Evaluation of Maximum Power Point Tracking of Photovoltaic Generator

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Amal Zouhri
Amal Zouhri
σ
Ismail Boumhidi
Ismail Boumhidi
α Sidi Mohamed Ben Abdellah University Sidi Mohamed Ben Abdellah University

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Evaluation of Maximum Power Point Tracking of Photovoltaic Generator

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Abstract

This paper presents the Maximum Power Point Tracking (MPPT) Modelling and control of Photovoltaic Generator (PVG). The model contains a detailed representation of the main components of the system that are the solar array, boost converter, and the grid side inverter. The system adopted by a digital MPPT control “disturbance and observation”. This system includes a photovoltaic generator (PVG), boost converter, MPPT “disturbance, and observation” command as well as a load. For optimum system operation, the maximum power operation of the PV array must be ensured regardless of the climatic conditions, especially the solar irradiation and the temperature of the PV module. Power control, as well as modeling and simulation, were perform.

References

18 Cites in Article
  1. (2009). Design of High-Energy-Efficiency Power Converters for PV MPPT Applications.
  2. Trishan Esram,Patrick Chapman (2007). Comparison of Photovoltaic Array Maximum Power Point Tracking Techniques.
  3. T Esram,P Chapman (2007). Comparison of photovoltaic array maximum power point tracking techniques.
  4. Y Wei,G Mingzhi,R Zheng,C Min,Q Zhaoming (2009). Improvement of performance and flexibility for photovoltaic module using individual DC/DC converter.
  5. S Poshtkouhi,O Trescases (2011). Multi-input singleinductor dcdc converter for MPPT in parallel-connected photovoltaic applications.
  6. Young-Hyok Ji,Doo-Yong Jung,Chung-Yuen Won,Byoung-Kuk Lee,Jin-Wook Kim (2011). Maximum power point tracking method for PV array under partially shaded condition.
  7. Giovanni Petrone,Giovanni Spagnuolo,Massimo Vitelli (2011). A Multivariable Perturb-and-Observe Maximum Power Point Tracking Technique Applied to a Single-Stage Photovoltaic Inverter.
  8. G Carannante,C Fraddanno,M Pagano,L Piegari (2009). Experimental Performance of MPPT Algorithm for Photovoltaic Sources Subject to Inhomogeneous Insolation.
  9. R Pilawa-Podgurski,D Perreault (2013). Submodule integrated distributed maximum power point tracking for solar photovoltaic applications.
  10. D Sera,T Kerekes,R Teodorescu,F Blaabjerg (2006). Improved MPPT method for rapidly changing environmental conditions.
  11. M Villoz,A Labouret (2005). energie solaire photovoltaique '2éme édition.
  12. Roberto Coelho,Filipe Concer,Denizar Martins (2009). A proposed photovoltaic module and array mathematical modeling destined to simulation.
  13. Amal Zouhri,Ismail Boumhidi (2017). Decentralized H∞ Control of Interconnected Systems with Time-varying Delays.
  14. Amal Zouhri,Ismail Boumhidi (2016). Decentralized Robust H∞ Control of Large Scale Systems with Polytopic-Type Uncertainty.
  15. Amal Zouhri,Ismail Boumhidi (2017). Decentralized H∞ Control of Interconnected Systems with Time-varying Delays.
  16. Amal Zouhri,Ismail Boumhidi (2016). Decentralized Robust H∞ Control of Large Scale Systems with Polytopic-Type Uncertainty.
  17. Amal Zouhri,Ismail Boumhidi (2014). Finite Frequency H-/H∞ Stability of Singularly Perturbed Systems.
  18. H Tsai (2010). Insolation-oriented model of photovoltaic module using Matlab/Simulink.

Funding

No external funding was declared for this work.

Conflict of Interest

The authors declare no conflict of interest.

Ethical Approval

No ethics committee approval was required for this article type.

Data Availability

Not applicable for this article.

How to Cite This Article

Amal Zouhri. 2020. \u201cEvaluation of Maximum Power Point Tracking of Photovoltaic Generator\u201d. Global Journal of Research in Engineering - F: Electrical & Electronic GJRE-F Volume 20 (GJRE Volume 20 Issue F3): .

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Journal Specifications

Crossref Journal DOI 10.17406/gjre

Print ISSN 0975-5861

e-ISSN 2249-4596

Keywords
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GJRE-F Classification: FOR Code: 090699
Version of record

v1.2

Issue date

August 28, 2020

Language
en
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This paper presents the Maximum Power Point Tracking (MPPT) Modelling and control of Photovoltaic Generator (PVG). The model contains a detailed representation of the main components of the system that are the solar array, boost converter, and the grid side inverter. The system adopted by a digital MPPT control “disturbance and observation”. This system includes a photovoltaic generator (PVG), boost converter, MPPT “disturbance, and observation” command as well as a load. For optimum system operation, the maximum power operation of the PV array must be ensured regardless of the climatic conditions, especially the solar irradiation and the temperature of the PV module. Power control, as well as modeling and simulation, were perform.

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Evaluation of Maximum Power Point Tracking of Photovoltaic Generator

Amal Zouhri
Amal Zouhri Sidi Mohamed Ben Abdellah University
Ismail Boumhidi
Ismail Boumhidi

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