Irradiance sensorless PSO-based Integral Backstepping and Immersion & invariance algorithm for robust MPPT control with real-climatic microcontroller-in-the-loop experimental validation
Jian Chen
1
,
Ambe Harrison
2, 3
,
Njimboh Henry Alombah
4
,
Wulfran Fendzi Mbasso
3, 5
,
Reagan Jean Jacques Molu
5
,
Abdullah M. Alharbi
6
,
Pradeep Jangir
7, 8, 9, 10, 11
1
School of Intelligent Engineering of Fuzhou Polytechnic, Fuzhou 350108, China
|
7
10
Applied Science Research Center, Applied Science Private University, Amman, 11937, Jordan
|
Publication type: Journal Article
Publication date: 2025-04-01
scimago Q1
wos Q1
SJR: 1.053
CiteScore: 10.7
Impact factor: 4.9
ISSN: 00457906, 18790755
Abstract
This paper presents a novel irradiance sensorless Maximum Power Point Tracking (MPPT) controller for photovoltaic (PV) systems using a Particle Swarm Optimization (PSO)-based Integral Backstepping (IBSC) and Immersion & Invariance (I&I) algorithm. The proposed controller addresses the limitations of traditional and contemporary MPPT methods, such as the need for costly irradiance sensors and suboptimal performance under dynamic environmental conditions. The integration of a higher-order sliding mode differentiator (HOSMD) with the IBSC enhances transient response by completely eliminating overshoots, achieving a 0 % overshoot compared to 4.8 % with the conventional IBSC under standard test conditions. The system exhibits rapid tracking convergence with a significantly reduced tracking time of 0.4 ms, approximately seven times faster than the traditional Perturb and Observe (P&O) algorithm's 3 ms. Under real-world conditions, the proposed system's irradiance estimator maintains a mean absolute error below 15 W/m², with a maximum error of 69 W/m² at high irradiance levels. The system achieves an operating efficiency of 99.99 % with peak-to-peak power ripples of just 0.17 % under standard conditions, outperforming eight state-of-the-art MPPT techniques. This robust and efficient MPPT solution is validated through extensive simulations and real-climatic conditions. Additionally, real-climatic experimental implementations are carried out using Microcontroller-in-the-loop (MIL) integration. The acquired experimental results do not only corroborate the simulation outcomes but also endorses the reliability and practical robustness of the proposed MPPT controller
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Chen J. et al. Irradiance sensorless PSO-based Integral Backstepping and Immersion & invariance algorithm for robust MPPT control with real-climatic microcontroller-in-the-loop experimental validation // Computers and Electrical Engineering. 2025. Vol. 123. p. 110279.
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Chen J., Harrison A., Alombah N. H., Mbasso W. F., Molu R. J. J., Alharbi A. M., Jangir P. Irradiance sensorless PSO-based Integral Backstepping and Immersion & invariance algorithm for robust MPPT control with real-climatic microcontroller-in-the-loop experimental validation // Computers and Electrical Engineering. 2025. Vol. 123. p. 110279.
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TY - JOUR
DO - 10.1016/j.compeleceng.2025.110279
UR - https://linkinghub.elsevier.com/retrieve/pii/S0045790625002228
TI - Irradiance sensorless PSO-based Integral Backstepping and Immersion & invariance algorithm for robust MPPT control with real-climatic microcontroller-in-the-loop experimental validation
T2 - Computers and Electrical Engineering
AU - Chen, Jian
AU - Harrison, Ambe
AU - Alombah, Njimboh Henry
AU - Mbasso, Wulfran Fendzi
AU - Molu, Reagan Jean Jacques
AU - Alharbi, Abdullah M.
AU - Jangir, Pradeep
PY - 2025
DA - 2025/04/01
PB - Elsevier
SP - 110279
VL - 123
SN - 0045-7906
SN - 1879-0755
ER -
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@article{2025_Chen,
author = {Jian Chen and Ambe Harrison and Njimboh Henry Alombah and Wulfran Fendzi Mbasso and Reagan Jean Jacques Molu and Abdullah M. Alharbi and Pradeep Jangir},
title = {Irradiance sensorless PSO-based Integral Backstepping and Immersion & invariance algorithm for robust MPPT control with real-climatic microcontroller-in-the-loop experimental validation},
journal = {Computers and Electrical Engineering},
year = {2025},
volume = {123},
publisher = {Elsevier},
month = {apr},
url = {https://linkinghub.elsevier.com/retrieve/pii/S0045790625002228},
pages = {110279},
doi = {10.1016/j.compeleceng.2025.110279}
}
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