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Day-ahead scheduling for supply-demand-storage balancing - model predictive generation with interval prediction of photovoltaics

机译:供需库存平衡的日前调度-具有光伏发电间隔预测的模型预测发电

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Large-scale penetration of photovoltaic (PV) power generators and storage batteries is expected into the power system in Japan. To maintain the supply-demand balance with energy storage, the optimal power generation and the charge/discharge power of storage batteries can be determined in a manner of the model predictive control of generators. In view of this, this paper addresses a problem of the day-ahead scheduling for the supply-demand-storage balance with explicit consideration of the model predictive power generation. This scheduling is performed by using demand prediction, whose uncertainty is expressed in terms of interval prediction. Formulating the day-ahead scheduling problem as an interval-valued allocation problem, we give a solution to it by taking an approach based on the monotonicity analysis with respect to the optimal solution. Finally, the efficiency of the proposed method is verified through a numerical simulation, where we use an interval prediction of PV power generation constructed by experimental data.
机译:日本有望将光伏发电器和蓄电池大规模渗透到电力系统中。为了保持能量存储的供需平衡,可以以发电机的模型预测控制的方式确定最佳的发电量和蓄电池的充电/放电功率。有鉴于此,本文在明确考虑模型预测发电的情况下,解决了供需库存平衡的提前调度问题。通过使用需求预测来执行此调度,需求预测的不确定性用间隔预测来表示。将提前调度问题表述为区间值分配问题,我们针对最优解采用基于单调性分析的方法来给出解决方案。最后,通过数值模拟验证了该方法的有效性,在此我们使用由实验数据构建的光伏发电的区间预测。

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