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Energy Coordinative Optimization of Wind-Storage-Load Microgrids Based on Short-Term Prediction

机译:基于短期预测的储能负荷微电网能量协调优化

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摘要

According to the topological structure of wind-storage-load complementation microgrids, this paper proposes a method for energy coordinative optimization which focuses on improvement of the economic benefits of microgrids in the prediction framework. First of all, the external characteristic mathematical model of distributed generation (DG) units including wind turbines and storage batteries are established according to the requirements of the actual constraints. Meanwhile, using the minimum consumption costs from the external grid as the objective function, a grey prediction model with residual modification is introduced to output the predictive wind turbine power and load at specific periods. Second, based on the basic framework of receding horizon optimization, an intelligent genetic algorithm (GA) is applied to figure out the optimum solution in the predictive horizon for the complex non-linear coordination control model of microgrids. The optimum results of the GA are compared with the receding solution of mixed integer linear programming (MILP). The obtained results show that the method is a viable approach for energy coordinative optimization of microgrid systems for energy flow and reasonable schedule. The effectiveness and feasibility of the proposed method is verified by examples.
机译:根据储风量互补微电网的拓扑结构,提出了一种能量协调优化方法,重点是在预测框架内提高微电网的经济效益。首先,根据实际约束的要求,建立了包括风力发电机和蓄电池在内的分布式发电(DG)机组的外部特性数学模型。同时,以外部电网的最低消耗成本为目标函数,引入了带有残差修正的灰色预测模型,以输出特定时期的预测风力发电机功率和负荷。其次,基于后向视野优化的基本框架,应用智能遗传算法(GA)来为微电网复杂的非线性协调控制模型在预测视野中找出最优解。 GA的最佳结果与混合整数线性规划(MILP)的后退解决方案进行了比较。所得结果表明,该方法是微电网系统能量协调合理调度的可行方法。通过实例验证了该方法的有效性和可行性。

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