Heng Wang, Zhuwei Wang, Yifan Sun, Yuehui Guo, Chao Fang, Meng Li, Yang Sun
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引用次数: 0
摘要
近年来,微电网因其可靠性和灵活性的优越性而迅速发展。负载频率控制(Load frequency control, LFC)在微电网中起着至关重要的作用,它可以维持微电网的稳定运行,保证互联电力系统间交接线上的交换功率保持在理想值。在LFC系统中,无线通信是使系统更高效、简洁的关键因素,但同时也会产生时延。本文提出了一种存在网络延迟的最优LFC算法。首先对LFC系统进行分析,然后建立离散时间系统模型。然后,以最小化频率偏差为目标,利用二次代价函数来构造最优LFC问题。采用后向递归迭代法求解最优闭环控制策略,该方法可分为两步。特别地,在离线阶跃处迭代推导出最优控制增益,然后在在线阶跃处计算出控制策略。最后,通过数值仿真验证了所提最优LFC算法的性能和稳定性,突出了其与现有算法相比的优越性。
Optimal Control Design for Load Frequency Control with Network-induced Delays
In recent years, microgrids develop rapidly due to the superiority of reliability and flexibility. Load frequency control (LFC), as a vital role in microgrids, can maintain the stability of the microgrid and ensure that the exchange power on the tie line between interconnected power systems remains at the desired value. In the LFC system, wireless communication is the key factor to make the system more efficient and concise while it gives rise to delays in the meantime. In this paper, an optimal LFC algorithm is proposed in the presence of the network-induced delay. First, the LFC system is analyzed, and then the discrete-time system model is established. Then, the optimal LFC problem is formulated using a quadratic cost function with the objective of minimizing the deviations of frequency. The optimal close-loop control strategy is solved in an iterative manner by using a backward recursion which can be divided into two steps. In particular, the optimal control gain can be iteratively derived at off-line step, and then the control strategy can be calculated at on-line step. Finally, the performance and stability of proposed optimal LFC algorithm are verified by numerical simulations to highlight its superiority compared with the existing algorithms.