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Improved dynamic performance of triple active bridge DC-DC converter using differential flatness control for more electric aircraft applications

Authors :
Ahmed Hamed Ahmed Adam
Jiawei Chen
Minghan Xu
Salah Kamel
Emad M. Ahmed
Zaki A. Zaki
Source :
Results in Engineering, Vol 23, Iss , Pp 102811- (2024)
Publication Year :
2024
Publisher :
Elsevier, 2024.

Abstract

The triple active bridge (TAB) converter has been proposed to improve power density and availability in more electric aircraft applications. However, the conventional proportional-integral (PI) controller used for TAB voltage control often exhibits slow response and significant overshoot, which can impact dynamic performance. Moreover, achieving decoupling control among ports introduces computational complexity in controller design. To address these issues, this paper introduces an effective diagonal matrix decoupling strategy based on differential flatness control with single-phase shift modulation applied to a TAB converter. The proposed differential flatness control offers superior transient performance, control flexibility, and precision, ensuring compliance with DC voltage regulations while achieving optimal decoupling among ports. The comparative analysis assesses various criteria, including steady-state and dynamic performance, control complexity, and regulation and tracking properties, against PI control, unit matrix decoupling control, and the proposed differential flatness control. Hardware-in-loop (HIL) experimentation verifies the performance, confirming faster dynamic characteristics and robust port power decoupling. The results show a significant improvement in efficiency, reaching a maximum of 95.5 %, indicating reduced switching losses and enhanced overall system performance. The study concludes with a discussion on the implications of these findings and potential future research directions, such as integrating advanced optimization algorithms further to enhance the control strategy's robustness and adaptability.

Details

Language :
English
ISSN :
25901230
Volume :
23
Issue :
102811-
Database :
Directory of Open Access Journals
Journal :
Results in Engineering
Publication Type :
Academic Journal
Accession number :
edsdoj.6d05e87be8d489982004669582f7548
Document Type :
article
Full Text :
https://doi.org/10.1016/j.rineng.2024.102811