通过增强微电网来实现断层漂移

R. Jayakrishnan, V. Sruthy
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引用次数: 8

摘要

现代输电和配电网的故障穿越规范规范规定,分布式发电(DG)即使在远低于标称电压的电压下也必须保持与电网连接。这与传统的方法相反,在传统方法中,发电厂不需要保持连接。在此期间,电网的可靠运行是一个挑战,因为基于逆变器的dg被设计为在标称电压下可靠运行,而在异常条件下不能正常运行。提出了一种新的故障穿越方案,将故障电流限制在系统限制范围内。本文研究了正常和故障情况下的微电网模型,并对具有两个风源和一个光伏源的孤岛微电网进行了故障分析。在随机点上考虑不同类型的故障,研究故障定位和恢复时间的影响。提出了一种新的接口变换器控制策略,该策略采用主从控制,实现了DGs之间的功率共享,并开发了故障穿越逻辑,解决了故障电流限制问题。在MATLAB/Simulink中对该方案进行了仿真验证。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Fault ride through augmentation of microgrid
The modern grid codes for fault ride through specifications in transmission and distribution grids specify that Distributed Generation (DG) must remain connected to the grid even at voltages well below the nominal voltage. This is contrary to the traditional approach, whereby the power plants were not required to stay connected. The reliable operation of the grid during this period is challenging as the inverter based DGs are designed to operate reliably at nominal voltages and does not function well under the abnormal conditions. This paper presents a new fault ride through scheme that limits fault current within the system limits. The microgrid (MG) model considered here is studied under normal and fault situation and a fault analysis on an islanded microgrid with two wind sources and a Photovoltaic (PV) source. Different types of faults are considered at random points to study the effect of fault location and recovery time. A novel control strategy for the interface converter is proposed where a master-slave control is adopted for the sources, which enables the power sharing between the DGs and a fault ride through logic that addresses the fault current limiting is developed. The scheme has been validated with simulation results in MATLAB/Simulink.
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