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Dimensions and Factors that Determine Integration of Small-Scale Sources in the Structures of Virtual Power Plants

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EN
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EN
In the paper the author has attempted to achieve two convergent objectives: cognitive and empirical ones. The cognitive goal constituted an analysis of the definitions of virtual organi-sations and their adaptation while defining Virtual Power Plants (VPPs). When discussing the discourse in the area of virtual organisations, the author has attempted to justify the fact that the terminology pertaining to virtual organisations should constitute the foundations for defining Virtual Power Plants. With such an assumption, a vital importance has been assigned to co-sharing of “soft” resources – key competencies, and also organisational (managerial) integration. In the context of the adopted definitions, the distributed structure of virtual power plant has been em-bedded into four layers of Smart Grid: Customer Technology, Operational Technology, Smart Metering, Energy Management System. A measurable value of the conducted discourse has been aggregation of management functions of VPP, carried out in the four-layer structure of Smart Grid. In turn, the empirical objective was to determine and distinguish, based on the conducted expert research, the factors that determine the development of small-scale energy sector, including re-newable energy sources and prosumer installations – simultaneously determining the inclination of distributed electricity producers to mutual integration in the structures of virtual power plants. Assuming, in accordance with the definitions and discourse included in the first part of the paper, that the determined factors, among others, creating virtual power plants are not only of techno-logical nature, the author has developed four portfolios of these factors. They include the following ones: technological, economic (including micro- and macro-economic), environmental, and social. The experts participating in the research could select 5 factors from each of the developed portfolio which in their opinion determined the inclination of distributed electricity producers to integrate their sources in the structures of virtual power plants. A measurable value of the empirical part has been aggregating the determinants generated and distinguished in the research process.
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185--192
Opis fizyczny
Bibliogr. 21 poz., rys., tab.
Twórcy
  • Czestochowa University of Technology, Management Faculty, Al. Armii Krajowej 19 B, 42-200 Częstochowa, Poland Tel.: + 483-4325-0312
Bibliografia
  • 1. A European Green Deal. [Text]. European Commission - European Commission. Available online: https://ec.europa.eu/info/strategy/priorities-2019-2024/european-green-deal_en (accessed 12.12.2021).
  • 2. Andreadou, N., Guardiola, M., Fulli, G., 2016. Telecommunication technologies for smart grid projects with focus on smart metering applications. Energies, 9, 375, DOI: 10.3390/en905037510.3390/en9050375
  • 3. Bakar, N.A.A., Ramli, W.M.W., Hassan. N.H., 2019. The internet of things in healthcare: an overview, challenges and model plan for security risks management process. Indonesian Journal of Electrical Engineering and Computer Science (IJEECS), 15, 414-420. DOI: 10.11591/ijeecs.v15.i1.pp414-42010.11591/ijeecs.v15.i1.pp414-420
  • 4. Deng, R., Yang, Z., Chow, M.Y., Chen, J., 2015. A survey on demand response in smart grids: Mathematical models and approaches. IEEE Transactions on Industrial Informatics, 11, 570-582, DOI: 10.1109/TII.2015.241471910.1109/TII.2015.241471
  • 5. Dorothy, R., Sasilatha, S., 2017. Smart Grid Systems Based Survey on Cyber Security Issues. Bulletin of Electrical Engineering and Informatics (BEEI), 6, 337-342, DOI: 10.11591/eei.v6i4.86210.11591/eei.v6i4.862
  • 6. EPRS-BRI, https://www.europarl.europa.eu/thinktank/en/document.html?reference=EPRS_BRI(2020)649385 (accessed 12.12.2021).
  • 7. EU Market Outlook for Solar Power 2020-2024. Available online: https://www.solarpowereurope.org/wp-content/uploads/2020/12/3520-SPE-EMO-2020-report-11-mr.pdf?cf_id=23124, (12.12.2021)
  • 8. Kasaei, M.J., Gandomkar, M., Nikoukar, J., 2017. Optimal management of renewable energy sources by virtual power plant. Renewable Energy, 114, Part B, December, 1180-1188. DOI: 10.1016/j.renene.2017.08.01010.1016/j.renene.2017.08.010
  • 9. Kisielnicki, J., 2008. MIS. Systemy Informatyczne Zarządzania, Placet, Warszawa, Poland.
  • 10. Koszarek-Cyra, A., 2016. Pro-environmental actions of micro-enterprises in the European Union. In: Development and improvement of organisation’s functioning. Enterprises in the era of new technologies, innovative and socially responsible actions, Kulej-Dudek, E., Kobis, P., Eds.; Publishing House of Czestochowa University of Technology, Czestochowa, Poland, 122-131.
  • 11. Kuceba, R., Zawada, M., Szajt, M., Kowalik, J., 2018. Prosumer Energy as a Stimulator of Micro-Smart Grids Development - on the Consumer Side. IOP Conference Series: Earth and Environmental Science, 164, DOI: 10.1088/1755-1315/164/1/01200310.1088/1755-1315/164/1/012003
  • 12. Kuceba, R., 2011. Virtual power plant. Chosen aspects of organizing and managing dispersed generation subjects, TNOiK „Dom Organizatora“, Toruń, Poland.
  • 13. Lee, S. M., Noh, Y., Choi, D., Sung Rha, J., 2017. Environmental Policy Performances for Sustainable Development: From the Perspective of ISO 14001 Certification. Corporate Social Responsibility and Environmental Management, 24 (2), 108-120, DOI: doi.org/10.1002/csr.139510.1002/csr.1395
  • 14. Niedziolka, D., 2018. Funkcjonowanie polskiego rynku energii (Functioning of Polish energy market), Difin, Warszawa, Poland.
  • 15. Nowelizacja ustawy o OZE – co warto wiedzieć na temat zmian? (Amendment to the Law on Renewable Energy – what are the changes?) Available online: https://energyre.pl/pl/2019/09/nowelizacja-ustawy-o-ozeco-warto-wiedziec-na-temat-zmian/ (accessed 12.12.2021).
  • 16. Owoc, M. L., Sitarska, M., 2008. Technologie informacyjne w przedsiębiorczości wirtualnej, Wydawnictwo Uniwersytetu Ekonomicznego we Wrocławiu, Wrocław, Poland.
  • 17. Popczyk, J., 2011. Dispersed energy industry from energy domination in economy to balance development, from fossil fuels to renewable energy and energy effectiveness, Polski Klub Ekologiczny, Okręg Mazowiecki, Warszawa, Poland.
  • 18. Qarabsh, A.N., Sabry, S.S., Qarabash, H.A., 2020. Smart grid in the context of industry 4.0: an overview of communications technologies and challenges. Indonesian Journal of Electrical Engineering and Computer Science, 18(2), May, 656–665, DOI: 10.11591/ijeecs.v18.i2.pp656-66510.11591/ijeecs.v18.i2.pp656-665
  • 19. Raport IEO Rynek Fotowoltaiki w Polsce 2020 (Report IEO Photovoltaics market in Poland). Available online: https://ieo.pl/pl/raport-rynek-fotowoltaiki-w-polsce-2020 (accessed 14.03.2021).
  • 20. Rihan, M., 2019. Applications and Requirements of Smart Grid. In: Smart Grids and Their Communication Systems, Kabalci, E., Kabalci, Y., Eds., Springer, Singapore, 47-79.10.1007/978-981-13-1768-2_2
  • 21. The RES tool. Available online: https://ec.europa.eu/eurostat/web/energy/data/shares (accessed 17.12.2021).
Uwagi
Opracowanie rekordu ze środków MEiN, umowa nr SONP/SP/546092/2022 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2022-2023).
Typ dokumentu
Bibliografia
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