Enhancing the Quality and Stability of Solar Photovoltaic (PV) Energy Integrated into Electrical Networks through an Advanced Active Filtering Technique

Authors

  • Ikhlef Malika
  • Akkari Nadia
  • Naceur Sonia

DOI:

https://doi.org/10.22399/ijcesen.4167

Keywords:

Active filter, Harmonic distortion, Photo-voltaic generator (PVG), Power quality, Active and reactive power, Distribution network

Abstract

This study proposes a dynamic filtering based framework aimed at improving the performance and reliability of power grid control systems. To achieve this, several distortion identification techniques are first examined to determine the most efficient method for real-time operation. The selected dynamic filter is subsequently incorporated into a photovoltaic generator (PVG) to support the delivery of high quality electrical energy and to optimize power flow supervision. The obtained results confirm that integrating renewable generation with intelligent energy management significantly enhances grid stability, control accuracy, and overall system efficiency.

References

[1] Y. Tang, S. Sun, B. Zhao, C. Ni, L. Che, and J. Li, “Distributed Photovoltaic Generation Aggregation Approach Considering Distribution Network Topology,” Energies, vol. 17, no. 12, article 2990, Jun. 2024.

[2] M. M. Abdusalam, “Structures and control strategies of parallel and hybrid active filters with experimental validations,” Ph.D. dissertation, Univ. Henri Poincaré – Nancy 1, Nancy, France, NNT: 2008NAN10016, 2008.

[3] D. K. Dash and P. K. Sadhu, “A Review on the Use of Active Power Filter for Grid-Connected Renewable Energy Conversion Systems,” Processes, vol. 11, no. 5, Art. no. 1467, May 2023.

[4] S. Srimatha, B. Mallala, and J. Upendar, “A Novel ANFIS-Controlled Customized UPQC Device for Power Quality Enhancement,” Journal of Electrical Systems and Information Technology, vol. 10, Art. no. 55, Nov. 2023.

[5] M. H. J. Bollen and I. Y. H. Gu, Signal Processing of Power Quality Disturbances, Wiley-IEEE Press, 1st ed., Aug. 2006.

[6] Y. Wang, J. Tang, J. Si, D. Tang, “Power quality enhancement in islanded microgrids via closed-loop adaptive virtual impedance control,” Protection and Control of Modern Power Systems, vol. 8, Art. no. 10, Mar. 2023.

[7] G. J. Wakileh, Power Systems Harmonics: Fundamentals, Analysis and Filter Design, Springer-Verlag Berlin Heidelberg, 2010.

[8] E.-H. Mayoral, M. Madrigal-Martínez, J. D. Mina-Antonio, R. Iracheta-Cortez, J. A. Enríquez-Santiago, O. Rodríguez-Rivera, G. Martínez-Reyes, and E. Mendoza-Santos, “A Comprehensive Review on Power-Quality Issues, Optimization Techniques, and Control Strategies of Microgrid Based on Renewable Energy Sources,” Sustainability, vol. 15, no. 12, art. no. 9847, 2023.

[9] A. S. Alhattab, A. N. Alsammak, and H. A. Mohammed, “A Review on D-STATCOM for Power Quality Enhancement,” Al-Rafidain Engineering Journal, vol. 28, no. 1, pp. 207-218, Mar. 2023.

[10] J. He, Y.W. Li, “An Enhanced Microgrid Load Demand Sharing Strategy,” IEEE Trans. Power Electron., 2011.

[11] R. Teodorescu, F. Blaabjerg, M. Liserre, Control of Power Inverters in Renewable Energy and Smart Grid Integration, Wiley, 2011.

[12] D. K. Dash and P. K. Sadhu, “A Review on the Use of Active Power Filter for Grid-Connected Renewable Energy Conversion Systems,” Processes, vol. 11, no. 5, Art. no. 1467, May 2023

[13] S. Bhattacharya, D.M. Divan, “Synchronous Frame Harmonic Isolator Using Active Series Filter,” Proc. PESC, 1993.

Downloads

Published

2025-10-24

How to Cite

Ikhlef Malika, Akkari Nadia, & Naceur Sonia. (2025). Enhancing the Quality and Stability of Solar Photovoltaic (PV) Energy Integrated into Electrical Networks through an Advanced Active Filtering Technique. International Journal of Computational and Experimental Science and Engineering, 11(4). https://doi.org/10.22399/ijcesen.4167

Issue

Section

Research Article