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Distributionally Robust Co-Optimization of Power Dispatch and Do-Not-Exceed Limits

机译:功率分配和超出限制的分布鲁棒协同优化

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To address the challenge of the renewable energy uncertainty, the ISO New England (ISO-NE) has proposed to apply do-not-exceed (DNE) limits, which represent the maximum nodal injection of renewable energy the grid can accommodate. Unfortunately, it appears challenging to compute DNE limits that simultaneously maintain the system flexibility and incorporate a large portion of the available renewable energy at the minimum cost. In addition, it is often challenging to accurately estimate the joint probability distribution of the renewable energy. In this paper, we propose a two-stage distributionally robust optimization model that co-optimizes the power dispatch and the DNE limits, by adopting an affinely adjustable power redispatch and an adjustable joint chance constraint that measures the renewable utilization. Notably, this model admits a second-order conic reformulation that can be efficiently solved by the commercial solvers (e.g., MOSEK). We conduct case studies based on modified IEEE test instances to demonstrate the effectiveness of the proposed approach and analyze the trade-off among the system flexibility, the renewable utilization, and the dispatch cost.
机译:为了应对可再生能源不确定性的挑战,ISO新英格兰(ISO-NE)建议采用不超过(DNE)限值,该限值代表电网可容纳的最大可注入节点能量。不幸的是,计算DNE限制似乎很难,同时保持系统的灵活性并以最小的成本合并大部分可再生能源。另外,准确地估计可再生能源的联合概率分布通常具有挑战性。在本文中,我们提出了一个两阶段的分布式鲁棒优化模型,该模型通过采用仿射可调整功率重分配和可调整联合机会约束来衡量可再生能源利用,从而共同优化功率分配和DNE限制。值得注意的是,该模型允许二阶圆锥重构,可以由商业求解器(例如MOSEK)有效地求解。我们基于修改后的IEEE测试实例进行案例研究,以证明所提出方法的有效性,并分析系统灵活性,可再生利用率和调度成本之间的权衡。

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