Design and analysis of a hybrid-excited wound field synchronous machine with high reluctance torque utilization

Author:

Chai Wenping1,Kwon Byung-il1

Affiliation:

1. Department of Electrical and Electronic Engineering, Hanyang University, , South Korea

Abstract

The paper proposes a hybrid-excited wound field synchronous machine (HE-WFSM), which can achieve high reluctance torque utilization. The key of the proposed HE-WFSM is that two permanent magnets (PMs) assist each rotor pole in forming an additional magnetic flux circle. It is opposite to the magnetic flux circle along the q-axis in the WFSM. The reduction of the q-axis flux can help to improve the saliency ratio and reluctance torque. Additionally, the asymmetrical flux linkage achieves a closest current phase angle between the maximum field torque and the maximum reluctance torque. To highlight the advantages of the proposed HE-WRSM, a general WFSM was adopted as the basic machine and analyzed under the same operating conditions. All performances of the basic machine and proposed HE-WFSM were predicted using finite element analysis (FEA) in Jmag-Designer. Finally, it was confirmed that the proposed HE-WRSM can achieve high reluctance torque utilization.

Publisher

IOS Press

Subject

Electrical and Electronic Engineering,Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics,Electronic, Optical and Magnetic Materials

Reference10 articles.

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2. W. Zhao, T.A. Lipo and B. Kwon, Optimal design of a novel V-type interior permanent magnet motor with assisted barriers for the improvement of torque characteristics, IEEE Trans. Magn. 50 (2014).

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4. Optimal design of wound field synchronous reluctance machines to improve torque by increasing the saliency ratio;Chai;IEEE Trans. Magn.,2017

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