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Load frequency control enhancement of islanded micro-grid considering high wind power penetration using superconducting magnetic energy storage and optimal controller

机译:利用超导磁储能和最优控制器,考虑高风电渗透率,提高孤岛微电网的负荷频率控制

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This article proposes a robust load frequency control using a new optimal proportional–integral–derivative controller–based genetic moth swarm algorithm for islanded microgrids considering high wind power penetration. In such microgrids, the replacement of conventional generator units with a large number of renewable energy sources reduces the system inertia, which in turn causes undesirable influence on microgrid frequency stability, leading to weakening of the microgrid. Furthermore, sudden load shedding, load restoring, and short circuits caused large frequency fluctuations which threaten the system security and could lead to complete blackouts as well as damages to the system equipment. In order to solve this challenge, this study proposes a new coordinated optimal load frequency control plus modified control signal to superconducting magnetic energy storage for compensating the microgrid frequency deviation (∆ f ). To prove the effectiveness of the proposed coordinated control strategy, an islanded microgrid was tested for the MATLAB/Simulink simulation. The physical constraints of the turbines such as generation rate constraints and speed governor dead band are considered in this study. The results confirmed the effectiveness and robustness of the proposed coordination performance against all scenarios of different load profiles, wind power fluctuation, and system uncertainties in microgrid integrated with high penetration of wind farms. Moreover, the results have been compared with both: the optimal load frequency control with/without the effect of conventional superconducting magnetic energy storage.
机译:本文针对考虑到高风能渗透的孤岛微电网,提出了一种新的基于最优比例-积分-微分控制器的遗传蛾群算法,用于鲁棒的负载频率控制。在这种微电网中,用大量可再生能源替代常规发电机组会降低系统惯性,进而对微电网的频率稳定性造成不良影响,从而导致微电网的削弱。此外,突然的负载减少,负载恢复和短路会引起较大的频率波动,从而威胁系统安全性,并可能导致完全的停电以及对系统设备的损坏。为了解决这一挑战,本研究提出了一种新的协调最优负载频率控制加修改后的控制信号,以补偿超导磁能存储,以补偿微电网的频率偏差(∆ f)。为了证明所提出的协调控制策略的有效性,对孤岛微电网进行了MATLAB / Simulink仿真测试。这项研究考虑了涡轮的物理约束,例如发电率约束和调速器死区。结果证实了拟议的协调性能针对不同负载情景,风力发电波动以及高风电场集成的微电网中系统不确定性的所有情况的有效性和鲁棒性。此外,将结果与以下两种情况进行了比较:最佳负载频率控制,具有/不具有传统超导磁能存储的效果。

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