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Optimisation of Agrivoltaic Systems within the Water-Energy-Food Nexus
Mälardalen University, School of Business, Society and Engineering, Future Energy Center.ORCID iD: 0000-0003-2225-029X
Mälardalen University, School of Business, Society and Engineering, Future Energy Center.ORCID iD: 0000-0003-4075-8855
Department of Sustainable Crop Production, Piacenza, Italy, Università Cattolica del Sacro Cuore.
Mälardalen University, School of Business, Society and Engineering, Future Energy Center.ORCID iD: 0000-0002-1351-9245
(English)Manuscript (preprint) (Other academic)
Abstract [en]

Agrivoltaic (APV) systems enable the co-production of food and solar energy, yet their optimal design depends on complex interactions among climate, crops, and policy frameworks. This study introduces a multi-objective optimisation framework that integrates multi-year crop rotation, diverse APV configurations (vertical, one-axis tracking, overhead), and explicit national regulatory constraints across three European countries: Sweden, Germany, and Italy. The model couples high-resolution photovoltaic (PV) and crop-growth simulations to evaluate trade-offs across the water–energy–food (WEF) nexus. Results show that both climate and regulation strongly shape feasible system geometries. Under Swedish subsidy limits (≤10 % land occupation), one-axis tracking systems achieved total land-equivalent ratios (LER) around 1.25 and water savings near 10 %. Under German yield-retention rules (≥66 %), overhead systems achieved LER around 1.36 and strong economic returns. While under Italian ministerial constraints, feasible designs emerged only in the enhanced WEF scenario, achieving LER up to 1.66 with water-use reductions approaching 20 %. These outcomes demonstrate that applying identical policy thresholds across different climates can suppress overall sustainability performance, highlighting the need for climate- and crop-sensitive APV policy frameworks to unlock their full WEF potential.

Keywords [en]
Agrivoltaics, Water-Energy-Food Nexus, Multi-objective Optimisation, Policy Constraints, Crop Modelling, Land-Use Efficiency, Genetic Algorithm
National Category
Energy Engineering
Research subject
Energy- and Environmental Engineering
Identifiers
URN: urn:nbn:se:mdh:diva-74933OAI: oai:DiVA.org:mdh-74933DiVA, id: diva2:2019507
Funder
Swedish Energy Agency, 52693-1Swedish Energy Agency, P2022-00809Swedish Research Council Formas, FR-2021/0005Available from: 2025-12-08 Created: 2025-12-08 Last updated: 2025-12-22Bibliographically approved
In thesis
1. The Agrivoltaic Nexus: Modelling and Optimising Water, Energy, Economy, and Food Trade-offs
Open this publication in new window or tab >>The Agrivoltaic Nexus: Modelling and Optimising Water, Energy, Economy, and Food Trade-offs
2026 (English)Doctoral thesis, comprehensive summary (Other academic)
Abstract [en]

Agrivoltaic (APV) systems, where photovoltaic (PV) modules are co-located with crops, present a promising solution to land-use competition between food and energy conversion. Their successful deployment, however, requires a nuanced understanding of the trade-offs between electricity generation, crop yield, water use, and regulatory constraints. In this dissertation, a comprehensive modelling framework was developed to evaluate the technical, environmental, and economic performance of APV systems across diverse European contexts. The work builds on advances in irradiance transposition modelling, view-factor analysis, and crop yield estimation, which together enable more accurate characterisation of light distribution and photosynthetically active radiation (PAR) under different system designs. A state-of-the-art review of APV modelling approaches further situates these contributions within the wider field and identifies critical gaps in integrated assessment and validation. On this foundation, scenario-based optimisation was applied to explore system performance across varying climates, row pitches, heights, and orientations, under constraints reflecting national APV regulations. 

A novel combination of LER-based (land equivalent ratio, comparing the combined energy and crop productivity to their separate cultivation) metrics and economic indicators was used to characterise outcomes, with results evaluated over multiple weather years. The findings show that design modifications in geometric layout, particularly row pitch and orientation, can significantly shift the balance between LERcrop and LERPV, affecting both productivity and profitability. Results further reveal that regulatory thresholds strongly influence feasibility: while strict national frameworks rendered most configurations unviable, relaxed rules enabled designs achieving LER values above 1.3 and net present values (NPVs) exceeding €2 million per hectare. If crop models were to incorporate adaptive mechanisms, even stricter regulatory scenarios could become feasible, with LER values above 1.6 in favourable contexts. Overall, this dissertation contributes transparent and generalisable modelling tools that link detailed irradiance and crop representation with system-level optimisation. The findings underscore the importance of integrating economic, agronomic, and policy perspectives, while pointing to future work on crop model realism, spectral and microclimate effects, and expanded crop databases to further enhance the robustness of APV deployment strategies.

Place, publisher, year, edition, pages
Västerås: Mälardalen University, 2026. p. 179
Series
Mälardalen University Press Dissertations, ISSN 1651-4238 ; 458
National Category
Energy Engineering
Research subject
Energy- and Environmental Engineering
Identifiers
urn:nbn:se:mdh:diva-74935 (URN)978-91-7485-743-6 (ISBN)
Public defence
2026-01-30, Delta, Mälardalens universitet, Västerås, 09:15 (English)
Opponent
Supervisors
Available from: 2025-12-08 Created: 2025-12-08 Last updated: 2026-01-09Bibliographically approved

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