Skip to main content

Research Repository

Advanced Search

A Computationally Efficient Semi-Analytical Method for Circulating Current Loss of High Speed Permanent Magnet Machines

Li, Lei; Fan, Xinggang; Liu, Zirui; Li, Dawei; Zou, Tianjie; Chen, Xiaoxue; Qu, Ronghai

A Computationally Efficient Semi-Analytical Method for Circulating Current Loss of High Speed Permanent Magnet Machines Thumbnail


Authors

Lei Li

Xinggang Fan

Zirui Liu

Dawei Li

Xiaoxue Chen

Ronghai Qu



Abstract

This article proposes a computationally efficient (CE) semi-analytical method for winding power loss calculation of high speed permanent magnet machines induced by circulating current. It combines a CE magnetostatic finite element method (FEM) for rapid slot leakage field extraction and an analytical circuit model for circulating current calculation. Time-space transformation based CE FEM is applied for efficient slot leakage field extraction considering the polyphase windings. Besides, a conductor model with an automatic and practical turn splitting strategy is proposed to consider the effect of conductor positions and bundle shapes on the circulating current loss. The results on circulating current waveforms and corresponding losses show that the proposed method has high accuracy and can significantly reduce the simulation time, with an error less than 2% and the simulation time only 1/400 for the studied machine compared with the commercial FEM. Using the proposed method, the influence of some factors, including the turn number, the transposition effect and the bundle shape on the circulating current loss are investigated. Finally, the proposed method is further verified by experimental measurements implemented on two stator specimens.

Citation

Li, L., Fan, X., Liu, Z., Li, D., Zou, T., Chen, X., & Qu, R. (2024). A Computationally Efficient Semi-Analytical Method for Circulating Current Loss of High Speed Permanent Magnet Machines. IEEE Transactions on Energy Conversion, 39(1), 675-687. https://doi.org/10.1109/tec.2023.3312648

Journal Article Type Article
Acceptance Date Sep 7, 2023
Online Publication Date Sep 7, 2023
Publication Date 2024-03
Deposit Date Nov 23, 2023
Publicly Available Date Nov 24, 2023
Journal IEEE Transactions on Energy Conversion
Print ISSN 0885-8969
Electronic ISSN 1558-0059
Publisher Institute of Electrical and Electronics Engineers
Peer Reviewed Peer Reviewed
Volume 39
Issue 1
Pages 675-687
DOI https://doi.org/10.1109/tec.2023.3312648
Keywords Electrical and Electronic Engineering, Energy Engineering and Power Technology
Public URL https://nottingham-repository.worktribe.com/output/25645154
Publisher URL https://ieeexplore.ieee.org/document/10243050

Files





You might also like



Downloadable Citations