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Daily prediction of solar power generation based on weather forecast information in Korea

机译:基于天气预报信息的韩国太阳能发电的每日预报

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Solar panel photovoltaic (PV) systems are widely used in Korea to generate solar energy, which is one of the most promising renewable energy sources. With regard to solar electricity providers and a grid operator, it is critical to accurately predict solar power generation for supply–demand planning in an electrical grid, which directly affects their profit. This prediction is, however, a challenging task because solar power generation is weather dependent and uncontrollable. In this study, a daily prediction model based on the weather forecast information for solar power generation is proposed. In the case of the proposed model, the cloud and temperature data available from the weather forecast information is used to predict the amount of solar radiation as well as a loss adjustment factor to reflect the possible loss of power generation due to the degradation or failure of the PV module. Using the proposed model, solar power generation for the following day can be predicted. The proposed model is embedded into a solar PV monitoring system that is commercially used in Korea, and it is shown to perform better than the existing prediction models.
机译:太阳能电池板光伏(PV)系统在韩国被广泛用于产生太阳能,这是最有前途的可再生能源之一。对于太阳能电力供应商和电网运营商而言,准确预测太阳能发电量对于电网的供需计划至关重要,这直接影响了其利润。然而,该预测是一项艰巨的任务,因为太阳能发电取决于天气并且不可控。在这项研究中,提出了一种基于天气预报信息的太阳能发电日预报模型。在建议的模型中,可使用天气预报信息中的云和温度数据来预测太阳辐射量以及损耗调整因子,以反映由于光伏系统的退化或故障而可能造成的发电损耗。 PV模块。使用提出的模型,可以预测第二天的太阳能发电量。所提出的模型已嵌入韩国商业上使用的太阳能光伏监视系统中,并且显示出比现有预测模型更好的性能。

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