不同绕组和定转子组合绕线场开关电机的多段磁通路分析

Mostafa Fereydoonian;Dheeraj Bobba;Woongkul Lee
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摘要

绕线磁通开关机(WFFSM)具有坚固的转子结构、可变的磁场操作能力和无退磁风险等吸引人的特点。WFFSM还提供了一个集成的定子结构,可容纳磁场和电枢绕组,而转子不需要绕组或磁铁。然而,在定子上有两个绕组会在特定的转子位置产生长而低效的磁通路径,这不会直接导致电磁转矩的产生。因此,对与定子电桥结构相关的磁通路径进行深入的研究是必要的。本文采用多段磁等效电路来识别这些较长的磁通路径,并通过有限元分析进行验证。此外,它们对不同绕组配置和定子-转子极组合的WFFSMs的电感和转矩产生的影响。为了可视化和量化较长磁通路径对电磁性能的影响,进行了转矩分离和能量转换回路分析。研究表明,集成定子结构产生的电感谐波产生负磁阻转矩,使净输出转矩减小。结果表明,采用环向磁场和电枢绕组结构的WFFSM可以获得最大的输出转矩,且不受较长的磁通路径的影响。在体积相同的情况下,磁通径较长,输出转矩比WFFSMs高57%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Multisegment Magnetic Flux Path Analysis of Wound-Field Flux-Switching Machines With Different Winding and Stator-Rotor Combinations
Wound field flux switching machine (WFFSM) showcases attractive features such as a robust rotor structure, variable field operation capability, and no risk of demagnetization. The WFFSM also provides an integrated stator structure that accommodates both field and armature windings, while the rotor does not require windings or magnets. However, having both windings on the stator creates long and inefficient magnetic flux paths at specific rotor positions that do not directly contribute to electromagnetic torque generation. Therefore, it is imperative for WFFSMs to thoroughly investigate the magnetic flux paths associated with the stator bridge structure. This article employs a multi-segment magnetic equivalent circuit to identify these longer magnetic flux paths, validated through finite element analysis. In addition, their impact on inductance and torque production of WFFSMs with different winding configurations as well as stator-rotor pole combinations. Torque segregation and energy conversion loop analysis are conducted to visualize and quantify the impact of the longer magnetic flux paths on electromagnetic performances. The study reveals that the inductance harmonics originating from the integrated stator structure generate a negative reluctance torque, decreasing the net output torque. The results demonstrate that the WFFSM employing a circumferential field and armature winding configuration, which does not suffer from the longer magnetic flux path, achieves the highest output torque. It exhibits an output torque 57% higher than the WFFSMs suffering from the longer magnetic flux path, with identical volume.
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