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Dynamic Phasors-Based Modeling and Stability Analysis of Droop-Controlled Inverters for Microgrid Applications

机译:基于动态相量的微机应用下垂控制逆变器建模与稳定性分析

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摘要

System modeling and stability analysis is one of the most important issues of inverter-dominated microgrids. It is useful to determine the system stability and optimize the control parameters. The complete small signal models for the inverter-dominated microgrids have been developed which are very accurate and could be found in literature. However, the modeling procedure will become very complex when the number of inverters in microgrid is large. One possible solution is to use the reduced-order small signal models for the inverter-dominated microgrids. Unfortunately, the reduced-order small signal models fail to predict the system instabilities. In order to solve the problem, a new modeling approach for inverter-dominated microgrids by using dynamic phasors is presented in this paper. Our findings indicate that the proposed dynamic phasor model is able to predict accurately the stability margins of the system, while the conventional reduced-order small signal model fails. In addition, the virtual ω-E frame power control method, which deals with the power coupling caused by the line impedance X/R characteristic, has also been chosen as an application example of the proposed modeling technique.
机译:系统建模和稳定性分析是逆变器主导的微电网最重要的问题之一。确定系统稳定性和优化控制参数非常有用。已经开发了用于逆变器为主的微电网的完整小信号模型,该模型非常精确,可以在文献中找到。但是,当微电网中的逆变器数量很大时,建模过程将变得非常复杂。一种可行的解决方案是对逆变器为主的微电网使用降阶小信号模型。不幸的是,降阶小信号模型无法预测系统不稳定性。为了解决这一问题,本文提出了一种利用动态相量的逆变器控制微电网建模的新方法。我们的发现表明,提出的动态相量模型能够准确地预测系统的稳定性裕度,而传统的降阶小信号模型却失败了。此外,虚拟ω-E帧功率控制方法也可作为建模技术的应用示例,该方法处理由线阻抗X / R特性引起的功率耦合。

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