包括温度、反照率和周长效应在内的双面光伏系统建模:与数据的比较

R. Corso, M. Leonardi, A. Scuto, S. Privitera, Salvatore Lombardo
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引用次数: 0

摘要

双面光伏(BPV)作为一种有前景的解决方案,正以巨大的势头出现,以提高能源产量和降低光伏系统的成本。双面太阳能电池在正面同时收集来自太阳的入射太阳辐射和背面来自地面的反照率辐射。为了充分发挥其潜力,需要准确了解BPV的物理特性。为此,本研究中提出的模型用于评估从实验室规模到大型农场的双面光伏系统的性能。该模型考虑了整个光伏系统的三维几何形状,以准确地评估每个模块背面的辐照度,这取决于其在系统中的位置。通过与双面和单面微型模块的模块温度、短路电流、开路电压和发电量的实验数据对比,验证了模型的正确性。通过与室外测量的比较,可以优化实验室规模PV系统的离地间隙和倾斜角。此外,该模型已被用于量化周长效应的贡献,表明二维模型往往低估了能量产量,因为它们没有考虑到边缘模块的背面比中心模块接收到更多的反射光。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Modeling of bifacial photovoltaic systems including temperature, albedo and perimeter effects: comparison with data
Bifacial photovoltaics (BPV) is emerging with large momentum as a promising solution to improve the energy yield and reduce the costs of photovoltaic (PV) systems. Bifacial solar cells simultaneously collect incident solar radiation from the sun on the front side and the albedo radiation from the ground on the back side. To reach its full potential, an accurate understanding of the physical characteristics of BPV is required. To this purpose, the model presented in this work has been developed to evaluate the performance of bifacial PV systems ranging from laboratory scale to large farms. The model takes into account the three-dimensional geometry of the whole PV system to accurately evaluate the irradiance impinging on the rear side of each module, which depends on its position within the system. The model has been validated by comparison with experimental data of module temperature, short-circuit current, open-circuit voltage and energy yield of bifacial and monofacial mini-modules. Through this comparison with the outdoor measurements, it has been possible to optimize the ground clearance and tilt angle of a laboratory scale PV system. Moreover, the model has been used to quantify the contribution of the perimeter effect, showing that 2D models tend to underestimate the energy yield as they do not consider that edge modules receive more reflected light on their back side compared to central modules.
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