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System splitting strategy considering power system restoration

机译:考虑电力系统恢复的系统分裂策略

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An Intentional Controlled Islanding (ICI) algorithm based on an exact Mixed Integer Programming Formulation (MILP) was previously proposed and tested using IEEE test systems. The proposed algorithm directly determines an islanding solution with minimal power-flow disruption for any given number of islands, while ensuring that each island contains only coherent generators. However, since one or more of the created islands might reach a local blackout after the splitting strategy is carried out, the aforementioned algorithm is extended to consider power system restoration constraints. Considering that data collection is essential to properly run a restoration process and assuming a completely observable power system at normal operating conditions, the extended ICI algorithm creates islands that are also completely observable, includes at least one blackstart unit within each island, and guarantees sufficient generation capacity to match the load consumption within each island. These new constraints can be viewed as a power system restoration planning stage.
机译:先前使用IEEE测试系统提出并测试了基于精确混合整数编程配方(MILP)的有意受控岛(ICI)算法。该算法直接决定与岛屿的任何给定数量的最小功率流中断的孤岛的解决方案,同时确保每个岛屿只包含连贯的发电机。然而,由于在执行分裂策略之后一个或多个创建的岛屿可能达到本地停电,因此上述算法扩展以考虑电力系统恢复约束。考虑到数据收集对于正确运行恢复过程至关重要并在正常操作条件下假设完全可观察的电力系统,扩展的ICI算法创建了也完全可观察的岛屿,包括每个岛内的至少一个Blackstart单元,并保证充分的生成将负载消耗匹配每个岛内的容量。这些新约束可以被视为电力系统恢复规划阶段。

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