用于电动汽车应用的磁通开关电机性能提升:概述

IF 1.9 4区 工程技术 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC IET Electrical Systems in Transportation Pub Date : 2024-01-13 DOI:10.1049/2024/9071667
Jawad Faiz, Majid Maktobian
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引用次数: 0

摘要

随着减少温室气体排放变得越来越重要,电动汽车(EV)有望在未来几年广泛进入市场。电动汽车所用电机的效率对其整体性能起着重要作用。本文探讨了磁通开关电机(FSM)及其在电动汽车中的应用。本文将 FSM 与其他电机进行了比较,以突出其作为电动汽车牵引合适选择的潜力。此外,还回顾了提高 FSM 性能的各种配置和技术,包括磁性材料、扭矩纹波缓解和磁通削弱。讨论了这些方法的优缺点,为设计电动汽车 FSM 提供了有价值的见解。一般来说,电动汽车牵引需要高扭矩密度和高功率密度的电机。要实现这些目标,在电机设计阶段就必须考虑高电力和磁力负载。应用 FSM 可能是合适的选择之一。出于多种原因,三相 FSM 是首选。考虑到电动汽车中机器的基本速度和高电负载,定子铁芯为有取向铁芯,转子铁芯为无取向铁芯的 12 个定子齿和 10 个转子齿的 FSM 可能是最合适的选择。为了提高转矩密度和应用磁通削弱方法,钕磁铁和铝镍钴磁铁的组合是首选。
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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Performance Enhancement of Flux Switching Motor for Electric Vehicle Applications: An Overview

As the reduction of greenhouse gas emissions becomes crucial, electric vehicles (EVs) are expected to enter the market extensively in the coming years. The efficiency of the electrical motor used in EVs plays a significant role in their overall performance. This paper explores the flux switching motor (FSM) and its applications in EVs. The FSM is compared to other electrical motors, highlighting its potential as a suitable choice for EV traction. Various configurations and techniques are reviewed to enhance the performance of FSMs, including magnetic materials, torque ripple alleviation, and magnetic flux weakening. The advantages and disadvantages of these methods are discussed, providing valuable insights for designing FSMs for EVs. Generally, EV traction requires high torque density and high power density electrical motor. To achieve these goals, high electric and magnetic loading must be considered in design stage of the motor. Application of the FSM may be one of the appropriate option. For many reasons, three-phase FSM is preferred. Considering the base speed of machine in the EV and high electric loading, the FSM with 12 stator teeth and 10 rotor teeth may be the most appropriate choice in which the stator core is oriented and rotor core is nonoriented iron. To enhance the torque density and applied flux weakening method, combination of Nd and Al–Ni–Co magnets is preferred.

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来源期刊
CiteScore
5.80
自引率
4.30%
发文量
18
审稿时长
29 weeks
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