Smart transformer based power flow control in multi microgrid system

V. C. Jishnu Sankar, G. Haritha, M. Nair
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引用次数: 8

Abstract

In order to increase the flexibility of a microgrid, the active power exchange between a microgrid and the utility grid as well as other microgrids need to be controlled properly. The voltage based control of a Smart Transformer allows the control of active power flow between a utility grid and a microgrid at the point of common coupling (PCC). This paper addresses the control of the active power flow between two microgrids in an islanded mode and also between two microgrids in the grid connected mode with and without encouraging the participation of the utility grid. Here, we utilize the voltage based control on a thyristor controlled on load tap changing transformer which makes the Smart Transformer concept even more smart. The thyristor based Smart Transformer at the PCC enables faster switching and minimizes the arcing problems of a normal on-load tap changing transformer. The distributed generation units in the microgrid should be equipped with a voltage-based droop control strategy which reacts on the voltage change, making the Smart Transformer an element that controls power exchange without the need for any communication to other elements in the microgrid. The experimental simulations performed in MATLAB/SIMULINK follow that a smart transformer allows the power flow control between two microgrids.
基于智能变压器的多微网系统潮流控制
为了提高微电网的灵活性,需要对微电网与公用电网以及其他微电网之间的有功功率交换进行适当的控制。基于电压的智能变压器控制允许在公共耦合(PCC)点控制公用电网和微电网之间的有功功率流。本文讨论了孤岛模式下两个微电网之间的有功潮流控制以及并网模式下两个微电网之间的有功潮流控制,无论是否鼓励公用电网的参与。在这里,我们利用基于电压的控制在可控硅控制的负载分接变化变压器上,这使得智能变压器的概念更加智能。PCC基于晶闸管的智能变压器可以实现更快的开关,并最大限度地减少正常有载分接变换变压器的电弧问题。微电网中的分布式发电机组应配备基于电压的下垂控制策略,该策略对电压变化作出反应,使智能变压器成为控制电力交换的元件,而无需与微电网中的其他元件进行任何通信。在MATLAB/SIMULINK中进行的实验仿真表明,智能变压器可以实现两个微电网之间的潮流控制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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