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Development of an ANN model to predict the electricity produced by small scale roof-top PV systems in Madeira Island

机译:开发ANN模型以预测马德拉岛的小型屋顶光伏系统产生的电

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In this paper, an artificial neural network is proposed for estimating the electricity produced by small scale photovoltaic (PV) roof-top plants. The two main objectives of this work are: i) to determine whether the system is functioning properly and if there is a failure in the system, and ii) to estimate the magnitude of energy produced for the upcoming day by every PV system. Based on the result of this study, the energy management system can make a more efficient schedule for the use of the energy at the consumption side and monitor its own PV systems. In addition, currently, the PV system owners are notified about a failure in the system only when they receive the bill associated to the production, whereas using the proposed method conveniently would notify owners prior to bill issue. The employed artificial neural network in this work requires a number of inputs, consisting of i) the history of produced energy measurements and, ii) meteorological forecasts of solar irradiance. The comparison of the predicted value with the actual production for each day shows the validity of the method.
机译:本文提出了一种人工神经网络,用于估算小规模光伏(PV)屋顶工厂产生的电力。这项工作的两个主要目标是:i)确定系统是否正常运行以及系统是否出现故障,以及ii)估计每个光伏系统在即将到来的一天产生的能量大小。根据这项研究的结果,能源管理系统可以为消耗侧的能源使用制定更有效的时间表,并监控自己的光伏系统。此外,当前,仅当光伏系统所有者收到与生产相关的账单时,才通知系统发生故障,而使用建议的方法可以方便地在发出账单之前通知所有者。在这项工作中使用的人工神经网络需要大量输入,包括:i)产生的能量测量的历史记录,以及ii)太阳辐照度的气象预报。每天的预测值与实际产量的比较表明了该方法的有效性。

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