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Transition From Islanded to Grid-Connected Mode of Microgrids With Voltage-Based Droop Control

机译:基于电压下垂控制的微电网从孤岛模式过渡到并网模式

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Microgrids are able to provide a coordinated integration of the increasing share of distributed generation (DG) units in the network. The primary control of the DG units is generally performed by droop-based control algorithms that avoid communication. The voltage-based droop (VBD) control is developed for islanded low-voltage microgrids with a high share of renewable energy sources. With VBD control, both dispatchable and less-dispatchable units will contribute in the power sharing and balancing. The priority for power changes is automatically set dependent on the terminal voltages. In this way, the renewables change their output power in more extreme voltage conditions compared to the dispatchable units, hence, only when necessary for the reliability of the network. This facilitates the integration of renewable units and improves the reliability of the network. This paper focusses on modifying the VBD control strategy to enable a smooth transition between the islanded and the grid-connected mode of the microgrid. The VBD control can operate in both modes. Therefore, for islanding, no specific measures are required. To reconnect the microgrid to the utility network, the modified VBD control synchronizes the voltage of a specified DG unit with the utility voltage. It is shown that this synchronization procedure significantly limits the switching transient and enables a smooth mode transfer.
机译:<?Pub Dtl?>微电网能够提供网络中分布式发电(DG)份额不断增加的协调集成。 DG单元的主要控制通常由避免通信的基于下垂的控制算法执行。基于电压的下降(VBD)控制是为岛上低压微电网开发的,该电网具有大量可再生能源。通过VBD控制,可调度和不可调度的单元都将有助于功率共享和平衡。根据端子电压自动设置电源更改的优先级。通过这种方式,可再生能源与可调度单位相比在更极端的电压条件下改变其输出功率,因此,仅在网络可靠性需要时才可更改。这促进了可再生单元的集成并提高了网络的可靠性。本文着重于修改VBD控制策略,以实现微电网的孤岛模式和并网模式之间的平稳过渡。 VBD控件可以在两种模式下运行。因此,对于孤岛,不需要任何具体措施。为了将微电网重新连接到公用电网,修改后的VBD控件将指定DG单元的电压与公用电压同步。结果表明,该同步过程极大地限制了开关瞬变并实现了平稳的模式转换。

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