Application of Geoinformation Systems for Assessment of Effective Integration of Renewable Energy Technologies in the Energy Sector of Ukraine

Applied Sciences - Tập 12 Số 2 - Trang 592
Olga Ostapenko1, Piotr Olczak2, Viktor Koval3, Larysa Hren4, Dominika Matuszewska5, Оlenа Postupna6
1Department of Heat Power Engineering, Vinnytsia National Technical University, 21021 Vinnytsia, Ukraine;
2Mineral and Energy Economy Research Institute, Polish Academy of Sciences, 31-261, Krakow, Poland
3National Academy of Sciences of Ukraine, 01030 Kyiv, Ukraine
4Kharkiv Polytechnic Institute, National Technical University, 61002 Kharkiv, Ukraine;
5Department of Thermal and Fluid Flow Machines, Faculty of Energy and Fuels, AGH University of Science and Technology, 30 Mickiewicza Ave., 30-059 Krakow, Poland;
6Training Research and Production Center, National University of Civil Defence of Ukraine, 61023 Kharkiv, Ukraine;

Tóm tắt

The scientific novelty of the results presented in this article is to substantiate and expand the possibilities of using global and local geographic information systems (GIS) to assess the potential of renewable energy sources in Ukraine. GIS analysis focused on key resource parameters can help identify territories for development of renewable energy sources and assess of their possible technical potential, as well as the possibility of effective integration of technologies for the use of renewable energy sources in the energy sector of Ukraine. In this paper the possibilities for using geographic information systems to assess the potential of renewable energy sources in Ukraine are analyzed. The possibility of using the Global Atlas of the International Renewable Energy Agency (IRENA) to support planning of technologies for the use of energy from biomass is analyzed. The data can point to large-scale programs and applications in relation to key parameters (quality resources, transmission distance, population density, terrain and site protection), helping identify additional areas for development of renewable energy sources and give an approximate assessment of technical potential. It is determined that the software products of IRENA are able to support national and regional planning of renewable energy technologies, help establish the viability of future renewable energy facilities and help project developers identify and analyze promising facilities for the implementation of technologies using renewable energy. The application of geographic information systems of Ukrainian web resources (“UA MAP”) for assessing the potential of renewable energy sources and energy efficiency in Ukraine is been analyzed. The scientific novelty of the results lies in applying global and local GIS for comprehensive assessment of the potential and effectiveness of the use of regional non-traditional and renewable energy resources on the territory of Ukraine. This makes it possible to assess the possibilities of generating additional electric and thermal power for the needs of the regions of Ukraine using non-traditional and renewable energy sources. A comprehensive methodology for the use of GIS is proposed for assessing the potential of non-traditional and renewable energy sources at the regional level in Ukraine, taking into account energy, environmental and socio-economic factors affecting the placement of non-traditional and renewable energy facilities.

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Tài liệu tham khảo

Benalcazara, P., and Komorowska, A. (2021). Prospects of green hydrogen in Poland: A techno-economic analysis using a Monte Carlo approach. Int. J. Hydrogen Energy.

Zatserkovnyi, 2018, Geoinformation modeling in the problems of renewable energy, Bull. NTU “KhPI” Ser. New Solut. Mod. Technol. Kharkiv. NTU “KhPI”, 9, 118

Olczak, 2021, An adjustable mounting rack or an additional PV panel? Cost and environmental analysis of a photovoltaic installation on a household: A case study in Poland, Sustain. Energy Technol. Assess, 47, 101496

Cader, 2021, Regional dependencies of interest in the “My Electricity” photovoltaic subsidy program in Poland, Polityka Energetyczna Energy Policy J., 24, 97, 10.33223/epj/133473

Arkhypova, 2021, Renewable energy resources in the system of sustainable development of Carpathian region of Ukraine, J. Phys. Conf. Ser., 1781, 012010, 10.1088/1742-6596/1781/1/012010

Sabishchenko, O., Rębilas, R., Sczygiol, N., and Urbański, M. (2020). Ukraine energy sector management using hybrid renewable energy systems. Energies, 13.

Ostapenko, 2020, Perspectives of application of innovative resource-saving technologies in the concepts of green logistics and sustainable development, Tour. Estud. Prat. (UERN), 2, 1

Ostapenko, O. (2021). Estimation of tendencies of transforming the energy sectors of World, European Union and Ukraine in the perspective to 2050 with using the renewable energy sources in the concept of Sustainable Development. Book Social Capital: Vectors of Development of Behavioral Economics: Collective Monograph, ACCESS Press Publishing House.

Arkhypova, 2019, Territorial Recreational Systems and Sustainable Development, Adv. Econ. Bus. Manag. Res., 99, 189

Mandryk, 2020, Prospects of environmentally safe use of renewable energy sources in the sustainable tourism development of the Carpathian region of Ukraine, E3S Web Conf., 166, 04005, 10.1051/e3sconf/202016604005

Mandryk, 2017, Theoretical and methodological foundations of sustainable development of Geosystems, IOP Conf. Ser. Mater. Sci. Eng., 200, 012018, 10.1088/1757-899X/200/1/012018

Matuszewska, D., Kuta, M., and Olczak, P. (2020). Techno-Economic Assessment of Mobilized Thermal Energy Storage System Using Geothermal Source in Polish Conditions. Energies, 13.

Rutitis, 2021, Model for Development of Innovative ICT Products at High-Growth Potential Startups, Eurasian Stud. Bus. Econ., 19, 229, 10.1007/978-3-030-77438-7_14

Nitsenko, 2018, Criteria for Evaluation of Efficiency of Energy Transformation Based on Renewable Energy Sources, Montenegrin J. Econ., 4, 253

Danyliuk, 2020, Functional and investment strategies of technical development of enterprises, Nauk. Visnyk Natsionalnoho Hirnychoho Universytetu, 3, 115, 10.33271/nvngu/2020-3/115

Kinash, 2019, The ecologization of housing and communal services of Ukraine in the context of sustainable development, J. East. Eur. Cent. Asian Res., 6, 113

Kinash, 2019, Economic evaluation of tourism infrastructure development in Ukraine, IOP Conf. Ser. Mater. Sci. Eng., 477, 012020, 10.1088/1757-899X/477/1/012020

Godfrey, B. (2012). Renewable Energy: Power for a Sustainable Future, Oxford University Press.

Zelenko, 2019, Optimization of heat-and-power plants water purification, Chem. Chem. Technol., 13, 218, 10.23939/chcht13.02.218

Mandryk, 2020, Research quantitative indicators of the potential of solar energy in the Carpathian region of Ukraine, IOP Conf. Ser. Mater. Sci. Eng., 749, 012033, 10.1088/1757-899X/749/1/012033

Twidell, J., and Weir, T. (2015). Renewable Energy Resources, Routledge. [3rd ed.].

Prykhodko, 2020, Concept of ecosystem services and its implementation in Ukraine, J. Geol. Geogr. Geoecol., 29, 387, 10.15421/112034

DataBank (2021, December 02). WorldBank. Available online: https://databank.worldbank.org/reports.aspx?source=2&country=UKR#.

(2021, December 02). Esmap. Available online: https://www.esmap.org/.

(2021, December 02). Eurostat. Available online: https://ec.europa.eu/eurostat/data/database.

Eurostat (2021, December 02). Energy Dependency. Available online: https://ec.europa.eu/eurostat/statistics-explained/index.php?title=Energy_statistics_-_an_overview#Energy_dependency.

(2021, December 02). Tracking SDG7. Available online: URL:https://trackingsdg7.esmap.org/country/ukraine.

(2021, December 02). International Renewable Energy Agency (IRENA). Available online: https://www.irena.org/.

(2021, December 02). Statute of International Renewable Energy Agency (IRENA). Available online: https://irena.org/-/media/Files/IRENA/Agency/About-IRENA/Statute/IRENA_FC_Statute_signed_in_Bonn_26_01_2009_incl_declaration_on_further_authentic_versions.pdf?la=en&hash=635C494208DD405EA8CD2BDB04414FECD40F55F1.

(2021, December 02). Global Atlas of International Renewable Energy Agency (IRENA). Available online: https://www.irena.org/globalatlas.

(2021, December 02). Renewable Energy Roadmap of International Renewable Energy Agency (IRENA), Available online: https://saee.gov.ua/sites/default/files/ENG%20IRENA_REmap_Ukraine_paper_2015%201304.pdf.

(2021, December 02). Ukrainian Cartographic Network UA MAP. Available online: https://uamap.org.ua/.

Ukrainian Cartographic Network UA MAP (2021, December 02). Resource Maps. Available online: https://uamap.org.ua/resursnee-karti.

Ukrainian Cartographic Network UA MAP (2021, December 02). Interactive Investment Resource Map. Available online: https://www.google.com/maps/d/viewer?mid=1s-CEXS6ltCny91b3FhUANkYgQIw&ll=50.63554648744927%2C32.79034396250006&z=6.

Ukrainian Cartographic Network UA MAP (2021, December 02). Interactive Online Map of the Energy Sector. Available online: https://map.ua-energy.org/en.

Ukrainian Cartographic Network UA MAP (2021, December 02). Chains of Heat Generation in the Online Map of the Energy Sector. Available online: https://map.ua-energy.org/en#teplo-section.

Ukrainian Cartographic Network UA MAP (2021, December 02). Chains of Heat Generation from CHP and NPP in the Online Map of the Energy Sector. Available online: https://map.ua-energy.org/en/categories/teplo/tes-aes.

Sribna, 2021, Forecasting solar generation in energy systems to accelerate the implementation of sustainable economic development, Polityka Energetyczna—Energy Policy J., 24, 5, 10.33223/epj/141095

Koval, 2021, Regulatory policy of renewable energy sources in the European national economies, Polityka Energetyczna—Energy Policy J., 24, 61, 10.33223/epj/141990