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光伏发电技术 储能系统 ★ 5.0

整合技术、经济与环境维度并涵盖生命周期评估的光伏冷却系统综述

Photovoltaic cooling systems review integrating technical, economic, and environmental dimensions encompassing life cycle assessment

作者 Razan El Kassar · Ahmad Al Takash · Elissa El Rassy · Mohammad Hammoud · Xavier Pya
期刊 Solar Energy
出版日期 2025年1月
卷/期 第 302 卷
技术分类 光伏发电技术
技术标签 储能系统
相关度评分 ★★★★★ 5.0 / 5.0
关键词 可再生能源 光伏系统 二氧化碳排放 冷却技术 能源安全
语言:

中文摘要

摘要 从减少全球二氧化碳排放和保障长期能源安全两个角度来看,向可再生能源转型具有关键意义。在这一范式转变中,光伏发电系统处于核心地位。然而,发热通常会降低光伏系统的效率,因此采取冷却措施至关重要。本文综述了近五年内太阳能电池板所采用的各类冷却技术的最新进展,重点聚焦于包含完整生命周期评估(LCA)在内的经济性与环境影响研究。所回顾的冷却技术包括:基于空气的冷却、基于液体的冷却、相变材料(PCM)、辐射天空冷却、热电发电机、珀尔帖效应蒸发冷却以及混合系统。与以往研究不同,本文系统考察了所有已知的相关研究,整合了生命周期分析的视角,不仅关注热性能的提升,还进一步探讨了每种冷却策略的经济与环境影响。例如,在阳光充足条件下,热电发电机与相变材料结合使用可使发电量提高20%至30%。更值得关注的是,将相变材料与水冷技术结合的混合冷却方法,实现了高达22.8%的电气效率整体提升。在干燥地区,对于一个50瓦的多晶硅组件,蒸发冷却系统可使温度降低22.7%,输出功率增加16.3瓦。纳米流体冷却技术则使光伏表面温度降低了23.14%,效率提升至20.2%。然而,目前在全面的经济性、环境影响及生命周期评估方面仍存在显著的研究空白,亟需进一步深入研究以评估这些冷却系统的可行性及其长期影响。

English Abstract

Abstract The switch to renewable energies is of key importance for both reducing global CO 2 emissions and offering long-term energy security. In both regards, photovoltaic systems occupy the central position in this paradigm shift. However, heating usually reduces the efficiency of a photovoltaic system hence making cooling measures paramount. This paper reviews the recent developments in cooling techniques used with solar panels within the last five years, necessarily focused on economic and environmental studies included in an entire life cycle assessment (LCA). The cooling techniques have been reviewed: air-based, liquid-based, phase-change material (PCM), radiative sky cooling, thermoelectric generators, Peltier effect evaporative cooling, and hybrid systems. This article, unlike prior studies, investigates all known studies, integrating the life cycle approach. It goes beyond benefits in thermal performance to consider the economic and environmental implications of each cooling strategy. For instance, the combined thermoelectric generators with PCM increased electrical power generation by 20 to 30 % in sunny conditions. A more interesting development is that hybrid techniques using PCM in conjunction with water-cooling techniques, have achieved an overall improvement of 22.8 % in electrical efficiency. The evaporative cooling systems had the potential to drop temperature by 22.7 % and increase the generated output power by 16.3 W for a polycrystalline 50 W module in a dry region. The nanofluid cooling techniques decreased the PV surface temperature by 23.14 %, increasing their efficiency to 20.2 %. However, there still significant gaps in thorough economic, environmental, and LCA assessments necessitating further investigation into feasibility and long-term impacts of cooling systems.
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SunView 深度解读

该光伏冷却技术综述对阳光电源SG系列逆变器和储能系统具有重要参考价值。研究表明PCM相变材料结合水冷可提升22.8%发电效率,纳米流体冷却降温23.14%,这为我们1500V高功率逆变器的热管理优化提供新思路。可将主动冷却技术集成到PowerTitan储能系统中,通过iSolarCloud平台实时监测温度并智能调控冷却策略,延长功率器件寿命。建议结合SiC器件低损耗特性,开发具有全生命周期经济性的智能热管理方案,提升系统整体效率和可靠性。