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Self-healing resilience strategy to active distribution network based on benders decomposition approach

机译:基于弯管分解方法的自愈性分配网络自愈弹性战略

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Frequency, as an important factor restricting the safety and reasonability of power system operating, is often neglected in islanding partition of active distribution network when the network suffers from an outage. In order to conciliate the desired attributes of accuracy and computational performance, based on Benders decomposition approach, a self-healing resilience strategy is presented, that is, the islanding partition of active distribution network is decomposed into master and slave problem. The master problem is formulated as a mixed integer programming problem, minimizing the load shedding in reconfiguration work and considering the radial topology. The slave problem establishes a conic optimal model for minimum power loss of island operating, and determines the feasibility of the master problem solution. In addition, the Droop Control equations are applied to take characteristics of voltage and frequency into consideration. Through the Benders cuts, the slave problem returns the dual information to the master problem. The global optimum solution is acquired by iterative solving the both problems. The numerical results of case studies demonstrate that the proposed model is of high accuracy and well adaptability, and satisfies practical engineering.
机译:频率,作为限制电力系统运行的安全性和合理性的重要因素,当网络遭受中断时,在主动分配网络的岛屿分区中通常被忽略。为了阐述准确性和计算性能的所需属性,基于弯曲者分解方法,提出了一种自我修复的弹性策略,即主动分配网络的岛屿分区被分解为主和从属问题。主问题被制定为混合整数编程问题,最大限度地减少重新配置工作中的负载脱落,并考虑径向拓扑。从问题建立了岛岛的最小功率损耗的圆锥最优模型,并确定了主问题解决方案的可行性。另外,考虑下降控制方程以考虑电压和频率的特性。通过弯曲剪切,从属问题将双信息返回到主问题。通过迭代解决这两个问题来获得全局最佳解决方案。案例研究的数值结果表明,所提出的模型具有高精度和良好的适应性,满足实际工程。

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