Department of Biological and Ecological Engineering, Oregon State University, Corvallis, Oregon, United States of America.
PLoS One. 2022 Oct 28;17(10):e0273119. doi: 10.1371/journal.pone.0273119. eCollection 2022.
Agrivoltaics, which integrate photovoltaic power production with agriculture in the same plot of land, have the potential to reduce land competition, reduce crop irrigation, and increase solar panel efficiency. To optimize agrivoltaic systems for crop growth, energy pathways must be characterized. While the solar panels shade the crops, they also emit longwave radiation and partially block the ground from downwelling longwave radiation. A deeper understanding of the spatial variation in incoming energy would enable controlled allocation of energy in the design of agrivoltaic systems. The model also demonstrates that longwave energy should not be neglected when considering a full energy balance on the soil under solar panels.
农光互补,即在同一块土地上整合太阳能发电和农业生产,具有减少土地竞争、减少作物灌溉和提高太阳能电池板效率的潜力。为了优化农光互补系统以促进作物生长,必须对能源途径进行分析。虽然太阳能电池板为作物遮荫,但它们也会发出长波辐射,并部分阻挡地面接收的长波辐射。深入了解入射能量的空间变化将有助于在农光互补系统的设计中对能量进行控制分配。该模型还表明,在考虑太阳能电池板下土壤的全能量平衡时,不应忽略长波能量。