Analysis of Grid Connected PV System Using Luo Converter With MPPT for Fast Dynamic Response using Artificial Bee Colony Algorithm

K. Durgadevi*, R. Karthik**, N. Sujith***
*-*** Department of Electrical and Electronics Engineering, SRM Valliammai Engineering College, Chennai, Tamilnadu, India.
Periodicity:May - July'2019
DOI : https://doi.org/10.26634/jps.7.2.16727

Abstract

The main aim of this paper is to obtain maximum power from the solar panel by introducing a fuzzy logic controller with Luo converter and implementing the same with Artificial Bee Colony (ABC) algorithm for tuning the controller. Two solar modules are proposed in series namely, uniform solar illumination and partial shading model. Luo converter modifies the results of solar panels, which is captured from a digital signal processor with the criteria such as load impedance and the characteristics of the solar panel. This study incorporates a power supply with the ultimate short circuit current of 5 A and largest open circuit voltage of 60 V. The given load is varied repeatedly in order to visualize the VI curve and check the viability of the power source. The efficiency of the Photovoltaic (PV) system is improved with the help of Maximum Power Point Tracking (MPPT). A comparative study on fuzzy logic based MPPT algorithm and ABC algorithm for solar system is conducted and the performance characteristics of these two methods are simulated and analyzed in MATLAB / Simulink. The ABC based control technique gives advantage of low settling time, high percentage overshoot and high gain for different values of load.

Keywords

Maximum Power Point Tracking, Fuzzy Logic, Artificial Bee Colony Algorithm, Luo Converter.

How to Cite this Article?

Durgadevi, K., Karthik, R., and Sujith, N. (2019). Analysis of Grid Connected PV System Using Luo Converter With MPPT for Fast Dynamic Response using Artificial Bee Colony Algorithm. i-manager’s Journal on Power Systems Engineering, 7(2), 11-17. https://doi.org/10.26634/jps.7.2.16727

References

[1]. Abu-Mouti, F. S., & El-Hawary, M. E. (2011). Optimal distributed generation allocation and sizing in distribution systems via artificial bee colony algorithm. IEEE Transactions on Power Delivery, 26(4), 2090-2101. https://doi.org/10.1109/TPWRD.2011.2158246
[2]. Adzic, E., Ivanovic, Z., Adzic, M., & Katic, V. (2009). Maximum power search in wind turbine based on fuzzy logic control. Acta Polytechnica Hungarica, 6(1), 131- 149.
[3]. Bhende, C. N., Mishra, S., & Malla, S. G. (2011). Permanent magnet synchronous generator-based standalone wind energy supply system. IEEE Transactions on Sustainable Energy, 2(4), 361-373. https://doi.org/ 10.1109/TSTE.2011.2159253
[4]. Cheng, C. A., Cheng, H. L., & Chung, T. Y. (2014). A novel single-stage high-power-factor LED street-lighting driver with coupled inductors. IEEE Transactions on Industry Applications, 50(5), 3037-3045. https://doi.org/10.1109/ TIA.2014.2304585
[5]. Esram, T., & Chapman, P. L. (2007). Comparison of photovoltaic array maximum power point tracking techniques. IEEE Transactions on Energy Conversion, 22(2), 439-449. https://doi.org/10.1109/TEC.2006.874230
[6]. Griffin, T., Tomsovic, K., Secrest, D., & Law, A. (2000, January). Placement of dispersed generation systems for reduced losses. In Proceedings of the 33rd Annual Hawaii International Conference on System Sciences (pp. 1-9). IEEE. https://doi.org/10.1109/HICSS.2000.926773
[7]. He, G., Xu, D., & Chen, M. (2014). A novel control strategy of suppressing DC current injection to the grid for single-phase PV inverter. IEEE Transactions on Power Electronics, 30(3), 1266-1274. https://doi.org/10.1109/ TPEL.2014.2317288
[8]. Hrisheekesha, P. N., & Sharma, J. (2010). AI applications to distribution system with distributed generation. International Journal of Computer Applications, 1(14), 38-42.
[9]. Jain, C., & Singh, B. (2015). Single-phase single-stage multifunctional grid interfaced solar photo-voltaic system under abnormal grid conditions. IET Generation, Transmission & Distribution, 9(10), 886-894. https://doi.org/ 10.1049/iet-gtd.2014.0533
[10]. Karaboga, D., & Akay, B. (2011). A modified artificial bee colony (ABC) algorithm for constrained optimization problems. Applied Soft Computing, 11(3), 3021-3031. https://doi.org/10.1109/HICSS.2000.926773
[11]. Knopf. H. (1999). Analysis,simulation and evaluation of Maximum Power Point Tracking (MPPT) methods for a solar powered vehicle. (Doctrate disseration). Portland State University, Portland, Oregon.
[12]. Kumar, A. P., Parimi, A. M., & Rao, K. U. (2014, May). Performance analysis of a two-diode model of PV cell for PV based generation in MATLAB. In 2014 IEEE International Conference on Advanced Communications, Control and Computing Technologies (pp. 68-72). IEEE. https://doi.org/10.1109/ICACCCT.2014.7019191
[13]. Lai, C. M., & Shyu, K. K. (2007). A single-stage AC/DC converter based on zero voltage switching LLC resonant topology. IET Electric Power Applications, 1(5), 743-752. https://doi.org/10.1049/iet-epa:20060322
[14]. Li, Y. C., & Chen, C. L. (2012). A novel primary-side regulation scheme for single-stage high-power-factor AC–DC LED driving circuit. IEEE Transactions on Industrial Electronics, 60(11), 4978-4986. https://doi.org/10.1109/ TIE.2012.2224080
[15]. Luo, F. L. (1999). Positive output Luo converters: voltage lift technique. IEEE Proceedings-Electric Power Applications, 146(4), 415-432. https://doi.org/10.1049/ipepa: 19990291
[16]. Luo, F. L. (2000). Double-output Luo converters, an advanced voltage-lift technique. IEE Proceedings- Electric Power Applications, 147(6), 469-485. https://doi. org/10.1049/ip-epa:20000622
[17]. Miao, D. M., & Shen, J. X. (2013, May). Comparative study on permanent magnet synchronous generator systems with various power conversion topologies. In 4th International Conference on Power Engineering, Energy and Electrical Drives (pp. 1738-1743). IEEE. https://doi.org/10.1109/PowerEng.2013.6635880
[18]. Mistry, K., & Roy, R. (2012, December). CRPSO based optimal placement of multi-distributed generation in radial distribution system. In 2012 IEEE International Conference on Power and Energy (PECon) (pp. 852-857). IEEE. https://doi.org/10.1109/PECon.2012.6450337
[19]. Natsheh, E. M., Albarbar, A., & Yazdani, J. (2011, December). Modeling and control for smart grid integration of solar/wind energy conversion system. In 2011 2nd IEEE PES International Conference and Exhibition on Innovative Smart Grid Technologies (pp. 1-8). IEEE. https://doi.org/10.1109/ISGTEurope.2011.6162643
[20]. Nguyen, T. L., & Low, K. S. (2010). A global maximum power point tracking scheme employing DIRECT search algorithm for photovoltaic systems. IEEE Transactions on Industrial Electronics, 57(10), 3456-3467. https://doi.org/ 10.1109/TIE.2009.2039450
[21]. Omijeh, B. O., Nmom, C. S., & Nlewem, E. (2013). Modeling of a vertical axis wind turbine with permanent magnet synchronous generator for Nigeria. International Journal of Engineering and Technology, 3(2), 212-220.
[22]. Ustun, T. S., & Mekhilef, S. (2010). Effects of a static synchronous series compensator (SSSC) based on a soft switching 48-pulse PWM inverter on the power demand from the grid. Journal of Power Electronics, 10(1), 85-90.
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