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Enhanced FPGA-Based Controller for Three Phase Shunt Active Power Filter Cover

Enhanced FPGA-Based Controller for Three Phase Shunt Active Power Filter

Open Access
|Apr 2023

Abstract

In this paper, a three-phase shunt active power filter (SAPF) controller with a fully digital implementation is presented. The main goal of this contribution is to implement a digital direct power control (DDPC) algorithm without phase-locked-loop (PLL) for SAPF. This algorithm is intended for power quality improvement and current harmonic elimination. The controller introduced in this paper is cost-effective, has a fast-dynamic response, and has a simple hardware implementation. In order to comply with the above specifications, a dedicated controller has been conceived and fully implemented within a field-programmable gate array (FPGA) device. This FPGA-based controller integrates the whole signal-processing functions needed to drive the SAPF, as well as an original method for sector identification. The intended controller provides the desired power references to select the optimal switching sequences. The switching orders follow the grid reference to drive the voltage source inverter (VSI), so the SAPF achieves good performances while ensuring balanced overall supply currents, unity power factor, and reduced harmonic load currents. The proposed digital implementation achieves a valuable compromise between fast dynamic response, minimum execution time, and reduced FPGA resources, through a simple hardware design implementation. The entire system is developed and simulated using VHDL and VHDL-AMS languages.

DOI: https://doi.org/10.2478/pead-2023-0010 | Journal eISSN: 2543-4292 | Journal ISSN: 2451-0262
Language: English
Page range: 128 - 141
Submitted on: Mar 3, 2023
Accepted on: Mar 30, 2023
Published on: Apr 21, 2023
Published by: Wroclaw University of Science and Technology
In partnership with: Paradigm Publishing Services
Publication frequency: 1 issue per year

© 2023 Abdelouahab Djoubair Benhamadouche, Abdeslem Sahli, Haddi Bakhti, Adel Ballouti, Mahmoud Drif, published by Wroclaw University of Science and Technology
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 License.