不同湍流强度下风对浮式光伏系统太阳能电池板阵列影响的实验研究与经济评价

IF 8 Q1 ENERGY & FUELS
Krishna Debnath , Chien-Chun Hsieh , Chao-Yang Huang , Jagadish Barman , Chung-Feng Jeffrey Kuo
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引用次数: 0

摘要

全球对可再生能源的需求不断增长,以及适合大规模光伏(PV)装置的土地稀缺,推动了人们对浮动光伏(FPV)系统的兴趣。由于太阳能被证明是一种高效的可再生能源,FPV系统正在全球广泛采用。然而,在恶劣的环境条件下,这些系统面临着下沉或倾覆等挑战。本文研究了不同风速和湍流强度下FPV系统的气动性能和经济可行性。采用1:50比例模型,对单岛和多阵FPV装置进行风洞实验。该研究评估了气动性能,包括阻力、升力和净压力系数,以评估海上环境下的结构稳定性,特别是在极端湍流下。结果表明,湍流是影响气动力分布的关键因素,上游面板影响下游面板的稳定性。分析了材料疲劳和极端天气条件下的潜在故障等结构问题,为设计改进提供了信息。此外,该研究还通过材料优化确定了节省成本的机会,在不牺牲性能的情况下提高了FPV系统的经济可行性。如果漂浮式光伏系统的规模继续扩大,许多漂浮体可能会被更便宜的材料取代,这将更具成本效益。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Experimental investigation and economic evaluation of wind impacts on the solar panel array of a floating photovoltaic (FPV) system across different turbulence intensities
The increasing global demand for renewable energy and the scarcity of suitable land for large-scale photovoltaic (PV) installations have driven interest in floating photovoltaic (FPV) systems. FPV systems are being widely adopted globally as solar energy proves to be a highly efficient renewable energy source. However, these systems face challenges such as sinking or overturning in severe environmental conditions. This study investigates the aerodynamic performance and economic viability of FPV systems under different wind speeds and turbulence intensities. Using 1:50 scale models, wind tunnel experiments were conducted to represent both single-island and multi-array FPV setups. The research assessed aerodynamic properties, including drag, lift, and net pressure coefficients, to evaluate structural stability in offshore environments, particularly under extreme turbulence. The results highlight turbulence as a critical factor influencing aerodynamic force distribution, with upstream panels affecting the stability of those downstream. Structural issues like material fatigue and potential failures during extreme weather conditions were analyzed to inform design improvements. Additionally, the study identifies cost-saving opportunities through material optimization, enhancing the economic feasibility of FPV systems without sacrificing performance. Many floating bodies might be replaced with less expensive materials, which would be more cost-effective, if the floating PV system's size continues to grow.
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来源期刊
Energy nexus
Energy nexus Energy (General), Ecological Modelling, Renewable Energy, Sustainability and the Environment, Water Science and Technology, Agricultural and Biological Sciences (General)
CiteScore
7.70
自引率
0.00%
发文量
0
审稿时长
109 days
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