Solar Power in Italy: Evaluating the Potential of Concentrated Solar Power and Photovoltaic Technologies
Abstract
1. Introduction
2. Materials and Methods
Model for Mapping Solar Radiation Potential
3. Results
3.1. Solar Potential of Italy
3.2. Solar Potential for the Locations of Interests
3.3. Real Case Simulation of CSP and PV Plants
3.3.1. CSP Plant
3.3.2. PV Plant
4. Discussion
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Abbreviations
| ENEA | Italian National Agency for New Technologies, Energy and Sustainable Economic Development |
| CSP | concentrated solar power |
| PV | photovoltaic |
| PTC | parabolic trough collectors |
| LCOE | levelized cost of electricity |
| MSG | Meteosat Second Generation Satellite |
| GHI | global horizontal irradiance (I) |
| DiffHI | diffuse horizontal irradiance (Id) |
| DHI | direct horizontal irradiance (Ib) |
| DNI | direct normal irradiance (Ibn) |
| EHI | extra-atmospheric irradiance on a horizontal plane (I0) |
| θz | zenith angle |
| KT | global transmission coefficient of solar radiation through the atmosphere, the clearness index |
| KTc | global transmission coefficient under clear-sky conditions, the clear-sky transmittance |
| Kc | clear-sky index |
| B,P,A | statistical regression parameters |
| k | fraction of diffuse radiation on a horizontal plane |
| WGS | World Geodetic System |
| TMY | typical meteorological year |
| RMSE | root mean square error |
| BSRN | baseline surface radiation network |
| Ta | ambient temperature |
| PTC | parabolic trough concentrated plant |
| TES | thermal energy storage |
| H.T. | hot storage tank |
| C.T. | cold storage tank |
| ANI | aperture normal irradiance |
| CF | capacity factor |
| PERC | passivated emitter and rear cell |
| STC | standard test conditions |
| AM | air mass |
| E.E. | electrical energy |
| POA | plane-of-array |
| GI | global irradiance incident on the module surface |
| IAM | the angle-of-incidence modifier |
| GCR | ground coverage ratio |
| PR | performance ratio |
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| PEL Nominal Electrical Power | 1 MWe |
| th Rankine cycle | 0.38 |
| Pth nominal thermal power to power block | 2.65 MWth |
| Thermal fluid | Solar salts (290–550 °C) |
| opt optical efficiency [29] | 0.758 |
| th thermal efficiency [29] | 0.8827 (for ANI of 800 W·m−2) |
| SM solar multiple | 2.5 |
| Type of collector and receiver tube [29] | ENEA |
| ANI ref design | 800 W·m−2 |
| Electrical Data (STC) | |
|---|---|
| Nominal max. power (Pmax) | 550 W |
| Module efficiency | 21.5% |
| Open-circuit voltage (Voc) | 49.6 V |
| Short-circuit current (Isc) | 14.00 A |
| Mechanical Data | |
| Cell type | Mono-crystalline |
| Dimensions | 2261 × 1134 × 30 mm |
| Temperature Characteristics | |
| Temperature coefficient (Pmax) | −0.34%/°C |
| Temperature coefficient (Voc) | −0.26%/°C |
| Temperature coefficient (Isc) | 0.05%/°C |
| Nominal module operating temperature | 41 ± 3 °C |
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© 2026 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license.
Share and Cite
Caputo, G.; Balog, I.; Canneto, G. Solar Power in Italy: Evaluating the Potential of Concentrated Solar Power and Photovoltaic Technologies. Energies 2026, 19, 1446. https://doi.org/10.3390/en19061446
Caputo G, Balog I, Canneto G. Solar Power in Italy: Evaluating the Potential of Concentrated Solar Power and Photovoltaic Technologies. Energies. 2026; 19(6):1446. https://doi.org/10.3390/en19061446
Chicago/Turabian StyleCaputo, Giampaolo, Irena Balog, and Giuseppe Canneto. 2026. "Solar Power in Italy: Evaluating the Potential of Concentrated Solar Power and Photovoltaic Technologies" Energies 19, no. 6: 1446. https://doi.org/10.3390/en19061446
APA StyleCaputo, G., Balog, I., & Canneto, G. (2026). Solar Power in Italy: Evaluating the Potential of Concentrated Solar Power and Photovoltaic Technologies. Energies, 19(6), 1446. https://doi.org/10.3390/en19061446

