2011•Unpublished venueRequires access

A hybrid excitation flux-switching permanent magnet linear motor for urban rail transit

Ruiwu Cao, Ming Cheng, Chris Chunting Mi, Wei Hua, Wenxiang Zhao

Open publisher page 17 citations

Abstract

In this paper, a hybrid excitation flux-switching permanent magnet linear motor (FSPMLM) is proposed. The proposed motor can be used as urban rail transit drive motor. The key of this structure is to have the magnet, armature windings, and DC field windings all on the short mover, while the long stator is only made of iron. The air gap flux density can be regulated by changing the magnitude and direction of DC excitation current, so it can not only reduce the drive system cost but also offer controllable electromagnetic force and electromotive force (EMF). This is helpful to extend the motor speed range and improve the system efficiency at different loads and speeds. The finite element analysis results validated the claims.

About this research paper

What this paper is about

In this paper, a hybrid excitation flux-switching permanent magnet linear motor (FSPMLM) is proposed. The proposed motor can be used as urban rail transit drive motor. The key of this structure is to have the magnet, armature windings, and DC field windings all on the short mover, while the long stator is only made of iron. The air gap flux density can be regulated by changing the magnitude and direction of DC excitation current, so it can not only reduce the drive system cost but also offer controllable electromagnetic force and electromotive force (EMF). This is helpful to extend the motor speed range and improve the system efficiency at different loads and speeds. The finite element analysis results validated the claims.

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OpenAlex reports 17 citations for this work. Citation counts describe recorded attention and do not establish research quality.

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Available abstract

In this paper, a hybrid excitation flux-switching permanent magnet linear motor (FSPMLM) is proposed. The proposed motor can be used as urban rail transit drive motor. The key of this structure is to have the magnet, armature windings, and DC field windings all on the short mover, while the long stator is only made of iron. The air gap flux density can be regulated by changing the magnitude and direction of DC excitation current, so it can not only reduce the drive system cost but also offer controllable electromagnetic force and electromotive force (EMF). This is helpful to extend the motor speed range and improve the system efficiency at different loads and speeds. The finite element analysis results validated the claims.

Key concepts: Armature (electrical engineering), Stator, Magnet, Electromagnetic coil, Excitation, Counter-electromotive force, Linear motor, Synchronous motor

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