型的定子MMF下的电枢反应场,例如励磁电流的不同方向以及各种MMF波长。计算结果通过有限元分析(FEA)进行了验证,与传统方法相比具有明显的优势。本文提出的新模型对于以准确,高效的方式评估各种IPM电机性能非常有用,例如电感,定子铁心损耗和磁体涡流损耗。在另一篇论文中将完整演示计算上述性能指标的方法,并在本文结尾处以原始绕组的电感计算为例。

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