电压降
光伏系统
控制理论(社会学)
交流电源
逆变器
工程类
电压
功率(物理)
功率控制
伏特
电子工程
计算机科学
电压调节器
控制(管理)
电气工程
人工智能
物理
量子力学
作者
Ruipeng Xu,Cuo Zhang,Yan Xu,Zhaoyang Dong,Rui Zhang
出处
期刊:IEEE Transactions on Smart Grid
[Institute of Electrical and Electronics Engineers]
日期:2021-11-09
卷期号:13 (2): 998-1011
被引量:41
标识
DOI:10.1109/tsg.2021.3126761
摘要
Due to increasing installation of photovoltaic (PV) units, reactive power compensation from PV inverters contributes significantly to Volt/Var control (VVC) for active distribution networks. While PV inverters support VVC functions, lack of systematic coordination and heavily varying PV power generation lead to low control efficiency. To maximize benefits of the inverter-based VVC, this paper proposes a multi-objective hierarchically-coordinated VVC method with droop-controlled PV inverters. This method aims to minimize both average bus voltage deviation and network power loss, by simultaneously optimizing PV inverter reactive power setpoints for central control and droop control functions for local control. The droop control characteristics of PV inverters are fully modeled, including voltage ranges of the dead band and control zones, as well as droop slope gradients. In addition, this paper applies a Taguchi’s orthogonal array testing technique to handle random variations of PV power generation in the optimization problem. Moreover, to efficiently solve this optimization problem with integer variables, this paper proposes a solution algorithm based on model relaxation and a feasibility pump method. The proposed method is tested on two distribution systems, and simulation results verify highly efficient control performance in comparison with existing methods.
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