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光伏发电技术 ★ 5.0

通过雾冷式三明治双面光伏板在极端炎热气候条件下最大化太阳能光伏效率

Maximizing solar photovoltaic efficiency with Mist Cooled sandwich bifacial panels under extreme hot climate conditions

语言:

中文摘要

摘要 提出了一种新型的集成雾冷系统的三明治结构双面光伏面板系统,旨在提高光伏发电装置单位面积的能源产出。传统的双面光伏面板能够有效利用地面反射光,但通常面临较高的运行温度,导致热性能退化。该新设计采用两块单面光伏面板背对背排列,并在其间集成雾冷冷却系统。这一创新设计显著提高了能量密度,同时有效缓解了热退化问题。实验在代表极端炎热气候的实际户外条件下进行,以阿联酋作为具体案例研究区域。实验结果表明,与未冷却的标准单面光伏面板相比,三明治式双面光伏面板的能量输出提高了26.05%。对于背面朝向的光伏表面温度,在雾冷作用下,正面表面温度降低了34.03%,背面表面温度降低了14.81%。在晴天条件下,正面面板的温度降低为20.48%,阴天条件下为13.18%;相应地,背面表面温度分别降低了9.61%和16.02%。此类热性能的改善预计可使晴天时的发电量比传统单面光伏面板提高37.14%,在夏季阴天条件下提高46.02%。该系统年发电量比单面系统高出45.34 kWh/m²,相当于每年每平方米带来5.48美元的经济收益。该方法代表了一种高效且实用的技术途径,可在不占用额外地面空间的前提下显著提升光伏系统性能。

English Abstract

Abstract A novel sandwich bifacial photovoltaic panel system with integrated mist cooling is proposed to enhance energy generation per unit area in photovoltaic installations. Traditional bifacial photovoltaic panels effectively utilize ground reflections. Still, they often encounter high operating temperatures, leading to thermal degradation. This new design features a back-to-back arrangement of two mono-facial photovoltaic panels, incorporating mist cooling between them. This innovative design significantly increases energy density while effectively mitigating thermal degradation. Experimental investigations were conducted under actual outdoor conditions representative of extremely hot climates, with the United Arab Emirates chosen as a specific case study. The experimental results show that the energy yield from the sandwich bifacial photovoltaic panel was 26.05 % higher than that of a standard monofacial photovoltaic panel operating without cooling. For the rear-facing photovoltaic surface temperature, a reduction of 34.03 % is observed for the front surface, and 14.81 % is recorded for the rear surface with mist cooling. The corresponding temperature reduction for the front-facing panel was 20.48 % on a sunny day and 13.18 % on a cloudy day, and the reduction in the rear surface was 9.61 % and 16.02 %, respectively. Such thermal enhancements are expected to yield power gains of 37.14 % on sunny days and 46.02 % on cloudy summer days compared to conventional mono-facial photovoltaic panels. The system demonstrated an annual energy output of 45.34 kWh/m 2 more than mono-facial systems, corresponding to an annual economic gain of $5.48/m 2 . This approach represents one very efficient and practical way to improve the photovoltaic performance without compromising the already-occupied ground surface.
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SunView 深度解读

该夹层双面板喷雾冷却技术对阳光电源SG系列光伏逆变器具有重要应用价值。研究显示极端高温环境下功率提升37-46%,年发电量增加45.34kWh/m²,验证了温度管理对系统效率的关键影响。可为我司1500V高压系统的MPPT优化算法提供温度补偿策略改进依据,结合iSolarCloud平台的温度监测数据,开发针对中东等高温市场的智能降额控制与预测性维护方案,提升逆变器在极端气候下的发电效能与设备寿命,增强市场竞争力。