Comparing Microclimate Conditions Induced by Semi-Transparent and Conventional Agrivoltaic Systems and Their Effects on Arugula Response (Eruca vesicaria) in Southern Italy
Abstract
1. Introduction
2. Materials and Methods
2.1. Case Study
2.2. Data Collection
2.2.1. Treatment Definition
2.2.2. Irrigation Uniformity Test
- -
- The average of the 16 flow measurements obtained: q
- -
- The average of the four lowest flow values: qinf
2.2.3. Soil Water Content and Soil Temperature Measures
2.2.4. Physiological Parameters
2.2.5. Yield
2.3. Statistical Analysis
3. Results and Discussion
3.1. Soil, Leaf-Level Gas Exchange and Biometric Yield Assessment
3.1.1. Variation of the Temperature Below and Above AV
3.1.2. The Analysis of the Soil Water Content Trend
3.1.3. Irrigation and Soil Water Uniformity
3.1.4. Incoming Radiation and Photosynthetic Active Radiation (PAR)
3.1.5. Leaf Gas Exchange Responses
3.2. Fresh and Dry Yield of Arugula
4. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| AV | Agrivoltaic |
| CON | Conventional |
| FC | Field Capacity |
| PAR | Photosynthetically Active Radiation |
| PPFD | Photosynthetic Photon Flux Density |
| PV | Photovoltaic |
| PWP | Permanent Wilting Point |
| RE | Renewable Energy |
| ST | Semi-transparent |
| TDR | Time Domain Reflectometer |
| UC | Uniformity Coefficient |
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| Semi-Transparent Panels (Viessmann Vitovolt 300 M310 RA) | Conventional Panels (Viessmann Vitovolt 300 M390 WG) | |
|---|---|---|
| Nominal Power Output (PMPP) | 310 Wp | 390 Wp |
| Maximum Power Voltage (VMPP) | 32.9 V | 40.8 V |
| Maximum Power Current (IMPP) | 9.52 A | 9.56 A |
| Open Circuit Voltage (Voc) | 40.3 V | 49.3 V ± 3% |
| Short Circuit Current (Isc) | 10.12 A | 10.03 A ± 3% |
| Maximum System Voltage | DC 1500 V | DC 1500 V |
| Power Tolerance | ±5% | ±3% |
| Power Sorting | 0~+5 W | 0~+5 W |
| Fuse rating | 20 A | 20 A |
| PV Module classification | Class II | Class II |
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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.
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Chebli, H.; Dragonetti, G.; Fouial, A. Comparing Microclimate Conditions Induced by Semi-Transparent and Conventional Agrivoltaic Systems and Their Effects on Arugula Response (Eruca vesicaria) in Southern Italy. Resources 2026, 15, 33. https://doi.org/10.3390/resources15020033
Chebli H, Dragonetti G, Fouial A. Comparing Microclimate Conditions Induced by Semi-Transparent and Conventional Agrivoltaic Systems and Their Effects on Arugula Response (Eruca vesicaria) in Southern Italy. Resources. 2026; 15(2):33. https://doi.org/10.3390/resources15020033
Chicago/Turabian StyleChebli, Hiba, Giovanna Dragonetti, and Abdelouahid Fouial. 2026. "Comparing Microclimate Conditions Induced by Semi-Transparent and Conventional Agrivoltaic Systems and Their Effects on Arugula Response (Eruca vesicaria) in Southern Italy" Resources 15, no. 2: 33. https://doi.org/10.3390/resources15020033
APA StyleChebli, H., Dragonetti, G., & Fouial, A. (2026). Comparing Microclimate Conditions Induced by Semi-Transparent and Conventional Agrivoltaic Systems and Their Effects on Arugula Response (Eruca vesicaria) in Southern Italy. Resources, 15(2), 33. https://doi.org/10.3390/resources15020033

