Sliding mode controller optimization-based three-phase rectifier: review study

Numerous control strategies are used to optimize the performance of the three-phase rectifier. Sliding Mode Control (SMC) is chosen for its robustness, fast response, high-efficiency control, finite-time convergence, and other features. Several SMC methods utilized with three-phase rectifiers are ou...

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Main Authors: Mahmood, Omar Talal, Wan Hasan, Wan Zuha, Ismail, Luthffi Idzhar, Ramli, Hafiz Rashidi Harun
Format: Article
Language:English
Published: Institute of Electrical and Electronics Engineers (IEEE) 2024
Online Access:http://psasir.upm.edu.my/id/eprint/115524/
http://psasir.upm.edu.my/id/eprint/115524/1/115524.pdf
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author Mahmood, Omar Talal
Wan Hasan, Wan Zuha
Ismail, Luthffi Idzhar
Ramli, Hafiz Rashidi Harun
author_facet Mahmood, Omar Talal
Wan Hasan, Wan Zuha
Ismail, Luthffi Idzhar
Ramli, Hafiz Rashidi Harun
author_sort Mahmood, Omar Talal
building UPM Institutional Repository
collection Online Access
description Numerous control strategies are used to optimize the performance of the three-phase rectifier. Sliding Mode Control (SMC) is chosen for its robustness, fast response, high-efficiency control, finite-time convergence, and other features. Several SMC methods utilized with three-phase rectifiers are outlined in this review study. This study is divided into two main parts; the first part discusses the technique used to optimize the performance of the rectifier, while the second part discusses the SMC algorithms used to enhance the performance of the rectifier. In addition to their theoretical components, this review paper investigates the practical implementation challenges of SMCs for three-phase rectifiers. This paper discusses the optimization parameters of SMC and stability and load fluctuation in the rectifier system. It introduces state-of-the-art algorithms that enhance the rectifier’s dynamic performance, including the adaptive and observation algorithms. This paper is vital for engineers, researchers, and experts focusing on the SMC of three-phase rectifiers. To our knowledge, no similar review of three-phase rectifiers is available for SMC. Finally, a research gap is identified – as far as we know, no predefined time (free-will arbitrary time) SMC algorithm is used to control the performance of any power electronic device, such as a three-phase rectifier. This active rectifier is used in our project to optimize the power system for the alternator used in our unmanned ground vehicle (UGV) as an oil palm autonomous grabber.
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spelling upm-1155242025-03-06T07:41:31Z http://psasir.upm.edu.my/id/eprint/115524/ Sliding mode controller optimization-based three-phase rectifier: review study Mahmood, Omar Talal Wan Hasan, Wan Zuha Ismail, Luthffi Idzhar Ramli, Hafiz Rashidi Harun Numerous control strategies are used to optimize the performance of the three-phase rectifier. Sliding Mode Control (SMC) is chosen for its robustness, fast response, high-efficiency control, finite-time convergence, and other features. Several SMC methods utilized with three-phase rectifiers are outlined in this review study. This study is divided into two main parts; the first part discusses the technique used to optimize the performance of the rectifier, while the second part discusses the SMC algorithms used to enhance the performance of the rectifier. In addition to their theoretical components, this review paper investigates the practical implementation challenges of SMCs for three-phase rectifiers. This paper discusses the optimization parameters of SMC and stability and load fluctuation in the rectifier system. It introduces state-of-the-art algorithms that enhance the rectifier’s dynamic performance, including the adaptive and observation algorithms. This paper is vital for engineers, researchers, and experts focusing on the SMC of three-phase rectifiers. To our knowledge, no similar review of three-phase rectifiers is available for SMC. Finally, a research gap is identified – as far as we know, no predefined time (free-will arbitrary time) SMC algorithm is used to control the performance of any power electronic device, such as a three-phase rectifier. This active rectifier is used in our project to optimize the power system for the alternator used in our unmanned ground vehicle (UGV) as an oil palm autonomous grabber. Institute of Electrical and Electronics Engineers (IEEE) 2024 Article PeerReviewed text en http://psasir.upm.edu.my/id/eprint/115524/1/115524.pdf Mahmood, Omar Talal and Wan Hasan, Wan Zuha and Ismail, Luthffi Idzhar and Ramli, Hafiz Rashidi Harun (2024) Sliding mode controller optimization-based three-phase rectifier: review study. IEEE Access, 12. pp. 101457-101483. ISSN 2169-3536 https://ieeexplore.ieee.org/document/10586993/ 10.1109/access.2024.3423776
spellingShingle Mahmood, Omar Talal
Wan Hasan, Wan Zuha
Ismail, Luthffi Idzhar
Ramli, Hafiz Rashidi Harun
Sliding mode controller optimization-based three-phase rectifier: review study
title Sliding mode controller optimization-based three-phase rectifier: review study
title_full Sliding mode controller optimization-based three-phase rectifier: review study
title_fullStr Sliding mode controller optimization-based three-phase rectifier: review study
title_full_unstemmed Sliding mode controller optimization-based three-phase rectifier: review study
title_short Sliding mode controller optimization-based three-phase rectifier: review study
title_sort sliding mode controller optimization-based three-phase rectifier: review study
url http://psasir.upm.edu.my/id/eprint/115524/
http://psasir.upm.edu.my/id/eprint/115524/
http://psasir.upm.edu.my/id/eprint/115524/
http://psasir.upm.edu.my/id/eprint/115524/1/115524.pdf