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Hybrid Wind-Solar and Battery Power System for Fluctuation Free Output

Veeresh S. Gonal, G. S. Sheshadri

Abstract


This manuscript presents the hybrid renewable energy system using wind-solar and DC-DC CUK converter and three phase dc to ac converter with LC filter. The wind and solar are environment friendly and abundantly available energy sources in India. The solar and wind are intermittently available renewable energy resources, resulting into the generation of fluctuating output from the hybrid system, which will damage the electrical appliances designed to operate on the stable system. The modelling of the cuk dc-dc converter, three phase dc-ac converter and inductor-capacitor filters simulation is done using Matlab. The different blocks of the hybrid systems like wind and solar model, cuk converter and inductor-capacitor filters are built separately before interconnecting them to form the complete DC hybrid system with main grid. The inputs for the simulation are: varying wind speed and changing irradiance. The simulation results show that the hybrid systems possess high reliability as compared to stand alone system. The addition of cuk converter, three phase dc-ac converter and inductor-capacitor filter to the hybrid system greatly reduces the fluctuation in the output.

Keywords: Battery, wind energy, photo voltaic cells, converters, hybrid power system

Cite this Article

Gonal Veeresh S, Sheshadri GS. Hybrid Wind-Solar and Battery Power System for Fluctuation Free Output. Journal of Alternate Energy Sources and Technologies. 2018; 9(3): 27–39p.


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References


Bala BK, Siddique SA. Optimal design of a PV–diesel hybrid system for electrification of an isolated island – Sandwip in Bangladesh using genetic algorithm. Energy for Sustainable Development 2009; 13(3):137–42.

Koutroulis E, Kolokotsa D, Potirakis A, Kalaitzakis K. Methodology for optimal sizing of stand-alone photovoltaic/wind- generator systems using genetic algorithms. Solar Energy 2006; 80(9):1072–88.

Yang H, Zhou W, Lou C. Optimal design and techno-economic analysis of a hybrid solar wind power generation system. Applied Energy 2009; 86(2):163–9.

Lopez RD, Agustin JLB. Design and control strategies of PV– diesel systems using genetic algorithms. Solar Energy 2005; 79(1):33–46.

Daud Abdel-Karim, Ismail M., Kukhun Walid and Mahmud Marwan M., Simulation of a Hybrid Power System Consisting of Wind Turbine, PV, Storage Battery and Diesel Generator: Design Optimization and Economical Evaluation, International Journal of Energy Engineering.

Khan M. J., Iqbal M. T., Analysis of a small wind-hydrogen stand- alone hybrid energy system, Applied Energy 2009;86(11):2429- 2442.

Lagorse Jeremy, Simoes Marcelo G., Miraoui Abdellatif, Costerg Philippe, Energy cost analysis of a solar-hydrogen hybrid energy system for stand-alone applications, International Journal of Hydrogen Energy 2008;33(12):2871-2879.

G. C. Seeling-Hochmuth, A combined optimization concept for the design and operation strategy of hybrid-PV energy systems, Solar Energy, Volume 61, Issue 2, August 1997, Pages 77-87.

Kornelakis A. Multi-objective particle swarm optimization for the optimal design of photovoltaic grid-connected systems. Solar Energy 2010; 84(12):2022–33.

M. K. Deshmukh, S. S. Deshmukh, Modeling of hybrid renewable energy systems, Renewable and Sustainable Energy Reviews, Volume 12, Issue 1, January 2008, Pages 235-249.

M. K. Deshmukh, S. S. Deshmukh, Modeling of hybrid renewable energy systems, Renewable and Sustainable Energy Reviews, Volume 12, Issue 1, January 2008, Pages 235-249.

Straatman PJT, van Sark WGJHM. A new hybrid ocean thermal energy conversion offshore solar pond (OTEC-OSP) design: a cost optimization approach. Solar Energy 2008; 82(6):520–7.

Koutroulis E, Kolokotsa D, Potirakis A, Kalaitzakis K. Methodology for optimal sizing of stand-alone photovoltaic/wind- generator systems using genetic algorithms. Solar Energy 2006; 80(9):1072–88.

James D. Maclay, Jacob Brouwer, G. Scott Samuelsen, Dynamic modeling of hybrid energy storage systems coupled to photovoltaic generation in residential applications, Journal of Power Sources, Volume 163, Issue 2, 1 January 2007, Pages 916-925.

Rehman S, El-Amin IM, Ahmad F, Shaahid SM, Al-Shehri AM, Bakhashwain JM, et al. Feasibility study of hybrid retrofits to an isolated off-grid diesel power plant. Renewable and Sustainable Energy Reviews 2007; 11(4):635–53.

P. Kruangpradit, W. Tayati, Hybrid renewable energy system development in Thailand, Renewable Energy, Volume 8, Issues 1- 4, May-August 1996, Pages 514-517.

Iqbal M. T., Modeling and control of a wind fuel cell hybrid energy system, Renewable Energy 2003; 28(2):223-237.

Jose L. Bernal-Agustin, Rodolfo Dufo-Lopez, Simulation and optimization of standalone hybrid renewable energy systems, Renewable and Sustainable Energy Reviews 2009; 13(8):2111- 2118.

Gonal VS, Sheshadri GS, Hybrid wind PV energy system for Rural Electrification, First International Conferences on NEX Gen technologies, 2018 pages 769-775.

Gonal VS, Sheshadri GS, Optimally Sized Hybrid Wind Solar Energy System for Village Electrification in Indian Context,2018 IJRT, Volume 6, Issue1,ISSN:2320-2882.

Gonal VS, Sheshadri GS, Solar Energy Optimisation using MPPT controller by maximum conductance method. 2016, IEEE 7th Power India International Conference, PIICON 2016. DOI: 10.1109/POWERI.2016.8077445.




DOI: https://doi.org/10.37591/joaest.v9i3.1272

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