Literature review of the design of a hybrid energy systems to minimize costs, emissions, and maximize production
DOI:
https://doi.org/10.61273/neyart.v2i4.78Keywords:
smart grids, photovoltaic system, green hydrogen, wind energyAbstract
This analysis reviews recent developments in four areas of renewable energy and electricity infrastructure: photovoltaic systems, green hydrogen, wind energy and smart grids. It is highlighted that photovoltaic systems, widely adopted, are improving their economic viability and integration into electricity grids through developments in materials, efficiency and storage. Green hydrogen, as a solution for storing renewable energy on a large scale, is advancing in production and facing technical and economic challenges. Wind energy improves with larger, more efficient turbines, as well as innovative approaches to environmental integration and mitigation. Smart grids are crucial for the efficient and safe management of distributed renewable energy, employing communication technologies, sensors, and data analytics. It highlights the ongoing progress and challenges in these fields to achieve a global sustainable energy transition.
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Aktas, A., Erhan, K., Ozdemir, S., & Ozdemir, E. (2017). Experimental investigation of a new smart energy management algorithm for a hybrid energy storage system in smart grid applications. Electric Power Systems Research, 144, 185-196. DOI: https://doi.org/10.1016/j.epsr.2016.11.022
Bayindir, R., Colak, I., Fulli, G., & Demirtas, K. (2016). Smart grid technologies and applications. Renewable and sustainable energy reviews, (66), 499-516. DOI: https://doi.org/10.1016/j.rser.2016.08.002
Beltrán-Telles, A., Morera-Hernández, M., López-Monteagudo, F. E., & Villela-Varela, R. (2017). Prospectiva de las energías eólica y solar fotovoltaica en la producción de energía eléctrica. CienciaUAT, 11(2), 105-117. DOI: https://doi.org/10.29059/cienciauat.v11i2.742
Berrío, L. H., & Zuluaga, C. (2014). Smart Grid y la energía solar fotovoltaica para la generación distribuida: Unarevisión en el contexto energético mundial. Ingeniería y Desarrollo, 32(2), 369-396. DOI: https://doi.org/10.14482/inde.32.2.4957
Bizon, N., Oproescu, M., & Raceanu, M. (2015). Efficient energy control strategies for a standalone renewable/fuel cell hybrid power source. Energy Conversion and Management, 90, 93-110. DOI: https://doi.org/10.1016/j.enconman.2014.11.002
Chandel, R., Chandel, S. S., & Malik, P. (2022). Perspective of new distributed grid connected roof top solar photovoltaic power generation policy interventions in India. Energy Policy, 168, 113122. DOI: https://doi.org/10.1016/j.enpol.2022.113122
Chou Rodríguez, R., Martínez Santos, K. E., & Ramírez Roque, R. (2017). Energía eólica y aerogeneradores: estudio comparativo de diferentes variantes para el perfeccionamiento de las multiplicadoras. Revista Universidad y Sociedad, 9(4), 120-127.
Gil, J. E. G., Rey, Á. O. D., & González-Estrada, O. A. (2018). Análisis de un generador de HHO de celda seca para su aplicación en motores de combustión interna. Revista UIS Ingenierías, 17(1), 143-154. DOI: https://doi.org/10.18273/revuin.v17n1-2018013
Ghosh, S., & Rahman, S. (2016, October). Global deployment of solar photovoltaics: Its opportunities and challenges. In 2016 IEEE PES Innovative Smart Grid Technologies Conference Europe (ISGT-Europe) (pp. 1-6). IEEE. DOI: https://doi.org/10.1109/ISGTEurope.2016.7856217
González-Ávila, M. E., BeltrÁn-Morales, L. F., Troyo-Diéguez, E., & Ortega-Rubio, A. (2006). Potencial de aprovechamiento de la energía eólica para la generación de energía eléctrica en zonas rurales de México. Interciencia, 31(4), 240-245.
Jäger-Waldau, A. (2018). Snapshot of photovoltaics− February 2018. EPJ Photovoltaics, 9, 6. DOI: https://doi.org/10.1051/epjpv/2018004
Janvier. (2017). La produccion de hidrogeno mediante electrolisis del agua. AFHYPAC.
León-Trigo, L. I., Reyes-Archundia, E., Gutiérrez-Gnecchi, J. A., Méndez-Patiño, A., & Chávez-Campos, G. M. (2019). Smart Grids en México: Situación actual, retos y propuesta de implementación. Ingeniería, investigación y tecnología, 20(2), 0-0. DOI: https://doi.org/10.22201/fi.25940732e.2019.20n2.015
Liu, J., Chen, X., Cao, S., & Yang, H. (2019). Overview on hybrid solar photovoltaic-electrical energy storage technologies for power supply to buildings. Energy conversion and management, (187), 103-121. DOI: https://doi.org/10.1016/j.enconman.2019.02.080
Martínez, E. T. (2008). Energía eólica. Universidad de Zaragoza.
Mirhassani, S., Ong, H. C., Chong, W. T., & Leong, K. Y. (2015). Advances and challenges in grid tied photovoltaic systems. Renewable and Sustainable Energy Reviews, (49), 121-131. DOI: https://doi.org/10.1016/j.rser.2015.04.064
Moragues, J., & Rapallini, A. (2003). Energía eólica. Instituto Argentino de la Energía General Mosconi.
Ortega, E. M. (2012). Redes de comunicacion en smart grid. Ingenius . DOI: https://doi.org/10.17163/ings.n7.2012.05
Prăvălie, R., Patriche, C., & Bandoc, G. (2019). Spatial assessment of solar energy potential at global scale. A geographical approach. Journal of Cleaner Production, (209), 692-721. DOI: https://doi.org/10.1016/j.jclepro.2018.10.239
Puertolas, C. (2021). La energia eolica . EPEC .
Ruhang, X. (2016). Characteristics and prospective of China׳ s PV development route: Based on data of world PV industry 2000–2010. Renewable and Sustainable Energy Reviews, (56), 1032-1043. DOI: https://doi.org/10.1016/j.rser.2015.12.018
Santos, S. F., Fitiwi, D. Z., Cruz, M. R., Cabrita, C. M., & Catalão, J. P. (2017). Impacts of optimal energy storage deployment and network reconfiguration on renewable integration level in distribution systems. Applied energy, 185, 44-55. DOI: https://doi.org/10.1016/j.apenergy.2016.10.053
Solaun, X. V. (2011). La energía eólica una tecnología eficiente de generación eléctrica. Hermes: pentsamendu eta historia aldizkaria= revista de pensamiento e historia, (38), 30-39.
Wu, F. F., Varaiya, P. P., & Hui, R. S. (2015). Smart grids with intelligent periphery: An architecture for the energy internet. Engineering, 1(4), 436-446. DOI: https://doi.org/10.15302/J-ENG-2015111
Valle-Hernández, J., & López-Pérez, P. Estimación de la Eficiencia asociada a la Producción de Hidrógeno con Energía Solar Concentrada. Revista Internacional de Investigación e Innovación Tecnológica, (1).
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Copyright (c) 2024 Cristina Quintero Ávila, Eduardo Rafael Poblano Ojinaga , Adán Valles Chávez , Arturo Woocay Prieto , Jeovany Rafael Rodríguez Mejía

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