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Robust Restoration Decision-Making Model for Distribution Networks Based on Information Gap Decision Theory

机译:基于信息缺口决策理论的配电网鲁棒恢复决策模型

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摘要

Service restoration is important in distribution networks following an outage. During the restoration process, the system operating conditions will fluctuate, including variation of the load demand and the output from distributed generators (DGs). These variations are hard to be predicted and the load demands are roughly estimated because of absence of real-time measurements, which can significantly affect the restoration strategy. In this paper, we report a robust restoration decision-making model based on information gap decision theory, which takes into account the uncertainty in the load and output of the DGs. For a given bounded uncertain set of parameters, the solutions can ensure feasibility and that an objective does not fall below a given threshold. We describe the implementation of a robust optimization algorithm based on a mixed integer quadratic constraint programming restoration model, the objective of which is to restore maximal outage loads. Numerical tests on a modified Pacific Gas and Electric Company (PG&E) 69-node distribution network are discussed to demonstrate the performance of the model.
机译:中断后,服务恢复在配电网络中很重要。在恢复过程中,系统运行条件会发生波动,包括​​负载需求的变化和分布式发电机(DG)的输出。这些变化很难预测,并且由于缺乏实时测量,因此可以粗略估算负载需求,这可能会严重影响恢复策略。在本文中,我们报告了一种基于信息缺口决策理论的健壮的恢复决策模型,该模型考虑了DG的负荷和输出的不确定性。对于给定的有限不确定参数集,解决方案可以确保可行性,并且目标不会低于给定阈值。我们描述了基于混合整数二次约束规划恢复模型的鲁棒优化算法的实现,其目的是恢复最大中断负载。讨论了修改后的太平洋天然气和电力公司(PG&E)69节点配电网络的数值测试,以证明该模型的性能。

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