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Analysis of Winding-Connection Sequence in Multiphase Series-End Winding Motor Drives for Leg-Current Stress Reduction

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

Abstract

Series-end winding motor drives (SWMDs) are more well known for the characteristics of high dc-link voltage utilization and controllable zero-sequence loop. Besides, SWMDs also have the potential ability to reduce the leg-current stress (LCS) by rearranging the winding-connection sequence (WCS), especially in multiphase SWMDs (MP-SWMDs). Yet, this characteristic is not widely noticed in the existing works. To this end, this article presents the analysis of WCS in MP-SWMDs for LCS reduction, which provides the possibility to improve the load capability and reliability compared with the existing WCS. Based on the phasor diagrams of the leg- and phase-currents, the principle of the WCS in MP-SWMDs for LCS reduction is revealed, which is discussed separately for the symmetrical and asymmetrical (multiple three-phase) phase-windings. By rearranging the WCS and reversing part of windings in MP-SWMDs, optimal WCSs for LCS reduction are derived accordingly. Subsequently, the corresponding modulation schemes based on the relative potential are developed. Moreover, the linear modulation ranges of different WCSs in MP-SWMDs are also investigated. With the verification of the experimental results, the current amplitude of middle legs in MP-SWMDs under the optimal WCS for LCS reduction can be reduced significantly compared with the star-connected winding counterparts. Simultaneously, the linear modulation range is also reduced, which indicates that MP-SWMDs under the optimal WCS for LCS reduction are ideal for low- or medium-speed motor drives with heavy load. © 2024 IEEE.
Original languageEnglish
Pages (from-to)1635-1644
JournalIEEE Transactions on Industrial Informatics
Volume21
Issue number2
Online published18 Nov 2024
DOIs
Publication statusPublished - Feb 2025

Funding

This work was supported in part by the Natural Science Foundation of China (NSFC) under Grant 52077186, in part by the Science Technology and Innovation Committee of Shenzhen Municipality, Shenzhen, China under Grant JCYJ20210324134005015, in part by a Collaborative Research Fund from the Research Grants Council, Hong Kong SAR under Grant CRF C1052-21GF, and in part by RGC Research Fellow Scheme from Research Grants Council, Hong Kong SAR under Grant RGC:RFS2223-1S05.

Research Keywords

  • Leg-current stress
  • multiphase drives
  • series-end winding motor
  • winding connection sequence

RGC Funding Information

  • RGC-funded

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