基于事件触发脉冲观测器的直流微电网的有限时间脉冲混合控制策略

Finite-Time Hybrid Impulsive Control Strategy for DC Microgrids via Event-Triggered Impulsive Observer

  • 摘要: 本文旨在针对存在未知外部扰动的直流微电网( DC Microgrids,DCMGs )的电压控制问题,提出一种基于事件触发脉冲观测器(ETIO)的有限时间事件触发脉冲混合控制(FETIHC)策略,旨在提升动态响应速度并降低对物理传感器的依赖。首先,对这类直流微电网建立了数学模型,并设计一种适用于此系统的新型脉冲观测器,实时估计电感电流与输出电压状态;其次,结合有限时间收敛理论,构造脉冲型有限时间控制器,利用观测器结果生成控制信号。借助Lyapunov函数证明了所提控制的稳定性, Zeno行为也在稳定性分析中进行了排除。仿真结果表明:相较于传统连续控制和基于时间的脉冲控制方案,所提方法显著提升了系统的控制效率与资源利用率,为孤岛微电网的安全、稳定、经济运行提供了高效可靠的解决方案。

     

    Abstract: We propose a finite-time event-triggered hybrid control (FETIHC) strategy based on event-triggered impulsive observers (ETIO) for voltage control in DC microgrids (DCMGs) subject to unknown external disturbances. The approach aims to enhance dynamic response speed while reducing reliance on physical sensors. First, a mathematical model of this DC microgrid is established, and a novel pulse observer suitable for this system is designed to estimate the inductor current and output voltage states in real time. Second, combining finite-time convergence theory, a pulse-type finite-time controller is constructed to generate control signals based on the observer output. The stability of the proposed control is proved using a Lyapunov function, and Zeno behavior is also excluded in the stability analysis. Simulation results demonstrate that compared to traditional continuous control and time-based pulse control schemes, the proposed method significantly enhances system control efficiency and resource utilization. This provides an efficient and reliable solution for the safe, stable, and economical operation of isolated microgrids.

     

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