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A robust approach for active distribution network restoration based on scenario techniques considering load and DG uncertainties

机译:基于情景技术的,考虑负荷和DG不确定性的主动配电网恢复的可靠方法

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Fluctuating outputs of distributed generations, time-varying load demands and estimation errors of loads bring substantial uncertainty risks to the active distribution network restoration, which becomes a challenge to the traditional deterministic algorithms. In this paper, a robust restoration approach is proposed to solve this issue, considering both DG outputs and load demands uncertainties. Firstly, a large number of simulation scenarios are generated according to the profiles of historical data. Then we employ the backward scenario reduction technique to cluster these scenarios for computational efficiency. Based on the set of reduced scenarios, the robust restoration control model is built to obtain robust expectedly optimal strategies, which is in the formulation of a mixed integer linear programming. Numerical tests implemented on a modified PG&E 69-bus system demonstrate the robustness and optimality of this proposed approach.
机译:分布式发电的输出波动,时变负载需求和负载估计误差给有源配电网的恢复带来了很大的不确定性风险,这成为传统确定性算法的挑战。在本文中,考虑到DG输出和负载需求的不确定性,提出了一种鲁棒的恢复方法来解决该问题。首先,根据历史数据的概况生成大量的模拟场景。然后,我们采用后向情景减少技术对这些情景进行聚类,以提高计算效率。基于减少的场景集,建立了鲁棒的恢复控制模型以获得鲁棒的预期最佳策略,该策略以混合整数线性规划的形式表示。在改进的PG&E 69总线系统上进行的数值测试证明了该方法的鲁棒性和最佳性。

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