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光伏发电技术
★ 5.0
利用均匀/非均匀半透明光伏组件在受控环境中进行农光耦合生菜种植的透光效应
Transparency effects in agrivoltaics lettuce cultivation using uniform/non-uniform semitransparent photovoltaic modules in controlled environments
| 作者 | Uzair Jamil · Md Motakabbir Rahman · Koami Soulemane Hayibo · Linda Alrayes · Eric Fordjour · Raymond Thomas · Joshua M.Pearceb |
| 期刊 | Solar Energy |
| 出版日期 | 2025年1月 |
| 卷/期 | 第 302 卷 |
| 技术分类 | 光伏发电技术 |
| 相关度评分 | ★★★★★ 5.0 / 5.0 |
| 关键词 | First study comparing uniform vs. non-uniform illumination in agrivoltaics. |
语言:
中文摘要
摘要 农光耦合系统通过整合粮食与能源生产,为缓解土地资源限制提供了双重利用解决方案,然而光照分布特性——尤其是均匀性——对作物生长性能的影响仍缺乏深入理解。本研究在保持相近透光率条件下,探讨了生菜在两种不同农光耦合光照策略下的生理响应与产量表现:(1)由碲化镉(CdTe)薄膜光伏(PV)组件提供的均匀光照;(2)由双面晶硅(c-Si)光伏组件产生的非均匀光照,其具有交替排列的电池区与玻璃区。实验采用透光率为40%、50%和70%的CdTe组件,以及透光率为44%和69%的双面c-Si组件。测量的关键参数包括光合有效辐射(PAR)、气体交换指标(光合速率、气孔导度、胞间CO2浓度、蒸腾速率)以及形态学特征(植株高度、叶片数量、鲜重)。结果表明,透光率为69%的c-Si组件不仅保持了与露天对照组相当的生菜产量,且实现了3.6%的增产;相比之下,透光率相似的CdTe组件却导致产量下降6%,凸显了光照非均匀性在优化植物响应中的关键作用。这些发现表明,具有空间光强异质性的c-Si系统可提升作物生长表现,为实现农业可持续集约化提供了新机遇。若将该技术推广至加拿大所有生菜种植区域,预计可产生1,200兆瓦太阳能电力,每年增加农业收入2,000万加元,并通过太阳能土地租赁额外带来3,000万加元收益。本研究支持将非均匀半透明光伏组件的集成作为实现能源与农业协同发展的可行路径,助力构建可持续未来。
English Abstract
Abstract Agrivoltaic systems offer a dual-use solution to land constraints by integrating food and energy production, yet the influence of light distribution characteristics—particularly uniformity—on crop performance remains poorly understood. This study investigates the physiological and yield responses of lettuce under two contrasting agrivoltaic lighting strategies while maintaining comparable transparency: (1) uniform illumination from cadmium telluride (CdTe) thin-film photovoltaic (PV) modules and (2) non-uniform illumination from bifacial crystalline silicon (c-Si) PV modules with alternating cell and glass regions. Experiments were conducted using CdTe modules at 40 %, 50 %, and 70 % transparency and bifacial c-Si modules at 44 % and 69 % transparency. Key parameters measured include photosynthetically active radiation (PAR), gas exchange metrics (photosynthesis rate, stomatal conductance, intercellular CO 2 , transpiration), and morphological traits (plant height, leaf count, fresh weight). Results reveal that 69 % transparent c-Si modules not only preserved lettuce yield relative to open-field controls but achieved a 3.6 % enhancement. Conversely, CdTe modules of similar transparency caused a 6 % yield reduction, underscoring the importance of light non-uniformity in optimizing plant response. These findings demonstrate that spatial light heterogeneity – characteristic of c-Si systems – can enhance crop performance, presenting an opportunity for sustainable intensification. Scaling this technology across Canada’s lettuce-growing regions could generate 1,200 MW of solar power while boosting agricultural revenue by CAD $20 million annually, with an additional CAD $30 million from solar land leasing. This study supports the integration of non-uniform, semi-transparent PV modules as a viable pathway toward synergistic energy-agriculture systems for a sustainable future.
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SunView 深度解读
该农光互补研究揭示非均匀透光型光伏组件可提升作物产量3.6%,对阳光电源SG系列逆变器在农光互补场景具有重要启示。建议优化MPPT算法以适配双面组件的非均匀光照特性,结合iSolarCloud平台实时监测PAR数据与发电效率,开发农光互补专用控制策略。该技术可拓展至设施农业+储能微网场景,通过ST系列储能系统平抑光照波动,保障作物生长稳定性与电网友好性,为公司在农光互补、乡村能源转型领域提供差异化解决方案。