Перейти к основному содержанию
AkademIndex

Продукты

Для разработчиков

AkademBaseОткрытый API экосистемы
Статья

The environmental factors affecting solar photovoltaic output

Olusola BamisileCentre for Environmental Policy, Imperial College London, United KingdomCaroline AcenCollege of Nuclear Technology and Automation Engineering, Sichuan Engineering and Technology Research Centre of Industrial Internet Intelligent Monitoring and Application, Chengdu University of Technology, Chenghua District, Chengdu, Sichuan, 610059, ChinaDongsheng CaiCollege of Nuclear Technology and Automation Engineering, Sichuan Engineering and Technology Research Centre of Industrial Internet Intelligent Monitoring and Application, Chengdu University of Technology, Chenghua District, Chengdu, Sichuan, 610059, ChinaQi HuangCollege of Nuclear Technology and Automation Engineering, Sichuan Engineering and Technology Research Centre of Industrial Internet Intelligent Monitoring and Application, Chengdu University of Technology, Chenghua District, Chengdu, Sichuan, 610059, ChinaIain StaffellCentre for Environmental Policy, Imperial College London, United Kingdom
2024en
ABI

Аннотация

The global expansion of solar photovoltaics (PV) is central to the global energy transition. As governments aim to triple renewable energy capacity by 2030, solar PV is poised for rapid growth, particularly outside mid-latitude regions (China, Europe, US) where uptake has been highest. These new growth areas have diverse environmental conditions, where factors like higher temperatures and aerosol concentrations strongly impact solar power production. A comprehensive review of these effects therefore aids PV performance and siting optimization. This review examines six key influences: solar irradiance, ambient temperature, atmospheric conditions, terrain effects, extreme weather events, and long-term irradiance changes. First, solar irradiance has strong geographic and temporal variability, making it the most significant factor. Second, raising module temperature reduces efficiency by 0.4–0.5 % per degree Celsius, limiting productivity in hotter climates. Third, atmospheric conditions (clouds, aerosols, pollutants, and dust) can reduce electricity output by up to 60 %, especially in desert regions. Fourth, terrain factors like albedo and snow present mixed effects, with increased reflection boosting output but snow obstructing panels. Fifth, extreme weather like wildfires and hailstorms cause substantial damage, while solar eclipses lead to large but short-lived output losses. Finally, long-term changes in solar irradiance, driven by climate change and air pollutants, present future challenges for maintaining PV efficiency. Optimizing PV systems for diverse climates and mitigating environmental impacts on productivity is important to the continued success of solar photovoltaics. This review highlights the need for tailored strategies to maintain performance in varied and evolving environmental contexts. • Environmental factors critically affect solar PV performance across diverse climates. • High temperatures reduce solar PV efficiency by 0.4–0.5 % per degree Celsius. • Dust can reduce PV output by up to 60 %, especially in desert regions. • Terrain factors like albedo and snow present mixed effects on PV energy generation. • Long-term climate change and extreme weather pose future challenges to PV systems.

Перевод пока недоступен

Идентификаторы

Цитирования и источники

Цитирований: 4Использованных источников: 0