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首页> 外文期刊>Photovoltaics, IEEE Journal of >Endogenous Soiling Rate Determination and Detection of Cleaning Events in Utility-Scale PV Plants
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Endogenous Soiling Rate Determination and Detection of Cleaning Events in Utility-Scale PV Plants

机译:公用事业规模光伏电站的内源污染率测定和清洁事件检测

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摘要

As the deployment rate of PV power plants continues to soar, the need for robust, scalable methods for performance analytics increases. In this paper, we demonstrate the usefulness of one approach for quantifying soiling rates in utility-scale PVpower plants endogenously, i.e., directly from the production data. The temperature corrected performance ratio, normalized to a clean state, is used to derive the soiling ratio (SR). Cleaning events, caused by either rain or manual cleaning, are automatically detected by positive shifts in the running median of the SR time series. Soiling rates are then estimated by the rate of change of the SR between the cleaning events, which is determined by linear regression. The method is validated on data from three utility-scale PV power plants in the Middle East, yielding soiling rates that are in the range 0%-0.18%/day at least 50% of the time, with a median of 0.1%/ day.
机译:随着光伏电站的部署率持续飙升,对性能分析的健壮,可扩展方法的需求日益增长。在本文中,我们证明了一种方法可用于内生地(即直接从生产数据中)量化公用事业规模PV电厂的污染率。经过温度校正的性能比(归一化为清洁状态)可用于得出污染比(SR)。 SR时间序列的运行中值的正向偏移会自动检测由下雨或手动清洁引起的清洁事件。然后通过清洗事件之间SR的变化率估算污染率,这是通过线性回归确定的。该方法已根据来自中东三个公用事业规模光伏电站的数据进行了验证,至少在50%的时间内产生的污垢率在0%-0.18%/天的范围内,中位数为0.1%/天。

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