浮动光伏建筑水域的水温与能量平衡--实地研究与建模

IF 8.4 2区 环境科学与生态学 Q1 ENVIRONMENTAL SCIENCES
Zhao Liu , Chao Ma , Yilin Yang , Xinyang Li , Haixing Gou , Andrew M. Folkard
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引用次数: 0

摘要

浮动光伏(FPV)是一种新兴的可再生能源技术。尽管近年来它们受到了广泛关注,但人们对其环境影响的了解还很有限。为了填补这一知识空白,我们在 FPV 阵列下和对照开放水域测量了六个月的水温和气象参数,并构建了一个反映水体能量平衡的数值模型。结果表明,FPV 阵列导致了水温和微气候的昼夜变化。具体来说,我们发现 FPV 在白天对其寄主水体有降温作用,而在夜间则有保温作用,从而减少了昼夜变化。FPV面板下方水温的昼夜振荡比开放水域滞后约两个小时。FPV 面板下方的小气候条件也发生了变化,风速降低了 70%,气温白天升高(平均 +2.01°C),夜间降低(平均 -1.27°C)。值得注意的是,相对湿度的变化趋势正好相反(-3.72%,+14.43%)。相关分析表明,FPV 对水温的影响程度与当地气候条件有关。数值模型能够捕捉能量平衡特征,模拟数据与实际数据的相关系数为 0.80。FPV 面板下方的短波辐射和潜热通量明显减少,FPV 面板发出的长波辐射成为白天的热源之一。这些因素的综合变化主导了 FPV 面板下方的水能平衡。测量数据和模拟结果为评估 FPV 系统对水温、能量收支和水环境的影响奠定了基础,同时也有助于更全面地了解 FPV 系统。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Water temperature and energy balance of floating photovoltaic construction water area—field study and modelling

Floating photovoltaics (FPV) are an emerging renewable energy technology. Although they have received extensive attention in recent years, understanding of their environmental impacts is limited. To address this knowledge gap, we measured water temperature and meteorological parameters for six months under FPV arrays and in the control open water site and constructed a numerical model reflecting the water energy balance. Our results showed that FPV arrays caused diurnal variation in water temperature and microclimate. Specifically, we found that FPV had a cooling effect on their host waterbody during the daytime and a heat preservation effect at night, reducing diurnal variation. The diel oscillation of water temperature below FPV panels lagged behind that of open waters by approximately two hours. The microclimate conditions below FPV panels also changed, with wind speed decreasing by 70%, air temperature increasing during the daytime (averaging +2.01°C) and decreasing at night (averaging −1.27°C). Notably, the trend in relative humidity was the opposite (−3.72%, +14.43%). Correlation analysis showed that the degree of water temperature affected by FPV was related to local climate conditions. The numerical model could capture the energy balance characteristics with a correlation coefficient of 0.80 between the simulated and actual data. The shortwave radiation and latent heat flux below FPV panels was significantly reduced, and the longwave radiation emitted by FPV panels became one of the heat sources during the daytime. The combined variations of these factors dominated the water energy balance below FPV panels. The measured data and simulation results serve as a foundation for evaluating the impact of FPV systems on water temperature, energy budget, and aquatic environment, which would also provide a more comprehensive understanding of FPV systems.

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来源期刊
Journal of Environmental Management
Journal of Environmental Management 环境科学-环境科学
CiteScore
13.70
自引率
5.70%
发文量
2477
审稿时长
84 days
期刊介绍: The Journal of Environmental Management is a journal for the publication of peer reviewed, original research for all aspects of management and the managed use of the environment, both natural and man-made.Critical review articles are also welcome; submission of these is strongly encouraged.
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