TY - JOUR
T1 - Real-time gating signal generation and performance analysis for fully controlled fivephase, ten-pulse, line-commutated rectifier
AU - Masoud, Mahmoud I.
AU - Saleem, Ashraf
AU - Al-Abri, Rashid
N1 - Funding Information:
The authors would like to thank Sultan Qaboos University, Muscat, Oman, for providing funding for this work as an internal grant with code number (IG/ENG/ECED/15/03).
Publisher Copyright:
© The Institution of Engineering and Technology 2017.
PY - 2018/4/10
Y1 - 2018/4/10
N2 - Fossil fuel prices and air pollution impel many countries to concentrate on renewable energy sources, of which wind energy is considered to be a pillar. Owing to the numerous advantages when compared with its three-phase counterpart, five-phase direct-drive permanent magnet (PM) generators are a key area of focus in power generation with renewable and wind energy systems. The generator output requires a converter, such as an AC-DC rectifier, to match load requirements. The objective of this work is to generate in real time the gating signals of a fully controlled five-phase, line-commutated rectifier, fed from a five-phase PM generator. A mixed-reality environment is used to implement the gating signal generation algorithm for the five-phase rectifier, where the required gating signals are successfully generated, even with some distorted prototype generator voltage waveforms. The performance of the rectifier is investigated practically and validated by using the MATLAB/SIMULINK platform. Moreover, a comparison with a five-phase pulse-width modulated current source rectifier in terms of losses, size, weight, and cost is presented.
AB - Fossil fuel prices and air pollution impel many countries to concentrate on renewable energy sources, of which wind energy is considered to be a pillar. Owing to the numerous advantages when compared with its three-phase counterpart, five-phase direct-drive permanent magnet (PM) generators are a key area of focus in power generation with renewable and wind energy systems. The generator output requires a converter, such as an AC-DC rectifier, to match load requirements. The objective of this work is to generate in real time the gating signals of a fully controlled five-phase, line-commutated rectifier, fed from a five-phase PM generator. A mixed-reality environment is used to implement the gating signal generation algorithm for the five-phase rectifier, where the required gating signals are successfully generated, even with some distorted prototype generator voltage waveforms. The performance of the rectifier is investigated practically and validated by using the MATLAB/SIMULINK platform. Moreover, a comparison with a five-phase pulse-width modulated current source rectifier in terms of losses, size, weight, and cost is presented.
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U2 - 10.1049/iet-pel.2017.0587
DO - 10.1049/iet-pel.2017.0587
M3 - Article
AN - SCOPUS:85045697364
SN - 1755-4535
VL - 11
SP - 744
EP - 754
JO - IET Power Electronics
JF - IET Power Electronics
IS - 4
ER -