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光伏发电技术
★ 5.0
基于PEG的固-固相变材料用于太阳能光伏板的被动冷却
PEG-based solid-solid phase change materials for passive cooling of solar photovoltaic panels
| 作者 | Miao Hana · Kai Jiaoa · Lin Lua · Zhipeng Jina · Tao Mab · Qiuwang Wangc |
| 期刊 | Applied Energy |
| 出版日期 | 2025年1月 |
| 卷/期 | 第 394 卷 |
| 技术分类 | 光伏发电技术 |
| 相关度评分 | ★★★★★ 5.0 / 5.0 |
| 关键词 | SSPCMs for passive cooling of PV panels are proposed and experimentally studied. |
语言:
中文摘要
摘要 随着太阳能电池温度的升高,光伏(PV)转换效率会下降,降幅约为0.5 %/°C。相变材料(PCMs)已成为太阳能光伏板被动热管理的一种有前景的解决方案,能够提供有效且均匀的冷却,从而提高光伏转换效率。在当前关于光伏-相变材料(PV-PCM)系统的研究中,有机固-液相变材料(SLPCMs),特别是石蜡类材料,是主要研究重点。然而,其应用受到液体泄漏和体积变化较大等问题的限制。为解决这些问题,本文成功制备并首次引入固-固相变材料(SSPCMs)用于太阳能光伏板的有效冷却。采用不同分子量的聚乙二醇(PEG)通过一种简单可靠的两步法制备了SSPCMs,表现出优异的自修复性能。测试结果表明,所制备的基于PEG的SSPCMs具有良好的防泄漏特性,在80 °C下持续2小时未观察到任何泄漏现象。其相变温度范围为55 °C至67 °C,潜热介于137 J/g至151 J/g之间,在25 °C时的热导率约为0.34 W/(m·K)。光伏板冷却实验结果表明,与裸露的光伏板相比,仅使用SSPCM的光伏板最高可实现11.2 °C的温降;而采用铝翅片增强型SSPCM的光伏板则可实现更大的温降,达到16.5 °C。电性能测试结果表明,带翅片的PV-SSPCM能有效提升输出功率。这些研究结果表明,铝翅片增强型SSPCM为光伏冷却提供了一种具有竞争力的方案。
English Abstract
Abstract The solar photovoltaic (PV) conversion efficiency decreases as the solar cell temperature rises, at a reduction rate of approximately 0.5 %/°C. Phase change materials (PCMs) have emerged as a promising solution for passive thermal management of solar PV panels , providing effective and uniform cooling to enhance PV conversion efficiency. In current research on PV-PCM systems, organic solid-liquid PCMs (SLPCMs), particularly paraffin, are the primary focus. However, their application is limited by issues such as liquid leakage and large volume changes. To address these issues, solid-solid PCMs (SSPCMs) are successfully fabricated and pioneeringly introduced for effective cooling of solar PV panels in this paper. SSPCMs utilizing polyethylene glycol (PEG) with varying molecular weights are prepared through a simple and reliable two-step method, demonstrating outstanding self-healing properties. The test results indicate that the prepared PEG-based SSPCMs exhibit excellent leak-proof characteristics, with no leakage observed at 80 °C within 2 h. Their phase transition temperature ranges from 55 °C to 67 °C, with latent heat between 137 J/g and 151 J/g, and a thermal conductivity of approximately 0.34 W/(m·K) at 25 °C. The experimental results of cooling PV panels reveal that, compared to bare PV, PV panel using only SSPCM can achieve a temperature decrease of up to 11.2 °C. Moreover, PV panel with aluminum fin-enhanced SSPCM can achieve a greater decrease in temperature of 16.5 °C. The electrical performance test results demonstrate that finned PV-SSPCM effectively enhances power output . These findings suggest that aluminum fin-enhanced SSPCM presents a competitive option for PV cooling.
S
SunView 深度解读
该固-固相变材料(SSPCM)被动冷却技术对阳光电源光伏逆变器产品线具有重要应用价值。研究显示PEG基SSPCM可使光伏组件降温16.5°C并提升发电效率,这为SG系列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,在高温地区部署时评估SSPCM与逆变器散热系统的协同效果,特别是1500V大功率系统。该技术的防漏液、自愈合特性适合户外长期运行场景,可为PowerTitan储能系统的电池热管理提供参考,探索固态相变材料在储能柜被动冷却中的应用潜力,降低主动冷却能耗。