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A two-level over-voltage control strategy in distribution networks with high PV penetration

机译:高光伏渗透的分销网络中的两级过压控制策略

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Over-voltage in low voltage feeders due to the increasing penetration level of photovoltaic (PV) is a crucial issue to be addressed. There is a need to use more advanced voltage control methods to satisfy the response time of the control system. In this paper, a two-level voltage control strategy is presented. In the first level, based on dayahead PV production scenario, Both the on-load tap changer (OLTC) and the battery energy storage systems (ESSs) are applied to deal with over-voltage in the peak of PV generation and as well the voltage drop in the peak of demand. In this level, the batteries and the tap position of the feeder transformer are optimally set in order to improve the voltage profile for the entire planning horizon (next day) taking into account the uncertainties in the PV production. In the second level, based on the partitioning of the distribution network, reactive power compensation capability of PV inverters is employed to fine-tune the voltage profile for the next operating hour. To model the uncertainty pertaining to the output power of PV units, the parameters of beta distribution function are estimated for each hour time interval, and then Monte Carlo simulation method is used to generate daily scenarios. In order to reduce the complexities and computational burden, the linearized model of power flow equations and PV inverters have been implemented. A real and practical, 10 kV, 37-bus system is used to test the performance of the proposed method.
机译:由于光伏(PV)的普及率增加,低电压馈电器中的过电压是要解决的至关重要的问题。需要使用更高级的电压控制方法来满足控制系统的响应时间。本文提出了一种双层电压控制策略。在第一级,基于日间光伏生产方案,均配有一负载分接开关(OLTC)和电池储能系统(ESS)以处理PV生成峰值的过电压,以及电压下降需求峰值。在该级别中,馈电变压器的电池和敲击位置被最佳地设置,以改善整个规划地平线(第二天)的电压曲线考虑到光伏生产中的不确定性。在第二级,基于分配网络的分区,采用PV逆变器的无功功率补偿能力来微调下一个工作小时的电压曲线。为了模拟与PV单元的输出功率有关的不确定性,为每个小时时间间隔估计Beta分布函数的参数,然后蒙特卡罗仿真方法用于生成日常情况。为了降低复杂性和计算负担,已经实现了电流方程和PV逆变器的线性化模型。真实实用,10 kV,37总线系统用于测试所提出的方法的性能。

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