Please use this identifier to cite or link to this item: http://ir.futminna.edu.ng:8080/jspui/handle/123456789/17823
Title: Inverse Application of Artificial Intelligence for the Control of Power Converters
Authors: Gao, Yuan
Wang, Songda
Hussaini, Habibu
Yang, Tao
Dragičević, Tomislav
Bozhko, Serhiy
Wheeler, Patrick
Vazquez, Sergio
Keywords: Artificial intelligence
Machine learning
Droop control
Power converters
Inverse application
Artificial neural network (ANN)
Current sharing
Issue Date: 23-Sep-2022
Publisher: IEEE
Citation: Gao, Y., Wang, S., Hussaini, H., Yang, T., Dragičević, T., Bozhko, S., ... & Vazquez, S. (2022). Inverse application of artificial intelligence for the control of power converters. IEEE Transactions on Power Electronics, 38(2), 1535-1548.
Series/Report no.: 38;2
Abstract: This article proposes a novel application method, inverse application of artificial intelligence (IAAI) for the control of power electronic converter systems. The proposed method can give the desired control coefficients/references in a simple way because, compared to conventional methods, IAAI only relies on a data-driven process with no need for an optimization process or substantial derivations. Noting that the IAAI approach uses artificial intelligence to provide feasible coefficients/references for the power converter control, rather than building a new controller. After illustrating the IAAI concept, a conventional application method of artificial neural network is discussed, an optimization-based design. Then, a two-source-converter microgrid case is studied to choose the best droop coefficients via the optimization-based approach. After that, the proposed IAAI method is employed for the same microgrid case to quickly find good droop coefficients. Furthermore, the IAAI method is applied to a modular multilevel converter (MMC) case, extending the MMC operation region under unbalanced grid faults. In the MMC case, both simulation and experimental online tests validate the operation, feasibility, and practicality of IAAI.
URI: http://repository.futminna.edu.ng:8080/jspui/handle/123456789/17823
ISSN: Print ISSN: 0885-8993
Electronic ISSN: 1941-0107
Appears in Collections:Electrical/Electronic Engineering

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