Investment and Innovation Activity of Renewable Energy Sources in the Electric Power Industry in the South-Eastern Region of Ukraine
Abstract
:1. Introduction
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- To conduct a comparative analysis of the general trends in the functioning of the energy complex of Ukraine and the south-eastern region;
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- To assess the potential, status, and features of the development of renewable energy sources in Ukraine and the south-eastern region;
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- To analyze the state and dynamics of investment and innovation processes in the south-eastern region;
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- To diagnose the effectiveness of the impact of investment and innovation processes on the development of the electric power industry.
2. Literature Review
3. Materials and Methods
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- Reports, presentations, news, press conferences, and administrative data from the official websites of central and local authorities;
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- Statistical data of the State Statistics Service of Ukraine and the Main Departments of Statistics in the studied south-eastern region;
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- Information, publications of state administrative and private enterprises of the electric power complex, their branch associations by type of electric power production, and scientific and analytical centres of analysis and study of problems with the development of the energy sector for the economy of Ukraine [23,24,25,26,27,28,29,30,31,32,33,34,35].
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- The installed capacity of power plants by type and in the regional context;
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- The volumes of electricity production in general, by type of power plants and regional distribution;
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- The volumes of use (consumption) of electricity in general, by types of economic activity and regions;
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- The number of emissions of harmful substances in the regional dimension and terms of the main power facilities in the south-eastern region of Ukraine;
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- The forecast values of the leading indicators of the electricity complex: production, consumption, and emissions of harmful substances (according to state programs, development strategies, and expert opinions of energy experts).
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- The installed capacity utilization factor (ICUF) of power plants (in general, in the regional context and type of power plants), which is calculated as the ratio of actual power generation of the generating unit for a certain period of operation to the theoretically possible year (1) and (2).
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- The installed capacity of power plants and the level of electricity production per enterprise in the industry;
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- The level of consumption and production of electricity per 1 thousand population;
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- The share of some areas of Ukraine and the south-eastern region in the production and consumption of electricity and the installed capacity of power plants;
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- The coefficient of localization of the installed capacity of power plants, which characterizes the territorial concentration of the production capacity of power plants and is calculated by Formula (3), as the ratio of the share of installed capacity of the generating units in the i-th region of the total installed capacity to the share of area of the i-th region in total between regions, with all values close to 1; the greater the power of the generating capacities concentrated in the i-th region, the more CLICPPi deviates from 1.
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- The number of emissions of harmful substances per one enterprise of the electric power complex of the i-th region;
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- The coefficient of the electricity deficit of the region allows us to estimate the level of coverage of electricity needs of the i-th region. It is calculated as the ratio between the volume of electricity use and its production for a certain period, usually a year. If the value is more than one, the study area belongs to the electricity-deficient, while the electricity surplus has a value greater than one.
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- The potential of the installed capacity of RES power plants in terms of their types and regional location;
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- The available installed capacity of RES power plants by type and in the regional dimension;
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- The volumes of electricity production with RES in general, by type of power plants and regional section;
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- The volumes and cost of RES electricity sold at the “green tariff” by type of power plant and regional breakdown;
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- The number of solar power plants in private households, their installed capacity, and the amount of electricity sold at the “green tariff”;
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- The forecast values of the leading indicators of the RES industry for the short and medium-term (according to government programs, development strategies, and expert opinions of energy experts).
- The utilization factor of the installed capacity of RES by type of power plants and regional location is calculated as the ratio of available installed capacity of the RES i-region at a particular time according to expert data in a given area.
- The resource capacity utilization factor of RES power plants (in general, in the regional context and type of power plants);
- The coefficient of the localization of the installed capacity and volumes of electricity production from RES characterizes the territorial features of the location of the production capacity of RES power plants in terms of their main types: solar, wind, and others;
- The ratio of the structure of electricity in terms of cost and volume of production for each energy source allows you to track the dynamics of trends in changes in the price of electricity from different sources of its production.
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- The volumes of capital investments (KI) involved in the type of economic activity “Supply of electricity, gas, steam and air conditioning” in general, in the regional context, and in individual enterprises within the electricity sector;
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- The volumes of c in the studied industry by territorial principle and type of power plants;
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- The number of enterprises in the field of electricity that were engaged in innovation activities in terms of the studied regions;
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- The total amount of expenditures on innovations, including by sources of funding (from own funds; state budget; funds of foreign investors, other sources);
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- KI and FDI per unit area, population, and enterprises in the field of electricity;
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- The relative indicators of structure and localization of capital and foreign direct investments in electricity, gas, steam, and air conditioning supplies.
- Economic indicators that reflect the efficiency of investment in the electricity sector include changes in the values of indicators that characterize the introduction of fixed assets—installed capacity in general and by type of power plants, installed capacity utilization, electricity production, and the sales and revenues of electricity companies.
- Indicators of social efficiency consider the social results of investment in this sector of the economy, mainly changes in unemployment and the number of newly created jobs, wages, and social stability in the industry.
- Resource and environmental efficiency indicators reflect the impact of investment on the production volume and consumption of a particular type of resource in the industry.
4. Research Results
5. Discussion and Conclusions
- Encouraging investment in renewable energy. Given that the effectiveness of investment in the renewable energy sector increases with the increasing production capacity of RES, policymakers may want to incentivize investment in the renewable energy sector.
- 2.
- Reducing dependence on traditional power plants. To improve the efficacy of investments in renewable energy, policymakers may need to reduce their reliance on conventional power plants. This could be accomplished by gradually eliminating subsidies for traditional power plants, implementing policies that encourage the retirement of outdated and inefficient power plants, or establishing emissions standards that make it more challenging for conventional power plants to operate. By reducing dependence on traditional power plants, policymakers can promote the transition to renewable energy and accelerate the transition to a low-carbon economy.
6. Limitations
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Type | Name | Installed Capacity, MW | Production Volumes, Million kWh | Installed Power Utilization Factor | Location | Emissions of Harmful Substances, t per Million kWh of Energy |
---|---|---|---|---|---|---|
Dnipropetrovsk region | ||||||
HPP | Kryvyi Rih | 2079 | 3134 | 0.17 | Zelenodolsk city | 9.81 |
Prydniprovska | 910 | 2882 | 0.36 | Dnipro city | 14.8 | |
TPP | Dniprovska | 61.6 | 87 | 0.16 | Kamyanske city | 1.3 |
HEPP | Middle Dnieper | 388 | 705 | 0.21 | Kamyanske city | - |
Zaporizhzhia region | ||||||
NPP | Zaporizhzhia | 6000 | 38,436 | 0.73 | Energodar city | - |
TEC | Zaporizhzhia | 2850 | 6040 | 0.24 | Energodar city | 15.7 |
HPP | Dniprovska | 1563.1 | 1898 | 0.14 | Zaporizhzhia city | |
Mykolaiv region | ||||||
NPP | South Ukrainian | 3000 | 17,879 | 0.68 | Yuzhnoukrainsk city | - |
TPP | Mykolayiv | 40 | 87.7 | 0.25 | Mykolayiv city | 0.81 |
HESPP | Tashlytska | 302 | 194.7 | 0.07 | Yuzhnoukrainsk city | - |
Kharkiv region | ||||||
HPP | Zmiivska | 2265 | 2576 | 0.13 | village Slobozhanske | 22.0 |
TPP | TPP-2 | 150 | 561.7 | 0.43 | village Eshar | 13.0 |
TPP-3 | 62 | 104 | 0.19 | Kharkiv city | - | |
TPP-5 | 540 | 1422.1 | 0.30 | village Podvirki | 2.4 | |
Kherson region | ||||||
HEPP | Kakhovka | 343.2 | 766.5 | 0.25 | Nova Kakhovka city | - |
Electricity Evaluation Indicators | Investments | ||
---|---|---|---|
Capital Investments, USD | Capital Investment per 1 sq. m | Capital Investments per 1 Person | |
Electricity losses in the power grid, per thousand kWh | −0.34 | −0.32 | −0.24 |
Installed capacity of power plants, per thousand kW | −0.23 | −0.24 | −0.49 |
Volumes of electricity production, per million kWh | −0.35 | −0.3 | −0.33 |
Installed capacity of RES facilities, per MW | 0.74 | 0.77 | 0.79 |
Annual increase in capacity of generating installations of RES facilities | 0.85 | 0.91 | 0.89 |
Volumes of electricity production from RES, per million kWh. | 0.65 | 0.70 | 0.72 |
Installed capacity of SES, per MW | 0.82 | 0.72 | 0.61 |
Annual increase in SES capacity, per MW | 0.73 | 0.78 | 0.84 |
SES electricity production volumes, per million kWh | 0.56 | 0.64 | 0.63 |
Number of emissions of harmful substances in the field of EGSAC, per tons | 0.45 | 0.4 | 0.01 |
Number of enterprises by type of economic activity EGSAC | 0.67 | 0.6 | 0.53 |
Gross value added in the field of EGSAC | −0.17 | −0.2 | −0.51 |
Installed power utilization factor (ICUF), per % | −0.3 | −0.19 | 0.16 |
Regional electricity and energy deficit coefficient | −0.4 | −0.3 | 0.02 |
Name | Wind Power Plants (WPP) | Data as of 2021 | ||||
---|---|---|---|---|---|---|
Orlivska | Myrnenska | Primorska | Overyanivska | Total | Actual/ Estimated | |
Investment volume, per million EUR | 131 | 245 | 321 | 103 | 800 | 1534.6 |
Installed capacity, MW | 100 | 163 | 200 | 68.4 | 531.4 | 1019.40 |
Planned volume of electricity production, per million kWh | 380 | 574 | 700 | 266 | 1920 | 2107.60 |
Reduction of emissions of harmful substances, per thousand tons | 400 | 455 | 750 | 210 | 1815 | 1992.3 |
Number of households supplied with electricity WPP, per thousand | 127 | 191 | 233 | 44 | 595 | 1141.4 |
Amount of investment required to install 1 MW of additional WPP generating capacity, per million EUR/MW | 1.31 | 1.50 | 1.61 | 1.51 | 1.51 | 1.51 |
The amount of investment required to produce one additional kWh. of WPP electricity, per EUR/kWh | 0.34 | 0.43 | 0.46 | 0.39 | 0.42 | 0.42 |
The level of reduction of emissions of harmful substances per 1 thousand kWh. of produced electricity WPP, per t/thousand kWh | 1.05 | 0.79 | 1.07 | 0.79 | 0.95 | 0.95 |
Amount of investment per 1000 households supplied with electricity by WPP, per million EUR | 1.031 | 1.283 | 1.378 | 2.341 | 1.345 | 1.345 |
Estimated optimal investment in WPP development that will provide the required level of WPP electricity generation to meet the needs of households, per million EUR | 3808 | |||||
Estimated installed capacity of WPP required to meet household electricity demand, per MW | 2530 | |||||
Estimated WPP electricity production required to meet household needs, per million kWh | 1586 |
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Sala, D.; Bashynska, I.; Pavlova, O.; Pavlov, K.; Chorna, N.; Chornyi, R. Investment and Innovation Activity of Renewable Energy Sources in the Electric Power Industry in the South-Eastern Region of Ukraine. Energies 2023, 16, 2363. https://doi.org/10.3390/en16052363
Sala D, Bashynska I, Pavlova O, Pavlov K, Chorna N, Chornyi R. Investment and Innovation Activity of Renewable Energy Sources in the Electric Power Industry in the South-Eastern Region of Ukraine. Energies. 2023; 16(5):2363. https://doi.org/10.3390/en16052363
Chicago/Turabian StyleSala, Dariusz, Iryna Bashynska, Olena Pavlova, Kostiantyn Pavlov, Nelia Chorna, and Roman Chornyi. 2023. "Investment and Innovation Activity of Renewable Energy Sources in the Electric Power Industry in the South-Eastern Region of Ukraine" Energies 16, no. 5: 2363. https://doi.org/10.3390/en16052363
APA StyleSala, D., Bashynska, I., Pavlova, O., Pavlov, K., Chorna, N., & Chornyi, R. (2023). Investment and Innovation Activity of Renewable Energy Sources in the Electric Power Industry in the South-Eastern Region of Ukraine. Energies, 16(5), 2363. https://doi.org/10.3390/en16052363