风和温度对公用事业规模光伏电站性能和退化的长期影响

IF 2.6 4区 工程技术 Q3 ENERGY & FUELS
Francisca Muriel Daniel-Durandt, Arnold Johan Rix
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引用次数: 0

摘要

对一个大型光伏电站进行了为期四年的逆变器级分析,以研究风和温度影响引起的长期性能和退化。这个多兆瓦的公用事业规模的光伏电站位于南非的半干旱地区。使用性能比作为不同逆变器之间的比较度量来确定退化率。从运行第一年到第四年的降解情况可以看出,光伏电站不同区域的降解率不同。空间退化分析表明,与在较低温度和较高风频率下工作的逆变器组相比,在较高环境温度和较低风频率下工作的逆变器组具有更高的退化率。值得注意的是,最低的降解率与来自北方和东北的风向和频率呈正相关,表明冷却对光伏组件的影响。经天气校正的性能分析表明,最显著的风向(北)具有最高的平均性能比,进一步支持了风的冷却效果提高性能和效率的说法。表现最好和最差的逆变器之间的差距每年都在扩大,这强调了一个前提,即特定逆变器的光伏组件在光伏电站内以不同的速度退化。这项工作的结果为未来光伏电站的设计提供了可能的优化,以利用风作为冷却工具,这可能进一步提高大型光伏装置的使用寿命和可持续性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

The long-term influence of wind and temperature on performance and degradation within an utility-scale photovoltaic plant

The long-term influence of wind and temperature on performance and degradation within an utility-scale photovoltaic plant

An inverter-level analysis of a large photovoltaic (PV) plant is evaluated over four years to investigate the long-term performance and degradation caused by wind and temperature effects. The multi-megawatt utility-scale PV plant is located in a semi-arid region in South Africa. The degradation rate is determined using the performance ratio as a comparison metric between the different inverters. The degradation from the first year of operation up to the fourth year shows that different areas of the PV plant have varying degradation rates. The spatial degradation analysis indicates that inverter blocks operating at higher ambient temperatures and lower wind frequency measurements show higher rates of degradation compared to inverter groups operating at lower temperatures and higher wind frequency. Notably, the lowest degradation rates correlate positively with wind direction and frequency from the North and North-East, indicative of a cooling influence on the PV modules. The weather-corrected performance analysis indicates that the most prominent wind direction (North) has the highest mean performance ratio, further supporting the claims that the cooling effect of wind improves performance and efficiency. The widening gap between the best- and worst-performing inverters annually underscores the premise that specific inverters' PV modules degrade at disparate rates within the PV plant. The results of this work present future designs of PV plants that could potentially be optimised to take advantage of wind as a cooling tool, which may further enhance the longevity and sustainability of large PV installations.

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来源期刊
IET Renewable Power Generation
IET Renewable Power Generation 工程技术-工程:电子与电气
CiteScore
6.80
自引率
11.50%
发文量
268
审稿时长
6.6 months
期刊介绍: IET Renewable Power Generation (RPG) brings together the topics of renewable energy technology, power generation and systems integration, with techno-economic issues. All renewable energy generation technologies are within the scope of the journal. Specific technology areas covered by the journal include: Wind power technology and systems Photovoltaics Solar thermal power generation Geothermal energy Fuel cells Wave power Marine current energy Biomass conversion and power generation What differentiates RPG from technology specific journals is a concern with power generation and how the characteristics of the different renewable sources affect electrical power conversion, including power electronic design, integration in to power systems, and techno-economic issues. Other technologies that have a direct role in sustainable power generation such as fuel cells and energy storage are also covered, as are system control approaches such as demand side management, which facilitate the integration of renewable sources into power systems, both large and small. The journal provides a forum for the presentation of new research, development and applications of renewable power generation. Demonstrations and experimentally based research are particularly valued, and modelling studies should as far as possible be validated so as to give confidence that the models are representative of real-world behavior. Research that explores issues where the characteristics of the renewable energy source and their control impact on the power conversion is welcome. Papers covering the wider areas of power system control and operation, including scheduling and protection that are central to the challenge of renewable power integration are particularly encouraged. The journal is technology focused covering design, demonstration, modelling and analysis, but papers covering techno-economic issues are also of interest. Papers presenting new modelling and theory are welcome but this must be relevant to real power systems and power generation. Most papers are expected to include significant novelty of approach or application that has general applicability, and where appropriate include experimental results. Critical reviews of relevant topics are also invited and these would be expected to be comprehensive and fully referenced. Current Special Issue. Call for papers: Power Quality and Protection in Renewable Energy Systems and Microgrids - https://digital-library.theiet.org/files/IET_RPG_CFP_PQPRESM.pdf Energy and Rail/Road Transportation Integrated Development - https://digital-library.theiet.org/files/IET_RPG_CFP_ERTID.pdf
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