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不同面板高度的农光互补系统对热环境的调节作用。

Regulatory effect of agriphotovoltaic systems with different panel heights on the thermal environment.

作者信息

Gong Wei, Zhang Long, Gong Jianhui, Geng Xiayun, Wang Li, Deng Li, Wu Cuinan, Bao Encai

机构信息

School of Information Technology, Jiangsu Open University, Nanjing, 210036, China.

Institute of Agricultural Facilities and Equipment, Jiangsu Academy of Agricultural Sciences, Nanjing, 210014, China.

出版信息

Sci Rep. 2025 Apr 1;15(1):11196. doi: 10.1038/s41598-025-96166-5.

Abstract

Agriphotovoltaic (APV) systems emerge as a progressive solution to the dual challenge of sustainable energy generation and agricultural production. The thermal environment introduced by the photovoltaic (PV) panels plays a pivotal role within APV systems, influencing both plant growth and solar efficiency. However, a comprehensive investigation into the study for the regulatory effect of APV systems with different panel heights on the thermal environment has yet to be fully conducted. This study addressed this gap by carrying out test monitoring and establishing a thermal model based on computational fluid dynamics to explore the regulatory effect of different panel heights on air and soil temperature. Three panel heights of APV systems were selected, which were 2.5 m (H2.5), 3.2 m (H3.2), and 3.9 m (H3.9), respectively. The experimental plot for each panel height was segmented into 3 areas along the span direction, which were the southern, middle, and northern area. The key findings of this study revealed that the height of PV panels significantly affects the distribution of soil temperatures within the APV systems. At a reduced height of 2.5 m, the soil temperature in the middle area was notably higher compared to the northern and southern areas. When the panel height was increased to 3.9 m, soil temperatures in the northern and southern areas rose, while those in the middle area decreased. These results emphasize the pronounced sensitivity of soil temperatures to variations in panel height. Additionally, although air temperature differences across the varying panel heights were minimal, raising the panel height facilitated improved air circulation in the middle area. This enhanced airflow contributed to a more balanced heat exchange, thereby creating a more favorable environment for crop growth. In conclusion, adjusting the height of PV panels enables effective regulation of soil and air temperatures across different areas, thereby creating a favorable microclimate for crop growth. This study plays a crucial role in boosting the overall efficiency of APV systems, maximizing crop yields, and extending the return on investment period for the project.

摘要

农业光伏(APV)系统作为应对可持续能源生产和农业生产双重挑战的一种进步解决方案而出现。光伏(PV)板引入的热环境在APV系统中起着关键作用,影响着植物生长和太阳能效率。然而,对于不同面板高度的APV系统对热环境的调节作用的研究尚未全面开展。本研究通过进行测试监测并基于计算流体动力学建立热模型,以探索不同面板高度对空气和土壤温度的调节作用。选择了APV系统的三个面板高度,分别为2.5米(H2.5)、3.2米(H3.2)和3.9米(H3.9)。每个面板高度的试验地块沿跨度方向被划分为3个区域,即南部、中部和北部区域。本研究的关键发现表明,光伏板的高度显著影响APV系统内土壤温度的分布。在2.5米的较低高度下,中部区域的土壤温度明显高于北部和南部区域。当面板高度增加到3.9米时,北部和南部区域的土壤温度上升,而中部区域的土壤温度下降。这些结果强调了土壤温度对面板高度变化的显著敏感性。此外,尽管不同面板高度之间的气温差异很小,但提高面板高度有助于改善中部区域的空气流通。这种增强的气流有助于更平衡的热交换,从而为作物生长创造更有利的环境。总之,调整光伏板的高度能够有效调节不同区域的土壤和空气温度,从而为作物生长创造有利的微气候。本研究对于提高APV系统的整体效率、最大化作物产量以及延长项目的投资回收期起着至关重要的作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/51f9/11961691/89b6d049d84a/41598_2025_96166_Fig1_HTML.jpg

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