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Optimal energy management via MPC considering photovoltaic power uncertainty

机译:考虑光伏发电不确定性的MPC优化能源管理

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In this paper, we propose a method that uses model predictive control (MPC) to predict photovoltaic (PV) power generation, plan for the electricity demand in a building using the predicted value, and apply it online to correct the prediction error. First, we construct the regression model using a PV experimental unit and past data obtained from the Meteorological Agency. Next, we predict the PV power using grid point power (GPV) data of the next day. Second, the air conditioning or heating of the building is modeled to determine the electricity demand so that it increases the profits to the consumer and reduces the peak in time-varying electric cost. The error between the predicted and true value is considered via MPC. Finally, we show the advantages of the proposed method by performing simulations.
机译:在本文中,我们提出了一种方法,该方法使用模型预测控制(MPC)预测光伏(PV)发电量,使用预测值来计划建筑物中的电力需求,然后将其在线应用以纠正预测误差。首先,我们使用PV实验单位和从气象局获得的过去数据构建回归模型。接下来,我们使用第二天的电网点功率(GPV)数据预测PV功率。其次,对建筑物的空调或供暖进行建模以确定用电需求,从而增加对消费者的利润并减少随时间变化的用电成本的峰值。预测值和真实值之间的误差通过MPC进行考虑。最后,我们通过进行仿真显示了所提出方法的优势。

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