Research ArticleOpen AccessGoogle Scholar indexed
Modeling the Chain of Conversion for a PV System
Laboratory of Systems and Telecommunications Engineering Decision, Sciences Faculty, Ibn tofail University, Kenitra, Morocco
Laboratory of Systems and Telecommunications Engineering Decision, Sciences Faculty, Ibn tofail University, Kenitra, Morocco
Electrical Engineering Department, High School of Technology, Moulay Ismail University, Meknes, Morocco
- 1 Laboratory of Systems and Telecommunications Engineering Decision, Sciences Faculty, Ibn tofail University, Kenitra, Morocco
- 2 Laboratory of Systems and Telecommunications Engineering Decision, Sciences Faculty, Ibn tofail University, Kenitra, Morocco
- 3 Electrical Engineering Department, High School of Technology, Moulay Ismail University, Meknes, Morocco
Smart Grid and Renewable Energy·Volume 05 (2014)·Pages 239–248·Published 13 October 2014·DOI10.4236/sgre.2014.510022
Copy link · social · email
Abstract
In this work, we conduct a study of modeling and simulation of a system in the context of renewable energy in general, and solar system “photovoltaic” in particular; also, the optimizing system adapted by DC-DC converters static. Then the influence of temperature and irradiance on the optimal parameters (Power of MPP, VMPP, ...) of a solar system is analyzed in a way to operate a PV generator at its maximum power. This system includes a photovoltaic generator, “Boost & Buck”, converter and a load. Modeling and simulation system (solar panel, DC-DC converter command and load) is obtained through Matlab-Simulink software.
KeywordsPhotovoltaic PanelDC-DC ConverterThe Maximum Power PointFill Factor
- El Alami, M., Habibi, M. and Bri, S. (2013) Parameters Efficiency of Solar Energy. International Journal of Emerging Trends in Engineering and Development—IJETED, 4, 175-186.
- Villalva, M.G., Gazoli, J.R. and Filho, E.R. (2009) Comprehensive Approach to Modeling and Simulation of Photovoltaic Arrays. IEEE Transactions on Power Electronics, 24, 1198-1208.
- Hoque, A.K. and Wahid, A. (2000) New Mathematical Model of a Photovoltaic Generator. Journal of Electrical Engineering, EE 28, 8p.
- El Alami, M., Habibi, M. and Bri, S. (2014) Modelling of Solar System by Newton Raphson Method, MPPT Algorithm. European Journal of Scientific Research, EJSR, 120, 264-276.
- Yu, G.J., Jung, Y.S., Choi, J.Y., Choy, I., Song, J.H. and Kim, G.S. (2002) A Novel Two-Mode MPPT Control Algorithm Based on Comparative Study of Existing Algorithms. Conference Record of the Twenty-Ninth IEEE Photovoltaic Specialists Conference, 19-24 May 2002, 1531-1534.
- Zhou, C., Ridley, R.B. and Lee, F.C. (1990) Design and Analysis of Hysteretic Boost Power Factor Circuit. Annual IEEE Power Electronics Specialists Conference, San Antonio, 800-801. //dx.doi.org/10.1109/PESC.1990.131271
- Prasad, A.R., Ziogas, P.D. and Manias, S. (1992) A New Active Power Factor Correction Method for Single-Phase Buck-Boost AC-DC Converter. Conference Proceedings of Seventh Annual Applied Power Electronics Conference and Exposition, Boston, 23-27 February 1992, 814-820.
- Hohm, D.P. and Ropp, M.E. (2003) Comparative Study of Maximum Power Point Tracking Algorithms. Progress in Photovoltaics: Research and Applications, 11, 47-62. //dx.doi.org/10.1002/pip.459
- Jain, S. and Agarwal, V. (2007) Comparison of the Performance of Maximum Power Point Tracking Schemes Applied to Single-Stage Grid-Connected Photovoltaic Systems. IET Electric Power Applications, 1, 753-762. //dx.doi.org/10.1049/iet-epa:20060475
- Nielson, G.N., Okandan, M., Resnick, P., Cruz-Campa, J.L., Pluym, T., Clews, P.J., Steenbergen, E. and Gupta, V.P. (2009) Microscale C-Si (C)PV Cells for Low-Cost Power. 34th IEEE Photovoltaic Specialists Conference (PVSC), Philadelphia, 7-12 June 2009, 1816-1821.
- Femia, N., Pétrone, G., Spagnuolo, G. and Vitelli, M. (2005) Optimization of Perturb and Observe Maximum Power Point Tracking Method. IEEE Transactions on Power Electronics, 20, 963-973.