Design and Analysis of a Five-Phase Permanent-Magnet Synchronous Motor for Fault-Tolerant Drive

Iftikhar, Muhammad H. and Park, Byung-Gun and Kim, Ji-Won (2021) Design and Analysis of a Five-Phase Permanent-Magnet Synchronous Motor for Fault-Tolerant Drive. Energies, 14 (2). p. 514. ISSN 1996-1073

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Abstract

Reliability is a fundamental requirement in electric propulsion systems, involving a particular approach in studies on system failure probabilities. An intrinsic improvement to the propulsion system involves introducing robust architectures such as fault-tolerant motor drives to these systems. Considering the potential for hardware failures, a fault-tolerant design approach will achieve reliability objectives without recourse to optimized redundancy or over-sizing the system. Provisions for planned degraded modes of operation are designed to operate the motor in fault-tolerant mode, which makes them different from the pure design redundancy approach. This article presents how a five-phase permanent-magnet synchronous motor operates under one- or two-phase faults, and how the system reconfigures post-fault motor currents to meet the torque and speed requirement of reliable operation that meets the requirements of an electric propulsion system.

Item Type: Article
Subjects: EP Archives > Energy
Depositing User: Managing Editor
Date Deposited: 17 Mar 2023 05:08
Last Modified: 05 Jun 2024 09:31
URI: http://research.send4journal.com/id/eprint/1022

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