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March 1, 2026SHILAP Revista de lepidopterología2 citationsOpen Access

Optimising the design of agrivoltaic systems for enhanced land productivity and electricity supply in Sub-Saharan Africa

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NANaa Okailey AyiteyHAHabeel AlamJNJenny Nelson

Key Points

  • The aim is to optimize the design of agrivoltaic systems to improve land productivity, energy access, and economic viability in sub-Saharan Africa.
  • Used energy-system and crop modelling for optimal agrivoltaic system design.
  • Compared conventional PV systems with agrivoltaic configurations above crops.
  • Evaluated fixed-tilt, single-axis tracking, and vertical bifacial setups.
  • Calculated optimal system sizes for 100% and 95% reliability levels.
  • Single-axis tracking agrivoltaic system had the lowest unit cost, 11% higher than conventional PV at 95% reliability.
  • With agrivoltaic systems, the farm's financial deficit was significantly reduced.
  • At 95% reliability, the farm became profitable with revenues exceeding costs.
  • Higher ratios between module spacing and height (P-by-H ratios) improved system profitability.
  • All agrivoltaic systems achieved land-equivalent ratios greater than 1, enhancing efficiency.

Abstract

Abstract Agrivoltaic systems offer the potential to boost land productivity, reduce water consumption and improve access to energy: an energy-food-water nexus solution. Agrivoltaic systems are promising for regions with relatively low land productivity and both energy- and water-access challenges, such as sub-Saharan Africa. However, there is a lack of research exploring the use of agrivoltaics in such contexts. This study addresses that gap. It uses both energy-system and crop modelling to explore optimal agrivoltaic system design and deployment for a medium-sized farm, located in Zimbabwe, where electricity is expensive and unreliable. We compare conventional, ground-mounted PV mini-grid systems with three agrivoltaic system configurations. We model fixed-tilt, single-axis tracking and vertical bifacial configurations installed above wheat and maize. We calculate the optimal required system sizes at 100% and 95% reliability levels. We find that the cheapest agrivoltaic system (on a unit cost basis) is single-axis tracking, with a unit cost only 11% higher than the ground-mounted PV at an equivalent 95% reliability level. Under our base-case scenario, high electricity costs from the grid mean that the farm is operating with a deficit (when considering crop revenues). However, with agrivoltaic systems, the deficit is significantly reduced and at 95% reliability, the farm becomes profitable with crop revenue exceeding upkeep costs. Of the agrivoltaic systems, all were profitable though this varied depending on the ratio between module spacing and height (P-by-H ratio). We found greater system profitability at higher P-by-H ratios, with the largest improvement when switching from a P-by-H ratio of 2 to 3. All agrivoltaic system types can achieve land-equivalent ratios (LERs) greater than 1, depending on the P-by-H ratio, indicating improved efficiency. Our calculation of the price-performance ratio (PPR) found that all system types were economical.

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Cite This Study

Ayitey et al. (2026) studied this question.

synapsesocial.com/papers/69a3d747ec16d51705d2dc03https://doi.org/10.1088/2515-7620/ae43ac
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Also Consider

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