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光伏发电技术
★ 5.0
一种辐射冷却与太阳能光伏集成系统的新型研究
Investigation on a novel integrated system of radiative cooling and solar photovoltaics
| 作者 | Zijun Wanga1 · Shaowen Cao · Qilin Cai · Yingshi Zhang · Defan Zhao · Ruizhi Liu · Qing Ye · Xi Wu |
| 期刊 | Applied Energy |
| 出版日期 | 2025年1月 |
| 卷/期 | 第 377 卷 |
| 技术分类 | 光伏发电技术 |
| 相关度评分 | ★★★★★ 5.0 / 5.0 |
| 关键词 | Effect of tilt angles on system performance was comprehensively analyzed. |
语言:
中文摘要
摘要 白天辐射冷却依赖于在太阳光谱范围内具有高反射率以及在大气窗口光谱范围内具有高发射率。然而,被发射体反射的太阳辐射作为一种高品质能源却被浪费了。基于入射太阳辐射主要集中在特定角度,而发射体则与太空进行半球形热交换的特点,这部分能量具备被收集利用的可能性。迄今为止,尚无研究对发射体所反射的大量能量进行有效回收。本文提出了一种在确保昼夜辐射冷却性能的同时增强白天太阳能发电能力的新思路。研究表明,仅由五层结构组成的发射体即可在太阳光谱范围内实现95.22%的加权平均反射率,并在大气窗口光谱范围内达到94.74%的加权平均发射率。户外实验表明,从上午10:30至下午3:30,平均降温幅度为2.3 °C;而在下午3:30至晚上8:00期间,降温效果进一步提升至8.4 °C。在直射阳光下,太阳能电池的最大输出功率密度为125.5 W/m²;若通过一个简单的角度控制器将太阳能电池的朝向与发射体反射光方向对齐,则输出功率密度可提高至163.5 W/m²,实现了高达30.3%的显著提升。最后,通过对一个尺寸为5.4 × 4.4 × 3.4 m³的通信基站进行模拟计算发现,在不考虑对流热损失的情况下,舱内温度可降低11.7 K,且来自发射体反射部分的发电功率可达169.4 W/m²,而直接来自太阳的部分则可产生高达177.9 W/m²的功率。研究结果凸显了将辐射冷却技术与光伏发电系统相结合在商业应用方面所具有的巨大潜力。
English Abstract
Abstract Daytime radiative cooling relies on a high reflectivity in the solar spectrum and a high emissivity in the atmospheric window spectrum. However, the reflected solar radiation, as a high-quality energy, is wasted. Based on the incident solar radiation primarily concentrated at a specific angle and the emitter's hemispherical heat exchange with space, it is possible to collect it. There has been no work to date that collects the substantial energy reflected by the emitter yet. Here, an idea of enhancing solar power generation during the daytime while ensuring day-and-night radiative cooling was proposed in this work. It is indicated that the emitter with only five layers can achieve a weighted average reflectivity of 95.22 % in the solar spectrum and a weighted average emissivity of 94.74 % in the atmospheric window spectrum. Outdoor experiments show that the average temperature reduction from 10:30 AM to 3:30 PM is 2.3 °C, which can further decrease to 8.4 °C from 3:30 PM to 8:00 PM. Under direct sunlight, the maximum output power density of the solar cell is 125.5 W/m 2 , which can be enhanced to 163.5 W/m 2 by aligning the orientation of the solar cell with the emitter using a simple angle controller, representing a remarkable enhancement of 30.3 %. Finally, through simulations on a 5.4 × 4.4 × 3.4 m 3 communication base station , it is determined that without convective losses , the chamber temperature reduction is 11.7 K, and the generated power can be as high as 169.4 W/m 2 from the portion reflected by the emitter and 177.9 W/m 2 from the portion directly from the sun. The results highlight the great potential for the commercial application of combining radiative cooling with a photovoltaic system .
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SunView 深度解读
该辐射制冷-光伏集成技术对阳光电源SG系列逆变器和储能系统具有重要应用价值。通过反射光收集使光伏输出功率密度提升30.3%至163.5W/m²,可优化MPPT算法以适配非直射光场景。辐射制冷降温8.4°C特性可应用于通信基站储能热管理,降低ST系列PCS散热负荷,提升系统效率。该技术为iSolarCloud平台提供温控与发电协同优化的新思路,适合数据中心、储能站等高功耗场景的智能运维创新。