Analysis and Evaluation of the Possibility of Electricity Production from Small Photovoltaic Installations in Poland
Abstract
:1. Introduction
- Small installations: installations with a total installed capacity not exceeding 50 kW, their total capacity amounted to 3022 MW at the end of 2020, and as of Q1 2021 it was 3500 MW;
- Installations with a capacity of 50 kW—500 kW, at the end of 2020 their installed capacity in Poland reached 65 MW, currently it exceeds 71 MW;
- Photovoltaic installations with a capacity of over 500 kW, their total installed capacity was estimated at 75 MW;
- Photovoltaic installations built as part of the RES auction: their installed capacity at the end of 2020 was 750 MW, and currently their capacity may be 820 MW, these are photovoltaic farms as well as solar power plants with a capacity of approx. 1 MW.
- Prioritizing factors influencing the costs effectiveness of small PV installations in Poland using the expert-mathematical method;
- Determination of optimal strategy for solar energy production held by Polish households by analyzing the costs of electricity production from the levelized cost of electricity (LOCE) approach.
2. Methods
2.1. Prioritization of Socio-Economic Factors of Small PV Installations System via the Expert-Mathematical Method
2.2. Statistical Analysis
2.3. ETA Analysis
2.4. The Levelized Cost of Electricity (LCOE)
3. Results and Discussion
3.1. Economic and Social Aspects of Solar Energy Production in Small PV Installations in Poland
3.2. Prioritizing the Factors Influencing the Development of Small PV Systems in Poland
3.3. Analysis of Electricity Production Costs in Photovoltaic Installations Using the LCOE Method
4. Conclusions
- Based on the expert research, 15 socio-economic factors affecting solar energy production in small PV systems in Poland were evaluated. The event tree analysis (ETA) provided simplification structurization of output research data. In the ETA methodology, five-level II factors and a total number of fifteen III-level factors in the hierarchy tree were identified;
- Using the expert-mathematical method, a hierarchy of economic, technical, and social factors of PV-based energy production was evaluated. Analysis of socio-economic factors indicated that the greatest impact on the PV systems development in Poland depends on energy purchasing costs and EU law regulations on renewable energy sources (RESs);
- In the Polish market, in 2021–2022 significant changes regarding electricity prices and available grants for small PV systems were observed. The average price of electricity for households in the period analyzed increased from PLN 0.36 in 2001 to PLN 0.77 in April 2022 (+113.9% year/year). There was established a one-time subsidy of PLN 3.000 for newly built home photovoltaic installations up to 10 kW from the National Environmental Protection Fund. It is also possible for small producers of electricity from PV systems to use a tax deduction to reduce the income tax by the value of incurred investment costs for PV systems. These factors may have a significant impact on the development of the small PV installation sector in Poland in the coming years;
- To compare different renewable energy production technologies in terms of the economic efficiency of their production, we proposed the levelized cost of electricity (LCOE) index. The largest value among the presented components of the on-grid PV system is capital expenditures which amount to PLN 6337.10 per kWp, followed by maintenance and repair expenses and decommissioning costs of the PV system which amount to PLN 101.86 per kWh. The unit production cost of the proposed 10 kW PV installation, a capacity utilization rate of 13%, 25 years of operation of this installation, a liquidation cost of PLN 90/kWh, and a discount rate of 7%, amounted to PLN 0.49 per kWh of electricity produced. This value presented a much lower cost compared with the cost of buying electricity from the grid.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Correction Statement
References
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The Degree of Influence of the Source from the Experts’ View | A | B | C |
---|---|---|---|
High | Medium | Low | |
Theoretical knowledge in a given field | 0.3 | 0.2 | 0.1 |
Work experience | 0.5 | 0.4 | 0.2 |
Knowledge of domestic specialist literature | 0.05 | 0.05 | 0.05 |
Knowledge of international professional literature | 0.05 | 0.05 | 0.05 |
Intuition | 0.1 | 0.1 | 0.1 |
Factor | Description | Value of Local Priority mj | Coefficient of Variation Vj |
---|---|---|---|
C21 | European Union law regulations affecting the development of the PV installation sector in Poland | 29 | 0.14 |
C22 | Technical and social opportunities affecting the development of the PV energy sector in Poland | 16 | 0.11 |
C23 | Prices and availability of conventional energy sources | 21 | 0.17 |
C24 | Environmental aspects of RES application in Poland | 7 | 0.19 |
C25 | Photovoltaic generation costs and grid electricity purchase prices | 27 | 0.14 |
Concordance ratio Θ0 | 0.624 | ||
Criterion χ2 | 29.79 |
Specification | 2021 | 2022 | Change |
---|---|---|---|
[GWh] | [GWh] | [%] | |
Total production | 13,407 | 14,739 | 9.94 |
Commercial power plants | 11,710 | 12,125 | 3.54 |
-professional water | 292 | 303 | 3.57 |
-professional heat | 11,418 | 11,822 | 3.54 |
-on hard coal | 6892 | 7357 | 6.74 |
-on lignite | 3608 | 3726 | 3.28 |
-gas | 918 | 739 | −19.46 |
Other renewable sources | 457 | 846 | 84.91 |
Wind farms | 1240 | 1769 | 42.7 |
Foreign exchange balance | 373 | −379 | - |
National electricity consumption | 13,780 | 14,360 | 4.21 |
Data to Determine Production Costs | Unit | Components of Production Costs |
---|---|---|
Capital expenditures | PLN/kW | 6337.10 |
Power utilization rate | % | 13.00 |
O and M, maintenance, and repair expenses for a given year | PLN/kW | 101.86 |
Service life | Years | 25.00 |
Photovoltaic decommissioning costs | PLN/kWh | 90.00 |
Discount rate | % | 7.00 |
Unit production costs | PLN/kWh | 0.49 |
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Izdebski, W.; Kosiorek, K. Analysis and Evaluation of the Possibility of Electricity Production from Small Photovoltaic Installations in Poland. Energies 2023, 16, 944. https://doi.org/10.3390/en16020944
Izdebski W, Kosiorek K. Analysis and Evaluation of the Possibility of Electricity Production from Small Photovoltaic Installations in Poland. Energies. 2023; 16(2):944. https://doi.org/10.3390/en16020944
Chicago/Turabian StyleIzdebski, Waldemar, and Katarzyna Kosiorek. 2023. "Analysis and Evaluation of the Possibility of Electricity Production from Small Photovoltaic Installations in Poland" Energies 16, no. 2: 944. https://doi.org/10.3390/en16020944
APA StyleIzdebski, W., & Kosiorek, K. (2023). Analysis and Evaluation of the Possibility of Electricity Production from Small Photovoltaic Installations in Poland. Energies, 16(2), 944. https://doi.org/10.3390/en16020944