DocumentCode
10448
Title
Functional Modeling of Symmetrical Multipulse Autotransformer Rectifier Units for Aerospace Applications
Author
Tao Yang ; Bozhko, Serhiyi ; Asher, Greg
Author_Institution
Inst. of Aerosp. Technol., Univ. of Nottingham, Nottingham, UK
Volume
30
Issue
9
fYear
2015
fDate
Sept. 2015
Firstpage
4704
Lastpage
4713
Abstract
This paper aims to develop a functional model of symmetrical multipulse autotransformer rectifier units (ATRUs) for more-electric aircraft (MEA) applications. The ATRU is seen as the most reliable way readily to be applied in the MEA. Interestingly, there is no model of ATRUs suitable for unbalanced or faulty conditions at the moment. This paper is aimed to fill this gap and develop functional models suitable for both balanced and unbalanced conditions. Using the fact that the dc voltage and current are strongly related to the voltage and current vectors at the ac terminals of ATRUs, a functional model has been developed for the asymmetric ATRUs. The developed functional models are validated through simulation and experiment. The efficiency of the developed model is also demonstrated by comparing with corresponding detailed switching models. The developed functional model shows significant improvement of simulation efficiency, especially under balanced conditions.
Keywords
aircraft power systems; fault diagnosis; power transformers; rectifying circuits; AC terminals; MEA applications; asymmetric ATRU; current vectors; fault condition; functional model; more electric aircraft; switching model; symmetrical multipulse autotransformer rectifier unit; voltage vectors; Aerospace electronics; Aircraft; Atmospheric modeling; Bridge circuits; Rectifiers; Vectors; Windings; Fault conditions; Functional modelling; More-electric aircraft; Multi-pulse rectifier; Transformer rectifier unit; functional modeling; more-electric aircraft (MEA); multipulse rectifier; transformer rectifier unit (TRU);
fLanguage
English
Journal_Title
Power Electronics, IEEE Transactions on
Publisher
ieee
ISSN
0885-8993
Type
jour
DOI
10.1109/TPEL.2014.2364682
Filename
6935099
Link To Document