基于HPSO-TVAC的在线最优潮流协同BESS和LRT集中控制实现了微电网电压稳定

K. L. Dinh, Y. Hayashi
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引用次数: 2

摘要

为使中压6.6 KV光伏微电网的输电损耗最小,提出了一种基于时变加速度系数自组织分层粒子群优化的馈线节点局部电池储能系统(BESS)在线最优有功潮流算法。此外,安装在互联点的中央BESS可以最大限度地减少电力公司通过互联点流向微网的功率,并与负载比控制变压器协调稳定微网本地节点电压。当中央电池储能系统中的电池完全充电或完全放电时,中央电池储能系统被设计为分配静态补偿器。通过对环形结构和径向结构的研究,评价了所提方法的有效性。利用MATLAB/Simulink对微电网模型进行仿真。将传统控制方法与所提出的控制方法进行对比,评价其有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Online optimal power flow based on HPSO-TVAC coordinates with centralized BESS and LRT control to stabilize voltage in a PV-supplied microgrid
This paper proposes an online optimal active power flow for local battery energy storage systems (BESS), which are installed at feeder nodes, based on self-organizing hierarchical particle swarm optimization with time-varying acceleration coefficients to minimize power transmission loss in a middle voltage 6.6 KV photovoltaic-supplied microgrid. In addition, a central BESS, which is installed at an interconnection point, minimizes power flow from the utility to the microgrid through the interconnection point, and coordinates with a load ratio control transformer to stabilize local node voltages in the microgrid. The central BESS is designed to operate as a distribution static compensator when batteries in the central battery energy storage system are fully charged or fully discharged. Loop and radial structures of MG are studied to evaluate the effective of proposed method. MATLAB/Simulink is used to simulate the microgrid model. A conventional control method and the proposed control method are compared to evaluate its effectiveness.
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