DocumentCode
1302088
Title
Overview of Electric Motor Technologies Used for More Electric Aircraft (MEA)
Author
Cao, Wenping ; Mecrow, Barrie C. ; Atkinson, Glynn J. ; Bennett, John W. ; Atkinson, David J.
Author_Institution
Sch. of Electr., Electron. & Comput. Eng., Newcastle Univ., Newcastle upon Type, UK
Volume
59
Issue
9
fYear
2012
Firstpage
3523
Lastpage
3531
Abstract
This paper presents an overview of motor drive technologies used for safety-critical aerospace applications, with a particular focus placed on the choice of candidate machines and their drive topologies. Aircraft applications demand high reliability, high availability, and high power density while aiming to reduce weight, complexity, fuel consumption, operational costs, and environmental impact. New electric driven systems can meet these requirements and also provide significant technical and economic improvements over conventional mechanical, hydraulic, or pneumatic systems. Fault-tolerant motor drives can be achieved by partitioning and redundancy through the use of multichannel three-phase systems or multiple single-phase modules. Analytical methods are adopted to compare caged induction, reluctance, and PM motor technologies and their relative merits. The analysis suggests that the dual (or triple) three-phase PMAC motor drive may be a favored choice for general aerospace applications, striking a balance between necessary redundancy and undue complexity, while maintaining a balanced operation following a failure. The modular single-phase approach offers a good compromise between size and complexity but suffers from high total harmonic distortion of the supply and high torque ripple when faulted. For each specific aircraft application, a parametrical optimization of the suitable motor configuration is needed through a coupled electromagnetic and thermal analysis, and should be verified by finite-element analysis.
Keywords
AC motor drives; aircraft; fault tolerance; finite element analysis; harmonic distortion; permanent magnet motors; reliability; thermal analysis; MEA; PM motor technology; caged induction motor technology; drive topology; dual three-phase PMAC motor drive; electric motor drive technology; electromagnetic analysis; environmental impact; fault-tolerant motor drive; finite-element analysis; fuel consumption; hydraulic system; mechanical system; modular single-phase approach; more electric aircraft; multichannel three-phase system; multiple single-phase module; operational cost; parametrical optimization; pneumatic system; power density; reliability; reluctance motor technology; safety-critical aerospace application; thermal analysis; torque ripple fault; total harmonic distortion; weight reduction; Aircraft; Brushless motors; Induction motors; Permanent magnet motors; Reluctance motors; Torque; Actuators; aerospace industry; brushless PM motors; fault tolerance; more electric aircraft; multiphase machines; reliability; safety-critical drives; variable speed drives;
fLanguage
English
Journal_Title
Industrial Electronics, IEEE Transactions on
Publisher
ieee
ISSN
0278-0046
Type
jour
DOI
10.1109/TIE.2011.2165453
Filename
5991952
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