Avaliação do impacto de tecnologias inovadoras no desenvolvimento sustentável de sistemas de energia: uma análise comparativa de indicadores técnicos e ambientais

Autores

  • Olena Borychenko PhD in Engineering, Associate Professor, Department of Power Supply, Educational and Research Institute of Energy Saving and Energy Management, National Technical University of Ukraine "Igor Sikorsky Kyiv Polytechnic Institute", Kyiv, Ukraine.
  • Anatolii Cherniavskyi , PhD in Engineering, Associate Professor, Department of Power Supply, Educational and Scientific Institute of Energy Saving and Energy Management, National Technical University of Ukraine "Igor Sikorsky Kyiv Polytechnic Institute", Kyiv, Ukraine
  • Vitaliy Pobigaylo PhD in Engineering, Associate Professor, Department of Power Supply, Educational and Research Institute of Energy Saving and Energy Management, National Technical University of Ukraine "Igor Sikorsky Kyiv Polytechnic Institute", Kyiv, Ukraine
  • Vasyl Savchenko PhD in Engineering, Assistant Professor, Head of the Department of Machine Operation and Service of Technological Systems, Polissya National University, Zhytomyr, Ukraine
  • Mykhailova Lyudmyla PhD in Engineering, Professor, Dean of the Faculty of Energy and Information Technologies, Higher Education Institution "Podillia State University", Kamianets-Podilsky, Ukraine.

Palavras-chave:

Tecnologias inovadoras, Desenvolvimento sustentável, Sistemas energéticos

Resumo

Objetivo: O estudo tem como objetivo avaliar o impacto das tecnologias inovadoras no desenvolvimento sustentável dos sistemas energéticos, centrando-se em indicadores como o consumo de recursos, a dinâmica da energia verde e a eficiência ambiental.

Metodologia: Métodos analíticos, incluindo comparação e visualização de dados, foram utilizados para análise, com o Microsoft Office Excel 10. Foram utilizados dados de várias fontes, como a Agência Internacional de Energia, o Serviço Estatal de Estatística da Ucrânia, Our World in Data, Eurostat, BloombergNEF, IRENA, Banco Mundial e documentos legislativos da Ucrânia e da UE.

Originalidade: Este estudo preenche uma lacuna teórica ao analisar a contradição entre a eficiência energética e ambiental nos actuais sistemas energéticos, salientando a necessidade de adaptações específicas a cada país e de aprender com as experiências bem sucedidas dos países.

Principais resultados: Os resultados sugerem que a expansão da energia verde é significativa em regiões com políticas governamentais de apoio, mas existe uma discrepância entre eficiência energética e ambiental, o que exige adaptações do sistema energético.

Contribuições teóricas/metodológicas:  A pesquisa muda o paradigma de "produzir tanto quanto eu consumo" para "produzir tanto quanto eu posso, consumir conforme necessário", impulsionado por decisões políticas políticas de energia verde inovações tecnológicas como sistemas de energia distribuída, tecnologias de armazenamento de energia e tecnologias SMART Grid.

Contribuições sociais/de gestão: O estudo sublinha a importância da capacidade inovadora, do desenvolvimento de redes inteligentes e equilíbrio da distribuição dos recursos renováveis. São preconizadas medidas de governação de segurança para gerir globalização e descentralização dos recursos energéticos.

Referências

A European Green Deal: Striving to be the first climate-neutral continent. (2019). European Commission. Retrieved March 4, 2024, from https://ec.europa.eu/info/strategy/priorities-2019-2024/european-green-deal_en

Abdolmaleki, S. F. & Bugallo, P.M. B. (2021). Evaluation of Renewable Energy System For Sustainable Development, Renew. Energy Environ. Sustain, 6, 44. https://doi.org/10.1051/rees/2021045

Acosta, L. A., Zabrocki, S., Eugenio, J. R., Sabado R., Gerrard, Jr. S. P., Nazareth, M., & Luchtenbelt, H. G. H. (2020). Green Growth Index 2020 – Measuring performance in achieving SDG targets, GGGI. Technical Report No.16, Green Growth Performance Measurement Program, Global Green Growth Institute (GGGI), Seoul, South Korea. Retrieved from https://greengrowthindex.gggi.org/wp-content/uploads/2021/03/2020-Green-Growth-Index.pdf

Aydin, M. (2019). Renewable and non-renewable electricity consumption–economic growth nexus: Evidence from OECD countries. Renewable Energy, 136, 599–606. https://doi.org/10.1016/j.renene.2019.01.008

Bakhmachuk, S., & Bakhmachuk, P. (2018). Decentralized Electroindustrial Heating System With Heat Acumulation As Tool To Overcome «Green-Coal Paradox» / Modern Problems of Economics and Entrepreneurship. Kyiv: Igor Sikorsky Kyiv Polytechnic Institute, Polytechnic Publishing House. ISSN 2310-5534 // e-ISSN 2414-9306.

Bauknecht, D., Funcke, S., & Vogel, M. (2020). Is small beautiful? A framework for assessing decentralised electricity systems. Renewable and Sustainable Energy Reviews, 118(109543), 109543. https://doi.org/10.1016/j.rser.2019.109543

Bozhkova, V., & Halytsia, I. (2022). Mechanisms to ensure the development of the economy of the future in the context of global change. Futurity Economics&Law, 2(2), 4–13. https://doi.org/10.57125/FEL.2022.06.25.01

Brugger, H., Eichhammer, W., Mikova, N. & Dӧnitza, E. (2021). Energy efficiency vision 2050: How will new societal trends influence future energy demand in the European countries? Energy Policy, 152, 112216. https://doi.org/10.1016/j.enpol.2021.112216

Buzugbe, N. P. (2023). The Energy Consumption-Economic Growth Nexus in Nigeria: What Evidence Exists? Futurity Economics&Law,3(4), 209 - 222. https://doi.org/10.57125/FEL.2023.12.25.13

Chaparro‑Banegas, N., Escribano, A. M.I., Mas‑Tur, A., & Tierno, N. R. (2023) Innovation facilitators and sustainable development: a country comparative approach. In Environment, Development and Sustainability, 1-29, Springer. https://doi.org/10.1007/s10668-023-03055-w

Chayka, O. (2023, July). The end of an era. Renewable energy producers are abandoning the scandalous green tariff. Why does it no longer work? Retrieved from https://forbs.ua/company/kinet-epokhi-virobniki-vidnovlyuvanoi-energii-vidmovlyayutsya-vid-skandalnogo-zelenogo-tarifu-chomu-vin-bilshe-ne-pratsyue-12072023-14741

Chen, J., Kong, Y., Yin, S., & Xia, J. A. (2022). Comparative Method for Assessment of Sustainable Energy Development across Regions: An Analysis of 30 Provinces in China. Energies, 15, 5761. https://doi.org/10.3390/en15155761

Child, M., Breyer, C., Bogdanov, D., & Fell, H.-J. (2017). The role of storage technologies for the transition to a 100% renewable energy system in Ukraine. Energy Procedia, 135, 410–423. https://doi.org/10.1016/j.egypro.2017.09.513

Child, M., Kemfert, C., Bogdanov, D., & Breyer, C. (2019). Flexible electricity generation, grid exchange and storage for the transition to a 100% renewable energy system in Europe. Renewable Energy, 139, 80–101. https://doi.org/10.1016/j.renene.2019.02.077

Doddamani, Y. N., & Kapale, U. C. (2019). A transition from manual to Intelligent Automated power system operation -A Indicative Review. International Journal of Electrical and Computer Engineering (IJECE), 9(4), 2274. https://doi.org/10.11591/ijece.v9i4.pp2274-2280

Doroshenko, T., Orlenko, O., & Harnyk, O.(2023). Mechanisms for ensuring the development of the future economy in the context of global changes. Futurity Economics&Law, 3(2), 132 – 150. https://doi.org/10.57125/FEL.2023.06.25.09

Efimov, D. (2020). Flexibility of the power system: background, relevance, and categorization, in E3S Web Conf. Volume 216. 01025. https://doi.org/10.1051/e3sconf/202021601025

Entezari, A., Aslani, A., Zahedi, R., & Noorollahi, Y. (2023). Articial intelligence and machine learning in energy systems: A bibliographic perspective. Energy Strategy Reviews, 45, 101017. https://doi.org/10.1016/j.esr.2022.101017

Environmental Performance Index. (2022). Retrieved from https://epi.yale.edu

ESTAT:Eurostat, C.-B. (2019). Sustainable Development in the European union: Monitoring report on progress towards the SDGs in an EU context : 2019 edition. Publications Office of the European Union. http://doi.org/10.2785/44964

Eurostat Statistical Yearbook. (2022). Retrieved from http://ec.europa.eu/energy/publications/statistics

Eurostat Statistical Yearbook. (2023). Retrieved from http://ec.europa.eu/energy/publications/statistics

Gan, L., Jiang, P., Lev, B., & Zhou, X. (2020) Balancing of supply and demand of renewable energy power system: A review and bibliometric analysis. Sustainable Futures, 2, 100013 https://doi.org/10.1016/j.sftr.2020.100013

Green Deal: Clean energy (2019) Retrieved from https://ec.europa.eu/info/strategy/priorities-2019-2024/european-green-deal/clean-energy_en

Hutt, R., & Breene K. (2019). Scientists just got closer to making nuclear fusion work. World Economic Forum. Energy transition. Retrieved from https://www.weforum.org/agenda/2019/05/nuclear-fusion-could-solver-the-world-s-energy-problems-and-scientists-just-got-closer-to-making-nuclear-fusion-work

International Energy Agency. (2022). World Energy Outlook 2022. Retrieved from www.iea.org

International Renewable Energy Agency. (2017). Electricity storage and renewables: Costs and markets to 2030. Retrieved from http://surl.li/ayceg

International Renewable Energy Agency. (2022). Renewable energy statistics 2022. ISBN: 978-92-926-446-2.

Kharrazi, A., Sreeram, V., & Mishra, Y. (2020). Assessment techniques of the impact of grid-tied rooftop photovoltaic generation on the power quality of low voltage distribution network—A review. Renewable and Sustainable Energy Reviews, 120, 109643. https://doi.org/10.1016/j.rser.2020.1096413

Khomenko, I. V., Plakhtii, O. A., Nerubatskyi, V. P., & Stasiuk, I. V. (2020). Electric power industry of Ukraine: Structure, management, innovations: A monograph. Kharkiv: NTU "KhPI", Planet-Print LLC. ISBN 978-617-7897-02-5

Kibik, O., Taran-lala, O., Saienko, V., Metil, T., Umanets, T., & Maksymchuk, I. (2022). Strategic vectors for enterprise development in the context of the digitalization of the economy. Postmodern Openings, 13(2), 384-395. https://doi.org/10.18662/po/13.2/460

King, C. (2023, November). Top 10: Countries using renewable energy. Energy Digital Magazine. Retrieved from http://energydigital.com

Klusactk, J., Drapela, J., & Langella, R. (2023). Revenue Metering of Unbalanced Prosumers in Energy Communities. IEEE Open Access Journal of Power and Energy, 1-11. https://doi.org/10.1109/OAJPE.2023.3243385

Komar, V., Lezhniuk, P., Lesko, V., Malogulko, Y., Netrebskyi, V., & Sikorska, O. (2022). Electricity consumption and renewable energy sources generation schedules coordination in electric networks for balance reliability increasing. In Energy Facilities: Management and Design and Technological Innovations (pp. 42–75). Privat Company Technology Center. https://doi.org/10.15587/978-617-7319-63-3.CH2

Kucheriava, I. M., & Sorokina, N. L. (2020). Renewable power industry in the word and in Ukraine for the year 2019 – at the beginning of 2020. Gidroenergetika Ukrainy, 1—2, 38 - 44. Retrieved from ISSN 1812-9277.

Kuznietsov, M., & Melnyk, O. (2020). The Influence of Instability Consumption on The Hybrid Energy System Balance. Vidnovluvana Energetika, 2(61), 8-17. https://doi.org/10.36296/1819-8058.2020.2(61).8-17

Larsson, P., & Börjesson, P. (2018). Cost models for battery energy storage systems (R. E. Guédez Mata, Ed.). Retrieved from http://surl.li/awhib

Levytska, O., Mulska, O., Ivaniuk, U., (…), Vasyltsiv, T., Lupak, R. (2020). Modelling the conditions affectingpopulation migration activity in the eastern European region: The case of Ukraine. TEM Journal, 9(2). 507-514.

Lezhniuk, P., Komar, V., & Kravchuk, S (2019). Regimes Balancing in the Local Electric System with Renewable Sources of Electricity. IEEE 20th International Conference on Computational Problems of Electrical Engineering, CPEE, 8949118. https://doi.org/10.1109/CPEE47179.2019.8949118

Liao, Y., Qiu, X., Wu, A., Sun, Q., Shen, H., & Li, P. (2022). Assessing the impact of green innovation on corporate sustainable development. Frontiers in Energy Research, 9. https://doi.org/10.3389/fenrg.2021.800848

Matvieieva Y., Vakulenko I., Saher l., & Petryna V. (2022). Essential basis of innovative activity n he context of renewable energy development. Bulletin of Sumy State University: Series "Economics", 2, 17-29. Retrieved March 4, 2024, from https://visnyk.fem.sumdu.edu.ua/en/2-2022-2

Mehmood, U., Tariq, S., Aslam, M. U., Agyekum, E. B., Uhunamure, S. E., Shale, K., Kamal, M., & Khan, M. F. (2023). Evaluating the impact of digitalization, renewable energy use, and technological innovation on load capacity factor in G8 nations. Scientific Reports, 13(1). https://doi.org/10.1038/s41598-023-36373-0

Melnyk, L. H. (2018). Green economy (EU experience and Ukraine's practice in the world of the third and fourth industrial revolutions). Sumy: University Book Publishing House. ISBN 978-966-680-841-0

Muratori, M., Jadun, P., Bush, B., Bielen, D., Vimmerstedt, L., Gonder, J., Gearhart, C., & Arent, D. (2020). Future integrated mobility-energy systems: A modeling perspective. Renewable and Sustainable Energy Reviews, 119(109541), 109541. https://doi.org/10.1016/j.rser.2019.109541

New Energy Outlook 2022. (2022, November 27). BloombergNEF. https://about.bnef.com/new-energy-outlook/

Novak, A., Pravdyvets, O., Chornyi, O., Sumbaieva, L., Akimova, L., & Akimov, O. (2022). Financial and economic security in the field of financial markets at the stage bof European integration. International Journal of Professional Business Review, 7(5) https://doi.org/10.26668/businessreview/2022.v7i5.e835

Our Word in Data (2022). Solar (photovoltaic) panel price vs. cumulative capacity. Ourworldindata.org. Retrieved March 4, 2024, from https://OurWorldInData.org/energy

Parol, M., Wójtowicz, T., Księżyk, K., Wenge, C., Balischewski, S., & Arendarski, B. (2020). Optimum management of power and energy in low voltage microgrids using evolutionary algorithms and energy storage. International Journal of Electrical Power & Energy Systems, 119(105886), 105886. https://doi.org/10.1016/j.ijepes.2020.105886

Photovoltaic report. (2023). Fraunhofer Institute for Solar Energy Systems, 53. Fraunhofer.de. Retrieved March 4, 2024, from https://www.ise.fraunhofer.de/content/dam/ise/de/documents/publications/studies/Photovoltaics-Report.pdf

Poliak, A. (2021, August 10). Energy storage systems: is there a future in Ukraine. Environmental policy. https://ecopolitic.com.ua/ua/news/sistemi-nakopichennya-energii-chi-ie-majbutnie-v-ukraini/

Redko, K., Denyshchnko, L., Dobrovolska, O., Lukyanenko, N., & Kyryllova, Y. (2022). Development of green energy as a path to energy independence of the national economy. Futurity Economics&Law, 2(4), 36-42. https://doi.org/10.57125/FEL.2022.12.25.05

Renewable Energy. (2022, February). Renewable Energy Policies, Laws and Regulations Retrieved from https://ppp.worldbank.org/public-private-partnership/renawable-energy

Ritchie, H. & Rosado, P. (2020). “Energy Mix”. Ourworldindata.org. Retrieved March 4, 2024, from https://ourworldindata.org/energy-mix’

Senthil, R. (2022). Recent innovations in solar energy education and research towards sustainable energy development. Acta Innovations, 42, 27-49. https://doi.org/10.32933/ActaInnovations.42.3

Sukhodolia, O. M. (2022). Artificial intelligence in the energy sector: analytical report. Kyiv: NISS. Retrieved from https://doi.org/10.53679/NISS-analytrep.2022.09

Suprunenko, S., Pylypenko, N., Trubnik, T., & Volchenko, N. (2023). Forecast of changes in the macroeconomic situation in Ukraine: SMART economy of the future. Futurity Economics&Law, 3(3), 219 - 236. https://doi.org/10.57125/FEL.2023.09.25.13

Svitlak, I., &Huts, N.(2022). The legal charter of the company of the future: the order of creation. Futurity Economics&Law, 2(1), 22-27. https://doi.org/10.57125/FEL.2022.03.25.03

The Global Innovational Index (2022). Retrieved from https://www.globalinnovationindex.org

The scientific project center for the development of the unified energy system of Ukraine (SPCD UES Ukraine). (2018). Experience of the EU countries in improving energy efficiency, energy audit and energy management for energy saving in the economy. Retrieved from https://ua.energy/wp-content/uploads/2018/01/Pidvyshhennya-energoefektyvnosti-v-YES.pdf.

The World Bank. (2020). Economic analysis of battery energy storage systems. Retrieved from http://surl.li/awhid

Tymoshenko, M., Saienko, V., Serbov, M., Shashyna, M., & Slavkova, O. (2023). The impact of industry 4.0 on modeling energy scenarios of the developing economies. Financial and Credit Activity Problems of Theory and Practice, 1(48), 336–350. https://doi.org/10.55643/fcaptp.1.48.2023.3941

Vdovichena, O., Vidomenko, O., Tkachuk, S., Zhuzhukina, N., & Lukianykhina, O. (2022). The use of information in the world economy: globalization trends. Futurity Economics&Law, 2(4), 4 - 11. https://doi.org/10.57125/FEL.2022.12.25.01

Verkhovna Rada of Ukraine (2002). Law of Ukraine “On innovation activity”, dated 04.07.2002 № 40-IV (2002). Retrieved March 4, 2024, from https://zakon.rada.gov.ua/laws/show/40-15#Text

Verkhovna Rada of Ukraine (2014). Association Agreement between Ukraine, on the one hand, and the European Union, the European Atomic Energy Community and their Member States, on the other hand: international document of 27.06.2014. Retrieved March 4, 2024, from https://zakon.rada.gov.ua/laws/show/984_011#Text

Verkhovna Rada of Ukraine (2019). Law of Ukraine “On Alternative Energy Sources” No 555-IV of 01.01.2024. Retrieved March 4, 2024, from https://zakon.rada.gov.ua/laws/show/555-15

Verkhovna Rada of Ukraine (2021). Law of Ukraine “On energy efficiency”, dated 21.10.2021 No. 1818-IX. Version as of 01.01.2024, grounds — 3460-IX. Retrieved March 4, 2024, from https://zakon.rada.gov.ua/go/1818-20

Wierzbik-Stronska, M. (Ed.). (2020). Youth involvement in civil society development: current state and prospective trends. Poland, Katowice: Publishing House of Katowice School of Technology. ISBN 978-83-955125-6-8

World Commission on Environment and Development. (1987). Our Common Future. Oxford University Press: New York, USA, 383. ISBN: 019282080X.77

World Energy. (2022). Trilemma index. Retrieved from https://www.worldenergy.org/publications/entry/world-energy-trilemma-index-2022

Yakymenko, I., Petrashko, L., Dyman, T., Salavor, O., Shapovalov, E., Galaburda, M., Nychyk, O.,& Martyniuk, O. (2022). Sustainable Development Strategy: European Horizons. Kyiv: NUFT. ISBN 978-966-612-275-29

Zhang, D., Tian, J., Goh, H.-H., Liu, H., Li, X., Zhu, H., & Wu, X. (2022). The key technology of smart energy system and its disciplinary teaching reform measures. Sustainability, 14(21), 14207. https://doi.org/10.3390/su142114207

Downloads

Publicado

2024-04-05

Como Citar

Borychenko, O., Cherniavskyi, A., Pobigaylo, V., Savchenko, V., & Lyudmyla, M. (2024). Avaliação do impacto de tecnologias inovadoras no desenvolvimento sustentável de sistemas de energia: uma análise comparativa de indicadores técnicos e ambientais. Revista Gestão & Tecnologia, 24, 257–286. Recuperado de https://revistagt.fpl.emnuvens.com.br/get/article/view/2836

Edição

Seção

ARTIGO