Enhanced MPPT-Based Fractional-Order PID for PV Systems Using Aquila Optimizer

Author:

Tadj Mohammed1,Chaib Lakhdar1,Choucha Abdelghani1,Aldaoudeyeh Al-Motasem2,Fathy Ahmed34ORCID,Rezk Hegazy5ORCID,Louzazni Mohamed6ORCID,El-Fergany Attia4ORCID

Affiliation:

1. Energy and Materials Laboratory, University of Tamanghasset, Tamanghasset 11001, Algeria

2. Department of Electrical Power & Mechatronics Engineering, Tafilah Technical University, Tafilah 66110, Jordan

3. Department of Electrical Engineering, Jouf University, Sakaka 72388, Saudi Arabia

4. Electrical Power and Machines Engineering Department, Zagazig University, Zagazig 44519, Egypt

5. Department of Electrical Engineering, College of Engineering in Wadi Alddawasir, Prince Sattam bin Abdulaziz University, Al-Kharj 11942, Saudi Arabia

6. Science Engineer Laboratory for Energy, National School of Applied Sciences, Chouaib Doukkali University of El Jadida, El Jadida P.O. Box 20, Morocco

Abstract

This paper proposes a controller to track the maximum power point (MPP) of a photovoltaic (PV) system using a fractional-order proportional integral derivative (FOPID) controller. The employed MPPT is operated based on a dp/dv feedback approach. The designed FOPID-MPPT method includes a differentiator of order (μ) and integrator of order (λ), meaning it is an extension of the conventional PID controller. FOPID has more flexibility and achieves dynamical tuning, which leads to an efficient control system. The contribution of our paper lies is optimizing FOPID-MPPT parameters using Aquila optimizer (AO). The obtained results with the proposed AO-based FOPID-MPPT are contrasted with those acquired with moth flame optimizer (MFO). The performance of our FOPID-MPPT controller with the conventional technique perturb and observe (P&O) and the classical PID controller is analyzed. In addition, a robustness test is used to assess the performance of the FOPID-MPPT controller under load variations, providing valuable insights into its practical applicability and robustness. The simulation results clearly prove the superiority and high performance of the proposed control system to track the MPP of PV systems.

Funder

Prince Sattam bin Abdulaziz University

Publisher

MDPI AG

Subject

Applied Mathematics,Computational Mathematics,General Engineering

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