Examining the effect of different photovoltaic modules on cucumber crops in a greenhouse agrivoltaic system: A case study

IF 4.4 1区 农林科学 Q1 AGRICULTURAL ENGINEERING
Nabeel Gnayem, Esther Magadley, Alaa Haj-Yahya, Samar Masalha, Ragheb Kabha, Alhan Abasi, Hani Barhom, Madhat Matar, Mohammed Attrash, Ibrahim Yehia
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Abstract

Agrivoltaic systems, a fusion of agriculture and photovoltaic (PV) technology, have emerged as a sustainable solution to optimise land use by enabling simultaneous solar energy and agricultural harvesting. The experiments were conducted in a polytunnel greenhouse in Kfar Qara, Israel, deploying three types of semi-transparent solar PV panels—bifacial glass-encapsulated silicon, bifacial plastic-encapsulated silicon, and semi-transparent organic photovoltaics (OPVs) installed above the plant canopy. The impact of these PV treatments on cucumber crops was evaluated and juxtaposed against a control greenhouse with no panels, over the spring season from February to June 2022. Key growth and yield metrics were recorded during 17 harvests between April 10 and June 2, 2022. The findings revealed a negligible decline in crop yield across PV panel treatments compared to the control. Notably, the control and glass-encapsulated silicon PV treatments demonstrated an increase in yield, growth, and fruit quality. Moreover, the glass-encapsulated silicon PV panels outperformed the plastic-encapsulated and OPV module power conversion in the high heat and humidity of the greenhouse environment. This study accentuates the potential of integrating glass-encapsulated silicon PV panels in polytunnel greenhouses, heralding a promising avenue for bolstering agrivoltaic applications by ensuring a harmonious balance between agricultural yield and electrical energy production.

Abstract Image

研究不同光伏组件对温室农业光伏系统中黄瓜作物的影响:案例研究
农业光伏系统是农业与光伏(PV)技术的融合,是通过同时利用太阳能和农业收获来优化土地利用的可持续解决方案。实验在以色列卡法卡拉(Kfar Qara)的一个多层温室中进行,采用了三种半透明太阳能光伏板--双面玻璃封装硅、双面塑料封装硅和安装在植物冠层上方的半透明有机光伏(OPV)。在 2022 年 2 月至 6 月的春季,评估了这些光伏处理方法对黄瓜作物的影响,并将其与未安装电池板的对照温室进行对比。在 2022 年 4 月 10 日至 6 月 2 日的 17 次收获期间,记录了主要的生长和产量指标。研究结果表明,与对照组相比,各光伏板处理的作物产量下降幅度微乎其微。值得注意的是,对照组和玻璃封装硅光伏处理在产量、生长和果实质量方面都有所提高。此外,在温室的高温高湿环境下,玻璃封装硅光伏板的功率转换性能优于塑料封装和 OPV 模块。这项研究强调了将玻璃封装硅光伏板集成到多垄温室中的潜力,通过确保农业产量和电能生产之间的和谐平衡,预示着加强农业光伏应用的一条大有可为的途径。
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来源期刊
Biosystems Engineering
Biosystems Engineering 农林科学-农业工程
CiteScore
10.60
自引率
7.80%
发文量
239
审稿时长
53 days
期刊介绍: Biosystems Engineering publishes research in engineering and the physical sciences that represent advances in understanding or modelling of the performance of biological systems for sustainable developments in land use and the environment, agriculture and amenity, bioproduction processes and the food chain. The subject matter of the journal reflects the wide range and interdisciplinary nature of research in engineering for biological systems.
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