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Laboratory-Based Microgrid Setup for Validating Frequency and Voltage Control in Islanded and Grid-Connected Modes

机译:基于实验室的微电网设置,用于验证孤岛和并网模式下的频率和电压控制

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Small sized synchronous generator based distributed generators (DG) often have low start-up times, and therefore serve as valuable dispatchable generators in a microgrid environment. The advantage is that it allows the power network to operate in a true smart grid environment. The disadvantage is that such DGs typically tend to have low inertia and the prime movers driving these resources need to be controlled in real time for them to operate effectively in islanded, grid-connected modes and during transition. When multiple DGs are present in the microgrid, the overall control can become complicated because of the need for sharing the resources. A smart grid environment is then necessary to control all dispersed generation sources in the microgrid. The most common control strategy adopted for multiple DGs connected to a network is droop control. Droop control ensures that the load needed to be served is shared by all the generators in the network in proportion to their generating capability. Preliminary test results performed on a laboratory microgrid test bench is presented to demonstrate the ability to serve the load at nominal voltage and frequency irrespective of the support received from the main grid.
机译:基于小型同步发电机的分布式发电机(DG)通常具有较短的启动时间,因此在微电网环境中可以用作有价值的可调度发电机。优点是它允许电力网络在真正的智能电网环境中运行。缺点是此类DG通常倾向于具有较低的惯性,并且需要实时控制驱动这些资源的原动机,以便它们在孤岛,并网模式下和过渡期间有效运行。当微电网中存在多个DG时,由于需要共享资源,因此总体控制可能会变得复杂。因此,需要一个智能电网环境来控制微电网中所有分散的发电源。对于连接到网络的多个DG,最常用的控制策略是下垂控制。下降控制可确保网络中所有发电机按其发电能力分配所需的负载。给出了在实验室微电网测试台上执行的初步测试结果,以证明在额定电压和频率下为负载供电的能力,而与从主电网获得的支持无关。

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