A Methodology for Applying Skew in an Automotive Interior Permanent Magnet Rotor for Robust Electromagnetic and Noise, Vibration and Harshness Performance

IF 2.6 Q2 ENGINEERING, ELECTRICAL & ELECTRONIC
Thomas Cawkwell, Ahmed Haris, Juan Manuel Gonzalez, Leon Kevin Rodrigues, Vladimir Shirokov
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Abstract

Interior permanent magnet (IPM) motors in traction applications often employ discrete rotor skewing constructions to reduce torsional excitations and back-EMF harmonics. Although skewing is very effective in reducing cogging torque, the impact on torque ripple is not well understood and can vary significantly over the operating envelope of a motor. Skewing also leads to the creation of a non-zero axial force that may compromise the bearing life if not considered. This paper introduces a holistic methodology for analyzing the effect of skewing, aiming to minimize torsional excitations, axial forces and back-EMF harmonics whilst mitigating the impact on performance and costs. Firstly, analytical models are employed for calculating cogging torque, torque ripple and axial forces. Then, 2D and 3D finite element analysis are used to incorporate the influence of non-linear material behavior. A detailed structural model of the powertrain is employed to calculate the radiated noise and identify key areas allowing a motor designer to reduce noise, vibration and harshness (NVH). A meticulous selection process for the skewing angle, the number of skew stacks and the orientation of skew stacks is developed, giving particular attention to the effect of the selected pattern on NVH in both forward and reverse rotating directions.
在汽车内饰永磁转子中应用偏斜的方法,以实现稳健的电磁和噪声、振动与不平顺性能
牵引应用中的内部永磁(IPM)电机通常采用离散转子偏斜结构,以减少扭转激励和反向电磁场谐波。虽然偏斜结构在减少齿槽转矩方面非常有效,但其对转矩纹波的影响并不十分明确,而且在电机的工作范围内会有很大的变化。偏斜还会产生非零轴向力,如果不加以考虑,可能会影响轴承寿命。本文介绍了一种分析偏斜影响的整体方法,旨在最大限度地减少扭转激励、轴向力和反向电磁场谐波,同时减轻对性能和成本的影响。首先,采用分析模型计算齿槽转矩、转矩纹波和轴向力。然后,采用二维和三维有限元分析,以纳入非线性材料行为的影响。动力总成的详细结构模型用于计算辐射噪声,并确定关键区域,使电机设计师能够降低噪声、振动和声振粗糙度(NVH)。对倾斜角、倾斜叠片的数量和倾斜叠片的方向进行了细致的选择,并特别关注了所选模式对正反两个旋转方向的 NVH 的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
World Electric Vehicle Journal
World Electric Vehicle Journal Engineering-Automotive Engineering
CiteScore
4.50
自引率
8.70%
发文量
196
审稿时长
8 weeks
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