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A novel grain oriented lamination rotor core assembly for a synchronous reluctance traction motor with reduced torque ripple

机译:用于减小转矩脉动的同步磁阻牵引电动机的新型晶粒取向叠片转子铁心组件

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High torque density and low torque ripple are crucial for traction applications. These allow the electrified powertrains to perform properly during start-up, acceleration, and cruising. Achieving these goals requires improvement to the saliency of the rotor geometry which means higher magnetization in the flux carriers and lower magnetization through the flux barriers. Recent advantages of high quality anisotropic magnetic materials such as cold rolled grain oriented electrical steels is a potential for achieving energy efficient, compact, and high performance synchronous reluctance machines. However, the cylindrical geometry of the rotor is an obstacle to utilizing these materials for rotor lamination with number of poles higher than two. This paper presents an innovative rotor lamination design and assembly using cold rolled grain oriented electrical steel along with a new analytical approach for rotor flux barrier design for achieving a higher torque density and lower torque ripple for a 4-pole synchronous reluctance motor. The design methods and prototyping process are discussed, finite element analyses and experimental examinations are carried out and the results are compared to verify and validate the proposed methods.
机译:高扭矩密度和低扭矩波动对于牵引应用至关重要。这些使带电的动力总成在启动,加速和巡航期间能够正常运行。要达到这些目标,就需要改善转子几何形状的凸度,这意味着通量载体中的磁化强度较高,而通过磁通势垒的磁化强度较低。高质量各向异性磁性材料(例如冷轧晶粒取向电工钢)的最新优势是实现节能,紧凑和高性能的同步磁阻电机的潜力。然而,转子的圆柱几何形状阻碍了将这些材料用于具有大于两个的极数的转子叠片。本文介绍了一种创新的转子叠片设计和组装方法,该方法使用冷轧晶粒取向电工钢进行了设计,并为转子磁通势垒设计提供了一种新的分析方法,从而为4极同步磁阻电机实现了更高的转矩密度和更低的转矩脉动。讨论了设计方法和原型制作过程,进行了有限元分析和实验检查,并对结果进行了比较,以验证和验证所提出的方法。

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