Sectional Modular Technology for Reducing Detent Force of Linear Unit in Linear-rotary Flux-switching Permanent-magnet Generator for Wind-wave Combined Energy Conversion

Guozhen Zhang, R. Nie, J. Si, Xiaohui Feng, C. Wang
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Abstract

A linear-rotary flux-switching permanent magnet (FSPM) generator (LRFSPMG) is a potential candidate for a wind-wave combined energy conversion (WWCEC) system. The linear unit of the LRFSPMG is a tubular FSPM linear generator (TFSPMLG), which like other permanent magnet linear generators, has an inherent detent force problem. To alleviate this problem, a sectional modular technology scheme is investigated to reduce the detent force of the TFSPMLG. Firstly, the structure is briefly introduced and the detent force analyzed. Secondly, the sectional modular TFSPMLGs are presented and their feasibility verified with respect to the stator of the TFSPMLG being split into two and three sections, forming Modulars I and II, respectively. After that, the detent force suppression principle, and the effects that the sectional modular structures exert on the detent force are analyzed. According to the analysis results, two methods are presented to suppress the detent force: one is to suppress the magnetic coupling effect; the other is to reduce the remaining harmonics. Finally, the three TFSPMLGs, including the initial TFSPMLG, Modular I, and Modular II, are comparatively analyzed by finite-element analysis (FEA). The results show that both the detent forces are greatly reduced without sacrificing the back electromotive force (EMF) and average electromagnetic force, thereby proving the effectiveness of the TFSPMLG with a sectional modular structure.
减小风波复合能转换直线旋转磁通开关永磁发电机直线单元扣压力的分段模块化技术
线性旋转磁通开关永磁(FSPM)发电机(LRFSPMG)是风波联合能量转换(WWCEC)系统的潜在候选者。LRFSPMG的线性单元是管状FSPM线性发电机(TFSPMLG),与其他永磁线性发电机一样,存在固有的缓冲力问题。为了解决这一问题,研究了一种分段模块化技术方案,以减小TFSPMLG的制动力。首先,对结构进行了简要介绍,并对其进行了缓冲力分析。其次,提出了分段模块化的TFSPMLG,并通过将TFSPMLG的定子分成两段和三段,分别形成模块I和模块II,验证了其可行性。在此基础上,分析了截面模块化结构对支撑力的抑制原理以及支撑力对支撑力的影响。根据分析结果,提出了两种抑制制动力的方法:一是抑制磁耦合效应;另一种是减少剩余的谐波。最后,对初始TFSPMLG、模块化I和模块化II三种TFSPMLG进行了有限元对比分析。结果表明,在不牺牲反电动势(EMF)和平均电磁力的情况下,极大地减小了支撑力,从而证明了采用分段模块化结构的tfspmllg的有效性。
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