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Simulation of a Solar-Wind Hybrid Energy System Connected To a Battery and Compensation of Faulty Grids
Subject area: Science,Engineering and Technology · Area of research: Electrical Engineering
Abstract
Renewable energy sources, including solar, wind, biomass, hydro power, geothermal, and ocean resources, have emerged as a clean energy option. However, solar and wind power production is still lower than that of fossil fuels, although the use of PV cells and wind turbines for electricity generation has increased significantly in recent years. This article describes the Solar-Wind hybrid Power system, which utilizes the renewable energies from the sun and wind to produce electricity. The system is controlled primarily by a microcontroller, which optimizes resource utilization and improves efficiency compared to individual generation modes. It also enhances reliability and reduces dependence on a single source. This hybrid solar-wind power generating system is appropriate for both industrial and domestic energy sources.
Keywords
Solar energy, Wind energy, Renewable energy, PV cell, Hybrid power system
References
[1] Ceran B. The concept of use of PV/WT/FC hybrid power generation system for smoothing the energy profile of the consumer. Energy 2019;167:853–65.
[2] Devrim Y, Bilir L. Performance investigation of a wind turbine–solar photovoltaic panels–fuel cell hybrid system installed at İncek region – Ankara, Turkey. Energy Convers Manage 2016;126:759– 66.
[3] Budak Y, Devrim Y. Comparative study of PV/PEM fuel cell hybrid energy system based on methanol and water electrolysis. Energy Convers Manage 2019;(179):46–57.
[4] Li YF, Zio E. A multi-state model for the reliability assessment of a distributed generation system via universal generating function. Reliab Eng Syst Saf 2012;(106):28–36.
[5] Spinato F, Tavner PJ, van Bussel GJW, Koutoulakos
[6] E. Reliability of wind turbine subassemblies. IET Renew Power Gener 2009;3:387–401.
[7] Guo H, Watson S, Tavner P, Xiang J. Reliability analysis for wind turbines with incomplete failure data collected from after the date of initial installation. Reliab Eng Syst Saf 2009;94:1057– 63.
[8] Scheu MN, Kolios A, Fischer T, Brennan F. Influence of statistical uncertainty of component reliability estimations on offshore wind farm availability. Reliab Eng Syst Saf 2017;168:28– 39.
[9] Barros JJC, Coira ML, López, de la Cruz MP, del Caño Gochi A. Probabilistic life-cycle cost analysis for renewable and non-renewable power plants. Energy 2016;(112):774–87.
[10] Faza A. A probabilistic model for estimating the effects of photovoltaic sources on the power systems reliability. Reliab Eng Syst Saf 2018;(171):67–77.
[11] Hasan KN, Preece R, Milanović JV. Existing approaches and trends in uncertainty modelling and probabilistic stability analysis of power systems with renewable generation. Renew Sustain Energy Rev 2019;(101):168–80.
[12] Kan C, Devrim Y, Eryilmaz S. On the theoretical distribution of the wind farm power when there is a correlation between wind speed and wind turbine availability. Reliab Eng Syst Saf 2020;(203):107115.
[13] Adedipe T, Shafiee M, Zio E. Bayesian network modelling for the wind energy industry: An overview. Reliab Eng Syst Saf 2020;(202). Article 107053.
[14] Acuña LG, Padilla RV, Mercado AS. Measuring reliability of hybrid photovoltaicwind energy systems: A new indicator. Renew Energy 2017;(106):68–77.
[15] Kamal Anoune K, Bouya M, Astito A, Abdellah AB. Sizing methods and optimization techniques for PV- wind based hybrid renewable energy system: A review. Renew Sustain Energy Rev 2018;93:652–73.
How to cite this paper
@article{1704397,
author = {Rishabh Mishra, Bhoopendra Singh},
title = {Simulation of a Solar-Wind Hybrid Energy System Connected To a Battery and Compensation of Faulty Grids},
journal = {Iconic Research And Engineering Journals},
year = {2023},
volume = {6},
number = {11},
pages = {46-51},
issn = {2456-8880},
url = {https://www.irejournals.com/formatedpaper/1704397.pdf},
abstract = {Renewable energy sources, including solar, wind, biomass, hydro power, geothermal, and ocean resources, have emerged as a clean energy option. However, solar and wind power production is still lower than that of fossil fuels, although the use of PV cells and wind turbines for electricity generation has increased significantly in recent years. This article describes the Solar-Wind hybrid Power system, which utilizes the renewable energies from the sun and wind to produce electricity. The system is controlled primarily by a microcontroller, which optimizes resource utilization and improves efficiency compared to individual generation modes. It also enhances reliability and reduces dependence on a single source. This hybrid solar-wind power generating system is appropriate for both industrial and domestic energy sources.},
keywords = {Solar energy, Wind energy, Renewable energy, PV cell, Hybrid power system},
month = {May},
}