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15-06-2023 | Research Article-Electrical Engineering

Dynamic and Adaptive Maximum Power Point Tracking Using Sequential Monte Carlo Algorithm for Photovoltaic System

Authors: Alhaj-Saleh Odat, Omar Alzoubi, Bashar Shboul, Jia Li

Published in: Arabian Journal for Science and Engineering | Issue 11/2023

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Abstract

The article introduces a dynamic and adaptive maximum power point tracking (MPPT) technique for photovoltaic systems using the sequential Monte Carlo algorithm. Traditional MPPT methods struggle with varying environmental conditions, leading to inefficiencies and power oscillations. The proposed method, based on Bayesian computation, predicts the most likely location of the maximum power point on a PV curve with high accuracy and fast response time. The methodology includes a comprehensive description of the PV system, the mathematical model of the SMC algorithm, and a detailed Simulink model for simulation. Simulation results demonstrate that the MPPT-SMC technique outperforms classical methods like Perturb and Observe (P&O) and other AI techniques such as Particle Swarm Optimization (PSO) and Flower Pollination Algorithm (FPA) under various weather conditions, including dynamic partial shading. The proposed technique shows exceptional performance with high efficiency, fast tracking speed, and no power oscillations, making it a significant advancement in the field of photovoltaic energy harvesting.

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Metadata
Title
Dynamic and Adaptive Maximum Power Point Tracking Using Sequential Monte Carlo Algorithm for Photovoltaic System
Authors
Alhaj-Saleh Odat
Omar Alzoubi
Bashar Shboul
Jia Li
Publication date
15-06-2023
Publisher
Springer Berlin Heidelberg
Published in
Arabian Journal for Science and Engineering / Issue 11/2023
Print ISSN: 2193-567X
Electronic ISSN: 2191-4281
DOI
https://doi.org/10.1007/s13369-023-08023-0

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