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An Accurate Power Control Strategy for Power-Electronics-Interfaced Distributed Generation Units Operating in a Low-Voltage Multibus Microgrid

机译:在低压多总线微电网中运行的电力电子接口分布式发电机组的精确功率控制策略

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摘要

In this paper, a power control strategy is proposed for a low-voltage microgrid, where the mainly resistive line impedance, the unequal impedance among distributed generation (DG) units, and the microgrid load locations make the conventional frequency and voltage droop method unpractical. The proposed power control strategy contains a virtual inductor at the interfacing inverter output and an accurate power control and sharing algorithm with consideration of both impedance voltage drop effect and DG local load effect. Specifically, the virtual inductance can effectively prevent the coupling between the real and reactive powers by introducing a predominantly inductive impedance even in a low-voltage network with resistive line impedances. On the other hand, based on the predominantly inductive impedance, the proposed accurate reactive power sharing algorithm functions by estimating the impedance voltage drops and significantly improves the reactive power control and sharing accuracy. Finally, considering the different locations of loads in a multibus microgrid, the reactive power control accuracy is further improved by employing an online estimated reactive power offset to compensate the effects of DG local load power demands. The proposed power control strategy has been tested in simulation and experimentally on a low-voltage microgrid prototype.
机译:本文提出了一种针对低压微电网的功率控制策略,该策略的主要电阻线路阻抗,分布式发电单元之间的阻抗不相等以及微电网负载位置使常规的频率和电压下降方法不切实际。所提出的功率控制策略在接口逆变器输出端包含一个虚拟电感器,并考虑了阻抗压降效应和DG局部负载效应,从而实现了精确的功率控制和共享算法。具体地说,虚拟电感可以通过引入一个主要的电感性阻抗来有效地防止有功功率和无功功率之间的耦合,即使在具有电阻性线路阻抗的低压网络中也是如此。另一方面,基于主要的电感阻抗,所提出的精确无功功率共享算法通过估计阻抗电压降来起作用,并显着提高了无功功率控制和共享精度。最后,考虑到多总线微电网中负载的不同位置,通过使用在线估算的无功功率偏移量来补偿DG本地负载功率需求的影响,可进一步提高无功功率控制的精度。拟议的功率控制策略已经在低压微电网原型机上进行了仿真和实验测试。

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