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Distribution Voltage Control Considering the Impact of PV Generation on Tap Changers and Autonomous Regulators

机译:考虑光伏发电对分接开关和自治调节器影响的配电电压控制

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The uptake of variable megawatts from photovoltaics (PV) challenges distribution system operation. The primary problem is significant voltage rise in the feeder that forces existing voltage control devices such as on-load tap-changers and line voltage regulators to operate continuously. The consequence is the deterioration of the operating life of the voltage control mechanism. Also, conventional non-coordinated reactive power control can result in the operation of the line regulator at its control limit (runaway condition). This paper proposes an optimal reactive power coordination strategy based on the load and irradiance forecast. The objective is to minimize the number of tap operations so as not to reduce the operating life of the tap control mechanism and avoid runaway. The proposed objective is achieved by coordinating various reactive power control options in the distribution network while satisfying constraints such as maximum power point tracking of PV and voltage limits of the feeder. The option of voltage support from PV plant is also considered. The problem is formulated as constrained optimization and solved through the interior point technique. The effectiveness of the approach is demonstrated in a realistic distribution network model.
机译:光伏(PV)吸收可变兆瓦的电量对配电系统的运行提出了挑战。首要问题是馈线中的大幅电压上升,迫使现有的电压控制设备(例如有载分接开关和线路电压调节器)连续运行。结果是电压控制机构的使用寿命降低。而且,常规的非协调无功功率控制可能导致线路调节器在其控制极限(失控状态)下运行。本文提出了一种基于负荷和辐照度预测的最优无功协调策略。目的是最大程度地减少抽头操作的次数,以免缩短抽头控制机构的使用寿命并避免失控。通过协调配电网络中的各种无功功率控制选项,同时满足诸如PV的最大功率点跟踪和馈线电压限制之类的约束,可以实现所提出的目标。还考虑了光伏电站的电压支持选项。该问题被公式化为约束优化,并通过内点技术解决。在现实的分销网络模型中证明了该方法的有效性。

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