基于纳米复合磁体的分段磁极永磁机械设计

IF 1.7 3区 物理与天体物理 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC
Jing Xu;Wei Xu
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引用次数: 0

摘要

近年来,稀土永磁体的发展大大提高了永磁同步电机的性能。然而,高性能稀土永磁面临着不可再生资源和供应链风险的挑战。同时,稀土永磁体的部分退磁也是电机设计中的一个关键问题。本文旨在优化多层纳米复合磁体,并根据电机发展的需要将其与电机相结合。本文通过微观磁学分析了稀土含量少、理论磁能积高的纳米复合磁体的特性。分析了软磁层厚度、硬磁层取向和温度对纳米复合磁体性能的影响。根据电机设计对永磁体的需求,进行了纳米复合磁体的微结构设计。提出了具有分段磁极的 IPM 机器。退磁仿真结果表明,与传统稀土永磁同步电机相比,该电机的空载反向电动势下降幅度减小。电机的抗退磁可靠性得到了提高。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The Design of Permanent Magnet Machine With Segmented Poles Based on Nanocomposite Magnets
The development of rare earth permanent magnets has greatly enhanced the performance of permanent magnet synchronous motors in recent years. However, high-performance rare-earth PMs face challenges related to non-renewable resources and supply chain risks. Meanwhile, partial demagnetization of rare earth permanent magnets is a key issue in motor design. The aim of this paper is to optimize multilayer nanocomposite magnets and combine them with electric motors according to the needs of motor development. The properties of nanocomposite magnets with less rare earth and high theoretical magnetic energy product are analyzed by micromagnetism. The effects of soft magnetic layer thickness, hard magnetic layer orientation and temperature on the performance of nanocomposite magnets are analyzed. The microstructure design of nanocomposite magnets was carried out according to the demand of permanent magnets for motor design. The IPM machine with segmented magnetic poles is proposed. The results of the demagnetization simulation show that the no-load back electromotive force drop of this motor is reduced compared with the traditional rare earth permanent magnet synchronous motor. The anti-demagnetization reliability of the motor is improved.
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来源期刊
IEEE Transactions on Applied Superconductivity
IEEE Transactions on Applied Superconductivity 工程技术-工程:电子与电气
CiteScore
3.50
自引率
33.30%
发文量
650
审稿时长
2.3 months
期刊介绍: IEEE Transactions on Applied Superconductivity (TAS) contains articles on the applications of superconductivity and other relevant technology. Electronic applications include analog and digital circuits employing thin films and active devices such as Josephson junctions. Large scale applications include magnets for power applications such as motors and generators, for magnetic resonance, for accelerators, and cable applications such as power transmission.
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