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Probabilistic Sizing of Virtual Energy Storage Devices for Transient Stability Enhancement

机译:瞬态稳定增强虚拟能量存储装置的概率尺寸

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The penetration level of renewable energy sources and distributed generators (DGs) has been rapidly increasing, which severely impacts power system dynamic performance. Such sources usually have very small or no rotating inertia, thus resulting in a significant reduction in the overall system inertia. Low inertia can lead to loss of synchronism even for small disturbances, cascading failures, and blackouts. Virtual Synchronous Generators (VSG) have the potential to compensate for the reduced inertia due to the high penetration of renewable energy sources and DGs. However, determining the minimum sizes of VSG to maintain power system stability is a challenging task. In this paper, a probabilistic approach is proposed to determine the sizes of VSG to enhance the dynamic performance of power systems under various loading and failure conditions. In the proposed approach, Monte Carlo simulations are performed to emulate the variability of system loads and uncertainties of fault clearing times. The time domain simulation approach for multi-machine systems is performed to determine the required sizes of VSG. The proposed method is demonstrated on the reduced Western Electricity Coordinating Council 9-bus transmission system. The results show that the determined sizes of VSG are sufficient to maintain the stability of low-inertia power systems.
机译:可再生能源和分布式发电机(DGS)的渗透水平一直在迅速增加,这严重影响了电力系统动态性能。这些来源通常具有非常小或没有旋转惯性,因此导致整个系统惯性显着降低。即使对于小型干扰,级联故障和停电,低惯性也会导致同步丧失。由于可再生能源和DGS的高渗透率,虚拟同步发电机(VSG)有可能补偿减少的惯性。然而,确定VSG以维持电力系统稳定性的最小尺寸是一个具有挑战性的任务。在本文中,提出了一种概率的方法来确定VSG的尺寸,以提高各种装载和故障条件下电力系统的动态性能。在所提出的方法中,进行蒙特卡罗模拟以模拟系统负载的可变性和故障清算时间的不确定性。执行多机系统的时域仿真方法以确定VSG所需的尺寸。在减少的西方电力协调委员会9公交车传输系统上证明了所提出的方法。结果表明,确定的VSG尺寸足以保持低惯性电力系统的稳定性。

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