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Agrivoltaics Can Reduce Soil Temperatures by More Than 20 C

Researchers are studying the effects of agrivoltaic systems on soil temperatures and crop growth in two pilot projects in Italy.

Researchers are studying the effects of agrivoltaic systems on soil temperatures and crop growth in two pilot projects in...

Agrivoltaic systems, which combine solar power generation with agriculture, can significantly alter the microclimate around crops. According to Giuseppe Ferrara, a professor at the University of Bari, soil temperatures recorded at agrivoltaic sites are more than 20 C below those measured in directly exposed areas.

Ferrara's team is currently taking field measurements at two pilot sites in Italy. The first site is the Vigna Agrivoltaica di Comunità in Laterza, where researchers are studying fig and olive crops. The second site is an agrivoltaic installation operated by the Le Greenhouse consortium in Scalea, where the focus is on lemon and lavender.

The two projects are designed to complement each other, as they investigate different crops under different environmental conditions and with different photovoltaic configurations. The sites include fixed-tilt and tracking systems, as well as panels installed at different heights.

Measurements at the Laterza site have shown substantial differences between shaded and sun-exposed soil. At around 11 a.m., soil temperatures beneath the agrivoltaic system were more than 20 C lower than in areas directly exposed to sunlight. However, the difference can vary according to latitude, time of day, ambient temperature, and soil characteristics.

Soil color also plays a role, as darker soils generally absorb more solar radiation and can therefore reach higher temperatures. The cooling effect could be particularly relevant in Mediterranean regions, where agricultural production is increasingly exposed to high temperatures, intense solar radiation, and limited water availability.

However, the researchers are also examining how the reduction in solar radiation affects plant development. Reduced light availability is one of the main constraints of agrivoltaic systems. While shading can lower temperatures and potentially reduce water stress, excessive shading can limit photosynthetic activity and ultimately reduce crop yields.

The movement of the sun, and in some systems the movement of the photovoltaic panels, can help distribute radiation throughout the day. This can provide crops with sufficient light to maintain photosynthetic activity, growth, and production.

Ferrara and his team are also examining how different crops and system configurations interact with crop physiology and production. The researchers are looking not only at the amount of shade but also at how the timing and duration of shading interact with crop physiology and production.

The two pilot projects are intended to generate data across a range of crops and system configurations. According to Ferrara, this variety is important because there is no single agrivoltaic design that will be suitable for every crop or location.

Ferrara believes the research is particularly relevant to regions with Mediterranean climates, where high temperatures and solar radiation coincide with periods of limited water availability. The interaction between energy production and agriculture therefore needs to be considered at the site level. Crop selection is only one part of the equation; the configuration of the agrivoltaic system must also ensure that crops receive sufficient radiation to maintain an acceptable level of production.

Rather than relying on preconceived assumptions about which crops or systems will work best, Ferrara argues for continued field experimentation. "Agriculture is changing rapidly, particularly in response to drought," he said. "Agrivoltaics could represent another pathway that may be adopted, at least under certain climatic conditions."

| Site | Crop | System Configuration | | --- | --- | --- | | Vigna Agrivoltaica di Comunità | Fig and olive | Fixed-tilt and tracking systems, panels installed at different heights | | Le Greenhouse consortium | Lemon and lavender | Fixed-tilt and tracking systems, panels installed at different heights |

The ongoing measurements at Laterza and Scalea are intended to provide the data needed to determine where the potential of agrivoltaic systems can be realized and how they should be designed to balance electricity generation with agricultural production.

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