Optimization of outer-rotor hybrid excitation FSM for in-wheel direct drive electric vehicle

Md. Zarafi Ahmad, E. Sulaiman, T. Kosaka
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引用次数: 20

Abstract

Research on flux switching machines (FSMs) has been an attractive topic recently due to tremendous advantages of robust rotor structure, high torque, and high power capability that suits for intense applications. However, most of the investigations are focusing on inner rotor structure which incongruous for direct drive applications. In this paper, the design optimization and performance analysis of 12Slot-14Pole hybrid excitation flux switching machine (HEFSM) with outer-rotor configuration are conducted for in-wheel direct drive electric vehicle (EV). Similar with conventional inner-rotor HEFSMs, two magnetic flux sources of permanent magnet (PM) and field excitation coil (FEC) have extra advantage of variable flux control capability, while the outer-rotor configuration has ability to provide much higher torque and power density suitable for in-wheel EV drives. Based on some design restriction and specification, design refinements are conducted on the initial design machine by using deterministic optimization approach. The final design machine has achieved maximum torque and power density of 335.08Nm and 5.93kW/kg, respectively, slightly better than inner rotor HEFSM and interior permanent magnet synchronous machine (IPMSM) design for EV.
轮内直驱电动汽车外转子混合激励FSM优化
磁通开关电机(FSMs)由于具有转子结构坚固、转矩大、功率大等优点而成为近年来研究的热点。然而,大多数的研究都集中在不适合直接驱动应用的内转子结构上。本文针对轮式直驱电动汽车采用外转子结构的12槽-14极混合励磁开关电机(hemfsm)进行了设计优化和性能分析。与传统的内转子HEFSMs类似,永磁体(PM)和励磁线圈(FEC)两种磁通源具有可变磁通控制能力的优势,而外转子配置能够提供更高的转矩和功率密度,适合轮内电动汽车驱动。基于一定的设计约束和规范,采用确定性优化方法对初始设计机进行设计细化。最终设计的电机最大转矩和功率密度分别为335.08Nm和5.93kW/kg,略优于电动汽车内转子hemsm和内永磁同步电机(IPMSM)设计。
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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