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光伏发电技术 ★ 5.0

通过自适应吸水水凝胶蒸发冷却提高光伏效率

Photovoltaic efficiency improved by self-adaptive water uptake hydrogel evaporative cooling

作者 Bing-Lin Bai · Shen Du · Ming-Jia Li
期刊 Applied Energy
出版日期 2025年1月
卷/期 第 383 卷
技术分类 光伏发电技术
相关度评分 ★★★★★ 5.0 / 5.0
关键词 An adaptive photovoltaic cooling system was demonstrated.
语言:

中文摘要

蒸发冷却与自吸附-脱附行为的结合在实现沙漠离网应用中淡水与电力联产方面正变得日益关键。本文展示了一种利用自适应吸水水凝胶的自适应光伏冷却系统,该系统可在不同气候条件下实现蒸发冷却。通过数值模拟和实验研究,评估了该系统在蒸发冷却以及太阳能-热能-电能转换方面的能力。自适应吸水水凝胶通过化学交联工艺制备而成,该设计可在加热时促进水分快速蒸发,从而有效耗散产生的热量。本文阐明了温度和湿度对吸附与脱附性能的影响,并研究了脱附和吸附循环过程中的水蒸气传输速率及达到平衡所需的时间。建立了集成系统的太阳能-热能-电能模型,并明确了能量传递与转换的机制。评估了水凝胶厚度对光伏电池温度及其太阳能发电效率的影响。在实验室一倍太阳光照条件下,纯水凝胶的蒸发冷却可使光伏电池温度降低21.9 °C,同时将太阳能发电效率从15.8%提升至16.9%。与此同时,蒸发速率达到0.88 kg·m⁻²·h⁻¹。在不同气候条件下测量了PV-LiCl-水凝胶系统的蒸发冷却性能,并验证了其可再生循环性能。该集成系统为当前光伏产业提供了一种策略,可在各种气候条件下提升现有及未来光伏电站的能量转换效率。

English Abstract

Abstract The integration of evaporative cooling and self-adsorption desorption behavior is becoming increasingly crucial for achieving freshwater-electricity cogeneration in desert off-grid applications. In this paper, an adaptive photovoltaic cooling system was demonstrated utilizing self-adaptive water uptake hydrogel for evaporative cooling across various climate conditions. Both numerical simulations and experimental studies were conducted to assess the evaporation cooling and solar-thermal-electrical conversion capabilities of the system. The self-adaptive water uptake hydrogel was fabricated through a chemical crosslinking process. This design can facilitate rapid evaporation of water upon heating, effectively dissipating the heat generated. The influence of temperature and humidity on the adsorption and desorption performances was elucidated. The water vapor transport rate and the equilibrium time required were investigated during both the desorption and adsorption cycles. A solar-thermal-electrical model for integrated systems was developed, and the mechanism of energy transmission and conversion was clarified. The influences of the hydrogel thickness on the temperature and the solar-electrical efficiency of the photovoltaic cell were evaluated. The evaporative cooling of the pure hydrogel could lower the temperature of a photovoltaic cell by 21.9 °C in laboratory conditions under one sun, and enhance solar-electricity efficiency from 15.8 % to 16.9 %. Meanwhile, the evaporation rate reaches 0.88 kg·m −2 ·h −1 . The evaporative cooling performance of the PV-LiCl-Hydrogel system was measured across various climate conditions, and its renewable cycle performance was demonstrated. This integrated system offers a strategy in the current photovoltaic industry to enhance the energy transfer efficiency of both existing and future photovoltaic plants under all climate conditions.
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SunView 深度解读

该水凝胶蒸发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。研究表明通过被动冷却可降温21.9°C并提升发电效率1.1%,这为我司1500V高功率逆变器的热管理优化提供新思路。可结合iSolarCloud平台的温度监测数据,在沙漠等高温场景下评估该技术与MPPT算法的协同效益。该自适应吸湿-解吸机制还可启发PowerTitan储能系统的被动散热设计,降低主动冷却能耗,提升系统全生命周期经济性。建议跟踪该技术在大规模光伏电站的应用可行性。