基于智能逆变器和SVC的弹性微电网动态电压稳定性改进

Luis A. Paredes, M. Molina, Marcelo Pozo, B. Serrano
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引用次数: 0

摘要

微电网(MG)作为向智能电网技术转型的一部分而出现。MG可以在两种模式下运行:连接到配电网或以孤立的单机方式运行。当过渡到孤岛模式时,gm必须以稳定、可靠和有弹性的方式运行。在这种情况下,作为电网一部分的分布式能源(DERs)必须做出最佳响应,以保证动态电压稳定性(DVS)并提高运行弹性。在弹性应变条件下,电网的电压稳定性和无功控制受到严重影响。因此,即使基于智能逆变器的der按照IEEE标准1547-2018中规定的低压穿越(L VRT)要求运行,也不足以提供无功功率亏缺。因此,本文旨在包括FACTS(柔性交流传输系统)类型的补偿装置,特别是与MG的der协调工作的静态无功补偿器(SVC)。结果令人满意,并且表明用于DERs和SVC设备的智能逆变器在协调控制策略下运行改善了DVS,允许控制无功电源并在隔离MG中提供足够的运行弹性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Improvement of Dynamic Voltage Stability in a Resilient Microgrid based on Smart Inverters & SVC
The microgrid (MG) has emerged as part of the technological transition to smart grids. The MG can operate in two modes: connected to a distribution network or in an isolated stand-alone way. When the transition to island mode occurs, the M G must operate in a stable, reliable, and resilient way. In this context, the distributed energy resources (DERs) that are part of the M G must respond optimally to guarantee dynamic voltage stability (DVS) and to improve operational resilience. Under resilient contingency conditions, the voltage stability and reactive power control of the MG is severely compromised. Therefore, even though DERs based on smart inverters operate according to the low-voltage ride-through (L VRT) requirements stated at the IEEE Standard 1547–2018, it is not enough to supply the reactive power deficit. Thus, this paper aims to include FACTS (flexible ac transmission systems) type compensation devices, particularly a static var compensator (SVC) that operates in coordination with DERs of the MG. The results obtained are satisfactory, and it is shown that the smart inverters used for the DERs and the SVC device operating with a coordinated control strategy improved the DVS, allowing the control of the reactive power supply and granting an adequate level of operational resilience in the isolated MG.
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