The Role of Clean Generation Technologies in the Energy Transformation in Poland
Abstract
:1. Introduction
1.1. International Context
1.2. Overview of Technologies and Energy Transformation History in Poland
1.3. Determinants of Clean Technology Development in the Light of the Literature
2. Materials and Methods
3. Results
4. Discussion
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Years | 2000 | 2005 | 2010 | 2015 | 2020 |
---|---|---|---|---|---|
Solid fossil fuels | 11,642.30 | 11,436.94 | 13,775.50 | 9704.27 | 9415.05 |
Electricity | 8432.81 | 9028.80 | 10,205.61 | 10,990.53 | 11,807.53 |
Natural gas | 8158.00 | 9925.99 | 10,384.20 | 10,472.98 | 12,219.35 |
Heat | 6886.21 | 6634.30 | 6546.91 | 5462.26 | 5602.44 |
Oil and petroleum products | 17,156.09 | 19,862.90 | 23,262.13 | 21,996.33 | 27,824.59 |
Renewables and biofuels | 3525.92 | 3856.46 | 5289.85 | 5569.71 | 9040.93 |
Non-renewable waste | 76.22 | 136.38 | 378.17 | 486.36 | 831.29 |
Equation Number/Test (p-Values) | Breusch–Pagan Test | Hausman Test |
---|---|---|
0.0124423 | 0.437716 | |
0.157497 | 0.962666 | |
1.93358 × 10−5 | 0.235734 | |
0.502096 | 0.700621 | |
4.19145× 10−242 | 0.993366 |
Variable | Mean | Median | Standard Deviation | Minimum | Maximum |
---|---|---|---|---|---|
0.255 | 0.232 | 0.232 | 0.0100 | 0.900 | |
5.02 × 10−5 | 3.77 × 10−5 | 4.69 × 10−5 | 4.21 × 10−8 | 0.000197 | |
0.000270 | 0.000226 | 0.000237 | 7.67 × 10−6 | 0.000894 | |
1.43 | 1.08 | 0.872 | 0.354 | 3.05 | |
5.88 | 2.54 | 10.8 | −59 | 70.8 | |
4.28 | 4.30 | 2.41 | −0.0802 | 10.7 | |
3.97 | 3.89 | 0.349 | 3.37 | 5.00 | |
46.6 | 50.8 | 23.6 | 10.7 | 83.8 |
Variable/Equation | (1) | (2) | (3) | (4) | (5) |
---|---|---|---|---|---|
Intercept | −0.433746 * (0.228693) | −1.40411 *** (0.334529) | −0.000140121 *** (4.27570 × 10−5) | −0.00141947 *** 0.000323508 | −5.77480 × 10−6 1.14719 × 10−5 |
EPS | 0.261184 *** | - | 7.02005 × 10−5*** | - | 2.83404 × 10−5 *** |
(0.0873021) | (1.26750 × 10−5) | (2.32676 × 10−6) | |||
PRICE | 0.0206988 ** | 0.0234802 *** | 3.95569 × 10−6 *** | 2.45454 × 10−5 *** | 3.66296 × 10−7 * |
(0.00967881) | (0.00474481) | (1.35337 × 10−6) | (4.52073 × 10−6) | (1.91060 × 10−7) | |
INTEREST | 0.0836572 *** | - | 8.13193 × 10−5 *** | - | |
- | (0.0131207) | (1.24756 × 10−5) | |||
IPR | - | 0.311337 *** | - | 0.000324860 *** | - |
(0.0741619) | (7.26536 × 10−5) | ||||
SHARE | - | 0.00104642 (0.000948181) | - | - | - |
Time span of data | 2000–2012 | 2008–2019 | 2008–2012 | 2008–2019 | 1995–2015 |
Regression type | Pooled OLS | Pooled OLS | RE | Pooled OLS | RE |
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Wojtkowska-Łodej, G.; Jakubów, E. The Role of Clean Generation Technologies in the Energy Transformation in Poland. Energies 2022, 15, 4863. https://doi.org/10.3390/en15134863
Wojtkowska-Łodej G, Jakubów E. The Role of Clean Generation Technologies in the Energy Transformation in Poland. Energies. 2022; 15(13):4863. https://doi.org/10.3390/en15134863
Chicago/Turabian StyleWojtkowska-Łodej, Grażyna, and Elżbieta Jakubów. 2022. "The Role of Clean Generation Technologies in the Energy Transformation in Poland" Energies 15, no. 13: 4863. https://doi.org/10.3390/en15134863
APA StyleWojtkowska-Łodej, G., & Jakubów, E. (2022). The Role of Clean Generation Technologies in the Energy Transformation in Poland. Energies, 15(13), 4863. https://doi.org/10.3390/en15134863