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Voltage Security Constrained Multi-Period Optimal Reactive Power Flow Using Benders and Optimality Condition Decompositions

机译:使用弯曲和最优条件分解的电压安全约束多周期最优无功潮流

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摘要

This paper proposes a new coordinated voltage control scheme to ensure voltage security of power systems. The scheme schedules reactive power injection from VAR sources, including synchronous generators and condensers, capacitor banks, switchable reactors and FACTS devices, to ensure desired loading margin of power systems for a given horizon of time. The problem is treated as voltage security constrained multi-period optimal reactive power flow (VSC-MPORPF). To incorporate scheduling of both continuous and discrete VAR sources, the VSC-MPORPF is formulated as a mixed-integer nonlinear programming problem, and is solved using generalized Benders decomposition (GBD). Multi-period formulation ensures both optimal switching pattern of discrete voltage controllers and voltage security for a given future horizon. Also, to make the proposed method applicable for large-scale power systems, optimality condition decomposition approach is utilized, along with the GBD. The proposed methodology is examined through case studies conducted on a simple 6-bus, the IEEE 118-bus, and a 1180-bus test systems. The results demonstrate effectiveness and efficiency of the proposed framework in real-time operation of power systems.
机译:本文提出了一种新的协调电压控制方案,以确保电力系统的电压安全。该方案计划从无功功率源(包括同步发电机和电容器,电容器组,可切换电抗器和FACTS设备)注入无功功率,以确保在给定的时间范围内所需的电力系统负载裕度。该问题被视为电压安全约束的多周期最佳无功功率流(VSC-MPORPF)。为了合并连续和离散VAR源的调度,VSC-MPORPF被公式化为混合整数非线性规划问题,并使用广义Benders分解(GBD)解决。多周期公式化确保了给定未来范围内离散电压控制器的最佳开关模式和电压安全性。另外,为了使所提出的方法适用于大规模电力系统,使用了最优性条件分解方法以及GBD。通过在简单的6总线,IEEE 118总线和1180总线测试系统上进行的案例研究,对提出的方法进行了研究。结果证明了该框架在电力系统实时运行中的有效性和效率。

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