LAPSE:2023.27389
Published Article

LAPSE:2023.27389
Robust Decentralized Tracking Voltage Control for Islanded Microgrids by Invariant Ellipsoids
April 4, 2023
Abstract
This manuscript presents a robust tracking (servomechanism) controller for linear time-invariant (LTI) islanded (autonomous, isolated) microgrid voltage control. The studied microgrid (MG) consists of many distributed energy resources (DERs) units, each using a voltage-sourced converter (VSC) for the interface. The optimal tracker design uses the ellipsoidal approximation to the invariant sets. The MG system is decomposed into different subsystems (DERs). Each subsystem is affected by the rest of the system that is considered as a disturbance to be rejected by the controller. The proposed tracker (state feedback integral control) rejects bounded external disturbances by minimizing the invariant ellipsoids of the MG dynamics. A condition to design decentralized controllers is derived in the form of linear matrix inequalities. The proposed controller is characterized by rapid transient response, and zero error in the steady state. A robustness analysis of the control strategy (against load changes, load unbalances, etc.) is carried out. A MATLAB/SimPowerSystems (R2017b, MathWorks, Natick, MA, USA) simulation of the case study confirm the robustness of the proposed controller.
This manuscript presents a robust tracking (servomechanism) controller for linear time-invariant (LTI) islanded (autonomous, isolated) microgrid voltage control. The studied microgrid (MG) consists of many distributed energy resources (DERs) units, each using a voltage-sourced converter (VSC) for the interface. The optimal tracker design uses the ellipsoidal approximation to the invariant sets. The MG system is decomposed into different subsystems (DERs). Each subsystem is affected by the rest of the system that is considered as a disturbance to be rejected by the controller. The proposed tracker (state feedback integral control) rejects bounded external disturbances by minimizing the invariant ellipsoids of the MG dynamics. A condition to design decentralized controllers is derived in the form of linear matrix inequalities. The proposed controller is characterized by rapid transient response, and zero error in the steady state. A robustness analysis of the control strategy (against load changes, load unbalances, etc.) is carried out. A MATLAB/SimPowerSystems (R2017b, MathWorks, Natick, MA, USA) simulation of the case study confirm the robustness of the proposed controller.
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Keywords
decentralized control, invariant set, islanded mode, microgrid, robust tracking
Subject
Suggested Citation
Soliman HM, Bayoumi E, Al-Hinai A, Soliman M. Robust Decentralized Tracking Voltage Control for Islanded Microgrids by Invariant Ellipsoids. (2023). LAPSE:2023.27389
Author Affiliations
Soliman HM: Department of Electrical and Computer Engineering, Sultan Qaboos University, Muscat 123, Oman
Bayoumi E: Department of Electrical and Electronics Engineering, University of Eswatini, Private Bag 4, Kwaluseni M201, Swaziland
Al-Hinai A: Department of Electrical and Computer Engineering, Sultan Qaboos University, Muscat 123, Oman [ORCID]
Soliman M: Department of Computer Engineering, Cairo University, Cairo 12613, Egypt
Bayoumi E: Department of Electrical and Electronics Engineering, University of Eswatini, Private Bag 4, Kwaluseni M201, Swaziland
Al-Hinai A: Department of Electrical and Computer Engineering, Sultan Qaboos University, Muscat 123, Oman [ORCID]
Soliman M: Department of Computer Engineering, Cairo University, Cairo 12613, Egypt
Journal Name
Energies
Volume
13
Issue
21
Article Number
E5756
Year
2020
Publication Date
2020-11-03
ISSN
1996-1073
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Original Submission
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PII: en13215756, Publication Type: Journal Article
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https://doi.org/10.3390/en13215756
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